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High Sensitive Fluxgate Sensor using new processing method to detect the output signal from the excitation coil

机译:高灵敏度磁通门传感器采用新的处理方法来检测励磁线圈的输出信号

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The typical low-noise fluxgate magnetometer consists of an excitation and a sensing coil. To achieve a high sensitivity of the fluxgate, the sensing coil is wound with several thousand number of turns. It decreases the working frequency and makes the design more complex. The special sensor's design as a single coil solution has a significant effect on its functionality. The absence of a sensing winding, which is present in a classical fluxgate sensor, makes it possible to simplify the requirements for input signals, reduce thermal noises of the sensor, and reduce its geometric dimensions. The measurement of the signal is performed directly on the excitation coil. When the magnetometer's core is saturated, a voltage difference appears in the coil in proportion to the applied external magnetic field. Connected to the excitation coil a differential amplifier measures the difference between the currents flowing through the winding. Accordingly, the output signal of the differential amplifier reflects the process of changing the differences of the magnetic fields appearing in the core. The proposed method allowed increasing the sensitivity of the sensor several times. It made possible to measure the magnetic fields in the range 10(exp -10) - 10(exp -11) T.
机译:典型的低噪声磁通门磁力计由励磁和感应线圈组成。为了实现磁通门的高灵敏度,感应线圈要绕几千匝。它降低了工作频率,并使设计更加复杂。特殊传感器的单线圈解决方案设计对其功能具有重大影响。传统的磁通门传感器中不存在感测绕组,因此可以简化对输入信号的要求,减少传感器的热噪声,并减小其几何尺寸。信号的测量直接在励磁线圈上进行。当磁力计的磁芯饱和时,线圈中会出现与所施加的外部磁场成比例的电压差。连接到励磁线圈的差分放大器测量流经绕组的电流之差。因此,差分放大器的输出信号反映了改变芯中出现的磁场的差异的过程。所提出的方法允许多次提高传感器的灵敏度。可以测量10(exp -10)-10(exp -11)T范围内的磁场。

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