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Experimental and numerical studies of mixing and flame stability in a micro-cyclone combustor

机译:微旋风燃烧室混合和火焰稳定性的实验和数值研究

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A 30-W-class micro-cyclone combustor was developed as a heat source for a 1-W thermoelectric power generator (TPG). Methane gas was used as a fuel instead of liquefied fuel in this feasibility study for convenience. The combustion stability of the combustor was measured, and the flame shapes were visualized experimentally. Numerical simulations were performed to examine the details of the flame structure and flame stabilization mechanism inside the micro-cyclone combustor. The micro-cyclone combustor burned the supplied fuel stably inside the combustion chamber in the range where the combustor generated 30 W of heat energy. The mixing and flow characteristics of non-reacting and reacting flows in the combustor were examined using the simulation results. The mixing of the fuel with air in a non-reacting flow field was enhanced by increasing the equivalence ratio for a fixed fuel flow rate. For non-reacting flow, a recirculation region and a small negative axial velocity region near the injection ports were formed. The recirculation region became wider with decreasing equivalence ratios. For reacting flows, however, the recirculation region disappeared and the only small negative axial velocity region was formed near the fuel injection ports. The flame was stabilized inside the combustor because the flame base was anchored near the negative axial velocity region near the fuel injection ports.
机译:开发了30瓦级微型旋风燃烧器作为1瓦热电发电机(TPG)的热源。为了方便起见,在此可行性研究中,甲烷气体代替了液化燃料被用作燃料。测量燃烧器的燃烧稳定性,并通过实验可视化火焰形状。进行了数值模拟,以检查微旋风燃烧器内部火焰结构和火焰稳定机制的细节。微旋风燃烧器在燃烧室产生30W热能的范围内在燃烧室内稳定地燃烧所供给的燃料。使用模拟结果检查了燃烧室中未反应流和反应流的混合和流动特性。通过增加固定燃料流量下的当量比,可增强非反应流场中燃料与空气的混合。对于非反应流,在注入口附近形成了一个回流区域和一个小的负轴向速度区域。随着当量比的减小,再循环区域变得更宽。然而,对于反应流,再循环区域消失并且在燃料喷射口附近仅形成了小的负轴向速度区域。火焰在燃烧器内部稳定,因为火焰基部锚定在靠近燃料喷射口的负轴向速度区域附近。

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