965 resultados para Zr(SO_4)_2
Resumo:
Dynamic planar compressive experiments on a typical tough Zr-BMG (Bulk Metallic Glass) were carried out under impact velocity of 500-600 m/sec and strain rate of 10(6)/s. The fracture surface of samples exhibits different fracture patterns at different parts of the sample. At a corner close to the front loading boundary, fracture patterns from the free edge toward the centre changed from equiaxial veins in microscale to periodic corrugations in nanoscale; in the middle of the sample, the fracture surface contains glazed zones laid out orderly along the same boundary. FEM simulation was performed to investigate the stress distributions in the impacted sample under a short duration impact loading. It has revealed that the fracture patterns changing from the free edge toward the centre were resulted from the fracture modes' changing from the tensile dominant fracture to the shear dominant fracture. Whereas at the middle part of the sample, fracture initiated from several parallel shear bands propagating close to the same boundary is due to a large strain or much higher shear stress in this area.
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<正>整合素作为细胞表面糖蛋白受体,介导细胞-细胞、细胞-胞外基质以及细胞-病原体间粘附和信息传递,在免疫应答、凝血反应、炎症反应、肿瘤转移和创伤愈合等许多病理生理过程中起重要作用。整合素是由α、β两个亚基非共价结合而成的异源二聚体,其结构类似于两条近平行的腿部支撑着一个球形的头部。研究表明,β_2整合素_M亚基头部的.domain为与配体直接作用的结构域,并可通过"open"或"close"的构象变化
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<正>细胞粘附在诸如炎症反应、肿瘤转移、血栓形成等病理生理过程中起着至关重要的作用。在血流作用下,表达于细胞表面的特异性粘附分子(如整合素、ICAM-1配体)间如何介导细胞粘附、怎样定量描述受体-配体相互作用及其反应动力学、外力如何调控受体-配体键强度和寿命、分子键结合与解离的结构基础是什么等,均是亟待认识的基本科学问题。
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本工作对超导离子源(SECRAL)上的10~20 kV/q Ar16+和Ar17+入射到金属Zr表面进行实验研究。实验结果表明,高电荷态Ar16+在金属表面存在着多电子激发过程。Ar空心原子的K层发射X射线强度随入射离子的动能减少,靶原子Zr的L壳层发射X射线强度随入射离子动能的增加而增强。Ar17+单离子的K-αX射线产额比Ar16+单离子的K-αX射线产额大5个数量级。
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IEECAS SKLLQG
Resumo:
利用102MeV的28Si束流,通过60Ni(28Si,2pn)熔合蒸发反应布居了85Zr核的高自旋态,测量了γ-γ符合及DCO比值,建立了一个有43条能级,75条γ跃迁的能级纲图,新增加了36条γ跃迁,25条能级.将能级自旋推高到(49/2+),首次观察到了转晕带的第二回弯.并确认了一条建立在17/2-负宇称带上的磁转动带.
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<正>质量数80区的过渡性核表现了集体性和单粒子性的能级结构。对质子数Z为37~40、中子数N=45的原子核,如81Kr,87Mo核,在中低自旋时显示了单粒子特性,而在高自旋态时表现出较多的集体性。 近些年来,在过渡区在束γ谱学,如83Rb、83Y等核研究中,观察到了一串建立在较高K态的增强的△I=1的M1跃迁。它被认为是一种新的激发模式,叫做磁转动带。我们对85Zr的研究目的,一是将其能级推到更高自旋,另一个是寻找该核的磁转动带。