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Towards digital fundamental mode orthogonal fluxgate

机译:迈向数字基模正交磁通门

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Noise of orthogonal fluxgate in fundamental mode has been strongly reduced in the last years, making it a very competitive vectorial sensor of magnetic field at room temperature. The most important results have been achieved reducing the 1/f noise, which can reach about 1 pT/√Hz at 1 Hz. However, the noise floor is still an issue, which cannot be ignored anymore. The problem of the noise floor in fundamental mode orthogonal fluxgate became evident when sensors based on annealed wire-cores have been proposed. By annealing the wire with proper current flowing through it, the circumferential anisotropy is increased and therefore the 1/f noise reduced. However, the sensitivity is also reduced and that affects the noise floor, which is typically due to the white noise of analog demodulator. The challenge is to produce sensors with simultaneously low 1/f noise and low noise floor. For this reason we propose a transition to digital demodulation of the output voltage of the sensor. The voltage is digitized by high-speed high-resolution digitizer and the first harmonic extracted numerically. In this way we get rid of the noise of the analog demodulator. In this paper we prove that using this method we reduce the noise floor from 650 fT/√Hz to 400 fT/√Hz, a value which could never be achieved with analog demodulator, without increasing the 1/f noise. Moreover, we show how a digital demodulation allows us to efficiently compensate the noise in the output of the sensors due to excitation current. This result is achieved by simultaneous sampling of the excitation current and applying an algorithm based on its correlation to the output voltage of the sensor.
机译:近年来,正交模式下正交磁通门的噪声已大大降低,使其成为室温下具有竞争力的矢量磁场传感器。已经获得了最重要的结果,即降低了1 / f噪声,该噪声在1 Hz时可以达到约1 pT /√Hz。但是,本底噪声仍然是一个问题,不能再忽略了。当提出基于退火线芯的传感器时,基本模式正交磁通门中的本底噪声问题变得很明显。通过用适当的电流对导线进行退火,可以增加周向各向异性,从而降低1 / f噪声。但是,灵敏度也会降低,并且会影响本底噪声,这通常是由于模拟解调器的白噪声引起的。挑战在于生产同时具有低1 / f噪声和低本底噪声的传感器。因此,我们建议过渡到传感器输出电压的数字解调。电压由高速高分辨率数字化仪数字化,并以数字方式提取一次谐波。这样,我们摆脱了模拟解调器的噪声。在本文中,我们证明了使用这种方法可以将本底噪声从650 fT /√Hz降低到400 fT /√Hz,而在不增加1 / f噪声的情况下,该值是模拟解调器无法实现的。此外,我们展示了数字解调如何使我们能够有效补偿由于激励电流而导致的传感器输出中的噪声。通过同时采样激励电流并基于其与传感器输出电压的相关性应用算法来获得此结果。

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