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Microstructural Modeling and Strengthening Mechanism of TiB/Ti-6Al-4V Discontinuously-Reinforced Titanium Matrix Composite

机译:TiB / Ti-6Al-4V间断增强钛基复合材料的组织建模与强化机理

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摘要

A novel modeling method was proposed to provide an improved representation of the actual microstructure of TiB/Ti-6Al-4V discontinuously-reinforced titanium matrix composite (DRTMC). Based on the Thiessen polygon structure, the representative volume element (RVE) containing the complex microstructures of the DRTMC was first generated. Thereafter, by using multiple user-defined subroutines in the commercial finite element software ABAQUS, the application of asymmetric mesh periodic boundary conditions on the RVE was realized, and the equivalent elastic modulus of the DRTMC was determined according to the homogenization method. Through error analyses on the experimental and calculated results regarding the equivalent elastic parameters of the DRTMC, the rationality of generating the DRTMC finite element model by using the present method was validated. Finally, simulations based on four types of network-like models revealed that the present simplifications to the particle shape of the reinforcement phase had less of an influence on the overall composite strength. Moreover, the present study demonstrates that the DRTMC enhancement is mainly attributed to the matrix strengthening, rather than the load-transferring mechanism. The strengthening influences of the distribution forms of the reinforcement phases, including their distribution density and orientation, were studied further. It was found that both the higher distribution density and limited distribution orientation of the particles would increase the probability of overlapping and merging between particles, and; therefore, higher strength could be yielded when the volume fraction of the reinforcement phase reached a certain threshold. Owing to the versatility of the developed methods and programs, this work can provide a useful reference for the characterization of the mechanical properties of other composites types.
机译:提出了一种新颖的建模方法,以提供对TiB / Ti-6Al-4V间断增强钛基复合材料(DRTMC)的实际微观结构的改进表示。基于蒂森多边形结构,首先生成包含DRTMC复杂微观结构的代表性体积元素(RVE)。此后,通过在商业有限元软件ABAQUS中使用多个用户定义的子例程,实现了非对称网格周期边界条件在RVE上的应用,并根据均化方法确定了DRTMC的等效弹性模量。通过对与DRTMC等效弹性参数有关的实验和计算结果进行误差分析,验证了使用本方法生成DRTMC有限元模型的合理性。最后,基于四种类型的网络状模型的仿真显示,目前对增强相颗粒形状的简化对整体复合强度的影响较小。此外,本研究表明DRTMC增强主要归因于基体增强,而不是载荷传递机制。进一步研究了增强相分布形式的增强影响,包括分布密度和取向。已经发现,较高的颗粒分布密度和有限的分布取向都会增加颗粒之间重叠和合并的可能性,并且;因此,当增强相的体积分数达到一定阈值时,可以产生更高的强度。由于所开发的方法和程序的多功能性,这项工作可以为表征其他复合材料类型的机械性能提供有用的参考。

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