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The use of syngas from biomedical waste plasma gasification systems for electricity production in internal combustion: Thermodynamic and economic issues

机译:使用合成气从生物医学废等离子体气化系统进行内燃中的电力生产:热力学和经济问题

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摘要

Brazil has problems with the incorrect disposal of biomedical waste (BW) and studies of new technologies to eliminate this problem is becoming increasingly important. The plasma gasification technology provides reliable destruction of polluting materials, produces an inert slag and syngas. The slag can be used in civil construction, whereas syngas can be burned in the internal combustion engine (ICE) for electricity and heat generation. To collaborate with the insertion of plasma gasification technology in the Brazilian scenario, thermodynamic and economic studies of the use of BW plasma gasification are developed in this work and applied to conditions of Guaratingueta city, Sao Paulo state, Brazil. Initially, the thermodynamic analysis was performed to determine the energetic efficiency of the plasma gasification system coupled with the ICE and the electricity generation potential was determinate. Economic studies were conducted to determine syngas and electricity production cost, the payback period and expected annual saving of the system. Thermodynamic analysis showed that the energy efficiency of the plasma gasifier is 78.58% and that there is a potential to produce 31% of the electricity required in the BW plasma gasification system. Through economic analysis the payback obtained was 6 years.
机译:巴西在生物医学废物(BW)处置不正确的情况下,以及消除这一问题的新技术的研究变得越来越重要。等离子气化技术提供可靠的污染材料破坏,产生惰性炉渣和合成气。炉渣可用于民用结构,而合成气可以在内燃机(冰)中燃烧,用于电力和发电。为了在巴西情景中插入等离子体气化技术,在这项工作中开发了使用BW等离子体气化的热力学和经济研究,并应用于巴西圣保罗州的瓜腾零城市的条件。最初,进行热力学分析以确定与冰耦合的等离子体气化系统的能量效率,并且发电潜力是决定的。进行经济研究以确定合成气和电力生产成本,投资回收期和预计该系统的年度储蓄。热力学分析表明,等离子气化器的能量效率为78.58%,并且有可能产生31%的BW等离子体气化系统所需的电力。通过经济分析,获得的回报是6年。

著录项

  • 来源
    《Energy》 |2020年第may15期|117419.1-117419.10|共10页
  • 作者单位

    Laboratory of Optimization of Energy Systems (LOSE) Department of Energy School of Engineering and Institute of Bioenergy Research (IPBEN-UNESP)-Associated Laboratory of Guaratinguetá Sao Paulo State University (UNESP) SP Brazil;

    Department of Environmental Engineering Institute of Science and Technology São José dos Campos Sao Paulo State University (UNESP) SP Brazil;

    Laboratory of Optimization of Energy Systems (LOSE) Department of Energy School of Engineering and Institute of Bioenergy Research (IPBEN-UNESP)-Associated Laboratory of Guaratinguetá Sao Paulo State University (UNESP) SP Brazil;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Plasma gasification; Biomedical waste; Syngas; Electricity;

    机译:等离子体气化;生物医学废物;合成气;电;

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