{"@context":{"@vocab":"https://cir.nii.ac.jp/schema/1.0/","rdfs":"http://www.w3.org/2000/01/rdf-schema#","dc":"http://purl.org/dc/elements/1.1/","dcterms":"http://purl.org/dc/terms/","foaf":"http://xmlns.com/foaf/0.1/","prism":"http://prismstandard.org/namespaces/basic/2.0/","cinii":"http://ci.nii.ac.jp/ns/1.0/","datacite":"https://schema.datacite.org/meta/kernel-4/","ndl":"http://ndl.go.jp/dcndl/terms/","jpcoar":"https://github.com/JPCOAR/schema/blob/master/2.0/"},"@id":"https://cir.nii.ac.jp/crid/1390304560094544512.json","@type":"Article","productIdentifier":[{"identifier":{"@type":"DOI","@value":"10.11322/tjsrae.24-41"}},{"identifier":{"@type":"NDL_BIB_ID","@value":"034254366"}},{"identifier":{"@type":"URI","@value":"http://id.ndl.go.jp/bib/034254366"}},{"identifier":{"@type":"URI","@value":"https://ndlsearch.ndl.go.jp/books/R000000004-I034254366"}}],"dc:title":[{"@language":"ja","@value":"空調機用エミュレーター式負荷試験法の計測精度向上策"},{"@language":"en","@value":"Development of Feedforward Control to Improve Reproducibility of Emulator-type Testing Facilities"},{"@value":"空調機用エミュレーター式負荷試験法の計測精度向上策 : 装置の遅れ時間を改善するフィードフォワード制御の開発"},{"@language":"ja-Kana","@value":"クウチョウキヨウ エミュレーターシキ フカ シケンホウ ノ ケイソク セイド コウジョウサク : ソウチ ノ オクレ ジカン オ カイゼン スル フィードフォワード セイギョ ノ カイハツ"}],"dcterms:alternative":[{"@language":"ja","@value":"装置の遅れ時間を改善するフィードフォワード制御の開発"}],"dc:language":"ja","description":[{"type":"abstract","notation":[{"@language":"en","@value":"<p>Unlike current performance rating standards, in emulator-type load-based tests the tested unit is operated as it would in an actual building. As the native control of the system is kept active, testing facilities are required to evaluate dynamic response of the tested unit. Therefore, various thermal and transport delays occurring within the testing facility may have a significant impact on the recorded performance, and different features across different laboratories may limit result reproducibility. The emulator-type load-based testing methodology responds to this need, and it has been demonstrated that a certain degree of accuracy can be obtained in interlaboratory tests. However, specific measures to improve the reproducibility of dynamic tests have been an open problem in previous studies. Therefore, a new feed-forward compensation technique based on a linearized model that represents the delay characteristics of the condition generator in following the target temperature and humidity signal from the emulator is developed in this study. With the proposed technique, temperature and humidity in the test room can follow the target signal from the room emulator with maximum delays within 60 seconds under various test conditions, and the deviation of the recorded performance can be kept within 2% across different test equipment.</p>"},{"@language":"ja","@value":"<p>エミュレーター式負荷試験法は，試験装置における熱容量などの違いを補償するために，装置内の温湿度状態をエミュレーターによって仮想的に与えることで機器の動的性能を試験装置の違いによらず高精度に再現性ある形で評価しようとするものである． 一連する本研究では，これまでにエミュレーター式負荷試験法を提案するとともに，ラウンドロビン試験により，ある程度の精度で性能が得られることを明らかにしてきた．しかし，これまでの研究では，動的試験の再現性を向上させる具体的な方策については未解決の課題となっていた. そこで，エミュレーターからの室内温湿度の制御目標値と試験装置においてこの制御目標値に基づいて条件発生器で実際に生成される室内空気の温湿度の遅延特性を線形モデルで表現し，これに基づく新たなフィードフォワード補償技術を提案する. 提案された手法により，さまざまな試験条件において，室内温湿度はルームエミュレーターからの制御目標値に対し60秒以内の追従性を実現し，異なる試験装置であっても動的試験における空調機の性能の偏差を2％以内に抑えることが可能であることを確認した.