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{excerpt:hidden=true}*System:* One [rigid body] in [pure rotation] or one [point particle] constrained to move in a circle. --- *Interactions:* Any [angular acceleration]. --- *Warning:* The constraint of rotational motion implies [centripetal acceleration] may have to be considered.{excerpt}
h1. Rotational Motion
h4. {toggle-cloak:id=desc}Description and Assumptions
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This model applies to a [rigid body] which is executing [pure rotation] confined to the _xy_ plane about the origin.
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h4. {toggle-cloak:id=cues} Problem Cues
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Problems in rotational motion often feature an object which is constrained to rotate about some axle or pivot point. Additionally, the motion of any rigid body which can be treated using the [1-D Angular Momentum and Torque] model can be described as translation of the center of mass plus pure rotation about the center of mass.
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h4. {toggle-cloak:id=mod} Prior Models
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* [Uniform Circular Motion]
* [One-Dimensional Motion with Constant Acceleration|1-D Motion (Constant Acceleration)]
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h4. {toggle-cloak:id=vocab}Vocabulary
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* [centripetal acceleration]
* [tangential acceleration]
* [angular position]
* [angular frequency]
* [angular acceleration]
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h2. Model
h4. {toggle-cloak:id=sys} {color:red} Compatible System {color}
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This model applied to a single [rigid body] or to a single [point particle] constrained to move in a circular path.
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h4. {toggle-cloak:id=int} {color:red} Interactions {color}
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The system will be subject to a position-dependent [centripetal acceleration], and may also be subject to an angular (or equivalently, [tangential|tangential acceleration]) acceleration.
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h4. {toggle-cloak:id=def} {color:red} Relevant Definitions {color}
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h5. Relationships between Angular and Tangential Quantities
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