Well, you're a lost cause. You should take a science course or two, if for no other reason than to learn proper use of some of the terminology you're misusing.
vadiver said:Look it up Beavs friend. It is a liquid, not necesarily a lubricant. Hydroclohric acid would act the same. I would not use it as a lube though. How often do you use water to lubricate your bicycle?
In a given situation, a lubricant decreases friction between two surfaces. Water does that. No one ever claimed that water should be marketed as a lubricant. You don't understand what a lubricant is. Astrolube is a lubricant and I wouldn't use it on my bike either. So what?
[quote="vadiver"]Again, wrong. In order to exit the corner you need to stop the front tire from sliding, at that point you are back in control. Rear wheel, even four wheel sliding, is a way to turn quicker. But at the moment you are sliding you are out of control. This does not necesarrily mean you will crash. This is like saying every time you fishtail in a car you will crash. Hogwash. It is being able to handle the situation. As long as you are sliding you will be going more in the direction of the slide and less in the direction intended. After the speed is scrubed off, they you begin to go in the direction desired.[quote="vadiver"]
Again, you're wrong. You could, with sufficient skill and sufficiently discrete control, exit a corner with a sliding front tire. If there is friction, control inputs can be made. That doesn't mean that every control input can be made. That's a stupid assumption, that's nearly as idiotic as the idea that if there's water on the surface, even just a thin film, then that darn tire is hydroplaning.
vadiver said:If you were truely in control as you claim. You would be able to change direction without stoping the slide. For example. You are sliding your front wheel in a left hand corner. Inorder to turn right, you will need to stop that slide and turn the other way.
Nope. You've created an unneccessary restraint on control. The fact that there is friction, even in a slide, automatically implies that accelerations can occur, and those accelerations don't have to follow a straight line. In fact, a plot of the acceleration function can very well be anything but linear in 2 or 3 dimensions.
vadiver said:Correct and also, kinetic friction is less than static friction.
So what?
vadiver said:And the imputs would be change in velocity or direction. Inotherwords acceleration. Until that happens you will be traveling in the direction of the slide.
Ok, go ahead and empirically prove that the acceleration has to be linear in all spatial dimensions. Go on. We'll wait.
vadiver said:From you example of motorcycle racing, after you have "bled" of velocity, you accelerate in the direction you want to travel. If you screw up, you crash.
Well that ain't true. You can begin a turn with a sliding tire. As speed bleeds off, the turns radius can be decreased.
vadiver said:Air has no effect on rolling resistance? Are you in a vaccum? Go back to you science and enginerring books and have another laugh.
The only way air plays a role in rolling resistance is that it is part of the thermal circuit in the tire system. That's it.
Aerodynamic drag is
NOT part of rolling resistance. It is an entirely different beast, with entirely different fuctional dependence.
vadiver said:Again, air has no imput on this? So a tire spinning in a vaccum will spin the same amount of time as a tire at sea level. Keeping all other variables constant.
If you're testing rolling resistance it will. You apparently don't understand what rolling resistance is. For your benefit, here is a cut and paste definition:
"Rolling resistance, sometimes called rolling friction, is the resistance that occurs when an object (e.g a wheel or tire) rolls. It is much smaller than sliding friction except for special cases like ice skating. It is caused by the deformation of the wheel or tire or the deformation of the ground. It depends very much on the material of the wheel or tire and the sort of ground. For example, rubber will give a bigger rolling friction than steel. Also, sand on the ground will give more rolling friction than concrete. A vehicle rolling will gradually slow down due to rolling friction, but a train with steel wheels running on steel rails will roll much further than a car or truck with rubber tires running on pavement, even when differences in mass and momentum are accounted for."
vadiver said:I agree with this. Part of you etc. I would add air resistance. The tire is rotating in air. If air had no resistance, why is so much money put into "areo" products? Furhter why do people trying to set speed records put finders around their wheels (tires)?
Because aerodynamic drag is the biggest force acting opposite a bike's direction of travel. Rolling resistance, however, has no aerodynamic components. You're confusing many different things, now.
vadiver said:All tires will hydroplane. (I will go farther and say any object will hydroplane given the proper sistuation)
Really? No one said that wasn't the case. What is the case is that road bicycle tires will not hydroplane in the conditions in which bicycles are ridden. If you're going to be going 125mph, then by all means, you should be concerned about hydroplaning. But if you're going to be concerned about it, then you better get some next generation road tires, because grooved tread on road bike tires won't help you.
vadiver said:Anytime the tire is not in contact with the intended surface due to a buld up of water under the tire, that is hydroplaning.
Well keep in mind that rolling over a damp surface does not mean you're hydroplaning, and as has been stated, road bicycle tires will not hydroplane until the speeds get ridiculously high.
vadiver said:I forgot one, water is not a lubricant, it is a solvent. Although it does have a viscosity.
You are aware, aren't you, that oils can be solvents, too, right? You are aware, aren't you, that no where in the definition of a solvent is the statement that said solvent can't also be a lubricant?