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Math  /  Algebra

Question39. (II) How large must the coefficient of static friction be between the tires and the road if a car is to round a level curve of radius 85 m at a speed of 95 km/h95 \mathrm{~km} / \mathrm{h} ?

Studdy Solution

STEP 1

1. The car is rounding a level curve, which implies no banking angle.
2. The car is moving at a constant speed of 95km/h 95 \, \text{km/h} .
3. The radius of the curve is 85m 85 \, \text{m} .
4. We need to find the coefficient of static friction (μs \mu_s ) necessary to prevent slipping.

STEP 2

1. Convert the speed from km/h to m/s.
2. Use the centripetal force equation to find the required frictional force.
3. Relate the frictional force to the normal force using the coefficient of static friction.
4. Solve for the coefficient of static friction.

STEP 3

Convert the speed from km/h to m/s.
Given speed v=95km/h v = 95 \, \text{km/h} .
Convert to m/s using the conversion factor 1km/h=13.6m/s 1 \, \text{km/h} = \frac{1}{3.6} \, \text{m/s} .
v=95×13.6m/s v = 95 \times \frac{1}{3.6} \, \text{m/s}
v26.39m/s v \approx 26.39 \, \text{m/s}

STEP 4

Use the centripetal force equation to find the required frictional force.
The centripetal force required to keep the car moving in a circle is given by:
Fc=mv2r F_c = \frac{mv^2}{r}
where m m is the mass of the car, v v is the speed, and r r is the radius of the curve.

STEP 5

Relate the frictional force to the normal force using the coefficient of static friction.
The frictional force Ff F_f that provides the centripetal force is given by:
Ff=μsFn F_f = \mu_s \cdot F_n
where Fn=mg F_n = mg is the normal force, and g g is the acceleration due to gravity (9.81m/s2 \approx 9.81 \, \text{m/s}^2 ).
Since Ff=Fc F_f = F_c , we have:
μsmg=mv2r \mu_s \cdot mg = \frac{mv^2}{r}

STEP 6

Solve for the coefficient of static friction μs \mu_s .
Cancel m m from both sides of the equation:
μsg=v2r \mu_s \cdot g = \frac{v^2}{r}
Solve for μs \mu_s :
μs=v2rg \mu_s = \frac{v^2}{rg}
Substitute the known values:
μs=(26.39)285×9.81 \mu_s = \frac{(26.39)^2}{85 \times 9.81}
μs696.6721833.85 \mu_s \approx \frac{696.6721}{833.85}
μs0.835 \mu_s \approx 0.835
The coefficient of static friction must be approximately:
0.835 \boxed{0.835}

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