参考文献/References:
[1] Xie Xuguang. Integrated development of LNG import and new power systems in China[J]. Oil & Gas Storage and Transportation, 2024, 43(8): 869‑876.[谢旭光. 中国LNG进口产业与新型电力系统的融合发展[J]. 油气储运, 2024, 43(8): 869‑876.]
[2] Gong Chengzhu, Jia Weidong, Wu Desheng, et al. Optimization of the development prospect of gas power industry under the goal of carbon neutrality[J]. Natural Gas Industry, 2021, 41(6): 144‑151.[龚承柱, 贾维东, 吴德胜, 等. 碳中和目标下天然气发电产业发展前景优化[J]. 天然气工业, 2021, 41(6): 144‑151.]
[3] Xu Hongyu, Li Ruifan, Xu Cheng, et al. Thermodynamic analysis and optimization of semi‑closed CO₂ cycle power generation system integrated with LNG cold energy for air separation process[J]. Journal of Chinese Society of Power Engineering, 2024, 44(8): 1307‑1316.[许宏宇, 李瑞凡, 许诚, 等. 集成LNG冷能空分的半闭式CO₂循环发电系统热力学分析与优化[J]. 动力工程学报, 2024, 44(8): 1307‑1316.]
[4] Li Nana, Tao Cheng, Kong Yanlong, et al. Status and research progress of geothermal power generation development and utilization[J]. Thermal Power Generation, 2024, 53(6): 1‑11.[李娜娜, 陶诚, 孔彦龙, 等. 全球地热发电现状与研究进展[J]. 热力发电, 2024, 53(6): 1‑11.]
[5] Xu Tianfu, Jiang Zhenjiao, Yuan Yilong. Research status and prospects of middle and deep geothermal resources exploitation and utilization[J]. China Basic Science, 2023, 25(3): 11‑22.[许天福, 姜振蛟, 袁益龙. 中深部地热资源开发利用研究现状与展望[J]. 中国基础科学, 2023, 25(3): 11‑22.]
[6] Fan Yi, Wang Jiajie, Li Yesai, et al. The utilization of LNG cold energy: current status, challenges, and future prospects[J]. Frontiers in Sustainable Development, 2025, 5(2): 7‑12.
[7] Lee I, Park J, You Fengqi, et al. A novel cryogenic energy storage system with LNG direct expansion regasification: design, energy optimization, and exergy analysis[J]. Energy, 2019, 173: 691‑705.
[8] Lee I, Park J, Moon I. Conceptual design and exergy analysis of combined cryogenic energy storage and LNG regasification processes: cold and power integration[J]. Energy, 2017, 140: 106‑115.
[9] Xia Minjie, Yao Shouguang, Li Chen, et al. Exergy, energy, economy analysis and multi‑objective optimization of a comprehensive energy utilization system for LNG‑powered ships based on zero‑carbon emissions[J]. Case Studies in Thermal Engineering, 2024, 53: 103783.
[10] Xiao Xiu, Xu Xiaoqing, Wang Zhe, et al. Research on a novel combined cooling and power scheme for LNG‑powered ship[J]. Journal of Marine Science and Engineering, 2023, 11(3): 592.
[11] Dong Kangyin, Jiaman, Zhang Haoran. LNG point supply of villages and towns in China: challenges and counter‑measures[J]. Applied Energy, 2023, 334: 120741.
[12] Wang Shunxue, Ding Huan, Bi Haisheng. Performance comparison and analysis of ORVs in the LNG receiving station[J]. Chemical Engineering & Machinery, 2023, 50(2): 273‑277.[王顺学, 丁欢, 毕海胜. LNG接收站内不同类型的ORV性能对比与分析[J]. 化工机械, 2023, 50(2): 273‑277.]
[13] Fan Yanxia, Li Hailong, Zhang Junlong, et al. Research on the in‑situ stress state and the geothermal‑controlling structure of the Huangshadong Geothermal Field in the Southeast Coast of China[J]. Chinese Journal of Geophysics, 2022, 65(10): 3944‑3961.[范艳霞, 李海龙, 张军龙, 等. 东南沿海黄沙洞地热田地应力与控热构造研究[J]. 地球物理学报, 2022, 65(10): 3944‑3961.]
