Techno-economic assessment of co-pyrolyzed kitchen waste and rice straw for co-generation of heat and power

Increasing concerns relating to depletion of fossil fuels and global warming coupled with significant growth in waste-to-energy markets have propelled the need for ingenious and flexible technologies that can effectively transform waste biomass into fuels and power at high efficiency. In this study,...

Full description

Bibliographic Details
Main Authors: Nyambura, Samuel Mbugua, Li, Chao, Xu, Jialang, Wang, Jufei, Li, Hu, Zhang, Zhaotong, V. Bertrand, Gbenontin, Ndumia, Joseph Ndiithi, Li, Xiaolin, Atsbha, Musie Welldegerima, Chin, Bridgid
Format: Journal Article
Published: 2023
Online Access:http://hdl.handle.net/20.500.11937/92526
_version_ 1848765645530857472
author Nyambura, Samuel Mbugua
Li, Chao
Xu, Jialang
Wang, Jufei
Li, Hu
Zhang, Zhaotong
V. Bertrand, Gbenontin
Ndumia, Joseph Ndiithi
Li, Xiaolin
Atsbha, Musie Welldegerima
Chin, Bridgid
author_facet Nyambura, Samuel Mbugua
Li, Chao
Xu, Jialang
Wang, Jufei
Li, Hu
Zhang, Zhaotong
V. Bertrand, Gbenontin
Ndumia, Joseph Ndiithi
Li, Xiaolin
Atsbha, Musie Welldegerima
Chin, Bridgid
author_sort Nyambura, Samuel Mbugua
building Curtin Institutional Repository
collection Online Access
description Increasing concerns relating to depletion of fossil fuels and global warming coupled with significant growth in waste-to-energy markets have propelled the need for ingenious and flexible technologies that can effectively transform waste biomass into fuels and power at high efficiency. In this study, a comprehensive techno-economic investigation was undertaken to investigate the economic potential of utilizing co-pyrolyzed kitchen food waste and rice straw in a waste to heat and power facility based on microwave pyrolysis and a combined heat and power system. The study involved microwave pyrolysis experiments to investigate the effects of blending proportions of kitchen food waste and rice straw on the evolution of synthetic gas components based on gas chromatography analysis. The optimal blending proportion was then used to run the Aspen Plus heat and power plant simulation. Boiler efficiency, steam cycle thermal efficiency, electrical efficiency, and overall system efficiency were 96.30 %, 36.46 %, 41.61 %, and 35.11 %, respectively. The model had an estimated annual power production of 744,576 kWh/year, hot water production capacity of 1,727,649 L/year, and annual biochar production of 162,045 kg/year. A positive net present value was observed for the project after the second year, coupled with an internal rate of return of 0.62 and a profitability index of 3.85 over ten years. The heat generated can meet rapidly increasing urban heating needs and the power will contribute to grid stabilization. Sensitivity analysis revealed that the greatest potential performance improvements can be achieved by increasing biochar selling price and reducing total investment costs and total annual operating costs. Overall, the study shows scaled-up microwave-based heat and power technology to be a profitable and effective waste management and renewable energy solution.
first_indexed 2025-11-14T11:38:33Z
format Journal Article
id curtin-20.500.11937-92526
institution Curtin University Malaysia
institution_category Local University
last_indexed 2025-11-14T11:38:33Z
publishDate 2023
recordtype eprints
repository_type Digital Repository
spelling curtin-20.500.11937-925262023-07-17T00:25:56Z Techno-economic assessment of co-pyrolyzed kitchen waste and rice straw for co-generation of heat and power Nyambura, Samuel Mbugua Li, Chao Xu, Jialang Wang, Jufei Li, Hu Zhang, Zhaotong V. Bertrand, Gbenontin Ndumia, Joseph Ndiithi Li, Xiaolin Atsbha, Musie Welldegerima Chin, Bridgid Increasing concerns relating to depletion of fossil fuels and global warming coupled with significant growth in waste-to-energy markets have propelled the need for ingenious and flexible technologies that can effectively transform waste biomass into fuels and power at high efficiency. In this study, a comprehensive techno-economic investigation was undertaken to investigate the economic potential of utilizing co-pyrolyzed kitchen food waste and rice straw in a waste to heat and power facility based on microwave pyrolysis and a combined heat and power system. The study involved microwave pyrolysis experiments to investigate the effects of blending proportions of kitchen food waste and rice straw on the evolution of synthetic gas components based on gas chromatography analysis. The optimal blending proportion was then used to run the Aspen Plus heat and power plant simulation. Boiler efficiency, steam cycle thermal efficiency, electrical efficiency, and overall system efficiency were 96.30 %, 36.46 %, 41.61 %, and 35.11 %, respectively. The model had an estimated annual power production of 744,576 kWh/year, hot water production capacity of 1,727,649 L/year, and annual biochar production of 162,045 kg/year. A positive net present value was observed for the project after the second year, coupled with an internal rate of return of 0.62 and a profitability index of 3.85 over ten years. The heat generated can meet rapidly increasing urban heating needs and the power will contribute to grid stabilization. Sensitivity analysis revealed that the greatest potential performance improvements can be achieved by increasing biochar selling price and reducing total investment costs and total annual operating costs. Overall, the study shows scaled-up microwave-based heat and power technology to be a profitable and effective waste management and renewable energy solution. 2023 Journal Article http://hdl.handle.net/20.500.11937/92526 10.1016/j.spc.2023.06.015 restricted
spellingShingle Nyambura, Samuel Mbugua
Li, Chao
Xu, Jialang
Wang, Jufei
Li, Hu
Zhang, Zhaotong
V. Bertrand, Gbenontin
Ndumia, Joseph Ndiithi
Li, Xiaolin
Atsbha, Musie Welldegerima
Chin, Bridgid
Techno-economic assessment of co-pyrolyzed kitchen waste and rice straw for co-generation of heat and power
title Techno-economic assessment of co-pyrolyzed kitchen waste and rice straw for co-generation of heat and power
title_full Techno-economic assessment of co-pyrolyzed kitchen waste and rice straw for co-generation of heat and power
title_fullStr Techno-economic assessment of co-pyrolyzed kitchen waste and rice straw for co-generation of heat and power
title_full_unstemmed Techno-economic assessment of co-pyrolyzed kitchen waste and rice straw for co-generation of heat and power
title_short Techno-economic assessment of co-pyrolyzed kitchen waste and rice straw for co-generation of heat and power
title_sort techno-economic assessment of co-pyrolyzed kitchen waste and rice straw for co-generation of heat and power
url http://hdl.handle.net/20.500.11937/92526