Saturday, January 6, 2007

Dialing in Your Cam


DIALING IN YOUR CAM

You’ve worked all summer to get the bread to build a bitchin 1776 engine. It’s got big jugs, dual carbs, a hot cam and valves the size of dinner plates. You and your buds pull an all-nighter to get it buttoned up in time for school. It fires right up with a lopey idle that sounds way kewl. But punch it, it’s a total POS. Nobody knows why. The timing is dead on and the dizzy checked out. Ditto for the carbs. All your buds agree it should run good but it don’t. A call to the local guru is no help, ‘Bring it in, lemme lookatit.’ At a hundred bucks a glance. But at least it runs, sorta, so you drive it. Maybe it will heal or something.

First day of school Mrs. Wilson who teaches Home Ec and drives that bone stock ‘67 she’s had since high school blows you off pulling out of the parking lot. She wasn’t even trying to dust you. But she did. Bad. The real killer is that your buds saw it happen.

Before you buy a Toyota or transfer to another school let me ask you a couple of questions. Did you dial in your cam? Did you set up your valve train geometry? Have you got any idea in the blue eyed world what I’m even talking about?

“Actually, I’m more into computers ...”

Okay, then think of your cam as the engine’s BIOS. It tells your valves when to open, how far and for how long. The crankshaft is the Master Clock, with Top Dead Center of #1 cylinder as the zero point. Dialing in your cam loads the program at the right address. With the engine above, put your foot down, it should take off like Mad Max blowing nitrous. But only if the crank and cam are in sync.

So didja? Did you dial in your cam? Because even in a stock engine, stack-up errors can put your cam timing out by as much as 4.5 degrees, more than enough to turn your tiger into a turkey.

STACK-UP ERRORS

The Volkswagen was the world’s second economy car ( first was the Ford Model ‘T’). Its low cost of production is reflected by the spec of its parts, which are pretty loose. Some engines came out of the factory sorta sloppy and some sorta tight but the wide tolerances guarantee almost any engine would run. That’s why you don’t dial in the cam doing a rebuild. If you don’t change the cam gear, odds are the rebuilt will run about as well as the original. But when you use non-stock parts, or even a high percentage of rebuilt parts, the odds run the other way.

When you build a high performance engine from a collection of after-market parts, for the duration of the job you better not be into anything but engines. You’re the Mechanic-in-Charge. The chore of making sure things fit falls on you. And one of those chores is dialing in your cam. So didja?

No, don’t tell me. Mrs. Wilson already did.

GAUGING THE CRANKCASE

Building a good engine starts with the crankcase, each of which is just a tiny bit different from every other because of normal variations in tooling wear and production tolerances. The differences are tiny but they’re important. Ignore them and it’s like building a house on a foundation that’s off level by just a tiny bit. The higher you go, the worse it gets. By the time you put the roof on, the thing is leaning like a drunk. One of those tiny differences is the distance between the centerline of the crankshaft and the centerline of the camshaft. It’s not a bunch but if you ignore it, by the time you get out to the valves your high performance engine isn’t.

Because of that difference Volkswagen used nine sizes of cam gear, from +4, through 0, to -4. (The size is stamped on the back of the gear. It reflects a change of .01mm on the diametrical pitch.) About 95% of factory-built engines use cam gears near the zero size, with a nominal range of about +2 to -2. Align boring, which Volkswagen used to do on all their rebuilt engines, dictates the need for the other sizes. How well the gear fits determines how rapidly it wears. Good fit, slow wear. Good fit also means good performance since the fit effects your cam timing and valve train geometry. So that’s where you begin.

Immediately after checking the fit of the main bearings to the crankshaft and case, the driver gear is installed on the crank and the crankcase is gauged to discover what size cam gear is needed. One of the most practical ways to do this to is to obtain three stock cams for use as gauges. With a +2, a 0 and a -2, it takes only a few minutes to figure out the right size cam gear for any crankcase. All you have to do is install your gauge-cams in your crankcase and check their lash against your crank. Here’s how to do it.

CHECK YOUR GEAR LASH

Install the crankshaft into the crankcase half, take your cam and roll the gears into mesh. Don’t worry about the dots, you’re just checking the lash, not assembling an engine.

With the crankcase open, use a pulley or crank on the nose of the crankshaft to smoothly rotate the crankshaft in its normal direction (ie, clockwise when facing the pulley). Do not allow any axial motion of the crankshaft during this test. Using a thrust hub is a good idea. Do several revolutions to insure the two shafts are properly bedded and the gears fully meshed. This test is normally done early in the assembly of the engine, before the connecting rods are mated to the crank.

Spec for cam gear mesh is .000" to .002.” The zero clearance reflects the fact that thermal expansion causes the two shafts to move farther apart at operating temperatures.

To check the mesh, hold the crankshaft stationary, rest your palm on the cam gear and rock it gently back & forth. One of three things is going to happen. You may not feel any motion at all, as if it were bedded in concrete. Or you’ll feel a little motion, usually accompanied by a faint clink-clink as you rock it back & forth. Or you’re going to feel a lot of motion, along with a loud CLUNK-CLUNK .

CLUNK is bad. You’re using the wrong size cam gear; its got too much clearance. Don’t take my word for it, check it. Set up your dial indicator to rest on the bottom-most tooth, right next to the parting line of the crank case. Use a pointed pallet on your dial indicator and set it up to bear on the corner of the gear tooth. Now rock the cam gear back & forth like you did before. (Remember to keep the crank from moving.) If you see more than two thou of movement, you need a larger gear.

If you felt some motion but not enough to give you a clink, the lash is probably okay. But it’s smart to check it out. Set up a dial indicator and measure the lash.

If you didn’t feel any motion the lash may be okay. Or it may be too tight. Try rotating the crankshaft backwards. Here again, do not allow any axial motion of the crankshaft during this test – keep it pressed firmly against the thrust face of the #1 bearing. The handy way to do this is to make yourself a thrust hub. That’s a fancy name for a junked flywheel, cut down to about 6". [See Tools You Can Make] The unhandy way is to use hand pressure. Of course, when you get to dialing in the cam you’ll need to grow a third hand.

If reversing the crankshaft lifts the cam out of its bearings, the gears are jamming, the mesh is too tight. You need a smaller cam gear. But if it rotates smoothly and the cam stays in its bearings, you’re okay.

When gauging your case you start with a 0 (zero) gear. Too tight? Then try your -2. If that’s too loose, you need a -1. Too tight, you need a -3. (Only 13 engines out of 10,000 use a -4.)

The same procedure works the other way. If the 0 is too lose you go up two sizes.

In fully half the engines you’ll build it takes only two trials to nail down which size you need. That’s because over 95% of all VW engines use a cam gear between a +2 and a -2.. A majority of new cases, about 65%, use a +1, 0, or -1. After being align-bored a case may need to go up one size but a +3 case is uncommon, +4 rarer than lips on a chicken. There’s no mystery to any of this, it’s simple statistics.

FINDING A GEAR THAT FITS

For the engine builder without a drawer full of spare cams, finding a gear that fits can be a conundrum. Here’s why. Let’s assume you have a gear on your cam. You check the lash using the procedure above and discover you’ve got either too much clearance or not enough. You need to buy a new gear. But with only one gears-worth of data, you can’t say which size you need. Like all conundrums the gear size question has no satisfactory answer.

What to do? Best bet is to get your case gauged by somebody who knows what they’re doing. If there’s a good VW engine man in your area and you show up with a clean case, the driver on the crank and all the bearings properly fitted, he may be willing to gauge the crankcase for you. It can be done on the bench; no need for the engine fixture.. And it doesn’t take long, if he’s got the right tools, or even if he’s got known-good stock gears to use as gauges. But if you show up with just a box of unblueprinted parts, forget it. There’s at least a couple hours labor to get a batch of raw parts to the point where you can accurately gauge the fit of the cam gear.

PRECISION GUESSWORK

If you can’t gauge your crankcase, get your hands on any cam gear of known size. Do the lash check and use your one cam’s-worth of data to approximate a better fit. Follow me through, here. This isn’t as crazy as it sounds.

Cam gear size reflects a Gaussian distribution curve. Statistically that means 95.44% of all stock engines used a cam gear between +2 and -2. We also know that a little bit too much clearance is better than not enough. Armed with that information, let’s play the odds.

Let’s say the gear you have jams. That sez you need a smaller gear. Read the number on the gear. If it is +2, +3 or +4, find yourself a 0 (zero). If it is a +1 or 0 (zero), go find a -1. If it is a -1 or -2, go find either a -3 or -4. If it is a -3, ignore it; the mismatch should be no more than 1/100mm. If your cam gear is a -4 and it is jammed, your crankcase has been improperly align bored because there isn’t any more sizes left. ( I’ve heard there are actually eleven sizes of cam gear, +5 through -5, but I’ve never seen a 5 and can’t say they actually exist.)

Now let’s look at the possibility your cam gear has too much lash. This is an easier problem to solve because we have more data. The fact it is too loose tells us we need a larger gear. By measuring the amount of that looseness – the excess lash – we can estimate what size will be a better fit.

First off, expand your acceptance spec to .004". If your gear measures less than .004" lash, go ahead and use it. It’s sloppy but it’ll run. If it measures .004 to .008, go up two sizes. If more than .008, go up three sizes.

You can’t build a good engine with guess work but an educated guess, making full use of what information you have is better than pretending your gear lash doesn’t matter.

When you know what size gear you need, give Clyde Berg a call, see if he can help you out. His dad used to keep a pretty good stock of different size gears on hand for his cam customers. Or do like I do and head for the junkyard. Because the cam runs at half the speed of the crank, the cam may be junk but the gear is usually well within spec. Simply drill out the rivets, throw away the cam and you’ve got yourself a usable gear.

HOW NOT TO SAVE MONEY

To keep down the cost a lot of guys use a reground cam. Not one of the good ones, the other kind, with the gear already attached. You know the ones I mean, you’ve seen them at swap meets and in the J. C. Whitney catalog.

Such a cam is not a good choice because its gear is probably the wrong size for your engine.

Since you may need any one of nine different gears, most cam grinders ship their wiggle sticks without any gear at all. The flange is drilled & tapped (usually for M8x1.0) to accept cap screws. As the Mechanic-in-Charge it’s your responsibility to install the proper gear. But nowadays the trick is finding the proper gear.

ONE SIZE FITS ALL – NOT!

