Constitutive modeling and mechanical behavior prediction of biodegradable polymers during degradation

Bibliographic Details
Main Author: André Vieira
Publication Date: 2015
Other Authors: Rui Miranda Guedes, Volnei Tita
Format: Book
Language: eng
Source: Repositórios Científicos de Acesso Aberto de Portugal (RCAAP)
Download full: https://repositorio-aberto.up.pt/handle/10216/81630
Summary: A large range of biodegradable polymers has been used to produce implantable medicaldevices, such as suture fibers, fixation screws and soft tissue engineering devices. Apartfrom biological compatibility, these devices should also be functional compatible andperform adequate mechanical temporary support during the healing process. Themechanical behavior of biodegradable polymers is known to be rate dependent and toexhibit hysteresis upon cyclic loading. On the other hand, ductility, toughness andstrength of the material decay during hydrolytic degradation. Continuum basedmechanical models can be used as dimensioning tools for biodegradable polymericdevices, since they enable to predict its mechanical behavior in a complex load andenvironment scenario, during the hydrolytic degradation process.The existing models can be divided into two categories: the time-dependent models andthe time-independent models. Linear elastic or non-linear elastic models, such as elastoplasticor hyperelastic models, can simulate the time-independent response, whichcorresponds to the relaxed configuration and represent the relaxed state. However, theseapproaches neglect the time-dependent mechanical behavior. To consider timedependency, dissipative elements must be used in the model formulation.A revision of the three-dimensional constitutive models generally used for polymers ispresented in this chapter. These models are based on the concept of networks, combiningelastic, sliding and dissipative elements, in order to simulate the time-dependentmechanical behavior, although neglecting changes in the properties of the material duringhydrolytic degradation process. Thus, some of these models were recently adapted toaddress the hydrolytic degradation process. A common method consists on becomingsome of the material model parameters dependent on a scalar variable, which expressesthe hydrolytic damage.Furthermore, the advantages and limitations of the models arediscussed, based on the correlation between predictions and experimental results of ablend of polylactic acid and polycaprolactone (PLA-PCL), which include monotonictensile tests at different strain rates and quasi-static cyclic unloading-reloading.
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spelling Constitutive modeling and mechanical behavior prediction of biodegradable polymers during degradationEngenharia de biomateriais, Engenharia mecânicaBiomaterial engineering, Mechanical engineeringA large range of biodegradable polymers has been used to produce implantable medicaldevices, such as suture fibers, fixation screws and soft tissue engineering devices. Apartfrom biological compatibility, these devices should also be functional compatible andperform adequate mechanical temporary support during the healing process. Themechanical behavior of biodegradable polymers is known to be rate dependent and toexhibit hysteresis upon cyclic loading. On the other hand, ductility, toughness andstrength of the material decay during hydrolytic degradation. Continuum basedmechanical models can be used as dimensioning tools for biodegradable polymericdevices, since they enable to predict its mechanical behavior in a complex load andenvironment scenario, during the hydrolytic degradation process.The existing models can be divided into two categories: the time-dependent models andthe time-independent models. Linear elastic or non-linear elastic models, such as elastoplasticor hyperelastic models, can simulate the time-independent response, whichcorresponds to the relaxed configuration and represent the relaxed state. However, theseapproaches neglect the time-dependent mechanical behavior. To consider timedependency, dissipative elements must be used in the model formulation.A revision of the three-dimensional constitutive models generally used for polymers ispresented in this chapter. These models are based on the concept of networks, combiningelastic, sliding and dissipative elements, in order to simulate the time-dependentmechanical behavior, although neglecting changes in the properties of the material duringhydrolytic degradation process. Thus, some of these models were recently adapted toaddress the hydrolytic degradation process. A common method consists on becomingsome of the material model parameters dependent on a scalar variable, which expressesthe hydrolytic damage.Furthermore, the advantages and limitations of the models