Explanation:
A control is important for an experiment because it allows the experiment to minimize the changes in all other variables except the one being tested.
A car of 1000 kg with good tires on a dry road can decelerate (slow down) at a steady rate of about 5.0 m/s2 when braking. If a car is initially traveling at 20 m/s (45 mi/h), (a) How much time does it take the car to stop? (b) What is its stopping distance? (c) What is the deacceleration? (d) How big is the net force to be applied to stop this car? (e) Calculate the work done by this force (Work = Force * distance). (f) During the stopping process, what happens to the car's kinetic energy?
(a) 4.0 s
The acceleration of the car is given by
[tex]a=\frac{v-u}{t}[/tex]
where
v is the final velocity
u is the initial velocity
t is the time interval
For this car, we have
v = 0 (the final speed is zero since the car comes to a stop)
u = 20 m/s is the initial velocity
[tex]a=-5.0 m/s^2[/tex] is the deceleration of the car
Solving the equation for t, we find the time needed to stop the car:
[tex]t=\frac{v-u}{a}=\frac{0-(20 m/s)}{-5.0 m/s^2}=4 s[/tex]
(b) 40 m
The stopping distance of the car can be calculated by using the equation
[tex]v^2 - u^2 = 2ad[/tex]
where
v = 0 is the final velocity
u = 20 m/s is the initial velocity
a = -5.0 m/s^2 is the acceleration of the car
d is the stopping distance
Solving the equation for d, we find
[tex]d=\frac{v^2-u^2}{2a}=\frac{0^2-(20 m/s)^2}{2(-5.0 m/s^2)}=40 m[/tex]
(c) [tex]-5.0 m/s^2[/tex]
The deceleration is given by the problem, and its value is [tex]-5.0 m/s^2[/tex].
(d) 5000 N
The net force applied on the car is given by
[tex]F=ma[/tex]
where
m is the mass of the car
a is the magnitude of the acceleration
For this car, we have
m = 1000 kg is the mass
[tex]a=5.0 m/s^2[/tex] is the magnitude of the acceleration
Solving the formula, we find
[tex]F=(1000 kg)(5.0 m/s^2)=5000 N[/tex]
(e) [tex]2.0\cdot 10^5 J[/tex]
The work done by the force applied by the car is
[tex]W=Fd[/tex]
where
F is the force applied
d is the total distance covered
Here we have
F = 5000 N
d = 40 m (stopping distance)
So, the work done is
[tex]W=(5000 N)(40 m)=2.0\cdot 10^5 J[/tex]
(f) The kinetic energy is converted into thermal energy
Explanation:
when the breaks are applied, the wheels stop rotating. The car slows down, as a result of the frictional forces between the brakes and the tires and between the tires and the road. Due to the presence of these frictional forces, the kinetic energy is converted into thermal energy/heat, until the kinetic energy of the car becomes zero (this occurs when the car comes to a stop, when v = 0).