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Adaptation and Optimization of Planar Coils for a More Accurate and Far-Reaching Magnetic Field-Based Localization in the Near Field

机译:平面线圈的适应与优化近场更准确,深远磁场的定位

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In this publication, further elements of the newly developed inductive localization in the near field are presented. The advantage of inductive localization is the usage of the magnetic fields, which have a very low influence of non-metallic materials in the environment and thus follows good applications in the area of medicine and biochemistry. This allows a precise localization of sensor platforms in inhomogeneous mixtures of materials, where classical methods have major problems with inhomogeneous dielectric conductivity or density. The calculation of the localization of the searched object differs from other methods such as ultrasound or electromagnetic waves due to the source-free propagation of the magnetic field. Therefore, new mathematical evaluation methods and systematic adaptations are necessary, which are presented in this paper in circuit analysis. For this purpose, the exact circuit influences of one coil and the influence of another coil are investigated and which resonance circuit should be selected for both coils for a inductive localization with optimized signal strength.
机译:在本出版物中,介绍了近场的新开发的归纳定位的进一步元素。感应定位的优点是磁场的使用,其对环境中的非金属材料具有非常低的影响,从而遵循医学领域和生物化学领域的良好应用。这允许在材料的不均匀混合物中精确定位传感器平台,经典方法具有非均匀介电导率或密度的主要问题。由于磁场的无源极传播,搜索对象的定位的计算与诸如超声波或电磁波的其他方法不同。因此,需要新的数学评估方法和系统的适应,这是在电路分析中介绍的。为此目的,研究了一个线圈的确切电路和另一个线圈的影响,并且应该选择具有优化信号强度的电感定位的线圈的谐振电路。

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