Pereira José, Souza Reinaldo, Moreira António, Moita Ana
IN+ Center for Innovation, Technology and Policy Research, Instituto Superior Técnico, Universidade de Lisboa, Avenida Rovisco Pais, 1049-001 Lisboa, Portugal.
CINAMIL Centro de Investigação Desenvolvimento e Inovação da Academia Militar, Academia Militar, Instituto Universitário Militar, Rua Gomes Freire, 1169-203 Lisboa, Portugal.
Micromachines (Basel). 2024 Feb 22;15(3):302. doi: 10.3390/mi15030302.
This overview intends to provide a comprehensive assessment of the novel fluids and the current techniques for surface modification for pool boiling enhancement. The surface modification at macro-, micro-, and nanoscales is assessed concerning the underlying fluid routing and capability to eliminate the incipient boiling hysteresis and ameliorate the pool boiling heat-transfer ability, particularly when employed together with self-rewetting fluids and nanofluids with enriched thermophysical properties. Considering the nanofluids, it is viable to take the profit of their high thermal conductivity and their specific heat simultaneously and to produce a film of deposited nanoparticles onto the heating surface, which possesses enhanced surface roughness and an increased density of nucleation sites. Whilst the diverse improvement scales are found to achieve distinct levels of success regarding the nucleate boiling heat-transfer capability enhancement, it is also shown that the micro-nanoscale boiling surface features are susceptible to blockage, leading to the degradation of the improvement with time. Furthermore, topics relating to the heat transfer thermal behavior, ease of manufacture, cost-effectiveness, reliability, and durability are reviewed whenever available and challenges and recommendations for further research are highlighted.
本综述旨在对新型流体以及当前用于强化池沸腾的表面改性技术进行全面评估。从潜在的流体流动路径以及消除起始沸腾滞后现象和改善池沸腾传热能力的角度,对宏观、微观和纳米尺度的表面改性进行了评估,特别是当与具有丰富热物理性质的自复润流体和纳米流体一起使用时。考虑到纳米流体,同时利用其高导热率和比热,并在加热表面上形成一层沉积纳米颗粒的薄膜是可行的,该薄膜具有增强的表面粗糙度和成核位点密度。虽然发现不同的改进尺度在提高核态沸腾传热能力方面取得了不同程度的成功,但也表明微纳米尺度的沸腾表面特征容易堵塞,导致改进效果随时间退化。此外,只要有相关内容,就会对与传热热行为、制造简易性、成本效益、可靠性和耐久性相关的主题进行综述,并突出进一步研究的挑战和建议。