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Anonymous Mon 01 Feb 23:16:53 2021 No.12654261 View Reply Original Report

Quoted By: >>12654265 >>12654522 >>12657133

For this car to keep a constant speed, the gravitational force (mgsin30) would have to be equal to the force applied. The force applied in this scenario is according to my textbook the same as the force of friction (?mgcos30).
Here's what I don't understand. If force applied is described by ?mgcos30, how does it take into consideration the speed at which the wheels are spinning? What am I missing here?

Anonymous

Anonymous Mon 01 Feb 2021 23:18:46 No.12654265 Report

Quoted By: >>12654275

>>12654261
It does take into account the speed of the wheels though? Not sure why this is confusing

Anonymous

Anonymous Mon 01 Feb 2021 23:21:08 No.12654275 Report

Quoted By: >>12654285

>>12654265
Where?
? = coefficient of friction
m = mass
g = 9.82
cos30 = 0.866

Anonymous

Anonymous Mon 01 Feb 2021 23:23:53 No.12654285 Report

Quoted By: >>12654299

>>12654275
Where do you think the force of friction is acting? What part of the car is in contact with the road to experience friction?

Anonymous

Anonymous Mon 01 Feb 2021 23:27:51 No.12654299 Report

Quoted By: >>12654342

>>12654285
>What part of the car is in contact with the road to experience friction?
The wheels of course. I was under the impression that ? is just a number that explains how much friction there's between two materials, is that not so? Still don't get where speed comes in

Anonymous

Anonymous Mon 01 Feb 2021 23:38:10 No.12654342 Report

Quoted By: >>12654385

>>12654299
Sure u is just a material dependent coefficient. When you apply a force to the outer edge of a circle, it rotates. If it rotates, it acquires speed. It's friction that moves your car forward.

Anonymous

Anonymous Mon 01 Feb 2021 23:47:36 No.12654385 Report

Quoted By: >>12654526 >>12654567

>>12654342
But what if I want to calculate the force applied based on how many watts the engine has? So I know how fast the wheels are spinning, I don't see where that information fits in ?mgcos30

Anonymous

Anonymous Tue 02 Feb 2021 00:27:16 No.12654522 Report

Quoted By: >>12655937

>>12654261
>grade 11 physics
geeeeze dude

Anonymous

Anonymous Tue 02 Feb 2021 00:28:17 No.12654526 Report

Quoted By: >>12654564

>>12654385
thats basic friction and not rolling friction they have slightly different formulas. just assume you dont need to use rolling friction and pass grade 11

Anonymous

Anonymous Tue 02 Feb 2021 00:38:14 No.12654549 Report

Quoted By:

Why do you think the speed of the wheels matters? There are three forces in your problem; applied (engine), gravity, and friction. Friction is essentially irrelevant as long as there’s no sliding (i.e. the tires aren’t spinning out). The only reason the engine has to apply force to keep the car moving is because gravity is trying to move the car down the incline. As you say, then, we must continually apply mgsin(30) newtons of force to keep the car moving at constant velocity. There’s a totally separate concept, which is power, the amount of energy it takes per second to keep the car moving. This part does have a velocity dependence, because going up the incline faster requires more energy. In particular, the necessary power is the rate of change of the gravitational potential energy. This is mgvsin(30).

Anonymous

Anonymous Tue 02 Feb 2021 00:44:23 No.12654564 Report

Quoted By:

>>12654526
So the speed is a part of ?? I think I get it then, thanks

Anonymous

Anonymous Tue 02 Feb 2021 00:46:44 No.12654567 Report

Quoted By: >>12654607

>>12654385
everyone here misses your point somehow
you are right that the force is speed-independent
but work = force*displacement and power[watts]=work/time

So in the end the speed is limited by engine power

Anonymous

Anonymous Tue 02 Feb 2021 01:02:06 No.12654607 Report

Quoted By: >>12654634

>>12654567
>the force is speed-independent
This just made it click in my head, I think I get it. So the force applied actually doesn't get any higher when you step on the gas pedal? Does this also mean that force applied in this case can not become higher than mgcos30? Neat.

Anonymous

Anonymous Tue 02 Feb 2021 01:17:53 No.12654634 Report

Quoted By: >>12654645 >>12654674

>>12654607
At constant speed the force is the same in your textbook view

"stepping on the gas" in a real car is a bit more complicated because of the air resistance and other non-linear effects... and also due to the gearbox
==> at high speed you will be in a higher gear so that the actual engine torque has to increase with speed.

But for your textbook, power = force*speed which is the same (friction + mgsin(30))*v that someone else mentioned.
Here the textbook might or might not ignore the rolling friction

Anonymous

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Anonymous Tue 02 Feb 2021 01:20:00 No.12654637 Report

Quoted By:

Wait wait wait... If friction is the only thing that determines force applied, and not how fast the wheels are spinning, then why does the car accelerate when you put the pedal down? It's because the wheels are spinning faster right? And to accelerate you need force, so does the wheels spinning faster not lead to more applied force?

Anonymous

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Anonymous Tue 02 Feb 2021 01:21:43 No.12654645 Report

Quoted By:

>>12654634
Oh, thanks bro. Ignore my other post

Anonymous

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Anonymous Tue 02 Feb 2021 01:30:16 No.12654674 Report

Quoted By: >>12654686 >>12654691

>>12654634
Come to think of it, the problem actually had acceleration in it. It was: "what is ? if the car is accelerating with 1m/s^2?"
I was able to solve it but now it still leaves me confused, all my instincts are telling me that the car should accelerate when the wheels spin faster. You don't accelerate if the wheels are going slow... I don't get it

Anonymous

Anonymous Tue 02 Feb 2021 01:37:33 No.12654686 Report

Quoted By: >>12654689

>>12654674
>ll my instincts are telling me that the car should accelerate when the wheels spin faster.
Try slamming the gas while you're on ice. What happens? The wheels just spin and you don't move. You need friction to accelerate forward.

