通过改变后漩涡管长度优化四叶漩涡管的水热性能

IF 4.3 3区 工程技术 Q2 ENERGY & FUELS
Xingyu Feng, Nicholas J. Miles, Guozhen Li, Jiarui Gao, Zheng Wang, Philip Hall
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引用次数: 0

摘要

本研究通过模拟和实验探讨了四叶漩涡发生器产生的衰减漩涡流的传热性能。在实验研究中,漩涡发生器的热性能与圆管的热性能进行了比较,结果表明印刷漩涡发生器的传热性能优于印刷圆管。在不同的雷诺数范围内,使用不同长度的后漩涡圆管进行了进一步的实验,以评估下游漩涡的衰减情况。在这种情况下,对于较短的后漩涡圆形管道,热改善效果得以保持,但随着圆形管道长度的增加,这种优势逐渐丧失。在数值研究中,研究了漩涡管不同间距与直径(PD)比的影响,包括作为热交换器一部分的实际漩涡管(漩涡内)或不包括它(漩涡外),以及不同后漩涡段长度的影响。传热速率和压降随着 PD 比的减小而增加,与外漩涡布置相比,内漩涡布置的热增强效果更高,压降相近。在所有几何形状中,PD6 的漩涡内布置具有最高的热增强效果。应用漩涡强度和场协同原理证实了这些结果,表明漩涡发生器产生的任何热增强在离开漩涡管后迅速消失。此外,场协同原理比漩涡强度更适合解释衰减漩涡流的热增强效应。这项研究表明,通过优化后漩涡管长度,可以将整体传热性能提高约 5%,而压降小于 16%。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Optimising the Hydro-Thermal Performance of a Four-Lobed Swirl Tube by Changing the Post-Swirl Pipe Length

Optimising the Hydro-Thermal Performance of a Four-Lobed Swirl Tube by Changing the Post-Swirl Pipe Length

This study explored the heat transfer performance of a decaying swirl flow generated by a four-lobed swirl generator with simulations and experiments. In the experimental studies, the thermal performance of a swirl generator was compared with that of a circular tube, indicating that the printed swirl generator provided better heat transfer performance than the printed circular tube. Further experiments were performed over a range of Reynolds numbers with different lengths of post-swirl, circular pipe to assess the decay of swirl, downstream. Here, for shorter lengths of post-swirl, circular pipe, the thermal improvement was maintained, but this advantage was lost with longer circular pipe runs. In numerical studies, the effect of various pitch-to-diameter (PD) ratios of the swirl pipe, including the actual swirl pipe (in-swirl) as a part of the heat exchanger or excluding it (ex-swirl), and the effect of different post-swirl section lengths were investigated. The heat transfer rate and pressure drop increased with the reduction of the PD ratio, and the in-swirl arrangements gave higher thermal enhancement and similar pressure loss compared with the ex-swirl arrangements. The PD6 in-swirl arrangement gave the highest thermal enhancement for all the geometries. Applying the swirl intensity and the field synergy principle confirmed these results, showing that any thermal enhancement created by swirl generators disappeared rapidly after exiting the swirl tube. In addition, the field synergy principle was more suited to explain the thermal enhancement effect of the decaying swirl flow instead of swirl intensity. This study demonstrates that by optimising the post-swirl pipe length, overall heat transfer performance can be increased by around 5% with a pressure drop of less than 16%.

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来源期刊
International Journal of Energy Research
International Journal of Energy Research 工程技术-核科学技术
CiteScore
9.80
自引率
8.70%
发文量
1170
审稿时长
3.1 months
期刊介绍: The International Journal of Energy Research (IJER) is dedicated to providing a multidisciplinary, unique platform for researchers, scientists, engineers, technology developers, planners, and policy makers to present their research results and findings in a compelling manner on novel energy systems and applications. IJER covers the entire spectrum of energy from production to conversion, conservation, management, systems, technologies, etc. We encourage papers submissions aiming at better efficiency, cost improvements, more effective resource use, improved design and analysis, reduced environmental impact, and hence leading to better sustainability. IJER is concerned with the development and exploitation of both advanced traditional and new energy sources, systems, technologies and applications. Interdisciplinary subjects in the area of novel energy systems and applications are also encouraged. High-quality research papers are solicited in, but are not limited to, the following areas with innovative and novel contents: -Biofuels and alternatives -Carbon capturing and storage technologies -Clean coal technologies -Energy conversion, conservation and management -Energy storage -Energy systems -Hybrid/combined/integrated energy systems for multi-generation -Hydrogen energy and fuel cells -Hydrogen production technologies -Micro- and nano-energy systems and technologies -Nuclear energy -Renewable energies (e.g. geothermal, solar, wind, hydro, tidal, wave, biomass) -Smart energy system
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