Frequently Asked Questions

Find answers to Frequently Asked Questions for First Generation Firebirds that have been asked and answered on FGF. Special thanks needs to be given to all the FGF members who took the time to respond to other member's questions.

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Wheels, Brakes, and Axle - All

Short answer: You can run 15×7 wheels front and rear, but choose front tires carefully (a 235/60-15 might rub at full lock). These cars came with 14×6 (and optional 14×7); many members run 15×7 or 16×7, some 8″ in the rear. The bigger you go, the more critical offset and tire size become — measure your car.

Fit check: a tire must not touch the control arms/frame inside or the wheel lip outside, even at full suspension compression and full steering lock. Measure your wheel’s backspacing, then with the wheel off and the car’s weight on the lower control arm, use a straight-edge plus a cardboard “T” cut to your tire’s section width (offset for backspacing) to see where it would interfere at full lock and through suspension travel. Allow ~0.25–0.5″ for deflection.

Rebuilt Rally IIs (old centers welded to new rims, powder-coated) are available from Wheel Vintiques (Fresno, CA, 209-251-6957) in 14×6 to 15×10 and custom offsets — with trim rings, caps, and lugs; pricing through Summit or Jegs is a bit better than direct.

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Short answer: Whether 255s fit a 15×7 Rally II depends on how the car sits (sag/lowering). The catch is mostly tire height — check your clearance first. Tire diameters:

Tire Diameters
Size Diameter
205/70R14 (approx. stock) 25.3″
235/70R15 28.0″
235/60R15 26.1″
255/70R15 29.1″
255/60R15 27.0″
Up front, many run 225/60–70-15 (one runs 235/60-15 with only slight rubbing on steep/off-camber drives); a 255 (60 or 70) up front is too tall and will rub unless the car sits very high. In back, members run 255/60s, but a 7″ wheel is really too narrow for a 255 (center wear, tread won’t fully meet the road) — an 8″ wheel with ~4.5″ offset is better, and at 27″ tall, verify clearance. (Note: “255/90R15” in the question is almost certainly a 255/60R15 — a 90-series would be very tall and skinny.)

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Short answer: All 1967–69 Firebirds used the 8.2″ 10-bolt (a “BOP” Buick-Olds-Pontiac rear) — the size has nothing to do with posi. From ~1970–71 on, Firebirds used the corporate (Chevy) 8.5″ 10-bolt.

Beyond ring-gear size, the 8.2″ uses a weaker cone-type posi that retains at the axle/bearing end, while the 8.5″ uses a clutch-type posi with C-clips inside the carrier (among other differences) — the 8.5″ is the stronger unit.

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Short answer: Pontiac rear-axle housings can be identified by year using their date codes, stamped codes, and a few physical features. The 1969 axle ID codes differ from 1967–68 — the full table is below.

Identifying features by year:

  • 1967: the center section has the loops for A-body control-arm bushings plus leaf-spring perches and factory traction-bar brackets; a date code is cast into the center section.
  • 1968: dropped the control-arm loops and traction-bar mounts, but used the same codes as 1967.
  • 1969: the date-code position moved to the other side of the center section, and flattened spots were added on top of the axle tubes where the snubbers meet (1967–68 have none).
  • All three years carry a 2-letter stamped code about 3–5″ to the left of the center section, on the rear of the left (driver-side) axle tube — often hidden behind the steel brake line.

When identifying a rear end, check the cast date codes (same style as engine parts), the axle code (rear of left tube), spring-perch depth (1967 Monoplates are shallow), the extra traction-bar brackets (1967 only), and the flattened spots on top (1969 only).

1967, 1968, and 1969 Axle Identification Codes

Ratio

1967

1968

1969

Std. Diff. Code

Lock Diff. Code

Std. Diff. Code

Lock Diff. Code

Std. Diff. Code

Lock Diff. Code

2.56

XB

UN

XB

UN

YB

ZB

2.78

XC

UP

XC

UP

YC

ZC

2.93

XD

UR

XD

UR

YD

ZD

3.08

XE

US

XE

US

YE

ZE

3.23

XF

UT

XF

UT

YF

ZF

3.36

XG

UV

XG

UV

YG

ZG

3.55

XH

UW

XH

UW

YH

ZH

3.90

UX

ZP

ZK

4.33

UY

ZR

ZM

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Short answer: On the Billing History card, the axle-ratio sales code appears in box 74 (1967) or box 37 (1968). The codes are the same both years:

Axle Ratio Sales Codes (Billing History)
Code Ratio
C 2.56:1
D 2.78:1
E 2.93:1
F 3.08:1
G 3.23:1
H 3.36:1
K 3.55:1
P 3.90:1
S 4.33:1
Don’t confuse these sales codes with the two-letter code stamped on the axle tube (decoded separately).

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Short answer: The axle-ratio sales code on the Billing History is in box 74 (1967) or box 37 (1968). The codes are the same for both years.

1967–68 Axle Ratio Sales Codes
Code Ratio
C 2.56:1
D 2.78:1
E 2.93:1
F 3.08:1
G 3.23:1
H 3.36:1
K 3.55:1
P 3.90:1
S 4.33:1
Don’t confuse these sales codes with the two-digit code stamped on the axle tube.

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Short answer: The billing-history line “F70x14 RL FG / TMT / $57.93 / $41.80 / $2.93” decodes as: the tires originally installed were F70x14 Redlines, Fiberglass-Belted; “TMT” is that tire’s sales code; the dollar amounts are tire cost plus final destination/handling charges.

Fiberglass-belted tires were a 1968-model-year addition (not a 1969 mid-year change).

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Short answer: Bench-bleed the master cylinder first; if the pedal still sinks to the floor afterward, suspect the master cylinder itself — even a brand-new one.

Bench-bleeding the master cylinder:

  1. Secure the master cylinder dead level (this is very important).
  2. Attach a tube to each brake-line outlet and route the other end back into its own reservoir well.
  3. Fill each well with fresh brake fluid.
  4. Push the plunger (pedal pushrod) in with an appropriate tool.
  5. Repeat until no more bubbles appear.
  6. Plug the outlets and put the lid on.

If the pedal still goes to the floor: test the master cylinder by plugging the brake-line outlets and pressing the pedal; if it sinks, fluid is bypassing the internal seals. (One member’s new master was the culprit — the old one bled fine.)

Also: the secondary metering valve (the barrel-shaped valve with a single in/out, under a rubber boot) has a button/pin that must be held down during bleeding (use a C-clamp, wedge, or door stop). That pin is often worn/corroded and can suck air; the valve is no longer available — on a rebuild you may need to replace it with the later “combination valve” (disc front/drum rear) from Classic Performance or Year One (~$60), fabricating a bracket.

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Short answer: The brake-system valves explained:

  • Metering valve — the round cylinder next to the master cylinder; holds back front-disc pressure so the rear drums make full contact first. All 1969–70 GM disc cars have it.
  • Proportioning valve — a small square inline valve under the driver’s seat (on 1969 ‘birds, on the left subframe rail) in the rear-brake line; slightly reduces rear braking on nose-heavy cars. Not all 1969–70 GM cars had it (V8/AC cars did).
  • Distribution block / warning-lamp switch — all 1967+ dual systems (including 4-wheel drum) have it; the two lines from the master become three out (one rear, one to each front wheel).
  • Combination valve — from 1971, GM combined the distribution block, warning switch, metering, and proportioning valves into one unit (mounted on the frame, hard to see).

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Short answer: A pedal that nearly hits the floor with a weekly need to re-bleed, plus a tiny leak that seems to come from the metering valve, can actually be the calipers — one member chased a phantom “leak” for years (the front disc section kept emptying and fluid appeared at the master) until rebuilding the disc calipers fixed it. Air was getting in through the caliper seals and pushing fluid back out the master, mimicking a leak there.

So if you’ve replaced/rebuilt the master and hoses and still lose fluid/pressure with no clear external leak, rebuild the calipers.

