Modulation of Heat Transfer in a Porous Burner Based On Triply Periodic Minimal Surface

IF 2.8 4区 工程技术 Q2 ENGINEERING, MECHANICAL Journal of Heat Transfer-transactions of The Asme Pub Date : 2023-03-02 DOI:10.1115/1.4057023
Zhilong Cheng, Song Li, Wei Chen, Qiuwan Wang
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引用次数: 3

Abstract

The list of reacting flow in porous media applications is quite long, including porous media combustion, syngas production, and fuel cells. Porous media combustion is recognized as a cutting-edge combustion technique for increasing flammability. In this process, heat is transferred from the exothermic reaction zone to the incoming reactants through porous media. This role of porous media distinguishes reacting flow in porous media from free combustion processes. Local heat transfer, such as solid conduction, solid-solid radiation, and solid-gas convection, as well as the response behavior, are by the topology of the porous material. Theoretical studies indicate that continuously graded porous materials can significantly enhance the performance benefits of heat transfer. However, topology design is challenging for smooth graded porous media, and thus investigations of combustion within graded porous media are still required. In the present study, we constructed a porous structure of type W/P/D/G (porosity e = 0.3-0.5, hydraulic diameter dh = 1.33-3.86 mm) using a triply periodic minimal surface (TPMS), and a computational model of the combustion reaction in porous media was established to compare the range of flame stability within different pore types. In addition, topology gradation was achieved via TPMS to modulate the heat transfer to ensure the dependable functioning of premixed flames and improved heat recirculation. Heat transfer in the graded TPMS-based porous structure was analyzed numerically. The conclusions obtained from this study can effectively address the aforementioned challenges related to porous media burner design.
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基于三周期极小表面的多孔燃烧器换热调制
多孔介质中的反应流应用非常广泛,包括多孔介质燃烧、合成气生产和燃料电池。多孔介质燃烧被认为是提高可燃性的一种前沿燃烧技术。在这个过程中,热量通过多孔介质从放热反应区传递给进入的反应物。多孔介质的这一作用将多孔介质中的反应流动与自由燃烧过程区别开来。局部传热,如固体传导、固体-固体辐射和固体-气体对流,以及响应行为,是由多孔材料的拓扑结构。理论研究表明,连续梯度多孔材料可以显著提高传热性能效益。然而,对于光滑的梯度多孔介质,拓扑设计具有挑战性,因此仍然需要对梯度多孔介质中的燃烧进行研究。本研究采用三周期最小表面法(TPMS)构建了W/P/D/G型(孔隙度e = 0.3-0.5,水力直径dh = 1.33-3.86 mm)多孔介质的燃烧反应计算模型,比较了不同孔隙类型下的燃烧稳定性范围。此外,通过TPMS实现了拓扑梯度来调节传热,以确保预混火焰的可靠运行和改善热再循环。对梯度多孔材料多孔结构的传热进行了数值分析。本研究得出的结论可以有效地解决上述多孔介质燃烧器设计中的挑战。
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IF 4.8 2区 材料科学Materials and Manufacturing ProcessesPub Date : 2011-01-31 DOI: 10.1080/10426914.2010.512818
J. Chandradass, D. Bae, M. Balasubramanian, Ki Hyeon Kim
来源期刊
自引率
0.00%
发文量
182
审稿时长
4.7 months
期刊介绍: Topical areas including, but not limited to: Biological heat and mass transfer; Combustion and reactive flows; Conduction; Electronic and photonic cooling; Evaporation, boiling, and condensation; Experimental techniques; Forced convection; Heat exchanger fundamentals; Heat transfer enhancement; Combined heat and mass transfer; Heat transfer in manufacturing; Jets, wakes, and impingement cooling; Melting and solidification; Microscale and nanoscale heat and mass transfer; Natural and mixed convection; Porous media; Radiative heat transfer; Thermal systems; Two-phase flow and heat transfer. Such topical areas may be seen in: Aerospace; The environment; Gas turbines; Biotechnology; Electronic and photonic processes and equipment; Energy systems, Fire and combustion, heat pipes, manufacturing and materials processing, low temperature and arctic region heat transfer; Refrigeration and air conditioning; Homeland security systems; Multi-phase processes; Microscale and nanoscale devices and processes.
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