arediscussed, based on the correlation between predictions and experimental results of ablend of polylactic acid and polycaprolactone (PLA-PCL), which include monotonictensile tests at different strain rates and quasi-static cyclic unloading-reloading.20152015-01-01T00:00:00Zinfo:eu-repo/semantics/publishedVersioninfo:eu-repo/semantics/bookapplication/pdfhttps://repositorio-aberto.up.pt/handle/10216/81630engAndré VieiraRui Miranda GuedesVolnei Titainfo:eu-repo/semantics/openAccessreponame:Repositórios Científicos de Acesso Aberto de Portugal (RCAAP)instname:FCCN, serviços digitais da FCT – Fundação para a Ciência e a Tecnologiainstacron:RCAAP2025-02-27T20:08:56Zoai:repositorio-aberto.up.pt:10216/81630Portal AgregadorONGhttps://www.rcaap.pt/oai/openaireinfo@rcaap.ptopendoar:https://opendoar.ac.uk/repository/71602025-05-28T23:52:48.225540Repositórios Científicos de Acesso Aberto de Portugal (RCAAP) - FCCN, serviços digitais da FCT – Fundação para a Ciência e a Tecnologiafalse
dc.title.none.fl_str_mv Constitutive modeling and mechanical behavior prediction of biodegradable polymers during degradation
title Constitutive modeling and mechanical behavior prediction of biodegradable polymers during degradation
spellingShingle Constitutive modeling and mechanical behavior prediction of biodegradable polymers during degradation
André Vieira
Engenharia de biomateriais, Engenharia mecânica
Biomaterial engineering, Mechanical engineering
title_short Constitutive modeling and mechanical behavior prediction of biodegradable polymers during degradation
title_full Constitutive modeling and mechanical behavior prediction of biodegradable polymers during degradation
title_fullStr Constitutive modeling and mechanical behavior prediction of biodegradable polymers during degradation
title_full_unstemmed Constitutive modeling and mechanical behavior prediction of biodegradable polymers during degradation
title_sort Constitutive modeling and mechanical behavior prediction of biodegradable polymers during degradation
author André Vieira
author_facet André Vieira
Rui Miranda Guedes
Volnei Tita
author_role author
author2 Rui Miranda Guedes
Volnei Tita
author2_role author
author
dc.contributor.author.fl_str_mv André Vieira
Rui Miranda Guedes
Volnei Tita
dc.subject.por.fl_str_mv Engenharia de biomateriais, Engenharia mecânica
Biomaterial engineering, Mechanical engineering
topic Engenharia de biomateriais, Engenharia mecânica
Biomaterial engineering, Mechanical engineering
description A large range of biodegradable polymers has been used to produce implantable medicaldevices, such as suture fibers, fixation screws and soft tissue engineering devices. Apartfrom biological compatibility, these devices should also be functional compatible andperform adequate mechanical temporary support during the healing process. Themechanical behavior of biodegradable polymers is known to be rate dependent and toexhibit hysteresis upon cyclic loading. On the other hand, ductility, toughness andstrength of the material decay during hydrolytic degradation. Continuum basedmechanical models can be used as dimensioning tools for biodegradable polymericdevices, since they enable to predict its mechanical behavior in a complex load andenvironment scenario, during the hydrolytic degradation process.The existing models can be divided into two categories: the time-dependent models andthe time-independent models. Linear elastic or non-linear elastic models, such as elastoplasticor hyperelastic models, can simulate the time-independent response, whichcorresponds to the relaxed configuration and represent the relaxed state. However, theseapproaches neglect the time-dependent mechanical behavior. To consider timedependency, dissipative elements must be used in the model formulation.A revision of the three-dimensional constitutive models generally used for polymers ispresented in this chapter. These models are based on the concept of networks, combiningelastic, sliding and dissipative elements, in order to simulate the time-dependentmechanical behavior, although neglecting changes in the properties of the material duringhydrolytic degradation process. Thus, some of these models were recently adapted toaddress the hydrolytic degradation process. A common method consists on becomingsome of the material model parameters dependent on a scalar variable, which expressesthe hydrolytic damage.Furthermore, the advantages and limitations of the models arediscussed, based on the correlation between predictions and experimental results of ablend of polylactic acid and polycaprolactone (PLA-PCL), which include monotonictensile tests at different strain rates and quasi-static cyclic unloading-reloading.
publishDate 2015
dc.date.none.fl_str_mv 2015
2015-01-01T00:00:00Z
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