Please use this identifier to cite or link to this item: http://hdl.handle.net/11452/24868
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dc.contributor.authorSaitou, Kazuhiro-
dc.date.accessioned2022-03-07T10:38:43Z-
dc.date.available2022-03-07T10:38:43Z-
dc.date.issued2009-
dc.identifier.citationYıldız, A. R. ve Saitou, K. (2009). "Topology synthesis of multi-component structural assemblies in continuum domains". 2008 Proceedings of the ASME International Design Engineering Technical Conferences and Computers and Information in Engineering Conference, 1235-1245.en_US
dc.identifier.isbn978-0-7918-4325-3-
dc.identifier.urihttp://hdl.handle.net/11452/24868-
dc.description.abstractMost structural products have complex geometry to meet customer's demand of high functionality. Since manufacturing those products in one piece is either impossible or uneconomical, most structural products are assemblies of components with simpler geometries. The conventional way to design structural assemblies is to design overall geometry first, and then decompose the geometry to determine the part boundary and joint locations. This two-step process, however, can lead to sub-optimal designs since the product geometry, even if optimized as one piece, would not be optimal after decomposition. This paper presents a method for synthesizing structural assemblies directly from the design specifications, without going through the two-step process. Given an extended design domain with boundary and loading conditions, the method Simultaneously optimizes the topology and geometry of an entire structure and the location and configuration of joints, considering structural performance, manufacturability, and assembleability. As a relaxation of our previous work utilizing a beam-based ground structure [1], this paper presents a new formulation in a continuum design domain, which greatly enhances the ability to represent complex structural geometry observed in real-world products. A multi-objective genetic algorithm is used to obtain Pareto optimal solutions that exhibits trade-offs among stiffness, weight, manufacturability, and assembleability.en_US
dc.language.isoenen_US
dc.publisherAmerican Society of Mechanical Engineersen_US
dc.rightsinfo:eu-repo/semantics/closedAccessen_US
dc.subjectOptimizationen_US
dc.subjectDesignen_US
dc.subjectSystemsen_US
dc.subjectShapeen_US
dc.subjectEngineeringen_US
dc.subjectComputational geometryen_US
dc.subjectDesignen_US
dc.subjectLocationen_US
dc.subjectOptimal systemsen_US
dc.subjectOptimizationen_US
dc.subjectSynthesis (chemical)en_US
dc.subjectTopologyen_US
dc.subjectComplex geometriesen_US
dc.subjectDesign domainsen_US
dc.subjectDesign specificationen_US
dc.subjectGround structureen_US
dc.subjectLoading conditionen_US
dc.subjectManufacturabilityen_US
dc.subjectMulti-objective genetic algorithmen_US
dc.subjectMulticomponentsen_US
dc.subjectPareto optimal solutionsen_US
dc.subjectProduct geometryen_US
dc.subjectReal-worlden_US
dc.subjectStructural assembliesen_US
dc.subjectStructural geometryen_US
dc.subjectStructural performanceen_US
dc.subjectSub-optimal designsen_US
dc.subjectTopology synthesisen_US
dc.subjectTwo-step processen_US
dc.subjectAssemblyen_US
dc.titleTopology synthesis of multi-component structural assemblies in continuum domainsen_US
dc.typeProceedings Paperen_US
dc.identifier.wos000264180000115tr_TR
dc.identifier.scopus2-s2.0-70149109573tr_TR
dc.relation.publicationcategoryKonferans Öğesi - Uluslararasıtr_TR
dc.contributor.departmentUludağ Üniversitesi/Mühendislik Fakültesi/Makine Mühendisliği Bölümü.tr_TR
dc.contributor.orcid0000-0003-1790-6987tr_TR
dc.identifier.startpage1235tr_TR
dc.identifier.endpage1245tr_TR
dc.relation.journal2008 Proceedings of the ASME International Design Engineering Technical Conferences and Computers and Information in Engineering Conferenceen_US
dc.contributor.buuauthorYıldız, Ali Rıza-
dc.contributor.researcheridF-7426-2011tr_TR
dc.subject.wosEngineering, industrialen_US
dc.subject.wosEngineering, mechanicalen_US
dc.indexed.wosCPCISen_US
dc.indexed.scopusScopusen_US
dc.contributor.scopusid7102365439tr_TR
dc.subject.scopusTopology Optimization; Stress Constraints; Compliant Mechanismsen_US
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