So you buy a hot cam for your dream machine. Now you need a cam gear. You drop by the local VW store and sure enough, there’s a batch of cam gears hanging on the wall.

Odds are, they won’t fit either.

In preparing this article I examined more than thirty after-market gears obtained from a number of retailers here in southern California. Most of the gears were from Taiwan, some from Germany. All of the after-market cam gears I examined were not marked as to size. Of the Taiwanese gears I checked, all were about a +3. This may be an example of Oriental humor since a +3 is too big for 98% of all crankcases. ( To find out what size they are you have to set them up in an engine and compare their lash to gears of known size or measure their diametrical pitch. But unless you want to tool up for it and do them in batches, it’s impossible to justify the time it takes to determine the size of an unmarked gear, so long as gears of known size, even used ones, are available at junkyard prices. )

The people selling those oversized, unmarked gears worked pretty hard to convince me gear lash is no big deal. I was told that after-market gears only come in one size because it’s made of cast aluminum, much softer stuff than the magnesium alloy used for stock gears, and will wear itself in.

I got the same story at different places, often delivered in a scornful tone of voice. Oversize gears wear themselves in. Everyone knows that. So what about undersize gears? They don’t matter, according to a clerk about twenty years old who claimed to have run one for the last five years (!) in his 250 hp daily driver. Gives him more power, he sez.

Sure it does. (Can I get fries with that?)

Allow me to offer a bit of advice based on more than forty years of VW engine building experience. What an oversized gear does is wear itself out and quickly, too, along with your engine. The first time you fire it up, jammed against the steel driver gear the softer aluminum wears at a furious rate, generating spoonfuls of metal flakes to contaminate your bearings. That’s where most of that non-magnetic metallic sludge comes from in lo-buck rebuilds. By the time the engine reaches its normal operating temperature and thermal expansion draws the gears apart, it’s too late, the thing will be worn beyond spec.

You’re the Mechanic-in-Charge. Deciding which gear to use is up to you. But before you buy in to the one-size-fits-all philosophy, keep in mind that philosophy is saying Volkswagen, with nine sizes of cam gear in more than twenty-two million engines was wrong. Personally, I found most after-market cam gears to be shoddy goods due to their poor fit with the camshaft flange. Notable exceptions were gears of German manufacture which usually come drilled only for 6mm rivets. (Old stuff. Box said ‘W. Germany.’) They were a uniformly tight fit on the flange of the camshaft and although unmarked, ran about +1 in size. Opening up and counterboring the rivet holes to accept cap screws is a simple task.

If gauging the case says that a +3 is just the size you need, one of those cast aluminum jobbies from Taiwan may be justified. But a word of caution: Take your cam with you and do a trial fit before you buy. The flange of the camshaft must fit tightly into the socket on the cam gear. The fit of the flange to the socket is what provides axial alignment between the camshaft and its gear. Although it’s rather hard to believe, most of the after-market gears I’ve examined simply did not fit, the spigot was too large, too small or the bolting holes were misaligned.

Once your cam has been blessed with a gear that fits we can determine the indexing error between the cam and the crank. To do that we’ll do a partial assembly of the engine and set up our degree wheel. But first we need to find TDC.

WHERE IS TDC?

One Tuesday afternoon in 1873 Nicholas Otto invented the four stroke engine. On Thursday he dropped his TDC, it rolled under a bench and got lost. Mechanics have been looking for TDC ever since.

All piston engines have a TDC but there’s two Top Dead Centers in the Otto cycle and two ways of defining it. The TDC we’re interested in is the one on the compression stroke (the other is on the exhaust stroke). When setting the compression ratio or adjusting volumetric balance we define TDC in terms of deck height. But for cam timing, TDC is defined in terms of crankshaft rotation. Any way you cut it, before you dial in your cam you gotta find your TDC. So let’s do that.

At this point I’ll assume you’re using a cam gear having the proper mesh, the cam bearings are fully bedded in their saddles and the cam’s end-float is within spec. I’ll also assume you’ve set your crankshaft end-play and are using a thrust hub.

In the following procedure when I mention rotating the crankshaft, always turn it in the normal (ie, clockwise) direction unless told to do otherwise. The angle of the cam gear teeth combined with the end-float of the two shafts generates a surprising amount of slop any time the direction of rotation is reversed. When you need to back up and try again, always go back at least a quarter turn of the crankshaft. This insures you’ve taken up the slop. When asked to rotate the crankshaft to a specific point, do so with a smooth continuous motion. Don’t jiggle the thing back & forth. Jiggling about introduces slop into your readings and you’ll never get the same numbers twice in a row.

Install a pair of modified cam followers on the #1 cylinder (See Tools You Can Make). Install the #1 connecting rod and torque the cap to spec. Close the case, install the six large (M12) nuts with washers and torque to 24 ft-lbs in a ‘W’ pattern, checking for free rotation of the crankshaft as the torquing progresses. When torqued to spec the crank should turn freely with finger pressure. Install the #1 piston, without rings, onto the #1 con rod. Inspect the cylinder sealing surface on the case and cylinders then install the head studs. Install #1 & #2 cylinder barrels with their spacers, if any. Install the deck plate, washers, spacers and nuts (See Tools You Can Make) then torque to spec for your particular studs (ie, M8 = 18 ft-lb, M10 = 30 ft-lb).

TDC - DIAL INDICATOR METHOD

Once the deck plate is in position you may install your dial indicator, timing wheel and timing wheel pointer. (See Tools You Can Make.)

The markings on your timing wheel will put you in the vicinity of TDC and your dial indicator will tell you when you’ve arrived. Use the lifters to identify which TDC you’re on. At TDC on the compression stroke both of your valves will be closed, meaning the lifters will be down. Rock the crank through at least ninety degrees of arc at least half a dozen times to confirm the reading of your dial indicator. Once you’re satisfied you’ve found TDC, position the degree wheel pointer precisely upon the TDC mark.

TDC - STOP-BOLT METHOD

Finding TDC with a dial indicator works fine with most engines based on VW components but as the stroke increases so too does piston dwell at the point of reversal. If you’ve got good equipment – and young eyes – the dial indicator method will work for any engine although the probable error will increase with the stroke.

The stop-bolt method of determining TDC eliminates the dial indicator and any dwell-induced error. You insert a bolt in the torque plate so as to stop the upward travel of the piston before it reaches TDC. You put a piece of masking tape or a white stickum on your degree wheel centered on the as-marked TDC and extending to either side. Rotate the crank until the piston is stopped by the bolt. Do this gently so as not to mar the top of the piston. Keeping tension on the crank, make a mark on the tape precisely aligned with whatever pointer you’ve rigged. Reverse the rotation of the crank until the piston again is stopped by the bolt. Make a second mark on the tape, again precisely aligned with your pointer.

TDC is exactly half-way between the two marks.

A lot of guys go astray by trying to use the stop-bolt method without marking their degree wheel. Instead, they record the stopped position in degrees, such as -3 going one direction and +4 going the other. Then they go crazy and subtract three from four and declare TDC to be at the +1 degree mark. Which is close but not nearly close enough. The correct answer is the difference divided by two, or half a degree.

To keep from going crazy, when using the stop-bolt method ignore the degree wheel markings. Make your own marks, measure the distance between them and divide it by two. The result is TDC with an accuracy of about half a degree.

INDEXING THE DEGREE WHEEL

The whole idea behind finding TDC is to index our degree wheel. The reason we need to index the wheel is because every engine is slightly different. When dialing in the cam we find TDC with as much precision as possible, move our pointer to align with the degree wheel’s TDC mark and tighten it down. Some guys get confused on this issue because they think cam timing and ignition timing are the same thing or that TDC is represented by the centerline of the crankcase. The centerline is just a handy reference used in conjunction with the stock pulley to locate the approximate position of the static timing point for the ignition system. Ignition timing is akin to horseshoes, where close enough is usually good enough. Cam timing is the fixed relationship between the cam and the crank. With cam timing, you’ve either got it right or you lose.

Perhaps it would help resolve the parting line confusion if we started with a degree wheel that had no marks at all and covered up the parting line with tape. When the piston is at TDC so too is the degree wheel. You may position your pointer anywhere on the edge of the pulley, pencil in a mark and call it TDC. Or you may chose to put the degree marks on the engine and place the pointer on the wheel, which is what Volkswagen did with the Type IV engine.

HOW TO SPEAK CAMLOBIAN

To dial in your cam you have to be able to read its specs; to understand a cam card. To do that you need to speak Camlobian.

At first glance Camlobian seems crazier than a hoot owl in heat. It is not. What’s crazy is the description of the Otto cycle as taught in Auto Shop 101, where the two revolutions of the crankshaft are neatly divided into four distinct strokes during which the valves pop open and snap closed precisely (and instantly) at TDC and BDC. Real engines don’t work like that. And never did. Those pretty pictures in all those text books are as phoney as Washington chopping down the cherry tree. Or cam gears that wear themselves in.

The fuel/air charge has mass and mass has inertia, as do all components in your valve train. It takes time and energy to overcome inertia. You must initiate the opening of a valve well before such opening is needed and start closing them well ahead of when it must be fully closed. That’s why the intake valve in a real engine starts to open during the exhaust stroke and the exhaust valve opens rather early on in the power stroke. At one point, the two valves are even open at the same time.

Camlobian reflects the reality of Otto cycle engines by ignoring the four strokes and focusing on intake and exhaust events. It does this by combining the 2:1 relationship between the crank and cam into quadrants of crankshaft rotation during which particular intake and exhaust events normally occur. The quadrants are identified relative to Before (B) and After (A) Top Dead Center (TDC) or Bottom Dead Center (BDC) and are named according; BTDC, ATDC, BBDC and ABDC. (Not to worry. I put all this poop on the degree wheel I’ve included with this article.)

What this form of notation does is convert each cam event into a logical data set, unique from every other. For example, the intake valve opens (IO) in the BTDC quadrant of the exhaust stroke. Since each quadrant represents 180° of cam rotation, so long as we’re speaking of automotive Otto cycle engines a particular event will always occur in its particular quadrant. Having opened in the BTDC quadrant the intake valve must close (IC) at some point during the ABDC quadrant of the compression stroke. In a similar fashion, the exhaust opens (EO) during the BBDC quadrant of the power stroke which means it must close (EC) in the ATDC quadrant of the intake stroke. (And yes, there are some exceptions. Most occur with cams for supercharged engines, where you will occasionally see a quadrant number larger than 90 or less than zero. The basic definitions remain unchanged.)

