Energy generation from municipal solid waste. Thermodynamic strategies to optimize the performance of thermal power plants

被引:0
|
作者
Montiel-Bohórquez N.D. [1 ]
Pérez J.F. [1 ]
机构
[1] Grupo de manejo eficiente de la energía (GIMEL), Departamento de ingeniería mecánica, Facultad de Ingeniería, Universidad de Antioquia, Calle 67 No. 53-108, Medellín
来源
Informacion Tecnologica | 2019年 / 30卷 / 01期
关键词
Energy recovery; Gasification; Municipal solid waste; Thermo-chemical equilibrium;
D O I
10.4067/S0718-07642019000100273
中图分类号
学科分类号
摘要
In this study, thermodynamic strategies are determined for the energy conversion of Municipal Solid Wastes (MSW) in incineration plants under sub-stoichiometric conditions. Energy generation from MSW is an alternative to mitigate the environmental impacts derived by their final disposal, being the production rate of MSW in Medellin city (Colombia) of about 1800 ton/day. The analysis is conducted by means of a thermochemical equilibrium model of the gasification process, where the effect of moisture content and fuel-air equivalence ratio on the thermochemical process is studied. The energy potential of MSW from the city is between 28 and 44 MWe. The thermodynamic strategies for energy recovery from MSW in incineration plants at sub-stoichiometric conditions, under auto-thermal regimens and avoiding ash fusion, establish that the process must be carried out with a fuel-air equivalence ratio between 1.5 and 3.3, regardless of the moisture content of the MSW. 2019 © Centro de Informacion Tecnologica. All Rights Reserved.
引用
收藏
页码:273 / 283
页数:10
相关论文
共 50 条
  • [31] Energy recovery from municipal solid waste
    Ngusale, George K.
    Oloko, Michael
    Agong, Stephen
    Nyakinya, Belinda
    ENERGY SOURCES PART A-RECOVERY UTILIZATION AND ENVIRONMENTAL EFFECTS, 2017, 39 (16) : 1807 - 1814
  • [32] Municipal solid waste fueled power generation in china: a case study of waste-to-energy in changchun city
    Cheng, Hefa
    Zhang, Yanguo
    Meng, Aihong
    Li, Qinghai
    ENVIRONMENTAL SCIENCE & TECHNOLOGY, 2007, 41 (21) : 7509 - 7515
  • [33] Generation, characteristics and energy potential of solid municipal waste in Nigeria
    Amber, Ityona
    Kulla, Daniel M.
    Gukop, Nicholas
    JOURNAL OF ENERGY IN SOUTHERN AFRICA, 2012, 23 (03) : 47 - 51
  • [34] Refuse recovered biomass fuel from municipal solid waste. A life cycle assessment
    Ripa, M.
    Fiorentino, G.
    Giani, H.
    Clausen, A.
    Ulgiati, S.
    APPLIED ENERGY, 2017, 186 : 211 - 225
  • [35] Analysis of operating experience with steam air preheaters at Russian municipal solid waste thermal power plants
    V. F. Moskvichev
    A. N. Tugov
    Power Technology and Engineering, 2012, 46 (1) : 46 - 51
  • [36] Landfill gas generation after mechanical biological treatment of municipal solid waste. Estimation of gas generation rate constants
    De Gioannis, G.
    Muntoni, A.
    Cappai, G.
    Milia, S.
    WASTE MANAGEMENT, 2009, 29 (03) : 1026 - 1034
  • [37] Recovery of plastic packaging from mixed municipal solid waste. A case study from Austria
    Blasenbauer, Dominik
    Lipp, Anna -Maria
    Fellner, Johann
    Tischberger-Aldrian, Alexia
    Stipanovic, Hana
    Lederer, Jakob
    WASTE MANAGEMENT, 2024, 180 : 9 - 22
  • [38] Energy generation in the treatment of effluent from washing of municipal solid waste collection trucks
    de Mello, Vinicius Mattos
    de Lima Santos, Damazio Daniel
    Sadock Freitas, Rafael Coury
    Yokoyama, Lidia
    Cammarota, Magali Christe
    SUSTAINABLE ENERGY TECHNOLOGIES AND ASSESSMENTS, 2018, 30 : 105 - 113
  • [39] Estimation of energy generation from municipal solid waste in the Jabodetabek Metropolitan Area, Indonesia
    Ismangoen, Moh. Hadianto
    Nanda, Muhammad Achirul
    Nelwan, Leopold Oscar
    Budiastra, I. Wayan
    Seminar, Kudang Boro
    INTERNATIONAL JOURNAL OF ENVIRONMENT AND WASTE MANAGEMENT, 2022, 30 (04) : 453 - 471
  • [40] Technological pathways for bioenergy generation from municipal solid waste: Renewable energy option
    Dabe, Satish J.
    Prasad, Poonam J.
    Vaidya, A. N.
    Purohit, H. J.
    ENVIRONMENTAL PROGRESS & SUSTAINABLE ENERGY, 2019, 38 (02) : 654 - 671