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Computational Thermal Sciences: An International Journal

年間 6 号発行

ISSN 印刷: 1940-2503

ISSN オンライン: 1940-2554

The Impact Factor measures the average number of citations received in a particular year by papers published in the journal during the two preceding years. 2017 Journal Citation Reports (Clarivate Analytics, 2018) IF: 1.5 To calculate the five year Impact Factor, citations are counted in 2017 to the previous five years and divided by the source items published in the previous five years. 2017 Journal Citation Reports (Clarivate Analytics, 2018) 5-Year IF: 1 The Immediacy Index is the average number of times an article is cited in the year it is published. The journal Immediacy Index indicates how quickly articles in a journal are cited. Immediacy Index: 0.3 The Eigenfactor score, developed by Jevin West and Carl Bergstrom at the University of Washington, is a rating of the total importance of a scientific journal. Journals are rated according to the number of incoming citations, with citations from highly ranked journals weighted to make a larger contribution to the eigenfactor than those from poorly ranked journals. Eigenfactor: 0.00017 The Journal Citation Indicator (JCI) is a single measurement of the field-normalized citation impact of journals in the Web of Science Core Collection across disciplines. The key words here are that the metric is normalized and cross-disciplinary. JCI: 0.28 SJR: 0.279 SNIP: 0.544 CiteScore™:: 2.5 H-Index: 22

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AN EXPERIMENTAL AND COMPUTATIONAL INVESTIGATION OF A THERMAL STORAGE SYSTEM BASED ON A PHASE CHANGE MATERIAL: HEAT TRANSFER AND PERFORMANCE CHARACTERIZATION

巻 6, 発行 4, 2014, pp. 341-359
DOI: 10.1615/.2014011117
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要約

The integration of latent heat storage solutions into modern heating and cooling systems has the potential to enhance overall system performance compared to standard hot water systems (radiators and tanks) due to an augmentation of the stored heat by the latent heat of a suitable material. This paper presents computational predictions complemented by experimental measurements of the dynamic behavior and performance of an active thermal storage system for domestic applications, based on the use of a hydrated salt phase change material (PCM) and a conventional cylindrical storage tank. The thermal storage (heating) and extraction (cooling) rates for this PCM-filled tank are compared to a water-filled tank. Flow and temperature fields are analyzed in a customized storage tank design for heat transfer and performance characterization. Experimental findings show good agreement with full 3-D simulation results. The heat removal characteristic is identified as being the main factor limiting the arrangement's performance when compared to a water-based system, due to the solidification of the PCM onto the pipes, and a significant consequent decrease in heat flux. It is confirmed that the PCM thermal storage solution has the capability to store a large amount of heat effectively, but design improvements are required to eliminate the cooling-limited heat transfer process in the investigated arrangement.

によって引用された
  1. Pahamli Younes, Hosseini Mohammad J., Ranjbar Ali A., Bahrampoury Rasool, Analysis of the effect of eccentricity and operational parameters in PCM-filled single-pass shell and tube heat exchangers, Renewable Energy, 97, 2016. Crossref

  2. Pahamli Y., Hosseini M.J., Ranjbar A.A., Bahrampoury R., Effect of nanoparticle dispersion and inclination angle on melting of PCM in a shell and tube heat exchanger, Journal of the Taiwan Institute of Chemical Engineers, 81, 2017. Crossref

  3. Guo Xiaofeng, Goumba Alain Pascal, Process Intensification Principles Applied to Thermal Energy Storage Systems—A Brief Review, Frontiers in Energy Research, 6, 2018. Crossref

  4. Aziz S., Amin N.A.M., Abdul Majid M.S., Bruno F., Belusko M., Effectiveness-NTU correlation for a TES tank comprising a PCM encapsulated in a sphere with heat transfer enhancement, Applied Thermal Engineering, 143, 2018. Crossref

  5. Aziz S., Amin N.A.M., Abdul Majid M.S., Belusko M., Bruno F., CFD simulation of a TES tank comprising a PCM encapsulated in sphere with heat transfer enhancement, Applied Thermal Engineering, 143, 2018. Crossref

  6. Talebizadeh Sardari Pouyan, Walker Gavin S, Gillott Mark, Grant David, Giddings Donald, Numerical modelling of phase change material melting process embedded in porous media: Effect of heat storage size, Proceedings of the Institution of Mechanical Engineers, Part A: Journal of Power and Energy, 234, 3, 2020. Crossref

  7. Zhao Y., Zhao C.Y., Markides C.N., Wang H., Li W., Medium- and high-temperature latent and thermochemical heat storage using metals and metallic compounds as heat storage media: A technical review, Applied Energy, 280, 2020. Crossref

  8. Madurai Elavarasan Rajvikram, Mudgal Vijay, Selvamanohar Leoponraj, Wang Kai, Huang Gan, Shafiullah G.M., Markides Christos N., Reddy K.S., Nadarajah Mithulananthan, Pathways toward high-efficiency solar photovoltaic thermal management for electrical, thermal and combined generation applications: A critical review, Energy Conversion and Management, 255, 2022. Crossref

  9. Dai Yuanhang, Chen Lei, Min Yong, Chen Qun, Zhang Yiwei, Xu Fei, Hu Kang, Hao Junhong, Active and Passive Thermal Energy Storage in Combined Heat and Power Plants to Promote Wind Power Accommodation, Journal of Energy Engineering, 143, 5, 2017. Crossref

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