Applied thermal engineering2022,Vol.2109.DOI:10.1016/j.applthermaleng.2022.118339

High performance, microarchitected, compact heat exchanger enabled by 3D printing

Kumar, S. Dixit, Tisha Al-Hajri, Ebrahim Paul, Manosh C. Nithiarasu, Perumal
Applied thermal engineering2022,Vol.2109.DOI:10.1016/j.applthermaleng.2022.118339

High performance, microarchitected, compact heat exchanger enabled by 3D printing

Kumar, S. 1Dixit, Tisha 2Al-Hajri, Ebrahim 2Paul, Manosh C. 1Nithiarasu, Perumal3
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作者信息

  • 1. Univ Glasgow
  • 2. Khalifa Univ
  • 3. Swansea Univ
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Abstract

Additive manufacturing has created a paradigm shift in materials design and innovation, providing avenues and opportunities for geometric design freedom and customizations. Here, we report a microarchitected gyroid lattice liquid-liquid compact heat exchanger realized via stereolithography additive manufacturing as a single ready-to-use unit. This lightweight (~240 kg/m(3)) compact heat exchanger (with conjoined headers), with an engineered porosity of 80% and a separating wall thickness of 300 mu m, has a surface to volume ratio of 670 m(2)/ m(3). X-ray computed tomography imaging confirms a defect-free 3D printed heat exchanger. The thermohydraulic characteristics were experimentally measured using water as the working fluid. The measurements indicate that the heat exchanger evinces an overall heat transfer coefficient of 120-160W/m(2)K for hot fluid Reynolds number Reh in the range of 10(-40). Additionally, finite element analysis was conducted to evaluate the thermo-hydraulic characteristics of the gyroid lattice heat exchanger. The experimental results show-a 55% increase in exchanger effectiveness for the additively manufactured gyroid lattice heat exchanger in comparison to a thermodynamically equivalent, most-efficient, counter-flow heat exchanger at one tenth of its size. The superiority of our architected heat exchanger to extant work is also demonstrated.

Key words

Additive manufacturing/Triply periodic minimal surfaces/Schoen 's gyroid lattice/Architected materials/Heat exhanger/ULTRALIGHT/DESIGN

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出版年

2022
Applied thermal engineering

Applied thermal engineering

EISCI
ISSN:1359-4311
被引量52
参考文献量74
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