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New method for fast heat transfer analysis of PCM cross sections with integrated finned tubes

Pezo Perez, Matias Francisco und Steinmann, Wolf-Dieter und Gutierrez Rojas, Andrea Lucia (2026) New method for fast heat transfer analysis of PCM cross sections with integrated finned tubes. Applied Thermal Engineering, 305. Elsevier. doi: 10.1016/j.applthermaleng.2026.132845. ISSN 1359-4311.

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Offizielle URL: https://www.sciencedirect.com/science/article/pii/S1359431126031534?via%3Dihub

Kurzfassung

State-of-the-art Latent Heat Thermal Energy Storage (LHTES) units use extended heat transfer surfaces to compensate for the typically low thermal conductivity of cost-effective phase change materials (PCMs). The analysis of such surfaces currently depends heavily on numerical simulations. However, due to high computational costs, this approach cannot be practically scaled to analyze complete LHTES storage units. To overcome this limitation, this study proposes a computationally efficient alternative for the analysis of PCM storage systems. In this new methodology, finned geometries are characterized using a novel, purely geometric distance-based framework. This approach serves as the foundation for a simplified model that entirely eliminates the need for additional numerical calibration. To achieve this, four distinct longitudinally extruded fin profiles (24-Branch-Star, Organic, Snowflake, and 6-Branch-Star) with identical fin fractions were evaluated. The methodology translates complex 2D fin cross-sections into 1D Cumulative Distribution Functions (CDFs) based on shortest-path heat transfer distances. A simplified transient model for quasi-isothermal fins was subsequently developed and validated against reference 2D numerical simulations. Results demonstrate that the contact perimeter between PCM and fin P fin is inversely proportional to the melting time, whereas the novel average distance between the PCM and the fin D PCM− fin exhibits a direct linear correlation with the phase change time. Both parameters are therefore proven to be reliable predictors for the design of finned profiles. Furthermore, the simplified model for quasi-isothermal fins accurately predicted the transient liquid fraction with a mean absolute error Δf l of less than 0.026, while delivering speedup ratios R speed between 77 and 183 times compared to the reference 2D numerical simulations. The proposed time-ratio efficiency metric revealed that while highly branched profiles yield faster melting times, their necessary branch slenderness imposes significant internal conduction resistance. Finally, this novel distance framework provides a highly reliable, numerically-independent tool, eliminating computational bottlenecks and enabling the rapid algorithmic optimization of LHTES fin geometries.

elib-URL des Eintrags:https://elib.dlr.de/226314/
Dokumentart:Zeitschriftenbeitrag
Zusätzliche Informationen:Authors acknowledge the financial support given by the German Research Foundation (DFG) Priority Program: “Carnot Batteries: Inverse Design from Markets to Molecules” (SPP 2403), MultiPCM-Project Nr. 526035476.
Titel:New method for fast heat transfer analysis of PCM cross sections with integrated finned tubes
Autoren:
AutorenInstitution oder E-Mail-AdresseAutoren-ORCID-iDORCID Put Code
Pezo Perez, Matias Franciscomatias.pezoperez (at) dlr.dehttps://orcid.org/0009-0008-3798-3916224467316
Steinmann, Wolf-DieterWolf.Steinmann (at) dlr.deNICHT SPEZIFIZIERTNICHT SPEZIFIZIERT
Gutierrez Rojas, Andrea LuciaAndrea.GutierrezRojas (at) dlr.deNICHT SPEZIFIZIERTNICHT SPEZIFIZIERT
Datum:21 August 2026
Erschienen in:Applied Thermal Engineering
Referierte Publikation:Ja
Open Access:Ja
Gold Open Access:Nein
In SCOPUS:Ja
In ISI Web of Science:Ja
Band:305
DOI:10.1016/j.applthermaleng.2026.132845
Verlag:Elsevier
ISSN:1359-4311
Status:veröffentlicht
Stichwörter:Phase Change Material; COMSOL; Simplified Model; Longitudinal Finned Tube Heat Exchanger
HGF - Forschungsbereich:Energie
HGF - Programm:Materialien und Technologien für die Energiewende
HGF - Programmthema:Thermische Hochtemperaturtechnologien
DLR - Schwerpunkt:Energie
DLR - Forschungsgebiet:E SP - Energiespeicher
DLR - Teilgebiet (Projekt, Vorhaben):E - Thermochemische Prozesse
Standort: Stuttgart
Institute & Einrichtungen:Institut für Technische Thermodynamik > Thermische Prozesstechnik
Hinterlegt von: Pezo Perez, Matias Francisco
Hinterlegt am:21 Aug 2026 11:12
Letzte Änderung:21 Aug 2026 11:12

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