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OPTIMIZATION OF CBM LIQUEFACTION PROCESS ADOPTING MIXED REFRIGERANT CYCLE

机译:采用混合制冷剂循环的CBM液化过程优化

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Coalbed methane (CBM) is an important energy resource in the world. Liquefaction is a good option for recovery of CBM. Different from ordinary natural gas, CBM usually consists of a lot of nitrogen and oxygen, which cannot be removed by the ordinary purification technology of LNG. Nitrogen can be separated from CBM by adsorption before liquefaction or by distillation after liquefaction. For the liquefactiondistillation process, nitrogen is liquefied together with methane, and it makes the liquefaction system performance change along with the nitrogen content of CBM feed gas. The liquefaction process using a mixed refrigerant cycle is discussed in this paper, which has the advantages of high efficiency and relative simplicity, and is suitable for small-scale liquefaction plants. The mixed refrigerant usually consists of nitrogen and hydrocarbons from methane to pentane, which are all natural refrigerants. To realize optimal system performance, the composition of the mixed refrigerant may vary significantly with different CBM conditions. Taking the unit product liquefaction power consumption as the major index for analysis, the optimal composition of mixed refrigerant is worked out and corresponding system performance is obtained at different nitrogen content of CBM feed gas when liquefaction rate and methane recovery rate are fixed respectively.
机译:煤层甲烷(CBM)是世界上重要的能源资源。液化是恢复CBM的良好选择。与普通天然气不同,CBM通常由大量的氮气和氧组成,液体普通净化技术不能除去。氮气可以通过液化前的吸附或通过液化后蒸馏与CBM分离。对于液化蒸汽过程,氮气与甲烷一起液化,使液化系统性能随CBM进料气体的氮含量而变化。本文讨论了使用混合制冷剂循环的液化过程,其具有高效率和相对简单的优点,并且适用于小型液化植物。混合制冷剂通常由来自甲烷的氮气和烃组成,戊烷是所有天然制冷剂。为了实现最佳的系统性能,混合制冷剂的组成可以在不同的CBM条件下显着变化。采用单位产品液化功耗作为分析的主要指标,在液化率和甲烷回收率分别固定液化率和甲烷回收率时,在CBM进料气体的不同氮含量下获得了混合制冷剂的最佳组成。

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