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The Linear Thermal Expansion of Bulk Nanocrystalline Ingot Iron from Liquid Nitrogen to 300 K

机译:块状纳米晶锭铁从液氮到300 K的线性热膨胀

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摘要

The linear thermal expansions (LTE) of bulk nanocrystalline ingot iron (BNII) at six directions on rolling plane and conventional polycrystalline ingot iron (CPII) at one direction were measured from liquid nitrogen temperature to 300 K. Although the volume fraction of grain boundary and residual strain of BNII are larger than those of CPII, LTE of BNII at the six measurement directions were less than those of CPII. This phenomenon could be explained with Morse potential function and the crystalline structure of metals. Our LTE results ruled out that the grain boundary and residual strain of BNII did much contribution to its thermal expansion. The higher interaction potential energy of atoms, the less partial derivative of interaction potential energy with respect to temperature T and the porosity free at the grain boundary of BNII resulted in less LTE in comparison with CPII from liquid nitrogen temperature to 300 K. The higher LTE of many bulk nanocrystalline materials resulted from the porosity at their grain boundaries. However, many authors attributed the higher LTE of many nanocrystalline metal materials to their higher volume fraction of grain boundaries.
机译:在液氮温度至300 K的范围内测量了块状纳米晶锭铁(BNII)在轧制平面上六个方向的线性热膨胀(LTE)和常规多晶锭铁(CPII)在一个方向上的线性热膨胀。 BNII的残余应变大于CPII,六个测量方向的BNII LTE小于CPII。这种现象可以用莫尔斯电势函数和金属的晶体结构来解释。我们的LTE结果排除了BNII的晶界和残余应变对其热膨胀做出了很大贡献。从液氮温度到300 K,与CPII相比,原子的相互作用势能越高,相互作用势能相对于温度T的偏导数越少,且BNII晶界处的自由孔隙率越小,导致LTE越少。许多块状纳米晶体材料的产生是由于其晶界处的孔隙率。但是,许多作者将许多纳米晶金属材料的较高LTE归因于其较高的晶界体积分数。

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