K4169高温合金机匣铸造过程多尺度模拟及结构敏感区分析

    Multiscale Simulation on Casting Process and Analysis of Structurally Sensitive Regions of K4169 Superalloy Casing

    • 摘要: 针对K4169高温合金机匣大面积薄壁、径向空心支板、截面突变结构带来的欠铸风险高、缩松倾向性大、晶粒组织不均匀难题,采用ProCAST软件构建某K4169机匣熔模精密铸造模型,结合元胞自动机-有限元(CAFE)宏微观耦合模拟充型凝固、缩松、等效应力与晶粒组织。选取内环、外环、径向支板、内外环根部作为典型区域,综合对比宏观缩松缺陷、热历史与微观组织的空间分布规律,识别铸件结构敏感区域并提出工艺优化思路。结果表明:1500℃浇注、1000℃模壳预热、5 s底注工艺可平稳完整充型,薄壁区域先凝固,浇道及厚大连接热节区凝固滞后;采用1.8%缩松率判定阈值筛选,铸件无连续缩松带,离散缩松点主要分布于内环孔周凹陷、径向支板端部及根部过渡位置;凝固等效应力高值集中在支板与环体截面突变连接处,缩松高风险区与应力集中区空间不完全重合。不同特征区域晶粒尺寸分布差异显著,外环晶粒最细,晶粒平均等效直径1.387 mm,>5 mm晶粒占比仅0.198%;径向支板粗晶长尾效应最突出,晶粒平均等效直径1.562 mm,>5 mm晶粒占比0.827%;二次枝晶臂间距(SDAS)与凝固时间呈明显正相关,但与晶粒尺寸分布不同步。缩松、高应力、粗晶、大SDAS区域未完全重合,径向支板及其根部兼具多重缺陷风险,为首要结构敏感区;内环孔周凹陷为局部缩松敏感点,外环需管控枝晶粗化。据此从补缩、差异化散热、模壳保温、结构圆角优化提出调控方案,同时规划CT探伤、EBSD金相表征的试验验证思路。本研究建立多尺度模拟结合典型分区统计的评价体系,为同类机匣缺陷抑制、组织调控与安全评估提供模拟支撑。

       

      Abstract: To address the challenges of high misrun risk, severe shrinkage porosity tendency and inhomogeneous grain microstructure induced by the large-area thin walls, radial hollow support plates and abrupt section transitions of K4169 superalloy casing, an investment casting model of a K4169 casing was established via ProCAST software, and the cellular automata-finite element(CAFE) macro-micro coupled method was adopted to simulate filling and solidification, shrinkage porosity, equivalent stress and grain structure. The inner ring, outer ring, radial support plates and root junctions of inner and outer rings were selected as typical regions. The spatial distribution laws of macroscopic shrinkage porosity defects, thermal history and microstructures were comprehensively compared to identify structurally sensitive regions of the casting and the ideas for process optimization were proposed. The results show that the bottom gating process with pouring temperature of 1500 ℃, mould preheating temperature of 1000 ℃ and pouring time of 5 s can realize stable and complete mould filling. Thin-walled regions solidify firstly, while the gating system and thick connecting hot spot areas solidify at a later stage. With the cutoff threshold of 1.8% shrinkage porosity for screening, no continuous shrinkage porosity bands exist in the casting, and discrete porosity spots are mainly distributed at the concave areas around the inner ring holes, the ends of radial support plates and their root transition zones. High values of solidification equivalent stress concentrate at the junctions with abrupt section changes between support plates and rings, and the high-risk regions of shrinkage porosity do not completely overlap with stress concentration zones spatially. The grain size distribution varies significantly among different characteristic regions. The outer ring possesses the finest grains with an average equivalent grain diameter of 1.387 mm, and the proportion of grains larger than 5 mm is merely 0.198%. The radial support plates exhibit the most prominent long tail of coarse grains, with an average equivalent grain diameter of 1.562 mm and a 0.827% fraction of grains exceeding 5 mm. Secondary dendrite arm spacing (SDAS) shows a strong positive correlation with solidification time, yet its distribution is asynchronous with grain size distribution. Regions with shrinkage porosity, high stress, coarse grains and large SDAS do not fully overlap spatially. The radial support plates and their roots bear multiple defect risks, making them the primary structurally sensitive zones. Concave areas around the inner ring holes serve as local sensitive sites for shrinkage porosity, and dendrite coarsening in the outer ring needs to be controlled. Accordingly, regulation schemes are proposed from the perspectives of feeding design, differentiated heat dissipation, mould shell heat preservation and structural fillet optimization. Meanwhile, experimental verification routes involving CT inspection and EBSD metallographic characterization are planned. This study constructs an evaluation system integrating multi-scale simulation and statistics of typical sub-regions, which can provide simulation support for defect suppression, microstructure regulation and safety assessment of similar casing castings.

       

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