首页> 外文期刊>Low temperature physics: Simultaneous Russian - English publication >Micromechanical properties of single crystals and polycrystals of pure alpha-titanium: anisotropy of microhardness, size effect, effect of the temperature (77-300 K)
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Micromechanical properties of single crystals and polycrystals of pure alpha-titanium: anisotropy of microhardness, size effect, effect of the temperature (77-300 K)

机译:单晶体的微机械性能和纯α-钛的多晶:微硬度各向异性,尺寸效应,温度效果(77-300 k)

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摘要

The anisotropy of microhardness of pure alpha-Ti single crystals, indentation size effect in single-crystal, course grained (CG) pure and nanocrystalline (NC) VT1-0 titanium, as well as the temperature dependences of the microhardness of single-crystal and CG Ti in the temperature range 77-300K were studied. The minimum value of hardness was obtained when indenting into the basal plane (0001). The indentation size effect (ISE) was clearly observed in the indentation of soft high-purity single-crystal iodide titanium while it was the least pronounced in a sample of nanocrystalline VT1-0 titanium. It has been demonstrated that the ISE can be described within the model of geometrically necessary dislocations (GND), which follows from the theory of strain gradient plasticity. The true hardness and others parameters of the GND model were determined for all materials. The temperature dependence of the microhardness is in agreement with the idea of the governing role of Peierls relief in the dislocation thermally-activated plastic deformation of pure titanium as has been earlier established and justified in macroscopic tensile investigations at low temperatures. The activation energy and activation volume of dislocation motion in the strained region under the indenter were estimated. Published by AIP Publishing.
机译:纯α-Ti单晶的微硬度各向异性,单晶中的凹痕尺寸效应,晶粒(Cg)纯和纳米晶(NC)Vt1-0钛,以及单晶的微硬度的温度依赖性研究了温度范围的CG TI 77-300K。当缩进到基础平面(0001)时获得硬度的最小值。在软高纯度单晶碘化钛的压痕中清楚地观察到压痕尺寸效应(ISE),而在纳米晶体VT1-0钛的样品中最不明显。已经证明,ISE可以在几何必要脱位(GND)的模型中描述,其遵循应变梯度可塑性理论。针对所有材料确定了GND模型的真实硬度和其他参数。微硬度的温度依赖性与Peierls浮雕在纯钛中的脱位激活塑性变形中的控制作用的想法一致,如前所述,在低温下在宏观拉伸调查中证明并合理。估计压痕下应变区域中的脱位运动的活化能量和激活体积。通过AIP发布发布。

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