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Modeling, simulation and machine learning for rapid process control of multiphase flowing foods

机译:多相流动食品快速过程控制的建模,仿真与机器学习

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Across many modern industries, as technologies have matured, the use of more complex processes involving multiphase materials has increased. In the food industry, multiphase fluids are now relatively wide-spread, in particular, because of the desire to have faster throughput for large-scale food production. In many cases involving transport, such materials consist of a fluidized binder material with embedded particles. As one increases the volume fraction of particles, a corresponding increase in effective overall viscosity occurs. Often, during the process, the material must be heated, for example, to ensure food safety, induce pasteurization, sterilization, etc. For real-time control, this requires rapidly computable models to guide thermal processing, for example by applied electrical induction. In the present analysis, models are developed for the required heating field (electrically induced) and pressure gradient needed in a pipe to heat a multiphase material to a target temperature and to transport the material with a prescribed flow rate. (C) 2020 Elsevier B.V. All rights reserved.
机译:在许多现代行业,随着技术的成熟,使用涉及多相材料的更复杂的方法增加了。在食品工业中,多相液体现在相对较宽,特别是因为希望具有更快的吞吐量吞吐量的吞吐量。在许多涉及运输的情况下,这种材料由具有嵌入颗粒的流化粘合剂材料组成。随着颗粒的体积分数增加,发生有效整体粘度的相应增加。通常,在该过程中,必须加热材料,例如,以确保食品安全,诱导巴氏灭菌,灭菌等进行实时控制,这需要快速可计算模型来引导热处理,例如通过应用的电气感应。在本分析中,为管道中所需的加热场(电感应)和压力梯度开发模型,以将多相材料加热到目标温度并以规定的流速将材料运送。 (c)2020 Elsevier B.v.保留所有权利。

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