Now comes the neat part.

Having established those conventions, speakers of camlobian needn’t bother to mention either quadrant or stroke. ‘The intake valves opens 18 degrees before Top Dead Center on the Exhaust Stroke‘ becomes simply ‘IO 18.’ Some cam cards are even more terse, such as ‘I 18-50, E 14-54,’ wherein 18 is the opening point, 50 the close. Since by convention the intake valve is listed first, a cam’s timing may even be defined by the ultra cryptic ‘18-50/14-54.’

Although Camlobian is a culturally rich tongue I’ve cited only a few basic phrases, enough for you to understand a cam card. For dialing in a cam, for each lobe, we’re only interested in three of its many events. We want to know when it opens (O), when it closes (C) and when it peaks (P). To adjust our valve train geometry, normally done in conjunction with dialing in the cam, we also need the maximum lift and the half-height point but that will have to wait for another article. And perhaps another language.

.050" SPECS vs ADVERTISED SPECS

Because there are several ways to grind a cam and some marvelously ingenious methods of selling them, cam grinders have agreed to use the 0.050" lift point as a common standard for determining when various events occur. This is called the checking clearance.

You must read cam ads very carefully. The advertised specifications often use something other than the .050 checking clearance as their base point and may even refer to valve lift rather than cam lift, coyly neglecting to define rocker ratio. Such deceptive practices are used by some folks to sell stock sticks as full-race flame throwers.

CLOCKING THE CAM

For obvious reasons a dial indicator is commonly called a clock. Or perhaps not so obvious in these digital days. (Early clocks only had one hand.) To a machinist, automotive or otherwise, a clock is a dial indicator. To clock the cam means to measure it’s lift, and determine its timing relative to the crankshaft.

The trail of tasks which have lead you to his point -- adjusting the lash of the cam gear, finding TDC and indexing your degree wheel -- have laid the foundation for the accuracy of the measurements you are about to make. If you think you could have done any of the preceding tasks better, go back and do them over because dialing in your cam is a classic case of GIGO – the output will reflect any inaccuracies in the input.

Your cam should have come with a data sheet, probably in Camlobian, listing when the valves open and close. Clocking the cam will tell us when these events occur in this particular engine. It’s important to understand that normal dimensional variations in the manufacturing process combined with your method of measurement and the imprecision of your tools guarantees you will see some error in the cam’s timing. Your purpose is to find out how much. If it’s less than one degree you may decide to accept it. If it is more than five degrees at the crank you might want to try another cam. But in a majority of cases the error will be a couple of degrees, plus or minus, and you will elect to reduce it as much as possible by adjusting the relationship of the cam to the crank using one of the methods I’ll describe in a minute.

By convention we do the intake first so begin by setting up your dial indicator to read off the modified tappet installed on #1 cylinder. (See Tools You Can Make for a holding fixture.) In all cases, on the VW engine the intake valves are those in the middle of the engine; the exhaust valves are the ones on the corners.

Slowly rotate the crankshaft through several revolutions while watching the dial indicator. You will see a prolonged period where the indicator makes no movement then rises, rather rapidly, to some peak value before dropping back. The prolonged period of no movement is when the tappet is riding on the heel of the cam. We need to find the middle of the heel. To do so, note when the peak reading occurs and mark that point on your degree wheel. Rotating the crankshaft one complete turn from the peak should put you in the middle of the heel for that lobe. Zero your clock at that point. (Simply loosen the lock and rotate the dial until the zero-mark is aligned with the needle then re-tighten the lock. If your indicator is properly mounted it will remain steady as a rock while being zero’d. If not, it needs a better mount.)

Once the indicator has been zeroed it may be used as a measuring device. Slowly rotate the crankshaft to measure maximum cam lift. Count the turns or use the turn indicator to keep track, remembering that the first revolution is the ‘zero’ turn. That is, if the needle passes through zero four times before coming to rest on 29 the dimension measured is .329" Record both the lift and the timing.

Once you’ve zero’d on the heel and found max lift, return to the middle of the heel, rotate the crankshaft until the cam follower has risen exactly .050". Record the reading from the degree wheel as IO (ie, Intake Opens) and reset the dial indicator to zero at this point. This is the .050" checking clearance point. Once your clock is zero’d, rotate the crank in the normal direction until you return to zero. Record the reading from the degree wheel at this point as IC (ie, Intake Closes). (By convention, I’ve used .050 for the checking clearance. Use whatever checking clearance is specified for your cam. Cams from metric countries typically use 1mm (~0.040"). )

With the indicator zero still set at the .050 checking point, find the peak lift and record it as IP (ie, Intake Peak). It should occur at the same point as before but the max lift will be less because we’ve reset our dial indicator to zero at the .050 lift point..

Divide the Intake Peak reading just recorded by two. This is the 50% Lift Point. Write it down. Now go find it! Go back to zero and rotate the crank until the clock reads 50% of max lift. Record when this occurs by reading the degree wheel. We’ll need this information when we adjust your valve train geometry.

Move the dial indicator over to the exhaust tappet for #1 cylinder and repeat the above tests. Record your findings. If you’re using a split lift cam, such as a stock VW stick, be very careful to record the 50% lift point for the exhaust.

WHICH WAY? HOW FAR?

Once you’ve found TDC, indexed your degree wheel and clocked your cam, the data you’ve collected tells you if the cam is properly indexed to the crankshaft. It won’t be. When clocking a cam the question is never if there is any error but how much and in what direction.

Did that come across? The reason we’ve gone through all this is to find out how big an indexing error we’re dealing with. Once you know what the error is, you can decide if it’s significant. As a general rule for street engines, an error of one degree or less, plus or minus, is not considered significant. Unless you like to build really good engines. In which case your standard of excellence will vary from zero error to some fraction of a degree.

When you build your own engine you’re not punching a time clock. There’s no foreman breathing down your neck. You don’t have a ten-engines-a-day nut to crack like the sweat shops cranking out those shoddy lo-buck rebuilts. When you build your own engine there is only you and the tools and the parts. There is absolutely no reason for you to settle for less than the very best you are capable of doing.

PULLING IT ALL TOGETHER

I’m building a low rpm, high torque engine to run on natural gas. After gauging the case, finding a suitable cam gear ( a +1) and modifying it to accept cap screws, I did a pre-assembly and started clocking the cam, a Schneider 248-F. After clocking it a couple of times my notes read:

IO = 2 IC = 38 EO = 38 EC = 2

Unfortunately the cam tag read: ‘4-36, 40-0' Translated, that meant

IO = 4 IC = 36 EO = 40 EC = 0

The numbers say the cam matches its specs, which is good, but they also say there is an indexing error of 2 degrees (retarded) measured at the crankshaft. To dial in the cam it needs one degree of advance.

Did that come across? Your crankshaft rotates twice in the time your camshaft rotates once. When the crankshaft rotates 720 degrees, the cam shaft rotates only 360. Two degrees of rotation at the crankshaft translates into one degree of rotation at the cam shaft.

Once we know how much the cam needs to be adjusted we have to figure out which direction it should be rotated. The gearing between the crankshaft and the cam causes the cam to rotate in opposite directions. Since the crankshaft rotates clockwise, to advance the cam we need to rotate it to the left or anti-clockwise. To retard it we would move it to the right. Always keep in mind that any adjustment is applied to the camshaft and not the gear. The gear remains fixed, relative to the crankshaft.

Once we know how much the cam needs to be rotated and in which direction, we need to know how far that amount of rotation is in dimensional terms. To figure it out we simply have ourselves a piece of pie. Or rather, π. (See the drawing.)

The radius of the bolting circle on the flange of the cam is about an inch and an eighth, something like 2.244" on the diameter. One degree on a diameter of 2.244" is about .019". That tells us how far we need to rotate the cam, which is fine if you happen to be a cap screw. For humans, a handier measure is to use the outer diameter of the cam’s bolting flange, the thing that sockets into the recess on the back of the cam gear. One degree on the diameter of the flange is about .024.” If we scribe a line across the cam’s flange and the gear, we can gauge degrees of rotation by measuring the displacement between the scribed lines and dividing by 0.024."

DIALING IN YOUR CAM

The term dialing in the cam comes from watching the needle of your dial indicator ooze toward zero as you make the adjustment. Given everything you’ve done to arrive at this point, the dialing-in procedure is anticlimactic, a hoo-hum no-brainer. Simply bring the degree wheel to whatever set-point you’re using, loosen the cam gear’s cap screws, lock the crank in position and rotate the cam until your dial indicator reads zero. For example, let’s say we’re using IO as our set point. Our clock has been zeroed at the .050 checking clearance. With the degree wheel set to IO, the dial indicator should read zero. It doesn’t but that’s okay; that’s why we’re here. Simply lock the crankshaft at the set point (IO in this case), loosen the cap screws and rotate the cam while watching the dial. When the needle touches zero the cam is at IO. And so is the crank. And that’s what we want. Tighten down the cap screws and move on to setting up your valve train geometry.

The main objective of this article is this one procedure, so allow me to go over it again. All of your work up to this point has been to cause the position of the needle on the dial indicator to reflect the difference between the indexing of the crank and the indexing of the cam. At this point you don’t care what that difference is, you’ve already measured it and determined it’s within your range of adjustability. The crankshaft is locked in position but the camshaft is not. The dial indicator, which is pointing at a figure other than zero, is riding on the cam. So you reach in through the oil pump hole with a tool and twist the camshaft – in whatever direction – until the needle reads zero.

If your cam was accurately fitted, dial indicator firmly mounted, TDC accurately determined and the degree wheel accurately indexed, zeroing your clock will dial in your cam to better than one-quarter of a degree. No myths, no math, no science and no expensive tools.

What makes this procedure a no-brainer is being able to adjust the cam when it’s inside the crankcase and its gear is locked in mesh with the crankshaft. The ability to do this -- the secret of turning a tough job into a five-minute no-brainer -- depends on two factors. The first is some provision that allows the cam to be rotated relative to its gear without removing the cam from the crankcase. There are a number of ways to accomplish this and I’ve described two of them below. The second factor is that the flange of the cam must be a tight fit in the spigot on the gear. If it’s not, when you loosen the fasteners and rotate the cam, any slop will be transferred to the gear. In effect, you’ve just shoved the gear to one side. The axis of the gear’s rotation is now different from that of the cam. That means the cam gear’s rate of rotation will not be uniform. This leads to a whole shopping list of problems including accelerated wear and poor performance.