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Short answer: The pedal is pushed back up (to release the brake-light switch) by the pushrod from the booster/master — not just a spring. If the lights won’t shut off, remove the clevis pin, unthread the clevis to lengthen the rod a quarter-turn at a time, and recheck until the pedal returns far enough to release the switch.

There’s also a thin metal tab on the pedal arm that contacts the switch — you may be able to bend it slightly. And check the master cylinder has enough fluid.

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Short answer: If clamping the front flex lines gives a solid pedal (and the warning light then works), the problem is at the front calipers — and the master cylinder bore size is not the issue. The likely cause: the 4-piston calipers are reversed side-to-side, trapping big air pockets.

The bleeder screws should sit horizontal at the top of the caliper; if they’re vertical, the far end of the internal passage isn’t at the top, so air can’t be bled out — which also trips the differential warning light on a hard press. Even half a caliper reversed traps air at the half fed by the connecting tube. Confirm the calipers are on the correct sides (or disassemble to see where the internal passages lead).

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Short answer: No — you can’t keep the drum master cylinder. Drum systems use a residual check valve (5–7 psi) to keep the wheel-cylinder cups seated; a disc/drum system only keeps that valve in the rear (drum) circuit, because residual pressure on discs would drag and overheat them. So use a disc/drum master cylinder (or a 4-wheel-disc master for 4-wheel disc), plus the proportioning/metering valves and warning-light switch appropriate to the system.

On a correct 1969 disc system: a front-brake metering valve (the rounded piece under the master) holds off the discs until the rear drums take up their clearance; a distribution block with the warning switch is down the line; and some cars (A/C V-8, etc.) add a rear proportioning valve on the left subframe. The 67–68 four-piston and 69–70 single-piston systems use separate valves; GM went to the one-piece “combination” valve in 1971.

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Short answer: The calipers mount toward the rear of the car. If they’re hitting the stabilizer bar, they’re on the wrong sides — swap the caliper, backing plate, and caliper bracket left-to-right (the spindle is machined the same either side, so it doesn’t matter).

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Short answer: Rebuilding a caliper is just replacing the seals — unless the piston bore is corroded/damaged, in which case it must be re-sleeved (~$35/piston, pricey). To bleed air from behind the pistons:

  • Two-person: one pumps to a firm pedal and holds; the other opens the bleeder until the pedal drops, then re-tightens; repeat until fluid runs clear.
  • One-person: run a clear tube from the bleeder into a bottle with ~1/4″ of fluid (tube submerged), open the bleeder, pump 4–5 times, refill the master, repeat until clear.
  • Keep the bleeder at the highest point; tapping the caliper lightly with a hammer floats bubbles toward it.

Also check the proportioning valve — one member’s was sucking air without leaking fluid, defeating many bleed attempts.

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Short answer: All 1967–69 (and early 1970) Pontiac Rally II caps are black centers with red letters (PMD). Late 1970 and 1971–72 switched to red centers with black letters; 1973 went to polished aluminum with the Pontiac arrowhead.

1967-69 Rally II center cap
1967–69 Rally II center cap.
1967-69 Rally II rims
1967–69 Rally II rims.

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Short answer: The classic bolt-in front disc swap recreates a factory 1969 Firebird disc setup using GM A-body or X-body donor parts. Shopping for everything as “1969 Firebird with factory disc brakes” simplifies sourcing. Pieced together from a salvage yard it can run as little as ~$100–500; a complete kit is ~$350 used or ~$795–825 new.

Donor cars: 1969–72 A-body (Chevelle/Malibu/Monte Carlo, Cutlass/442, Skylark/GS, Tempest/LeMans/GTO/Grand Prix, F-85), 1968–74 X-body (Nova, Apollo, Ventura/GTO, Omega), or a 1969 F-body. Avoid 1973+ A-body and 1975+ X-body (redesigned spindle won’t fit) and big B-bodies/Cadillacs (spindles too tall, wrong bolt circle). Earlier cars have the pricier, rust-prone 4-piston caliper; first-gens use the “early” GM single-piston corporate caliper.

What to gather:

  • From the donor: spindles, calipers (fine as cores for rebuilds), caliper brackets, rotors, master cylinder, booster (if you want power), combination/proportioning valve, and dust shields/backing plates. All but the spindles, caliper brackets, and dust shields can serve as cores. (New spindles, brackets, and shields are available from Classic Industries/NPD if needed.)
  • Keep from your car: the F-body steering arms — first-gen F-bodies (and X-bodies) are rear-steer, so bolt your own drum-brake steering arms onto the donor spindles (keep left/right straight).
  • Buy new: brake pads (Hawk/EBC/Performance Friction); new front flex hoses (never reuse old ones — but take the old ones along to match the ends); DOT 3 fluid (Ford HD DOT 3 is well regarded; avoid silicone); Timken inner/outer bearings, races, and seals; high-temp grease; new rotors (the originals are often unusable).

Master cylinder & proportioning valve — get these right:

  • You must use a disc-brake master cylinder (the power version if you have power brakes). A drum master “works” but isn’t right — it has a residual check valve that keeps ~5–7 psi in the system (to seat drum wheel-cylinder cups), and on discs that constant pressure drags the pads, causing wear and heat.
  • Never use a drum/drum proportioning valve on a disc/drum car — the wrong front/rear balance causes severe rear-wheel lockup. Use the disc combination/proportioning valve, or keep the drum warning-light/divider block and add an aftermarket adjustable proportioning valve in the rear line only.
  • Valve type varies by donor year: 1969–70 A-body and the 1969 F-car used separate valves; 1971–72 A-body used a combination valve. (The 1968 V8 A/C disc Firebirds used a different separate valve.)

Booster & pedal rod: the booster is the same except for pushrod length — compare the new booster to the one on your car (the pedal-to-booster pushrod can differ ~1″), and use the correct long/short pin for your master/booster combo. A-car boosters reportedly have an “A” stamped on the firewall pushrod. A high-volume “fat boy” master (1967 Vette / 1967–68 Z28 / J52/J56) is a nice upgrade over the standard 1969 disc master.

Control arms: you do not need to change them — just take the spindle and everything attached to it (dust shield, caliper bolts, etc.). Remove the upper and lower ball joints and take everything in between.

Wheels: some 14″ wheels rub the single-piston caliper (a 14×7 Rally II clears); all 15″ clear. Disc brakes push the track out ~1/4″, so very wide/deep wheels may get tight. (Admin note: Rally II rim code “JC” was used on both disc- and drum-equipped 1968 Firebirds.)

Junkyard tips: at a self-serve yard, bring coveralls, gloves, hand cleaner, a spring compressor (you’ll likely pull the spindle by removing the front spring — respect the coil-spring energy), a big breaker bar, and penetrating oil. Then hot-tank/bead-blast the hard parts, fit new bearings/seals, bench-bleed the master before install, and use flare/tubing wrenches on the fittings. Don’t mix new and old rotors; you can reuse the old caliper-bolt sealing washers (they seal better). Consult your shop manual.

Fitment gotchas (from a member’s detailed 1968 build with 1969 donor parts): control arms weren’t needed (swapped only as a bonus); the 1969 flex-line brackets weren’t a direct bolt-on to the 1968 subframe (locating them took guesswork); rear axle hard lines needed minor rebending for the 8.5″ 2nd-gen housing; a couple of fittings didn’t match the prop-valve ports and needed adapters or a shop-made line; and stainless lines are harder to bend/flare than mild steel. El Camino 1-piece rotors are a good direct replacement for the too-thin 2-piece originals.

