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Proposal and design of a natural gas liquefaction process recovering the energy obtained from the pressure reducing stations of high-pressure pipelines

机译:天然气液化工艺的建议和设计,用于回收从高压管道的减压站获得的能量

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Taking advantage of the refrigerating effect in the expansion at an appropriate temperature, a fraction of high-pressure natural gas transported by pipelines could be liquefied in a city gate station through a well organized pressure reducing process without consuming any extra energy. The authors proposed such a new process, which mainly consists of a turbo-expander driven booster, throttle valves, multi-stream heat exchangers and separators, to yield liquefied natural gas (LNG) and liquid light hydrocarbons (LLHs) utilizing the high-pressure of the pipelines. Based on the assessment of the effects of several key parameters on the system performance by a steady-state simulation in Aspen HYSYS, an optimal design condition of the proposed process was determined. The results showed that the new process is more appropriate to be applied in a pressure reducing station (PRS) for the pipelines with higher pressure. For the feed gas at the pressure of 10 MPa, the maximum total liquefaction rate (ytot) of 15.4% and the maximum exergy utilizing rate (EUR) of 21.7% could be reached at the optimal condition. The present process could be used as a small-scale natural gas liquefying and peak-shaving plant at a city gate station. (C) 2016 Elsevier Ltd. All rights reserved.
机译:利用在适当温度下膨胀的制冷效果,可以通过井井有条的减压过程,将一部分管道输送的高压天然气在城市门站中液化,而无需消耗任何额外的能量。作者提出了这样一种新工艺,该工艺主要由涡轮膨胀机驱动的增压器,节气门,多流热交换器和分离器组成,以利用高压产生液化天然气(LNG)和液态轻烃(LLH)。的管道。在Aspen HYSYS稳态仿真的基础上,通过评估几个关键参数对系统性能的影响,确定了该工艺的最佳设计条件。结果表明,该新工艺更适合用于高压管道的减压站(PRS)。对于压力为10 MPa的进料气,在最佳条件下,最大总液化率(ytot)为15.4%,最大火用率(EUR)为21.7%。本方法可用作城市门站的小型天然气液化和调峰装置。 (C)2016 Elsevier Ltd.保留所有权利。

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