DIAL-IN ADJUSTABILITY

In my opinion, the best method of achieving dial-in adjustability is by machining the bolting hole and its counterbore on an arc. (See the drawing.) Since this cuts away a good deal of the cam gear, stepped steel washers are used under the cap screws. The steel washers, commonly called cam buttons are symmetrical. Thanks to the use of cam buttons, this method is strong enough for all but the most powerful engines, plus it offers the convenience of being able to dial in the cam while it’s in the crankcase.

Gene Berg used to sell a good dial-in cam gear. And in any size you needed, so long as it was for one of his cams. If you don’t want to make one up yourself, give Clyde a call, see if he still has some.

If you prefer to roll your own by modifying a stock gear (which is what I do) you’ll probably find the easiest way is to use a rotary table and a milling machine, but other methods will work. I saw a guy in Baja doing a nice job on a cam gear using a router with the cam gear mounted in a wooden fixture. You wouldn’t think it would work but it did a pretty good job. I guess when you don’t have a shop full of tools you have to be a little smarter than the average bear.

THE FAT HOLE METHOD

Another way to achieve dial-in adjustability is by simply starting out with a fat hole for your fasteners. An M8 cap screw has a diameter of only 7.8mm, which means it has .004" of clearance in a 5/16" hole. Open up the hole to 11/32" and you end up with .0358" of clearance for a .308" bolt. You may now adjust the cam by nearly a full degree, plus or minus. That’s enough to reduce a two degree index error at the crank to under half a degree, good enough for most work.

Everyone who understands the need to dial in their cam has used the fat hole method at one time or another. Unfortunately, some engine builders use only this method, opening up the bolt holes to a whopping .375". Used with a small washer, that gives them about sixty-thou of slop, a full +/- three degrees at the crank, enough to dial in almost any cam. But counterboring weakens the cam gear and opening up the bolt hole makes matter worse. The risk here is that, having successfully used the fat hole method to build engines needing only a small amount of adjustment, they eventually try hogging out a huge hole and pushing the cap screw clear over to one side. Now it’s going it fail. And take the engine with it.

NON-DIAL-IN METHODS OF ADJUSTABILITY

The following methods of adjusting the cam gear require removing the cam from the engine to do the adjustment. After adjusting the gear always repeat the clocking procedure. Indeed, when dialing in a cam, regardless of the method used, it’s a good idea to verify the timing. Dialing in a cam is surprisingly easy once you learn how. Dialing it in wrong is even easier and there’s no training required.

CAM BUTTON METHOD

First off, they aren’t buttons they’re stepped steel washers. Eccentric steel washers, in this case. (See the drawings.) How they came to be used is pretty obvious once you’ve dialed in a few cams using the fat hole method. It has to do with the fact that counterboring weakens the cam gear and with how fat a hole can you go. The answer is not fat enough, without causing the gear to fail. But let’s say you hog out a 7/16" hole in the middle of your 3/4" counterbore. To provide support for the cap screw and prevent failure of the cam gear, you make up a stepped washer as shown in the drawing.

If you make up the washer so the pilot – the stepped portion -- is concentric to the bolt hole, your cam will be indexed straight up, without advance or retard. You may then install the cam and clock it. If clocking the cam sez you need to move it two degrees, you go over to the lathe and make up three new buttons with the hole offset by forty thou. That may sound like a major chore but trust me here, making eccentric buttons is a trivial task, assuming you have access to a lathe and know how to twirl the knobs. An 8th grader in metal shop class can crank out half a dozen engine’s worth of cam buttons before the bell rings.

Once you know how much adjustment you need and have the buttons in hand it’s usually quicker to tear down the engine rather than try to work through the oil pump bore. Yeah I know; some guys say it takes them only a few minutes. Your mileage may vary.

FILE TO FIT

Yup. Just like it sez. Start with a stock cam of the correct size, counterbore to 3/4", open it up to 5/16", install on the camshaft, assemble the case and clock the cam. When you know how much and which way it needs to move, tear it down and go at the bolt holes with a chain saw file, moving the hole in the direction you want the cam to move .020" for each degree.

If you don’t have a lathe or a box full of cam buttons, so long as the required adjustment is no more than 4 degrees at the crank, filing the gear to fit is the lo-buck winner. Four degrees at the crank is two at the cam so you move the hole forty-thou; about 1mm. If you go more than forty-thou you’ll have to use a smaller washer under your cap screw and things are liable to break.

Filing to fit isn’t the smartest solution. Buttons are stronger and more accurate. But moving the bolt holes with a file is the cheapest solution and when you’re young you can’t always afford to be smart.

WOODRUFF KEY METHOD

When you’re forced to use a pre-assembled cam/gear combo the use of an offset Woodruff key is your most practical means of making any adjustment to the timing. Volkswagen used to offer offset Woodruff keys as a special order item. They came in about five sizes and cost the same as the straight key, except you had to wait for it.

A big joke back then was to ask a new parts guy for Woodruff with a minus two degree offset and watch him go flipping through his book. This was a real knee slapper, on the same order as a left-handed monkey wrench. (Offset Woodruff keys don’t come as plus or minus... you simply install it with the overhang on the right-hand side of the slot to retard the cam, on the left to advance it. In other words, as with the monkey wrench, you simply turned the thing over.)

Offset keys were catalogued by degrees at the cam which could lead to confusion since American mechanics normally dial in the cam relative to crankshaft degrees. No problem, just divide your crankshaft-based index error by two. Of course, it’s even less of a problem nowadays since such parts are no longer available.

An automotive machinist can make any kind of Woodruff key you want, with any amount of offset up to a maximum of about 10 degrees (ie, an offset approximately half the width of the key). But expect to pay a good price for it. It might cost a bit less if he starts with standard #1210 Woodruff key, the closest match to the metric size used in your engine, but he can only give you about 4 degrees because that’s all the width he has to work with, a #1210 being 3/8" wide. And it’s still going to cost you something because it’s a fairly tricky bit of work to set up. Fortunately, an adjustment range of +/- 4 degrees is usually more than enough to cover the usual range of cam timing.

If you need an offset Woodruff key, give the machinist the driver gear and a new key and tell him how much offset you need in crankshaft degrees. He’ll use the stock parts to figure out the dimensions of the new key. As a point of interest, the bore of the driver gear is about 1.645" which tells you one degree is about .01435" at the Woodruff key (ie, 1.645 times pi, divided by 360 equals one degree). The amount of the overhang is equal to the number of degrees you want to change the timing times .0144". I’ve also included a drawing of the stock Woodruff key but don’t take the dimensions as gospel; measure it for yourself.

AFTER-MARKET ADJUSTABLE CAM GEARS

If you want to try an adjustable after-market cam gear I strongly suggest you keep your money in your jeans until you’ve inspected the part. Take your cam with you and try it in the spigot. You want a good tight fit. Then make sure the buttons fit the counterbore & hole in the cam. Finally, bolt it to your cam to insure the holes are properly aligned.

MAKING IT GOOD

Okay, so you got the cam dialed in to within a gnat’s a**. What’s going to keep it there?

After setting your cam timing, dismantle the engine, remove the cam, put it face down on the bench and make a couple of witness marks where the flange of the camshaft nests into the recess on the back of the cam gear. Make these distinctive from any other marks and make a note of their location in your documentation package. If you need to dismantle the cam from the gear, the marks will insure it goes back together properly.

Examine the cam-gear cap screws. Are they drilled for safety wire? Have you got one of those little drill blocks? Can you even use safety wire on the fasteners? (If you can, you should.)

Remove the cap screws one at a time. Clean them with MEK. Using a Q-tip, clean the threaded bore in the cam shaft. Reassemble using high strength Loctite and lockwashers. Torque to 10 ft-lb. When you’ve cleaned, Loctited and torqued all three, retorque to 14 ft-lbs. If possible, install safety wire.

-30-

(Ed.Note: This article was published in 2001 the Nov. and Dec. issues of 'VW Trends' magazine and was supported by about two dozen illustrations.)

Saturday, December 30, 2006

VW - How to NOT buy Tires

HOW TO NOT BUY TIRES

4 June 2003

I spent three hours today not buying tires.

The joke is that I really wanted to buy some. I had lotsa money, knew what I wanted and wasn't in a rush. But I couldn't find anyone who wanted to sell'um as much I wanted to buy'um.

1965 Volkswagen bus. 14" rims. LT 195-75's 4 ply (actual count) minimum. I was willing to pay a hundred bucks each. And I wanted two, please.

Even had it all wrote down on a 3 x 5 card. Didn't help at all.

First outfit, the guy read the card, fiddled with his keyboard, comes up with $295 for all four. That is, four P 185-75's. Two-ply passenger car tires. With the usual “Four Ply Rating” bullshit that is as useless as tits on a boar when you own a vehicle that requires tires having the stiffer four-ply sidewalls.

Just what part of LT 195-75 didn't he understand? "That's not the right tire for your vehicle, sir." Gee, I wish someone had told me that three hundred thousand miles ago. Since he didn't know the difference between two and four I thanked him and eased on out the door.

Next outfit wanted my name, didn't even look at the card I'd written out.

"I just want a price, not an appointment."

He sez, "I still need your name for our computer." His computer is still longing for my name.

Next place, the kid tells me they don't make LT 195's any more... but he's got something even better... I'm still laughing as I go out the door.

Finally found an outfit that seemed to know what they were doing. Quoted me a price... kinda high ... that included everything from 'Road Failure Insurance' to 'State Required Disposal Fee.' I told them I'd keep the old tires. They said they couldn't allow me to do that. They are required by law to see that all tires are properly disposed of. For a fee, of course. Which means people are not allowed to carry away their used tires.

"Lemme show you how it's done," I told him as I got back in my bus and drove away on my used tires.

(I'm still wondering about that 'Road Failure' business. You don't suppose they meant TIRE failure, do you? Hell of a thing, having a road fail on you.)

Having exhausted the local new-tire emporiums I tried a couple of llantaria's, used tire guys where it helps if you speak Spanish. No luck finding LT's of my required size. I bought a couple of new valve stems and puttered my way back home.

Dug through the mess out behind the shop, found two old tires that had a bit more tread than the ones presently mounted on the bus, spent the rest of the day dismounting the old ones, cleaning up the rims, remounting the 'new' old ones. Hell of a chore if you don't have a tire machine.

