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The Development of a Microgravity Experiment involving Columnar to Equiaxed Transition for Solidification of a Ti-AI based Alloy

机译:涉及圆柱到等轴转变的Ti-Al基合金凝固的微重力实验的发展

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The authors are members of the integrated project Intermetallic Materials Processing in Relation to Earth and Space Solidification (IMPRESS), funded within the European Framework (FP6). One of the aims of IMPRESS is to develop new alloys and processes for the casting of TiAl-based turbine blades for the next generation of aero and industrial gas turbine engines. Within IMPRESS, two related issues have been identified during the primary solidification stage, namely, segregation and the columnar-to-equiaxed transition (CET). The authors have set out to isolate the effects of thermo-solutal convection, by designing a microgravity experiment to be performed on a European Space Agency platform. This experiment will investigate the CET formation during solidification. It is planned to use a sounding rocket providing a microgravity time of approximately twelve minutes. The results of this microgravity solidification experiment will be used as unique benchmark data for development and validation of new computational models of TiAl solidification. This in turn will produce accurate models and ultimately new robust industrial processes by project partners in the aerospace industry. The evolution of the design of the microgravity experiment is discussed and the results of preliminary ground reference experiments are presented. Future plans and objectives for the project are also highlighted.
机译:作者是在欧洲框架(FP6)资助下的与地球和空间凝固有关的金属间材料综合处理项目(IMPRESS)的成员。 IMPRESS的目标之一是开发用于下一代航空和工业燃气涡轮发动机的TiAl基涡轮叶片铸造的新合金和新工艺。在IMPRESS内部,已在主要固化阶段确定了两个相关问题,即隔离和柱状到等轴过渡(CET)。作者已经着手设计一种在欧洲航天局平台上进行的微重力实验,以隔离热固对流的影响。该实验将研究凝固过程中CET的形成。计划使用探空火箭提供约12分钟的微重力时间。该微重力凝固实验的结果将用作开发和验证新的TiAl凝固计算模型的唯一基准数据。反过来,这将产生准确的模型,并最终由航空航天业的项目合作伙伴提供新的强大的工业流程。讨论了微重力实验设计的演变,并给出了初步地面参考实验的结果。还强调了该项目的未来计划和目标。

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