Two-Dimensional Mathematical Model of Sports Surfaces with Angled Multi-Intensity Impact Tests

The purpose of this study is to propose a two-dimensional (2-D) mathematical model of sports surfaces for evaluating the shock attenuation and deformation properties in both the vertical and horizontal direction, especially in competitive track and field materials. We develop a 2-D impact test devic...

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Main Authors: Harutoshi Yukawa, Noriyuki Gyokusen, Shozo Kawamura
Format: Article
Language:English
Published: MDPI AG 2018-02-01
Series:Proceedings
Subjects:
Online Access:http://www.mdpi.com/2504-3900/2/6/281
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spelling doaj-4184ceae4ead4824a4d2a75ea16703092020-11-25T01:12:08ZengMDPI AGProceedings2504-39002018-02-012628110.3390/proceedings2060281proceedings2060281Two-Dimensional Mathematical Model of Sports Surfaces with Angled Multi-Intensity Impact TestsHarutoshi Yukawa0Noriyuki Gyokusen1Shozo Kawamura2Faculty of Regional Policy, Aichi University, Toyohashi 441-8522, JapanDepartment of Mechanical Engineering, Toyohashi University of Technology, Toyohashi 441-8122, JapanDepartment of Mechanical Engineering, Toyohashi University of Technology, Toyohashi 441-8122, JapanThe purpose of this study is to propose a two-dimensional (2-D) mathematical model of sports surfaces for evaluating the shock attenuation and deformation properties in both the vertical and horizontal direction, especially in competitive track and field materials. We develop a 2-D impact test device that can control the initial impact angle and intensity with parallelogram linkage. Using this device, various intensity impacts with angles ranging from 5–25 degrees were performed on test specimen. A 2-D mathematical model for sports surfaces and parameter identification method is also proposed for evaluating such surfaces, especially for polyurethane competitive track and field materials. The model is constructed from vertical and horizontal elements, and the parameters for each element are identified separately. Finally, vertical and horizontal forces with various angles and intensities can be estimated with an identified parameter set.http://www.mdpi.com/2504-3900/2/6/281sport surfaceangled multi-intensity impact testtwo-dimensional mathematical modelshock attenuationparameter identification
collection DOAJ
language English
format Article
sources DOAJ
author Harutoshi Yukawa
Noriyuki Gyokusen
Shozo Kawamura
spellingShingle Harutoshi Yukawa
Noriyuki Gyokusen
Shozo Kawamura
Two-Dimensional Mathematical Model of Sports Surfaces with Angled Multi-Intensity Impact Tests
Proceedings
sport surface
angled multi-intensity impact test
two-dimensional mathematical model
shock attenuation
parameter identification
author_facet Harutoshi Yukawa
Noriyuki Gyokusen
Shozo Kawamura
author_sort Harutoshi Yukawa
title Two-Dimensional Mathematical Model of Sports Surfaces with Angled Multi-Intensity Impact Tests
title_short Two-Dimensional Mathematical Model of Sports Surfaces with Angled Multi-Intensity Impact Tests
title_full Two-Dimensional Mathematical Model of Sports Surfaces with Angled Multi-Intensity Impact Tests
title_fullStr Two-Dimensional Mathematical Model of Sports Surfaces with Angled Multi-Intensity Impact Tests
title_full_unstemmed Two-Dimensional Mathematical Model of Sports Surfaces with Angled Multi-Intensity Impact Tests
title_sort two-dimensional mathematical model of sports surfaces with angled multi-intensity impact tests
publisher MDPI AG
series Proceedings
issn 2504-3900
publishDate 2018-02-01
description The purpose of this study is to propose a two-dimensional (2-D) mathematical model of sports surfaces for evaluating the shock attenuation and deformation properties in both the vertical and horizontal direction, especially in competitive track and field materials. We develop a 2-D impact test device that can control the initial impact angle and intensity with parallelogram linkage. Using this device, various intensity impacts with angles ranging from 5–25 degrees were performed on test specimen. A 2-D mathematical model for sports surfaces and parameter identification method is also proposed for evaluating such surfaces, especially for polyurethane competitive track and field materials. The model is constructed from vertical and horizontal elements, and the parameters for each element are identified separately. Finally, vertical and horizontal forces with various angles and intensities can be estimated with an identified parameter set.
topic sport surface
angled multi-intensity impact test
two-dimensional mathematical model
shock attenuation
parameter identification
url http://www.mdpi.com/2504-3900/2/6/281
work_keys_str_mv AT harutoshiyukawa twodimensionalmathematicalmodelofsportssurfaceswithangledmultiintensityimpacttests
AT noriyukigyokusen twodimensionalmathematicalmodelofsportssurfaceswithangledmultiintensityimpacttests
AT shozokawamura twodimensionalmathematicalmodelofsportssurfaceswithangledmultiintensityimpacttests
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