Chapter 8 Rotational Equilibrium and Rotational Dynamics
Wrench Demo
Torque Torque, , is the tendency of a force to rotate an object about some axis F is the force d is the lever arm (or moment arm) Units are Newton-m
Direction of Torque Torque is a vector quantity Direction determined by axis of twist Perpendicular to both r and F In 2-d, torque points into or out of paper Clockwise torques point into paper. Defined as negative Counter-clockwise torques point out of paper. Defined as positive
Non-perpendicular forces Only the y- component, Fsin , produces a torque
Non-perpendicular forces F is the force r is distance to point where F is applied Φ is the angle between F and r
Torque and Equilibrium Forces sum to zero (no linear motion) Torques sum to zero (no rotation)
Meter Stick Demo
Axis of Rotation Torques require point of reference Point of reference can be anywhere Use same point for all torques Pick the point to make problem least difficult
Example Given M = 120 kg. Neglect the mass of the beam. a) Find the tension in the cable b) What is the force between the beam and the wall
Solution a) Given: M = 120 kg, L = 10 m, x = 7 m Find: T Solve for T = 824 N Axis
Solution b) Given: M = 120 kg, L = 10 m, x = 7 m, T = 824 N Find f Solve for f = 353 N f
Alternative Solution b) Given: M = 120 kg, L = 10 m, x = 7 m Find f Solve for f = 353 N f Axis
Another Example Given: W=50 N, L=0.35 m, x=0.03 m Find the tension in the muscle F = 583 N x L W
Center of Gravity Gravitational force acts on all points of an extended object However, it can be considered as one net force acting on one point, the center-of-gravity, X. Weighted Average
Example Consider the 400-kg beam shown below. Find T R
Solution Find T R to solve for T R, choose axis here X = 2 m L = 7 m T R = N
One Last Example Given: x = 1.5 m, L = 5.0 m, w beam = 300 N, w man = 600 N Find: T x L
Solution Given: x, L, w beam,w man Find: T x L First, find T y T y = 330 N Now, find T T = 413 N
Baton Demo Moment-of_Inertia Demo
Torque and Angular Acceleration When 0, rigid body experiences angular acceleration Relation between and is analagous to relation between F and a Moment of Inertia
This mass analog is called the moment of inertia, I, of the object r is defined relative to rotation axis SI units are kg m 2
More About Moment of Inertia I depends on both the mass and its distribution. If an object’s mass is distributed further from the axis of rotation, the moment of inertia will be larger.
Demo: Moment of Inertia Olympics
Moment of Inertia of a Uniform Ring Divide ring into segments The radius of each segment is R
Example What is the moment of inertia of the following point masses arranged in a square? a) about the x-axis? b) about the y-axis? c) about the z-axis?
Solution a) Find I about the x-axis? Given: M 2 =2, M 3 =3 kg, L=0.6 m First, find distance to 2-kg masses r = 0.6·sin(45 ) =0.72 kg·m 2
Solution b) Find I about the y-axis? Same as before, except you use the 3-kg masses r = 0.6·sin(45 ) =1.08 kg·m 2
Solution c) Find I about the z-axis? Use all the masses r = 0.6·sin(45 ) =1.8 kg·m 2
Other Moments of Inertia
Example Treat the spindle as a solid cylinder. a) What is the moment of Inertia of the spindle? b) If the tension in the rope is 10 N, what is the angular acceleration of the wheel? c) What is the acceleration of the bucket? d) What is the mass of the bucket? M
Solution a) What is the moment of Inertia of the spindle? Given: M = 5 kg, R = 0.6 m M = 0.9 kgm 2
Solution b) If the tension in the rope is 10 N, what is ? Given: I = 0.9 kg m 2, T = 10 N, r = 0.6 m M Solve for =6.67 rad/s 2 c) What is the acceleration of the bucket? Given: r=0.6 m, = 6.67 rad/s a=4 m/s 2
Solution d) What is the mass of the bucket? Given: T = 10 N, a = 4 m/s 2 M M = 1.72 kg
Example a) What is the angular velocity of the space station after the rockets have finished firing? b) What is the centripetal acceleration at the edge of the space station? A cylindrical space station of radius R = 12 m and mass M = 3400 kg is designed to rotate around the axis of the cylinder. The space station’s moment of inertia is 0.75 MR 2. Retro- rockets are fired tangentially to the surface of space station and provide an impulse of 2.9x10 4 N·s.
Solution Given: M = 3400, R = 12, I = 0.75 MR 2 = 3.67x10 5 F·t = 2.9x10 4. a) Find: Solve for . = rad/s b) Find centripetal acceleration = 10.8 m/s 2
Rotational Kinetic Energy KE of center-of-mass motion KE due to rotation Each point of a rigid body rotates with angular velocity . Including the linear motion
Example What is the kinetic energy of the Earth due to the daily rotation? Given: M earth =5.98 x10 24 kg, R earth = 6.63 x10 6 m. First, find = 7.27 x10 -5 rad/s = 2.78 x10 -29
Example A solid sphere rolls down a hill of height 40 m. What is the velocity of the ball when it reaches the bottom? (Note: We don’t know r or m!) m cancels v = 23.7 m/s
Suitcase Demo
Angular Momentum Analogy between L and p Angular MomentumLinear momentum L = I p = mv = L/ tF = p/ t Conserved if no net outside torques Conserved if no net outside forces Rigid body Point particle
Rotating Chair Demo
Angular Momentum and Kepler’s 2nd Law For central forces, e.g. gravity, = 0 and L is conserved. Change in area in t is:
Example A 65-kg student sprints at 8.0 m/s and leaps onto a 110-kg merry-go-round of radius 1.6 m. Treating the merry-go-round as a uniform cylinder, find the resulting angular velocity. Assume the student lands on the merry-go-round while moving tangentially.
Solution Known: M, R, m, v 0 Find: F First, find L 0 Next, find I tot Now, given I tot and L 0, find = 2.71 rad/s
Example a) What is the period of the new motion? b) If each skater had a mass of 75 kg, what is the work done by the skaters in pulling closer? Two twin ice skaters separated by 10 meters skate without friction in a circle by holding onto opposite ends of a rope. They move around a circle once every five seconds. By reeling in the rope, they approach each other until they are separated by 2 meters.
Solution a) Find: T f Given: R 0 =5 m, R f =1 m, T 0 =5 s First, find expression for initial L Next, apply conservation of L = T 0 /25 = 0.2 s (2 skaters)
Solution b) Find: W Given: m=75 kg, R 0 =5 m, R f =1 m, T 0 =5 s, T f =0.2 s First, find moments of inertia Next, find values for Finally, find change in KE = 7.11x10 5 J