Asst 24 QA

course Phy 201

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assignment #024

024. Centripetal Acceleration

Physics II

04-20-2007

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17:41:32

`q001. Note that this assignment contains 4 questions.

. Note that this assignment contains 4 questions.

When an object moves a constant speed around a circle a force is necessary to keep changing its direction of motion. This is because any change in the direction of motion entails a change in the velocity of the object. This is because velocity is a vector quantity, and if the direction of a vector changes, then the vector and hence the velocity has changed. The acceleration of an object moving with constant speed v around a circle of radius r has magnitude v^2 / r, and the acceleration is directed toward the center of the circle. This results from a force directed toward the center of the circle. Such a force is called a centripetal (meaning toward the center) force, and the acceleration is called a centripetal acceleration.

If a 12 kg mass travels at three meters/second around a circle of radius five meters, what centripetal force is required?

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RESPONSE -->

a = v^2 / r = 3^2 m/s /5m = 1.8 m/s/s

F = ma = 1.8 * 12 kg = 21.6 N

confidence assessment: 1

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17:41:54

The centripetal acceleration of the object is v^2 / r = (3 meters/second) ^ 2/(5 meters) = 1.8 meters/second ^ 2. The centripetal force, by Newton's Second Law, must therefore be Fcent = 12 kg * 1.8 meters/second ^ 2.

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RESPONSE -->

OK

self critique assessment: 3

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17:48:00

`q002. How fast must a 50 g mass at the end of a string of length 70 cm be spun in a circular path in order to break the string, which has a breaking strength of 25 Newtons?

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RESPONSE -->

a = F/m = 25 N / .050 kg = 500 m/s/s

a = v^2 / r

500 m/s/s = v^2 / .70 m

v^2 = sqrt 714

v = 26.7 m/s

confidence assessment: 2

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18:40:25

The centripetal acceleration as speed v will be v^2 / r, where r = 70 cm = .7 meters. The centripetal force will therefore be m v^2 / r, where m is the 50 g = .05 kg mass. If F stands for the 25 Newton breaking force, then we have

m v^2 / r = F, which we solve for v to obtain

v = `sqrt(F * r / m). Substituting the given values we obtain

v = `sqrt( 25 N * .7 meters / (.05 kg) ) = `sqrt( 25 kg m/s^2 * .7 m / (.05 kg) ) = `sqrt(350 m^2 / s^2) = 18.7 m/s.

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RESPONSE -->

OK, I'm not sure why the method I used didn't work, but I do see how I should have used the formula F = m v^2/r instead.

self critique assessment: 3

.70 m * 500 m/s/s = 350 m^2/s/s, not 714 m^2/s/s. Your procedure was fine; you just made one arithmetic error. I suspect you divided the 500 m/s/s by the .7 m. Note that careful use of units would have revealed your error; you would have come out with units s^-1, not m/s.

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20:58:24

`q003. What is the maximum number of times per second the mass in the preceding problem can travel around its circular path before the string breaks?

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RESPONSE -->

Circumference = d*3.14 = 1.4 m * 3.14 = 4.4 m

18.7 m/s / 4.4 m = 4.3 times around per second

confidence assessment: 1

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20:59:30

The maximum possible speed of the mass was found in the preceding problem to be 18.7 meters/second. The path of the mass is a circle of radius 70 cm = .7 meters. The distance traveled along this path in a single revolution is 2 `pi r = 2 `pi * .7 meters = 4.4 meters, approximately. At 18.7 meters/second, the mass will travel around the circle 18.7/4.4 = 4.25 times every second.

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RESPONSE -->

ok

and i realized the reason my answer didn't come out correct in the second problem- I divided Force by radius when I should have multiplied.

self critique assessment: 3

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21:00:20

`q004. Explain in terms of basic intuition why a force is required to keep a mass traveling any circular path.

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RESPONSE -->

If left alone, an object will travel in a straight path unless acted on by another force.

confidence assessment: 2

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21:00:50

We simply can't change the direction of motion of a massive object without giving it some sort of a push. Without such a force an object in motion will remain in motion along a straight line and with no change in speed.

If your car coasts in a circular path, friction between the tires and the road surface pushes the car toward the center of the circle, allowing it to maintain its circular path. If you try to go too fast, friction won't be strong enough to keep you in the circular path and you will skid out of the circle.

In order to maintain a circular orbit around the Earth, a satellite requires the force of gravity to keep pulling it toward the center of the circle. The satellite must travel at a speed v such that v^2 / r is equal to the acceleration provided by Earth's gravitational field.

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RESPONSE -->

ok

self critique assessment: 3

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Good. See my note(s) and let me know if you have questions.