Physics for Scientists and Engineers: Foundations and Connections
Physics for Scientists and Engineers: Foundations and Connections
15th Edition
ISBN: 9781305289963
Author: Debora M. Katz
Publisher: Cengage Custom Learning
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Chapter 6, Problem 59PQ

Banked curves are designed so that the radial component of the normal force on the car rounding the curve provides the centripetal force required to execute uniform circular motion and safely negotiate the curve. A car rounds a banked curve with banking angle θ = 22.0° and radius of curvature 150 m. a. If the coefficient of static friction between the car’s tires and the road is μs = 0.400, what is the range of speeds for which the car can safely negotiate the turn without slipping? b. What is the minimum value of μs for which the car’s minimum safe speed is zero? Note that friction points up the incline here.

(a)

Expert Solution
Check Mark
To determine

The magnitude of range of velocities.

Answer to Problem 59PQ

The range of velocities are 2.26m/s and 37.6m/s.

Explanation of Solution

Case 1:

When the car slips down towards the inclined plane, then the frictional force is directed up from the inclined plane.

Write the expression for the y-component force on the car.

  FNcosθ=mgfsinθ (I)

Here, FN is the normal force, m is the mass of the car, g is the acceleration due to gravity , f is the static friction, and θ is the direction of inclined plane.

Write the expression to calculate the static frictional force on the car.

  f=μsFN

Here, μs is the co-efficient of static friction.

Substitute the above equation in (I) to calculate FN.

  FNcosθ=mg(μsFN)sinθFN(cosθ+μssinθ)=mgFN=mgcosθ(1+μstanθ)

Write the expression for the x-component of force on the car.

  FNsinθfcosθ=mv2minR

Here, vmin is the minimum speed of the car required and R is the radius of curvature.

Substitute the expression for FN and f in the above equation to rewrite in terms of vmin.

  mv2minR=(mgcosθ(1+μstanθ))sinθμs(mgcosθ(1+μstanθ))cosθv2min=gRtanθ(1+μstanθ)μsgR(1+μstanθ)vmin=gR(tanθμs1+μstanθ)

Substitute 9.80m/s2 for g, 22.0° for θ, 0.400 for μs and 150m for R in the above equation to calculate vmin.

  vmin=9.80m/s2(150m)(tan22.0°0.4001+(0.400)tan22.0°)=2.26m/s

Case 2:

When the car is slip up the incline plane the frictional force is directed towards down the incline plane.

Write the expression for the y-component force on the car.

  FNcosθ=mg+fsinθ (II)

Substitute the equation for f in (II) to calculate FN.

  FNcosθ=mg+(μsFN)sinθFN(cosθμssinθ)=mgFN=mgcosθ(1μstanθ)

Write the expression for the x-component of force on the car.

  FNsinθ+fcosθ=mv2maxR

Here, vmax is the maximum speed of the car required and R is the radius of curvature.

Substitute the expression for FN and f in the above equation to rewrite in terms of vmin.

  mv2maxR=(mgcosθ(1μstanθ))sinθ+μs(mgcosθ(1μstanθ))cosθv2max=gRtanθ(1μstanθ)+μsgR(1μstanθ)vmax=gR(tanθ+μs1μstanθ)

Substitute 9.80m/s2 for g, 22.0° for θ, 0.400 for μs and 150m for R in the above equation to calculate vmin.

  vmax=9.80m/s2(150m)(tan22.0°+0.4001(0.400)tan22.0°)=37.6m/s

Conclusion:

Therefore, the range of velocities are 2.26m/s and 37.6m/s.

(b)

Expert Solution
Check Mark
To determine

The minimum value for μs so that car is moving with zero minimum speed.

Answer to Problem 59PQ

The minimum value for μs is 0.404.

Explanation of Solution

Write the expression for minimum speed for the car.

  vmin=gR(tanθμs1+μstanθ)

Equate the above equation to zero to calculate the expression for μs.

    gR(tanθμs1+μstanθ)=0tanθμs1+μstanθ=0tanθμs=0μs=tanθ

Substitute 22.0° for θ in the above equation to calculate μs.

    μs=tan22.0°=0.404

Conclusion:

Therefore, the minimum value for μs is 0.404.

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Chapter 6 Solutions

Physics for Scientists and Engineers: Foundations and Connections

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