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A cyclist accelerates from rest at a rate of \({\bf{1}}{\bf{.00}}\;{\bf{m/}}{{\bf{s}}^{\bf{2}}}\). How fast will a point at the top of the rim of the tire (diameter = 0.80 cm) be moving after 2.25 s? [Hint: At any moment, the lowest point on the tire is in contact with the ground and is at rest — sees Fig. 8–57.]

FIGURE 8-57 Problem 79

Short Answer

Expert verified

The point at the top of the tire's rim will be moving at a speed of 4.50 m/s after 2.25 s.

Step by step solution

01

Relation between linear and angular velocity

If an object is rotating about a fixed axis, thelinear velocity (v) of any point on the object located at a distance r from the axis of rotation is related to the angular velocity\(\left( \omega \right)\)of the objectby the following relation:

\(v = r\omega \)

In this problem,the linear velocity of the axle of thetire and angular velocity of the tire are related to each other by the above relation.

02

Given information

The acceleration of the tire is\(a = 1.00\;{\rm{m/}}{{\rm{s}}^2}\).

The diameter of the tire is d = 0.80 cm.

The initial linear speed of the axle of the tire relative to the ground is\({v_0} = 0\;{\rm{m/}}{{\rm{s}}^2}\).

Time taken,\(t = 2.25\;{\rm{s}}\)

Consider thedirection of motion of the tire, i.e., the right direction to be positive.

03

Determination of the speed of axle of the tire

Let the linear speed of the axle of the tire relative to the ground after time t be v.

Using the kinematic equation of motion for the motion of the axle of the tire relative to the ground, you will get:

\(\begin{aligned}{c}v = {v_0} + at\\ = \left( {0\;{\rm{m/s}}} \right) + \left( {1.00\;{\rm{m/}}{{\rm{s}}^2}} \right)\left( {2.25\;{\rm{s}}} \right)\\ = 2.25\;{\rm{m/s}}\end{aligned}\) ... (i)

Thus, the velocity of the axle relative to the ground in the right direction is

\({\vec v_{{\rm{ag}}}} = v = 2.25\;{\rm{m/s}}\)to the right of the tire.

04

Determination of the speed of the top of the tire

At any instant, the lowest point of the tire in contact with the ground is at rest. Therefore, the velocity of the lowest point will be zero.

If the axle of the tire is taken as the reference frame and \(\omega \) as the angular velocity of the tire, then every point on the outer circumference of the tire will be moving with the speed:

\(v = r\omega \)

Thus, you can say that the velocity of the point at the top of the tire relative to the axle of the tire is:

\({\vec v_{{\rm{ta}}}} = v\)

The direction of this velocity is along the tangent at the top point, i.e., along the right of the tire.

So, the velocity of the top of the tire relative to the ground is:

\(\begin{aligned}{c}{{\vec v}_{{\rm{tg}}}} = {{\vec v}_{{\rm{ta}}}} + {{\vec v}_{{\rm{ag}}}}\\ = v + v\\ = 2v\end{aligned}\)

The direction of this velocity is toward the right.

Thus, using (i), the velocity of the top of the tire relative to the ground is:

\(\begin{aligned}{c}{{\vec v}_{tg}} = 2v\\ = 2\left( {2.25\;{\rm{m/s}}} \right)\\ = 4.50\;{\rm{m/s}}\end{aligned}\)

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Most popular questions from this chapter

The bolts on the cylinder head of an engine require tightening to a torque of 95 m N. If a wrench is 28 cm long, what force perpendicular to the wrench must the mechanic exert at its end? If the six-sided bolt head is 15 mm across (Fig. 8–44), estimate the force applied near each of the six points by a wrench.

To get a flat, uniform cylindrical satellite spinning at the correct rate, engineers fire four tangential rockets, as shown in Fig. 8–50. Suppose that the satellite has a mass of 3600 kg and a radius of 4.0 m and that the rockets each add a mass of 250 kg. What is the steady force required of each rocket if the satellite is to reach 32 rpm in 5.0 min, starting from rest?

FIGURE 8-50

Problem 45

If you used 1000 J of energy to throw a ball, would it travel faster if you threw the ball (ignoring air resistance)

(a) so that it was also rotating?

(b) so that it wasn't rotating?

(c) It makes no difference.

A small mass m on a string is rotating without friction in a circle. The string is shortened by pulling it through the axis of rotation without any external torque, Fig. 8–39. What happens to the angular velocity of the object?

(a) It increases.

(b) It decreases.

(c) It remains the same.

FIGURE 8-39

Mis-Conceptual Questions 10 and 11.

A small solid sphere and a small thin hoop are rolling along a horizontal surface with the same translational speed when they encounter a 20° rising slope. If these two objects roll up the slope without slipping, which will rise farther up the slope?

(a) The sphere.

(b) The hoop.

(c) Both the same.

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