Question

Been working on this one for a while - and can only get through part A......

Been working on this one for a while - and can only get through part A...

for part B, I am trying 44.1+(28.836)(4.8x10-2x2pi)=52.8 and 44.1-(28.836)(4.8x10-2x2pi)=28.18 --> it keeps marking this wrong.

A demonstration gyroscope wheel is constructed by removing the tire from a bicycle wheel 0.655 m in diameter, wrapping lead wire around the rim, and taping it in place. The shaft projects 0.200 m at each side of the wheel, and a woman holds the ends of the shaft in her hands. The mass of the system is 9.00 kg ; its entire mass may be assumed to be located at its rim. The shaft is horizontal, and the wheel is spinning about the shaft at 5.10 rev/s .

A)Find the force each hand exerts on the shaft when the shaft is at rest.

B)Find the force each hand exerts on the shaft when the shaft is rotating in a horizontal plane about its center at 4.80×10-2 rev/s .

C)Find the force each hand exerts on the shaft when the shaft is rotating in a horizontal plane about its center at 0.320 rev/s .

D)At what rate must the shaft rotate in order that it may be supported at one end only?

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Homework Answers

Answer #1

A) If the shaft is at rest, there is no net torque on the gyroscope, and each hand exerts an upward force with magnitude equal to half the weight mg .

   

B) The net torque about the center will be the product of the precession frequency ? and the horizontal component of the wheel’s angular momentum

Thus the difference between the magnitudes of the applied forces, multiplied by the distance d , is the product

. which denotes the two forces Fl and Fr F (for “Left” and “Right”),

we have the two equations

Dividing the first by d and adding to the second, and then subtracting as well, yields

  

=46.489N

=41.800N

C) again the same procedure

=199.628N

=-111.538N

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