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Effects of gas absorption with chemical dissociation reaction on single slurry droplet drying

机译:用化学解离反应对单浆液液滴干燥的影响气体吸收的影响

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A theoretical model of the absorption of soluble gases during the first stage of slurry droplet drying, at or below room temperature and at atmospheric pressure, is suggested as a basis for the development of alternative drying methods. The suggested approach is based on the theory of slurry droplet evaporation, in conjunction with a model of chemical absorption by evaporating droplets. Slurry droplet evaporation is described by a system of transient conjugate nonlinear energy and mass conservation equations. Numerical calculations are performed for a slurry droplet evaporating in various gaseous mixtures, including a gaseous mixture containing soluble gases. It is shown that the effect of gas absorption is a significant enhancement in the rate of evaporation of a slurry droplet, with higher concentrations of soluble gas in the gas phase leading to a shorter first stage of drying. In particular, in a ternary gaseous mixture (N-2/NH3/H2O) with an ammonia mass fraction of 0.5 and at 288 K, the evaporation time of a coal-water slurry droplet with an initial radius of 100 was about 20% shorter than that in a mixture free of soluble gases. The existence of a maximum in the temporal dependence of the interfacial temperature of the droplet during evaporation is also revealed. This maximum becomes more pronounced with increasing ambient concentration of the absorbate. Calculations show that relative humidity exerts a minor influence on the dynamics of gas absorption by liquid droplets. By contrast, relative humidity strongly affects the rate of evaporation of slurry droplets. The model for slurry droplet evaporation in the presence of soluble gas presented herein allows for calculation of the appropriate concentration of soluble gas in the gaseous phase to achieve an optimal regime for slurry droplet drying.
机译:建议在浆料液滴干燥,或低于室温和大气压下和大气压下吸收可溶性气体的理论模型。作为开发替代干燥方法的基础。建议的方法是基于浆料液滴蒸发理论,与蒸发液滴结合化学吸收模型。通过瞬态共轭非线性能量和质量保护方程来描述浆料液滴蒸发。对在各种气态混合物中蒸发的浆液液滴进行数值计算,包括含有可溶性气体的气态混合物。结果表明,气体吸收的影响是浆液液滴蒸发速率的显着增强,气相中具有较高浓度的可溶性气体,导致较短的干燥阶段。特别地,在三元气态混合物(N-2 / NH 3 / H 2 O)中,氨质量分数为0.5和在288k,氨纶浆液液体的蒸发时间为100次为约20%较短而不是在混合物中,没有可溶性气体。还揭示了蒸发过程中液滴界面温度的时间依赖性的最大存在。随着吸收性的环境浓度增加,该最大变得更加明显。计算表明,相对湿度对液滴吸收的气体吸收动力产生了微小的影响。相比之下,相对湿度强烈影响浆液液滴的蒸发速率。本文提供的可溶性气体存在下浆液液滴蒸发模型允许计算气相中的适当浓度的可溶性气体,以实现浆料液滴干燥的最佳状态。

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