globalchange  > 气候变化事实与影响
CSCD记录号: CSCD:6185572
论文题名:
乙烷核态池沸腾中的气泡生长、脱离和上升
其他题名: Bubble growth, departure and rising of ethane at nucleate pool boiling condition
作者: 姚远1; 公茂琼1; 陈汉梽1; 陈高飞2; 邹鑫2; 董学强2; 沈俊1
刊名: 科学通报
ISSN: 0023-074X
出版年: 2018
卷: 63, 期:3, 页码:601-608
语种: 中文
中文关键词: 气泡 ; 核态池沸腾 ; 乙烷 ; 生长 ; 脱离 ; 上升 ; 高速摄影
英文关键词: bubble ; nucleate pool boiling ; ethane ; growth ; departure ; rising ; high-speed camera
WOS学科分类: ENERGY FUELS
WOS研究方向: Energy & Fuels
中文摘要: 利用高速摄影仪对乙烷在水平铜表面饱和核态池沸腾中的气泡行为特性进行了实验研究,并开展了理论分析,实验测量压力为0.2 MPa,热流密度范围为14.65~80.79 kW m~(-2).实验中观测到气泡的生长、脱离和上升过程,得到单个气泡的生长周期,同时绘制出单个气泡生长周期内的直径变化曲线,并将其分为快速、慢速和稳定增长3个阶段,且气泡直径与时间呈幂函数关系.鉴于其分段特性,推荐采用分段预测模型.发现了气泡脱离直径及频率随热流增大而增大,气泡脱离形状随热流增大而呈现球型、椭球型和不规则形状的变化.还观察到气泡合并,轨迹变化,附加运动和流型变化等现象,并分析讨论了其形成机理,发现系统压力、加热壁面性质液体物性对气泡的行为特性有较大影响.相比文献中的常温液体,乙烷气泡生长周期有差异,其脱离形状有椭球型及不规则形状,且气泡上升轨迹变化相对简单.
英文摘要: Boiling heat transfer exists in many industrial heat exchangers such as the evaporator of the refrigerator and the air conditioner, the reboiler of the chemical equipment and steam generator of the nuclear reactor. In the process of boiling, bubble movement can speed up the heat transfer between liquid and solid, leading to the improvement in heat transfer efficiency. Traditional refrigerants used in the industrial facilities have serious environmental problems, therefore, new substitutes are needed. Hydrocarbons are good alternatives. Ethane was suggested as one component of a mixedrefrigerant for its zero ozone depletion potential, low global warming potential and high thermodynamic properties. Therefore, it is important to investigate the bubble behavior of ethane in saturated nucleate pool boiling to design and optimize the industrial equipment like evaporator, improve natural gas liquefaction technology, and research characteristics of heat transfer and multiphase flow as well. Although there are a lot of researches on the heat transfer characteristics of pool boiling, the research on the bubble behavior in ethane is still lacking. In this paper, visualization experiments on the pool boiling heat transfer characteristics of ethane were carried out at 0.2 MPa. The heat fluxes varied from 14.65 kW m~(-2) to 80.79 kW m~(-2). Boiling occurred on the upward facing side of a smooth vertical copper cylinder with 20 mm diameter, connected to a DC power supply to control the heat flux on the surface. The measured roughness of the surface was 68.1 nm (root mean square average of the height deviations) and 50.7 nm (the arithmetic average of the absolute values of the surface height deviations). Acquisition of the temperature and pressure was accomplished by using a Keithley 2700 and six thermocouples. The experimental apparatus has a steel ruler inside the pool as the reference length to measure the bubble sizes and the maximum uncertainty for length measurement is 0.060 mm. Some conclusions can be drawn. (1) According to the change of diameter with time, the growth process was divided into three stages. The bubble growth process has obvious segmentation characteristics, and piecewise prediction models are recommended. (2) The bubbles in boiling pool exhibit the characteristics of axial symmetry and uneven distribution; the shape of separation of ethane bubbles has ellipsoidal and irregular shapes relative to normal temperature liquids. (3) There were trail changes and additional movements of large bubbles. Compared to normal temperature liquids, the trail changes were relatively simple; and the bubbles are bubbly and slug flow of two flow regimes. (4) System pressure, heating wall properties like surface roughness, liquid properties like contact angle and surface tension have an important influence on bubble behavior. This paper suggests that the heat transfer prediction equation should consider them.
资源类型: 期刊论文
标识符: http://119.78.100.158/handle/2HF3EXSE/154354
Appears in Collections:气候变化事实与影响

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作者单位: 1.中国科学院理化技术研究所
2.中国科学院大学, 中国科学院低温工程重点实验室
3.,
4., 北京
5.北京 100190
6.100049, 中国
7.中国科学院理化技术研究所, 中国科学院低温工程重点实验室, 北京 100190, 中国

Recommended Citation:
姚远,公茂琼,陈汉梽,等. 乙烷核态池沸腾中的气泡生长、脱离和上升[J]. 科学通报,2018-01-01,63(3):601-608
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