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水接触角的温度依赖性:研究进展、理论理解及对沸腾传热影响的综述

Temperature dependence of the contact angle of water: A review of research progress, theoretical understanding, and implications for boiling heat transfer.

作者信息

Song Jia-Wen, Fan Li-Wu

机构信息

Institute of Thermal Science and Power Systems, School of Energy Engineering, Zhejiang University, Hangzhou, Zhejiang 310027, People's Republic of China.

Institute of Thermal Science and Power Systems, School of Energy Engineering, Zhejiang University, Hangzhou, Zhejiang 310027, People's Republic of China; State Key Laboratory of Clean Energy Utilization, Zhejiang University, Hangzhou, Zhejiang 310027, People's Republic of China.

出版信息

Adv Colloid Interface Sci. 2021 Feb;288:102339. doi: 10.1016/j.cis.2020.102339. Epub 2020 Dec 11.

Abstract

Contact angle, a quantitative measure of macroscopic surface wettability, plays an important role in understanding liquid-vapor heterogeneous phase change phenomena, e.g., boiling heat transfer. The contact angles of water at elevated temperatures are of particular interest for understanding of wettability-regulated boiling heat transfer in steam-based power generation. From a more theoretical perspective, the temperature dependence of contact angle of water is also essential to estimation of several key surface thermodynamic properties, such as the solid surface tension, the surface entropy, and the heats of immersion and adsorption. Here, a comprehensive review of historical efforts in measuring the contact angles of water over a wide temperature range on a variety of solids, not limited to metallic surfaces, is presented. As suggested by the literature data, the temperature dependence of contact angle of water may be classified into three regimes: (a) low temperatures below the saturation point (i.e., 100 °C at atmospheric pressure), (b) medium temperatures up to ~170 °C, and (c) high temperatures up to 300 °C at pressurized conditions. A slightly-decreasing or nearly-invariant trend of the contact angles of water on both non-metallic and metallic surfaces was reported for the low-temperature regime. In contrast, a steeper linear decline in water contact angle was demonstrated at temperatures above 100 °C. The few experimental data available on several metallic surfaces showed that the contact angle of water either again becomes nearly temperature-independent or further decreases with temperature above 210 °C. A theoretical understanding of the temperature dependence is given based on surface thermodynamic analysis, although the exact molecular mechanisms underlying these experimental observations remain unclear. Consequently, the theoretical model for predicting the variation of the contact angle of water with temperature is not well-developed. As the critical point of water (374 °C and 22.1 MPa) is approached, the surface tension, and hence the contact angle, should become vanishingly small. However, this theoretical expectation has not yet been verified due to the lack of experimental data at such high temperatures/pressures. Finally, future research directions are identified, including a systematic exploration of the contact angle at near-critical temperatures, the effects of surface oxidation, corrosion, and deposition on contact angle during operation of boilers and reactors, and the particular effect of irradiation on contact angle in nuclear reactor applications.

摘要

接触角是宏观表面润湿性的一种定量度量,在理解液 - 气非均相相变现象(如沸腾传热)中起着重要作用。高温下水的接触角对于理解基于蒸汽的发电中润湿性调节的沸腾传热尤为重要。从更理论的角度来看,水接触角的温度依赖性对于估算几个关键的表面热力学性质(如固体表面张力、表面熵以及浸润热和吸附热)也是必不可少的。在此,本文全面回顾了在各种固体(不限于金属表面)上在宽温度范围内测量水接触角的历史研究工作。如文献数据所示,水接触角的温度依赖性可分为三个区域:(a) 低于饱和点的低温(即常压下为100°C),(b) 高达约170°C的中温,以及 (c) 加压条件下高达300°C的高温。对于低温区域,报道了水在非金属和金属表面上的接触角呈略微下降或几乎不变的趋势。相比之下,在高于100°C的温度下,水接触角呈更陡峭的线性下降。在几个金属表面上可得的少量实验数据表明,在高于210°C时,水的接触角要么再次变得几乎与温度无关,要么随温度进一步降低。基于表面热力学分析给出了对温度依赖性的理论理解,尽管这些实验观察背后的确切分子机制仍不清楚。因此,用于预测水接触角随温度变化的理论模型尚未得到充分发展。随着接近水的临界点(374°C和22.1MPa),表面张力以及因此接触角应变得极小。然而,由于在如此高的温度/压力下缺乏实验数据,这一理论预期尚未得到验证。最后,确定了未来的研究方向,包括对近临界温度下接触角的系统探索、锅炉和反应堆运行期间表面氧化、腐蚀和沉积对接触角的影响,以及核反应堆应用中辐照对接触角的特殊影响。

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