Publication:
In silico analysis of modular bone plates

dc.contributor.departmentMARC (Manufacturing and Automation Research Center)
dc.contributor.facultymemberYes
dc.contributor.kuauthorLazoğlu, İsmail
dc.contributor.kuauthorNoyan, Sinan
dc.contributor.kuauthorOral, Atacan
dc.contributor.kuauthorSubaşı, Ömer
dc.contributor.kuauthorTunçözgür, Orçun
dc.contributor.schoolcollegeinstituteResearch Center
dc.date.accessioned2024-11-10T00:06:27Z
dc.date.issued2021
dc.description.abstractBackground: Inventory management or immediate availability of fracture plates can be problematic since for each surgical intervention a specific plate of varying size and functionality must be ordered. Modularization of the standard monolithic plate is proposed to address this issue. Methods: The effects of four different unit module design parameters (type, degree of modularization, connector screw diameter, sandwich ratio) on the plate bending stiffness and failure are investigated in a finite element four-point-bending analysis. A chosen, best-performing modular plate is then tested in silico for a simple diaphyseal tibial fracture scenario under anatomical compressional, torsional, and bending loads . Results: A modularization strategy is proposed to match the monolithic plate bending properties as closely as possible. With the best combination of design parameters, a fully modularized equivalent length plate with a 42.3% decrease in stiffness and 46.2% decrease in strength could be assembled. The chosen modular plate also displayed sufficient mechanical performance under the fracture fixation scenarios for a potentially successful osteosynthesis. Conclusions: Via computational methods, the viability of the modularization strategy as an alternate to the traditional monolithic plate is demonstrated. As a further realized advantage, the modular plates can alleviate stress shielding thanks to the reduced stiffness.
dc.description.fulltextNo
dc.description.harvestedfromManual
dc.description.indexedbyWOS
dc.description.indexedbyScopus
dc.description.indexedbyPubMed
dc.description.openaccessNO
dc.description.peerreviewstatusN/A
dc.description.publisherscopeInternational
dc.description.readpublishN/A
dc.description.sponsoredbyTubitakEuN/A
dc.description.sponsorshipKoc University Manufacturing and Automation Research Center
dc.description.studentonlypublicationNo
dc.description.studentpublicationYes
dc.description.versionN/A
dc.identifier.doi10.1016/j.jmbbm.2021.104847
dc.identifier.eissn1878-0180
dc.identifier.embargoN/A
dc.identifier.issn1751-6161
dc.identifier.pubmed34555620
dc.identifier.quartileQ2
dc.identifier.scopus2-s2.0-85115232004
dc.identifier.urihttps://doi.org/10.1016/j.jmbbm.2021.104847
dc.identifier.urihttps://hdl.handle.net/20.500.14288/16611
dc.identifier.volume124
dc.identifier.wos000704383700002
dc.keywordsBone plate
dc.keywordsModular
dc.keywordsFracture
dc.keywordsFinite element
dc.language.isoeng
dc.publisherElsevier
dc.relation.affiliationKoç University
dc.relation.collectionKoç University Institutional Repository
dc.relation.ispartofJournal of the Mechanical Behavior of Biomedical Materials
dc.relation.openaccessN/A
dc.rightsN/A
dc.subjectEngineering
dc.subjectBiomedical engineering
dc.subjectMaterials science
dc.subjectBiomaterials
dc.titleIn silico analysis of modular bone plates
dc.typeJournal Article
dspace.entity.typePublication
local.contributor.kuauthorSubaşı, Ömer
local.contributor.kuauthorOral, Atacan
local.contributor.kuauthorNoyan, Sinan
local.contributor.kuauthorTunçözgür, Orçun
local.contributor.kuauthorLazoğlu, İsmail
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