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A novel coal chemical looping gasification scheme for synthetic natural gas with low energy consumption for CO_2 capture: Modelling, parameters optimization, and performance analysis

机译:一种新型煤化学循环气化方案,用于合成天然气,具有CO_2捕获的低能耗:建模,参数优化和性能分析

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摘要

Natural gas is regarded as a clean energy source, but its global supply is seriously insufficient. An alternative route to synthetic natural gas production from other energy sources is thus urgently needed. There is the conventional coal gasification to synthetic natural gas process, but it suffers from high energy consumption because of air separation and CO2 capture. Coal chemical looping gasification is regarded as a state-of-the-art technology that avoids conventional air separation and reduces energy consumption. A new process of coal chemical looping gasification that creates synthetic natural gas is therefore proposed, where low energy consumption for CO2 capture is achieved simultaneously by increasing the CO2 concentration. The results show that the exergy efficiency of the new process is increased by 21%; the internal rate of return is increased by 9%; the fixed capital investment and production costs are reduced by 36% and 29%; and the CO2 emissions are reduced by 15% in comparison with the conventional coal to synthetic natural gas process. This study provides a promising method for the energy-saving, profitable, and sustainable development of coal into synthetic natural gas. (C) 2021 Elsevier Ltd. All rights reserved.
机译:天然气被视为清洁能源,但其全球供应严重不足。因此,迫切需要将来自其他能源的合成天然气产生的替代途径。常规煤气化对合成天然气过程,但由于空气分离和CO2捕获,它具有高能耗。煤化学循环气化被认为是最先进的技术,避免了传统的空气分离并降低了能量消耗。因此提出了一种创造合成天然气的煤化学循环气化的新方法,其中通过增加CO 2浓度同时实现CO2捕获的低能量消耗。结果表明,新工艺的高效率增加了21%;内部回报率增加了9%;固定资本投资和生产成本减少了36%和29%;与常规煤与合成天然气过程相比,二氧化碳排放减少了15%。本研究为煤炭的节能,有利可图和可持续发展提供了有希望的方法,进入合成天然气。 (c)2021 elestvier有限公司保留所有权利。

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