Economic, Environmental and Energetic Analysis of a Distributed Generation System Composed by Waste Gasification and Photovoltaic Panels
Abstract
:1. Introduction
1.1. Energy Generation Background
1.2. Local Energy Generation
1.3. Purpose of the Research
2. Analysis Conditions
3. Energy Generation Process
3.1. Energy Generation Background
3.2. Collection and Transportation
3.3. Pretreatment Stages: Chipping and Drying
3.4. Gasification
3.5. Power Generation Process
3.6. Solar Energy Generation
4. Evaluation Methodology
- Case 1: municipal solid waste (MSW) is collected from the mall and the surrounding neighborhood; the energy generation system is composed of only waste gasification;
- Case 2: MSW is collected from the mall and the surrounding neighborhood; the energy generation system is composed of waste gasification and photovoltaic panels. This case analyzes the addition of solar energy to the system;
- Case 3: MSW is collected from the mall and the surrounding neighborhood with the peculiarity that plastics are not collected. The energy generation system is composed of only waste gasification. This case analyzes the absence of plastics in the system;
- Case 4: MSW is collected only from the mall; the energy generation system is composed of waste gasification and photovoltaic panels. This case analyzes the influence of the processing collection fee.
4.1. Economic Parameters
4.2. Environmental Parameters
4.3. Energetic Parameters
5. Results and Discussion
5.1. Optimization of Superheated Steam Gasification Process: Case 1
5.2. Comparison with Other Waste to Energy Techniques
5.3. Influence of Solar Energy and Plastic Usage
6. Conclusions
7. Future Steps
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Acknowledgments
Conflicts of Interest
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Store area | 30,100 m2 |
Electricity demand | 346.16 kWh/m2·y |
Municipal solid waste generation | 76.65 kg/m2·y |
Population | 20,000 inhabitants |
Electricity demand | 904.18 kWh/population·y |
Municipal solid waste generation | 226 kg/population·y |
Type of Gasification | Superheated Steam Gasification | Downdraft Gasification |
---|---|---|
Cold gas efficiency | 85% | 60% |
Power plant capacity | 0.66 MW | 0.50 MW |
Fuel consumption | 6578 MJ/h | 4276 MJ/h |
Machine cost | 624,301,410 JPY | 405,795,917 JPY |
Service life | 15 y | 15 y |
Type of Panel | Multicrystalline |
---|---|
Initial cost of PV system | 180 yen/W |
Max. power (STC) | 300 W |
Efficiency | 16% |
Roof space/GLA ratio | 58% |
Suitable ratio | 80% |
Availability ratio | 65% |
Covering ratio (Kyoto) | 49% |
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Garcia, A.Q.; Nishiumi, N.; Saito, A.; Matsumura, E.; Senda, J. Economic, Environmental and Energetic Analysis of a Distributed Generation System Composed by Waste Gasification and Photovoltaic Panels. Energies 2021, 14, 3889. https://doi.org/10.3390/en14133889
Garcia AQ, Nishiumi N, Saito A, Matsumura E, Senda J. Economic, Environmental and Energetic Analysis of a Distributed Generation System Composed by Waste Gasification and Photovoltaic Panels. Energies. 2021; 14(13):3889. https://doi.org/10.3390/en14133889
Chicago/Turabian StyleGarcia, Alvaro Quiles, Naoya Nishiumi, Atsushi Saito, Eriko Matsumura, and Jiro Senda. 2021. "Economic, Environmental and Energetic Analysis of a Distributed Generation System Composed by Waste Gasification and Photovoltaic Panels" Energies 14, no. 13: 3889. https://doi.org/10.3390/en14133889
APA StyleGarcia, A. Q., Nishiumi, N., Saito, A., Matsumura, E., & Senda, J. (2021). Economic, Environmental and Energetic Analysis of a Distributed Generation System Composed by Waste Gasification and Photovoltaic Panels. Energies, 14(13), 3889. https://doi.org/10.3390/en14133889