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Effect of fuel properties on biomass combustion. Part II. Modelling approach-identification of the controlling factors

机译:燃料性质对生物质燃烧的影响。第二部分控制因素的建模方法识别

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Biomass fuels come from many varieties of sources resulting in a wide range of physical and chemical properties. In this work, mathematical models of a packed bed system were employed to simulate the effects of four fuel properties on the burning characteristics in terms of burning rate, combustion stoichiometry. flue gas composition and solid-phase temperature. Numerical calculations were carried out and results were compared with measurements wherever possible. It was found that burning rate is mostly influenced by fuel size and smaller fuels result in higher combustion rate due to increased reacting surface area and enhanced gas-phase mixing in the bed; combustion stoichiometry is equally influenced by fuel LCV and size as a consequence of variation in burning rate as well as the mass ratio of combustible elements to the oxygen in the fuel; for the solid-phase temperature, material density has the strongest influence and a denser material has a higher maximum bed temperature as it results in a less fuel-rich combustion condition; while CO concentration in the flue gases is mostly affected by both fuel calorific value and size, CH_4 in the exiting flow is greatly affected by material density due to change in reaction zone thickness.
机译:生物质燃料来自多种来源,因此具有广泛的物理和化学特性。在这项工作中,采用填充床系统的数学模型来模拟四种燃料特性对燃烧特性的影响,包括燃烧速率,燃烧化学计量。烟气成分和固相温度。进行了数值计算,并在可能的情况下将结果与测量结果进行了比较。发现燃烧速率主要受燃料尺寸的影响,较小的燃料由于反应表面积的增加和床层中气相混合的增强而导致较高的燃烧速率。由于燃烧速率的变化以及燃料中可燃元素与氧气的质量比变化,燃烧化学计量学同样受到燃料LCV和尺寸的影响;对于固相温度,材料密度的影响最大,而密度较大的材料的最高床层温度则较高,因为这会导致燃料稀少的燃烧状态。尽管烟道气中的CO浓度主要受燃料热值和尺寸的影响,但由于反应区厚度的变化,出口流中的CH_4受材料密度的影响很大。

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