Two disks are mounted (like a merry-go-round) on low-friction bearings on the same axle and can be brought together so that they couple and rotate as one unit. The first disk, with rotational inertia 3.27 kg-m² about its central axis, is set spinning counterclockwise (which may be taken as the positive direction) at 488 rev/min. The second disk, with rotational inertia 8.63 kg-m² about its central axis, is set spinning counterclockwise at 998 rev/min. They then couple together. (a) What is their angular speed after coupling? If instead the second disk is set spinning clockwise at 998 rev/min, what are their (b) angular velocity (using the correct sign for direction) and (c) direction of rotation after they couple together?
Angular Momentum
The momentum of an object is given by multiplying its mass and velocity. Momentum is a property of any object that moves with mass. The only difference between angular momentum and linear momentum is that angular momentum deals with moving or spinning objects. A moving particle's linear momentum can be thought of as a measure of its linear motion. The force is proportional to the rate of change of linear momentum. Angular momentum is always directly proportional to mass. In rotational motion, the concept of angular momentum is often used. Since it is a conserved quantity—the total angular momentum of a closed system remains constant—it is a significant quantity in physics. To understand the concept of angular momentum first we need to understand a rigid body and its movement, a position vector that is used to specify the position of particles in space. A rigid body possesses motion it may be linear or rotational. Rotational motion plays important role in angular momentum.
Moment of a Force
The idea of moments is an important concept in physics. It arises from the fact that distance often plays an important part in the interaction of, or in determining the impact of forces on bodies. Moments are often described by their order [first, second, or higher order] based on the power to which the distance has to be raised to understand the phenomenon. Of particular note are the second-order moment of mass (Moment of Inertia) and moments of force.
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Two disks are mounted (like a merry-go-round) on low-friction bearings on the same axle and can be brought together so that they
couple and rotate as one unit. The first disk, with rotational inertia 3.27 kg-m² about its central axis, is set spinning counterclockwise
(which may be taken as the positive direction) at 488 rev/min. The second disk, with rotational inertia 8.63 kg-m² about its central axis,
is set spinning counterclockwise at 998 rev/min. They then couple together. (a) What is their angular speed after coupling? If instead
the second disk is set spinning clockwise at 998 rev/min, what are their (b) angular velocity (using the correct sign for direction) and (c)
direction of rotation after they couple together?
(a) Number 857.9
(b) Number
(c)
clockwise
-559.7
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![Current Attempt in Progress
Your answer is partially correct.
(7.26 N )i^— (7.05 N )ê acts on a pebble with position vector ♬ = (5.76 m )j^– (3.10 m ), relative to the origin.
Force F=
What is the resulting torque acting on the pebble about (a) the origin and (b) a point with coordinates (5.00 m, 0, -5.54 m)?
(a) Number -40.608
(b) Number -40.608
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i 22.51
-18.26
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-41.817
-41.82
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