Two comprehensive indices–based static performance evaluation for the tripod parallel kinematic machine

Static performance evaluation is one of the most important issues during the design stage of tripod parallel kinematic machines. Taken the 1T2R tripods as examples, this article proposes two improved static performance indices, namely, local dexterity stiffness index and global dexterity stiffness i...

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Main Authors: Jun Zhang, Hanliang Fang, Tengfei Tang
Format: Article
Language:English
Published: SAGE Publishing 2017-11-01
Series:Advances in Mechanical Engineering
Online Access:https://doi.org/10.1177/1687814017734111
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spelling doaj-e16d19eaaec949deabd25536083ab6a42020-11-25T02:55:14ZengSAGE PublishingAdvances in Mechanical Engineering1687-81402017-11-01910.1177/1687814017734111Two comprehensive indices–based static performance evaluation for the tripod parallel kinematic machineJun ZhangHanliang FangTengfei TangStatic performance evaluation is one of the most important issues during the design stage of tripod parallel kinematic machines. Taken the 1T2R tripods as examples, this article proposes two improved static performance indices, namely, local dexterity stiffness index and global dexterity stiffness index. By combining the local dexterity formulation and the eigenstiffness matrix, the two indices can be derived, which considers both the kinematic dexterity and the static rigidity of the tripod parallel kinematic machines. Based on this concept, the indices of local dexterity stiffness index and global dexterity stiffness index are defined for the local and global static performance of the parallel kinematic machines, respectively. With the index of local dexterity stiffness index, the static performance distribution of an Exechon parallel kinematic machine over its entire workspace is predicted, and an optimal workspace is recommended. With the index of global dexterity stiffness index, the effects of design parameters on the global performance are investigated. This study can be further extended to other kinds of tripods, thus provides useful information for structural optimization and rigidity enhancement of the tripod modules.https://doi.org/10.1177/1687814017734111
collection DOAJ
language English
format Article
sources DOAJ
author Jun Zhang
Hanliang Fang
Tengfei Tang
spellingShingle Jun Zhang
Hanliang Fang
Tengfei Tang
Two comprehensive indices–based static performance evaluation for the tripod parallel kinematic machine
Advances in Mechanical Engineering
author_facet Jun Zhang
Hanliang Fang
Tengfei Tang
author_sort Jun Zhang
title Two comprehensive indices–based static performance evaluation for the tripod parallel kinematic machine
title_short Two comprehensive indices–based static performance evaluation for the tripod parallel kinematic machine
title_full Two comprehensive indices–based static performance evaluation for the tripod parallel kinematic machine
title_fullStr Two comprehensive indices–based static performance evaluation for the tripod parallel kinematic machine
title_full_unstemmed Two comprehensive indices–based static performance evaluation for the tripod parallel kinematic machine
title_sort two comprehensive indices–based static performance evaluation for the tripod parallel kinematic machine
publisher SAGE Publishing
series Advances in Mechanical Engineering
issn 1687-8140
publishDate 2017-11-01
description Static performance evaluation is one of the most important issues during the design stage of tripod parallel kinematic machines. Taken the 1T2R tripods as examples, this article proposes two improved static performance indices, namely, local dexterity stiffness index and global dexterity stiffness index. By combining the local dexterity formulation and the eigenstiffness matrix, the two indices can be derived, which considers both the kinematic dexterity and the static rigidity of the tripod parallel kinematic machines. Based on this concept, the indices of local dexterity stiffness index and global dexterity stiffness index are defined for the local and global static performance of the parallel kinematic machines, respectively. With the index of local dexterity stiffness index, the static performance distribution of an Exechon parallel kinematic machine over its entire workspace is predicted, and an optimal workspace is recommended. With the index of global dexterity stiffness index, the effects of design parameters on the global performance are investigated. This study can be further extended to other kinds of tripods, thus provides useful information for structural optimization and rigidity enhancement of the tripod modules.
url https://doi.org/10.1177/1687814017734111
work_keys_str_mv AT junzhang twocomprehensiveindicesbasedstaticperformanceevaluationforthetripodparallelkinematicmachine
AT hanliangfang twocomprehensiveindicesbasedstaticperformanceevaluationforthetripodparallelkinematicmachine
AT tengfeitang twocomprehensiveindicesbasedstaticperformanceevaluationforthetripodparallelkinematicmachine
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