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Millimeter-resolution E-field probe for isotropic measurement in lossy media between 100 MHz and 20 GHz

机译:毫米分辨率的电场探头,用于在100 MHz至20 GHz之间的有损耗介质中进行各向同性测量

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Currently, most advanced isotropic E-field probes for near-field measurements in lossy dielectric media have a tip diameter of typically 4-6 mm, housing three 2-3 mm long sensors. Although these probes are very well suited for many applications, their general use is constrained by several limitations: (1) upper frequency range of >4 GHz in tissue simulating liquids, (2) spatial resolution of a few millimeters, 3() unsuitable for measurements closer than 3-5 mm from any media boundary (boundary effects); and therefore (4) inapplicable for assessment of the induced field strengths in structures of a few millimeters. On the other hand, many current and future research projects require evaluation of the field distributions for frequencies larger than a few gigahertz, for measurements within small structures (e.g., in in vitro and in vivo experiments), for evaluations of special physical interactions such as strongly nonhomogeneous field distributions or characterization of larger probes, etc. A new probe has been developed which is applicable for frequencies well above 10 GHz in tissue-like media and provides a spatial resolution of at least 1 mm. Although it is a one sensor probe, it has been designed such that the isotropic measurement (spherical isotropy: >0.2 dB) can be obtained simply by taking three measurements each shifted by 1200 rotation around the probe's axis. The probe has been fully characterized and tested in various applications.
机译:当前,用于有损介电介质中近场测量的最先进的各向同性电场探头的尖端直径通常为4-6 mm,可容纳三个2-3 mm长的传感器。尽管这些探头非常适合许多应用,但它们的一般使用受到一些限制的限制:(1)组织模拟液体中的较高频率范围> 4 GHz;(2)几毫米的空间分辨率; 3()不适合与任何介质边界的距离小于3-5 mm的测量(边界效应);因此(4)不适用于评估几毫米结构中的感应场强度。另一方面,许多当前和未来的研究项目都需要对大于几千兆赫兹的频率的场分布进行评估,以便在较小的结构内进行测量(例如,体外和体内实验),以及评估特殊的物理相互作用,例如强烈的非均匀场分布或较大探针的特性等。已开发出一种新探针,适用于组织状介质中远高于10 GHz的频率,并提供至少1 mm的空间分辨率。尽管它是一个传感器探头,但它的设计使得可以通过简单地进行三个测量而获得各向同性的测量值(球面各向同性:> 0.2 dB),每个测量值绕探头轴旋转1200圈。该探头已经过全面表征,并已在各种应用中进行了测试。

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