热力学一致的多相合金相变模型:应用于激光粉末床熔融过程中的 Ti $$_6$$ Al $$_4$$ V

IF 3.7 2区 工程技术 Q1 MATHEMATICS, INTERDISCIPLINARY APPLICATIONS
Isabelle Noll, Thorsten Bartel, Andreas Menzel
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引用次数: 0

摘要

钛铝合金属于 \(α \)-\(\beta \)合金,由于其具有良好的机械性能,在工业中应用广泛,例如用于激光粉末床熔化(PBF-LB)工艺。然而,晶体结构的组成和固含量的大小对钛铝合金的材料性能有很大影响。具体来说,热历史(即冷却速度)决定了相组成和微观结构,例如在热处理和 PBF-LB 过程中。因此,本研究引入了一个相变框架,该框架基于能量密度和热力学一致的演化方程,能够捕捉到冷却和加热速率所产生的不同材料成分。底层相的演化受专门设计的耗散函数控制,该函数的系数由基于现有连续冷却温度(CCT)图的参数识别过程确定。为了校准模型并为增材制造过程模拟等进一步应用做好准备,需要对这些 CCT 图进行计算重建。与经验公式不同的是,所开发的热力学一致且物理上合理的模型可以直接扩展到更多的相分数和不同的材料。利用这一模型,不仅可以预测高温梯度过程(如 PBF-LB 过程)中的微观结构演变,还可以预测过程中和过程结束时的应变演变。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

A thermodynamically consistent phase transformation model for multiphase alloys: application to Ti $$_6$$ Al $$_4$$ V in laser powder bed fusion processes

A thermodynamically consistent phase transformation model for multiphase alloys: application to Ti $$_6$$ Al $$_4$$ V in laser powder bed fusion processes

Titan aluminium alloys belong to the group of \(\alpha \)\(\beta \)-alloys, which are used for many applications in industry due to their advantageous mechanical properties, e.g. for laser powder bed fusion (PBF-LB) processes. However, the composition of the crystal structure and the respective magnitude of the solid fraction highly influences the material properties of titan aluminium alloys. Specifically, the thermal history, i.e. the cooling rate, determines the phase composition and microstructure for example during heat treatment and PBF-LB processes. For that reason, the present work introduces a phase transformation framework based, amongst others, on energy densities and thermodynamically consistent evolution equations, which is able to capture the different material compositions resulting from cooling and heating rates. The evolution of the underlying phases is governed by a specifically designed dissipation function, the coefficients of which are determined by a parameter identification process based on available continuous cooling temperature (CCT) diagrams. In order to calibrate the model and its preparation for further applications such as the simulation of additive manufacturing processes, these CCT diagrams are computationally reconstructed. In contrast to empirical formulations, the developed thermodynamically consistent and physically sound model can straightforwardly be extended to further phase fractions and different materials. With this formulation, it is possible to predict not only the microstructure evolution during processes with high temperature gradients, as occurring in e.g. PBF-LB processes, but also the evolving strains during and at the end of the process.

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来源期刊
Computational Mechanics
Computational Mechanics 物理-力学
CiteScore
7.80
自引率
12.20%
发文量
122
审稿时长
3.4 months
期刊介绍: The journal reports original research of scholarly value in computational engineering and sciences. It focuses on areas that involve and enrich the application of mechanics, mathematics and numerical methods. It covers new methods and computationally-challenging technologies. Areas covered include method development in solid, fluid mechanics and materials simulations with application to biomechanics and mechanics in medicine, multiphysics, fracture mechanics, multiscale mechanics, particle and meshfree methods. Additionally, manuscripts including simulation and method development of synthesis of material systems are encouraged. Manuscripts reporting results obtained with established methods, unless they involve challenging computations, and manuscripts that report computations using commercial software packages are not encouraged.
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