Rotational Motion - Damien Honors Physics
... • I plays the same role for rotational motion as mass does for translational motion • I depends on distribution of mass with respect to axis of rotation • When mass is concentrated close to axis of rotation, I is lower so easier to start and stop rotation ...
... • I plays the same role for rotational motion as mass does for translational motion • I depends on distribution of mass with respect to axis of rotation • When mass is concentrated close to axis of rotation, I is lower so easier to start and stop rotation ...
Forces and Motion
... A pulley changes the direction of the force you apply. You pull down , and the object moves up. The pulley does not reduce the amount of force that you have to apply. A pulley reduces the amount of force that you have to apply. Some of the weight is held by the object that the rope is attached to. T ...
... A pulley changes the direction of the force you apply. You pull down , and the object moves up. The pulley does not reduce the amount of force that you have to apply. A pulley reduces the amount of force that you have to apply. Some of the weight is held by the object that the rope is attached to. T ...
Notes for Topic 6
... to a3 . The next example derives this result from Newtonian mechanics, for the special case of a circular orbit. A circle is an ellipse with eccentricity equal to zero; then the semimajor axis is the radius. ...
... to a3 . The next example derives this result from Newtonian mechanics, for the special case of a circular orbit. A circle is an ellipse with eccentricity equal to zero; then the semimajor axis is the radius. ...
PreLecture 07
... Example 2: a plane moving relative to air, which is then moving relative to the ground. ...
... Example 2: a plane moving relative to air, which is then moving relative to the ground. ...
AP Physics – Work and Energy
... An object which is lifted to some new position can, if released from that position, do work as it falls back down. Oldfashioned clocks use weights in this way to power the clockwork mechanism. The net work done by falling object is simply the change in potential energy. ...
... An object which is lifted to some new position can, if released from that position, do work as it falls back down. Oldfashioned clocks use weights in this way to power the clockwork mechanism. The net work done by falling object is simply the change in potential energy. ...
Chapter 10 Forces
... Section 2: Friction, Gravity, and Elastic Forces Standard 8.2.b Students know when an object is subject to two or more forces at once, the result is the cumulative effect of all the forces. Standard 8.2.d Students know how to identify separately the two or more forces that are acting on a single sta ...
... Section 2: Friction, Gravity, and Elastic Forces Standard 8.2.b Students know when an object is subject to two or more forces at once, the result is the cumulative effect of all the forces. Standard 8.2.d Students know how to identify separately the two or more forces that are acting on a single sta ...
Impulse and Linear Momentum - Pearson-Global
... The above equation helps describe the change of mass in any system. The mass is constant if there is no flow of mass in or out of the system, or the mass changes in a predictable way if there is some flow of mass between the system and the environment. Basically, mass cannot appear from nowhere and ...
... The above equation helps describe the change of mass in any system. The mass is constant if there is no flow of mass in or out of the system, or the mass changes in a predictable way if there is some flow of mass between the system and the environment. Basically, mass cannot appear from nowhere and ...
Chapter 9 Rotational Dynamics continued
... 1. Select the object to which the equations for equilibrium are to be applied. 2. Draw a free-body diagram that shows all of the external forces acting on the object. 3. Choose a convenient set of x, y axes and resolve all forces into components that lie along these axes. 4. Apply the equations t ...
... 1. Select the object to which the equations for equilibrium are to be applied. 2. Draw a free-body diagram that shows all of the external forces acting on the object. 3. Choose a convenient set of x, y axes and resolve all forces into components that lie along these axes. 4. Apply the equations t ...
ch6h
... An amusement park ride consists of a large vertical cylinder that spins about its axis fast enough that any person inside is held up against the wall when the floor drops away. The coefficient of static friction between the person and the wall is s, and the radius of the cylinder is R. (a) Show th ...
... An amusement park ride consists of a large vertical cylinder that spins about its axis fast enough that any person inside is held up against the wall when the floor drops away. The coefficient of static friction between the person and the wall is s, and the radius of the cylinder is R. (a) Show th ...
Chapter 10 – Rotation and Rolling
... Translation: body’s movement described by x(t). Rotation: body’s movement given by θ(t) = angular position of the body’s reference line as function of time. Angular displacement: body’s rotation about its axis changing the angular position from θ1 to θ2. ...
... Translation: body’s movement described by x(t). Rotation: body’s movement given by θ(t) = angular position of the body’s reference line as function of time. Angular displacement: body’s rotation about its axis changing the angular position from θ1 to θ2. ...