Consider a solid uniform sphere of radius R and mass M rolling without slipping. Which form of its kinetic energy is larger, translational or rotational? * a. Rotational kinetic energy is larger. b. Both are equal. c. Translational kinetic energy is larger. d. You need to know the speed of the sphere to tell. Suppose a solid uniform sphere of mass M and radius R rolls without slipping down an inclined plane starting from rest. What affects the magnitude of the angular velocity of the sphere at the bottom of the incline? * a. the mass of the sphere b. the radius of the sphere O c. both the mass and the radius of the sphere d. neither the mass nor the radius of the sphere

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Chapter1: Units, Trigonometry. And Vectors
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Consider a solid uniform sphere of radius R and mass M rolling without slipping. Which form
of its kinetic energy is larger, translational or rotational? *
O a. Rotational kinetic energy is larger.
O b. Both are equal.
O c. Translational kinetic energy is larger.
O d. You need to know the speed of the sphere to tell.
Suppose a solid uniform sphere of mass M and radius R rolls without slipping down an inclined
plane starting from rest. What affects the magnitude of the angular velocity of the sphere
at the bottom of the incline? *
O a. the mass of the sphere
O b. the radius of the sphere
c. both the mass and the radius of the sphere
d. neither the mass nor the radius of the sphere
Transcribed Image Text:Consider a solid uniform sphere of radius R and mass M rolling without slipping. Which form of its kinetic energy is larger, translational or rotational? * O a. Rotational kinetic energy is larger. O b. Both are equal. O c. Translational kinetic energy is larger. O d. You need to know the speed of the sphere to tell. Suppose a solid uniform sphere of mass M and radius R rolls without slipping down an inclined plane starting from rest. What affects the magnitude of the angular velocity of the sphere at the bottom of the incline? * O a. the mass of the sphere O b. the radius of the sphere c. both the mass and the radius of the sphere d. neither the mass nor the radius of the sphere
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