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dc.contributor.authorSanz, José Antonio*
dc.date.accessioned2021-02-11T09:10:34Z
dc.date.available2021-02-11T09:10:34Z
dc.date.issued2020*
dc.date.submitted2020-06-09 16:38:57*
dc.identifier46133*
dc.identifier.urihttps://directory.doabooks.org/handle/20.500.12854/42269
dc.description.abstractBone tissue engineering aims to develop artificial bone substitutes that partially or totally restore the natural regeneration capability of bone tissue lost under circumstances of injury, significant defects, or diseases such as osteoporosis. In this context, biomaterials are the keystone of the methodology. Biomaterials for bone tissue engineering have evolved from biocompatible materials that mimic the physical and chemical environment of bone tissue to a new generation of materials that actively interacts with the physiological environment, accelerating bone tissue growth. Mathematical modelling and simulation are important tools in the overall methodology. This book presents an overview of the current investigations and recent contributions in the field of bone tissue engineering. It includes several successful examples of multidisciplinary collaboration in this transversal area of research. The book is intended for students, researchers, and professionals of a number of disciplines, such as engineering, mathematics, physics, chemistry, biomedicine, biology, and veterinary. The book is composed of an editorial section and 16 original research papers authored by leading researchers of this discipline from different laboratories across the world*
dc.languageEnglish*
dc.subjectTA1-2040*
dc.subjectT1-995*
dc.subject.classificationthema EDItEUR::T Technology, Engineering, Agriculture, Industrial processes::TB Technology: general issues::TBX History of engineering and technologyen_US
dc.subject.otherbone morphogenesis proteins*
dc.subject.othern/a*
dc.subject.otherfinite element*
dc.subject.otherbone tissue engineering*
dc.subject.otherelectrically active implants*
dc.subject.otherprediction marker*
dc.subject.othervertebra*
dc.subject.otherdirect current electric field*
dc.subject.otherloose sintering*
dc.subject.otherLattice Boltzmann method*
dc.subject.otherPelvis*
dc.subject.otherautomatic segmentation*
dc.subject.otherMSCs*
dc.subject.otheradditive manufacturing*
dc.subject.otherfinite element method*
dc.subject.otherbioelectromagnetism*
dc.subject.otheroptimization*
dc.subject.otherscaffold design*
dc.subject.othercone beam computed tomography*
dc.subject.othercomputational modelling*
dc.subject.otherbone regeneration*
dc.subject.otheroxygen delivery*
dc.subject.otherbiomaterials*
dc.subject.otherbone tissue*
dc.subject.otherspark plasma sintering*
dc.subject.othercritical size defect*
dc.subject.othermusculoskeletal modelling*
dc.subject.otherresonance frequency analysis*
dc.subject.otherminipig*
dc.subject.othernumerical methods in bioengineering*
dc.subject.othercomputational fluid dynamics*
dc.subject.othermaxillofacial*
dc.subject.otherosteoporosis*
dc.subject.othersliding window*
dc.subject.otherosseointegration*
dc.subject.othermass transfer*
dc.subject.othersubstrate-mediated electrical stimulation*
dc.subject.otherFixation design*
dc.subject.otherdental implants*
dc.subject.otherhuman dental pulp stem cells*
dc.subject.othernumerical results*
dc.subject.otherelastoplasticity*
dc.subject.otherbone tissue regeneration*
dc.subject.otherfinite-element simulation*
dc.subject.other3D-printed implant*
dc.subject.otherselective laser melting*
dc.subject.otherLagrangian scalar tracking*
dc.subject.othercortical bone*
dc.subject.othermicromechanics*
dc.subject.othertrabeculae*
dc.subject.otherfinite element modelling*
dc.subject.otherdamage*
dc.subject.othertitanium*
dc.subject.otherpowder metallurgy*
dc.subject.otherpelvis*
dc.subject.otherbiomechanics*
dc.subject.othercomputational mechanobiology*
dc.subject.otherculturing protocol*
dc.subject.otherbone adaptation*
dc.subject.otherstem cell*
dc.subject.otherBone tumor*
dc.subject.othertrabecular bone score*
dc.subject.otherXenografts*
dc.subject.othertriply periodic minimal surfaces*
dc.subject.othercomputed tomography*
dc.subject.othermultiscale analysis*
dc.subject.othercartilage*
dc.subject.otherdigital image correlation*
dc.subject.otherosteo-differentiation*
dc.subject.otherwollastonite*
dc.subject.othertransport*
dc.subject.otherfinite element analysis*
dc.subject.otherbone marrow*
dc.subject.otherfracture risk*
dc.subject.othervon Mises stress*
dc.subject.otherelectric stimulation*
dc.subject.othermechanical behaviour*
dc.subject.otheradipogenesis*
dc.subject.otherbiomaterial applications*
dc.subject.othercomputational mechanics*
dc.subject.otherTi6Al4V scaffolds*
dc.subject.otherfinite elements*
dc.subject.otherOtsu’s method*
dc.subject.other3D virtual surgical plan*
dc.titleBiomaterials for Bone Tissue Engineering*
dc.typebook
oapen.identifier.doi10.3390/books978-3-03928-966-0*
oapen.relation.isPublishedBy46cabcaa-dd94-4bfe-87b4-55023c1b36d0*
oapen.relation.isbn9783039289653*
oapen.relation.isbn9783039289660*
oapen.pages244*
oapen.edition1st*


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