A Screw Theory Approach for the Type Synthesis of Compliant Mechanisms With Flexures
Author(s) -
HaiJun Su,
Denis Dorozhkin,
Judy M. Vance
Publication year - 2009
Publication title -
iowa state university digital repository (iowa state university)
Language(s) - English
Resource type - Conference proceedings
DOI - 10.1115/detc2009-86684
Subject(s) - wrench , constraint (computer aided design) , screw theory , compliant mechanism , computer science , ideal (ethics) , mechanism (biology) , engineering , mechanical engineering , artificial intelligence , finite element method , structural engineering , robot , physics , philosophy , quantum mechanics , epistemology
This paper presents a screw theory based approach for the type synthesis of compliant mechanisms with flexures. We provide a systematic formulation of the constraint-based approach which has been mainly developed by precision engineering experts in designing precision machines. The two fundamental concepts in the constraint-based approach, constraint and freedom, can be represented mathematically by a wrench and a twist in screw theory. For example, an ideal wire flexure applies a translational constraint which can be described a wrench of pure force. As a result, the design rules of the constraint-based approach can be systematically formulated in the format of screws and screw systems. Two major problems in compliant mechanism design, constraint pattern analysis and constraint pattern design are discussed with examples in details. This innovative method paves the way for introducing computational techniques into the constraint-based approach for the synthesis and analysis of compliant mechanisms.Copyright © 2009 by ASME
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