基于成分设计与工艺协同调控的γ'相强化镍基高温合金无裂纹增材制造策略
A Crack-Free Additive Manufacturing Strategy for Nickel-Based Superalloys via Composition Design and Process Control
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摘要: 激光粉末床熔融技术(LPBF)制备γ'相强化镍基高温合金时,快速凝固引发的高裂纹敏感性严重制约了合金的服役性能。本研究以IN939合金为研究对象,系统解析了裂纹形成机制及其抑制机理,提出了成分-工艺协同抑制裂纹的策略。基于热力学计算与凝固裂纹敏感性指数模型,证实增大Si元素质量分数可改善溶体对枝晶间隙的填充,从而减少凝固裂纹。降低Al元素质量分数可有效抑制γ' 相时效析出,从而减少固态裂纹。当Si元素质量分数为0.5%、Al元素质量分数为1.0%时,合金的裂纹密度与力学性能达到最佳平衡。在此基础上,通过协同控制激光输入参数细化晶粒,提升晶粒等轴度,并弱化织构,可以进一步抑制裂纹产生,当激光功率为220 W、扫描速度为800 mm/s时,可成功制备出无裂纹且孔隙率<0.1%的LPBF IN939合金。本研究为γ' 相强化镍基高温合金的增材制造提供了成分设计与工艺优化的方法与思路。Abstract: In the preparation of high γ' phase strengthened nickel-based superalloys prepared by laser powder bed fusion (LPBF), the high crack susceptibility caused by rapid solidification restricts their high-temperature service performances. Taking Inconel 939 (IN939) as an example, we systematically analyze the crack formation mechanism and its inhibition mechanism, and propose a component-process collaborative optimization strategy. Based on the thermodynamic calculations and the solidification crack susceptibility index (SCI) model, it is confirmed that the increasing the Si mass fraction can reduce the tendency of liquid film rupture between dendrites and reduce the solidification crack occurrence. Reducing the Al content can effectively inhibit the aging precipitation of γ' phase, thereby reducing solid-state cracks. When the mass fractions of Si and Al are 0.5% and 1.0%, there is a good balance between the crack density and mechanical properties. On this basis, optimizing the laser input to refine grain, promoting grain equiaxed degree and weakening texture can further inhibit the initiation of cracks. When the laser power is 220 W, and the scanning speed is 800 mm/s, IN939 alloy with no cracks and porosity is below 0.1% can be prepared. This study provides approaches and insights for composition design and process optimization of the additive manufacturing of γ'-strengthened nickel-based superalloys.
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