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dc.rights.licenseopenen_US
hal.structure.identifierInstitut de Mécanique et d'Ingénierie [I2M]
dc.contributor.authorDELOS, Vincent
hal.structure.identifierInstitut de Mécanique et d'Ingénierie [I2M]
dc.contributor.authorTEISSANDIER, Denis
IDREF: 145672735
dc.contributor.authorMALYSHEV, Alexander
dc.contributor.authorNUEL, Grégory
hal.structure.identifierInstitut de Mécanique et d'Ingénierie [I2M]
dc.contributor.authorGARCÍA, Sonia C.
dc.date.accessioned2021-12-14T15:02:35Z
dc.date.available2021-12-14T15:02:35Z
dc.date.issued2021-12-01
dc.identifier.issn0010-4485en_US
dc.identifier.urioai:crossref.org:10.1016/j.cad.2021.103071
dc.identifier.urihttps://oskar-bordeaux.fr/handle/20.500.12278/124155
dc.description.abstractEnThe cumulative stack-up of geometric variations in mechanical systems can be modeled summing and intersecting sets of constraints. These constraints derive from tolerance zones or from contact restrictions between parts. The advantage of this approach is its robustness for treating any kind of mechanisms, including the over-constrained ones. However, the sum of constraints, which must be computed when simulating the accumulation of defects in serial joints, is a very time-consuming operation. In previous papers, we proposed to virtually limit the degrees of freedom of the toleranced features and joints turning the polyhedra into polytopes to avoid manipulating unbounded objects. Even though this approach enables to process the whole mechanism, it also introduces bounding or cap facets which increase the complexity of the operand sets after each operation until becoming far too significant. In this work, we introduce algorithms summing, intersecting and testing inclusions. As they operate on sets of constraints using unbounded polyhedral objects, we identify the smaller sub-space in which the projection of these operands are bounded sets. Calculating the sum in this sub-space allows reducing the operands complexity significantly and consequently the computational time. Then, checking the final inclusion informs us not only about the compliance of the mechanism tolerances with respect to the functional specification but also to quantify how far we are from this target. Finally prismatic polyhedra integrate ISO and contacts specifications in a very natural way and are able to perform a full kinematic analysis of the mechanism. After presenting the geometric properties on which this approach rely, we demonstrate it on an industrial case. Then we compare the computation times, prove the robustness of the new method and show how to quantify the functional condition compliance with respect to a given set of tolerances.
dc.language.isoENen_US
dc.sourcecrossref
dc.subject.enTolerance analysis
dc.subject.enModel reduction
dc.subject.enDOF
dc.subject.enPolyhedra
dc.subject.enMinkowski sum
dc.subject.enIntersection
dc.title.enPolyhedral-based Modeling and Algorithms for Tolerancing Analysis
dc.typeArticle de revueen_US
dc.identifier.doi10.1016/j.cad.2021.103071en_US
dc.subject.halSciences de l'ingénieur [physics]/Matériauxen_US
bordeaux.journalComputer-Aided Designen_US
bordeaux.page103071en_US
bordeaux.volume141en_US
bordeaux.hal.laboratoriesInstitut de Mécanique et d’Ingénierie de Bordeaux (I2M) - UMR 5295en_US
bordeaux.institutionUniversité de Bordeauxen_US
bordeaux.institutionBordeaux INPen_US
bordeaux.institutionCNRSen_US
bordeaux.institutionINRAEen_US
bordeaux.institutionArts et Métiersen_US
bordeaux.peerReviewedouien_US
bordeaux.inpressnonen_US
bordeaux.import.sourcedissemin
hal.identifierhal-03278978
hal.version1
hal.exporttrue
workflow.import.sourcedissemin
dc.rights.ccPas de Licence CCen_US
bordeaux.COinSctx_ver=Z39.88-2004&rft_val_fmt=info:ofi/fmt:kev:mtx:journal&rft.jtitle=Computer-Aided%20Design&rft.date=2021-12-01&rft.volume=141&rft.spage=103071&rft.epage=103071&rft.eissn=0010-4485&rft.issn=0010-4485&rft.au=DELOS,%20Vincent&TEISSANDIER,%20Denis&MALYSHEV,%20Alexander&NUEL,%20Gr%C3%A9gory&GARC%C3%8DA,%20Sonia%20C.&rft.genre=article


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