Rotational Motion Torque Angular Displacement Angular displacement is

  • Slides: 18
Download presentation
Rotational Motion & Torque

Rotational Motion & Torque

Angular Displacement Angular displacement is a measure of the angle a line from the

Angular Displacement Angular displacement is a measure of the angle a line from the center to a point on the outside edge sweeps through as the object rotates l We use the greek letter “theta” to represent angular displacement l Angular displacement is measured in “radians” l

Arc Length l Arc length is represented by the letter s l it is

Arc Length l Arc length is represented by the letter s l it is the linear distance a point on the edge of the object rotates through l measured in meters r s r

Angular Velocity l Angular velocity is a measure of the rate of change of

Angular Velocity l Angular velocity is a measure of the rate of change of the angular position or the “spin rate” l We use the greek letter lowercase “omega” ( ) to represent angular velocity mathematically l Angular velocity is measured in “radians per second” (rad/sec)

Angular Velocity r May also be expressed in rpm (revolutions per minute) but must

Angular Velocity r May also be expressed in rpm (revolutions per minute) but must be converted to rad/sec for calculations r

Angular Acceleration l Angular acceleration is the rate of change of angular velocity l

Angular Acceleration l Angular acceleration is the rate of change of angular velocity l We use the greek letter “alpha” to represent angular acceleration l Angular acceleration is measured in radians per second (rad/sec 2)

Angular Acceleration r r

Angular Acceleration r r

Rotational Motion Relationships

Rotational Motion Relationships

What is Torque? l Torque is a measure of how much a force acting

What is Torque? l Torque is a measure of how much a force acting on an object causes that object to rotate. l Torque is dependent on force and lever arm. l Torque is measured in Newtonmeters (Nm)

Lever Arm l. Distance measured perpendicularly from the line of force to the pivot

Lever Arm l. Distance measured perpendicularly from the line of force to the pivot point. l. Measured in meters Lever arm 1 F 1 Lever arm 2 pivot F 2

Calculating Torque = Force * lever-arm The symbol for torque is the greek letter

Calculating Torque = Force * lever-arm The symbol for torque is the greek letter “tau” pivot Note: Force and lever arm must be perpendicular to each other F

Calculating Torque n i s =r pivot r “r” is the shortest distance from

Calculating Torque n i s =r pivot r “r” is the shortest distance from where the force is applied to the pivot point “ ” is the angle between r and the line of F F

Calculating Torque By finding components of F F - the perpendicular component of the

Calculating Torque By finding components of F F - the perpendicular component of the force will cause a the door F to pivot about its hinges (torque) F pivot r F F// - the parallel component of the force acts through the pivot point, so it does not cause the door to pivot (no torque) F

Net Torque & Rotational Equilibrium l The net torque is the sum of the

Net Torque & Rotational Equilibrium l The net torque is the sum of the individual torques. l In rotational equilibrium, the sum of the torques is equal to zero. In other words, there is no net torque on the object. OR Note: “ccw” = counterclockwise and “cw” = clockwise

EXAMPLE PROBLEM ON TORQUE: The Swinging Door Question In a hurry to catch a

EXAMPLE PROBLEM ON TORQUE: The Swinging Door Question In a hurry to catch a cab, you rush through a frictionless swinging door and onto the sidewalk. The force you extered on the door was 50 N, applied perpendicular to the plane of the door. The door is 1. 0 m wide. Assuming that you pushed the door at its edge, what was the torque on the swinging door (taking the hinge as the pivot point)? Hints 1. Where is the pivot point? 2. What was the force applied? 3. How far from the pivot point was the force applied? 4. What was the angle between the door and the direction of force?

Solution The pivot point is at the hinges of the door, opposite to where

Solution The pivot point is at the hinges of the door, opposite to where you were pushing the door. The force you used was 50 N, at a distance 1. 0 m from the pivot point. You hit the door perpendicular to its plane, so the angle between the door and the direction of force was 90 degrees. Since = r x F = r F sin( ) then the torque on the door was: = (1. 0 m) (50 N) sin(90°) = 50 N m

Rotational Kinetic Energy Rotational energy that an object has because it is rotating about

Rotational Kinetic Energy Rotational energy that an object has because it is rotating about an axis “I” is rotational inertia measured in kgm 2

Angular Momentum If momentum can be described as “inertia in motion” then Angular momentum

Angular Momentum If momentum can be described as “inertia in motion” then Angular momentum can be described as “inertia rotating” Like momentum, angular momentum must be conserved if there are no outside torques acting on the body