A small particle of mass m is pulled to the top of a friction less half-cylinder (of radius R ) by a light cord that passes over the top of the cylinder as illustrated in Figure P7.15. (a) Assuming the particle moves at a constant speed, show that F = mg cos θ . Note: If the particle moves at constant speed, the component of its acceleration tangent to the cylinder must be zero at all times. (b) By directly integrating W = ∫ F → ⋅ d r → , find the work done in moving the particle at constant speed from the bottom to the top of the hall-cylinder. Figure P7.15
A small particle of mass m is pulled to the top of a friction less half-cylinder (of radius R ) by a light cord that passes over the top of the cylinder as illustrated in Figure P7.15. (a) Assuming the particle moves at a constant speed, show that F = mg cos θ . Note: If the particle moves at constant speed, the component of its acceleration tangent to the cylinder must be zero at all times. (b) By directly integrating W = ∫ F → ⋅ d r → , find the work done in moving the particle at constant speed from the bottom to the top of the hall-cylinder. Figure P7.15
Solution Summary: The author explains that the force required to pull a small particle is F=mgmathrmcostheta . In equilibrium condition, the forces acting on the particle in any direction must
A small particle of mass m is pulled to the top of a friction less half-cylinder (of radius R) by a light cord that passes over the top of the cylinder as illustrated in Figure P7.15. (a) Assuming the particle moves at a constant speed, show that F = mg cos θ. Note: If the particle moves at constant speed, the component of its acceleration tangent to the cylinder must be zero at all times. (b) By directly integrating
W
=
∫
F
→
⋅
d
r
→
, find the work done in moving the particle at constant speed from the bottom to the top of the hall-cylinder.
Need a deep-dive on the concept behind this application? Look no further. Learn more about this topic, physics and related others by exploring similar questions and additional content below.