化工学报 ›› 2019, Vol. 70 ›› Issue (12): 4575-4581.DOI: 10.11949/0438-1157.20190574
收稿日期:
2019-05-27
修回日期:
2019-09-04
出版日期:
2019-12-05
发布日期:
2019-12-05
通讯作者:
金旭
作者简介:
刘忠彦(1987—),男,博士,讲师,基金资助:
Zhongyan LIU(),Wei LU,Xu JIN(),Dahan SUN,Junbo ZHANG,Chen WANG
Received:
2019-05-27
Revised:
2019-09-04
Online:
2019-12-05
Published:
2019-12-05
Contact:
Xu JIN
摘要:
CO2被认为是一种理想的替代制冷剂,具有良好的环境特性和优良的热力学特性。与传统制冷剂相比,CO2有着十分不同的流动沸腾换热特性,过程会发生干涸将使其换热能力大幅下降。然而现有的干涸点预测公式都是基于各自的实验数据拟合得出,由于数据点太少和变量参数范围受限导致关联式的预测结果存在偏差。所以,通过对17篇文献中搜集的4986个实验数据点进行整理,分析得出质量流率、热通量、饱和温度和管径等影响因素对干涸点的影响趋势,并将数据点按大小压力分别拟合得出了干涸点的预测公式,有90%的数据点偏差小于15%,对干涸点预测,防止传热恶化有重要意义。
中图分类号:
刘忠彦, 逯玮, 金旭, 孙大汉, 张俊博, 王晨. CO2管内流动沸腾干涸特性研究[J]. 化工学报, 2019, 70(12): 4575-4581.
Zhongyan LIU, Wei LU, Xu JIN, Dahan SUN, Junbo ZHANG, Chen WANG. Study of dry-out characteristics of carbon dioxide during flow boiling in tube[J]. CIESC Journal, 2019, 70(12): 4575-4581.
文献 | 水力直径/mm | 饱和温度/℃ | 质量流率/(kg/(m2·s)) | 热通量/(kW/m2) | 数据个数 | 干涸点数 |
---|---|---|---|---|---|---|
[ | 1.42,4.57 | 10,15 | 400,800 | 7.5,40 | 36 | 2 |
[ | 6 | 5,10 | 170,240,340 | 10~20 | 218 | 13 |
[ | 6.1 | -15,-30 | 100,200,400 | 5~15 | 120 | 4 |
[ | 7.75 | -5~5 | 200~500 | 10~30 | 100 | 7 |
[ | 7.73 | 0~20 | 318 | 12.5,16.4,18.6 | 60 | 6 |
[ | 1.5 | -40~0 | 300~600 | 7.5~30 | 390 | 17 |
[ | 4 | 1~15 | 100~300 | 2~18 | 148 | 8 |
[ | 4 | 5 | 77 | 4.8 | 5 | 1 |
[ | 1,2,3 | -10~10 | 56~1335 | 5.69~34.2 | 359 | 25 |
[ | 1.5 | -40~0 | 300~600 | 7.5,30 | 327 | 17 |
[ | 4 | 5 | 66 | 3.2 | 5 | 1 |
[ | 4 | 1~15 | 100~300 | 2~18 | 100 | 7 |
[ | 1.42 | -30 | 300 | 29.8 | 23 | 1 |
[ | 1.5,2,3 | -5 | 500,1000 | 7.2~30 | 68 | 4 |
[ | 1,2,3 | -5,2.5,3 | 56~1070 | 22.4~34.2 | 143 | 3 |
[ | 1.42 | -40~0 | 300~600 | 0~29.8 | 552 | 26 |
[ | 0.98 | 0~15 | 360~1500 | 18~40 | 251 | 9 |
[ | 0.529 | -10~0 | 200~1400 | 10~30 | 1749 | 49 |
[ | 2 | 15 | 360,720 | 4.5,9,18 | 332 | 6 |
表1 CO2管内流动沸腾换热实验数据
Table 1 Experimental data of carbon dioxide flow boiling heat transfer in tube
文献 | 水力直径/mm | 饱和温度/℃ | 质量流率/(kg/(m2·s)) | 热通量/(kW/m2) | 数据个数 | 干涸点数 |
---|---|---|---|---|---|---|
[ | 1.42,4.57 | 10,15 | 400,800 | 7.5,40 | 36 | 2 |
[ | 6 | 5,10 | 170,240,340 | 10~20 | 218 | 13 |
[ | 6.1 | -15,-30 | 100,200,400 | 5~15 | 120 | 4 |
[ | 7.75 | -5~5 | 200~500 | 10~30 | 100 | 7 |
[ | 7.73 | 0~20 | 318 | 12.5,16.4,18.6 | 60 | 6 |
[ | 1.5 | -40~0 | 300~600 | 7.5~30 | 390 | 17 |
[ | 4 | 1~15 | 100~300 | 2~18 | 148 | 8 |
[ | 4 | 5 | 77 | 4.8 | 5 | 1 |
[ | 1,2,3 | -10~10 | 56~1335 | 5.69~34.2 | 359 | 25 |
[ | 1.5 | -40~0 | 300~600 | 7.5,30 | 327 | 17 |
[ | 4 | 5 | 66 | 3.2 | 5 | 1 |
[ | 4 | 1~15 | 100~300 | 2~18 | 100 | 7 |
[ | 1.42 | -30 | 300 | 29.8 | 23 | 1 |
[ | 1.5,2,3 | -5 | 500,1000 | 7.2~30 | 68 | 4 |
[ | 1,2,3 | -5,2.5,3 | 56~1070 | 22.4~34.2 | 143 | 3 |
[ | 1.42 | -40~0 | 300~600 | 0~29.8 | 552 | 26 |
[ | 0.98 | 0~15 | 360~1500 | 18~40 | 251 | 9 |
[ | 0.529 | -10~0 | 200~1400 | 10~30 | 1749 | 49 |
[ | 2 | 15 | 360,720 | 4.5,9,18 | 332 | 6 |
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