期刊文献+

铝合金连续铸造喷水冷却的换热系数 被引量:17

Heat transfer coefficient during cooling water of continuous casting of aluminum alloy
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摘要 基于边界条件替换法建立了铝合金连续铸造喷水冷却过程的换热系数计算模型。采用实验测量铸锭冷却过程的表面温度和温度场数值计算相结合的方法 ,确定了铸锭表面温度为 10 0~ 5 0 0℃和喷水密度为 11.3~2 7.8L/ (m·min)时的换热系数 ,结果表明在不同的表面温度区间内 ,换热系数随着喷水密度增加而增大 ;当喷水密度相同时 ,随着铸锭表面温度升高 。 Based on the substitution method of boundary condition, a calculation model of the heat transfer coefficient in continuous casting of aluminum alloy during the process of water cooling was established, and the effects of surface temperature and cooling water density on heat transfer coefficient were analyzed. As a result, an empiric formula was founded by the mean square regression. The results show that when the surface temperature is in the range of 100~500?℃, and cooling water density is in the range of 11.3~27.8?L/(m·min), the heat transfer coefficient increase with the increase of the cooling water density and the decrease of the surface temperature.
作者 贾非 金俊泽
出处 《中国有色金属学报》 EI CAS CSCD 北大核心 2001年第z1期39-43,共5页 The Chinese Journal of Nonferrous Metals
基金 国家自然科学基金重大资助项目 ( 5 9995 442 )
关键词 连续铸造 铝合金 冷却/凝固控制 换热系数 continuous casting aluminum alloy cooling/solidification control heat transfer coefficient
作者简介 贾非(1973-), 男, 博士研究生.
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参考文献10

  • 1[1]Drezet J M, Rappaz M. Modeling of ingot distortions during direct chill casting of aluminum alloys [J]. Metall Trans, 1996, 27A(10): 3214-3225.
  • 2张兴国,金俊泽.电磁铸造中试工艺参数的研究[J].中国有色金属学报,1994,4(A12):171-174. 被引量:3
  • 3[3]Tsunekawa M, Hayashi N, Uno T. Effects of various cooling conditions on the characteristic properties of aluminum DC ingots [J]. Light Metals (In Japanese), 1996, 46(3): 132-137.
  • 4[4]Mitsutsuka M. Heat transfer coefficients in the surface temperature range of 400~800 ℃ during water-spray cooling of hot steel product [J]. Journal of the Iron and Steel Institute of Japan (in Japanese), 1983, 69(2): 268-274.
  • 5[5]Matsuno J I, Nakato H, Ooi H. An analysis of solidification rate and surface temperature of continuous casting slabs [J]. Journal of the Iron and Steel Institute of Japan (in Japanese), 1974, 60(7): 1023-1032.
  • 6[6]Mitsutsuka M, Fukuda K. Cooling characteristics and heat transfer coefficients during fog cooling of hot steel plates [J]. Journal of the Iron and Steel Institute of Japan (in Japanese), 1979, 65(6): 608-616.
  • 7韦光,董希满,王进民.水幕冷却高温钢板对流换热系数的研究[J].钢铁,1994,29(1):22-26. 被引量:5
  • 8秦国庆,熊晓明.钢板水幕冷却的分析[J].钢铁研究学报,2000,12(1):63-66. 被引量:7
  • 9[9]CHEN Hai-qing(陈海清), LI Hua-ji(李华基), CAO Yang(曹阳). 铸件凝固过程数值模拟[M]. Chongqing: Chongqing University Press, 1991. 19-23.
  • 10[10]YU Jing-lu(俞景禄), WEI Ji-he(魏季和). 冶金中的传热传质现象[M]. Beijing: Metallurgical Industry Press, 1981. 296-299.

二级参考文献8

  • 1刘峰.高温钢板喷雾冷却时的冷却特性和传热系数[J].钢铁研究学报,1990,2(2):31-36. 被引量:3
  • 2董希满,硕士学位论文,1992年
  • 3钱振声,钢铁,1990年,1期,28页
  • 4杨世铭,传热学(第2版),1980年
  • 5秦国庆,学位论文,1990年
  • 6王占学,控制轧制与控制冷却,1987年
  • 7三正志,制铁研究,1978年,293期,14页
  • 8三正志,铁と钢,1977年,4期,185页

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