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A study of working fluids for Organic Rankine Cycles (ORCs) operating across and below ambient temperature to utilize Liquefied Natural Gas (LNG) cold energy. (2019). Gundersen, Truls ; Yu, Haoshui ; Kim, Donghoi.
In: Energy.
RePEc:eee:energy:v:167:y:2019:i:c:p:730-739.

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Cited: 32

Citations received by this document

Cites: 31

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  2. Comprehensive analysis and optimization of a novel solar-driven two-stage condensation transcritical power system using CO2-based mixture for liquefied natural gas cold energy recovery. (2025). Liang, Guozhan ; Zhu, Yan ; Ling, Xunjie.
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  3. Energy integration of LNG cold energy power generation and liquefied air energy storage: Process design, optimization and analysis. (2025). Li, Ran ; Tang, Feiran ; Pan, Jie ; Cao, Qinghan ; Hu, Tinglong ; Wang, KE.
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  4. Sustainability by means of cold energy utilisation-to-power conversion: A review. (2024). Daniarta, Sindu ; Basiak, Przemysaw ; Kolasiski, Piotr ; Imre, Attila R.
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  5. Process design, integration, and optimization of a novel compressed air energy storage for the coproduction of electricity, cooling, and water. (2024). Gundersen, Truls ; Alirahmi, Seyed Mojtaba ; Kleme, Jii Jaromir ; Yu, Haoshui ; Sin, Gurkan ; Arabkoohsar, Ahmad.
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  6. Multi-objective optimisation of ORC–LNG systems using the novel One-shot Optimisation method. (2024). Cavazzini, Giovanna ; Zhang, Han ; Benato, Alberto.
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  7. Cryogenic energy assisted power generation utilizing low flammability refrigerants. (2024). Farrukh, Salman ; Dearn, Karl ; Wu, Dawei ; Taskin, Anil.
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  8. Power generation system utilizing cold energy from liquid hydrogen: Integration with a liquid air storage system for peak load shaving. (2024). Kim, Yeonghyun ; Park, Jinwoo ; Lee, Inkyu ; Mun, Haneul.
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  9. Exploring performance map: theoretical analysis of subcritical and transcritical power cycles with wet and isentropic working fluids. (2024). Daniarta, Sindu ; Kolasiski, Piotr ; Imre, Attila R.
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  10. 3E analyses and multi-objective optimization of a liquid nitrogen wash based cogeneration system for electrical power and LNG production. (2024). Liu, Zhiqiang ; Yang, Sheng ; Xie, Nan ; Wen, Jiakang ; Deng, Chengwei.
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  11. Advanced exergy and exergoeconomic analysis of a multi-stage Rankine cycle system combined with hydrate energy storage recovering LNG cold energy. (2024). Zhou, Tian ; Yang, Sheng ; Liu, Jingyuan.
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  12. Exploring the stability and dynamic responses of dual-stage series ORC using LNG cold energy for sustainable power generation. (2024). He, Tianbiao ; Jin, Tao ; Mao, Ning ; Qi, Meng.
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  13. Energy integration of light hydrocarbon separation, LNG cold energy power generation, and BOG combustion: Thermo-economic optimization and analysis. (2024). Li, Ran ; Cao, Qinghan ; Tang, Linghong ; Bai, Junhua ; Pan, Jie.
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  14. Liquid hydrogen cold energy recovery to enhance sustainability: Optimal design of dual-stage power generation cycles. (2023). Park, Sihwan ; Lee, Inkyu ; Mun, Haneul.
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  15. Comparison of random forest, support vector regression, and long short term memory for performance prediction and optimization of a cryogenic organic rankine cycle (ORC). (2023). Tian, Zhen ; Zhang, Yuan ; Wu, Xiaocheng ; Gao, Wenzhong ; Yang, KE ; Peng, Hao.
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  16. Optimum design point exploration and performance analysis of a novel CO2 power generation system for LNG cold energy recovery: Considering the temperature fluctuation of heat source. (2023). Han, Zihao ; Dai, Yiping ; Zhang, Yicen ; Chen, Kang ; Yu, Haibin ; Fan, Gang.
