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Integrated Current Sensor using Giant Magneto Resistive (GMR) Field Detector for Planar Power Module

机译:用于平面电源模块的巨型磁电阻(GMR)现场检测器的集成电流传感器

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A planar power module was developed, and a gate-driver circuit with an over-current protection was planned to integrate into the module. After reviewing several current-sensing methods, the giant-magneto-resistive (GMR) sensor was chosen as a current-sensing method. However, there were several factors that hindered accurate measurement. The high junction temperature of the power dice gave high influence to the operating temperature of the GMR sensor, and the magnetic-flux distribution seen by the GMR sensor was also non-uniform due to skin effect. The temperature response of the GMR sensor was analyzed by experiments, and the GMR sensor showed about 3.45% errors when it sensed 80 Adc and the operating temperature changed by 60°C. To further improve the measurement capability over wide range of operating temperature, an active temperature-compensation method is described. The optimal position of the GMR sensor was found based on FEA simulation as the midpoint of two current paths. At that location, the GMR sensor could consistently sense both current excitations. A test module was fabricated, and preliminary measurement result showed excessive noise that had to be filtered out for accurate measurement. A signal-conditioning circuit was designed using an instrumentation amplifier, and the current measurement between the GMR sensor and a high-bandwidth current probe showed consistent result. The current sensor with signal-conditioning circuit was integrated into the gate-driver circuit, and the concept was verified by experiments.
机译:开发了平面电源模块,并计划具有过电流保护的栅极驱动器电路集成到模块中。在审查几种电流传感方法之后,选择巨型电阻(GMR)传感器作为电流传感方法。但是,有几个因素可阻碍准确测量。功率骰子的高结温对GMR传感器的操作温度产生了很高的影响,并且由于皮肤效果,GMR传感器的磁通量分布也是不均匀的。通过实验分析GMR传感器的温度响应,当感测到80 ADC时,GMR传感器显示约3.45%的误差,并且工作温度变为60°C。为了进一步提高在宽范围的工作温度范围内的测量能力,描述了一种有源温度补偿方法。基于FEA仿真,找到了GMR传感器的最佳位置作为两个电流路径的中点。在该位置,GMR传感器可以始终如一地感知当前的激励。制造测试模块,并且初步测量结果显示出噪声的过度噪声必须滤除,以便精确测量。使用仪表放大器设计信号调节电路,MGR传感器和高带宽电流探头之间的电流测量显示一致的结果。具有信号调节电路的电流传感器集成到栅极 - 驱动器电路中,并且通过实验验证该概念。

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