Grid aided combined heat and power generation system for rural village in north China plain using improved PSO algorithm
The rural areas of North China Plain, an important grain producer in China, are endowed with abundant new energy resources such as biomass, solar, and wind energy. The revitalization of the rural villages is confronted with the shortage of clean and low carbon energy supply. This work proposes a mul...
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| Published in | Journal of cleaner production Vol. 435; p. 140461 |
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| Main Authors | , , , , , , , |
| Format | Journal Article |
| Language | English |
| Published |
Elsevier Ltd
05.01.2024
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| Subjects | |
| Online Access | Get full text |
| ISSN | 0959-6526 1879-1786 |
| DOI | 10.1016/j.jclepro.2023.140461 |
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| Abstract | The rural areas of North China Plain, an important grain producer in China, are endowed with abundant new energy resources such as biomass, solar, and wind energy. The revitalization of the rural villages is confronted with the shortage of clean and low carbon energy supply. This work proposes a multi-energy complementary distributed energy system (DES) tailored for daily energy consumption in a typical scattered village on the basis of the field survey results. The geothermal heat pump, photovoltaic system (PV), biomass gasification equipment, and other energy conversion devices are integrated in the DES model. The state grid is used as a fundamental ensuring resource to improve the robustness of the system. The improved particle swarm optimization (PSO) algorithm is employed to determine the optimal unit capacity configuration by examining investment cost, payback period, system self-sufficiency, accommodation rate, and annual CO2 emissions. The main available renewable energy resources are biomass and solar energy with the annual amount of 1608.9 tons and 1679 kW h/m2. The heat, gas, and electricity load account for 76.84%, 3.14%, and 20.02%, respectively. Based on the daily peak-to-valley price differentials in Beijing of over $0.15/kWh, DES optimization was carried out with PSO module in MATLAB software. The cost of the energy supply with DES, Scenario 3, was compared with that of the mere grid and renewable systems, Scenario 1 and Scenario 2. The direct DES cost is $0.52 million with the internal rate of return of 8.46%, resulting in a payback period of 6.15 years. The overall system self-sufficiency index except for grid achieved a value of 0.42. The application of the DES lead to energy costs of residents and annual carbon emission reduction by 32.5% and more than 3800 tons, respectively, compared to grid-only energy consumption, showcasing the feasibility of grid-aided combined heat and electricity production in rural areas.
•The multi-energy complementary distributed rural energy system (DES) is proposed.•Improved particle swarm optimization is used to determine optimal configuration.•The cost of DES is $0.52 million with the internal rate of return of 8.46%.•Payback period and system self-sufficiency index of DES are 6.15 years and 0.42.•Energy costs and annual CO2 emission of DES are reduced by 32.5% and 3800 tons. |
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| AbstractList | The rural areas of North China Plain, an important grain producer in China, are endowed with abundant new energy resources such as biomass, solar, and wind energy. The revitalization of the rural villages is confronted with the shortage of clean and low carbon energy supply. This work proposes a multi-energy complementary distributed energy system (DES) tailored for daily energy consumption in a typical scattered village on the basis of the field survey results. The geothermal heat pump, photovoltaic system (PV), biomass gasification equipment, and other energy conversion devices are integrated in the DES model. The state grid is used as a fundamental ensuring resource to improve the robustness of the system. The improved particle swarm optimization (PSO) algorithm is employed to determine the optimal unit capacity configuration by examining investment cost, payback period, system self-sufficiency, accommodation rate, and annual CO₂ emissions. The main available renewable energy resources are biomass and solar energy with the annual amount of 1608.9 tons and 1679 kW h/m². The heat, gas, and electricity load account for 76.84%, 3.14%, and 20.02%, respectively. Based on the daily peak-to-valley price differentials in Beijing of over $0.15/kWh, DES optimization was carried out with PSO module in MATLAB software. The cost of the energy supply with DES, Scenario 3, was compared with that of the mere grid and renewable systems, Scenario 1 and Scenario 2. The direct DES cost is $0.52 million with the internal rate of