Since I had the nose of the bus jacked up I gave her a lube job, adjusted the link pins and brakes. Mounted my refurbished wheels and checked the toe-in, took off the front belly pan and lubed the accelerator, gear shift & e-brake. Cleaned things up a bit. Just frutzing around.

Not a bad way to spend a day but what I really wanted was some new tires.

Maybe in another life. Or another town.

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15 June 2003

You don't need to be a rocket scientist to buy tires. The manufacturer tells you what kind of skins your ride should be wearing so there's really no mystery at all as to the size and load-rating.

Experience plays a role, as does where & how you drive, but mostly in the selection of a particular brand of tire. Having two new tires blow-out on their first trip to Baja is pretty good evidence that tires from some manufacturers are simply not suitable for my kind of traveling.

With all of that in your war-bag you should have no trouble buying tires. But about ten days ago I posted a little billy-dew to this Newsgroup describing how local tire dealers kept trying to sell me what they had instead of what I wanted. I finally found a shop that had the size & brand I wanted only to have them try to pad the bill with fallacious charges. So I patched up some old tires and drove on.

But I still needed some new rubber; in fact, I've been budgeting to replace all four tires in preparation for a trip I'm planning to make this fall.

I ordered a pair of Yokohama Y356 LT195/75-14's from the Tire Rack, over in Las Vegas. Shipped via UPS then mounted & balanced by a local shop that's set up for wide-fives, the cost came to a little over $80 per tire.

Did I save any money? I've no idea. I budgeted $200 for two new tires. I now have them. Come August, I'll get two more. No hassles, no valueless warranties, useless road-hazard policies and no lies from idiot salesmen. After a good bath the old tires will be donated to the anti-erosion program run by a local water conservation district.

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June 2006

Someone wrote: > It has been three years since you installed a set of Yokohama Y356 LT195/75-14. > I wonder how they are holding up?

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Dear Someone (and the Group)

(He's referring to my 'How Not To Buy Tires' posted back in 2003.)

Originally, it wasn't a full set, just a pair. I squeezed the piggy bank for the other pair that fall.

They appear to be holding up just fine, although I haven't put many miles on them (about 20k). I haven't had any flats nor blow-outs and they've seen a fair number of miles off-pavement. I made a couple of trips along old Highway 66 from Ludlow to Fenner, and down the road alongside the tracks between Cadiz and Goffs. I also did a trip up Milpitas Wash looking for an old mining site I'd seen from the air but got stuck and thought I'd have to homestead the place before I could dig myself out. Wasn't the tires fault; I went nosing up a dry wash toward the Chocolate Mountains and got into some fine sand. (Except for dunes or down in the washes, the desert is mostly gravel.) But I wasn't the only one :-) A bit farther north, up near the Mule Mountains, I found a Jeep buried to the axels. Been there a while and pretty well stripped. I can't figure out how he managed to get stuck like that -- the thing was really dug in.

-Bob Hoover

VW - TULZ Part Ten

TULZ – Part Ten

FRONT END MAINTENANCE & ALIGNMENT

The steering and front suspension on older Volkswagens needs a lot of attention to keep it working properly, reflecting the 1930's origin of the design. In keeping with the design philosophies of that era the steering and suspension systems are overbuilt by modern-day standards. Although it takes more work to keep these antique vehicles running, the tasks are relatively simple. Designed to be overhauled with a minimum of tooling, the robust nature of the components makes it possible to keep these antiques safely on the road virtually forever.

Unfortunately, the above does not apply to the Super beetle. I've found their MacPherson strut front ends to be less robust than ball joints and down right fragile compared to king pins, making the Super unsuitable for the kind of traveling I do. The poor suspension is made even worse by the steering system used on the '70 through '74 models, a overly complex design that Volkswagen abandoned in favor of the later rack & pinion system.

(So how does the Mexican-built beetle - - with it’s MacPherson-strut front-end - - manage to hold up so well? Crawl under and take a look. The Mexican-built front-end has additional re-enforcement plates not found on the hammer-head chassis from Germany.)

In the automotive world the last person to work on a vehicle is often held liable for what happens next, even if it happens to a component they did NOT work on. Do a tune up and get sued because the kid runs off the road? Sounds crazy but it can happen. This is clearly unfair but so is a great deal of automotive consumer legislation. The question of liability causes me to avoid working on Super Beetles or any Volkswagen with a modified suspension system. My comments in this article, indeed, for the entire series of TULZ articles, are addressed mostly toward earlier model stock Volkswagens.

Whatever your vehicle, before you can maintain its front end you need to understand how it works. You should be able to make a sketch, either schematic or pictorial, depicting all of the components in your front end and know their names. All of the manuals contain this information in one form or another but I think the novice will find the 'Idiot' book to be the most helpful for this task.

Now let's go play. But before we do, note that I use a different sequence of diagnostic checks than does the 'Idiot' book. Try it both ways then decide for yourself.

Jack up the front end, pop off the grease caps on the front wheels, take the slack out of the bearings then jack up the front end and SHAKE THE WHEEL. You're looking for play; for looseness. Try to lift the wheel up & down. Then try to rock it back & forth. Finally, grab it at 6 & 12 and try to rock the wheel in & out. A tiny bit of up & down is okay. Anything else sez repair or adjustment is needed. No play? Then skip on down to the steering check.

When you feel looseness the next step is to figure out WHAT needs to be repaired. As a general rule, any up & down or in & out play indicates wear in the SUSPENSION; in your ball joints or king pins. Any back & forth movement indicates wear in your STEERING. (Super beetles are a special case. In & out movement may indicate wear in your control-arm bushings.)

On old bugs & buses if you feel a lot of in & out play you may need only to adjust your link pins. Link pin adjustment is a simple chore, something you're supposed to do every other oil change (No, not 'Every 6000 miles.') Read the fine print. There's a whole list of things that require you to change the oil more often. The list of exceptions – driving in dusty conditions, on unpaved roads and so forth – also applies to your other periodic maintenance requirements. So use the oil change interval as a guide. And every other oil change, WHATEVER THAT INTERVAL MAY BE, lube and adjust your link pins.

King-pin spindles use bushings for the king pin and either bushings or needle bearings for the link pins, depending on the model year & vehicle type. Rebuilding king pins consists of removing the spindle from the trailing arms, taking the spindle apart, pressing out the old bushings, pressing in new ones then reaming them to fit the new king pin. The Haynes manual does an especially good job with king pins.

The new king pin and bushings come as a kit of parts but if you're a machinist you can make your own. The link pins also come as a kit except on later models there's no reaming; they come with needle bearings instead of bushings and the needle bearings are already the proper fit. See the real shop manual for your particular ride. A number of fellows who have rebuilt their front ends have described doing so in messages you'll find in the various archives on the Internet.

Newer buses & bugs don't got link pins. Them got ball joints. That's where you'll find most of your up & down play. See the manuals for the specs but anything more than a tad is bad.

You can keep a link-pin front end running just about forever but once a ball joint goes bad you got a major headache. Oh, you can do them. In fact, they're easier to do than rebuilding a link-pin spindle. But you need a hydraulic press and some fixtures. And you gotta pretty much dismantle the front end to get at them, which can take additional special tools. The reason for the additional dismantling is because the ball-joints are installed on the trailing arms, meaning you've got to remove the trailing arms in order to replace the ball joints. Removing the trailing arms is a no-brainer but the stabilizer bar is clamped to the lower trailing arms and new, replacement clamps are no longer available. If you're careful dismantling the old clamps they can be reused but a better option is to use Sway-A-Way bolted clamps. Cost is about thirty bucks for all four. I don't know if they've got them for buses.

Muir and a lot of others say ball joints should only be replaced by a VW dealer. That may have been valid back when John was alive but today such advice is little more than a bad joke. Nowadays the typical Volkswagen dealer wants nothing to do with you and your antique ride. They don't carry your ball joints, they don't have the tools to replace them and their mechanics are not familiar with your vehicle.

If you take your veedub to the dealer to have the ball joints replaced, odds are they will order rebuilt trailing arms from an after-market supplier who specializes in VW front end components. The trailing arms would arrive with the ball joints already installed, reducing the repair job to nothing more than dismantling and reassembly, a task anyone can do. Indeed, you can do exactly the same, saving yourself some serious bucks along the way. Check the ads in the magazines for outfits offering rebuilt trailing arms.

Buying rebuilt trailing arms is probably the most common method of repairing front ends but there's really no reason you can't do the entire job yourself. Ball joints are inexpensive, which is good because they don't last very long. No grease nipple. 'Lifetime' part. An hydraulic press makes their replacement easier but a twenty-ton bottle jack is strong enough to pop the ball joints out of the arms and to press new ones back in, assuming you have a suitable pressing frame and the necessary fixtures to support the trailing arms while you do the pressing. You can make the required fixtures from sections of steel pipe of the proper diameter. The sections of pipe have to be notched & shaped to accept the trailing arms (you need a left & right fixture for each). The notching is done with an angle grinder and the trailing arms themselves serve as the pattern. I was out of Prussian blue so I begged a tube of lipstick from my wife to use as spotting compound. (You press the parts together then grind off the high spots, as shown by where the lipstick transfers from the trailing arm to the fixture.)

The pressing frame is just a rectangle about two feet high by a foot wide fabricated from sturdy (2 x 4 x 1/4) steel 'C' section, welded or bolted together at the corners with gussets. (I say 'about' because it has to be sized to accommodate the height of the fixtures you make and the particular jack you use.) In use, you position the old ball joint atop a short section of pipe that serves as the 'drop space' to receive the ball joint when you press it out, then put the pipe-section driver on the bottom of the ball joint and seat the hydraulic jack atop that, extending the jack until it contacts top of the frame. Then just pump the jack. The old ball joint will be pressed out of the trailing arm. Installing the new ball joints calls for a bit more care. There is an alignment notch that must be taken into consideration, your fixtures must be a very nice fit and the trailing arm needs to be propped up to keep everything aligned. It sounds sorta hay-wired but it works okay. The first time I did it, it took about four hours to make the fixtures and another hour to replace the four ball joints.

SLOPPY STEERING

Now let's check the steering. Start by lowering the vehicle. Your front wheel bearings are still tight (ie, all the play has been taken out; see the previous procedure). Your ride is parked, wheels on the ground, engine off, e-brake set. Reach in through the driver's side window and use ONE FINGER to turn the steering wheel.

