化工学报 ›› 2019, Vol. 70 ›› Issue (6): 2269-2278.DOI: 10.11949/j.issn.0438-1157.20181274
收稿日期:
2018-10-31
修回日期:
2019-03-25
出版日期:
2019-06-05
发布日期:
2019-06-05
通讯作者:
董勇
作者简介:
<named-content content-type="corresp-name">张昊</named-content>(1993—),男,博士研究生,<email>zhag930502@163.com</email>
基金资助:
Hao ZHANG1(),Kai SHEN2,Yanhua LAI1,Lin CUI1,Yong DONG1()
Received:
2018-10-31
Revised:
2019-03-25
Online:
2019-06-05
Published:
2019-06-05
Contact:
Yong DONG
摘要:
燃煤电厂排放的烟气中含有大量水蒸气,氯化钙溶液循环除湿技术具有较好的除湿潜力。为了研究吸湿后的氯化钙溶液的再生性能,使用Matlab软件对液滴闪蒸过程进行了数值模拟,并搭建了氯化钙溶液喷雾闪蒸试验台。考察了闪蒸压力,溶液初始温度、浓度、溶液流量等因素对氯化钙溶液再生量的影响。试验结果表明了数学模型的准确性;溶液表面蒸气压和再生压力的差值以及溶液过热度是影响再生量的关键因素;闪蒸出口水蒸气经冷凝后Cl–含量不足0.2 mg/L。浓度为35%的溶液在再生温度为60℃、再生压力为10 kPa、流量为0.2 m3/h的情况下,可以实现5 kg/h以上的水分回收量。
中图分类号:
张昊, 申凯, 赖艳华, 崔琳, 董勇. 氯化钙溶液喷雾闪蒸再生特性模拟及试验分析[J]. 化工学报, 2019, 70(6): 2269-2278.
Hao ZHANG, Kai SHEN, Yanhua LAI, Lin CUI, Yong DONG. Simulation and experimental analysis of spray flash regeneration characteristics of CaCl2 solution[J]. CIESC Journal, 2019, 70(6): 2269-2278.
Parameter Value | |
---|---|
initial droplet temperature T 0/K | 333.15—343.15 |
initial droplet concentration x 0/% | 30—40 |
initial droplet diameter D s(0) /mm | 1 |
flash evaporation pressure P ∞/kPa | 5—15 |
initial environmental temperature T ∞/K | 293.15 |
表1 模拟计算主要参数
Table 1 Main parameters of simulation
Parameter Value | |
---|---|
initial droplet temperature T 0/K | 333.15—343.15 |
initial droplet concentration x 0/% | 30—40 |
initial droplet diameter D s(0) /mm | 1 |
flash evaporation pressure P ∞/kPa | 5—15 |
initial environmental temperature T ∞/K | 293.15 |
Experimental parameters | Instrument | Range | Precision |
---|---|---|---|
temperature | PT100 temperature sensor | 0—150℃ | 0.1℃ |
pressure | MIK-P300 pressure sensor | 0—20 kPa | 0.5% |
solution flow | LWGY-MK-DN6 turbine flowmeter | 0.1—0.6 m3/h | ±1% |
solution density[border:border-bottom:solid;] | densitometer[border:border-bottom:solid;] | 1200—1300 kg/m3 1300—1400 kg/m3 1400—1500 kg/m3 | 1 kg/m3[border:border-bottom:solid;] |
表2 试验系统测量仪器
Table 2 Test instruments of experimental system
Experimental parameters | Instrument | Range | Precision |
---|---|---|---|
temperature | PT100 temperature sensor | 0—150℃ | 0.1℃ |
pressure | MIK-P300 pressure sensor | 0—20 kPa | 0.5% |
solution flow | LWGY-MK-DN6 turbine flowmeter | 0.1—0.6 m3/h | ±1% |
solution density[border:border-bottom:solid;] | densitometer[border:border-bottom:solid;] | 1200—1300 kg/m3 1300—1400 kg/m3 1400—1500 kg/m3 | 1 kg/m3[border:border-bottom:solid;] |
Solution temperation/K | Solution concentration/% | Cl- concentration/ (mg/L) |
---|---|---|
59.86 | 0.285 | 0.142 |
60.69 | 0.345 | 0.156 |
61.10 | 0.409 | 0.175 |
64.57 | 0.351 | 0.163 |
69.24 | 0.347 | 0.165 |
表3 不同试验工况下的Cl-浓度
Table 3 Cl- concentration under different experimental conditions
Solution temperation/K | Solution concentration/% | Cl- concentration/ (mg/L) |
---|---|---|
59.86 | 0.285 | 0.142 |
60.69 | 0.345 | 0.156 |
61.10 | 0.409 | 0.175 |
64.57 | 0.351 | 0.163 |
69.24 | 0.347 | 0.165 |
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