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  17. Performance improvement of ORC by breaking the barrier of ambient pressure. (2023). Sun, Zhixin ; Huang, Yisheng ; Tian, NA ; Lin, Kui.
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  18. POLYCYCLIC AROMATIC HYDROCARBONS LEVEL FROM HVAC IN BONNY ISLAND. (2022). Ellerton, Abbey Minaibim ; Minaibim, Abbey Dabebara ; Charles, Ogunyemi Tolulope.
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  19. Performance Analysis of Ship Exhaust Gas Temperature Differential Power Generation. (2022). Wang, Zhongcheng ; Liu, Xiaoyu ; Guo, Hao ; Zhao, Chong.
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  20. Size reduction and enhanced power generation in ORC by vaporizing LNG at high supercritical pressure irrespective of delivery pressure. (2022). Kochunni, Sarun Kumar ; Chowdhury, Kanchan ; Joy, Jubil.
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  21. Performance analysis and optimization of a trilateral organic Rankine powered by a concentrated photovoltaic thermal system. (2022). Khouya, Ahmed.
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  22. Experimental study of organic Rankine cycle with three-fluid recuperator for cryogenic cold energy recovery. (2022). Qi, Zhixin ; Tian, Zhen ; Gao, Wenzhong ; Gan, Wanlong.
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  23. Thermo-economic analysis, working fluids selection, and cost projection of a precooler-integrated dual-stage combined cycle (PIDSCC) system utilizing cold exergy of liquefied natural gas. (2022). Zeng, Zhiyong ; Zheng, Siyang ; Li, Chenghao.
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  24. Thermo-Economic Analysis on Integrated CO 2 , Organic Rankine Cycles, and NaClO Plant Using Liquefied Natural Gas. (2021). Tjahjono, Tri ; Hoseinzadeh, Siamak ; Memon, Saim ; Aliehyaei, Mehdi ; Ahmadi, Abolfazl.
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  25. Optimal design of organic Rankine cycle recovering LNG cold energy with finite heat exchanger size. (2021). Chung, Yoong ; Hong, Sung Bin ; Na, Sun-Ik ; Kim, Min Soo ; Choi, Hong Wone.
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  26. Organic Rankine cycle integrated with hydrate-based desalination for a sustainable energy–water nexus system. (2021). He, Tianbiao ; Linga, Praveen ; Mao, Ning ; Zhang, Jibao.
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  27. Multi-Objective Thermo-Economic Optimization of a Combined Organic Rankine Cycle (ORC) System Based on Waste Heat of Dual Fuel Marine Engine and LNG Cold Energy Recovery. (2020). Tian, Zhen ; Zhang, Yuan ; Yue, Yingying ; Gao, Wenzhong ; Gu, BO.
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  28. Uncertainty and Risk Evaluation of Deep Geothermal Energy Source for Heat Production and Electricity Generation in Remote Northern Regions. (2020). Miranda, Mafalda M ; Raymond, Jasmin ; Dezayes, Chrystel.
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  29. Dynamic exergy analysis of a novel LNG cold energy utilization system combined with cold, heat and power. (2020). Wang, Xiu ; Kong, Xiangwei ; Zhao, Liang ; Feng, Junsheng ; Zhang, Jiulei ; Dong, Hui.
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  30. Energy and economic analysis of a small hybrid solar-geothermal trigeneration system: A dynamic approach. (2020). Daccadia, Massimo Dentice ; Vicidomini, Maria ; Cappiello, Francesco Liberato ; Calise, Francesco.
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  31. Thermodynamic analysis of a novel combined cooling and power system utilizing liquefied natural gas (LNG) cryogenic energy and low-temperature waste heat. (2020). Liu, Yujia ; Yang, Yongping ; Zhang, Guoqiang.
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  32. Advanced integration of LNG regasification power plant with liquid air energy storage: Enhancements in flexibility, safety, and power generation. (2020). Qi, Meng ; Park, Jinwoo ; Kim, Jeongdong ; Lee, Inkyu ; Moon, IL.
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    RePEc:eee:energy:v:203:y:2020:i:c:s0360544220309087.

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  22. Validation and analysis of organic Rankine cycle dynamic model using zeotropic mixture. (2020). Wang, Xuan ; Shi, Xiaolei ; Cai, Jinwen ; Tian, Hua ; Shu, Gequn.
    In: Energy.
    RePEc:eee:energy:v:197:y:2020:i:c:s0360544220301109.

