新型热控凝固工艺对高温合金复杂薄壁铸件充型与缺陷控制的影响

    Effect of a Novel Thermally Controlled Solidification Process on Filling and Defect Control in Complex Thin-walled Superalloy Castings

    • 摘要: 针对IN718镍基高温合金复杂薄壁铸件充型差、缩松严重的铸造难题,提出带定向抽拉的新型热控凝固工艺(TCS),通过提高模壳温度,搭配定向抽拉实现平稳顺序凝固。以变截面厚度试样为对象,设置常规铸造、1360℃浇注热控凝固(TCS-1,模壳温度1260℃)、1400℃浇注热控凝固(TCS-2,模壳温度1290℃)对比试验,结合原位凝固观测、金相与缺陷定量检测,研究工艺对铸件成形、缺陷及晶粒组织的影响,并开展机匣铸件工程验证。结果表明:常规工艺薄壁充型能力差、缩松严重;两种热控工艺均可大幅提升薄壁充型效果、显著降低缩松含量,更高温度的TCS-2工艺可实现铸件完整充型、缩松缺陷极少。高温模壳弱化型壁激冷、定向抽拉形成顺序凝固、维持通畅补缩通道是改善充型与缩松的核心机制,但热控工艺会造成晶粒粗化,不同壁厚晶粒尺寸差异随浇注温度和模壳温度的升高进一步加剧。承力机匣铸件验证证实,TCS-2工艺可消除薄壁欠铸与热节缩孔,铸件无柱状晶、等轴晶组织均匀,可协同控制成形质量与内部缺陷,为高温合金薄壁精密铸件制造提供工艺参考。

       

      Abstract: To address the casting challenges of poor mold filling and severe shrinkage porosity in complex thin-walled castings of IN718 nickel-based superalloy, a novel thermally controlled solidification (TCS) process equipped with directional withdrawal was proposed. This process realizes stable sequential solidification by raise the temperature of shell mold combined with directional withdrawal. Comparative experiments consisting of conventional casting, TCS-1 process with pouring temperature of 1360 ℃, mold-shell temperature of 1260 ℃ and TCS-2 process with pouring temperature of 1400 ℃, mold-shell temperature of 1290 ℃ were carried out on specimens with variable wall thicknesses. In-situ solidification observation, metallographic analysis and quantitative defect characterization were combined to investigate the effects of the process on casting filling, internal defects and grain structure, and engineering verification was performed on bearing casing castings. The results reveal that the conventional casting process exhibits inferior filling capacity for thin-walled regions accompanied by severe shrinkage porosity. Both thermally controlled solidification processes substantially enhance the mold-filling performance of thin-walled sections and drastically mitigate shrinkage porosity. Specifically, the higher-temperature TCS-2 process enables full mold filling of the casting with extremely low residual shrinkage porosity. The fundamental mechanisms accounting for improved filling capacity and mitigated shrinkage porosity lie in three aspects: high-temperature shell molds alleviate chilling effect at mold walls, directional withdrawal induces progressive sequential solidification, and unobstructed feeding channels are maintained throughout solidification. However, the thermally controlled solidification processes inevitably trigger grain coarsening, and the grain size disparity between regions with different wall thicknesses is further aggravated as pouring temperature and shell mold holding temperature rise. Engineering verification on bearing casing castings demonstrates that the TCS-2 process eliminates misrun defects in thin-walled areas and shrinkage cavities at hot spots. The resultant castings are free of columnar grains and possess homogeneous equiaxed grain structures. This process enables synergistic regulation of forming integrity and internal defect suppression, offering a viable technical reference for the precision manufacturing of thin-walled superalloy castings.

       

    /

    返回文章
    返回