Effective design and implementation of specific displacement diagrams to control kinetic sculptures

Electronic cams are used for different manufacturing systems, but in terms of displacement diagrams, they have common characteristics. The emphasis is usually placed on maximum accuracy, minimum machine cycle time and the displacement diagram has a simple shape. This paper addresses a completely dif...

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Main Author: Dostrašil Pavel
Format: Article
Language:English
Published: EDP Sciences 2018-01-01
Series:MATEC Web of Conferences
Online Access:https://doi.org/10.1051/matecconf/201821004004
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spelling doaj-f2bdc7cebd1d4f02960ea644cf19b6142021-03-02T09:54:09ZengEDP SciencesMATEC Web of Conferences2261-236X2018-01-012100400410.1051/matecconf/201821004004matecconf_cscc2018_04004Effective design and implementation of specific displacement diagrams to control kinetic sculpturesDostrašil PavelElectronic cams are used for different manufacturing systems, but in terms of displacement diagrams, they have common characteristics. The emphasis is usually placed on maximum accuracy, minimum machine cycle time and the displacement diagram has a simple shape. This paper addresses a completely different case, which shows that the use of electronic cams is very diverse. An Omron’s electronic cam was used to control kinetic art sculptures. It was necessary to develop an implementation that would be able to accommodate a large number of very long and complex displacement diagrams. Some sculptures contained up to 147 interpolating axes and their programs took up to an hour. The proposal builds on the basic animation and designer’s demands, but it must comply with all the limits of the mechanism (maximum speed, torque, etc.). For this purpose, an independent software tool was developed. The final displacement diagram is composed from polynomial of the 5th order by defining the 0th, 1st, and 2nd derivatives at the key points. This method of design has proved to be very effective, and in addition, this implementation brought a significant saving of memory and reduction of computational complexity.https://doi.org/10.1051/matecconf/201821004004
collection DOAJ
language English
format Article
sources DOAJ
author Dostrašil Pavel
spellingShingle Dostrašil Pavel
Effective design and implementation of specific displacement diagrams to control kinetic sculptures
MATEC Web of Conferences
author_facet Dostrašil Pavel
author_sort Dostrašil Pavel
title Effective design and implementation of specific displacement diagrams to control kinetic sculptures
title_short Effective design and implementation of specific displacement diagrams to control kinetic sculptures
title_full Effective design and implementation of specific displacement diagrams to control kinetic sculptures
title_fullStr Effective design and implementation of specific displacement diagrams to control kinetic sculptures
title_full_unstemmed Effective design and implementation of specific displacement diagrams to control kinetic sculptures
title_sort effective design and implementation of specific displacement diagrams to control kinetic sculptures
publisher EDP Sciences
series MATEC Web of Conferences
issn 2261-236X
publishDate 2018-01-01
description Electronic cams are used for different manufacturing systems, but in terms of displacement diagrams, they have common characteristics. The emphasis is usually placed on maximum accuracy, minimum machine cycle time and the displacement diagram has a simple shape. This paper addresses a completely different case, which shows that the use of electronic cams is very diverse. An Omron’s electronic cam was used to control kinetic art sculptures. It was necessary to develop an implementation that would be able to accommodate a large number of very long and complex displacement diagrams. Some sculptures contained up to 147 interpolating axes and their programs took up to an hour. The proposal builds on the basic animation and designer’s demands, but it must comply with all the limits of the mechanism (maximum speed, torque, etc.). For this purpose, an independent software tool was developed. The final displacement diagram is composed from polynomial of the 5th order by defining the 0th, 1st, and 2nd derivatives at the key points. This method of design has proved to be very effective, and in addition, this implementation brought a significant saving of memory and reduction of computational complexity.
url https://doi.org/10.1051/matecconf/201821004004
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