How far did it go before you felt resistance?

That's too far :-)

It should only go about ONE INCH. Time to go find your partner, because diagnosis of steering problems takes two people, one to move the steering wheel, the other to figure out where the lost motion is going.

Your steering gets sloppy because of accumulated wear, mostly in the steering gearbox. See that little adjusting screw on the steering box? LEAVE IT THE HELL ALONE. That governs engagement of the roller with the worm and odds are, it's okay. (The roller adjusting screw wanders around from model to model. It's on the top of the steering gear box in bugs, on the side for buses.)

There are three main places for wear to accumulate inside the steering gearbox. Two of them are on the roller, the other is axial play in the worm, which accumulates wear more rapidly than the others due to the gear ratio between them. But in recent years an entirely new problem has cropped up, one that is due entirely to age and as such, is not covered in any of the manuals.

On early bugs & Ghias the steering gear is connected to the steering wheel through a compliant coupling. Before you start adjusting anything, inspect the coupling. That takes two people, one to move the steering wheel while you inspect the coupling. What you're looking for is any deterioration of the rubber puck in the universal joint. Also inspect for any motion on one side of the coupling that does NOT get transmitted to the other side.

Make sense? The coupling is a rubber disk. Two bolts hold it to the steering wheel shaft, another two hold it to the steering gearbox. If the coupling is bad you end up with a lot of play in your steering wheel even though there is absolutely nothing wrong with your tie-rod ends or steering gear.

So check it. Look for axial motion in the gear box shaft as the steering wheel is turned. (If the steering joint looks suspicious, pull the fuel tank and examine it more closely.) (Note: Axial means in & out; motion along the axis of the part. Radial motion means movement ACROSS the axis of the part; along the radius of the part.)

Early VW steering uses a worm & roller arrangement and is meant to be periodically adjusted to accommodate wear. The worm gear is on the end of the shaft to the steering wheel; when you turn the steering wheel you rotate the worm gear. The worm gear engages a roller gear that gets pushed from side to side as the worm turns. The side-to-side push is what's used to move the wheels.

Most of the slop in your steering gear is due to wear on the shim at the upper end of the worm gear and is adjusted by loosening the large lock- ring on the bottom of the steering gear box then turning the deep multi- point socket-type adjusting nut. Odds are, you don't have the wrench for the locking ring nor the socket for the adjuster. But you can make both of them.

To make a wrench, draw the shape of the nut onto a suitable piece of steel then use the best available means to create the hole. The usual procedure is to drill a series of small holes then hold the blank in a vise and use a chisel to 'connect' the drilled holes. Once you've made the opening you simply file the hole to fit. Since you probably will be using mild steel, make a box-end rather than an open-end wrench.

The internal multi-point socket can be made using any commonly available METAL-FILLED epoxy. To keep the epoxy from sticking to the nut, spray the cavity with silicone lubricant. The keep the epoxy from oozing out before it cures, use tape to secure waxed paper & cardboard over the epoxy. To provide a means of turning the newly molded socket, you may insert a large-diameter coupling nut into the epoxy or fabricate a more elaborate matrix by welding a nut to a steel plate ground to almost fit the socket. In this latter case the metal-filled epoxy must bond to the matrix so provide plenty of keying surfaces and keep the matrix perfectly clean.

The adjustment is straight forward: Take up the slack until you have the spec'd one-inch of play measured at the steering wheel. There is some interaction with the roller gear so you may need to make a SMALL adjustment there as well. But be careful. You can force the roller into such tight engagement with the worm that it will cause the steering to bind. You'll discover this when you go around a corner… and keep right on turning, up over the sidewalk, through the drugstore and back out onto the street, round-and-round you go. It can ruin your whole day.

The Haynes manual (#159) does an especially good job of illustrating the steering gearbox adjustment procedure.

Lost motion in your tie-rod ends usually appears as the rod-end being pushed up or down or leaning to one side instead of smoothly transmitting the push or pull. If you grasp the suspect rod-end in your fist and squeeze tight while your partner moves the steering wheel, the play in the rod-end will be clearly evident.

Replacing tie rod ends are a no-brainer. You unscrew the old ones, screw in the new ones. But there are a couple of Gotchas! The first is how to get those suckers apart and here again, you need the proper tools. One tool you DON'T want to use is the beloved 'pickle-fork'. (You'll end up bending a tie-rod.)

The proper tool for popping loose ball joints and tie-rod ends is a fulcrum-type press. You slide it on the joint, turn the big bolt then give the SIDE of the eye a sharp rap with a SMALL hammer. The shock causes the stressed parts to pop apart like magic. You loosen the nut but leave it on the fitting to protect the thread.

Nowadays its getting hard to find just the tie-rod ends. They want to sell you the whole tie-rod. If that's all you can get, fine. They've also stopped putting Zerks on the tie-rod ends. Instead, they are 'Lifetime' parts, meaning they'll only last about half as long as they used to. Progress, eh? :-)

SWING ARM PROBLEMS

This applies only to Transporters.

In the bus, the steering gearbox is in front of the torsion bar housings, what most folks call the front axle assembly (it's actually part of the front suspension system). But the steering tie-rods are BEHIND the axle. To transfer the motion from the steering gear to the wheels Volkswagen was forced to use a different arrangement than they used on the sedans and Ghias.

The swing arm pivots on a pin supported by bushings. The pivot is highly stressed and sees a lot of motion, resulting in fairly rapid wear of the bushings. This wear is a major cause of sloppy steering in buses.

When the wear is minor you'll see a slight cocking of the swing arm as the steering wheel is turned. That's all it takes to totally screw things up.

When the wear is extreme you can actually rattle the swing arm with your hand. IF you find one this bad, DON'T DRIVE IT.

The repair is similar to doing your king pins in that you remove the old bushings, press in new ones, ream them to size and install a new pivot pin. Read all of the manuals then decide how you want to tackle the task. You'll probably end up following the procedure in the 'Idiot' book. I prefer to pull the whole front axle and simply swap it, partly because I've got a spare but mostly because I do better work standing up than lying down

FRONT END ALIGNMENT

After working on your front end you need to check the alignment and you'll probably hear more bullshit – and waste more money – on this task than any other of your many periodic maintenance requirements.

The first Myth and money-waster is that the work is so esoteric and of such precision that it can only be done by an alignment shop. Not true; not a bit of it.

The truth is, of the four factors effecting your alignment (caster, camber, toe angle and king-pin inclination), two of them (caster and king pin inclination angle [the term applies to all vehicles, even those without king-pins]) are not adjustable in the normal sense; they are built-in to the Volkswagen front axle assembly and unless you've suffered collision damage or modified your suspension, caster and king-pin inclination are fixed; there is no adjustment, no matter what the fellow at the alignment shop has told you.

Of the remaining two factors, you set the camber when you rebuild your king pins or replace your ball-joints. With king pins, the camber angle is set using shims and all of the manuals give the appropriate shim-stack data. All you need to do is make sure the shims are NEW (ie, of the proper thickness) and check the result with a protractor to insure camber is correct when you are done.

With ball joints, camber is adjusted by turning the eccentric barrel on the spindle in which the upper ball joint pin is mounted. Here again, you need a protractor of some sort. The spec for camber is about half a degree (check your manual). You can buy inexpensive (ie, about $30) wheel-alignment protractors that are accurate to about one-quarter of a degree (J. C. Whitney carries them) or you can make your own using plywood and a plumb-bob that is accurate to about three seconds of arc [ie, about one-twentieth of a degree] (see the article titled 'The Camber Checker Thingee' in the archives of the Type 2 Mailing List [www.type2.com] ).

That leaves only your toe angle.

Your toe-angle will change as wear accumulates in your front end and steering. This is normal. So you check it periodically. This too is normal. I do it every other oil change because on my old bus, that's when I adjust my link pins. Any time you adjust your link pins you will probably find your toe angle has changed slightly. So you adjust it.

To adjust your toe angle you measure the difference between the front and rear edges of the rims of your front wheels. The wheels should be slightly pigeon-toed. With fifteen inch rims, the front edges should be about an eighth of an inch closer together than the back edges. To make it so you simply loosen a tie rod and turn it. Making the tie rod shorter will pull the rear edges IN forcing the front edges OUT. Turning the tie rod in the opposite direction (ie, making it LONGER) will have the opposite effect.

Read the toe-in adjustment procedure in the 'Idiot' book. It's as clearly written as most.

Are you all done? Then adjust your front wheel bearings, put the grease covers back on and safety the speedo cable. Since the wheels are in the air you might as well adjust the brakes, too.

-Bob Hoover
-10 May 2K

Thursday, December 28, 2006

VW - TULZ Part Nine

TULZ – Part Nine

Keeping Your Balance & Going Straight

When you buy new tires you always get them balanced, right? Sure you do. Everybody does.

And you have them rebalanced as the tread wears off, right? Of course you don't. Nobody does… except folks who like a good ride and thousands of 'free' miles from their tires.

Here's a harder one: Did you balance your brake drums? Howzabout your rotors? I mean, you balanced your tires, right? So when you install a new brake drum you take it down and have it balanced, right? Okay, so you don't balance your drums. But let me tell you why you should.

Your brake drums are castings. If the core that makes the hole for the axle gets misaligned during the casting process the casting comes out heavier on one side than the other. You never saw this sort of thing with German parts but today, with most of your parts coming from Mexico and Brazil where piece-rate labor is still common, it's a fairly frequent occurrence. Why? When folks are paid piece-rates, quality goes out the window. You see miscast cylinders, where the fins don't line up, and miscast wheel cylinders and lots of miscast brake drums. Even miscast cylinder heads. Hell of a problem.

Back in the Good Old Days, whenever that was, no auto-parts dealer would carry such junk because no mechanic in his right mind would buy it. But nowadays the typical buyer is a kid who shops only by price; he doesn't know enough to tell a good part from a bad one. And the dealer is there to fill the demand, right? Wanna guess what happens when folks start paying good money for bad parts? GOOD PARTS vanish from the marketplace. A basic rule of economics is that shoddy goods will drive quality goods out of the market, a fact pointed out by Adam Smith more than two hundred years ago.

The point of all this is that you could be driving around with wildly imbalanced brake drums, hammering out your bearings and pounding out your tie rods. But that's not the best part of this joke.

