智能接近传感器

S. Mukherjee
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引用次数: 1

摘要

提出了一种基于射频的智能接近传感器,用于物体的检测和识别。一个共振结构被构建,它产生了一个与被探测和识别物体的物理尺寸相同数量级的三维近场。当物体被带入近场范围时,电场和磁场会发生重新分布,从而改变通过端口监测的谐振结构的反射系数(即阻抗)。被测对象具有自己的固有频率,扰动监测结构的谐振频率,以产生一组独特的固有频率(极点和零)。根据尺寸、形状、材料成分和方向的不同,这些极点和零点构成了物体的射频特征,可以通过测量反射系数来确定。该技术可用于创建自动库存的智能货架,而无需标记,也可用于各种安全应用程序。该技术可用于金属和非金属物体,以及用于它们的组合。用电磁仿真的方法说明了该原理的基本原理,并给出了利用该原理实现智能托盘的方法。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Intelligent Proximity Sensors
Radio-frequency based Intelligent Proximity Sensors for detection as well as identification of objects is presented. A resonant structure is constructed that creates a near-field with three-dimensional extent in the same order of magnitude as the physical size of the objects to be detected and identified. As an object is brought within the extent of the near-field, a redistribution of electric and magnetic fields take place, modifying the reflection coefficient (i.e. impedance) of the resonant structure monitored through a port. The object under test, with its own natural frequencies, perturbs the resonant frequency of the monitoring structure to create a unique set of natural frequencies (poles and zeros). These poles and zeros, depending on the size, shape, material composition and orientation, constitute the RF signature of the object and can be determined from the measurement of reflection coefficient. This technique can be used to create smart shelves for automated inventory without the need for tagging, as well for a variety of security applications. The technique can be used for metallic and non-metallic objects, as well as for a combination thereof. The basic principle is illustrated by way of electromagnetic simulation, and implementation of a smart tray using the principle is presented.
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