从操作角度对液化天然气工业氮气膨胀工艺进行了综合分析

Q1 Chemical Engineering
Mohammad Mahdi Jourablou , Mohsen Salimi , Majid Amidpour
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引用次数: 0

摘要

液化天然气(LNG)设备运营商面临的重大挑战之一是在各种具有挑战性的条件下保持生产能力。液化天然气(LNG)装置是能源密集型装置,受到季节变化和原料气质量的显著影响,这对其战略产品产量至关重要。本研究运用热力学原理、火用分析、敏感性分析等方法对某氮气膨胀工艺进行分析,通过详细的操作评估优化生产能力。介绍了一种新的方法,将冷却能力分为内部和外部组件,以建立最佳平衡。受设备限制的工厂优化有效地减轻了与传统方法相关的问题。火用分析表明,气体后压缩机的冷却段是造成火用破坏的主要原因,约占系统总不可逆性的60%。分析还强调,空气冷却器的不可逆性比水冷系统高约30%。敏感性分析表明了环境温度和原料气压力对生产能力的影响。液化天然气产量在5-15°C的温度范围内表现出稳定性,但在超过15°C的温度范围内会出现显著下降。此外,当进料气压力降至30 bar以下时,会观察到产量的严重下降。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A comprehensive analysis of the nitrogen expansion process for liquefied natural gas industry from the operational point of view
One of the significant challenges faced by operators of Liquefied natural gas (LNG) units is maintaining production capacity under various and often challenging conditions. Liquefied natural gas (LNG) units, characterized as energy intensive units, are significantly affected by seasonal variations and the quality of feed gas, which are crucial for their strategic product output. This study employs thermodynamic principles, exergy analysis, and sensitivity analysis of a nitrogen expansion process, optimizing production capacity through a detailed operational assessment. A novel approach is introduced, categorizing cooling capacity into internal and ambient components to establish an optimal balance. Plant optimization, constrained by equipment limitations, effectively mitigates issues associated with conventional methods. Exergy analysis reveals that the cooling section of the gas post-compressor is a major contributor to exergy destruction, accounting for approximately 60 % of the total irreversibility in the system. The analysis also highlights that air-coolers have an irreversibility rate about 30 % higher than water-cooling systems. Sensitivity analysis demonstrates the impact of ambient temperature and feed gas pressure on production capacity. LNG production shows stability within a temperature range of 5–15 °C, but significant declines occur at temperatures exceeding 15 °C. Additionally, a severe reduction in output is observed when feed gas pressure drops below 30 bar.
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来源期刊
International Journal of Thermofluids
International Journal of Thermofluids Engineering-Mechanical Engineering
CiteScore
10.10
自引率
0.00%
发文量
111
审稿时长
66 days
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