Applied thermal engineering2022,Vol.21116.DOI:10.1016/j.applthermaleng.2022.118452

Application of Porous-Embedded shell and tube heat exchangers for the Waste heat Recovery Systems

Hossein Zolfagharnasab M. Zamani Pedram M. Hoseinzadeh S. Vafai K.
Applied thermal engineering2022,Vol.21116.DOI:10.1016/j.applthermaleng.2022.118452

Application of Porous-Embedded shell and tube heat exchangers for the Waste heat Recovery Systems

Hossein Zolfagharnasab M. 1Zamani Pedram M. 1Hoseinzadeh S. 2Vafai K.3
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作者信息

  • 1. Faculty of Mechanical Engineering Energy Division K. N Toosi University of Technology
  • 2. Department of Planning Design and Technology of Architecture Sapienza University of Rome
  • 3. Faculty of Mechanical Engineering University of California Riverside USA Bourns College
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Abstract

Among the techniques offered to improve the efficiency of Waste Heat Recovery Shell and Tube Heat Exchangers (WHR-STHX), the porous-filling is reported as an effective technique to improve the heat transfer rate. In this regard, the current study performs a numerical investigation to evaluate the heat transfer performance and pressure loss of several porous-filled STHXs. However, the novelty of this study stems from identifing the mechanisms that manipulated the flow structures and heat transfer to achieve a homogeneous thermal distribution, not from achieving an optimized porous-filling. Furthermore, the industrial feasibility of the porous-filled designs was evaluated by comparing their performance with the conventional type in a wide range of thermofluidic conditions. Based on the results, both porous-filled designs have substantially attenuated the interfacial thermal jumps observed in the conventional STHX; thus, a uniform thermal distribution was achieved. Furthermore, the heat transfer efficiency of the porous-filled cases was improved up to 60% compared with the conventional type; however, they imposed higher pressure drop values. Fortunately, since partially porous-filling provided a lower amount of pressure drop (almost half of full-foam), the noted design was found to be appropriate for low-scale applications in which pressure drop could not be tolerated.

Key words

Computational Fluid Dynamics (CFD)/Heat Transfer/Porous Media/Shell and Tube Heat Exchanger/Waste Heat Recovery Systems

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出版年

2022
Applied thermal engineering

Applied thermal engineering

EISCI
ISSN:1359-4311
被引量13
参考文献量44
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