Qiu Jun, Yang Tao, Zhang Ziyuan, Li Qiang, Yan Zixin, Wang Libiao
School of Intelligent Manufacturing, Taizhou University, Taizhou 318000, China.
Zhejiang Provincial Key Laboratory for Cutting Tools, Taizhou University, Taizhou 318000, China.
Materials (Basel). 2022 Apr 7;15(8):2723. doi: 10.3390/ma15082723.
The DD407 single crystal Ni-based superalloy with a face-centered cubic structure exhibits strong anisotropic characteristics. In order to reveal the material chip formation mechanism and the impact effect of crystal orientations on the materials' milling machinability, a combination of experimental observations and theoretical analysis were applied in this study. Considering the resolved shear stress and slip system theories, a fundamental theoretical explanation of the milling force and surface quality along different crystal directions on the (001) crystal plane of the DD407 single crystal Ni-based superalloy was proposed based on a previously constructed anisotropic milling model. Our work in this research verifies that [110] crystal direction on the (001) crystal plane of the DD407 single crystal Ni-based superalloy is the most optimal feeding direction during milling, taking into account surface roughness and morphology, slot bottom plastic deformation, work hardening, and chip edge burr feature.
具有面心立方结构的DD407单晶镍基高温合金表现出很强的各向异性特征。为了揭示材料切屑形成机制以及晶体取向对材料铣削加工性能的影响,本研究采用了实验观察与理论分析相结合的方法。考虑分解切应力和滑移系理论,基于先前构建的各向异性铣削模型,对DD407单晶镍基高温合金(001)晶面上不同晶体方向的铣削力和表面质量提出了基本理论解释。本研究工作证实,考虑到表面粗糙度和形貌、槽底塑性变形、加工硬化和切屑边缘毛刺特征,DD407单晶镍基高温合金(001)晶面上的[110]晶体方向是铣削过程中最优化的进给方向。