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Thermal performances and emitter efficiency improvement studies on premixed micro-combustors with different geometric shapes for thermophotovoltaics applications

机译:具有不同几何形状的预混微燃烧器热性能和发射极效率改进研究,用于蒸发器应用

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摘要

Thermophotovoltaics systems involve a thermal-electrical energy conversion process. An energy efficient conversion is desirable for practical applications. In this work, thermal performances and emitter efficienc(eta(epsilon)) assessments of two proposed unconventional micro-combustors, i.e. T- and Y-shaped are both experimentally and numerically conducted. Comparison is then made between the proposed combustion systems with the conventional I-shaped micro-combustor with premixed CH4/O-2/Ar fueled. The effects of 1) the mass flow rate((m)over dot), 2) the equivalent ratio(phi) and 3) the extending depth of the flame holder (H) are numerically investigated using 3D models with structured meshes. The present results show that the thermal performances and the emitter efficiency of both T- and Y-shaped micro-combustors are significantly improved compared to the conventional I-shaped one under same conditions and key construction parameters. Furthermore, it is found that the bifurcation structure (T- and Y-shaped) can reduce the expanding area of the high temperature at the inlet and prevent the wall temperature from dropping too fast at the outlet. When phi is increased to 1.1, the flame position in the T-shaped combustor is found to be shifting away from the outlet of the flame holder, which results in more intensified combustion in the front area. The mean wall temperature shows a great improvement, when an optimal H is chosen. Overall, the Y-shaped combustor presents the best thermal performance with the largest eta(epsilon) of 40.89% and a higher mean wall temperature of 765.1 K, when (m)over dot = 4.8 x 10(-6) kg/s and phi = 0.8. These findings confirm a significant thermal improvement. This work opens up an energy efficient design of micro-combustors with unconventional structural shapes for thermophotovoltaic applications. (C) 2021 Elsevier Ltd. All rights reserved.
机译:蒸发器系统涉及热电能转换过程。实际应用是可取的节能转换。在这项工作中,热性能和发射极效率(ETA(EPSilon))评估两个提出的非传统微燃烧器,即T型和Y形在实验和数量上进行。然后在具有传统的I形微燃烧器的所提出的燃烧系统之间进行比较,其燃料预混的CH4 / O-2 / AR。 1)的效果1)质量流速((m)上点),2)等效比(phi)和3)使用带有结构网格的3D模型进行数值研究了火焰保持器(h)的延伸深度。本结果表明,与在相同条件和关键施工参数的传统I形,与传统的I形的一个相比,T-和Y形微燃烧器的热性能和发射极效率显着改善。此外,发现分叉结构(T-和Y形)可以减小入口处的高温的扩展面积,并防止壁温在出口处滴过太快。当PHI增加到1.1时,发现T形燃烧器中的火焰位置远离火焰保持器的出口,这导致前面积更强烈的燃烧。 The mean wall temperature shows a great improvement, when an optimal H is chosen.总的来说,Y形燃烧器具有最大的热性能,最大的ETA(ε)为40.89%,平均壁温度高765.1k,当(m)over = 4.8 x 10(-6)kg / s和phi = 0.8。这些发现证实了显着的热改善。这项工作开辟了具有非常规结构形状的微燃烧器的节能设计,用于蒸镀应用。 (c)2021 elestvier有限公司保留所有权利。

著录项

  • 来源
    《Energy》 |2021年第1期|120298.1-120298.14|共14页
  • 作者单位

    Univ Canterbury Dept Mech Engn Private Bag 4800 Christchurch 8041 New Zealand;

    Univ Canterbury Dept Mech Engn Private Bag 4800 Christchurch 8041 New Zealand;

    Univ Canterbury Dept Mech Engn Private Bag 4800 Christchurch 8041 New Zealand;

    Beijing Inst Technol Sch Aerosp Engn Beijing 100081 Peoples R China;

    Beijing Inst Technol Sch Aerosp Engn Beijing 100081 Peoples R China;

    Beijing Inst Technol Sch Aerosp Engn Beijing 100081 Peoples R China;

    Univ Canterbury Dept Mech Engn Private Bag 4800 Christchurch 8041 New Zealand;

    Univ Canterbury Dept Mech Engn Private Bag 4800 Christchurch 8041 New Zealand|Nanjing Univ Sci & Technol Sch Mech Engn Nanjing 210094 Peoples R China;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Micro-combustor; Y-shaped; T-shaped; Heat transfer; Emitter efficiency; Micro-combustion;

    机译:微燃烧器;Y形;T形;传热;发射器效率;微燃烧;

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