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dc.contributor.authorTatsumi, Kazuyaen
dc.contributor.authorNoguchi, Shinnosukeen
dc.contributor.authorTatsumi, Akiraen
dc.contributor.authorKuriyama, Reikoen
dc.contributor.authorNakabe, Kazuyoshien
dc.contributor.alternative巽, 和也ja
dc.contributor.alternative野口, 真之介ja
dc.contributor.alternative辰巳, 朗ja
dc.contributor.alternative栗山, 怜子ja
dc.contributor.alternative中部, 主敬ja
dc.date.accessioned2019-09-24T05:11:41Z-
dc.date.available2019-09-24T05:11:41Z-
dc.date.issued2019-08-
dc.identifier.issn1070-6631-
dc.identifier.issn1089-7666-
dc.identifier.urihttp://hdl.handle.net/2433/244133-
dc.description.abstractThe motion and concentration distribution of particles and cells in flow are important factors which affect the fluid properties, flow structure, and mass transfer of biological and chemical species in blood vessels and channels. In this study, number density distributions of particles and rigidized red blood cells (RBCs) in a microchannel whose size is comparable to the sizes of the particle and RBCs are measured. Measurements were conducted at several streamwise locations for suspensions of particles and RBCs with hematocrits of the order of 10% and particle sizes of 5 and 8 µm. Analysis of the migration and resulting concentration distribution of the particles and RBCs was conducted using a model that considers the particle–particle collision and fluid dynamic force. As the size of the microchannel is small, the wall effect on the collision and migration of the particles and RBCs was significant. The wall reduced the overlapping area of the particles in collision and their displacement after collision (mobility), which varied the number, location, and magnitude of the maximum peaks observed in the number density distribution. Furthermore, the rotational motion of the rigidized RBCs in the channel flow reduced the effective lengths of the overlapping area and displacement, whereas it produced additional migration at the wall. With these terms added in the model, the number density distributions of the particles and RBCs showed reasonable agreement with those of the measurement. Especially, the number of peaks and their location for the maximum values in the model and measurement matched well.en
dc.format.mimetypeapplication/pdf-
dc.language.isoeng-
dc.publisherAIP Publishingen
dc.rightsPublished under license by AIP Publishingen
dc.rightsThe full-text file will be made open to the public on 23 August 2020 in accordance with publisher's 'Terms and Conditions for Self-Archiving'.en
dc.rightsこの論文は出版社版でありません。引用の際には出版社版をご確認ご利用ください。ja
dc.rightsThis is not the published version. Please cite only the published version.en
dc.subjectCondensed Matter Physicsen
dc.titleParticle and rigidized red blood cell concentration distributions in microchannel flowsen
dc.typejournal article-
dc.type.niitypeJournal Article-
dc.identifier.jtitlePhysics of Fluidsen
dc.identifier.volume31-
dc.identifier.issue8-
dc.relation.doi10.1063/1.5111201-
dc.textversionpublisher-
dc.identifier.artnum082006-
dc.addressDepartment of Mechanical Engineering and Science, Kyoto Universityen
dc.addressDepartment of Mechanical Engineering and Science, Kyoto Universityen
dc.addressDepartment of Mechanical Engineering and Science, Kyoto Universityen
dc.addressDepartment of Mechanical Engineering and Science, Kyoto Universityen
dc.addressDepartment of Mechanical Engineering and Science, Kyoto Universityen
dcterms.accessRightsopen access-
datacite.date.available2020-08-23-
datacite.awardNumber15H03931-
jpcoar.funderName日本学術振興会ja
jpcoar.funderName.alternativeJapan Society for the Promotion of Science (JSPS)en
出現コレクション:学術雑誌掲載論文等

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