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Minimalistic Devices and Sensors for Micromagnetic Materials Characterization

机译:用于微磁材料表征的简约设备和传感器

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Micromagnetic materials characterization requires sensors which essentially consist of two critical elements: an electromagnet which introduces a well-defined magnetic field to the material, and a sensor system which detects the material's response to the applied magnetic field. The devices developed at Fraunhofer IZFP obtain a multiparametric “magnetic fingerprint” with these sensors by means of several methods. The magnetic fingerprints of calibration samples are used as input for pattern recognition or regression analysis, thus allowing the prediction of mechanical-technological material characteristics (hardness, yield strength, etc.) or residual stress. This approach is called micromagnetic multiparameter microstructure and stress analysis (3MA). The long-term stability and reproducibility of the sensor and device characteristics are crucial for the reliability of the measured results. Therefore, the measuring hardware should follow a minimalistic approach. In this paper, we propose a way of simplifying the measuring hardware by multiple use of sensor elements, reducing the analog signal processing chain and transferring most signal processing tasks to the PC.
机译:微磁性材料的表征需要传感器,该传感器主要由两个关键元素组成:一个将明确定义的磁场引入材料的电磁体,以及一个检测系统对材料施加的磁场响应的传感器系统。 Fraunhofer IZFP开发的设备可以通过多种方法使用这些传感器获得多参数“磁性指纹”。校准样品的磁性指纹用作模式识别或回归分析的输入,因此可以预测机械技术材料的特性(硬度,屈服强度等)或残余应力。这种方法称为微磁多参数微结构和应力分析(3MA)。传感器和设备特性的长期稳定性和可重复性对于测量结果的可靠性至关重要。因此,测量硬件应遵循简约的方法。在本文中,我们提出了一种通过多次使用传感器元件来简化测量硬件,减少模拟信号处理链并将大多数信号处理任务转移到PC的方法。

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