Парето-анализ контура регазификации криогенной системы аккумулирования энергии, работающей по циклу Ренкина с регенерацией тепла
DOI:
https://doi.org/10.5281/zenodo.17395090Ключевые слова:
регазификатор воздуха, цикл Ренкина, энтропия, КПД, криогенный баллон, эксергияПоддерживающие организации
Лицензия
Аннотация
Исследование посвящено оптимизации контура регазификации криогенной системы аккумулирования энергии, работающей по циклу Ренкина с регенерацией. На основе термодинамического и эксергетического анализа определена оптимальная конфигурация контура регазификации с воздухом в качестве рабочего тела. Проведена оценка эффективности цикла Ренкина с регенерацией тепла, по которому осуществляется работа контура регазификации, и его экономической рентабельности. С помощью метода Парето-анализа были выявлены наиболее эффективные рабочие тела – метан, R14, R116, причем контур регазификации на метане демонстрируют максимальную мощность, а на R14 и R116 – лучшую рентабельность. Установлено, что основные потери эксергии сосредоточены в конденсаторе, что указывает на ключевое направление для дальнейшего повышения КПД системы.
Скачивания
Библиографические ссылки
1. Zhu, H. M. A novel two stage ethylene Rankine power cycle with cold energy recovery of LNG / H. M. Zhu, Q. Li, H. Sun // Advanced Materials Research. – 2013. – V. 724. – P. 932-936. – DOI 10.4028/www.scientific.net/AMR.724-725.932.
2. Sun, H. Process Simulations of the Cold Recovery Unit in a LNG CCHP System with Different Power Cycles / H. Sun, H. M. Zhu, Liu H. W. // Advanced Materials Research. – 2011. – V. 90. – P. 3026-3032.
3. Performance enhancement of two-stage condensation combined cycle for LNG cold energy recovery using zeotropic mixtures / J. Bao [et al.] // Energy. – 2018. – V. 157. – P. 588-598. – DOI 10.1016/j.energy.2018.05.187.
4. Zhu, H. M. Exergy analysis of cascade Ethylene-Propane Rankine cycle with cold energy recovery of LNG / H. M. Zhu, H. W. Liu, H. Sun //Applied Mechanics and Materials. – 2012. – V. 170. – P. 2489-2493.
5. Liu, Ya. Exergoeconomic analysis and multi-objective optimization of a CCHP system based on LNG cold energy utilization and flue gas waste heat recovery with CO2 capture / Ya. Liu, J. Han, H. You // Energy. – 2020. – Vol. 190. – P. 116201. – DOI 10.1016/j.energy.2019.116201. – EDN SRKUIU.
6. Lee, I. Conceptual design and exergy analysis of combined cryogenic energy storage and LNG regasification processes: Cold and power integration / I. Lee, J. Park, I. Moon // Energy. – 2017. – V. 140. – P. 106-115.
7. Exergy recovery during LNG regasification: Electric energy production–Part one / Dispenza C. [et al.] // Applied Thermal Engineering. – 2009. – V. 29. – №. 2-3. – P. 380-387.
8. Qiang, W. Analysis of power cycle based on cold energy of liquefied natural gas and low-grade heat source / W. Qiang, L. Yanzhong, W. Jiang // Applied thermal engineering. – 2004. – V. 24. – №. 4. – P. 539-548.
9. Analysis of different combined cycles and working fluids for LNG exergy recovery during regasification / Badami M. [et al.] // Energy. – 2018. – V. 159. – С. 373-384.
10. Combined cascaded Rankine and direct expander based power units using LNG (liquefied natural gas) cold as heat sink in LNG regasification / García R. F. [et al.] // Energy. – 2016. – V. 105. – P. 16-24.
11. Ahmadi, M. H. Thermodynamic and exergy analysis and optimization of a transcritical CO2 power cycle driven by geothermal energy with liquefied natural gas as its heat sink / M. H. Ahmadi, M. Mehrpooya, F. Pourfayaz // Applied Thermal Engineering. – 2016. – V. 109. – P. 640-652.
12. Thermodynamic analysis and optimization of a waste heat recovery system for proton exchange membrane fuel cell using transcritical carbon dioxide cycle and cold energy of liquefied natural gas / M. H. Ahmadi [et al.] // Journal of Natural Gas Science and Engineering. – 2016. – V. 34. – P. 428-438.
13. Naseri, A. Thermodynamic and exergy analysis of a hydrogen and permeate water production process by a solar-driven transcritical CO2 power cycle with liquefied natural gas heat sink / A. Naseri, M. Bidi, M. H. Ahmadi // Renewable energy. – 2017. – V. 113. – P. 1215-1228.
14. Comparative study of Rankine cycle configurations utilizing LNG cold energy under different NG distribution pressures / Z. Sun [et al.] // Energy. – 2017. – V. 139. – P. 380-393.
