徐炳丰, 张凌玲. 表面综合散热系数对电厂温排水敏感性的研究[J]. 海洋环境科学, 2015, 34(1): 81-85. DOI: 10.13634/j.cnki.mes.2015.01.015
引用本文: 徐炳丰, 张凌玲. 表面综合散热系数对电厂温排水敏感性的研究[J]. 海洋环境科学, 2015, 34(1): 81-85. DOI: 10.13634/j.cnki.mes.2015.01.015
XU Bing-feng, ZHANG Ling-ling. Research of the effect of heat transfer coefficients on thermal effluent[J]. Chinese Journal of MARINE ENVIRONMENTAL SCIENCE, 2015, 34(1): 81-85. DOI: 10.13634/j.cnki.mes.2015.01.015
Citation: XU Bing-feng, ZHANG Ling-ling. Research of the effect of heat transfer coefficients on thermal effluent[J]. Chinese Journal of MARINE ENVIRONMENTAL SCIENCE, 2015, 34(1): 81-85. DOI: 10.13634/j.cnki.mes.2015.01.015

表面综合散热系数对电厂温排水敏感性的研究

Research of the effect of heat transfer coefficients on thermal effluent

  • 摘要: 水面综合散热系数是电厂温排水数值模拟准确性的决定因素之一,往往受到当地的水温、气温、压强、湿度、风速等多种因素的影响,研究起来相对比较困难,也很少有人对其进行研究.本文以国内某火电厂工程为例,对海域的水面综合散热系数进行了研究和分析.结果表明,高温升4℃的全潮最大包络面积随水温的变化趋势接近线性变化,而低温升0.5℃的变化趋势则更接近指数分布;同时,各种温升(4℃、2℃、0.5℃)的全潮最大包络面积随着水温的降低,最后面积分别趋近于一个稳定的值,也就是说极端低水温的情况对温排水的影响不会太严重.

     

    Abstract: Heat transfer coefficient is one of the determinants in numerical simulation of thermal effluent. It is affected by the local water temperature, air temperature, pressure, humidity, wind speed, etc. As a result, few researches were done about heat transfer coefficient in the past. In this paper, one certain power plant in China is taken as an example to study heat transfer coefficient during thermal effluent. Results show that the change of maximum envelope area of high temperature rise (e.g. 4℃) in a full tide with water temperature is close to a linear distribution, while low temperature rise (e.g. 0.5℃) is close to an exponential distribution. At the same time, the maximum envelope area in a full tide will approach to a stable value when water temperature decreases. In other words, the influence of extreme low water temperature on thermal effluent is limited.

     

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