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Delamination and current-carrying degradation behavior of epoxy-impregnated superconducting coil winding with 2G HTS tape caused by thermal stress

机译:环氧浸渍超导线圈绕组用热应力引起的2g HTS胶带的分层和携带的脱液性降解行为

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A thermo-mechanical-electromagnetic model is developed for estimating the delamination and current-carrying degradation of epoxy-impregnated pancake coils. The mixed-mode traction–separation law and the Weibull distribution of delamination strength are considered in simulating the onset and extension of the delamination caused by thermal stress. Because of the considerable differences in thermal shrinkage between the epoxy resin, insulation tape, and second-generation high temperature superconducting (2G HTS) tape, the accumulated radial thermal stress locally exceeds the electro-mechanical delamination strength and even the mechanical delamination strength. The electro-mechanical delamination strength of the 2G HTS tape is the transverse tensile or shear stress level corresponding to an abrupt irreversible critical current degradation. The mechanical delamination strength is the transverse tensile or shear stress limit corresponding to a structural failure. After injecting current into the coil, we obtained the E – I curve of the coil. The critical current and n -value of the superconducting coil indicate a strong degradation after epoxy-impregnation. The current-carrying degradation precedes delamination because the electro-mechanical delamination strength is smaller than the mechanical delamination strength. The degradation is more obvious in large than in small superconducting coils because the radial thermal stress is larger. The onset of degradation depends on the minimum delamination strength, suggesting that caution is required in screening the 2G HTS tape before winding the coil. The simulation results indicate that reducing the thickness of the insulation tape and the amount of epoxy resin effectively reduces the degradation of epoxy-impregnated pancake coils.
机译:开发了一种热机械电磁模型,用于估算环氧树脂浸渍薄煎饼线圈的分层和耐受脱劣。考虑模拟热应力引起的分层的发作和延伸,考虑了混合模式牵引分离规律和解剖强度的威布尔分布。由于环氧树脂,绝缘带和第二代高温超导(2G HTS)带之间的热收缩差异相当大,因此累积的径向热应力局部超过电力分层强度甚至机械分层强度。 2G HTS带的电力分层强度是与突然不可逆临界电流降解相对应的横向拉伸或剪切应力水平。机械分层强度是对应于结构故障的横向拉伸或剪切应力极限。在注入线圈后,我们获得了线圈的E - I曲线。超导线圈的临界电流和N-值表示环氧浸渍后的强烈降解。电流携带的降解在分层之前,因为电力分层强度小于机械分层强度。在小于小超导线圈中,降解更明显,因为径向热应力较大。劣化的发作取决于最小分层强度,表明在卷绕线圈之前筛选2G HTS胶带需要注意。仿真结果表明,减少绝缘带的厚度和环氧树脂的量有效降低了环氧树脂浸渍煎饼卷的降解。

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