Transportation and process modelling-assisted techno-economic assessment of resource recovery from non-recycled municipal plastic waste

被引:1
|
作者
Biakhmetov, Bauyrzhan [1 ,3 ]
Li, Yue [2 ]
Zhao, Qunshan [2 ]
Dostiyarov, Abay [3 ]
Flynn, David [1 ]
You, Siming [1 ]
机构
[1] Univ Glasgow, James Watt Sch Engn, Glasgow G12 8QQ, Scotland
[2] Univ Glasgow, Urban Big Data Ctr, Sch Social & Polit Sci, Glasgow G12 8RZ, Scotland
[3] Saken Seifullin Kazakh Agrotech Univ, Astana 010011, Kazakhstan
基金
英国工程与自然科学研究理事会;
关键词
Municipal plastic waste; Hydrogen; Pyrolysis; Carbon capture and storage; Cost benefit analysis; Aspen; GAS COMBINED-CYCLE; CO2; CAPTURE; CARBON CAPTURE; PYROLYSIS; POWER; FEASIBILITY; SYSTEMS; ENERGY; COST;
D O I
10.1016/j.enconman.2024.119273
中图分类号
O414.1 [热力学];
学科分类号
摘要
Less than one-tenth of municipal plastic waste generated is mechanically recycled, resulting in the remainder ending up in incineration plants or landfills worldwide. There is limited consideration on the effects of system scales and transportation processes on the economic feasibility of municipal plastic waste treatment. In this study, a techno-economic assessment framework was developed for pyrolysis-based resource recovery from non- recycled municipal plastic waste. The framework incorporates detailed transportation and process modelling with cost-benefit analysis, which enables greater assessment flexibility and accuracy and the accounting of the effects of system scale. The techno-economic feasibility of centralized large-scale and decentralized small-scale systems that recover value-added fuels (diesel and hydrogen), with and without carbon capture and storage units, were compared. The large-scale diesel system without carbon capture and storage reflected a real-world demonstrator, while other systems considered in this study were proposed alternatives to non-recycled municipal plastic waste management. Specifically, the municipal plastic waste transportation, and pyrolysis-based diesel and hydrogen production from non-recycled municipal plastic waste were modelled and simulated using ArcGIS Pro and Aspen Plus software, respectively. The data of transportation and process modelling were feed into a cost-benefit analysis to calculate the net present values of relevant developments. It was shown that only centralized large-scale diesel production, with and without carbon capture and storage, exhibited total positive net present values (22,240,135 pound and 24,449,631 pound, respectively), indicating their economic feasibility. The decentralized small-scale hydrogen production system with carbon capture and storage yielded the lowest net present value result (-2,391) pound per tonne of treated non-recycled municipal plastic waste. Particularly, the production of diesel and hydrogen from non-recycled municipal plastic systems, with carbon dioxide emissions to the environment, demonstrated better economic performance than the same systems capturing and storing carbon dioxide, attributable to its higher capital and operational expenditures. Finally, sensitivity analysis revealed that the fuel sales price and OPEX had the most significant impact on the net present values.
引用
收藏
页数:18
相关论文
共 39 条
  • [21] Insight into fermentable sugar recovery process from sugarcane bagasse: in silico elucidation of enzymatic hydrolysis and techno-economic assessment
    Anand, Shreya
    Kumar, Sampath Muthu
    Mukherjee, Koel
    Padmanabhan, Padmini
    JOURNAL OF TAIBAH UNIVERSITY FOR SCIENCE, 2022, 16 (01): : 204 - 213
  • [22] Liquid fertilizer production from organic waste by conventional and microwave-assisted extraction technologies: Techno-economic and environmental assessment
    Fernandez-Delgado, Marina
    del Amo-Mateos, Esther
    Lucas, Susana
    Teresa Garcia-Cubero, M.
    Coca, Monica
    SCIENCE OF THE TOTAL ENVIRONMENT, 2022, 806
  • [23] Cleaner coke-making with non-recyclable waste plastics: A techno-economic assessment from a European perspective
    Avila, Mario
    Bellemans, Inge
    Verbrugge, Sofie
    Verbeken, Kim
    JOURNAL OF ENVIRONMENTAL MANAGEMENT, 2025, 380
  • [25] Techno-economic analysis of an integrated bio- and hydrometallurgical process for base and precious metal recovery from waste printed circuit boards
    Van Yken, Jonovan
    Boxall, Naomi J.
    Cheng, Ka Yu
    Nikoloski, Aleksandar N.
    Moheimani, Navid
    Kaksonen, Anna H.
    HYDROMETALLURGY, 2023, 222
  • [26] Techno-economic and techno-environmental assessment and multi-objective optimization of a new CCHP system based on waste heat recovery from regenerative Brayton cycle
    Wang, Aili
    Wang, Shunsheng
    Ebrahimi-Moghadam, Amir
    Farzaneh-Gord, Mahmood
    Moghadam, Ali Jabari
    ENERGY, 2022, 241
  • [27] A techno-economic assessment of the reutilisation of municipal solid waste incineration ash for CO2 capture from incineration flue gases by calcium looping
    Lim, Lek Hong
    Tan, Preston
    Chan, Wei Ping
    Veksha, Andrei
    Lim, Teik-Thye
    Lisak, Grzegorz
    Liu, Wen
    CHEMICAL ENGINEERING JOURNAL, 2023, 464
  • [28] A techno-economic analysis of energy recovery from organic fraction of municipal solid waste (MSW) by an integrated intermediate pyrolysis and combined heat and power (CHP) plant
    Yang, Y.
    Wang, J.
    Chong, K.
    Bridgwater, A. V.
    ENERGY CONVERSION AND MANAGEMENT, 2018, 174 : 406 - 416
  • [29] Process integration and techno-economic assessment of crystallization techniques for Na2SO4 and NaCl recovery from saline effluents
    Bhatti, Sameer
    Sahu, Parul
    Masani, Hemali R.
    Dinesh, Anugraha K.
    Upadhyay, Sumesh C.
    Vyas, Bipin G.
    Kumar, Arvind
    CHEMICAL ENGINEERING AND PROCESSING-PROCESS INTENSIFICATION, 2024, 203
  • [30] From waste to advanced resource: Techno-economic and life cycle assessment behind the integration of polyester recycling and glucose production to valorize fast fashion garments
    Vera, Ramon E.
    Vivas, Keren A.
    Forfora, Naycari
    Marquez, Ronald
    Urdaneta, Isabel
    Frazier, Ryen
    de Assis, Camilla Abbati
    de Assis, Tiago
    Treasure, Trevor
    Farrell, Matthew
    Ankeny, Mary
    Saloni, Daniel
    Pal, Lokendra
    Jameel, Hasan
    Gonzalez, Ronalds
    CHEMICAL ENGINEERING JOURNAL, 2024, 500