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储能系统技术 储能系统 可靠性分析 ★ 5.0

浮式液化天然气平台双级放电卡诺电池系统的能效、㶲、经济与环境评估及性能优化

Energy, exergy, economic, and environmental assessment and performance optimization of dual-stage discharge Carnot battery systems for floating liquefied natural gas

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中文摘要

摘要 浮式液化天然气平台为海上天然气的生产、储存和转运提供了灵活的解决方案,但其高能耗运行需要可靠的电力供应。本研究探讨了利用卡诺电池提升浮式液化天然气平台供电可靠性与能源利用效率的可行性,通过有效利用液化天然气固有的冷能实现这一目标。提出了一种双级放电策略,即首先将液化天然气的冷能进行储存,随后利用低温海洋废热对其进行再加热,从而实现第二阶段的放电过程。建立了浮式液化天然气-卡诺电池系统的热力学模型,并开展了全面的能量、㶲、经济性和环境影响分析,以评估关键参数对系统性能的影响。采用基于遗传算法的多目标优化方法,对系统效率和运行需求进行优化。结果表明,双级放电系统使往返效率从82.4%提高至86.2%,放电功率在第一阶段为1008.8 kW持续4小时的基础上,第二阶段额外实现了94.4 kW持续17.6小时的输出。研究结果表明,通过策略性调整可显著提升系统的㶲效率和往返效率。所提出的系统在提升浮式液化天然气平台能源利用率方面具有巨大潜力,并为海上天然气作业提供了一种可扩展且应用前景广阔的解决方案。

English Abstract

Abstract Floating liquefied natural gas platforms offer a flexible solution for offshore natural gas production, storage, and transfer, but their energy-intensive operations require reliable power supply. This study investigates the use of Carnot batteries to enhance power reliability and energy efficiency on floating liquefied natural gas platforms by effectively utilizing the inherent cold energy of liquefied natural gas. A dual-stage discharge strategy is proposed, where the cold energy of liquefied natural gas is first stored and later reheated using low-temperature oceanic waste heat for a second discharge phase. A thermodynamic model of the floating liquefied natural gas-Carnot battery system is developed, and a comprehensive energy, exergy, economic, and environmental analysis is conducted to assess the impact of key parameters on system performance. Multi-objective optimization using genetic algorithms is employed to optimize system efficiency and operational requirements. The dual-stage discharge system increased round-trip efficiency from 82.4% to 86.2%, while discharge power was enhanced from 1008.8 kW over 4 h in the first stage to an additional 94.4 kW over 17.6 h in the second. The results demonstrate significant improvements in both exergy and round-trip efficiency through strategic adjustments. The proposed system offers substantial potential for enhancing energy utilization on floating liquefied natural gas platforms and provides a scalable solution with promising applications for offshore natural gas operations.
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SunView 深度解读

该双级放电卡诺电池技术对阳光电源ST系列储能变流器和PowerTitan系统具有重要启示。研究中的冷能梯级利用与多阶段放电策略,可应用于我司储能系统的热管理优化,特别是在海上平台等极端环境下提升系统往返效率。论文提出的遗传算法多目标优化方法,可集成到iSolarCloud平台的智能调度算法中,实现储能系统在不同工况下的效率最大化。双级放电将往返效率从82.4%提升至86.2%的技术路径,为我司GFM型储能系统在工业微网场景的能量管理提供了创新思路,尤其适用于LNG接收站等具有稳定冷源的应用场景。