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A multi-sensor approach for fouling level assessment in clean-in-place processes

机译:一种多传感器方法,用于清洁过程中的结垢水平评估

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Clean-in-place systems are largely used in food industry for cleaning interior surfaces of equipment without disassembly. These processes currently utilise an excessive amount of resources and time, as they are based on an open loop (no feedback) control philosophy with process control dependent on conservative over estimation assumptions. This paper proposes a multi-sensor approach including a vision and acoustic system for clean-in-place monitoring, endowed with ultraviolet optical fluorescence imaging and ultrasonic acoustic sensors aimed at assessing fouling thickness within inner surfaces of vessels and pipeworks. An experimental campaign of Clean-in-place tests was carried out at laboratory scale using chocolate spread as fouling agent. During the tests digital images and ultrasonic signal specimens were acquired and processed extracting relevant features from both sensing units. These features are then inputted to an intelligent decision making support tool for the real-time assessment of fouling thickness within the clean-in-place system.
机译:干净的系统主要用于食品工业,用于清洁设备的内部表面而无需拆卸。这些过程目前利用过多的资源和时间,因为它们基于依赖于保守估计假设的过程控制的开放环路(无反馈)控制哲学。本文提出了一种多传感器方法,包括用于清理后监测的视觉和声学系统,赋予紫外光荧光成像和超声波声传感器,其旨在评估容器和管道内表面内的污垢厚度。使用巧克力作为污垢剂的实验室规模进行了清洁测试的实验运动。在测试期间,获得数字图像和超声信号样本,从两个传感单元中提取相关特征。然后将这些功能输入到智能决策,用于实时评估清理系统内的污垢厚度的实时评估。

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