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A STUDY OF THE POSSIBILITY OF USING 3D MODELLING AND 3D PRINTING FOR ELECTRICAL CAPACITANCE TOMOGRAPHY SENSOR

机译:电容层析成像传感器使用3D建模和3D打印的可能性的研究

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Nowadays, the optimization of energy consumption and resources is one of the most urgent topics in worldwide industry. The energy consumption monitoring and control in various multiphase flow industrial applications, where a proper flow characteristic and an optimal phase mixture control is crucial, is hard to perform due to the physical and chemical complexity of the processes. The Electrical Capacitance Tomography (ECT) is one of the relatively cheap non-invasive measurement methods that can help in the monitoring and control of optimal energy and resources dozing in industrial processes. ECT diagnostics systems use unique sensors that can non-intrusively detect spatial capacitance changes caused by spatial changes in the electrical permittivity of industrial process components. One of the latest ECT extensions is a three-dimensional measurement strategy that uses a multilayer structure of the capacitance sensor. In this paper, the authors propose a novel approach to the 3D ECT sensors fabrication process that uses 3D computer modelling and 3D printing to easily get any sensor shape, electrode layout, scale and shielding strategy. This study compares the measurement abilities of a 3D ECT sensor fabricated using a traditional hand-made technique with the 3D printed device. The results have proven the potential of the new 3D print-based sensor regarding its significant fabrication time reduction as well as the improvement of the overall 3D ECT sensor measurement accuracy and stability.
机译:如今,能源消耗和资源的优化是全球工业中最紧迫的主题之一。由于过程的物理和化学复杂性,在各种多相流工业应用中,对能量的监测和控制非常困难,在这些应用中,适当的流动特性和最佳的相混合物控制至关重要。电容层析成像(ECT)是相对便宜的非侵入式测量方法之一,可以帮助监视和控制工业过程中最佳的能量和资源推土。 ECT诊断系统使用独特的传感器,该传感器可以非侵入式检测由工业过程组件的介电常数的空间变化引起的空间电容变化。 ECT的最新扩展之一是使用电容传感器的多层结构的三维测量策略。在本文中,作者提出了一种3D ECT传感器制造过程的新颖方法,该方法使用3D计算机建模和3D打印来轻松获得任何传感器形状,电极布局,规模和屏蔽策略。这项研究将使用传统的手工技术制造的3D ECT传感器与3D打印设备的测量能力进行了比较。结果证明了新的基于3D打印的传感器在减少制造时间以及提高整体3D ECT传感器测量精度和稳定性方面的潜力。

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