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On-line Access: 2024-08-27
Received: 2023-10-17
Revision Accepted: 2024-05-08
Crosschecked: 2024-08-20
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Xinlin LIU, Jun SUN, Zhuohang JIANG, Qinglian LI, Peng CHENG, Jie SONG. Gas film/regenerative composite cooling characteristics of the liquid oxygen/liquid methane (LOX/LCH4) rocket engine[J]. Journal of Zhejiang University Science A,in press.Frontiers of Information Technology & Electronic Engineering,in press.https://doi.org/10.1631/jzus.A2300365 @article{title="Gas film/regenerative composite cooling characteristics of the liquid oxygen/liquid methane (LOX/LCH4) rocket engine", %0 Journal Article TY - JOUR
液氧/甲烷火箭发动机气膜/再生复合冷却特性研究机构:国防科技大学,高超声速冲压发动机技术重点实验室,中国长沙,410073 目的:液体火箭发动机热防护设计一直以来都是液体火箭发动机设计的关键。本文旨在针对液氧/甲烷火箭发动机推力室建立气膜/再生复合冷却传热计算模型,并提出一种复合冷却方法。 创新点:1.提出一种气膜冷却和再生冷却相结合的复合冷却方法;2.建立气膜/再生复合冷却传热计算模型;3.开展6kg/s级气膜/再生复合冷却推力室热试车实验,并通过实验验证计算模型的准确性;4.基于复合冷却传热计算模型,开展不同结构参数与工况参数下复合冷却传热特性分析。 方法:1.通过理论推导,建立液体火箭发动机推力室气膜/再生复合冷却传热计算模型;2.通过开展热试车实验,验证传热计算模型的准确性;3.通过数值模型计算,开展不同结构参数与工况参数下复合冷却传热特性分析。 结论:1.气膜/再生复合冷却传热计算模型具有较高的准确性;与实验结果相比,冷却剂温升预测误差小于10%。2.与再生冷却相比,复合冷却性能显著提高;较高的气膜流量可以带来更高的冷却效率和更低的燃气侧壁温。3.膜的引入位置对冷却性能有较大影响;优化后的气膜冷却使壁温分布更加均匀,峰值更低。4.与单层气膜相比,双层气膜可以增强气膜叠加区域的冷却效果,并进一步降低该区域的燃气侧壁温。 关键词组: Darkslateblue:Affiliate; Royal Blue:Author; Turquoise:Article
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