Disc Conversion Cost (member’s build, ~1999)
Item Cost
Used parts (rotors [unusable], calipers [cores], brackets, control arms, hose brackets) $180.00
Calipers x2 (Bendix rebuilds) $30.00
Beadblasting $50.00
Rebuilt master & booster (incl. plating) $125.00
Stainless brake lines (front, rear, axle) $239.00
Braided stainless flex lines (front & rear) $70.00
Front brake pads (Performance Friction) $24.00
Front wheel bearings & seals $30.00
Fabricate new LH hardline $15.00
Misc. flared-nut adapters $12.00
1-piece front rotors (Bendix) $90.00
Proportioning valve (Master Power) $125.00
Combined total $990.00
For comparison, complete kits: Firebird/Camaro Specialties sold a new-component front disc kit for ~$795 (likely mild-steel lines, rubber flex lines) or a used-parts kit for ~$350 — a kit means less fabrication. This build came in ~$195 over the $795 kit but with better parts. Other budget references: pieced junkyard parts ~$100; salvage wheel assemblies + proportioning valve ~$150–250; one member’s complete 1968 swap (junkyard spindles/brackets/shields + new rotors, bearings, hoses, rebuilt calipers/booster/master) ~$500. (Prices ~1999.) Skip the ~$825 bolt-on kits if you have salvage yards.
Upgrades & staying drum: DOT-approved braided steel lines give a firm pedal. Drums aren’t terrible for a single stop but fade quickly with repeated hard stops (hills, traffic); if staying drum, Praise Dyno (praisedynobrake.com) makes good drum upgrades.

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Short answer: For a 1968 Firebird with factory disc brakes, the correct Rally II code is “JC” — the same as drum brakes. You do not need a special disc-brake wheel. (The “JA” you were quoted is the GTO disc code, not the Firebird’s.)

Proof: the 1968 Service Manual lists JC for the disc Rally II; the broadcast sheet lists JC for all Rally II applications; the 1969-dated Parts Book lists JC for all 1968 Firebird Rally IIs; and original unrestored cars wear JC. (With wheel covers the rim is “HK” vs. the standard “HG.”) Even DeMauro’s Firebird Decoding Guide lists the wrong code (HK). JC clears the disc calipers fine — and is cheaper than the JA dealers push.

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Short answer: The 1968 Custom Trim option (554) included: Custom seat covers (Morrokide + stitched knit vinyl), custom molded door and quarter trim panels, the assist bar above the glovebox, dual horns, deluxe wheel covers, deluxe steering wheel, custom pedal trim, front & rear wheel-opening moldings, drip-rail moldings (coupes), and windshield-pillar garnish moldings.

The RH sideview mirror was not part of the option. Everything in the package could be ordered separately on a Standard-trim car except the custom seats/trim panels and the assist bar. (And contrary to a common claim, the etched “Bird” front-side glass was not tied to Custom Trim — many original Standard-trim cars have it.) More on FGF.

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Bulletin 68-I-15 — Pontiac Motor Division Dealer Service Information Bulletin, Section 4, dated October 16, 1967. Attention: Service Manager.

Subject: Safe-T-Track Rear Axle Lubricant.

Short answer: Differential chatter on low-speed turns in Safe-T-Track equipped units is cured by a lubricant change; only Part No. 1050081 [Z] (Gp. No. 8.800) is approved — no substitute is recommended.

A number of cases of differential chatter on low speed turns have been reported in recent years on Safe-T-Track equipped units. Investigations prove that lubricant change is still the recommended fix for axle chatter.

It is imperative that only Part No. 1050081 [Z] (Gp. No. 8.800) lubricant be used. No other lubricant is recommended nor approved.
This is a transcription of the original dealer bulletin for easier reading and search. The complete original scan is shown below.

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Bulletin 68-I-37 — Pontiac Motor Division Dealer Service Information Bulletin, Section 5, dated January 31, 1968. Attention: Service Manager.

Subject: 1968 Tempest Rear Brake Drums.

Short answer: Some early-production 1968 Tempests were built with Kelsey-Hayes rear brake drums stamped “F” instead of the specified “KH” identification. Future drums will use the combined code “KH-F.” All three codes (“KH,” “F,” or “KH-F”) represent acceptable Kelsey-Hayes drums — a variation between right and left drums is not a concern.

Pontiac Engineering has advised that certain early-production Tempests were built using Kelsey-Hayes rear brake drums coded with identification letter “F”, rather than the specified identification “KH”.

Future Tempest rear drums manufactured by Kelsey-Hayes will incorporate the code letters “KH-F” as an optional identification.

Since Kelsey-Hayes drums with any one of these codes (“KH”, “F”, or “KH-F”) are installed in production, there should be no cause for concern regarding the variation of code between right and left rear drums.

This is a transcription of the original dealer bulletin for easier reading and search. The complete original scan is shown below.

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Bulletin 68-I-47 — Pontiac Motor Division Dealer Service Information Bulletin, Section 5, dated February 28, 1968. Attention: Service Manager.

Subject: Complaints of Low Brake Pedal.

Short answer: Many low brake pedal complaints on power-brake-equipped vehicles are psychological in nature — the depressed floor area directly below the pedal is a design feature. Pedal height should be measured as described below; pedal height must not be adjusted, and if it does not meet specification, a full brake system inspection per the 1968 Pontiac Service Manual is required.

The area of the floorboard located directly below the brake pedal is depressed by design, allowing full travel of the brake pedal in the fully applied position and permitting the driver to pivot his foot from the accelerator to the brake with no appreciable raising of the foot (see the scan below, Fig. 1).

Correct method to check brake pedal height (see the scan below, Fig. 2): With the pedal in the fully released position, measure from the lower (inner) edge of the pedal pad to the raised area of the floor. The distance should be 2½″. This measurement may vary slightly depending on the amount of compression applied to the carpet and jute.

It is important that no attempt be made to adjust pedal height.

The specification requires that the brake pedal clevis (which connects the pedal arm to the pushrod) be torqued at the clevis stop nut to 90 lb-in. This applies to all 1968 applications.

If pedal height does not meet specifications, perform a thorough check of the brake pedal and associated parts (mounting bracket, clevis adjustment, etc.) and perform repairs as outlined in the 1968 Pontiac Service Manual.

This is a transcription of the original dealer bulletin for easier reading and search. The complete original scan is shown below, including the figures.

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Bulletin 68-I-50 — Pontiac Motor Division Dealer Service Information Bulletin, Section 5, dated March 19, 1968. Attention: Service Manager.

Subject: Brake Drum Turning — Front Hub and Drum Assemblies.

Short answer: When turning a front brake drum on a lathe, the drum must be torqued securely to the hub using five flat washers and five stud nuts torqued to 35 lb. ft., eliminating any movement between drum and hub during the turning operation.

When turning a front brake drum, install five flat washers and five stud nuts on the wheel studs and torque to 35 lb. ft. This mounting procedure eliminates any possibility of movement between the drum and hub during the turning operation.

See the figure in the original bulletin for the proper method of mounting the front hub and drum assembly on a drum lathe.

This is a transcription of the original dealer bulletin for easier reading and search. The complete original scan is shown below, including the figures.

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Bulletin 68-I-51 — Pontiac Motor Division Dealer Service Information Bulletin, Section 10, dated March 25, 1968. Attention: Service Manager.

Subject: Premature Tread Wear — Wide Oval Tires.

Short answer: Over-inflation causes Wide Oval tires to wear prematurely in the center rib. Maintain 24 PSI cold (front and rear) unless carrying a full-rated load.

Early tread wear in the center rib section on Wide Oval tires can be caused by incorrect inflation pressure. The illustration (see Fig. 1 in the scan below) shows a normal tread wear pattern; the upper shaded portion depicts the wear pattern resulting from over-inflation.

It is recommended that Wide Oval tires be maintained at 24 PSI* for both front and rear wheels to minimize the possibility of early wear. Higher inflation will tend to abnormally distort the tire contact surface and cause the center ribs to assume a disproportionate share of the work.

Inflations above 24 PSI should only be used when the vehicle is driven with “full-rated” loads, as described in the Owner’s Manual.

*Always check tire pressure when tires are cold.

This is a transcription of the original dealer bulletin for easier reading and search. The complete original scan, including the figures, is shown below.

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Bulletin 68-I-69 — Pontiac Motor Division Dealer Service Information Bulletin, Section 5, dated May 13, 1968. Attention: Service Manager.

Subject: Service Procedures — New Type 1968 Tempest and Firebird Front Brake Drums — Limited Production.

Short answer: A new separable front hub-and-drum assembly is being installed on a limited run of 1968 Tempest and Firebird models. Unlike standard units, the drum can be removed separately from the hub; the alignment index mark on the drum web must line up with the hole in the hub on reassembly. Approximately 10,000 sets are being installed at each plant.

