Collision avoidance and orientation planning for ball-end cutter

被引:0
作者
Xiangyu Guo
Rui Wang
Shisheng Zhong
机构
[1] Harbin Institute of Technology,School of Mechatronics Engineering
[2] Harbin Institute of Technology,Weihai Key Laboratory of Intelligent Operation and Maintenance
[3] Harbin Institute of Technology,School of Ocean Engineering
来源
Journal of Mechanical Science and Technology | 2023年 / 37卷
关键词
Collision avoidance; Cutter orientation; Path planning; Propeller machining;
D O I
暂无
中图分类号
学科分类号
摘要
Propeller blades have freeform surfaces, and the overlap among the blades limits the adjustment range of cutter orientation, making it extremely difficult to generate the required cutter orientation. Therefore, to assist in quickly designing a safe and reasonable machining scheme, a projection-offset method is designed to calculate the feasible region of a ballend cutter and an XYZ-3RPS hybrid kinematic mechanism. Based on this, a reasonable and smooth cutter orientation can be generated using path-planning and trajectory-optimization algorithms. To this end, a method for obtaining point clouds was first developed. By arranging the point clouds of a blank in the cutter path order, the changes to the blank during the machining process can be reflected through point-cloud deletion. A hierarchical bounding box is established for the moving platform of the cutter, spindle, and mechanism, which can realize the quick screening and classification of collision-point clouds. Second, the collision points are projected onto the same plane, an envelope boundary of the projected point cloud was constructed using an alpha-shapes algorithm, and its cross boundary trimmed using the auxiliary boundary method to obtain the feasible region at the cutter contact point. Moreover, to reduce the computational load, an interpolation method, which reduces the number of calculations, is used. The basic rules for cutter-orientation generation were established using a planning function. Then, the cutter-orientation path was smoothed using the trajectory-optimization algorithm to prevent the cutter from swinging violently. Finally, the effectiveness of this method was verified through propeller experiments.
引用
收藏
页码:4259 / 4269
页数:10
相关论文
共 67 条
  • [1] Janssen A(2017)Propeller manufacture and tolerances Encyclopedia of Maritime and Offshore Engineering 1 1-13
  • [2] Leever S(2019)Design and analysis of a propeller blade used for marine engine International J. of Scientific Research in Science, Engineering and Technology 6 440-445
  • [3] Reddy G K(2002)The analysis of NC machining efficiency for marine propellers J. of Materials Processing Technology 124 389-395
  • [4] Sravanthhi B(2014)Algorithms for collision detection and avoidance for five-axis NC machining: a state of the art review Computer-Aided Design 51 1-17
  • [5] Kuo H C(2018)Automatic generation of globally assured collision free orientations for 5-axis ball-end tool-paths Computer-Aided Design 102 171-181
  • [6] Dzan W Y(2018)Collision detection algorithm based on AABB bounding box and space division J. of Image and Graphics 23 1925-1937
  • [7] Tang T D(2019)A tracking-based numerical algorithm for efficiently constructing the feasible space of tool axis of a conical ball-end cutter in five-axis machining Computer-Aided Design 117 102756-214
  • [8] Ezair B(2020)Parallelized collision detection with applications in virtual bone machining Computer Methods and Programs in Biomedicine 188 105263-947
  • [9] Elber G(2019)Accessibility for line-cutting in freeform surfaces Computer-Aided Design 114 202-277
  • [10] Ruiyun Y U(2001)Real-time interference analysis between a tool and an environment Computer-Aided Design 33 935-114