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Physics-based modeling of simultaneous heat and mass transfer intensification during vacuum steaming processes of starchy material

机译:基于物理的淀粉材料真空蒸煮过程中同时传热和传质强化的建模

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摘要

Simultaneous heat and mass transfers in reactive porous media such as starchy material are important phenomena, which occur during hydrothermal processes. The driving force in this type of material is not governed only by the moisture potential gradient (non-equilibrium condensation rate) but also by a hydric need required to change phase (melting). In this paper we compared in simulation two processes at the temperature of 120 °C. The first one is named the RP-HMT process for Reduced Pressurized-Heat Moisture Treatment. The second is the DV-HMT process for Direct Vapor-Heat Moisture Treatment. In the first process transfer phenomena are amplified due to the presence of an initial vacuum before injection of live steam into the reactor. A model of the processes is implemented and solved using COMSOL multiphysics software. We observed that heat transfer intensification during RP-HMT reduces the resistance of air, and consequently facilitates the diffusion of steam into the product. The computed values confirm those obtained experimentally. A study of the model sensibility to the parameters was investigated. The simulation results show also that the influences of the estimated parameters strongly depend on the hydrothermal processes. They are more important for the RP-HMT than for the DV-HMT.
机译:在反应性多孔介质(例如淀粉质材料)中同时进行传热和传质是重要的现象,发生在水热过程中。这种材料的驱动力不仅受水分势梯度(非平衡缩合速率)的控制,而且还受改变相(熔融)所需的水力需求的控制。在本文中,我们在仿真中比较了120°C温度下的两个过程。第一个被称为RP-HMT工艺,用于减少加压热湿处理。第二个是直接蒸气湿气处理的DV-HMT工艺。在第一过程中,由于在将新鲜蒸汽注入反应器之前存在初始真空,转移现象被放大。使用COMSOL Multiphysics软件实现并解决了过程模型。我们观察到,RP-HMT期间的传热强化降低了空气阻力,因此有利于蒸汽扩散到产品中。计算值证实了通过实验获得的值。对模型对参数的敏感性进行了研究。仿真结果还表明,估计参数的影响很大程度上取决于水热过程。对于RP-HMT,它们比DV-HMT更重要。

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