Affected Vehicles

Limited-Production New-Type Front Brake Drum — Starting V.I. Numbers
Plant Vehicle V.I. Number
Pontiac, Michigan Tempest P268122 (8-Cyl.) / P612794 (6-Cyl.)
Lordstown Firebird 0154610 (8-Cyl.) / 0611614 (6-Cyl.)
Important: Since the new drum can be removed separately, the alignment index on the drum web must line up with the hole in the hub upon reassembly (see Fig. 1).

Brake Drum Turning or Replacement

If it becomes necessary to turn or replace a brake drum of this type, the hub and drum must be properly indexed as described above and turned as an assembly. Install all wheel nuts and torque to 35 lb-ft before machining is performed.

Hub Bolt Replacement

  1. Remove the hub bolt(s) with a press or hammer. These bolts are not peened into the hub. Use care not to damage the wheel mounting surface on the hub flange.
  2. Install new serrated bolt into the hole in the hub. Tap lightly with a hammer to start bolt serrations into the hole, making sure that the bolt is square with the hub flange.
  3. Press bolt into the flange until the head is fully seated against the hub flange (see Fig. 2).

Front Hub Bearing Replacement

The procedure for replacing front bearings and races is the same as that shown in Section 3, page 3-5, of the 1968 Pontiac Service Manual.

Parts Information

New-Type Front Hub and Drum Service Parts
Description Part No. Group No.
Drum 3853799 [M-CX] 5.809
Hub Assembly 3887867 [Z-CX] 6.307
Front Hub Bolt 3851677 [Z-CX] 5.812
Note: Part numbers for front wheel bearings, races, and inner seals remain the same as they appear in the Parts Catalog.
This is a transcription of the original dealer bulletin for easier reading and search. The complete original scan is shown below, including the figures.

Reference:

  • 1968 Pontiac Service Manual Section 3 Page 3-5

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Bulletin 68-I-75 — Pontiac Motor Division Dealer Service Information Bulletin, Section 10, dated May 31, 1968. Attention: Service Manager.

Subject: Wheel Balancing — Disc Brake Equipped Vehicles.

Short answer: Some dealers have had difficulty balancing front wheels on disc-brake-equipped vehicles using on-the-car balancers because the brake pads rub the disc and prevent the wheel from spinning fast enough. Two solutions are available: a two-motor balancer or the Kent-Moore tool J 22801 Disc Brake Pad Spacer.

There are two solutions for this condition:

  1. Balance equipment suppliers offer a two-motor balancer, which covers heavy-duty and disc brake applications.
  2. A special tool is available from Kent-Moore for balancing disc brake wheels. Tool J 22801 (Disc Brake Pad Spacer), price $4.90, is used to spread the brake pads away from the disc, greatly reducing the “dragging” tendency during the balancing operation.

Note: The wheel must be removed to install the spacers (see Fig. 1 in the scan below).

This is a transcription of the original dealer bulletin for easier reading and search. The complete original scan is shown below, including the figures.

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Bulletin 68-I-Special — Pontiac Motor Division Dealer Service Information Bulletin, Section 5, dated November 22, 1967. Attention: Service Manager.

Subject: Warranty Policy Clarification for Brake Drum Turning.

Short answer: This bulletin establishes uniform warranty policy for brake drum turning: grooves under .020″ deep need not be turned; out-of-round drums should be turned a maximum of .010″ per side before replacement; hard spots need not be removed unless raised. Always measure drum diameter and eccentricity before cutting.

This bulletin establishes a uniform policy to be adhered to when making adjustments under warranty for brake drum turning. Measuring the brake drum — both for total diameter and eccentricity — is essential before any turning. Reference is made to previous bulletin 67-T-22, covering the procedure to correct brake shudder. Many drums have been cut beyond specifications because they had been previously cut and no measurement was made.

The following policies will apply when turning brake drums:

  1. Scored Drums — Grooves less than .020″ deep will not affect brake operation, and drums should not be turned for this condition.
  2. Out-of-Round Drums — Determine if shudder is caused by front or rear drums (use parking brake to make determination). Turn both front (or rear) drums the same amount, but in no case take more than a .010″ cut (.020″ diameter). If the problem is not corrected after taking a .010″ cut, replace the drum.
  3. Drums with Hard Spots — Drums containing hard (dark) spots indicate overheating. These spots, unless raised, do not affect brake operation and need not be removed. When turning drums with hard spots for a brake shudder complaint, use a cutting tool specifically manufactured to remove hard spots.
This is a transcription of the original dealer bulletin for easier reading and search. The complete original scan is shown below.

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Short answer: Yes — you can convert to front discs and keep 14″ Rallys. The roadworthy choice is the 1969 Firebird/Camaro single-piston system (shared with 1969–72 A-bodies and 1969–~74 Nova X-bodies); most 14×6 and 14×7 Rally II wheels clear it (a couple of wheel codes are noted incompatible — ask the group for the specifics).

Get spindles, calipers, rotors, and hose brackets from a donor, plus a master cylinder and combination valve from a 1971–72 A-body; trade cores for loaded calipers, add new 1969 Firebird/Camaro front hoses, turn/replace rotors, and new steel lines for the 71–72 setup. Turnkey kits exist too: Stainless Steel Brakes (ssbrakes.com — modern pads, 9″ booster, prop valve, Timken bearings) is well-liked; Inline Tube (inlinetube.com) for stainless lines/fittings.

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Short answer: A badly worn yoke usually means the inner tailshaft bushing is worn out — it’s a ~2″ softer (sacrificial) bushing pressed into the tailhousing, and replacing it requires removing the tailshaft. A new yoke alone won’t fix it if the bushing is shot.

That said, some yoke wear is normal at 30+ years — the part sticking out always looks rough; what matters is the surface inside the trans and where the seal rides (a groove worn by the old seal will leak a new one). In normal weighted condition ~3/4 to 1-1/4″ of yoke should stick out of the tailshaft. Replace the seal and yoke (cheap, new or junkyard — common across GM); refresh the gear oil. The finger-tip of sludge on the magnet is normal.

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Short answer: Two ways. Read the code: the two-letter code on the rear of the driver’s-side axle tube (halfway between the drum and the “pumpkin”) — wire-brush to read it. Or count turns: chalk-mark the driveshaft yoke and diff housing and the tire; rotate the tire and count driveshaft revolutions — ratio = driveshaft turns ÷ tire turns (e.g., 17 ÷ 5 = 3.4:1).

1967 Axle Codes
Posi Open Ratio
UN XB 2.56
UP XC 2.78
UR XD 2.93
US XE 3.08
UT XF 3.23
UV XG 3.36
UW XH 3.55
UX 3.90
UY 4.33
For reference: Powerglide 1st 1.76 / 2nd 1.00 / Rev 1.76; TH400 1st 2.48 / 2nd 1.48 / 3rd 1.00 / Rev 2.00.

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Short answer: GM’s own names are inconsistent, which is why this valve has several. The rear valve on the frame rail of V8/AC cars is called both “rear brake pressure proportioning valve” (parts book) and “rear brake pressure regulator” (illustrations catalog); tech textbooks call it the “proportioning” valve.

Practically: the round valve just under the master cylinder is the front metering valve (on all disc-brake cars); the rectangular valve on the frame rail under the driver’s seat is the rear valve (V8 A/C disc cars only). From 1971 a single combination valve replaced all of it. The rear valve’s part number is 3908326 — listed only for the 1967–69 Firebird.

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Short answer: Two common gear-ratio questions — how to measure the ratio you have, and how to choose one.

Measuring your ratio: on a non-posi (open) rear, the other wheel spins the opposite way, so turning one wheel by hand gives half the true ratio — a reading of ~1.37 is really ~2.74 (a standard 2.78 Pontiac ratio). To measure correctly, either block one wheel so it can’t spin and count, or better, spin the axle and count driveshaft yoke revolutions. Make sure the marks return exactly — close doesn’t count.

