{"created":"2023-05-15T16:44:58.515897+00:00","id":20832,"links":{},"metadata":{"_buckets":{"deposit":"965913a3-2135-4be7-8eba-051c2cd94b16"},"_deposit":{"created_by":2,"id":"20832","owners":[2],"pid":{"revision_id":0,"type":"depid","value":"20832"},"status":"published"},"_oai":{"id":"oai:nagasaki-u.repo.nii.ac.jp:00020832","sets":["14:21"]},"author_link":["87713","87712","87711","87714"],"item_2_biblio_info_6":{"attribute_name":"書誌情報","attribute_value_mlt":[{"bibliographicIssueDates":{"bibliographicIssueDate":"2003-11-15","bibliographicIssueDateType":"Issued"},"bibliographicIssueNumber":"4","bibliographicPageEnd":"548","bibliographicPageStart":"539","bibliographicVolumeNumber":"46","bibliographic_titles":[{"bibliographic_title":"JSME international journal. Ser. B, Fluids and thermal engineering"}]}]},"item_2_description_4":{"attribute_name":"抄録","attribute_value_mlt":[{"subitem_description":"Using the fully developed laminar velocity distributions obtained by applying the modified power-law model proposed by Irvine and Karni, the thermal-entrance-region heat transfer of non-Newtonian fluids flowing in parallel plates with one plate moving is investigated taking into account both viscous dissipation and fluid axial heat conduction for two kinds of thermal boundary conditions, namely, constant temperature and constant heat flux at the moving wall. The energy equation subject to a constant temperature at upstream infinity, fully developed temperature profile at downstream infinity and the appropriate thermal boundary conditions at the upper and lower walls is numerically solved by the finite difference method as an elliptic type problem. The effects of the moving plate velocity, rheological properties, Brinkman number and Peclet number on the temperature distribution and Nusselt numbers are discussed for both Newtonian and pseudoplastic fluids.","subitem_description_type":"Abstract"}]},"item_2_description_63":{"attribute_name":"引用","attribute_value_mlt":[{"subitem_description":"JSME international journal. Ser. B, Fluids and thermal engineering. 2003, 46(4), p.539-548","subitem_description_type":"Other"}]},"item_2_publisher_33":{"attribute_name":"出版者","attribute_value_mlt":[{"subitem_publisher":"社団法人日本機械学会"}]},"item_2_rights_13":{"attribute_name":"権利","attribute_value_mlt":[{"subitem_rights":"社団法人日本機械学会"},{"subitem_rights":"本文データは学協会の許諾に基づきCiNiiから複製したものである"}]},"item_2_source_id_10":{"attribute_name":"書誌レコードID","attribute_value_mlt":[{"subitem_source_identifier":"AA10888815","subitem_source_identifier_type":"NCID"}]},"item_2_source_id_7":{"attribute_name":"ISSN","attribute_value_mlt":[{"subitem_source_identifier":"13408054","subitem_source_identifier_type":"ISSN"}]},"item_2_version_type_16":{"attribute_name":"著者版フラグ","attribute_value_mlt":[{"subitem_version_resource":"http://purl.org/coar/version/c_970fb48d4fbd8a85","subitem_version_type":"VoR"}]},"item_creator":{"attribute_name":"著者","attribute_type":"creator","attribute_value_mlt":[{"creatorNames":[{"creatorName":"Shigechi, Toru"}],"nameIdentifiers":[{}]},{"creatorNames":[{"creatorName":"Davaa, Ganbat"}],"nameIdentifiers":[{}]},{"creatorNames":[{"creatorName":"Momoki, Satoru"}],"nameIdentifiers":[{}]},{"creatorNames":[{"creatorName":"Jambal, Odgerel"}],"nameIdentifiers":[{}]}]},"item_files":{"attribute_name":"ファイル情報","attribute_type":"file","attribute_value_mlt":[{"accessrole":"open_date","date":[{"dateType":"Available","dateValue":"2020-12-23"}],"displaytype":"detail","filename":"JSME_B46_4_539.pdf","filesize":[{"value":"878.6 kB"}],"format":"application/pdf","licensetype":"license_note","mimetype":"application/pdf","url":{"label":"JSME_B46_4_539.pdf","url":"https://nagasaki-u.repo.nii.ac.jp/record/20832/files/JSME_B46_4_539.pdf"},"version_id":"73552a3b-1055-4bf9-92ea-c31acb583514"}]},"item_keyword":{"attribute_name":"キーワード","attribute_value_mlt":[{"subitem_subject":"Non-Newtonian Fluids","subitem_subject_scheme":"Other"},{"subitem_subject":"Moving Boundary","subitem_subject_scheme":"Other"},{"subitem_subject":"Viscous Dissipation","subitem_subject_scheme":"Other"},{"subitem_subject":"Fluid Axial Heat Conduction","subitem_subject_scheme":"Other"},{"subitem_subject":"Thermal Entrance Region","subitem_subject_scheme":"Other"}]},"item_language":{"attribute_name":"言語","attribute_value_mlt":[{"subitem_language":"eng"}]},"item_resource_type":{"attribute_name":"資源タイプ","attribute_value_mlt":[{"resourcetype":"journal article","resourceuri":"http://purl.org/coar/resource_type/c_6501"}]},"item_title":"Laminar Heat Transfer With Viscous Dissipation and Fluid Axial Heat Conduction for Modified Power Law Fluids Flowing in Parallel Plates With One Plate Moving(Emerging Fields in Thermal Engineering)","item_titles":{"attribute_name":"タイトル","attribute_value_mlt":[{"subitem_title":"Laminar Heat Transfer With Viscous Dissipation and Fluid Axial Heat Conduction for Modified Power Law Fluids Flowing in Parallel Plates With One Plate Moving(Emerging Fields in Thermal Engineering)"}]},"item_type_id":"2","owner":"2","path":["21"],"pubdate":{"attribute_name":"公開日","attribute_value":"2008-04-28"},"publish_date":"2008-04-28","publish_status":"0","recid":"20832","relation_version_is_last":true,"title":["Laminar Heat Transfer With Viscous Dissipation and Fluid Axial Heat Conduction for Modified Power Law Fluids Flowing in Parallel Plates With One Plate Moving(Emerging Fields in Thermal Engineering)"],"weko_creator_id":"2","weko_shared_id":-1},"updated":"2023-05-16T02:19:17.844639+00:00"}