stangmx13
not Stan
There may be an issue with figure 4 in the pdf file. First note that the bike is making a right turn (the force from the pavement is to the right). Here's the conflict, in response to the right yaw (rotation about vertical axis, which is going to be a slow rate, other than very tight slow speed circles), the gyroscopic torque about the roll (lean) axis is trying to stand-up the bike, which is shown correctly in figure 4. However, it's described as "aligning", meaning the rider would be pulling on the right bar (steering further inwards) to compensate, but since the torque is trying to stand the bike up, the rider would need to counter-steer (push on the right bar) to prevent the standing up response.
Tony Foale explains all this a lot better in his book. u should check it out if u havent already, chapter 4. heres one of the relevant graphs. he (and i) agree that gyroscopic torque should be "misaligning" as its trying to steer the wheel into the corner. who knows if that invalidates the other study.
(this simulation assumes 0 tire width)
My main interest was the speed related aspect of this. Getting back to my original question, I'm thinking that the answer is that on a bike that is self-stable, one that tends to stand up with neutral steering input and the rider centered on the bike, that as speed increases, the rate of recovery (how fast the bike tends to stand up) decreases. At high enough speed, the rate of recovery (tendency to stand up) is so slow that it's almost imperceptible, which is what I was noticing at around 100 mph. There was nothing magical about 100 mph, that just happened to be the speed I noticed the effect on the Busa.
notice in the graph about that the resultant torque is 0 or near 0. even w/ the 0 tire width, i think the implication is still valid that there is no "recovery" in that simulated case. Foale doesnt give parameters for the corner, no speed, radius, or lean angle. but most of his other graphs show a high lean angle (>45deg), so we can prob assume its either a fast and/or tight corner.
speed and everything i showed both matter when a racer is entering a corner on the brakes at over 100mph. i suspect that there are far fewer >100mph corners where the rider enters off the brakes vs on the brakes, ie there are many more corners where the rider has adjusted the "capsize speed" dramatically because of their inputs.
that just exemplifies a main point that u should take away from all this. on the race track, im almost never not applying some steering torque. this is not because im not near capsize speed and the bike needs to be held in the corner. its because im braking all the way to the inside apex and i need to "fight" the steering torque resulting from that. for most tracks, theres at most 1 long corner that has any amount of time where im neither on the brakes or the gas. so the feelings described in this convo dont happen much on the track.