Choosing a ratio: for a mostly-around-town 350/TH400 with occasional highway, 3.23 is a good all-around choice (~2600–2700 rpm at 60 mph); 3.55 is livelier but busier on the highway (~2900–3000 rpm). Going much past 3.23 with your existing differential isn’t possible without changing the case. If you’re doing a full rear-end swap anyway, consider a 2nd-gen 8.5″ 10-bolt — ~1″ wider (you’ll re-cut the spring perches), but stronger, more common, and cheaper than first-gen rears. (FYI: code PX = a 1976–81 3.23 posi.)

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Short answer: 15×8 won’t fit inside the stock wheel wells. The front and rear handle up to a 235/60-15 without trouble; the rear can take a 255 if you roll the quarter/wheelhouse lip. Rim offset is critical.

Members have run 15×7 with 235/60-15 (looks great, fills the wells), and one ran 15×8 with 275/50-15 on the rear (no rubbing, though that tire really wants a 9.5–10″ wheel) for straight-line use. Keep front and rear diameters close for good handling — e.g., 225/60-15 front (25.63″) pairs better with a 275/50-15 rear (25.83″) than a 235/60-15 (26.1″) would. Fit-check rule of thumb: straight-edge vertically off the drum and measure to the front and back of the wheelhouse, leaving 1/2″–1″ each side for sidewall bulge.

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Short answer: They’re all the same type of unit — a limited-slip differential. Each GM division just branded it differently (with slight design variations): Pontiac called it Safe-T-Track, Chevy called it Positraction — both are “limited slip.”

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Short answer: On an unaltered 1967–69, the biggest practical tire is about 235/60-15 on 8″ wheels (members report 245 on an 8″ being too big). For more aggressive fitments, Car Craft (March 2000) published maximums for 1967–69 Camaro/Firebird:

15-inch: 15×8 with 4.5″ backspacing front and rear. With some tires the rear shocks must be mounted inboard; then some 9″ wheels work with 5.5″ backspacing.

16-inch: 16×8 with 4.5″ backspacing front and rear (rear shocks relocated inboard). Use aspect ratio 50 or less, section widths 245–250.

17-inch: 17×9 with 5.5″ backspacing front and rear. Possible lower-control-arm contact with some steering gears. Aspect ratio 40 or less, 245–255.

18-inch: 18×9 with 5.5″ backspacing front and rear. Aspect ratio 35 or less, 245–255 front and 275 rear.

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Short answer: The “round piece” under the master cylinder is the metering valve (front) — it holds off the front discs until the rear drums engage. A separate proportioning valve (rectangular, on the frame rail under the driver’s seat) was fitted only to 1967–69 V8 + A/C + disc cars to limit rear pressure and prevent the nose-heavy car’s rear wheels from locking.

From the 1967 Service Manual: “The Proportioning valve is used on disc brake cars with V-8 engine and air conditioning. Basically the valve works to limit hydraulic pressure to the rear wheels. Up to 380–420 psi the inlet (master cylinder) pressure will equal the outlet (rear wheel cylinder) pressure. Above this figure the outlet pressure rises slower… braking effect of the rear wheels is reduced in comparison to the front.”
Don’t “meter the front” to balance a system — that only encourages rear-wheel lockup. And don’t mix systems: use all the model-specific parts of one era (don’t combine the later combination valve with an earlier metering valve). The 1967–69 hydraulics are basically the same, so 1967–68 4-piston and 1969 single-piston calipers can be swapped. Use one donor’s complete valving (members prefer Firebird, not Camaro/Nova, lines and switch), and always replace the rubber hoses.

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Short answer: The round metering valve under the master cylinder can fail (leaking, or sucking air) — one member went through four rebuilt units. Members who bypassed it reported the pedal felt firmer and they couldn’t tell a difference in normal street driving (on dry pavement). There’s a safety/originality debate, though — the engineers fitted it for a reason.

An ironic note: the front metering valve reduces front pressure so the fronts don’t lock before the rears; but A/C cars (~200 lb heavier in front) added a second (rear) metering/proportioning valve to keep the rear from locking. So if you move the battery to the trunk, add an aluminum intake and fiberglass hood, you’ve already changed the weight bias the factory valving assumed. Given the many successful Chevelle/Camaro-parts conversions with no real problems, many feel the valve adds little — but decide for yourself.

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Short answer: Original 1968 Firebird tires were Firestone:

1968 Firebird Standard Tires
Model Standard Tire
Base Firebird E70x14 B/W Wide Oval
Sprint / 350 / 350 H.O. F70x14 B/W
400 F70x14 Redline Wide Oval
Optional: E70x14 redlines, E70x14 whitewall, I95Rx14 whitewall radial (rayon), and F70x14 in redline/whitewall/blackwall. The tire type is recorded on the Fisher Body broadcast copy and the PMD billing history card.

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Short answer: Clean them up and brush on POR-15 (a rust-killing coating that bonds to bare metal and acts as primer + color — comes in black, gray, silver), then a clear coat. Two coats plus clear looks great.

POR-15 (por15.com) is non-porous (applies fine in humidity) and dries with little brush marking — just be careful, it’s very hard to get off skin.

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Short answer: Yes — all 1967 Firebirds have the eyelets on top of the pumpkin (they used the A-body GTO/Tempest rear), and the backing-plate-to-backing-plate width matches a 1968. Whether you got none, one, or two radius rods (traction bars) depended on engine, transmission, and (in one case) axle ratio. Per the 1967 service-manual supplement (which calls them “radius rods”):

1967 Radius Rods Used
Radius Rods 6-cyl 1-bbl 6-cyl 4-bbl V-8 2/4-bbl
None Auto*
One (RH side) Manual Auto Auto
Two Manual Manual

* One rod is used if the ratio is 3.23:1. All 1967 Sprints came with factory traction bars. They can be adapted to a 1968, but the 1968’s staggered shocks and multi-leaf springs are a better setup — posi was an extra-cost option (except later on the Trans Am).

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Short answer: Replacement boosters often have the wrong pedal-rod length (e.g., 7.75″ vs the correct ~5.75″ for a 1969). One member’s fix: a section of thick-wall tubing sized to the rod’s OD — cut the rod ~2″ from the end, set the master/rod-end at the correct length with the tube joining them, mark, and weld both ends — which let him fit a smaller-diameter ’84 Z28 booster/master (clears the valve covers nicely).

Not factory, but it works with easy-to-find parts. Otherwise, seek a correctly-rebuilt original 1969 power-disc booster.

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Short answer: The booster was cadmium plated — a silver with a slight gold hue (“yellow cad”), not as yellow as some other GM boosters (Jim Mattison discusses the correct color in the magazine articles on his 1967). The spray-can “cadmium” paints are only a look, take 5–6 cans and several steps, and don’t match real plating.

Better to have it replated — shops advertise in Hemmings, or use a local plating house (yellow cad varies in hue by plater/part). Plating outlasts paint. One named rebuilder: Steve Gregori redoes them in the correct hue with all-new rubber for ~$120 (brakeboosters.com).

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Short answer: If the master cylinder is bolted directly to the firewall, it’s manual. If it’s bolted to a saucer-shaped vacuum booster with a hose running to the top of the engine, it’s power.

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Short answer: A car that pulls or fishtails under hard braking, with all brake parts already replaced, usually comes down to the front drum brakes being out of adjustment (they’re not self-adjusting in front on 1967–69 and aren’t forgiving) — or a front-end issue.

  • Diagnose in an empty lot: brake hard and note which way it pulls / which wheel locks. Use the parking brake (rear/drum only) to check if the rears are the issue. Pump the pedal first — if it stops straighter, there’s air in the system.
  • Manually adjust the front drums (and check the “self-adjusting” rears anyway). A veteran trick after a drum rebuild: drive while braking firmly and repeatedly to seat the shoes.
  • Also check the spindle ball-joint tapers (can wear out-of-round) and upper control-arm bushings (cause erratic steering). Finish with a proper 4-wheel alignment.

