Increasing the efficiency of burning solid fuel in the layer

M. Senchuk
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Abstract

he main directions of increasing the efficiency of solid fuel heat generators are analyzed. It is noted that in industrial designs of heat generating installations depending on their class technological schemes of burning of solid fuel are applied at various levels on capital and operational expenses. The most expensive are the technologies of combustion of pre-prepared high-quality fuel in heat generators with complex mechanization at all stages of the combustion process, which provide high thermal and environmental performance. Cheaper combustion technologies are widespread, according to which the normative performance of heat generators is achieved due to the rational ratio of design and mode parameters of the combustion zone with the thermophysical characteristics of the burned fuel, including low-grade. Examples of realization of such technological schemes of combustion on the basis of results of theoretical and experimental researches in designs of solid propellant heat generators are resulted. The paper proposes a constructive scheme of a small-capacity heat generator with a combined technology of two-chamber solid fuel combustion, in which a layered (or shaft-layered) combustion process with combustion in volume is combined: in the primary combustion chamber above the burning fuel layer on the grate, and in the secondary cyclone chamber (or cameras). Due to the vortex motion in the lined secondary chamber of high-temperature gases containing solid particles carried by the flow from the combustion zone of the primary chamber, there is both afterburning of combustible substances and separation of ash particles with their discharge into the ash generator. This combustion technology also allows increasing the forcing of the combustion layer on the grate, increasing the stability of the process and reducing the dimensions of the structure. Improving the efficiency of a solid fuel heat generator with a two-chamber furnace is achieved by reducing heat loss with mechanical incomplete combustion of carbon particles in the exhaust gases, as well as reducing the concentration of ash particles in the gas stream at the inlet of convective heat exchange surfaces and increase their thermal efficiency. This is confirmed by the calculated dependences of the efficiency of the mechanized solid fuel heat generator under different technological schemes of solid fuel combustion
提高了层内固体燃料的燃烧效率
分析了提高固体燃料热发生器效率的主要方向。值得注意的是,在发热装置的工业设计中,根据其类别,固体燃料燃烧的技术方案在不同程度上应用于资本和操作费用。最昂贵的是在燃烧过程的所有阶段都采用复杂机械化的热发生器中燃烧预先准备好的优质燃料的技术,这种技术提供了很高的热学和环境性能。廉价的燃烧技术普遍存在,根据这种技术,燃烧区的设计和模式参数与燃烧燃料的热物理特性(包括低品位)的合理比例,可以实现热发生器的规范性能。在固体推进剂热发生器设计的理论和实验研究成果的基础上,给出了这些燃烧技术方案的实现实例。本文提出了一种双室固体燃料燃烧组合技术的小容量热发生器的构建方案,该方案将分层(或轴分层)燃烧过程与体积燃烧相结合:在炉排上燃烧燃料层以上的一次燃烧室和在二次旋风室(或照相机)中。由于含有固体颗粒的高温气体从一次燃烧室的燃烧区流过后,在内衬二次燃烧室中产生涡流运动,既发生可燃物的加力燃烧,又发生灰颗粒的分离并排放到灰发生器中。这种燃烧技术还允许增加燃烧层对炉排的作用力,增加过程的稳定性并减小结构的尺寸。通过减少废气中碳颗粒机械不完全燃烧的热损失,以及降低对流换热面入口气流中灰颗粒的浓度,提高其热效率来提高双室炉固体燃料热发生器的效率。通过计算不同固体燃料燃烧工艺方案下机械化固体燃料热发生器效率的依赖关系,证实了这一点
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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