15. Franco, A. Thermodynamic and heat transfer analysis of LNG energy recovery for power production / A. Franco, C. Casarosa // Journal of Physics: Conference Series. – IOP Publishing, 2014. – V. 547. – №. 1. – P. 012012. –DOI 10.1088/1742-6596/547/1/012012.
REFERENCES LIST
1. Zhu, H. M. A novel two stage ethylene Rankine power cycle with cold energy recovery of LNG / H. M. Zhu, Q. Li, H. Sun // Advanced Materials Research. – 2013. – V. 724. – P. 932-936. – DOI 10.4028/www.scientific.net/AMR.724-725.932.
2. Sun, H. Process Simulations of the Cold Recovery Unit in a LNG CCHP System with Different Power Cycles / H. Sun, H. M. Zhu, Liu H. W. // Advanced Materials Research. – 2011. – V. 90. – P. 3026-3032.
3. Performance enhancement of two-stage condensation combined cycle for LNG cold energy recovery using zeotropic mixtures / J. Bao [et al.] // Energy. – 2018. – V. 157. – P. 588-598. – DOI 10.1016/j.energy.2018.05.187.
4. Zhu, H. M. Exergy analysis of cascade Ethylene-Propane Rankine cycle with cold energy recovery of LNG / H. M. Zhu, H. W. Liu, H. Sun //Applied Mechanics and Materials. – 2012. – V. 170. – P. 2489-2493.
5. Liu, Ya. Exergoeconomic analysis and multi-objective optimization of a CCHP system based on LNG cold energy utilization and flue gas waste heat recovery with CO2 capture / Ya. Liu, J. Han, H. You // Energy. – 2020. – Vol. 190. – P. 116201. – DOI 10.1016/j.energy.2019.116201. – EDN SRKUIU.
6. Lee, I. Conceptual design and exergy analysis of combined cryogenic energy storage and LNG regasification processes: Cold and power integration / I. Lee, J. Park, I. Moon // Energy. – 2017. – V. 140. – P. 106-115.
7. Exergy recovery during LNG regasification: Electric energy production–Part one / Dispenza C. [et al.] // Applied Thermal Engineering. – 2009. – V. 29. – №. 2-3. – P. 380-387.
8. Qiang, W. Analysis of power cycle based on cold energy of liquefied natural gas and low-grade heat source / W. Qiang, L. Yanzhong, W. Jiang // Applied thermal engineering. – 2004. – V. 24. – №. 4. – P. 539-548.
9. Analysis of different combined cycles and working fluids for LNG exergy recovery during regasification / Badami M. [et al.] // Energy. – 2018. – V. 159. – С. 373-384.
10. Combined cascaded Rankine and direct expander based power units using LNG (liquefied natural gas) cold as heat sink in LNG regasification / García R. F. [et al.] // Energy. – 2016. – V. 105. – P. 16-24.
11. Ahmadi, M. H. Thermodynamic and exergy analysis and optimization of a transcritical CO2 power cycle driven by geothermal energy with liquefied natural gas as its heat sink / M. H. Ahmadi, M. Mehrpooya, F. Pourfayaz // Applied Thermal Engineering. – 2016. – V. 109. – P. 640-652.
12. Thermodynamic analysis and optimization of a waste heat recovery system for proton exchange membrane fuel cell using transcritical carbon dioxide cycle and cold energy of liquefied natural gas / M. H. Ahmadi [et al.] // Journal of Natural Gas Science and Engineering. – 2016. – V. 34. – P. 428-438.
13. Naseri, A. Thermodynamic and exergy analysis of a hydrogen and permeate water production process by a solar-driven transcritical CO2 power cycle with liquefied natural gas heat sink / A. Naseri, M. Bidi, M. H. Ahmadi // Renewable energy. – 2017. – V. 113. – P. 1215-1228.
14. Comparative study of Rankine cycle configurations utilizing LNG cold energy under different NG distribution pressures / Z. Sun [et al.] // Energy. – 2017. – V. 139. – P. 380-393.
15. Franco, A. Thermodynamic and heat transfer analysis of LNG energy recovery for power production / A. Franco, C. Casarosa // Journal of Physics: Conference Series. – IOP Publishing, 2014. – V. 547. – №. 1. – P. 012012. –DOI 10.1088/1742-6596/547/1/012012.
Загрузки
Опубликован
Выпуск
Раздел
Лицензия

Это произведение доступно по лицензии Creative Commons «Attribution-NonCommercial» («Атрибуция — Некоммерческое использование») 4.0 Всемирная.
Статьи журнала «Вестник Донецкого университета. Серия 04. Технические науки» находятся в открытом доступе и распространяются в соответствии с условиями Лицензионного Договора с Донецким Государственным университетом, который бесплатно предоставляет авторам неограниченное распространение и самостоятельное архивирование.