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Short answer: For a 1968 Firebird with disc brakes, the correct Rally II wheel code is “JC” (the same as drum brakes) — per the 1968 Service Manual, 1968 Parts Book, broadcast sheet, and verified original cars. The widespread “JA for disc” claim is a technical error carried over from the 1967–68 GTO / 1967 Firebird.

A 1971 parts book says 1967 used JA (disc) and JC (drum), while 1968 used JC for all — yet all the 1967–68 disc parts were the same, so the reason for two 1967 codes is unclear. Remember the code is read at the valve stem, not inside the rim (the inside stamp can differ). Reference: Rich’s Pontiac Server, pontiacserver.com/wheels.html.

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Short answer: Original-match Rally II paint codes (use lacquer, not enamel — the factory finish wasn’t very shiny):

Rally II Wheel Paint Codes (Ditzler)
Section Color Code
Front (outer rim & spokes) Non-smudge Aluminum DDL-8568
Front (center) Wheel Cover Charcoal DDL-32947
Rear (alternate, close match) 1977 Ford Dove Gray 2847

The “Rear” color also has a Ditzler mixing formula:

#475      6 Units
#490    106 Units
#400    272 Units
#487    442 Units
#415    447 Units
#476    457 Units
#491    477 Units
#495    497 Units
#499   1000 Units
Process: paint the back and rim portion gray first, then the whole front with the non-smudge aluminum; let dry a few days. Finally mask off the aluminum and shoot the center charcoal; pull the masking before the charcoal fully dries so it doesn’t lift. Masking kits (Year One) help. To convert these codes at a PPG/Sherwin-Williams store, drop the prefix letters and use the numbers only. Remove the valve stem and wheel weights before painting. Helpful (non-Pontiac) DIY videos: video 1, video 2.
Masked Rally II wheel
A member’s supplemented masking (2007).

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Short answer: The cap has 3 clips that snap into the round center hole, plus 3 more that fit the 3 notches on the older (larger-hole) wheels to keep it from rotating. On the newer small-hole wheels those 3 positioning clips just don’t engage — the cap still snaps in fine. (Year One’s catalog has a good rear-view drawing, plus locking caps to deter theft.)

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Short answer: Not ideal — the JA (GTO) wheel offsets inward ~1/8–1/4″ per wheel, narrowing your Firebird’s track. Better to trade the JAs to a Tempest/LeMans/GTO owner and find the correct JC wheels (unless you’re stepping up to 7″ wheels).

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Short answer: Pontiac wheel/Rally II codes are confusing — per a 1971 parts book, 1967 used JA (disc brakes) and JC (drum brakes), while 1968 used JC for all (even though the disc parts were the same for 1967 and 1968). The full application/code table is below.

More detail on decoding the codes stamped on a rim: the Classic Pontiac Server wheel page and Wallace Racing’s rally-wheel date-code page.

Application Size Style Bolt Circle Diam Code GM Part Nm
1967 Firebird 14×6 Plain Steel 4.75″
1967 Firebird 14×6 Rally I 4.75″ JB 9787860
1967 Firebird w/Disc Brakes 14×6 Rally II 4.75″ JA 525708
1967 Firebird w/Drum Brakes 14×6 Rally II 4.75″ JC 546495
1968 Firebird 14×6 Plain Steel 4.75″ HG HK
1968 Firebird 14×6 Rally II 4.75″ JC 546495
1969 Firebird 14×6 Plain Steel 4.75″
1969 Firebird 14×6 Rally II 4.75″ JC 546495
1969 Firebird 14×7 Plain Steel 4.75″ 362052
1969 Firebird 14×7 Rally II 4.75″ JK 525709

On the 1968 Rally II, the wheel rim code is on the outside of the rim, right next to the valve stem (see below). On the inside of the rim (the flat part connecting the inside and outside) you’ll find the date code, plant code, inner-wheel code (JJ), and size (14 x 6).

1968 Rally II wheel rim code location next to the valve stem
1968 Rally II rim-code location (next to the valve stem).

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Short answer: Rally II wheels came in 30–40 varieties — the only way to know what you have is the two-letter code at the valve stem (that’s the WHEEL code the parts book uses: rim + center + offset). A code stamped inside the rim is just the rim type; the larger center hole is a non-issue (caps fit), but offset matters.

  • 1968: JC = Firebird, JA = Tempest/LeMans/GTO. Later (1971–74) Ventura II wheels have different offsets.
  • 14×7 examples: JK = 1969 Firebird/Grand Prix, JM = 1970 (same, exc. Trans Am), JS = 1971, KS = 1972. The 1970 Trans Am had a special deep-dish wheel that takes no trim ring.
  • Offsets here run ~4″ to 4.5″ backspacing — fine as long as you don’t go crazy on tire size. A 14×6 is limited to about a 225/60-14 (a 215/60-14 fits a bit better; a 70-series gives a taller tire).

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Content last modified: June 13, 2026 at 10:06 am

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Short answer: One member’s assembly-line method for stripping Rally wheels (he’s done 30 at a time):

Wear goggles, long rubber gloves, and an apron throughout — this uses muriatic acid and active paint stripper, both of which burn skin. Drain the cans into proper containers and dispose of them properly.
  1. Get two plastic garbage cans with a bottom a bit larger than the wheels.
  2. From a pool-supply store, get industrial-strength muriatic acid; from the hardware store, spray-on paint remover (gets into cracks better than brush-on).
  3. Stand the wheel in a can and spray front, back, and inner rim with paint remover — the can contains the spray and concentrates the fumes to soften paint (up to 3 wheels at once).
  4. When the paint bubbles, pressure-wash clean.
  5. Move to the second “tank” of muriatic acid + water; submerge no more than 2 hours to dissolve rust (heavier rust means a bad wheel anyway).
  6. Pressure-wash, then mist with OSPHO (or similar etch/rust converter); remove after a few minutes before it dries.
  7. Blow dry with compressed air — especially the rim-to-center seam, where trapped solution creeps out during painting. Store or paint once fully dry.

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Short answer: The two-letter axle code is stamped on the driver’s-side axle tube, facing the rear, roughly 6″ from the differential cover (near/to the left of the brake clip). It’s often rusty — expect to wire-brush/sand to read it.

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Short answer: Not from 2.56 to 3.23 or 3.73 with your existing differential case. Per the factory service manual, there were three case types (by ring-gear mounting): one for 2.56/2.78, one for 2.93/3.08/3.23, and one for 3.36/3.55/3.90/4.33 (the 3.90/4.33 used only the 4-pinion locking case).

So from a 2.56 case you can only move within 2.56/2.78. To get 3.23, find a 3.08/3.23 carrier (not uncommon) or a complete axle. The aftermarket (e.g., Richmond) may offer gears that work with your case, but likely not past 3.23. Get a factory service manual (good reprints exist).

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Short answer: Swapping gears to switch between “highway” and “around-town” ratios is possible but impractical — a proper gear change needs skill (setting backlash and tooth contact), special tools (dial indicator), and time (~$250 gears + $100 tools, or ~$250 shop labor; a weekend the first time). For two ratios, a second complete rear end (faster to swap) or an overdrive transmission makes far more sense.

  • Overdrive route: a 200-4R (auto) or T5/Tremec (manual) lowers highway rpm — more up front, but cheaper than several gear changes. Another member’s trick: a taller tire on a spare set of wheels for road trips.
  • Rear-end interchange: first-gens use an 8.20″ 10-bolt unique to Pontiac/Buick (a corporate Chevy 8.20’s gears won’t interchange). From 1970, GM went to one 8.50″ 10-bolt (Nova/Apollo/Omega/Ventura ’70–74 and 2nd-gen F-bodies) — tall gears are plentiful there; it fits with relocated spring perches and a unique rear U-joint.
  • Beware: other 10-bolts (7.50″ late-’70s/’80s, 8.875″ trucks) exist — know exactly what gearset you’re buying. And correct your speedo gear after any change.

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Short answer: Two excellent write-ups for the 2nd-gen-into-1st-gen swap: the Classical Pontiac restoration section, and member “geebjen’s” detailed report (angelfire.com/on/geebjen/rearswap.html). Members confirm both are accurate.

