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Theoretical and Practical Analysis of a Current Sensing Principle that Exploits the Resistance of the Copper Trace

机译:利用铜痕量电流传感原理的理论与实践分析

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The output current of contemporary AC-DC front-end converters is steadily increasing due to higher power density requirements. The use of shunt resistors to sense the output current is becoming unacceptable due to high power losses and new techniques for current sensing need to be investigated. In this paper, we investigate the possible use of the voltage drop across the trace resistance to sense the output current. This approach promises very low cost since no dedicated shunt resistor is required, no additional power losses occur and no extra space on the printed-circuit-board (PCB) is necessary. To overcome the problems associated with the temperature drift of the copper, and variability in the trace resistance of the copper track, a digital controller can be used to calibrate the trace resistance and implement a temperature drift compensation. This form of microcontroller is readily available on today's AC-DC front-end converters. However, theoretical and practical investigations revealed that the parasitic inductance and skin effect may limit the bandwidth of this measurement principle down to several hundred Hz. To overcome this limitation, we proposed a compensation technique that has the potential to increase the bandwidth beyond ten kilohertz. Experiments with output currents of up to 240 A demonstrated that the measurement uncertainty for DC currents is less than +-1 A for temperatures between 25 to 60 degrees, and that the effective bandwidth can be enhanced using a compensation technique.
机译:由于更高的功率密度要求,当代AC-DC前端转换器的输出电流稳定地增加。使用分流电阻来感测输出电流由于高功率损耗而变得不可接受,并且需要研究电流感测的新技术。在本文中,我们调查了可能使用轨迹电阻的电压降以感测输出电流。这种方法承诺成本非常低,因为不需要专用的分流电阻,不会发生额外的功率损耗,并且需要在印刷电路板(PCB)上没有额外的空间。为了克服与铜的温度漂移相关的问题,以及铜轨道的轨道电阻的可变性,可以使用数字控制器来校准轨迹电阻并实现温度漂移补偿。这种形式的微控制器在今天的AC-DC前端转换器上很容易获得。然而,理论和实践研究表明,寄生电感和皮肤效应可能将该测量原理的带宽限制在几百Hz上。为了克服这种限制,我们提出了一种补偿技术,这些技术具有增加超过10千赫的带宽。高达240A的输出电流的实验证明了直流电流的测量不确定性在25至60度之间的温度下小于+ -1a,并且可以使用补偿技术来提高有效带宽。

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