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You get extra droop travel. As long as you don't go farther than the ball joints, axles and shock travel allow, it nets more total suspension travel.
-Charlie
Good point Charlie
You get extra droop travel. As long as you don't go farther than the ball joints, axles and shock travel allow, it nets more total suspension travel.
-Charlie
The distance between the top and bottom of the front suspension doesn't change. Adding a spacer increases preload, and static ride height, whether you add it to the top or bottom.......I thought that video literally just said that top plate spacers don't compress.....
The distance between the top and bottom of the front suspension doesn't change. Adding a spacer increases preload, and static ride height, whether you add it to the top or bottom.
Adjusting a notch has the same affect as adding a spacer of the same thickness.
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So that video was wrong?
It was not wrong. Adding a top plate spacer does not increase preload, but does increase the ride height.
Adjusting the notch upwards increases the preload, though it does not affect the ride height (assuming a linear spring). But it does reduce the droop.
Moving the spring perch changes ride height
In the spirit of clarity, I'll repost rather than editUgh, I thought one thing but posted another, my bad. I was trying to point out that the extra preload does not change the spring stiffness, one of the common myths that the video busts. I changed my post to eliminate the confusion.
The distance between the top and bottom of the front suspension doesn't change. Adding a spacer (EDIT: into the coil stack) increases preload, and static ride height, whether you add it to the top or bottom of the stack.......I thought that video literally just said that top plate spacers don't compress.....
In the spirit of clarity, I'll repost rather than edit
The distance between the top and bottom of the front suspension doesn't change. Adding a spacer (EDIT: into the coil stack) increases preload, and static ride height, whether you add it to the top or bottom of the stack.
Adjusting a notch to compress the spring has the same affect as adding a spacer of the same thickness into the coil stack.
Adding a spacer ABOVE the coil stack will force the spring assembly down, pushing the LCA down, increasing ride height and reducing droop. Preload is not affected.
I think the other meaningful takeaway from that video (thanks for linking it [MENTION=319302]Bad Luck[/MENTION] ) is HOW lift affects total suspension travel. The Lexus in the video gained the highest amount of total effective suspension travel with 2" of lift (total of upward and downward travel) and lost effective travel above that.
If the 3rd Gen 4runner is the same, anything over 2" may not be optimal. Can we discuss that?
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Is it possible that the conclusion in the video that 2" is the "optimum" lift is based on the travel lengths of off-the-shelf shocks?
Would it be also possible that if long travel shocks were used, the "optimum" lift amount would go up?
...
Are you referring to longer travel shocks but still stock arms (mid travel) or a full long travel suspension?
Similar to the GX in the video, the gen3 4Runner stock droop is limited by the shock when installed, then next by the upper ball joint when the shock is removed. Extended length front coilovers require new upper control arms due to the increased length. With new upper control arms, the limit to droop will be the axles, just like the GX. The actual travel numbers are different, but the order of limitations is the same. This is all with stock arms, of course.If the 3rd Gen 4runner is the same, anything over 2" may not be optimal. Can we discuss that?
Now we're getting somewhere...Similar to the GX in the video, the gen3 4Runner stock droop is limited by the shock when installed, then next by the upper ball joint when the shock is removed. Extended length front coilovers require new upper control arms due to the increased length. With new upper control arms, the limit to droop will be the axles, just like the GX. The actual travel numbers are different, but the order of limitations is the same. This is all with stock arms, of course.
With 100% stock arms, I ended up with at 3/8" (actually, slightly over that - I think they were actually 11mm thick) top plate spacers to maximize the use stock arm travel (the lower arms get lifted just a bit to get the lower shock bolts in place).
By the numbers, on my 4Runner:
full extension (stock arms, pivot bolts loose): 25.25"
full compression (stock arms, pivot bolts loose, bump stops lifting truck): 16.75"
So, absolute max travel with stock arms/bump stops is 8.5"
I then set my front ride height at ~21.25" to give 4" compression travel and 4.5" droop travel, theoretically. I also went with the softest springs I had available to try and maximize front flex (V6 2WD springs) and verified the shocks don't bottom at full compression. It would be reasonable to go up another 1" if I wanted the look, before starting to lose too much droop.
I feel like I should check this on my ramps now...
-Charlie
full extension (stock arms, pivot bolts loose): 25.25"
No, hub center to fender lip, which allows you to measure with the wheel on or off. I was talking about wheel travel, not shock travel.Charlie, just to be sure we're on the same page, is this from shock eye CL to bottom of top hat?
No, hub center to fender lip, which allows you to measure with the wheel on or off. I was talking about wheel travel, not shock travel.
Just gonna leave this here for anyone that wants to see a good explanation of the effects of spring perch height: 4 Common Myths About IFS Lifts | Everything About Toyota IFS Part 2 - YouTube