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首页> 外文期刊>Superconductor Science & Technology >Influence of turn-to-turn resistivity and coil geometrical size on charging characteristics of no-electrical-insulation REBCO pancake coils
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Influence of turn-to-turn resistivity and coil geometrical size on charging characteristics of no-electrical-insulation REBCO pancake coils

机译:匝间电阻率和线圈几何尺寸对无电REBCO煎饼线圈充电特性的影响

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High temperature superconductor (HTS) no-electrical-insulation (NEI) coils demonstrate great advantages in thermal stability and self-protection features. However, an intrinsic delay is observed in the charging process and as a result there maybe a possible settle-out problem. It becomes more critical for large HTS coils with more turns, such as the magnets for the accelerator system and DC induction heater applications. This paper presents detailed studies on the charging characteristics of NEI coils. Firstly, two different no-electrical-insulation coils are wound: the first is directly wound using only REBCO tapes with brass lamination, which is called a no-insulation (NI) coil. The other one is co-wound with stainless steel (SS) strips and REBCO tapes whose copper stabilizer is electroplated, which is called a metallic insulation (MI) coil. Fast discharging tests are performed on the two coils and their equivalent turn-to-turn resistivity is calculated. A similar discharging delay is observed on both coils, but the turn-to-turn resistivity of the SS co-wound coil is much higher than that of the first coil. Then the resistivity data is directly applied to an equivalent circuit network model which is developed to predict the charging behaviours. The model calculates coil voltage, currents along the azimuthal and radial directions, as well as the induced magnetic field. A practical charging time is defined to characterize the field ramping process considering the charging delay between field ramping and current charging. The charging behaviours are extensively analyzed and compared in terms of three primary factors: equivalent turn-to-turn resistivity, coil size and ramping rate. The results show that the charging time increases dramatically with the coil size and may be too long to be practical for large-scale applications using HTS coils with low turn-to-turn resistivity. Increasing the turn-to-turn resistivity enables one to accelerate the charging process effectively. Therefore, the SS co-wound coil with higher turn-to-turn resistivity shows a much shorter charging time, which indicates that it may be more suitable for large-scale HTS magnets.
机译:高温超导体(HTS)无电绝缘(NEI)线圈在热稳定性和自保护功能方面显示出极大的优势。但是,在充电过程中会观察到固有的延迟,结果可能存在沉淀问题。对于具有更大匝数的大型HTS线圈,例如加速器系统和直流感应加热器应用的磁体,它变得尤为重要。本文详细介绍了NEI线圈的充电特性。首先,缠绕两个不同的无电绝缘线圈:第一个仅使用带有黄铜层压的REBCO胶带直接缠绕,这被称为无绝缘(NI)线圈。另一种是与不锈钢(SS)条和REBCO胶带一起缠绕的,这些胶带的铜稳定剂已电镀,称为金属绝缘(MI)线圈。在两个线圈上执行快速放电测试,并计算它们的等效匝间电阻率。在两个线圈上都观察到了类似的放电延迟,但是SS共缠绕线圈的匝间电阻率远高于第一个线圈。然后将电阻率数据直接应用于等效电路网络模型,该模型可用来预测充电行为。该模型计算线圈电压,沿方位角和径向方向的电流以及感应磁场。考虑到磁场斜坡和电流充电之间的充电延迟,定义了实际的充电时间来表征磁场斜坡过程。对充电行为进行了广泛的分析,并根据三个主要因素进行了比较:等效匝间电阻率,线圈尺寸和斜坡速率。结果表明,充电时间随着线圈尺寸的增加而急剧增加,对于使用匝间电阻率较低的HTS线圈进行大规模应用而言,充电时间可能太长而无法实际使用。增加匝间电阻率可以使充电过程有效地加速。因此,具有较高匝间电阻率的SS共绕线圈显示的充电时间要短得多,这表明它可能更适合于大型HTS磁体。

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