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Evaluation of an Energy Production System from Sewage Sludge Using a Pilot-Scale Downdraft Gasifier

机译:使用中试下沉式气化炉评估污泥产生的能量

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摘要

Presently, sewage sludge from wastewater treatment systems has become a critical problem in many regions of the world because it can inflict harm on human beings and the environment Gasification technology is widely held to be a suitable and convenient approach to convert waste materials to energy with minimal greenhouse gas emissions. In a pilot-scale experiment on sewage sludge gasification ultimately aimed at generating electricity, the reactor temperature profile, syngas characteristics, and performance of the syngas in the production of electricity were tied to the equivalence ratio (ER) and syngas flow rate (i.e., 100, 150, or 180 N m~3h~(-1)). An increase of the ER resulted in an increase of the temperature inside the gasifier, causing a variation in syngas characteristics and the level of tar and dust contamination. Calorific values at different syngas flow rates were found to vary from 4.20 to 4.87 MJ N~(-) m~(-3). The syngas obtained at flow rates of 150 and 180 N m~3 h~(-1) could be used in an engine-generator set to generate 21 or 47 kW of electrical power, respectively, whereas at the flow rate of 100 N m3 h ~(-1), the syngas could only run the engine without electrical load. The specific sewage sludge consumption, which is the amount of feedstock required to generate electricity, decreased with an increase in the syngas flow rate. The performance evaluation of the sewage sludge gasification system, i.e., gasification efficiency, engine-generator set efficiency, and electrical efficiency, showed that these were in the range of those obtained from biomass, such as agricultural residues. Overall, sewage sludge can serve as a feedstock for electricity generation using a pilot-scale downdraft gasification system.
机译:目前,来自废水处理系统的污水污泥已经成为世界许多地区的关键问题,因为它可能对人类和环境造成伤害。气化技术被广泛认为是一种以最少的成本将废物转化为能源的合适且便捷的方法。温室气体排放。在最终旨在发电的污水污泥气化的中试规模实验中,反应器温度曲线,合成气特性和合成气在发电中的性能与当量比(ER)和合成气流速(即100、150或180 N m〜3h〜(-1))。 ER的增加导致气化炉内部温度的升高,从而导致合成气特性以及焦油和粉尘污染水平的变化。发现不同合成气流速下的热值在4.20至4.87 MJ N〜(-)m〜(-3)之间变化。在150 N m〜3 h〜(-1)和180 N m〜(-1)的流量下获得的合成气可用于发动机发电机组,分别产生21或47 kW的电力,而在100 N m3的流量下h〜(-1),合成气只能在无电负载的情况下运行发动机。特定的污水污泥消耗量是发电所需的原料量,随着合成气流量的增加而降低。对污水污泥气化系统的性能评估,即气化效率,发动机-发电机组效率和电效率,表明这些都在从生物质(如农业残余物)获得的范围内。总体而言,污水污泥可作为中试规模的向下气流气化系统的发电原料。

著录项

  • 来源
    《Energy & fuels》 |2013年第janaafeba期|229-236|共8页
  • 作者单位

    School of Agricultural Engineering Institute of Engineering, Suranaree University of Technology, 111 University Avenue, Muang District, Nakhon Ratchasima 30000, Thailand;

    School of Environmental Engineering, Institute of Engineering, Suranaree University of Technology, 111 University Avenue, Muang District, Nakhon Ratchasima 30000, Thailand;

    School of Agricultural Engineering Institute of Engineering, Suranaree University of Technology, 111 University Avenue, Muang District, Nakhon Ratchasima 30000, Thailand;

    Department of Bioresource Engineering, McGill University, Sainte-Anne-de-Bellevue, Quebec H9X 3V9, Canada;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
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  • 入库时间 2022-08-18 00:40:50

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