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Transient natural gas liquefaction and its application to CCC-ES (energy storage with cryogenic carbon capture (TM))

机译:瞬态天然气液化及其在CCC-ES中的应用(带有低温碳捕获(TM)的储能)

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摘要

This paper presents steady-state and transient models and optimization of natural gas liquefaction using Aspen HYSYS. Steady-state exergy and heat exchanger efficiency analyses summarize the performance of several potential systems. Transient analyses of the optimal steady-state model produced most of the results discussed here. These results pertain to LNG (liquefied natural gas) generally and to an energy storage process associated with CCC (cryogenic carbon capture (TM)) in which the LNG process plays a prominent role specifically. The energy storage CCC process influences the time constants and magnitudes of the flow rate characteristics. These flowrate variations affect all units, especially compressors and heat exchangers. The proposed process controls temperatures, pressures and other operating parameters. K-value- and U-value-techniques guide flowrate and heat exchanger stream variations. Transient responses to both ramping and step-changes in flow rates indicate process responses, including summary effects represented in transient efficiency graphs. (C) 2016 Elsevier Ltd. All rights reserved.
机译:本文介绍了稳态和暂态模型以及使用Aspen HYSYS进行天然气液化的优化。稳态火用和热交换器效率分析总结了几种潜在系统的性能。最佳稳态模型的瞬态分析产生了此处讨论的大多数结果。这些结果通常与LNG(液化天然气)有关,并且与与CCC相关的能量存储过程(低温碳捕获(TM))有关,其中LNG过程特别扮演着重要角色。储能CCC过程会影响时间常数和流量特性的大小。这些流量变化会影响所有单元,尤其是压缩机和热交换器。建议的过程控制温度,压力和其他操作参数。 K值和U值技术可指导流量和热交换器流的变化。流量斜率和阶跃变化的瞬态响应表示过程响应,包括瞬态效率图中表示的汇总效果。 (C)2016 Elsevier Ltd.保留所有权利。

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