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首页> 外文期刊>IEEE Transactions on Applied Superconductivity >Partial melting and HIP processing of Bi(2223): bulk and tapes
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Partial melting and HIP processing of Bi(2223): bulk and tapes

机译:Bi(2223)的部分熔融和HIP处理:块状和带状

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摘要

A detailed investigation of the equilibrium between the Bi,Pb(2223) phase and the melt was carried out by in-situ high temperature neutron powder diffraction both on sintered bulk samples and Ag-clad tapes. Stability, decomposition and re-formation of Bi,Pb(2223), as well as the evolution of secondary phases, were studied and the effect of the oxygen partial pressure was investigated. Bi,Pb(2223) melts incongruently to (Sr,Ca)/sub 14/Cu/sub 24/O/sub 41/, (Sr,Ca)/sub 2/CuO/sub 3/, and a Bi,Pb-rich liquid, and no precipitation of Bi(2212) was observed at this stage. Direct formation of the Bi,Pb(2223) phase from the melt was observed, opening up the possibility of processing Ag-sheathed tapes from a partial melting route. The possibility of reforming the Bi,Pb(2223) phase from the melt proved to be extremely sensitive to temperature and strongly dependent on the Pb-losses. The study of the mass losses due to Pb-evaporation was complemented by thermogravimetric analysis which proved that the Pb-losses are responsible for moving away from the equilibrium and therefore hinder the Bi,Pb(2223) to reversibly form from the melt. Hot isostatic pressure has proved to be an effective remedy for preventing volatile elements from evaporating and for increasing the density of the tapes. The first annealing stage of the Ag-Bi,Pb(2223) processing was performed under isostatic pressure after making the Ag-sheath airtight. Positive effects of pressure on filament density, formation kinetics and critical current were observed at 10 MPa. We have extended our search for an alternative processing route to the Pb-free Bi(2223) phase. High purity Bi(2223) bulk samples and Ag-sheathed tapes were successfully prepared from pre-reacted powders. Very large Bi(2223) grains (up to /spl sim/500 /spl mu/m) were observed to grow at the Ag-ceramic interface.
机译:Bi,Pb(2223)相与熔体之间的平衡的详细研究是通过对烧结的块状样品和覆银带进行原位高温中子粉末衍射进行的。研究了Bi,Pb(2223)的稳定性,分解和重整以及次生相的演化,并研究了氧分压的影响。 Bi,Pb(2223)与(Sr,Ca)/ sub 14 / Cu / sub 24 / O / sub 41 /,(Sr,Ca)/ sub 2 / CuO / sub 3 /和Bi,Pb-液体,在此阶段未观察到Bi(2212)的沉淀。观察到从熔体中直接形成Bi,Pb(2223)相,从而为从部分熔解路径加工带Ag的胶带提供了可能性。从熔体中重整Bi,Pb(2223)相的可能性证明对温度极为敏感,并且强烈依赖于Pb的损失。对由于铅蒸发而引起的质量损失的研究得到了热重分析的补充,这证明铅的损失是造成平衡移动的原因,因此阻碍了Bi,Pb(2223)从熔体中可逆地形成。已经证明,热等静压是防止挥发性元素蒸发和增加胶带密度的有效方法。 Ag-Bi,Pb(2223)处理的第一退火阶段是在使Ag鞘气密后在等静压下进行的。在10 MPa时,观察到压力对灯丝密度,形成动力学和临界电流的积极影响。我们将搜索的替代方法扩展到了无铅Bi(2223)相。高纯度Bi(2223)散装样品和带银护套的胶带是由预反应的粉末成功制备的。观察到非常大的Bi(2223)晶粒(高达/ spl sim / 500 / spl mu / m)在Ag-陶瓷界面处生长。

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