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dc.contributor.authorMuñoz Romero, José
dc.contributor.authorConte, Vito
dc.contributor.authorMiodownik, M.
dc.contributor.otherUniversitat Politècnica de Catalunya. Departament de Matemàtica Aplicada III
dc.date.accessioned2010-10-04T08:07:15Z
dc.date.available2010-10-04T08:07:15Z
dc.date.created2010-08-30
dc.date.issued2010-08-30
dc.identifier.citationMuñoz, José J.; Conte, V.; Miodownik, M. Stress dependent morphogenesis continuum mechanics and system of trusses. A: "Continuum mechanics". Nova Publishers, 2010, p. 223-243.
dc.identifier.isbn978-1-60741-585-5
dc.identifier.urihttp://hdl.handle.net/2117/9261
dc.description.abstractThe mechanical analysis of soft tissues in biomechanics has undergone an increasing progress during the last decade. Part of this success is due to the development and application of some techniques of continuum mechanics, in particular, the decomposition of the deformation gradient, and the introduction of mass, density or volume changes in the reference configuration. Resorting to the common terminology employed in the literature, the changes in biomechanical processes may be classified as growth (change of mass), remodelling (change of density or other material properties such as fibre orientation) or morphogenesis (change of shape). Although the use of those concepts in bone and cardiovascular analysis is well extended, their use in morphogenesis during embryo development has been far less studied. The reasons of this fact may be found in the large shape changes encountered during this process, or the complexity of the material changes involved. In this chapter we develop a general framework for the modelling of morphogenesis by introducing a growth process in the structural elements of the cell, which in turn depends on the stress state of the tissue. Some experimental observations suggest this feedback mechanism during embryo development, and only very recently this behaviour has started to be simulated. We here derive the necessary equilibrium equations of a stress controlled growth mechanism in the context of continuum mechanics. In these derivations we assume a free energy source which is responsible of the active forces during the elongation process, and a passive hyperelastic response of the material. In addition, we write the necessary conditions that the active elongation law must satisfy in order to be thermodynamically consistent. We particularise these equations and conditions for the relevant elements of the cytoskeleton, namely, microfilaments and microtubules. We apply themodel to simulate the shape changes observed during embryomorphogenesis in truss element. As a salient result, themodel reveals that by imposing boundary stress conditions, unbounded elongation would be obtained. Therefore, either prescribed displacements or cross-links between fibres are necessary to reach a homeostatic state.
dc.format.extent21 p.
dc.language.isoeng
dc.publisherNova Publishers
dc.subjectÀrees temàtiques de la UPC::Enginyeria biomèdica::Biomecànica
dc.subjectÀrees temàtiques de la UPC::Matemàtiques i estadística::Anàlisi numèrica::Modelització matemàtica
dc.subject.lcshKinematics
dc.subject.lcshThermodynamics
dc.subject.lcshCytoskeleton
dc.subject.lcshMorphogenesis
dc.subject.lcshEukaryotic cells
dc.subject.lcshContinuum mechanics
dc.subject.lcshMathematical models
dc.titleStress dependent morphogenesis continuum mechanics and system of trusses
dc.typePart of book or chapter of book
dc.subject.lemacCinemàtica
dc.subject.lemacTermodinàmica
dc.subject.lemacCèl·lules eucariotes
dc.subject.lemacMecànica contínua
dc.subject.lemacMorfogènesi
dc.subject.lemacModels matemàtics
dc.contributor.groupUniversitat Politècnica de Catalunya. LACÀN - Mètodes Numèrics en Ciències Aplicades i Enginyeria
dc.relation.publisherversionhttps://www.novapublishers.com/catalog/product_info.php?products_id=10027
dc.rights.accessRestricted access - publisher's policy
local.identifier.drac3103612
dc.description.versionPostprint (published version)
local.citation.authorMuñoz, José J.; Conte, V.; Miodownik, M.
local.citation.publicationNameContinuum mechanics
local.citation.startingPage223
local.citation.endingPage243


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