Numerical Modeling of Thermochemical Conversion of Biomass and Tires as Fuels for Cement Clinker Production

IF 4.6 Q2 GREEN & SUSTAINABLE SCIENCE & TECHNOLOGY Recycling Pub Date : 2023-04-06 DOI:10.3390/recycling8020041
B.-J. R. Mungyeko Bisulandu, F. Marias
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Abstract

This article presents the numerical modeling of the thermochemical conversion of biomass and tires as alternative fuels in kilns dedicated to the production of cement. The study seeks to understand and control the phenomena that occur when heavy fuel oil (traditional fuel) is partially replaced by biomass and tires. These are thoroughly mixed with meal at the entrance to the rotary kiln and form the bed of solids. The mathematical model developed takes into account both chemical reactions of meal and alternative fuels. At the entrance, the meal is made up of species such as CaCO3, MgCO3, Al2O3, SiO2, Fe2O3, MgO, CaO, C2S, C3A, C4AF and C3S, some of which form along the kiln. The article focuses specifically on the influence of alternative fuels on the clinker or cement obtained. The properties (moisture, organic matter, composition, energy value, etc.) of the biomass and the tires, which are associated with the operating parameters of the kiln, greatly influence the production of clinker. In order to understand and control the behavior of each material and the operating parameters in the clinker (cement) production process, the mathematical model follows the evolution of each species and parameters step-by-step, until the clinker is obtained. The effect of alternative fuels on clinker production was found for the kiln’s operational parameters, the dynamic angle of the bed (30°), the angle of inclination of the kiln (2°), rotation (2 rpm), the length and the inside diameter, respectively (80 m) and (4 m); the chemical and physical properties (humidity, organic, inorganic matter, C, H, O, N, S, Cl); the lower calorific value, raw material); and the numerical parameters (spatial discretization 30 and 120). Despite the high energy content of tire fuels, the results of the use of biomass give better characteristics of clinker/cement (52.36% C3S and 3.83% CaO).The results found show that biomass pyrolysis is endothermic, with the heat of reaction found to be ∆rHpyro=184.9 kJ/kg, whereas for tires, a heat of reaction of ∆rHpyro=−1296.3 kJ/kg was found, showing that the pyrolysis of this material is exothermic. Char production is higher in the case of tires than in the case of biomass, with rates of 0.261 kg/kgOrg.Mat. and 0.196 kg/kgOrg.Mat., respectively. In both cases, waste conversion was complete (100%). The cement obtained in the different cases meets the requirements of Portland cements (73.06% silicates and 18.76% aluminates), the conversion of alternative fuels is complete (100%), and the specific energy consumption is almost consistent with values from the literature.
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生物质和轮胎作为水泥熟料燃料的热化学转化数值模拟
本文介绍了生物质和轮胎作为替代燃料在专门用于生产水泥的窑炉中的热化学转化的数值模拟。这项研究旨在了解和控制当重质燃料油(传统燃料)部分被生物质和轮胎取代时发生的现象。这些在回转窑入口处与粗粉彻底混合,形成固体床。所建立的数学模型同时考虑了燃料和替代燃料的化学反应。在入口处,粗料由CaCO3、MgCO3、Al2O3、SiO2、Fe2O3、MgO、CaO、C2S、C3A、C4AF和C3S等物质组成,其中一些沿着窑沿形成。本文特别着重于替代燃料对所获得的熟料或水泥的影响。生物质和轮胎的性质(水分、有机物、成分、能量值等)与窑炉的运行参数有关,对熟料的生产有很大影响。为了了解和控制熟料(水泥)生产过程中每种材料的行为和操作参数,数学模型逐级跟踪每种物质和参数的演变,直到获得熟料。研究发现,替代燃料对熟料生产的影响主要体现在窑炉的运行参数:床层动态角度(30°)、窑炉倾斜角(2°)、转速(2转/分)、窑炉长度(80 m)和内径(4 m);化学和物理性质(湿度、有机物、无机物、C、H、O、N、S、Cl);较低的热值(原料);数值参数(空间离散化30和120)。尽管轮胎燃料的能量含量较高,但使用生物质的结果使熟料/水泥具有更好的特性(C3S为52.36%,CaO为3.83%)。结果表明,生物质热解为吸热热解,反应热为∆rHpyro=184.9 kJ/kg,而轮胎的反应热为∆rHpyro=−1296.3 kJ/kg,表明该材料为放热热解。轮胎的炭产量高于生物质,为0.261公斤/公斤。0.196 kg/kg。,分别。在这两种情况下,废物转化是完全的(100%)。不同情况下得到的水泥均满足硅酸盐水泥(硅酸盐73.06%,铝酸盐18.76%)的要求,替代燃料转化完成(100%),比能耗与文献值基本一致。
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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来源期刊
Recycling
Recycling Environmental Science-Management, Monitoring, Policy and Law
CiteScore
6.80
自引率
7.00%
发文量
84
审稿时长
11 weeks
期刊最新文献
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