(Figure 1) The car shown in the figure has mass m (this includes the mass of the wheels). The wheels have radius r mass mw, and moment of inertia I = km². Assume that the axles apply the same torque T to all four wheels. For simplicity, also assume that the weight is distributed uniformly so that all the wheels experience the same normal reaction from the ground, and so the same frictional force. Figure < 1 of 1 ▼ Part B Use Newton's laws to find an expression for the net external force acting on the car. Ignore air resistance. Express your answer in terms of any given variables and f, the force of friction acting on each wheel. VGI ΑΣΦ Fnet = Submit Part C N= Use Newton's laws to find an expression for N, the normal force on each wheel. Express your answer in terms of m and g, the magnitude of the acceleration due to gravity. Request Answer Submit Part D IVE ΑΣΦ Request Answer ? ?

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Chapter11: Angular Momentum
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(Figure 1) The car shown in the figure has mass m (this
includes the mass of the wheels). The wheels have radius ,
mass mw, and moment of inertia I = kmwr². Assume that
the axles apply the same torque T to all four wheels. For
simplicity, also assume that the weight is distributed
uniformly so that all the wheels experience the same normal
reaction from the ground, and so the same frictional force.
Figure
1 of 1
Part B
Use Newton's laws to find an expression for the net external force acting on the car. Ignore air resistance.
Express your answer in terms of any given variables and f, the force of friction acting on each wheel.
VE ΑΣΦ
Fnet =
Submit
Part C
N =
Use Newton's laws to find an expression for N, the normal force on each wheel.
Express your answer in terms of m and g, the magnitude of the acceleration due to gravity.
Submit
Request Answer
Part D
IVE ΑΣΦ
Request Answer
?
?
Transcribed Image Text:(Figure 1) The car shown in the figure has mass m (this includes the mass of the wheels). The wheels have radius , mass mw, and moment of inertia I = kmwr². Assume that the axles apply the same torque T to all four wheels. For simplicity, also assume that the weight is distributed uniformly so that all the wheels experience the same normal reaction from the ground, and so the same frictional force. Figure 1 of 1 Part B Use Newton's laws to find an expression for the net external force acting on the car. Ignore air resistance. Express your answer in terms of any given variables and f, the force of friction acting on each wheel. VE ΑΣΦ Fnet = Submit Part C N = Use Newton's laws to find an expression for N, the normal force on each wheel. Express your answer in terms of m and g, the magnitude of the acceleration due to gravity. Submit Request Answer Part D IVE ΑΣΦ Request Answer ? ?
Figure
1 of 1
Part D
Now assume that the frictional force f is not at its maximum value. What is the relation between the torque T applied to each wheel by the axles
and the acceleration a of the car? Once you have the exact expression for the acceleration, make the approximation that the wheels are much
lighter than the car as a whole.
Express your answer in terms of some or all of the variables m, r, T and the magnitude of the acceleration due to gravity g.
► View Available Hint(s)
a =
ΠΫΠΙ ΑΣΦ
Submit
?
Transcribed Image Text:Figure 1 of 1 Part D Now assume that the frictional force f is not at its maximum value. What is the relation between the torque T applied to each wheel by the axles and the acceleration a of the car? Once you have the exact expression for the acceleration, make the approximation that the wheels are much lighter than the car as a whole. Express your answer in terms of some or all of the variables m, r, T and the magnitude of the acceleration due to gravity g. ► View Available Hint(s) a = ΠΫΠΙ ΑΣΦ Submit ?
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