不同截面圆形t型结内流动与传热的数值研究。

IF 2.6 3区 综合性期刊 Q1 MULTIDISCIPLINARY SCIENCES
PLoS ONE Pub Date : 2025-10-17 eCollection Date: 2025-01-01 DOI:10.1371/journal.pone.0334236
Eman Muhammad, Humayoun Shahid, Sheheryar Mohsin Qureshi, Muhammad Babar Ramzan
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引用次数: 0

摘要

本研究采用数值方法研究了光滑二维t形结内的流体流动和对流传热。通过改变容积流量比r(0.25、0.5、0.75和1)、雷诺数Re(500 ~ 2500)、普朗特数Pr(1)和出口横截面宽度比w(0.5 ~ 2.5)进行模拟。采用紧致迎风有限差分格式的涡流函数公式和隐式-显式(IMEX)方法求解流体动力学,并在MATLAB中实现。通过流线和等温等温线分析流动特性,并沿交界壁面计算局部努塞尔数和平均努塞尔数。结果表明,较低的r值会导致更强的涡流形成和流动场和温度场的不对称性,而r = 1则会产生对称且稳定的模式。增加Re增强了传热并使流动转向非定常状态。同样,更宽的出口结构(更高的w)促进再循环和热混合。这项研究提供了有价值的见解,如何进口流动,出口形状和流体特性相互作用,以影响传热和流动行为在一个光滑的t形结。它还提供了见解,可以帮助改善热交换器,微流体系统和工业管道的设计。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Numerical study of flow and heat transfer in circular T-shaped junction of different cross-sections.

This study investigates fluid flow and convective heat transfer within a smooth, two-dimensional T-shaped junction using a numerical approach. Simulations were conducted by varying the volumetric flow rate ratio r (0.25, 0.5, 0.75, and 1), the Reynolds number Re (500 to 2500), the Prandtl number Pr (1), and the cross-sectional width ratio w (0.5 to 2.5) of the outlet. The fluid dynamics were solved using the vorticity-stream function formulation with a compact upwind finite difference scheme and the Implicit-Explicit (IMEX) method, implemented in MATLAB. Flow behavior was analyzed through streamline and isotherm contours, while local and average Nusselt numbers were computed along the junction walls. The results show that lower r values lead to stronger vortex formation and asymmetry in the flow and temperature fields, while r = 1 yields symmetric and stable patterns. Increasing Re enhances heat transfer and transitions the flow toward unsteady regimes. Similarly, wider outlet configurations (higher w) promote recirculation and thermal mixing. This study provides valuable insights into how inlet flow, outlet shape, and fluid characteristics interact to influence heat transfer and flow behavior in a smooth T-shaped junction. It also provides insights that can help improve the design of heat exchangers, microfluidic systems, and industrial piping.

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来源期刊
PLoS ONE
PLoS ONE 生物-生物学
CiteScore
6.20
自引率
5.40%
发文量
14242
审稿时长
3.7 months
期刊介绍: PLOS ONE is an international, peer-reviewed, open-access, online publication. PLOS ONE welcomes reports on primary research from any scientific discipline. It provides: * Open-access—freely accessible online, authors retain copyright * Fast publication times * Peer review by expert, practicing researchers * Post-publication tools to indicate quality and impact * Community-based dialogue on articles * Worldwide media coverage
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