2007Unpublished venueRequires access

Determining the Angular Motion of a Rigid Body Using Linear Accelerometers Without Integration

Namik Çiblak

Open publisher page 5 citations

Abstract

It is shown that the angular acceleration and velocity of a rigid body can be determined from translational material acceleration measurements made by an observer on the body. An important contribution is the fact is that this can be done without integration. Therefore, ideally, the solutions are obtained at any instant simultaneously. Also shown is that whereas the angular acceleration solution is unique, there always exists two solutions for the angular velocity that only differ in sign, which cannot be resolved any further. The necessary and sufficient number of points is proven to be four, provided that they are not coplanar. Numerical simulations, in which sensor errors are also considered, are conducted for verification.

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What this paper is about

It is shown that the angular acceleration and velocity of a rigid body can be determined from translational material acceleration measurements made by an observer on the body. An important contribution is the fact is that this can be done without integration. Therefore, ideally, the solutions are obtained at any instant simultaneously. Also shown is that whereas the angular acceleration solution is unique, there always exists two solutions for the angular velocity that only differ in sign, which cannot be resolved any further. The necessary and sufficient number of points is proven to be four, provided that they are not coplanar. Numerical simulations, in which sensor errors are also considered, are conducted for verification.

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OpenAlex reports 5 citations for this work. Citation counts describe recorded attention and do not establish research quality.

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Available abstract

It is shown that the angular acceleration and velocity of a rigid body can be determined from translational material acceleration measurements made by an observer on the body. An important contribution is the fact is that this can be done without integration. Therefore, ideally, the solutions are obtained at any instant simultaneously. Also shown is that whereas the angular acceleration solution is unique, there always exists two solutions for the angular velocity that only differ in sign, which cannot be resolved any further. The necessary and sufficient number of points is proven to be four, provided that they are not coplanar. Numerical simulations, in which sensor errors are also considered, are conducted for verification.

Key concepts: Angular acceleration, Angular velocity, Acceleration, Accelerometer, Rigid body, Observer (physics), Circular motion, Physics

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