Title Supersonic Condensation and Separation Characteristics of CO2-Rich Natural Gas under Different Pressures

Yong Zheng, Lei Zhao, Yujiang Wang, Fengteng Chang, Weijia Dong, Xinying Liu, Yunfei Li, Xiaohan Zhang, Ziyuan Zhao
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Abstract

Supersonic separation technology is a new natural gas sweetening method for the treatment of natural gas with high CO 2 (carbon dioxide) content. The structures of the Laval nozzle and the supersonic separator were designed, and the mathematical models of supersonic condensation and swirling separation for CO 2 -CH 4 mixture gas were established. The supersonic condensation characteristics of CO 2 in natural gas and the separation characteristics of condensed droplets under different inlet pressures were studied. The results show that higher inlet pressure results in a larger droplet radius and higher liquid phase mass fraction; additionally, the influence of centrifugal force is more pronounced, and the separation efficiency and removal efficiency of CO 2 are higher. When the inlet pressure is 6 and 9 MPa, the liquefaction efficiency at the Laval nozzle outlet increases from 56.90% to 79.97%, and the outlet droplet radius increases from 0.39 to 0.72 μm, and the removal efficiency is 31.25% and 54.52%, respectively. The effects of inlet pressures on the removal efficiency of the supersonic separator are complicated and are controlled by the combined effects of liquefaction capacity of the nozzle and centrifugal separation capacity of the swirl vane.
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题目:不同压力下富co2天然气的超声速冷凝分离特性
超音速分离技术是处理高co2(二氧化碳)含量天然气的一种新的天然气脱硫方法。设计了拉瓦尔喷嘴和超声速分离器的结构,建立了co2 - ch4混合气体超声速冷凝和旋流分离的数学模型。研究了不同进口压力下天然气中co2的超声速冷凝特性及冷凝液滴的分离特性。结果表明:进口压力越高,液滴半径越大,液相质量分数越高;离心力的影响更明显,对co2的分离效率和去除率更高。当进口压力为6和9 MPa时,Laval喷嘴出口液化效率从56.90%提高到79.97%,出口液滴半径从0.39 μm增加到0.72 μm,去除效率分别为31.25%和54.52%。进口压力对超声速分离器去除效率的影响是复杂的,受喷嘴液化能力和旋流叶片离心分离能力的综合作用控制。
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来源期刊
CiteScore
0.90
自引率
0.00%
发文量
122
期刊介绍: Energy Engineering is a bi-monthly publication of the Association of Energy Engineers, Atlanta, GA. The journal invites original manuscripts involving engineering or analytical approaches to energy management.
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