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首页> 外文期刊>IEEE Transactions on Applied Superconductivity >AC loss measurements of a high critical temperature superconductortransporting sinusoidal or non-sinusoidal current
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AC loss measurements of a high critical temperature superconductortransporting sinusoidal or non-sinusoidal current

机译:传输正弦或非正弦电流的高临界温度超导体的交流损耗测量

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摘要

In electrical engineering, static converters generate harmonics; consequently the losses in the conductors increase. To use High-Tc superconductors for current transportation, it is important to evaluate and to measure their losses. Under the assumption that the superconductor is only exposed to its self-field, Bean's model is used to compute these losses. This work deals with the losses in a cylindrical High-Tc superconductor current-lead. It is made of compacted composite of Bi-Pb-Sr-Ca-Cu-O-2223, the value of its critical current is about 100 A (measured with I μV/cm criteria). Two types of measuring methods are used. The first of them uses a differential amplifier associated with a computer, which calculate the instantaneous power by numerical integration. The second series of experiments, valid only with sinusoidal current, are made using a lock-in amplifier measuring the R.M.S. voltage. The value of transport current is high enough to be compatible with applications. Both methods give nearly the same results for sinusoidal signal. Measurements are made with non-sinusoidal current, to do that the superconductor sample is fed by a dimmer switch. The experiments show that the losses are essentially a function of the maximum value of the current, not of the firing angle. We conclude that the shape of the current is not important compared to its peak value
机译:在电气工程中,静态转换器会产生谐波。因此,导体中的损耗增加。要使用高温超导体进行电流传输,重要的是评估和测量其损耗。在超导体仅暴露于自身场的假设下,使用Bean模型计算这些损耗。这项工作解决了圆柱形High-Tc超导体电流引线中的损耗。它由Bi-Pb-Sr-Ca-Cu-O-2223的压实复合材料制成,其临界电流值约为100 A(以IμV/ cm标准测量)。使用两种类型的测量方法。它们中的第一个使用与计算机关联的差分放大器,该差分放大器通过数值积分来计算瞬时功率。第二系列实验仅在正弦电流下有效,是使用测量R.M.S.电压。传输电流的值足够高,可以与应用程序兼容。两种方法对正弦信号给出的结果几乎相同。用非正弦电流进行测量,以使超导体样品由调光开关供电。实验表明,损耗基本上是电流最大值的函数,而不是触发角的函数。我们得出结论,电流的形状与其峰值相比并不重要

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