  • Keep the first-gen parking-brake cables and bracket — the 2nd-gen cables won’t work.
  • On perches: one member re-used the 2nd-gen perches by grinding them off and moving them closer together (they’re wide enough to take the first-gen’s angled springs) — note they sit ~3/8″ taller, lowering the car that much. Others recommend first-gen perches to keep the correct angle. Either way, measure carefully (a drilled plank with the front spring brackets bolted to it makes a handy fixture) and set pinion/yoke angle with the car’s weight on the springs.
  • Watch perch spacing — one shop welded them ~1/2–1″ too far apart, putting the shock mount against the wheel rim.
  • Driveshaft: you may find a junkyard shaft that bolts right in — but a used shaft is an unknown (bent/bad U-joints); given the safety stakes (members recounted U-joint failures that wrecked cars), cutting/balancing/new joints (~$110) is a sound investment, especially on a high-power car.
  • Typical costs: perches ~$75, driveshaft shorten/balance ~$110. Check the donor ratio — some posi rears have tall 2.73 gears.

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Short answer: You can change the upper rear main rope seal with the engine in the car by rotating it out with the crank (no crank removal), but getting the pan off in-car is a miserable fight — most members agree it’s better to pull the engine and do it right.

With the bellhousing/flywheel already off, the engine pulls in ~4 hours with two people; the seal swap is then 1–2 hours, and you can reinstall the clutch from the bench (avoiding the awful under-car alignment). While you’re in there, do the rod and main bearings (a bent cotter pin “T” in the oil journal rolls them in/out without removing the crank) and the 30-year-old oil pump — seals usually start leaking because wear lets the part move, so address the cause too. Use engine assembly lube.

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Short answer: Per the 1967 Firebird supplement, the eight axle ratios are identified by a two-letter code stamped on the rear of the LH axle tube:

1967 Firebird Axle Codes
Open Ratio Limited-Slip
XB 2.56 UN
XC 2.78 UP
XD 2.93 UR
XE 3.08 US
XF 3.23 UT
XG 3.36 UV
XH 3.55 UW
3.90 UX
Note: there’s no “XL” Firebird axle code — the 4.33 ratio used “YL,” and only 13 1967 Firebirds got the 4.33 (none Ram Air). (“XL” was a ’65 GTO / Camaro code.)

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Short answer: An A-body (e.g., 1969 LeMans) rear can be made to fit a 1967, but it’s a lot of bother for a 10-bolt: A-bodies use rear coil springs, so the housing is wider and you’d cut off the coil mounts and weld on leaf-spring perches (and narrow it or run offset wheels).

  • Width myth: members who measured 2nd-gen F-body rears found the overall track is the same ~60″ as a first-gen — it’s the welded-on spring perches that sit ~2¾” wider (cut and re-weld them).
  • 1967 specifically: 1968–69 and 2nd-gen used multi-leaf springs, so on a mono-leaf 1967 you’d convert to multi-leaf or reuse your old mono-leaf perches (different depth).
  • A 2nd-gen swap also needs the driveshaft shortened, careful pinion-angle setup, and possibly a big-and-little U-joint (if from a TH400 car). Typical add-on costs: perches ~$25, driveshaft ~$35, U-joint ~$18.
  • Some go to the trouble for a 12-bolt GTO rear.

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Short answer: A 2nd-gen F-body rear (the 8.5″ 10-bolt) drops into a first-gen and is stronger, cheaper, and more available than the first-gen 8.2″ — but you must relocate the spring perches, match the transmission/U-joint type, set pinion angle, and shorten the driveshaft.

  • Width: measured overall only ~1/4″ wider (1/8″ per side) — not the “1–2 inches” often claimed.
  • Multi vs mono leaf: 1968–81 are multi-leaf; a 1967 mono-leaf car needs its old perches reused or a multi-leaf conversion.
  • Spring perches: the 2nd-gen perches sit ~2¾” farther out, are ~1/2″ taller (lowers the car that much), and (unlike first-gen) have no built-in angle — so cut them off and weld on first-gen perches, ideally setting the angle with the car’s weight on the springs. Set pinion angle carefully.
  • U-joint/driveshaft: match the donor to your trans (350 vs 400 use different U-joint sizes; may need a big/little U-joint); the 2nd-gen sits ~1″ longer axle-to-U-joint, so shorten/replace the driveshaft (and refresh U-joints + trans output seal while you’re there).
  • Brakes: parts are essentially the same — order them as the donor year (e.g., 1977); use the donor backing plates/drums; but get brake lines for your original first-gen year so routing matches, and move the rear-cover-bolt line bracket over before installing.
  • Also: replace cheap seals (local parts store, ~$1–2), check bearings, recalibrate the speedo for the new ratio, and pull the gas tank as a precaution (especially when changing springs — you’ll likely torch the old bolts).

Parts to have ready:

  • Rear end: seals, bearings (optional), brake lines & parts, new posi tag, gear oil + limited-slip additive, cover gasket, backing-plate bolts/nuts.
  • Swap: U-bolts & nuts, T-bolts & nuts, upper/lower spring pads, trans output-shaft seal.
  • New springs: front eye bushings, front bracket bolts & clip nuts (Ames carries both), eye bushing bolt/nut, shackles/bolts/nuts, rear shackle bushings.
  • Gas tank: straps, attaching-bolt kit, tank-to-body anti-squeak kit.

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Short answer: If your 1967 rides on 15″ Rally II rims with P225/60-15 (very close in diameter to the old G60-15 / F70-15), get the period Goodyear Polyglas in a 15″ size to match — or switch back to correct 14×6 rims if you want the original E70-14/F70-14. Don’t mount 14″ tires on 15″ rims.

The car originally came on E70-14; an F70-14 generally clears 14×7 Rally IIs without trouble too. (One member runs 255/60-15 rear and 205/60-15 front on a 1967.)

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Short answer: For 1967–68, ordering the Ram Air engine made the Saf-T-Track axle (code 361) mandatory. For 1969 that prerequisite doesn’t appear on the Trans Am or 400 H.O. (with or without the Ram Air hood) — so if your 1969 documentation doesn’t list code 361, that’s how it was.

All 1969 Trans Ams came standard with a posi rear (and all had Ram Air engines), along with variable-ratio power steering, power discs, and a 1″ sway bar.

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Short answer: A click from one rear wheel during slow tight turns is common on GM posi units — it’s typically the clutch cones momentarily slipping/grabbing (and that jolt can ring through the driveshaft). It’s usually not alarming if backlash and pattern are good.

First try the cure: add two bottles of GM posi additive (not generic), do several sharp left/right turns and some backing up to circulate it; if it persists, change the gear oil and add two more bottles. Also check the transmission output-shaft bushing (4-speed cars wear these ~40k miles under hard use) as another possible source.

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Short answer: Pull the cable from the housing, clean the cable with solvent and flush the housing (brake cleaner), then re-grease the cable with white assembly grease (or a good graphite lube) as you slide it back in. That stops the minor needle jumping.

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Short answer: A speedo that reads off after a rear-end swap or a tire-size change usually just needs the correct speedo driven gear (the colored plastic gear on the cable at the transmission) to match the new ratio/tire size. It’s an easy, ~$8 part at a GM dealer (Classic Industries sells them too — give your trans type and rear ratio), or a shop can recalibrate. If originality matters, fitting reproduction original-size tires is the other route.

Why it’s off: a rear-axle swap changes the gear ratio, or a taller/shorter tire changes the rolling distance, but the trans speedo drive gear wasn’t changed to match. Quick tire-diameter estimate: error = 1 − (new dia ÷ old dia). Going 225/70-15 (27.4″) to 245/50-16 (25.6″): error ≈ 6.6%, and the speedo reads faster than you’re going (shows ~70 at ~65.5). Tire-size decode: 225/70-15 = 225 mm tread width, 70 = sidewall as % of width, 15 = rim diameter.

