首页|歧管式通道内碳氢燃料超临界压力流动换热的数值模拟研究

歧管式通道内碳氢燃料超临界压力流动换热的数值模拟研究

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开展了歧管式微通道(manifold microchannel,MMC)内碳氢燃料超临界压力流动换热现象的数值模拟研究,讨论了不同歧管结构单元数量下冷却平板的换热效率与湍流场分布特征.结果表明,与等直并联冷却通道相比,歧管式通道由于分流器的存在,其造成的流动重整效应与冲击射流现象使得换热效果显著增强,并且传热效率随着MMC结构单元数量的增加而提高.计算工况下,换热系数最高能提升50%左右,壁面平均温度最高能够降低150 K左右,同时,压降仅为冷却通道工作压力的1.1%,对热防护系统稳定性的影响较小,研究成果将为新型再生冷却通道设计奠定良好的应用基础.
Flow and heat transfer of hydrocarbon fuel in the manifold microchannels at supercritical pressures
Numerical simulations have been carried out for the flow and heat transfer of hydrocarbon fuel in the MMC cooling panels at a supercritical pressure.Effects of MMC unit numbers on the flow and heat transfer characteristics are investigated.Results indicate that compared with the parallel cooling channel,the heat transfer can be enhanced in the MMC and the heat transfer efficiency increases with the increase of MMC unit number.The average heated wall temperature of the MMC can be reduced up to 150 K and the heat transfer coefficient can be increased up to 50%comparing to the parallel cooling channel under current test conditions.This attributes to the flow reorganization effect and impact jet flow phenomenon caused by the presence of the MMC structure,which greatly enhances local fuel flow and favors the turbulence generation.Although the pressure loss is increased in the MMC channel,the magnitude of the pressure loss is less than 1.1%of that in the cooling system,whose effect can be safely omitted during the practical application of the MMC cooling structure.The results obtained here will lay a good foundation for the design of advanced regenerative cooling channels.

hydrocarbon fuelsupercritical pressureramjet engineconvective heat transferregen-erative cooling

孙星、徐震、景婷婷、刘冰、秦飞

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西北工业大学固体推进全国重点实验室,西安 710072

碳氢燃料 超临界压力 冲压发动机 对流换热 再生冷却

国家自然科学基金国家自然科学基金中国科协青年人才托举工程项目博士后创新人才支持计划陕西省自然科学基础研究计划

5210605552302478YESS20200405BX202203862023-JC-QN-0444

2024

空天技术
北京海鹰科技情报研究所(中国航天科工集团第三研究院310研究所)

空天技术

CSTPCD北大核心
影响因子:0.402
ISSN:2097-0714
年,卷(期):2024.(1)
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