</p>"}],"abstractLicenseFlag":"disallow"}],"creator":[{"@id":"https://cir.nii.ac.jp/crid/1410304560094544515","@type":"Researcher","foaf:name":[{"@language":"ja","@value":"ジャンネッティ ニコロ"},{"@language":"en","@value":"GIANNETTI Niccolo"}],"jpcoar:affiliationName":[{"@language":"en","@value":"Department of Mechanical and Intelligent Systems Engineering, The University of Electro-Communications, Tokyo"},{"@language":"ja","@value":"電気通信大学大学院 情報理工学研究科 情報学専攻（182-8585 東京都調布市調布ヶ丘1-5-1）"}]},{"@id":"https://cir.nii.ac.jp/crid/1410304560094544513","@type":"Researcher","foaf:name":[{"@language":"ja","@value":"ソラフディン"},{"@language":"en","@value":"SHOLAHUDIN"}],"jpcoar:affiliationName":[{"@language":"en","@value":"Mechanical Engineering Department, University of Indonesia,"},{"@language":"ja","@value":"インドネシア大学 機械工学科"}]},{"@id":"https://cir.nii.ac.jp/crid/1410304560094544512","@type":"Researcher","foaf:name":[{"@language":"ja","@value":"水野 亜杜"},{"@language":"en","@value":"MIZUNO Ato"}],"jpcoar:affiliationName":[{"@language":"en","@value":"Department of Applied Mechanics and Aerospace Engineering, Waseda University, Tokyo,"},{"@language":"ja","@value":"早稲田大学基幹理工学部 機械科学・航空宇宙学科"}]},{"@id":"https://cir.nii.ac.jp/crid/1410304560094544516","@type":"Researcher","foaf:name":[{"@language":"ja","@value":"宮岡 洋一"},{"@language":"en","@value":"MIYAOKA Yoichi"}],"jpcoar:affiliationName":[{"@language":"en","@value":"Sustainable Energy ＆ Environmental Society Open Innovation Research Organization, Tokyo"},{"@language":"ja","@value":"早稲田大学持続的環境エネルギー社会共創研究機構"}]},{"@id":"https://cir.nii.ac.jp/crid/1410304560094544517","@type":"Researcher","foaf:name":[{"@language":"ja","@value":"清 雄一"},{"@language":"en","@value":"SEI Yuichi"}],"jpcoar:affiliationName":[{"@language":"en","@value":"Department of Informatics, The University of Electro-Communications, Tokyo"},{"@language":"ja","@value":"電気通信大学大学院 情報理工学研究科 情報学専攻"}]},{"@id":"https://cir.nii.ac.jp/crid/1410304560094544518","@type":"Researcher","foaf:name":[{"@language":"ja","@value":"榎木 光治"},{"@language":"en","@value":"ENOKI Koji"}],"jpcoar:affiliationName":[{"@language":"en","@value":"Department of Mechanical and Intelligent Systems Engineering, The University of Electro-Communications, Tokyo"},{"@language":"ja","@value":"電気通信大学大学院 情報理工学研究科 情報学専攻（182-8585 東京都調布市調布ヶ丘1-5-1）"}]},{"@id":"https://cir.nii.ac.jp/crid/1410304560094544514","@type":"Researcher","foaf:name":[{"@language":"ja","@value":"齋藤 潔"},{"@language":"en","@value":"SAITO Kiyoshi"}],"jpcoar:affiliationName":[{"@language":"en","@value":"Department of Applied Mechanics and Aerospace Engineering, Waseda University, Tokyo,"},{"@language":"ja","@value":"早稲田大学基幹理工学部 機械科学・航空宇宙学科"}]}],"publication":{"publicationIdentifier":[{"@type":"PISSN","@value":"13444905"},{"@type":"EISSN","@value":"2185789X"},{"@type":"NDL_BIB_ID","@value":"000000105929"},{"@type":"ISSN","@value":"13444905"},{"@type":"LISSN","@value":"13444905"},{"@type":"NCID","@value":"AA11125910"}],"prism:publicationName":[{"@language":"en","@value":"Transactions of the Japan Society of Refrigerating and Air Conditioning Engineers"},{"@language":"ja","@value":"日本冷凍空調学会論文集"},{"@language":"en","@value":"Trans.JSRAE"},{"@language":"ja","@value":"冷空論"}],"dc:publisher":[{"@language":"en","@value":"Japan Society of Refrigerating and Air Conditioning Engineers"},{"@language":"ja","@value":"公益社団法人 日本冷凍空調学会"}],"prism:publicationDate":"2025","prism:volume":"advpub","prism:number":"0","prism:startingPage":"47","prism:endingPage":"59"},"datacite:version":"1","url":[{"@id":"http://id.ndl.go.jp/bib/034254366"},{"@id":"https://ndlsearch.ndl.go.jp/books/R000000004-I034254366"}],"availableAt":"2025","foaf:topic":[{"@id":"https://cir.nii.ac.jp/all?q=Air%20conditioning","dc:title":"Air conditioning"},{"@id":"https://cir.nii.ac.jp/all?q=air-enthalpy%20testing%20facility,%20JIS,%20standard,%20emulator,%20dynamic%20test,","dc:title":"air-enthalpy testing facility, JIS, standard, emulator, dynamic 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