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The effect of geometrical modifications on the performance of co-linear chambers for non-thermal radio frequency electric fields processing: A numerical study with experimental validation

机译:几何修改对非热射频电场处理的共线腔室性能的影响:实验验证的数值研究

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The effect of modifying the geometrical configuration of a co-linear chamber to improve its performance and to increase the microbial inactivation was investigated numerically and validated experimentally. In non-thermal radio frequency electric fields (RFEF) processing, co-linear chambers exhibit low tendency to dielectric breakdown and arcing, especially in liquid food products with high electrical conductivities, but they show low energy efficiency and poor uniformity of processing conditions. Accordingly, a standard co-linear chamber (C1) with 1 mm of length and 3 mm of diameter was selected. The chamber included a gap between the end of electrodes and the treatment zone, as well as a diameter contraction at that zone. The geometry of the standard co-linear chamber was modified by removing the recirculation/stagnation zones adding stainless steel tubes (C2), as well as through the additional insertion of stainless steel mesh to contain the electric field within the treatment zone (C3). These configurations were evaluated numerically using COMSOL Multiphysics modelling. The model was validated by comparing experimental measurements of outlet temperature and power consumption with the model predictions. The numerical study showed that C3 exhibited a more uniformly distributed electric field and temperature profiles as well as higher velocities and turbulent kinetic energy that were also more evenly distributed within the treatment zone, compared to other configurations. In experimental studies, C3 achieved the highest microbial inactivation at constant values of peak voltage, electric field strength, and energy levels. Furthermore, C3 showed the most energy efficiency among the three geometrical configurations.
机译:改变协调腔室的几何构型以改善其性能和增加微生物灭活的效果进行了实验研究并验证了微生物灭活。在非热射频电场(RFEF)处理中,共线腔室具有较低的介电击穿和电弧倾向,特别是在具有高电导率的液体食品中,但它们显示出低能量效率和加工条件差的均匀性差。因此,选择了具有1mm长度和直径为3mm的标准的连接线性室(C1)。腔室包括电极末端和处理区之间的间隙,以及该区域的直径收缩。通过去除添加不锈钢管(C2)的再循环/停滞区域来改变标准连接区域的几何形状,以及通过不锈钢网的附加插入含有在处理区内的电场(C3)。使用COMSOL Multiphysics建模进行数值评估这些配置。通过将出口温度和功耗与模型预测进行比较,验证了模型。数值研究表明,与其他配置相比,C3表现出更均匀的分布电场和温度曲线以及更高的速度和湍流动能,其在处理区内也更均匀地分布。在实验研究中,C3在峰值电压,电场强度和能级的恒定值下实现了最高的微生物失活。此外,C3在三种几何配置中显示了最多的能量效率。

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