return of 8.46%, resulting in a payback period of 6.15 years. The overall system self-sufficiency index except for grid achieved a value of 0.42. The application of the DES lead to energy costs of residents and annual carbon emission reduction by 32.5% and more than 3800 tons, respectively, compared to grid-only energy consumption, showcasing the feasibility of grid-aided combined heat and electricity production in rural areas. The rural areas of North China Plain, an important grain producer in China, are endowed with abundant new energy resources such as biomass, solar, and wind energy. The revitalization of the rural villages is confronted with the shortage of clean and low carbon energy supply. This work proposes a multi-energy complementary distributed energy system (DES) tailored for daily energy consumption in a typical scattered village on the basis of the field survey results. The geothermal heat pump, photovoltaic system (PV), biomass gasification equipment, and other energy conversion devices are integrated in the DES model. The state grid is used as a fundamental ensuring resource to improve the robustness of the system. The improved particle swarm optimization (PSO) algorithm is employed to determine the optimal unit capacity configuration by examining investment cost, payback period, system self-sufficiency, accommodation rate, and annual CO2 emissions. The main available renewable energy resources are biomass and solar energy with the annual amount of 1608.9 tons and 1679 kW h/m2. The heat, gas, and electricity load account for 76.84%, 3.14%, and 20.02%, respectively. Based on the daily peak-to-valley price differentials in Beijing of over $0.15/kWh, DES optimization was carried out with PSO module in MATLAB software. The cost of the energy supply with DES, Scenario 3, was compared with that of the mere grid and renewable systems, Scenario 1 and Scenario 2. The direct DES cost is $0.52 million with the internal rate of return of 8.46%, resulting in a payback period of 6.15 years. The overall system self-sufficiency index except for grid achieved a value of 0.42. The application of the DES lead to energy costs of residents and annual carbon emission reduction by 32.5% and more than 3800 tons, respectively, compared to grid-only energy consumption, showcasing the feasibility of grid-aided combined heat and electricity production in rural areas. •The multi-energy complementary distributed rural energy system (DES) is proposed.•Improved particle swarm optimization is used to determine optimal configuration.•The cost of DES is $0.52 million with the internal rate of return of 8.46%.•Payback period and system self-sufficiency index of DES are 6.15 years and 0.42.•Energy costs and annual CO2 emission of DES are reduced by 32.5% and 3800 tons. |
| ArticleNumber | 140461 |
| Author | Qin, Wu Zheng, Zongming Kang, Zezhong Shen, Chunlei Hu, Chunyu Tang, Shasha Xiao, Xianbin Duan, Ruonan |
| Author_xml | – sequence: 1 givenname: Zezhong surname: Kang fullname: Kang, Zezhong organization: National Engineering Research Center of New Energy Power Generation, School of New Energy, North China Electric Power University, Beijing, 102206, China – sequence: 2 givenname: Ruonan orcidid: 0000-0002-7733-0097 surname: Duan fullname: Duan, Ruonan organization: National Engineering Research Center of New Energy Power Generation, School of New Energy, North China Electric Power University, Beijing, 102206, China – sequence: 3 givenname: Zongming orcidid: 0000-0002-0016-4190 surname: Zheng fullname: Zheng, Zongming organization: National Engineering Research Center of New Energy Power Generation, School of New Energy, North China Electric Power University, Beijing, 102206, China – sequence: 4 givenname: Xianbin surname: Xiao fullname: Xiao, Xianbin organization: National Engineering Research Center of New Energy Power Generation, School of New Energy, North China Electric Power University, Beijing, 102206, China – sequence: 5 givenname: Chunlei surname: Shen fullname: Shen, Chunlei organization: State Grid Integrated Energy Service Group Co. LTD, Beijing, 100032, China – sequence: 6 givenname: Chunyu surname: Hu fullname: Hu, Chunyu organization: State Grid Integrated Energy Service Group Co. LTD, Beijing, 100032, China – sequence: 7 givenname: Shasha surname: Tang fullname: Tang, Shasha organization: State Grid Integrated Energy Service Group Co. LTD, Beijing, 100032, China – sequence: 8 givenname: Wu surname: Qin fullname: Qin, Wu email: qinwu@ncepu.edu.cn organization: National Engineering Research Center of New Energy Power Generation, School of New Energy, North China Electric Power University, Beijing, 102206, China |
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| Title | Grid aided combined heat and power generation system for rural village in north China plain using improved PSO algorithm |
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