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Magnetic field dependent stability and quench behavior and degradation limits in conduction-cooled MgB2 wires and coils

机译:传导冷却的MgB2导线和线圈的磁场相关稳定性和淬灭行为以及降解极限

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摘要

Long lengths of metal/MgB2 composite conductors with high critical current density (Jc), fabricated by the power-in-tube (PIT) process, have recently become commercially available. Owing to its electromagnetic performance in the 20 K – 30 K range and relatively low cost, MgB2 may be attractive for a variety of applications. One of the key issues for magnet design is stability and quench protection, so the behavior of MgB2 wires and magnets must be understood before large systems can emerge. In this work, the stability and quench behavior of several conduction-cooled MgB2 wires are studied. Measurements of the minimum quench energy and normal zone propagation velocity are performed on short samples in a background magnetic field up to 3 T and on coils in self-field and the results are explained in terms of variations in the conductor architecture, electrical transport behavior, operating conditions (transport current and background magnetic field) and experimental setup (short sample vs small coil). Furthermore, one coil is quenched repeatedly with increasing hot-spot temperature until Jc is decreased. It is found that degradation during quenching correlates directly with temperature and not with peak voltage; a safe operating temperature limit of 260 K at the surface is identified.
机译:通过管内功率(PIT)工艺制造的长长度的具有高临界电流密度(Jc)的金属/ MgB2复合导体近来已经可以商业获得。由于其20K-30K的电磁性能和相对较低的成本,MgB2可能对多种应用具有吸引力。磁体设计的关键问题之一是稳定性和淬火保护,因此在大型系统出现之前必须了解MgB2导线和磁体的行为。在这项工作中,研究了几种导电冷却的MgB2导线的稳定性和淬火行为。在不超过3 T的背景磁场中对短样本和自磁场中的线圈进行最小淬火能量和正常区域传播速度的测量,并根据导体结构的变化,电传输行为,工作条件(传输电流和背景磁场)和实验设置(短样品与小线圈)。此外,随着热点温度的升高,一个线圈被反复淬火,直到Jc减小。发现淬火期间的劣化与温度直接相关,与峰值电压无关;确定表面的安全工作温度极限为260K。

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