[14] Yang Hui, Zhang Haoxing, Dong Bingyan, et al. Feasibility study of LNG cold energy used as cold source of district cooling system[J]. Chemical Engineering of Oil and Gas, 2019, 48(3): 39‑44.[杨晖, 张皓兴, 董冰艳, 等. 某LNG接收站冷能用作区域供冷系统冷源探讨[J]. 石油与天然气化工, 2019, 48(3): 39‑44.]
[15] Liu Yang. Improvement and application of trial operation technology for LNG receiving terminal[J]. Oil & Gas Storage and Transportation, 2023, 42(12): 1383‑1389.[刘洋. LNG接收站试运投产工艺改进及应用[J]. 油气储运, 2023, 42(12): 1383‑1389.]
[16] Peng Chao. Modification and application of liquid nitrogen system in LNG terminal[J]. Natural Gas and Oil, 2024, 42(3): 69‑74.[彭超. LNG接收站液氮系统改造及应用[J]. 天然气与石油, 2024, 42(3): 69‑74.]
[17] Wu Yi, Li Ran, Zhang Dandi. Discussion on development trends and utilization efficiency enhancement of LNG terminals in China[J]. Oil & Gas Storage and Transportation, 2024, 43(7): 721‑729.[武艺, 李然, 张丹迪. 中国LNG接收站发展趋势及利用效率提升思考[J]. 油气储运, 2024, 43(7): 721‑729.]
[18] Hu Suyang, Qin Feng, Liu Tong, et al. Research on ORC mixed working mediums based on LNG cold energy power generation[J]. Cryogenics & Superconductivity, 2022, 50(9): 101‑106.[胡苏阳, 秦锋, 刘同, 等. 基于LNG冷能发电的ORC混合工质研究[J]. 低温与超导, 2022, 50(9): 101‑106.]
[19] Xu Wendong, Peng Xi, Yan Wanbo. Research progress in LNG cold energy utilization technology[J]. Natural Gas and Oil, 2024, 42(3): 75‑85.[徐文东, 彭曦, 严万波. LNG冷能利用技术研究进展[J]. 天然气与石油, 2024, 42(3): 75‑85.]
[20] Guo Yinglun, Xi Fuqiang, Su Ruizhi, et al. TRCC series system based on LNG cold energy and fuel cell waste heat utilization[J]. Journal of Shandong University (Engineering Science), 2019, 49(5): 52‑57.[郭英伦, 郗富强, 苏瑞智, 等. 基于LNG冷㶲与燃料电池余热利用的TRCC串联系统[J]. 山东大学学报(工学版), 2019, 49(5): 52‑57.]
[21] Wang Hanbing, Liu Xiaohui, Tian Minli, et al. Thermo‑dynamic characteristic analysis of power and cooling system derived by SOFC[J]. Journal of Shandong University (Engineering Science), 2019, 49(5): 64‑71.[王寒冰, 刘晓辉, 田民丽, 等. 基于SOFC的功冷联供系统热力学特性分析[J]. 山东大学学报(工学版), 2019, 49(5): 64‑71.]
[22] Ma Xinling, Meng Xiangrui, Wei Xinli, et al. Thermo‑dynamic analysis of organic Rankine cycle[J]. Journal of Zhengzhou University (Engineering Science), 2011, 32(4): 94‑98.[马新灵, 孟祥睿, 魏新利, 等. 有机朗肯循环的热力学分析[J]. 郑州大学学报(工学版), 2011, 32(4): 94‑98.]
[23] Lu Xinyue, Chen Ruiying, Jiang Xiaxue, et al. Comparative study on liquid air energy storage system and liquid carbon dioxide energy storage system coupled with liquefied natural gas cold energy[J]. CIESC Journal, 2024, 75(9): 3297‑3309.[卢昕悦, 陈锐莹, 姜夏雪, 等. 耦合LNG冷能的液态空气储能系统和液态CO₂储能系统对比分析[J]. 化工学报, 2024, 75(9): 3297‑3309.]