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关于在移动墙下浮动喷嘴的传热和压力稳定状态特性研究
Zhihui Liu1,2, Jiahao Zhang3,4, Zhijian Zhang5,6
1College of Mechanical and Energy Engineering, Shaoyang University, Shaoyang, 422000, China. lzh840319@163.com.
Scientific reports
|May 18, 2024
概括
该研究显示,虽然较高的墙体喷射速度比提高了悬挂喷嘴的热传输,但它削弱了它们的承载能力. 流场动态受到分离空间-隙宽度比重的显著影响.
科学领域:
- 流体动力学 流体动力学
- 热传递是一种传递热量的过程.
- 流模拟的流模型.
背景情况:
- 研究悬浮喷嘴的稳态传热和压力特性对于优化其性能至关重要.
- 了解流场,温度分布和压力的复杂相互作用对于工程应用至关重要.
研究的目的:
- 分析悬浮喷嘴的稳定状态传热和压力特征.
- 为了评估各种参数的影响,如墙体喷射速度比,喷射倾斜角度和隔离空间裂宽度比对流量和热场.
主要方法:
- 用一个二维的流动场的流模型.
- 使用SST (剪切应力传输) 流模型进行计算.
- 进行流域,温度,局部努塞尔特数,局部压力系数,平均努塞尔特数和平均压力系数的定性和定量分析.
主要成果:
- 墙体喷射速度比显著影响流场;较高的比率提高了传热,但降低了悬挂能力.
- 增加喷气喷气的倾斜角度对流量场的影响很小,不会帮助悬挂.
- 分隔空间-裂宽度比影响热传输和悬浮;较大的比率有利于热传输,但阻碍悬浮.
结论:
- 墙体喷射速度比是影响悬挂喷嘴性能的最主要因素.
- 涉及隔离空间-裂宽度比的设计选择需要平衡传热增强与悬挂稳定性.
- 优化悬挂喷嘴设计需要仔细考虑热性能和结构支之间的权衡.
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