Anonymous

Anonymous Tue 02 Feb 2021 01:39:36 No.12654688 Report

Quoted By: >>12654692

The coefficient of friction is for the vehicle as a whole. Don't thing about the speed the wheels are spinning.

Anonymous

Anonymous Tue 02 Feb 2021 01:39:48 No.12654689 Report

Quoted By: >>12654699

>>12654686
But what makes the car accelerate when you put down the pedal then? Does it increase friction somehow?

Anonymous

Anonymous Tue 02 Feb 2021 01:40:29 No.12654691 Report

Quoted By: >>12654699 >>12654704

>>12654674
You should first establish if you textbook intends for the wheels to spin or not... my expectation when I see "?" is that there's no rolling wheels and the "car" is actually a box sitting on an inclined plane

Then you should make up your mind if you go uphill under engine power or downhill because of gravity.

Anonymous

Anonymous Tue 02 Feb 2021 01:41:17 No.12654692 Report

Quoted By:

>>12654688
Thanks for the advice, so I should just forget about trying to understand for now? I've got the formula at least

Anonymous

Anonymous Tue 02 Feb 2021 01:44:28 No.12654699 Report

Quoted By: >>12654707

>>12654691
>my expectation when I see "?" is that there's no rolling wheels and the "car" is actually a box sitting on an inclined plane
... absolute bullshit mate. When you see u on a wheel, the wheel is absolutely spinning. Using your methodology, you'll hit a brick wall when you consider torques. What's happening is no-slip, which is opposite of no rolling.
>>12654689
Friction remains the same. You spin the wheels faster which cases them to push against the ground harder, which causes the car to accelerate forward. It's the exact same principle that governs you walking or running. You can try to run on ice, but you'll just slip because there's no friction.

Anonymous

Anonymous Tue 02 Feb 2021 01:46:12 No.12654704 Report

Quoted By: >>12654720

>>12654691
I was able to solve it like this:
F=m*1
Fa - Fg = m*1
Fa = m + Fg
? = (m + Fg) / Fn
Still don't understand how friction makes the car accelerate but I suppose that's not needed to understand. There's friction when the wheels are spinning too but in that case you're not accelerating

Anonymous

Anonymous Tue 02 Feb 2021 01:49:04 No.12654707 Report

Quoted By: >>12654729

>>12654699
>You spin the wheels faster which cases them to push against the ground harder,
So the speed at which the wheel's are spinning DOES determine applied force? I am super confused right now, ?mgcos30 supposedly gives you applied force but the speed of the wheels is not part of that formula

Anonymous

Anonymous Tue 02 Feb 2021 01:56:08 No.12654720 Report

Quoted By: >>12654736

>>12654704
Start from:
Fa=Ff+Fg
The applied force needs to match the gravitational force and the frictional force.

Anonymous

Anonymous Tue 02 Feb 2021 01:58:31 No.12654729 Report

Quoted By: >>12654746

>>12654707
>So the speed at which the wheel's are spinning DOES determine applied force?
No, the total applied force determines the speed at which the wheels spin. This rotation of the wheel induces a forward motion due to friction. You don't write speed anywhere because you just skip all those steps (for now) and consider only translational forces. As far as you're concerned, at this point in the semester, it's just an internal force that you don't need to worry about.

Anonymous

Anonymous Tue 02 Feb 2021 02:01:20 No.12654736 Report

Quoted By: >>12654753

>>12654720
>The applied force needs to match the gravitational force and the frictional force.
The friction is working in the opposite way of Fg... And Ff is the same thing as Fa in this case. So for a constant speed it becomes: Ff = Fg

Anonymous

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Anonymous Tue 02 Feb 2021 02:04:21 No.12654746 Report

Quoted By:

>>12654729
THANKS

Anonymous

Anonymous Tue 02 Feb 2021 02:06:15 No.12654753 Report

Quoted By: >>12654764

>>12654736
Friction always acts opposite of motion. Car is moving up the hill at a constant speed, yes?

Anonymous

Anonymous Tue 02 Feb 2021 02:10:05 No.12654764 Report

Quoted By:

>>12654753
Which way are the wheels spinning? Friction is opposite of that

Anonymous

Anonymous Tue 02 Feb 2021 11:00:43 No.12655937 Report

Quoted By:

>>12654522
? we all had to get through it at some point, why are you judging a kid for being a kid?

Anonymous

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Anonymous Tue 02 Feb 2021 18:12:59 No.12657123 Report

Quoted By: >>12657142

Anonymous

Anonymous Tue 02 Feb 2021 18:14:32 No.12657133 Report

Quoted By: >>12657912

>>12654261
Gravity force should point down desu.

Anonymous

Anonymous Tue 02 Feb 2021 18:16:03 No.12657142 Report

Quoted By: >>12657161

>>12657123
Bait for the pedo.

Anonymous

Anonymous Tue 02 Feb 2021 18:20:32 No.12657161 Report

Quoted By:

>>12657142
>the cringe Brittany Venti fan

Anonymous

Anonymous Tue 02 Feb 2021 20:14:34 No.12657912 Report

Quoted By: >>12657968

>>12657133
>doesn't know how inclined planes work

Anonymous

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Anonymous Tue 02 Feb 2021 20:20:02 No.12657968 Report

Quoted By: >>12658006

>>12657912
It is pointing downward, pseud.

Anonymous

Anonymous Tue 02 Feb 2021 20:22:08 No.12658006 Report

Quoted By:

>>12657968
cope

Anonymous

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Anonymous Tue 02 Feb 2021 20:54:25 No.12658680 Report

Quoted By:

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