首页> 外文期刊>Biomass & bioenergy >Combined particle emission reduction and heat recovery from combustion exhaust-A novel approach for small wood-fired appliances
【24h】

Combined particle emission reduction and heat recovery from combustion exhaust-A novel approach for small wood-fired appliances

机译:结合减少颗粒物排放和从燃烧废气中回收热量-一种用于小型木火器具的新颖方法

获取原文
获取原文并翻译 | 示例
           

摘要

Replacing fossil fuels by renewable sources of energy is one approach to address the problem of global warming due to anthropogenic emissions of greenhouse gases. Wood combustion can help to replace fuel oil or gas. It is advisable, however, to use modern technology for combustion and exhaust gas after-treatment in order to achieve best efficiency and avoid air quality problems due to high emission levels often related to small scale wood combustion. In this study, simultaneous combustion particle deposition and heat recovery from the exhaust of two commercially available wood-fired appliances has been investigated. The experiments were performed with a miniature pipe bundle heat exchanger operating in the exhaust gas lines of a fully automated pellet burner or a closed fireplace. The system has been characterised for a wide range of aerosol inlet temperatures (135-295℃) and flow velocities (0.13-1.0ms~(-1)), and particle deposition efficiencies up to 95% have been achieved. Deposition was dominated by thermophoresis and diffusion and increased with the average temperature difference and retention time in the heat exchanger. The aerosols from the two different appliances exhibited different deposition characteristics, which can be attributed to enhanced deposition of the nucleation mode particles generated in the closed fire place. The measured deposition efficiencies can be described by simple linear parameterisations derived from laboratory studies. The results of this study demonstrate the feasibility of thermophoretic particle removal from biomass burning flue gas and support the development of modified heat exchanger systems with enhanced capability for simultaneous heat recovery and particle deposition.
机译:用可再生能源替代化石燃料是解决人为温室气体排放造成的全球变暖问题的一种方法。木材燃烧可以帮助替代燃油或天然气。但是,建议使用现代技术进行燃烧和废气后处理,以达到最佳效率并避免由于通常与小规模木材燃烧有关的高排放水平而引起的空气质量问题。在这项研究中,已经研究了同时燃烧颗粒沉积和从两种市售燃木器具的排气中回收热量的方法。用在全自动颗粒燃烧器或封闭式壁炉的排气管线中运行的微型管束式热交换器进行实验。该系统具有广泛的气溶胶入口温度(135-295℃)和流速(0.13-1.0ms〜(-1))的特点,并且颗粒沉积效率高达95%。沉积以热泳和扩散为主,并随平均温度差和在热交换器中的停留时间而增加。来自两种不同器具的气溶胶表现出不同的沉积特性,这可以归因于在封闭火场中产生的成核模式颗粒的增强沉积。可以通过从实验室研究中得出的简单线性参数化来描述测得的沉积效率。这项研究的结果证明了从生物质燃烧烟气中去除热泳颗粒的可行性,并支持改进的热交换器系统的开发,该系统具有同时进行热回收和颗粒沉积的增强功能。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号