TY - JOUR
T1 - Industrial heat defossilization
T2 - A comparative analysis of waste incineration and clean energy scenarios
AU - Chen, Wen
AU - Ohnishi, Satoshi
AU - Maki, Seiya
AU - Kawai, Kosuke
AU - Sun, Lu
AU - Dong, Huijuan
AU - Dong, Liang
AU - Dou, Yi
AU - Qian, Tana
AU - Hijioka, Yasuaki
AU - Nakajima, Kenichi
AU - Fujii, Minoru
N1 - Publisher Copyright:
© 2025 Elsevier Ltd
PY - 2025/2/1
Y1 - 2025/2/1
N2 - The incineration of waste for power generation, the utilisation of cogeneration, and the application of heating represent promising approaches to the decarbonisation of a future carbon-neutral society. Nevertheless, given the context of global carbon neutrality promotion and growing interest from countries in the potential of waste as a substitute for fossil fuels, the comparative efficacy of the three waste energy recovery mechanisms remains uncertain. In order to address this uncertainty, this study has devised five scenarios, the differential performance of which has been evaluated through the application of a difference-in-difference methodology. The cogeneration scenario, which represent the cogeneration mechanism, evinces superior performance with respect to energy and environmental outcomes in comparison to the power generation scenarios, which represent the power generation mechanism. Concurrently, the theoretical basis for the large-scale heating (medium T&P) scenario, representing the heating mechanism, was validated through the differential performance of the scenarios, which demonstrated that it is superior to the cogeneration scenario. Furthermore, it was demonstrated that the high T&P heating scenario, which transports steam at 15 MPa and 550 °C, resulted in a reduction of fossil fuel consumption by 66 GJ/h in comparison to the 4 MPa and 400 °C scenario. This study presents a comprehensive examination of the obstacles hindering the expansion of green hydrogen production. The findings suggest that self-produced green hydrogen systems remain cost-effective in comparison to externally sourced green hydrogen.
AB - The incineration of waste for power generation, the utilisation of cogeneration, and the application of heating represent promising approaches to the decarbonisation of a future carbon-neutral society. Nevertheless, given the context of global carbon neutrality promotion and growing interest from countries in the potential of waste as a substitute for fossil fuels, the comparative efficacy of the three waste energy recovery mechanisms remains uncertain. In order to address this uncertainty, this study has devised five scenarios, the differential performance of which has been evaluated through the application of a difference-in-difference methodology. The cogeneration scenario, which represent the cogeneration mechanism, evinces superior performance with respect to energy and environmental outcomes in comparison to the power generation scenarios, which represent the power generation mechanism. Concurrently, the theoretical basis for the large-scale heating (medium T&P) scenario, representing the heating mechanism, was validated through the differential performance of the scenarios, which demonstrated that it is superior to the cogeneration scenario. Furthermore, it was demonstrated that the high T&P heating scenario, which transports steam at 15 MPa and 550 °C, resulted in a reduction of fossil fuel consumption by 66 GJ/h in comparison to the 4 MPa and 400 °C scenario. This study presents a comprehensive examination of the obstacles hindering the expansion of green hydrogen production. The findings suggest that self-produced green hydrogen systems remain cost-effective in comparison to externally sourced green hydrogen.
KW - Carbon neutrality
KW - Industrial heat sector
KW - Model construction
KW - Photovoltaic hydrogen production
KW - Waste incineration
UR - https://www.scopus.com/pages/publications/85215836583
U2 - 10.1016/j.jclepro.2025.144802
DO - 10.1016/j.jclepro.2025.144802
M3 - 文献综述
AN - SCOPUS:85215836583
SN - 0959-6526
VL - 491
JO - Journal of Cleaner Production
JF - Journal of Cleaner Production
M1 - 144802
ER -