The punch line comes when you try to find good parts. You take your calipers and mikes to the dealer and, if they'll allow it, you check their stock of drums or cylinders or whatever and buy the best they have, which are still pretty bad. THEN you gotta pay to have them balanced and machined. By the time you get done your inexpensive parts end up costing far more than the quality parts they've driven out of the marketplace. Really kewl, eh? Saving all that money :-)

A nice example of this is seen in the stock muffler. Available from Mexico, it costs about $25 while the ones made in Germany cost about $45. Big savings, eh? Except the ones from Mexico often don't fit (!) Mexican mufflers are famous for the misalignment of the carb heater pipe, with buggered threads or even undrilled flanges. To make it fit properly you have to do a bit of heating and bending and drilling and tapping some threads. By the time that inexpensive, money-saving muffler is installed, the bill is more than if you'd opted for the German- made muffler. Welcome to reality :-)

But at least your wheels are straight, aren't they? Never over-torqued? Spin in a perfect circle without the least sign of wobble? Ummm.. well… okay. It's your ride.

Straight Wheels

First thing you do is take off one of your front wheels, tighten up the bearings and check to make sure the drum is true. (Yeah, we're checking the wheels but work with me here.) To do that, you rig yourself some sort of a fixture – a tool box will do – to hold a gauge, such as that sooper-sophisticated machinist's instrument the #2 Yaller Pencil (which is a Yellow Pencil for most folks, except it's not. Yellow. It's only painted yellow. But there it is.) (You may use a dial indicator if you wish, 'cept most guys don't got one.)

You slowly rotate the brake drum, searching for the high spot. When you find it, you extend the pencil to touch the drum at that point then fix the pencil in position and rotate the drum again, this time looking for the low spot. Ideally, you won't find one; high will be equal to low; the drum is true. But if you DO find a low spot, and if it is more than a few thousandths of an inch (use feeler gauges to measure the gap between the pencil point and the brake drum), you need to take the drum to a competent automotive machinist, explain the problem and have the mounting surface of the drum turned perpendicular to the bore.

Once you know the run-out of your drum, mark it clearly on the drum with chalk. Imagine the brake drum is the face of a clock. A five-hour face for old drums or a four-hour face for newer models. Use whatever notation you want so long as the data is clear. I show the run-out by each lug in thousandths of an inch with a plus or minus sign. Counting around from 'noon' it might look like this: +2, +1, 0, -1, +1.5. That tells me I've got three thou of run-out. (That is, the total magnitude of +2 plus –1.) Anything under .005, I can live with.

Once you know the run-out of the drum you install the wheell you're going to check, torquing it to spec in the proper criss-cross pattern. Move your gauge to pick off the run-out from the rim of the wheel and do the above test again, this time making notes of the run-out or if you're a slob like me, writing on the tire with chalk. Don't be surprised if you see a LOT of run-out. But whatever you see, you adjust the reading by the data you recorded for the drum, adding the negative values and subtracting the positives.

Did that come across? Let's say you gauged the wheel and recorded two thou of run-out at the same relative location you recorded three thou of run-out on the DRUM. Whatever your figure, part of it is the DRUM, not the WHEEL. So you need to cancel-out the drum's run-out from the wheel's run-out.

(What we're doing here is 'blueprinting' our rims. Since most of you don't have massive surface plates, spin fixtures or precision instruments, I've described a method of using a wheel as your spin fixture.)

So what can you get away with? See your manual for the exact spec but if it's more than a sixteenth of an inch, about 1.5mm (ie, about sixty- thou), it's too much.

What's the fix? There is none. You have to scrap the rim. Which is why Ford and Renault and Saab and lotsa other car makers stopped using this type of wheel. They are easily sprung and once bent, you can't straighten them, you just keep chasing the bend around the wheel.

What causes them to become sprung? If you mean what kind of DRIVING will spring a wide-five, cobblestones will do it. Or hitting a good chuckhole. But you don't even have to leave your driveway to damage your wheels. Over-torquing the lug bolts is enough to trash a wide-five rim. Good tire shops understand this and are careful to tighten Volkswagen wheels to the proper spec & sequence. Bad shops like to see how fast they can destroy your rims, using pneumatic tools set for 200 ft/lbs :-) If you'll examine the wheel you'll see that each lug bolt hole has a tapered rim. Over torquing flattens that rim and distorts the wheel.

Why is this important? Because the amount of run-out is how far the tire travels SIDEWAYS for every revolution. (Yeah, I know. That answer isn't scientifically correct. But it is FUNCTIONALLY ACCURATE.) So junk the bent rims. They're causing your tires to wear out a hell of a lot faster than they should but the real horror story is what those bent rims are doing to your suspension and steering.

About half the VW wheels you run into are bent out of spec, thanks to being over-torqued by idiots with pneumatic tools. To make things even crazier, a lot of after-market rims are out of spec even when brand new! A lot of kiddies get all bent outta shape when you tell them their wheels are. "Oh yeah? Well, if it's such a big deal how come I never see nothing about it in the magazines."

Good question.

The problem with 'wide-five' rims (wide six on some makes) has been recognized since about 1937 when Ford stopped using them. Yet you still hear a lot of instant experts telling the kiddies a bent wheel is no big deal. Read the manual. Decide for yourself. Keep in mind that the greater the amount of asymmetry, the greater the amount of tire wear. You can get sixty thousand miles and more from a set of tires on a Volkswagen with straight rims & drums. Or less than twenty thousand if you've got a serious wobble. (And don't even THINK of pushing that thing over 40mph or thereabouts.)

Unfortunately, with bent rims accelerated tire wear is only the tip of the iceberg. The real problem is what happens to the rest of that sideways energy generated by a bent rim. It is being dumped into your steering and suspension system, literally hammering them to death. I know a kid who was looking at his THIRD set of ball joints in six months when he sold his bug to the next sucker in line, disgusted with 'That piece of shit.' Alas, the only fecal matter in view was those lovingly polished chrome rims… that wobbled so badly you could see it even from the side.

Balancing Your Wheels

A bubble balancer works fine… up to about 120 miles per hour. So why does everyone use dynamic balancers? Two reasons: The first is cost. It takes less time to balance a wheel with an automated dynamic balancer. The second is also cost. You don't need any skill to run a dynamic balancer, just watch the pretty lights and be able to count from one to seven and know the inside of the rim from the outside. Ex-burger flippers planning a career change are welcome at most tire shops. If they're husky, that is :-)

Using a bubble balancer takes lots of patience and a fair degree of skill.

If you use a bubble balancer you'll need an adapter that supports a wide- five rim. Some balancers come with such adapters (J. C. Whitney sells one) or you can make your own using a wide-five adapter; any of them that has a round hole in the middle. But before you start balancing wheels you have to balance the adapter. Deburr the central hole then take it down to the balance shop and have it balanced to a gnat's ass or .1gm/cm, which ever is closer. Have it balanced without the hardware. Then balance the hardware. You can do that yourself using a gram scale. Just find the LIGHTEST of the lug bolts or nuts and file or grind the heads of the other four to match within half a gram, plus or minus. It's not nearly as hard as it sounds, the major problem being half of you haven't any idea in the blue-eyed world what I'm talking about :-)

Once you have a balanced adapter you zero the balancer. To do that you install it, permanently if possible, and true it up so the bubble is perfectly centered or quartered or whatever indicates zero on your particular balancer. Now you put the adapter onto the balancer and hope the sonofabitch reads the same. It won't. But it will if you gently raise the adapter, rotate it a few degrees and sit it back down. Keep doing that until you find the 'sweet spot,' where the bubble is nicely zeroed. When you do, mark that orientation on the cone & adapter and thereafter ALWAYS place the tire in that orientation. If you NEVER find the sweet spot, make one. Mark the orientation of the adapter to the cone THEN zero the balancer.

When you think you've got the balancer & adapter all trued up, check. Ask someone else to put the adapter on the cone and read the bubble. Come to understand the significance of parallax. When you're sure the thing is true, put a dab of fingernail polish on the adjuster screws.

To balance a wheel you bolt the adapter to the wheel, place it on the balancer then start herding the bubble to zero by sitting balance weights on the rim of the wheel. You'll quickly come to realize why everyone uses those quick & easy dynamic balancing machines :-) But you should also know that a bubble balancer can do a perfectly good job… if you do.

We're balancing our wheels because they are made out of balance. The rim has a hole in it to accommodate the tire's valve and the tire itself is never perfectly uniform in construction. Even at the slow speeds a tire rotates, the moment-arm is enough so that minor imbalances can have a major effect on how the vehicle steers and how quickly the steering components, suspension and tires wear out.

So you make sure you have straight wheels then you balance them and KEEP them balanced, checking them at least once a year in order to accommodate tread wear. Get a flat? Plug the hole? Then you gotta rebalance the wheel. No mysteries here, just simple old-fashioned Auto Shop 101.

(John Muir's 'Idiot' book contains a nifty method of balancing your wheels. Unfortunately, it doesn't work. But it does a nice job of measuring the drag of your oil seal & bearings.)

TIRE TOOLS

If you do a lot of traveling in the boondocks you're probably running tubes in your tires. Tubes are easy to patch and you don't need a Baja Tire Pump to seat the tire back onto the rim. (Baja Tire Pump. Tubeless tire has broken the bead. You can't pump it up. You're ninety miles from Nowhere, the temperature is a hundred in the shade and there ain't no shade. So you pour about two ounces of gasoline into the tire, slosh it around, let it lay there and vaporize. Then, from a few feet upwind, you toss the match. WHOOP! And the tire is tight to the rim. It doesn't do the tire much good… but you can always buy another tire, assuming you haven't died of thirst in the desert. PS – Don't set the tire on fire :-)

Patching a tubeless tire is pretty easy. You use a plug gun. J. C. Whitney sellzem. The trick is pumping it back up. Once it's seated on the rim both types need air.

Most of those little 12v air compressors are junk but they'll work… once or twice. If you're a serious traveler you probably carry a bottle of high- pressure air with a regulator, hose & tire chuck. The handiest air compressor is hard to find nowadays. It is a tiny one-cylinder compressor that screws into a spark plug hole. Unlike what you generally hear, they DON'T use the fuel-air mixture to pump up the tire; they only use the pressure of the compression stroke to drive the little piston, which pumps outside air into the tire. Displacement is typically one cubic inch or about 2.5 cfm at an idle but the thing will pump up to 300 psi, meaning it will fill even a big tire in a hurry. For down & dirty reliability, include an old-fashioned MANUAL tire pump in your kit if you're using tubes or air mattresses or whatever.

