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In-situ ultrasonic imaging of dynamic process streams : system calibration and image processing

机译:动态过程流的原位超声成像:系统校准和图像处理

摘要

Ultrasonic imaging is a well-established technology that provides a safe method for imaging into optically opaque structures. These images can be generated by mechanically scanning a single transducer element, using tomography or by using a multiple-element transducer array, where the latter provides the most focussed images due to the precise positioning of the transmitting and receiving elements. An ultrasonic array comprises a number of individually addressable active piezoelectric elements and is controlled by a Phased Array Controller instrument to manipulate the ultrasonic pressure field within the load medium. Such arrays are typically used for sonar, medical diagnosis and non-destructive evaluation, however they have not yet been applied in the field of industrial process analysis. This paper aims to highlight how ultrasonic transducer arrays can be used to acquire in-situ images of dynamic process streams and how these images can provide valuable spatial information about the process, such as particle size distribution. The impact of this means that visualisation of a process stream will no-longer be limited to those systems that are optically transparent, therefore creating a greater breadth of spatial measurements within process analysis. This paper will be divided into two parts: image acquisition optimisation and image processing. The first part will outline the method used to determine the optimum number of array elements (active aperture) within the transducer array to acquire stable images of a dynamic system. For this work, the size of the active aperture will range from 16 to 128 elements, corresponding to an image region width of 11 to 90 mm. However, larger images require a longer data acquisition time and therefore produce a poorer image resolution when the target is dynamic in nature. The second part will show how relevant information about the process can be extracted from these ultrasonic images and how these measurements can be calibrated using a static system. The conclusion of this paper will discuss how an array ultrasonic image acquisition and processing system has the potential to become a new class of process analytical technology.
机译:超声波成像是一项行之有效的技术,它提供了一种用于成像为光学不透明结构的安全方法。这些图像可以通过使用X线断层扫描术或通过使用多元素换能器阵列机械扫描单个换能器元件来生成,其中多元素换能器阵列由于发射和接收元件的精确定位而提供了聚焦最多的图像。超声阵列包括多个可单独寻址的有源压电元件,并由相控阵控制器仪器控制,以控制负载介质内的超声压力场。这种阵列通常用于声纳,医学诊断和非破坏性评估,但是它们尚未应用于工业过程分析领域。本文旨在重点介绍如何使用超声换能器阵列获取动态过程流的原位图像,以及这些图像如何提供有关过程的有价值的空间信息,例如粒度分布。这样的影响意味着过程流的可视化将不再局限于光学透明的系统,从而在过程分析中创建更大的空间测量范围。本文将分为两部分:图像采集优化和图像处理。第一部分将概述用于确定换能器阵列中最佳数量的阵列元件(活动孔径)以获取动态系统稳定图像的方法。对于此工作,有效孔径的大小将在16到128个元素的范围内,对应于11到90 mm的图像区域宽度。但是,较大的图像需要较长的数据采集时间,因此,当目标本质上是动态的时,图像分辨率会下降。第二部分将展示如何从这些超声图像中提取有关过程的相关信息,以及如何使用静态系统校准这些测量结果。本文的结论将讨论阵列超声图像采集和处理系统如何有潜力成为一类新的过程分析技术。

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