对用于增强传热过程的混合纳米流体热物理性质的合成与应用方面的深入研究

IF 3.7 3区 工程技术 Q2 ENGINEERING, CHEMICAL
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引用次数: 0

摘要

最近,纳米流体(NFs)因其可根据要求制造的各种特性而备受研究人员的关注。通过在基础流体中注入纳米颗粒而产生的纳米流体可增强其基本特性。混合纳米流体(HNF)是一种含有不同类型纳米粒子的纳米流体(NF),目前正在对其可定制的特性进行研究。最近,研究人员深入研究了 HNF 的应用,尤其是与传热(HT)相关的应用。本研究分析了 HNFs 的制备方法和热物理性质,更加重视其在 HT(包括热交换、太阳热和冷却系统)中的应用。考虑到稳定性,两步合成法优于单步合成法。经过多方研究,开发出了一种与基质流体相比具有更强热传导能力的流体。然而,在提高高温性能的同时,体积浓度 (VC) 的增加也带来了一些挑战,如粘度和压降的增加,尤其是在多孔介质中,这就需要增加泵送功率。在抛物面槽式太阳能集热器(PTSC)等系统中使用涡轮机和其他配置以及 HNF,可提高太阳能热系统(STS)的热效率。在太阳能集热器(SCS)中使用基于 EG 的多壁碳纳米管(MWCNTs)NF 的一个优势是,它们能够提高热效率并减少二氧化碳排放,因此在太阳能集热器中使用它们是一个很有吸引力的选择。研究人员在确定 HNFs 中纳米颗粒的理想成分和浓度方面面临着巨大挑战,如何才能既获得最佳热效率,又不会造成过高的粘度而影响实际可用性?具体来说,本研究探讨了 HNF 的独特热物理特性,这些特性可大大提高其在 HT 应用中的功效。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A critical review on synthesis and application aspect of venturing the thermophysical properties of hybrid nanofluid for enhanced heat transfer processes

Recently, nanofluids (NFs) have gathered significant attention among researchers due to their varied properties, which can be made per the requirements. NFs, created by infusing nanoparticles into a base-fluid, enhance their fundamental properties. A hybrid nanofluid (HNF) is a nanofluid (NF) containing different types of nanoparticles, and it is being studied for its customizable properties. Recently, researchers delved into the applications regarding HNFs, particularly in cases relating to heat transfer (HT). This study analyzes HNFs’ preparation methods and thermophysical properties, giving more importance to their applications in HT, including heat-exchange, solar thermal, and cooling systems. Considering stability, the two-step synthesis method is preferred over the single-step method. Multiple research efforts have led to the development of a fluid that possesses superior HT capabilities compared to the base-fluid. However, while bettering HT, an increase in volume concentration (VC) also raised challenges such as increased viscosity and pressure drop, particularly in porous media, necessitating additional pumping power. The use of turbulators and other configurations, along with HNF in systems like parabolic trough solar collectors (PTSCs), enhances solar thermal systems (STSs) by improving their HT capabilities. An advantageous use of EG-based multiwalled carbon nanotubes (MWCNTs) NF in solar collectors (SCs) is their ability to increase thermal efficiency and decrease carbon dioxide emissions, making them an attractive choice for use in SCs. Researchers face significant challenges in determining the ideal composition and concentration of nanoparticles in HNFs to attain optimal HT without causing excessive viscosity that could impede practical usability. Specifically, this study examines the distinctive thermophysical characteristics of HNFs that substantially improve their efficacy in HT applications.

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来源期刊
Chemical Engineering Research & Design
Chemical Engineering Research & Design 工程技术-工程:化工
CiteScore
6.10
自引率
7.70%
发文量
623
审稿时长
42 days
期刊介绍: ChERD aims to be the principal international journal for publication of high quality, original papers in chemical engineering. Papers showing how research results can be used in chemical engineering design, and accounts of experimental or theoretical research work bringing new perspectives to established principles, highlighting unsolved problems or indicating directions for future research, are particularly welcome. Contributions that deal with new developments in plant or processes and that can be given quantitative expression are encouraged. The journal is especially interested in papers that extend the boundaries of traditional chemical engineering.
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