Original tire size was E70-14 or F70-14 (probably F70-14). Comparable sizes:
Comparable Tire Sizes
Size Diameter
E70-14 25.8″
F70-14 26.2″
195/75R14 25.5″ (5.1″ tread)
205/75R14 26.1″ (5.3″ tread)
215/70R14 25.9″ (6.0″ tread)
225/70R14 26.4″ (6.3″ tread)
Since 215/70-14 is close to original, a ~5% over-read more likely reflects a ratio mismatch (e.g., 3.23 vs 3.08). To dial it in: measure the actual error over a 10-mile measured stretch, then compute the needed gear, or use the formulas: Drive Gear = (.0495835 × Tire Dia × Driven Gear) ÷ Gear Ratio; Driven Gear = (20.168 × Gear Ratio × Drive Gear) ÷ Tire Dia. A GM parts supplier can give the gear/housing part numbers from your ratio, tire size, and trans.

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Short answer: A rear thump that fades at speed — check, in order:

  1. Broken spring.
  2. Loose or broken U-bolts.
  3. Worn U-joints (replace).
  4. The one you don’t want: worn carrier bearings letting the ring and pinion teeth contact (the carrier seats back in place at higher speed).

(A new, balanced, matched-size tire makes a balance issue less likely, but it’s worth confirming.)

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Short answer: On a 14×7 Rally II, a safe all-around size is 225/60-14. A 235 fits the front (close) and is no problem in the rear; the rear can take a 255 or 265 depending on offset. All of these fit a 7″ rim. (Many members have moved away from a mismatched front/rear look on a street car.)

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Short answer: 1968s didn’t have traction bars. For 1967, what you got depended on engine, transmission, and rear-axle type:

1967 Firebird Traction Bars
Engine / Trans Bars
OHC-6 1-bbl auto None (unless 3.23 or higher axle)
OHC-6 1-bbl manual RH side
OHC-6 4-bbl auto RH side
OHC-6 4-bbl manual Both sides
V-8 2 & 4-bbl auto RH side
V-8 2 & 4-bbl manual Both sides
The rear-axle type also factored in — a 4-pinion rear (open or posi) got both bars/radius rods. So a 326 2-bbl convertible with two bars is plausible.

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Short answer: The original early Rally II (and some Rally I) trim ring — GM #9781480 (brushed) or #475019 (polished), both 4-clip 14×6 — was discontinued years ago and sets fetch up to ~$500. Several reproductions exist but vary in clip design, outer-ridge profile, finish, and fit, so quality is hit-or-miss.

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Short answer: When freshening a junkyard 1969 disc setup for a 1968: vacuum-test the booster (if it leaks, use it as a core); use the master cylinder and calipers as core exchanges for reliable rebuilt/new parts; replace the flex hoses (old ones fail when you need them most); and replace pitted/rusted caliper pins/bolts (parts-store “HELP!” line).

  • Cleaning: have brackets and spindles hot-tanked/bead-blasted, then paint (POR-15 works well). The booster’s correct finish is silver cadmium (Eastwood sells a cad-look kit; most cheap rebuilds are painted black, or pay extra to have one plated).
  • Rotors: the original 2-piece rotors (the ones with the groove) are hard to find and costly; 1-piece replacements (1969–72 Nova/Chevelle/LeMans/Omega/Ventura/Skylark) work fine. Have rotors checked for warpage/thickness — if good, just clean them (many shops turn to minimum thickness, so they can’t be turned again).
  • Valve: stock proportioning valves are non-adjustable — use the disc unit from the donor or buy new (Master Power). Two types exist: one with separate front-line outlets, and one that relies on a second small valve to split the single front line.
  • Inspect ball joints and front-end parts (and the rear brakes) while you’re in there.

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Short answer: For a safety upgrade, the 1969 F-body single-piston front-disc setup is the practical choice (the correct-for-1968 4-piston system is more work than needed; 4-wheel discs are nice but unnecessary). Get the master cylinder, booster, and valves from a 1969 Firebird/Camaro, and the disc spindles from the same car or a 1969–72 A-body (Chevelle, Skylark, GS, LeMans, Tempest, GTO, Cutlass, F-85, 442) — A-body spindles are the same, just bolt your Firebird steering arm onto them.

  • Donors: 1969 F-body; 1969–72 A-body; pre-1974 X-body (Nova/Apollo/Omega/Ventura); Grand Prix and 1970–72 Monte Carlo. Try to get the whole system: spindles, brake lines, bracket, master cylinder, and booster with valve.
  • Valves: 1969–70 GM disc cars used separate metering, proportioning, and warning-light pieces; from 1971 GM combined them into one “combination valve” on the frame rail. Some 1969 V8/AC cars had an extra rear proportioning valve on the left frame rail under the driver’s seat.

One member’s build: 1969 used parts (calipers as cores, El Camino 1-piece rotors replacing the too-thin 2-piece originals), braided stainless hoses, Performance Friction pads, stainless lines, rebuilt master/booster (replated silver cad — the correct Pontiac finish). Trickier spots: rear axle hard lines needed rebending for the 8.5″ housing; some line fittings didn’t match prop-valve ports (adapters/shop-made line); the 1969 flex-line brackets weren’t a direct bolt-on to the 1968 subframe.

Disc Conversion Cost (member’s build, ~1999)
Item Cost
Used parts (rotors [unusable], calipers [cores], brackets, control arms, hose brackets) $180.00
Calipers x2 (Bendix rebuilds) $30.00
Beadblasting $50.00
Rebuilt master & booster (incl. plating) $125.00
Stainless brake lines (front, rear, axle) $239.00
Braided stainless flex lines $70.00
Front pads (Performance Friction) $24.00
Front wheel bearings & seals $30.00
Fabricate new LH hardline $15.00
Misc. flared-nut adapters $12.00
1-piece front rotors (Bendix) $90.00
Proportioning valve (Master Power) $125.00
Combined total $990.00
For comparison, Firebird Specialties sold a complete new-component kit ~$795 (likely mild-steel lines, rubber flex lines) or a used-parts kit ~$350. A kit means less fabrication; control arms do not need changing for the swap. (Prices ~1999.)

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Short answer: Yes — on a 1968 with power brakes the booster vacuum line runs through a small clamped bracket attached to the throttle-cable bracket (as on 1967s), and members confirm this appears original. The pre-formed hose attaches at about the 9 o’clock position on the booster (the valve points toward the right side of the car, not straight up).

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Short answer: A 50-mph resonance that disappears by 65 mph, felt in the wheel and pedals regardless of gear or accel/brake, is almost always a balance or driveline issue — check the easy/cheap stuff first.

  • Lug nuts — make sure all are properly torqued (a loose wheel mimics this exactly).
  • U-joints — a worn/loose joint is a very common cause; replace and have the driveshaft balanced.
  • Tire balance / out-of-round — felt more in the wheel = front; whole car = rear. A flat-spotted tire from sitting can do it; a load-force-variance balancer (e.g., Hunter 9000) can find belt shifts and index the tire.
  • Also check the rotors (pulsation when braking slowly), front and rear wheel bearings, a collapsed shock, and worn motor/trans mounts or rear leaf-spring cushions (which let the rear float).

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Short answer: Whether a wide wheel/tire fits depends on backspacing and tire size, and every car differs slightly — so measure rather than guess. Factory 14×7 and 15×7 wheels are ~4″ backspacing; on a wider wheel, keeping 4″ pushes the extra width outboard, while more backspacing (e.g., 4.5–5″) splits it inboard.

  • One member measured ~5″ of usable backspacing on his 1968 and fit a 265/50R-15 (8″ wheel) without it sticking out — no rubbing on new stock-replacement 5-leaf springs/KYB shocks (rear sat ~3″ high, hoping to settle).
  • A 275/50-15 (~10.8″ wide) would protrude past the wheel opening and need the car raised. Watch tire height too: a 275/50-15 is ~25.8″ tall vs. a 275/60-15 at ~28″.
  • Measure method: pull a wheel and measure backspacing; remount and measure inside/outside clearance (allow ~1/2″ for axle side-play plus up/down movement). Likely contact points: the top of the inner wheelhouse, the leaf spring, and the lower shock mount. The result tells you how much wider you can go and what backspacing you need.

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