A frictionless hoop of radius R is made to rotate at constant angular speed w around a diameter. A bead on the hoop starts on this diame- ter and is then given a tiny kick. Let N be the total force that the hoop applies to the bead, and let N₁ be the component of N that is perpendic- ular to the plane of the hoop. Where is N₁ maximum? What is the mag- nitude of N as a function of position? (Ignore gravity in this problem.
A frictionless hoop of radius R is made to rotate at constant angular speed w around a diameter. A bead on the hoop starts on this diame- ter and is then given a tiny kick. Let N be the total force that the hoop applies to the bead, and let N₁ be the component of N that is perpendic- ular to the plane of the hoop. Where is N₁ maximum? What is the mag- nitude of N as a function of position? (Ignore gravity in this problem.
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![10.23. Maximum normal force **
A frictionless hoop of radius R is made to rotate at constant angular
speed around a diameter. A bead on the hoop starts on this diame-
ter and is then given a tiny kick. Let N be the total force that the hoop
applies to the bead, and let N₁ be the component of N that is perpendic-
ular to the plane of the hoop. Where is N₁ maximum? What is the mag-
nitude of N as a function of position? (Ignore gravity in this problem.)
Coriolis
Al
te ste](/v2/_next/image?url=https%3A%2F%2Fcontent.bartleby.com%2Fqna-images%2Fquestion%2F783030a6-7894-4d6e-b2ef-9a21d89e4611%2Fb345fdc7-4dd4-438a-96ae-48b16e539f8e%2Fwf4ioar_processed.jpeg&w=3840&q=75)
Transcribed Image Text:10.23. Maximum normal force **
A frictionless hoop of radius R is made to rotate at constant angular
speed around a diameter. A bead on the hoop starts on this diame-
ter and is then given a tiny kick. Let N be the total force that the hoop
applies to the bead, and let N₁ be the component of N that is perpendic-
ular to the plane of the hoop. Where is N₁ maximum? What is the mag-
nitude of N as a function of position? (Ignore gravity in this problem.)
Coriolis
Al
te ste
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