Most of your tire tools should travel as on-board spares. You need a tire pressure gauge, some spare valve cores and valve stem caps and the little tool that lets you remove a valve core. But the most important part of this particular kit is the box you carry it in. The valve cores are relatively fragile. Their small size and fragile nature often causes them to become lost in the depths of your tool kit to become damaged by the time you discover them. So carry them, suitably padded, in a little metal box. I use one that sez 'Altoids' on the lid. Some kinda breath mint, I think. A strip of tape will keep it closed. (I usta use a Prince Albert can but it got away from me and they let the Prince outta the can years ago.).

If you plan on patching tubes you'll need tire irons and a patch kit. If you use cold patches, replace the kit fairly often even if you don't use it. The cement tends to evaporate and the raw rubber tends to dry out. Read the Muir book if you've never patched a tube. For patching tubeless tires, the instructions come with the plug gun.

GOOD TIRES

For your bug or Ghia you can get by with passenger car tires but the Transporter is in fact a light truck and needs LT's (ie, light truck tires).

Conventional Wisdom says the VW bus gets blown all over the road. That's bullshit. It is a high-centered, high-profile vehicle but so is a Greyhound or a semi. How such vehicles handle side gusts is a reflection of their suspension, steering and tires.

Like any high-profile vehicle your VW Transporter needs tires with stiff sidewalls. In plain language that means tires with actual ply counts of four, six or eight. A 'Four-Ply Rating' addresses only the strength of the sidewall and not it’s stiffness.

Fitted with proper tires, with the steering up to spec and the front end properly aligned, a Volkswagen bus will typically handle cross-winds better than a lot of modern high-profile vehicles. So why the bad rep? Because with the proper tires and shocks and no play in the steering your Transporter will drive & feel exactly like what it is, a small truck. Yuppies got tender asses or something; they're always talking about the 'quality' of the ride, in which softer is better, having mistaken road-handling for toilet paper. Trucks are trucks. Try to make it ride like a car and you'll end up getting blown all over the road.

The typical VW on the road today is wearing the wrong tires, mounted on bent rims bolted to brake drums that are probably out of spec with regard to balance and run-out. The steering is sloppy and the front end probably hasn't been aligned since Jonah was a Seaman Deuce. The truth is, the typical VW owner has no idea how well their vehicle CAN drive. It was in bad condition when they got it and from that day to this they've spent most of their time making it look pretty rather than making it run good.

-Bob Hoover
-5 May 2K
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To All:

Today is Monday, 8 May 2K.

On Cinco de Mayo I posted Part Nine of the thingee on tools in which I said a bubble type wheel balancer works fine and that J. C. Whitney carried them. So far, so good.

Today a fellow called to ask if I'd ever actually balanced a wheel using a bubble balancer. That kinda got my dander up. So I told him 'Hell yes,' and offered to show him the balancer I use, just before I stuck it up his nose.

He back pedals a bit and explains that he bought a bubble balancer from J. C. Whitney some time ago and can't get it to work. Then this weekend someone mentioned my article and since he lives less than twenty miles away, virtually a next-door neighbor in motorized sudden California, he decided to give me a call.

After we chatted for a while I told him to bring the thing over to the shop and

let me take a look at it. So that's what he did.

The balancer he bought is J. C. Whitney part number 75xx2442B, the price about thirty dollars. For another five bucks he got an adapter for wide-five rims, JCW p/n 75xx2423B. (The 'xx' changes from one catalog to another.)

The thing is a total piece of shit. Don't buy it. It does not work. In fact, it CAN'T work.

Here's why: The principle involved here has to do with balancing a car tire atop a pivot. The level indicator is a bubble trapped in a viscous fluid inside a transparent plastic button that sits atop the center of the pivot- point. The pivot point is a steel ball bearing, hardened and polished and smooth as a mirror. The pivot sits atop a pivot shaft and that single pivot point supports the mass of the wheel.

There are several problems with this piece of junk but the most serious is the shaft on which that pivot point is supposed to balance. It is a hunk of cheap all-thread, 3/8"-16, foreign made crap, the threads shallow and ill- formed. Unfortunately, the threads are damaged and the ends, one of which is supposed to serve as the pivot point, were ragged, the marks of the shear still grossly evident. There is no way in the blue-eyed world this piece of crap can work.

The 'adapter' isn't much better. It is a shallow saucer-shape, stamped from a piece of sheet metal. It would be nice if it were round but it misses that by several thou. It would also be nice if it fit on the balancing cone but it doesn't do that either, finding equilibrium only when cocked at an angle.

Finally, the bubble-level is a cheap plastic thing that is supposed to sit atop the balancing cone. Except the top of the balancing cone ISN'T FLAT. The balancing cone is a Zamak casting with a rough, irregular edge where the equally shoddy little bubble- indicator is supposed to perch. Try as you might, there's no way to sit the bubble atop the cone without it being tilted.

Pure junk. Don't buy it. If you bought it, send it back. J. C. Whitney owes the public an apology for selling this kind of crap.

--------------------------------------------

The bubble balancer I have is mostly cast iron. The wide-five adapter is a pot-metal alloy but everything else is iron or steel. The bubble-level is brass & glass, the same sort of thing you see on a surveyor's transit, except end-on. The pivot is a hardened steel point that goes into a button of what appears to be carbide. The whole thing is about the size of a gallon can of paint. It bolts to a corner of the workbench when I need to balance a wheel. When not in use the bubble-balance tube goes into the tool chest with my mikes & stuff while the two-part cast iron balancer goes on the shelf. I've had it more than thirty years. I think it cost about fifty dollars but I honestly can't remember. I do recall that I bought it out of the J.C.Whitney catalog after seeing one being used to balance aircraft wheels.

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Okay, so there's this guy with his bubble balancer that don't work. He's had this thing for a while, not sure if the problem was him or the device but in either case it's too old now to return. So he's out thirty-five bucks.

So I fixed it.

The lathe wasn't set up for anything so it was a simple matter to make the fellow a pivot rod. I didn't have a piece of half-inch mild steel rod handy but I had some half-inch L-bolts, the things you put into concrete. Chucked one up, cut it off at about six inches, flipped it around and turned down the thread to about .365, chamfered the end, chased that at 16tpi with the regular cutting tool then chased that with a 3/8-16 die. Flipped it around, knocked off the tit with a file, used a Slocum to make a little pilot hole then let it ride on that while I turned a short taper down the shaft for an inch or so. Balance shaft. Took mebbe twenty minutes.

To make an adapter plate I took off the three-jaw, mounted the faceplate and bolted an 8x8 hunka half-inch aluminum tooling plate to it atop an old VW differential bearing race I use for a spacer. I just hogged right into it. Twelve-inch lathe, it'll cut some metal when it has to. The result was a lipped ring, the ID of which matched the slope of the balance cone, the OD matching the minimum span of a wide-five rim.

To flatten the rough casting I smeared some lipstick (!) on a corner of the surface plate, rubbed the rough casting on it then scraped it true. (Zamak -- pot-metal -- is a zinc-aluminum alloy. It scrapes easy.) [Yes, I got bluing. But I can never find it when I need it.]

He went home happy, albeit poorer :-)

Having given you guys a bum steer by pointing you toward J.C.Whitney I offer the following to make amends.

------------------------------------------------------------------------

Wanna make a Precision Bubble Balancer?

Start with a junked camshaft & gear. See the indentation in the end of the shaft? Go find a ball bearing to sit on there. Not too big. (No old camshaft handy? Then use pipe. Floor flange for the base, twelve-inch nipple for the upright, reducer to hold the ball bearing.)

You gotta level it so drill & tap three quarter-twenties equidistant around the gear. Or the floor flange. No taps & dies? Then glue it to a plywood base and put the three adjusters in the plywood. Buy some of those theaded inserts. (Don't laugh; it works.)

To level it, remove the ball bearing and replace it with your circular bubble level. Turn the quarter-twenty machine screws until you've centered the bubble. Okay; that's good enough.

To hold the wheel go find a three-pound coffee can. I use MJB but suit yourself. Make five ninety-degree angles, about three-quarter inch on a side. If you got some thin cheap aluminum angle stock, cut them outta that. If not, bend them up out of something. Gotta be strong enough to support the weight of the wheel.

Stuff the coffee can through the hole in your wide-five rim. Yeah, it's tight; push harder… there. Mark the five points where the lugs go. Pop- rivet your angles at those locations. Put your angles on the INSIDE of the can with their legs sticking OUTSIDE. The idea is for the wheel to sit on the tabs. Use countersunk pop-rivets if you gottem. Real rivets will also work. But you gotta keep the heads low or they'll cause the rim to hang up. (Honest, a 3 pound coffee can is a near-perfect fit to a wide- five.)

Stand the can on the tabs and find the center of the bottom, which is now the top but....

There's lots of ways to find the center of a circle; use which one you like the best. Drill a TINY hole right there, smack dab in the center of the bottom of the can. Now turn the can over. Sit it on a piece of softwood; plywood or something like that. See the hole in the bottom? Balance the ball bearing on the hole. (Okay, so debur it. Now balance the ball… okay, you do it.) Got it balanced? Now hit it. Use a hammer and a piece of wood for a drift. Just give it a rap. Not too hard. That should do it.

Test it. Put the ball bearing back on the pivot shaft and position the coffee can ON THE BALL BEARING. Balances, eh? :-)

Now check it. You can't use the bubble balance because of the bump you just raised in the bottom of the can, right where the bubble balance should sit. So put something over the bump. (I don't know! It's your shop, for crysakes! Howzabout a tuna can? Or that lid over there; try that… no, the one on the can of paint thinner… yeah! There ya go!)

Balanced? I didn't think so.

So balance it. Get some solder, cut off a little bit and crimp it to the bottom rim of the coffee can. When you get the bubble back in the center MARK EVERYTHING. Use fingernail polish. Put some on the solder balance weights you've crimped to the rim and dots of it to show the orientation of the bubble balance and the lid, can or whatever you're using as a base for the bubble.

Does it work?

Of course it does! VW wheels are better than two foot in diameter. Sixty miles an hour, they're only spinning eight, nine hundred rpm. Your coffee-can bubble balancer is more than accurate enough for that. A smaller pivot point would provide a bit more accuracy than does the ball bearing but it should be more than accurate enough.

Or you can buy one. But mebbe not from J.C.Whitney this time.

-Bob Hoover
-8 May 2K