Zhang Hang, Xu Qingyan
State Key Laboratory of Manufacturing System Engineering, School of Mechanical Engineering, Xi'an Jiao Tong University, Xi'an 710049, China.
Key Laboratory for Advanced Materials Processing Technology, Ministry of Education, School of Materials Sciences and Engineering, Tsinghua University, Beijing 100084, China.
Materials (Basel). 2017 Oct 27;10(11):1236. doi: 10.3390/ma10111236.
Grain selection is an important process in single crystal turbine blades manufacturing. Selector structure is a control factor of grain selection, as well as directional solidification (DS). In this study, the grain selection and structure design of the spiral selector were investigated through experimentation and simulation. A heat transfer model and a 3D microstructure growth model were established based on the Cellular automaton-Finite difference (CA-FD) method for the grain selector. Consequently, the temperature field, the microstructure and the grain orientation distribution were simulated and further verified. The average error of the temperature result was less than 1.5%. The grain selection mechanisms were further analyzed and validated through simulations. The structural design specifications of the selector were suggested based on the two grain selection effects. The structural parameters of the spiral selector, namely, the spiral tunnel diameter (), the spiral pitch () and the spiral diameter (), were studied and the design criteria of these parameters were proposed. The experimental and simulation results demonstrated that the improved selector could accurately and efficiently produce a single crystal structure.
晶粒选择是单晶涡轮叶片制造中的一个重要过程。选晶器结构是晶粒选择以及定向凝固(DS)的一个控制因素。在本研究中,通过实验和模拟对螺旋选晶器的晶粒选择和结构设计进行了研究。基于元胞自动机-有限差分(CA-FD)方法为选晶器建立了传热模型和三维微观组织生长模型。因此,对温度场、微观组织和晶粒取向分布进行了模拟并进一步验证。温度结果的平均误差小于1.5%。通过模拟进一步分析和验证了晶粒选择机制。基于两种晶粒选择效应提出了选晶器的结构设计规范。研究了螺旋选晶器的结构参数,即螺旋通道直径()、螺距()和螺旋直径(),并提出了这些参数的设计准则。实验和模拟结果表明,改进后的选晶器能够准确、高效地产生单晶结构。