Topological awareness towards collision-free multi-axis curved layer additive manufacturing

被引:2
|
作者
Jayakody, Don Pubudu Vishwana Joseph [1 ,2 ]
Lau, Tak Yu
Kim, Hyunyoung [3 ]
Tang, Kai [4 ,5 ]
Thomas-Seale, Lauren E. J.
机构
[1] Univ Birmingham, Dept Mech Engn, Birmingham B15 2TT, England
[2] Univ Birmingham, Topol Design Ctr Doctoral Training, Birmingham B15 2TT, England
[3] Univ Birmingham, Dept Comp Sci, Birmingham B15 2TT, England
[4] HKUST Shenzhen, Hong Kong Collaborat Innovat Res Inst, Shenzhen 518057, Peoples R China
[5] Hong Kong Univ Sci & Technol Guangzhou, Smart Mfg Thrust, Guangzhou, Peoples R China
基金
英国工程与自然科学研究理事会;
关键词
Topological analysis; Tool orientation optimisation; Reeb graphs; Curved layer process planning; Multi -axis 3D printing; REEB GRAPHS; SURFACE; CURVATURE; SHAPE;
D O I
10.1016/j.addma.2024.104247
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
We present a topology-aware computational framework that enables global collision-free and support-structurefree material extrusion for curved layer multi-axis printing of a range of high-genus and simply connected models. The nature of multi-axis additive manufacturing facilitates continuous variation of build direction, which paves the way for numerous approaches of geometry-based curved layer design. However, due to unawareness of global topological features, prevention of collision between the printer nozzle and the workpiece can either remain uncertain or demand for exhaustive algorithmic approaches, depending on the topological and geometrical complexity of a given mesh model. In this paper, we present a topological analysis framework that draws inspiration from the concepts of Reeb graph and Morse theory, to distinguish between collision-prone and collision-free regions of mesh models. We provide an exact definition for global collision-inducing features in regions of risk and optimise the nozzle orientation vector field to avoid global collisions whilst adhering to the overhang angle constraints. A new shape analysis method is then proposed to find the model orientation which maximises the manufacturability of bifurcating simply connected models. To validate our algorithmic framework, several high-genus and bifurcating simply connected models are printed using a robotic multi-axis printer. The experimental results demonstrate the feasibility and effectiveness of our framework for minimising global collisions in multi-axis curved layer additive manufacturing for a range of mesh models.
引用
收藏
页数:21
相关论文
共 47 条
  • [1] Collision-Free Multi-Axis Tool-Path for Additive Manufacturing
    Nishat R.I.
    Bahoo Y.
    Georgiou K.
    Hedrick R.
    Urbanic R.J.
    Computer-Aided Design and Applications, 2023, 20 (06): : 1094 - 1109
  • [2] Self-support structure topology optimization for multi-axis additive manufacturing incorporated with curved layer slicing
    Xu, Shuzhi
    Liu, Jikai
    He, Dong
    Tang, Kai
    Yaji, Kentaro
    COMPUTER METHODS IN APPLIED MECHANICS AND ENGINEERING, 2025, 438
  • [3] Error mapping method for multi-axis additive manufacturing system
    Ramamurthy, Rajesh
    Bromberg, Vadim
    Fiorillo, Timothy
    Harding, Kevin
    DIMENSIONAL OPTICAL METROLOGY AND INSPECTION FOR PRACTICAL APPLICATIONS VII, 2018, 10667
  • [4] A review of multi-axis additive manufacturing: Potential, opportunity and challenge
    Tang, Pengfei
    Zhao, Xianfeng
    Shi, Hongyan
    Hu, Bo
    Ding, Jinghu
    Yang, Buquan
    Xu, Wei
    ADDITIVE MANUFACTURING, 2024, 83
  • [5] Layer-by-layer generation of optimized joint trajectory for multi-axis robotized additive manufacturing of parts of revolution
    Chalvin, Maxime
    Campocasso, Sebastien
    Hugel, Vincent
    Baizeau, Thomas
    ROBOTICS AND COMPUTER-INTEGRATED MANUFACTURING, 2020, 65
  • [6] Geometry-Based Process Planning for Multi-Axis Support-Free Additive Manufacturing
    Murtezaoglu, Yavuz
    Plakhotnik, Denys
    Stautner, Marc
    Vaneker, Tom
    van Houten, Fred J. A. M.
    6TH CIRP GLOBAL WEB CONFERENCE - ENVISAGING THE FUTURE MANUFACTURING, DESIGN, TECHNOLOGIES AND SYSTEMS IN INNOVATION ERA (CIRPE 2018), 2018, 78 : 73 - 78
  • [7] Fabrication sequence optimization for minimizing distortion in multi-axis additive manufacturing
    Wang, Weiming
    van Keulen, Fred
    Wu, Jun
    COMPUTER METHODS IN APPLIED MECHANICS AND ENGINEERING, 2023, 406
  • [8] Autonomous direct freeform fabrication strategy for multi-axis additive manufacturing
    Xiao, Xinyi
    Lee, Yousub
    Feldhausen, Thomas
    INTERNATIONAL JOURNAL OF ADVANCED MANUFACTURING TECHNOLOGY, 2025, 137 (7-8): : 3525 - 3539
  • [9] Singularity-Aware Motion Planning for Multi-Axis Additive Manufacturing
    Zhang, Tianyu
    Chen, Xiangjia
    Fang, Guoxin
    Tian, Yingjun
    Wang, Charlie C. L.
    IEEE ROBOTICS AND AUTOMATION LETTERS, 2021, 6 (04) : 6172 - 6179
  • [10] ROBOT TRAJECTORY GENERATION FOR MULTI-AXIS WIRE ARC ADDITIVE MANUFACTURING
    Bhatt, Prahar M.
    McNulty, Zachary
    Gupta, Satyandra K.
    PROCEEDINGS OF ASME 2022 17TH INTERNATIONAL MANUFACTURING SCIENCE AND ENGINEERING CONFERENCE, MSEC2022, VOL 1, 2022,