西安交通大学能源与动力工程学院,西安,710049
网络首发:2014-03-10,
纸质出版:2014
移动端阅览
陈金锋, 吴智敏, 冯健美, 等. 低温进气对闪蒸气压缩机流量影响的实验研究[J]. 西安交通大学学报, 2014,48(3):68-71+127.
Experimental Investigation on Flow Rate of Boil-Off Gas Compressor at Low Suction Temperature[J]. 2014, 48(3): 68-71+127.
陈金锋, 吴智敏, 冯健美, 等. 低温进气对闪蒸气压缩机流量影响的实验研究[J]. 西安交通大学学报, 2014,48(3):68-71+127. DOI: 10.7652/xjtuxb201403013.
Experimental Investigation on Flow Rate of Boil-Off Gas Compressor at Low Suction Temperature[J]. 2014, 48(3): 68-71+127. DOI: 10.7652/xjtuxb201403013.
针对低温进气对液化天然气闪蒸气(BOG)压缩机容积效率影响很大的问题
搭建了低温进气压缩机性能测试实验台。通过在气缸不同位置安装温度传感器
测量了不同进气温度下压缩机气缸内气体温度及外壁面温度
采用体积流量计测量了压缩机实际进、排气流量; 通过在压缩机进口前的管路上缠加热带
采用并联铜管旁通管路
实现了进气温度调节。根据测量结果对影响容积效率的因素
特别是温度系数和进气系数进行了计算分析
结果表明:BOG压缩机稳定运行时
随着进气温度从-54.2 ℃降低到-142.2 ℃
进气系数、温度系数和容积效率均明显减小
分别下降了25.5%、25.0%和23.75%; 进气温度为-142.2 ℃时
气缸外壁面温差达到最大值76 ℃。该结果可为闪蒸气回收式压缩机气缸设计提供参考。
The low suction temperature has a significant effect on the volumetric efficiency of BOG(boil-off gas)compressors. A test rig with temperature sensors was built up to investigate the temperature distribution in the cylinder at various suction temperatures. The suction and discharge flow rates were both measured by the volume flow meter. The heating tape on the pipe before the compressor inlet and the by-pass line were used to adjust the suction temperature. From the test data
the main factors influencing the volumetric efficiency were analyzed
focusing on the temperature coefficient and the suction coefficient. The results show that the suction coefficient
temperature coefficient and volumetric coefficient decreased by 24.4%
25%
and 23.75%
respectively
when the suction temperature decreased from -54.2 ℃ to -142.2 ℃. The temperature difference on the cylinder outer surface reached the maximum
76 ℃
at the suction temperature of -142.2 ℃.
MURAI K, NAGURA K. LNG boil-off gas reciprocating compressors[J]. Kobe Steel Works Engineering Reports, 1999, 49(1): 64-67.
顾安忠. 液化天然气技术[M]. 北京: 机械工业出版社, 2003.
刘浩, 金国强. LNG接收站BOG气体处理工艺[J]. 化工设计, 2006, 16(1): 13-16.
LIU Hao, JIN Guoqiang. Process comparison and energy saving analysis of BOG gas treatment of LNG receiving terminal[J]. Chemical Engineering Design, 2006, 16(1): 35-16.
QUEROL E, GONZALEZ-REGUERAL B, GARCIA-TORRENT J, et al. Boil off gas(BOG)management in Spanish liquid natural gas(LNG)terminals[J]. Applied Energy, 2010, 87(11): 3384-3392.
QUEROL E, REGUERAL B G, TORRENT J G, et al. Boil off gas(BOG)management in Spanish liquid natural gas(LNG)terminals[J]. Applied Energy, 2010, 87(11): 3384-3392.
SAYYAADI H, BABAELAHI M. Thermoeconomic optimization of a cryogenic refrigeration cycle for re-liquefaction of the LNG boil-off gas[J]. International Journal of Refrigeration, 2010, 33(6): 1197-1207
SHIN Y, LEE Y P. Design of a boil-off natural gas reliquefaction control system for LNG carriers[J]. Applied Energy, 2009, 86(1): 37-44.
ERNST P. The LNG BOG labyrinth-piston compressor with flexible capacity control[J/OL].[2013-01-21]. http:∥www.kgu.or.kr/download.php?tb=bbs_017fn=Ernst.pdfrn=Ernst.pdf.
SHIN M W, SHIN D, CHOI S H, et al. Optimization of the operation of boil-off gas compressors at a liquefied natural gas gasification plant[J]. Industrial and Engineering Chemistry Research, 2007, 46(20): 6540-6545.
丁仕风, 唐文勇, 张圣坤. 大型液化天然气船温度场及温度应力研究[J]. 船舶工程, 2008, 30(5): 16-19.
DING Shifeng, TANG Wenyong, ZHANG Shenkun. A research on temperature field and stress field of large-scale LNG ship[J]. Ship Engineering, 2008, 30(5): 16-19.
0
浏览量
4
下载量
0
CSCD
关联资源
相关文章
相关作者
相关机构
京公网安备11010802024621