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  23. Towards novel low temperature thermodynamic cycle: A critical review originated from organic Rankine cycle. (2020). Xu, Weicong ; Deng, Shuai ; Mao, Samuel S ; Zhao, LI.
    In: Applied Energy.
    RePEc:eee:appene:v:270:y:2020:i:c:s030626192030698x.

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  24. Intelligent collaborative attainment of structure configuration and fluid selection for the Organic Rankine cycle. (2020). Wang, Wei ; Deng, Shuai ; Lin, Shan ; Chen, Mengchao ; Zhao, LI.
    In: Applied Energy.
    RePEc:eee:appene:v:264:y:2020:i:c:s0306261920302555.

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  25. Water Mixtures as Working Fluids in Organic Rankine Cycles. (2019). Iora, Paolo ; Bombarda, Paola ; Binotti, Marco ; di Marcoberardino, Gioele ; Manzolini, Giampaolo ; Invernizzi, Costante.
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    RePEc:gam:jeners:v:12:y:2019:i:13:p:2629-:d:246671.

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  26. Steady and transient operation of an organic Rankine cycle power system. (2019). Liu, Xiulong ; Zhao, Xiaoli ; Cao, Shuang ; Zhang, Ming ; Xu, Jinliang ; Tang, Guihua ; Miao, Zheng ; Xie, Xuewang.
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  27. Off-design performance analysis of basic ORC, ORC using zeotropic mixtures and composition-adjustable ORC under optimal control strategy. (2019). Gao, Tieyu ; Liu, Changwei.
    In: Energy.
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  28. A study of working fluids for Organic Rankine Cycles (ORCs) operating across and below ambient temperature to utilize Liquefied Natural Gas (LNG) cold energy. (2019). Gundersen, Truls ; Yu, Haoshui ; Kim, Donghoi.
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    RePEc:eee:energy:v:167:y:2019:i:c:p:730-739.

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  29. Thermodynamic selection criteria of zeotropic mixtures for subcritical organic Rankine cycle. (2019). Miao, Zheng ; Wang, Mengxiao ; Zhang, Kai ; Xu, Jinliang.
    In: Energy.
    RePEc:eee:energy:v:167:y:2019:i:c:p:484-497.

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  30. Performance analysis on novel thermodynamic cycle under the guidance of 3D construction method. (2019). Zhang, Yue ; Xu, Weicong ; Li, Shuangjun ; Deng, Shuai ; Zhao, LI.
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  31. Recent research trends in organic Rankine cycle technology: A bibliometric approach. (2018). Imran, Muhammad ; Asim, Muhammad ; Alvi, Jahan Zeb ; Haglind, Fredrik.
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    RePEc:eee:rensus:v:81:y:2018:i:p1:p:552-562.

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  32. Integrated operation design and control of Organic Rankine Cycle systems with disturbances. (2018). Wu, Xialai ; Xie, Lei ; Chen, Junghui.
    In: Energy.
    RePEc:eee:energy:v:163:y:2018:i:c:p:115-129.

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  33. A limiting efficiency of subcritical Organic Rankine cycle under the constraint of working fluids. (2018). Yu, Zhixin ; Su, Wen ; Xu, Weicong ; Deng, Shuai ; Zhao, LI.
    In: Energy.
    RePEc:eee:energy:v:143:y:2018:i:c:p:458-466.

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  34. Parametric optimization and thermodynamic performance comparison of single-pressure and dual-pressure evaporation organic Rankine cycles. (2018). Ge, Zhong ; Yang, Zhen ; Duan, Yuanyuan ; Liu, Qiang.
    In: Applied Energy.
    RePEc:eee:appene:v:217:y:2018:i:c:p:409-421.

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  35. Thermo-economic analysis of the transcritical organic Rankine cycle using R1234yf/R32 mixtures as the working fluids for lower-grade waste heat recovery. (2017). Hung, Tzu-Chen ; Yeh, Rong-Hua ; Yang, Min-Hsiung.
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  36. Organic Rankine cycle design and performance comparison based on experimental database. (2017). Colasson, Stephane ; Revellin, Remi ; Haberschill, Philippe ; Tauveron, Nicolas ; Landelle, Arnaud.
    In: Applied Energy.
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