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Energy, exergy and economic analysis of a poly-generation system combining sludge pyrolysis and medical waste plasma gasification

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  • Li, Sarengaowa
  • Chen, Heng
  • Yuan, Xin
  • Pan, Peiyuan
  • Xu, Gang
  • Wang, Xiuyan
  • Wu, Lining

Abstract

To optimize the processes of treating medical waste and pyrolyzing sludge, we propose a new integrated system that combines plasma gasification for medical waste treatment, combined cycle power generation, and sludge pyrolysis. The medical waste is first incinerated, and then the synthesis gas from plasma gasification powers a gas turbine to generate electricity in this integrated system. The gas turbine's exhaust gas heats steam and feedwater from the HRSG to achieve a combined gas-steam cycle. Simultaneously, turbine exhaust steam energizes sludge pyrolysis, allowing for efficient conversion of medical waste into electricity in an eco-friendly manner. A hybrid design study was conducted using different methods, including energy, exergy, and economic analysis. The study revealed that the medical waste-to-energy system integration has the potential to attain 66.31% energy efficiency and 66.70% exergy efficiency. Moreover, the medical waste-electricity project has a dynamic payback period of 2.46 years and a relative net present value of 38,949.91k$. These outcomes suggest that this innovative concept is practical, advantageous, and has excellent potential for further development in the field of waste-to-energy conversion.

Suggested Citation

  • Li, Sarengaowa & Chen, Heng & Yuan, Xin & Pan, Peiyuan & Xu, Gang & Wang, Xiuyan & Wu, Lining, 2024. "Energy, exergy and economic analysis of a poly-generation system combining sludge pyrolysis and medical waste plasma gasification," Energy, Elsevier, vol. 295(C).
  • Handle: RePEc:eee:energy:v:295:y:2024:i:c:s0360544224005784
    DOI: 10.1016/j.energy.2024.130806
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    1. Chen, Lichun & Wen, Chang & Wang, Wenyu & Liu, Tianyu & Liu, Enze & Liu, Haowen & Li, Zexin, 2020. "Combustion behaviour of biochars thermally pretreated via torrefaction, slow pyrolysis, or hydrothermal carbonisation and co-fired with pulverised coal," Renewable Energy, Elsevier, vol. 161(C), pages 867-877.
    2. Chan, Wei Ping & Veksha, Andrei & Lei, Junxi & Oh, Wen-Da & Dou, Xiaomin & Giannis, Apostolos & Lisak, Grzegorz & Lim, Teik-Thye, 2019. "A hot syngas purification system integrated with downdraft gasification of municipal solid waste," Applied Energy, Elsevier, vol. 237(C), pages 227-240.
    3. Habibollahzade, Ali & Gholamian, Ehsan & Behzadi, Amirmohammad, 2019. "Multi-objective optimization and comparative performance analysis of hybrid biomass-based solid oxide fuel cell/solid oxide electrolyzer cell/gas turbine using different gasification agents," Applied Energy, Elsevier, vol. 233, pages 985-1002.
    4. Manara, P. & Zabaniotou, A., 2012. "Towards sewage sludge based biofuels via thermochemical conversion – A review," Renewable and Sustainable Energy Reviews, Elsevier, vol. 16(5), pages 2566-2582.
    5. Fytili, D. & Zabaniotou, A., 2008. "Utilization of sewage sludge in EU application of old and new methods--A review," Renewable and Sustainable Energy Reviews, Elsevier, vol. 12(1), pages 116-140, January.
    6. Yang, Cheng & Huang, Zhifeng & Ma, Xiaoqian, 2018. "Comparative study on off-design characteristics of CHP based on GTCC under alternative operating strategy for gas turbine," Energy, Elsevier, vol. 145(C), pages 823-838.
    7. Janajreh, Isam & Adeyemi, Idowu & Raza, Syed Shabbar & Ghenai, Chaouki, 2021. "A review of recent developments and future prospects in gasification systems and their modeling," Renewable and Sustainable Energy Reviews, Elsevier, vol. 138(C).
    8. Elsido, Cristina & Martelli, Emanuele & Kreutz, Thomas, 2019. "Heat integration and heat recovery steam cycle optimization for a low-carbon lignite/biomass-to-jet fuel demonstration project," Applied Energy, Elsevier, vol. 239(C), pages 1322-1342.
    9. Zhang, Cheng & Liu, Chao & Wang, Shukun & Xu, Xiaoxiao & Li, Qibin, 2017. "Thermo-economic comparison of subcritical organic Rankine cycle based on different heat exchanger configurations," Energy, Elsevier, vol. 123(C), pages 728-741.
    10. Chen, Heng & Li, Jiarui & Li, Tongyu & Xu, Gang & Jin, Xi & Wang, Min & Liu, Tong, 2022. "Performance assessment of a novel medical-waste-to-energy design based on plasma gasification and integrated with a municipal solid waste incineration plant," Energy, Elsevier, vol. 245(C).
    11. Carlos Corvalan & Elena Villalobos Prats & Aderita Sena & Diarmid Campbell-Lendrum & Josh Karliner & Antonella Risso & Susan Wilburn & Scott Slotterback & Megha Rathi & Ruth Stringer & Peter Berry & S, 2020. "Towards Climate Resilient and Environmentally Sustainable Health Care Facilities," IJERPH, MDPI, vol. 17(23), pages 1-18, November.
    Full references (including those not matched with items on IDEAS)

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