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Inspection and analysis of the walls of fluid filled tubes by activeelectrolocation - a biomimetic approach

机译:活性电能定位液体填充管壁的检查和分析 - 一种仿生方法

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During their nocturnal activity period, weakly electric fish employ a process called "active electrolocation" for navigation and object detection. They discharge an electric organ in their tail, which emits electrical current pulses, called electric organ discharges (EOD). Local EODs are sensed by arrays of electroreceptors in the fish's skin, which respond to modulations of the signal caused by nearby objects. Fish thus gain information about the size, shape, complex impedance and distance of objects. Inspired by these remarkable capabilities, we have designed technical sensor systems which employ active electrolocation to detect and analyse the walls of small, fluid filled pipes. Our sensor systems emit pulsed electrical signals into the conducting medium and simultaneously sense local current densities with an array of electrodes. Sensors can be designed which (i) analyse the tube wall, (ii) detect and localize material faults, (iii) identify wall inclusions or objects blocking the tube (iv) and find leakages. Here, we present first experiments and FEM simulations on the optimal sensor arrangement for different types of sensor systems and different types of tubes. In addition, different methods for sensor read-out and signal processing are compared. Our biomimetic sensor systems promise to be relatively insensitive to environmental disturbances such as heat, pressure, turbidity or muddiness. They could be used in a wide range of tubes and pipes including water pipes, hydraulic systems, and biological systems. Medical applications include catheter based sensors which inspect blood vessels, urethras and similar ducts in the human body.
机译:在夜间活动期间,弱电鱼采用一个名为“主动电控”的过程,用于导航和对象检测。它们在其尾部排出电风琴,其发出电流脉冲,称为电子器官排放(EOD)。通过鱼皮肤的电动仪阵列感测局部eod,其响应由附近物体引起的信号的调制。因此,鱼获得有关尺寸,形状,复杂阻抗和物体距离的信息。灵感来自这些显着的能力,我们设计了设计技术传感器系统,采用主动电控,检测和分析小型填充管道的墙壁。我们的传感器系统将脉冲电信号发射到导电介质中,同时使用电极阵列感测局部电流密度。传感器可以设计(i)(i)分析管壁,(ii)检测和定位材料故障,(iii)识别阻挡管(iv)的壁夹杂物或物体并找到泄漏。在这里,我们对不同类型的传感器系统和不同类型的管的最佳传感器布置提供了第一个实验和有限元模拟。此外,比较了传感器读出和信号处理的不同方法。我们的仿生传感器系统承诺对环境干扰相对不敏感,例如热,压力,浊度或浊度。它们可用于各种管道和管道,包括水管,液压系统和生物系统。医疗应用包括基于导管的传感器,其检查人体中的血管,尿道和类似管道。

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