Enhanced analysis of flow characteristics and thermal performance in multiple jet impingements: Effects of varying jet heights and spacings

Jin Zhang, Yong Li, Jun Xia, Yingchun Zhang, Jiajie Zhang, Bengt Sunden, Gongnan Xie

Research output: Contribution to journalArticlepeer-review

Abstract

Background: Jet arrays are widely recognized as highly efficient cooling techniques. The focus of ongoing research has been on maximizing their heat transfer efficiency within confined spaces. Methods: Experimental studies and numerical simulations have been conducted to investigate the jet impingements at varying heights (Hc) and hole spacing (dj) on circular jets within cooling channels. Single, two, and three jets are utilized, respectively, and jet holes possess a diameter (d) of 2 mm. The Reynolds number (Re) ranges from 72,673 to 145,346, and the dimensionless distance of the jet spacing (dj/d) and the height to the target (Hc/d) varies between 3 and 5. Significant finding: Multiple jets generate significant turbulent and mixed flow patterns, with their heat transfer performance being influenced by various factors such as Hc, dj, Re, and jet interactions. The heat transfer performance of two jets outperforms that of three jets, achieving its peak Nusselt number (Nu) value at Re =145,364, dj/d = 3, and Hc/d = 5. A thorough discussion is conducted on the dimensionless parameter Hc/dj. By appropriately adjusting Hc/dj within a suitable range, it is possible to achieve more favorable flow dynamics, leading to enhanced cooling performance of the jet system.

Original languageEnglish
Article number106132
JournalJournal of the Taiwan Institute of Chemical Engineers
Volume172
DOIs
StatePublished - Jul 2025

Keywords

  • Circular jet impingement
  • Cooling channel
  • Heat transfer
  • Jet interaction
  • Multiple jets

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