Angular Kinematics and Linear-Rotational Relations
Constant Angular Acceleration
A rotor starts at and accelerates uniformly at for . Determine its final angular velocity and angular displacement.
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0 of 2 Steps CompletedRim Speed and Centripetal Acceleration
A disk of radius rotates at . Determine the tangential speed and centripetal acceleration of a point on its rim.
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0 of 2 Steps CompletedMoment of Inertia and Torque
Moment of Inertia of Discrete Point Masses
Two point masses, at and at from an axis, rotate together. Determine the system moment of inertia.
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0 of 2 Steps CompletedParallel-Axis Theorem for a Tangent Sphere Axis
A uniform solid sphere has and . Determine its moment of inertia about an axis tangent to the sphere and parallel to a centroidal diameter.
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0 of 2 Steps CompletedWrench Torque with an Oblique Force
A wrench is pulled with a force at to the handle. Determine the torque magnitude about the bolt.
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0 of 2 Steps CompletedHanging Block and Solid Pulley
A block hangs from a massless string wrapped around a freely rotating solid cylindrical pulley of mass and radius . The string does not slip. Determine the block acceleration using .
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0 of 3 Steps CompletedRotational Energy and Rolling
Rotational Kinetic Energy of a Flywheel
A flywheel has moment of inertia and rotates at . Determine its rotational kinetic energy.
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0 of 1 Steps CompletedEnergy Partition for a Rolling Solid Cylinder
A solid cylinder of radius rolls without slipping at . Determine its translational, rotational, and total kinetic energies.
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0 of 3 Steps CompletedAngular Momentum Conservation
Figure Skater Pulling Mass Inward
A skater has and . She changes configuration to with negligible external torque. Determine .
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0 of 2 Steps CompletedChild Joining a Merry-Go-Round
A stationary merry-go-round has and radius . A child running tangentially at jumps onto its rim. Determine the common angular velocity.
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0 of 3 Steps CompletedTwo Rotating Disks Coupling by Friction
Disk 1 has and rotates at while Disk 2 has and is initially at rest. They are brought into contact and reach a common angular speed. Determine the final speed and percentage of rotational kinetic energy dissipated.