探索太空中的热交换:微重力两相流体实验的最新进展

IF 5.1 3区 工程技术 Q2 ENERGY & FUELS
Glauco Nobrega , Inês Santos Afonso , Beatriz Cardoso , Reinaldo Rodrigues de Souza , Ana Moita , João Eduardo Ribeiro , Rui A. Lima
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引用次数: 0

摘要

自 1957 年人造卫星 1 号问世以来,温度调节一直是太空探险的核心任务。多年来,人们开发了许多技术来调节航天器和太空栖息地的温度。最初采用的是隔热罩和热衬里等被动系统,而较新的任务则使用氨水和水等流体进行主动冷却。随着月球探测的重大进展,热管理系统已被整合到一起,以确保有效的热保护和散热。在落塔、抛物线飞行、探空火箭和国际空间站(ISS)上进行的实验对流体物理、池沸腾、两相流沸腾和冷却现象产生了宝贵的见解。然而,在微重力条件下进行测试可能会降低性能,而且精确的数值模拟仍然是一项挑战。目前,各种组织都在开展研究,以推动热管理的进步,提高空间设备的技术水平。本综述介绍了微重力条件下两相流体实验的最新进展。此外,还介绍和讨论了该领域持续存在的主要挑战,以及对未来太空热控制趋势和可能性的看法。本综述试图成为未来太空热控制研究和发展的相关指南。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Exploring heat exchange in space: Recent advances in two-phase fluid experiments in microgravity
Thermal regulation has assumed a central role in space expeditions ever since the inception of Sputnik-1 in 1957. Throughout the years, numerous techniques have been developed to regulate temperatures in spacecraft and space habitats. Initially, passive systems like heat shields and thermal linings were employed, while newer missions embrace active cooling using fluids like ammonia and water. With significant advancements in lunar exploration, thermal management systems have been integrated to ensure effective heat protection and dissipation. Experiments carried out in drop towers, parabolic flights, sounding rockets, and aboard the International Space Station (ISS) have yielded valuable insights into the physics of fluids, pool boiling, boiling in two-phase flow, and cooling phenomena. However, conducting tests in microgravity conditions can lead to lower performances, and accurate numerical simulations remain a challenge. At present, various organizations are conducting research to drive progress in thermal management and enhance the technology of space devices. This review describes the most recent advances in two-phase fluid experiments in microgravity. Furthermore, the major challenges that persist in this field are presented and discussed, along with observations on trends and possibilities for the future of thermal control in space. This review attempts to be a relevant guide for future research and developments on thermal control in space.
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来源期刊
Thermal Science and Engineering Progress
Thermal Science and Engineering Progress Chemical Engineering-Fluid Flow and Transfer Processes
CiteScore
7.20
自引率
10.40%
发文量
327
审稿时长
41 days
期刊介绍: Thermal Science and Engineering Progress (TSEP) publishes original, high-quality research articles that span activities ranging from fundamental scientific research and discussion of the more controversial thermodynamic theories, to developments in thermal engineering that are in many instances examples of the way scientists and engineers are addressing the challenges facing a growing population – smart cities and global warming – maximising thermodynamic efficiencies and minimising all heat losses. It is intended that these will be of current relevance and interest to industry, academia and other practitioners. It is evident that many specialised journals in thermal and, to some extent, in fluid disciplines tend to focus on topics that can be classified as fundamental in nature, or are ‘applied’ and near-market. Thermal Science and Engineering Progress will bridge the gap between these two areas, allowing authors to make an easy choice, should they or a journal editor feel that their papers are ‘out of scope’ when considering other journals. The range of topics covered by Thermal Science and Engineering Progress addresses the rapid rate of development being made in thermal transfer processes as they affect traditional fields, and important growth in the topical research areas of aerospace, thermal biological and medical systems, electronics and nano-technologies, renewable energy systems, food production (including agriculture), and the need to minimise man-made thermal impacts on climate change. Review articles on appropriate topics for TSEP are encouraged, although until TSEP is fully established, these will be limited in number. Before submitting such articles, please contact one of the Editors, or a member of the Editorial Advisory Board with an outline of your proposal and your expertise in the area of your review.
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