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Significantly enhanced creep resistance of low volume fraction in-situ TiBw/Ti6Al4V composites by architectured network reinforcements

机译:通过结构化网络增强显着提高了低体积分数原位TiBw / Ti6Al4V复合材料的抗蠕变性

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摘要

We present a new class of TiBw/Ti6Al4V composites with a network reinforcement architecture that exhibits a significant creep resistance compared to monolithic Ti6Al4V alloys. Creep tests performed at temperatures between 773 K and 923 K and stress range of 100 MPa-300 MPa indicate both a significant improvement of the composites creep resistance due to the network architecture made by the TiB whiskers (TiBw), and a decrease of the steady-state creep rates by augmenting the local volume fractions of TiBw in the network region. The deformation behavior is driven by a diffusion-controlled dislocation climb process. Moreover, the activation energies of these composites are significantly higher than that of Ti6Al4V alloys, indicating a higher creep resistance. The increase of the activation energy can be attributed to the TiBw architecture that severely impedes the movements of dislocation and grain boundary sliding and provides a tailoring of the stress transfer. These micromechanical mechanisms lead to a remarkable improvement of the creep resistance of these networked TiBw/Ti6Al4V composites featuring the special networked architecture.
机译:我们提出了一种新型的TiBw / Ti6Al4V复合材料,其具有网络增强结构,与整体式Ti6Al4V合金相比,具有显着的抗蠕变性。在773 K和923 K之间的温度和100 MPa-300 MPa的应力范围内进行的蠕变测试表明,由于TiB晶须(TiBw)制成的网络结构,复合材料的抗蠕变性能得到了显着改善,而稳定态的降低通过增加网络区域中TiBw的局部体积分数来确定蠕变速率。变形行为由扩散控制的位错爬升过程驱动。而且,这些复合材料的活化能明显高于Ti6Al4V合金,表明具有更高的抗蠕变性。活化能的增加可归因于TiBw结构,该结构严重阻碍了位错运动和晶界滑动,并提供了应力传递的定制功能。这些微机械机理极大地改善了具有特殊网络结构的这些网络化TiBw / Ti6Al4V复合材料的抗蠕变性。

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