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Revealing the micromechanisms behind semi-solid metal deformation with time-resolved X-ray tomography

机译:通过时间分辨X射线断层扫描揭示半固态金属变形背后的微观机制

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摘要

The behaviour of granular solid–liquid mixtures is key when deforming a wide range of materials from cornstarch slurries to soils, rock and magma flows. Here we demonstrate that treating semi-solid alloys as a granular fluid is critical to understanding flow behaviour and defect formation during casting. Using synchrotron X-ray tomography, we directly measure the discrete grain response during uniaxial compression. We show that the stress–strain response at 64–93% solid is due to the shear-induced dilation of discrete rearranging grains. This leads to the counter-intuitive result that, in unfed samples, compression can open internal pores and draw the free surface into the liquid, resulting in cracking. A soil mechanics approach shows that, irrespective of initial solid fraction, the solid packing density moves towards a constant value during deformation, consistent with the existence of a critical state in mushy alloys analogous to soils.
机译:当使各种材料(从玉米淀粉浆液到土壤,岩石和岩浆流)变形时,颗粒状固液混合物的行为至关重要。在这里,我们证明将半固态合金作为颗粒状流体对于理解铸造过程中的流动行为和缺陷形成至关重要。使用同步加速器X射线断层扫描,我们直接测量单轴压缩过程中的离散晶粒响应。我们表明,固含量为64-93%时的应力应变响应是由于剪切诱导的离散重排晶粒膨胀引起的。这导致与直觉相反的结果,即在未进料的样品中,压缩会打开内部孔并将自由表面吸引到液体中,从而导致破裂。土壤力学方法表明,不管初始固体分数如何,固体填充密度在变形过程中都朝着恒定值移动,这与类似于土壤的糊状合金中存在临界状态是一致的。

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