在不同截面的圆形T形连接处数值研究流量和热传递
Eman Muhammad1, Humayoun Shahid1, Sheheryar Mohsin Qureshi2
1Department of Applied Science, National Textile University, Faisalabad, Punjab, Pakistan.
PloS one
|October 17, 2025
概括
研究T形连接点显示,流速比率和出口宽度显著影响流体动力学和热传递. 较低的比率和更宽的出口增强了热混合和形形成.
科学领域:
- 流体动力学 流体动力学
- 电流传导热传输是一种传导热传输.
- 数字模拟 数字模拟
背景情况:
- 在各种工程应用中,T形连接非常重要,包括热交换器和微流体系统.
- 了解这些结点中的流体流动和传热特性对于优化性能和设计至关重要.
研究的目的:
- 在平滑的二维T形连接处数量研究流体流动和对流热传递.
- 分析体积流速比 (r),雷诺兹数 (Re) 和输出宽度比 (w) 对流量模式和热行为的影响.
主要方法:
- 使用了一种流函数配方与一个紧的上风有限差异方案.
- 在 MATLAB 中使用隐式-显式 (IMEX) 方法来解决流体动力学.
- 使用流线和等热体轮分析了流动行为,并计算了努塞尔特数.
主要成果:
- 较低的体积流速比率 (r) 引发了更强的和不对称的流量/温度场.
- 较高的雷诺兹数 (Re) 增强了热传递,促进了不稳定的流动模式.
- 更宽的输出口配置 (更高的w) 改善了循环和热混合.
结论:
- 输入流条件,输出几何形状和流体特性显著影响T形连接处的热传递和流动行为.
- 研究结果为改善热交换器,微流体设备和工业管道系统的设计提供了见解.
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