Process optimisation in pulsed laser micromachining with applications in medical device manufacturing

被引:31
|
作者
Chen, K [1 ]
Yao, YL [1 ]
机构
[1] Columbia Univ, Dept Mech Engn, New York, NY 10027 USA
关键词
design of experiment; Nd : YAG laser;
D O I
10.1007/s001700050152
中图分类号
TP [自动化技术、计算机技术];
学科分类号
0812 ;
摘要
Pulsed laser machining offers many unique capabilities that continuous-wave (CW) laser machining cannot. In pulsed laser machining, however, the additional process parameters of peak power, pulse frequency and pulse duration make it more difficult to find and fine tune a suitable operation window. This becomes harder in micromachining applications where tolerance of inaccuracy is smaller. How to determine these parameters in a systematic way is of great interest. This paper presents a hybrid approach, in which an analysis of the interactive reactions between various process parameters and their influence on machining quality if first conducted. Based on an energy balance as well as on the characteristics of pulsed laser machining, these relationships lead to the establishment of several guidelines. These guidelines are followed to determine an initial set of process parameters that are refined in the subsequent design of an experiment. The approach is followed in a precision medical device manufacturing case where a six-variable fractional factorial design with multiple responses is chosen to quantify the effects of key process parameters on visual and metallurgical responses.
引用
收藏
页码:243 / 249
页数:7
相关论文
共 50 条
  • [21] Ultrashort Pulsed Laser Micromachining of Polycrystalline Diamond
    Li, Zengqiang
    Wang, Jun
    Wu, Qi
    ULTRA-PRECISION MACHINING TECHNOLOGIES, 2012, 497 : 220 - 224
  • [22] Design Optimisation of Passive Humidification Device for Intensive Care Medical Applications
    Shafik, Mahmoud
    Lechevretel, Anne
    ADVANCES IN MANUFACTURING TECHNOLOGY XXX, 2016, 3 : 263 - 268
  • [23] Investigation of the process of pulsed laser deposition of BaTiO3 ferroelectric thin films for device applications
    Kabadjova, TD
    Atanasov, PA
    Tomov, RI
    Zherikhin, A
    Ouzounov, DG
    TENTH INTERNATIONAL SCHOOL ON QUANTUM ELECTRONICS: LASER PHYSICS AND APPLICATIONS, 1999, 3571 : 349 - 353
  • [24] RAPID PROTOTYPING USE IN MANUFACTURING COMPONENTS OF A MEDICAL LASER DEVICE
    Iliescu, Mihaiela
    Comanescu, Brindus
    Nutu, Emil
    ANNALS OF DAAAM FOR 2008 & PROCEEDINGS OF THE 19TH INTERNATIONAL DAAAM SYMPOSIUM, 2008, : 627 - 628
  • [25] PULSED-LASER DEPOSITION OF SUPERLATTICE MATERIALS FOR DEVICE APPLICATIONS
    TREECE, RE
    HORWITZ, JS
    DORSEY, PC
    CHRISEY, DB
    TANG, J
    WILLIAMS, RS
    ABSTRACTS OF PAPERS OF THE AMERICAN CHEMICAL SOCIETY, 1994, 208 : 278 - PHYS
  • [26] Pulsed-laser deposition for organic electroluminescent device applications
    Farrar, SR
    Contoret, AEA
    O'Neill, M
    Nicholls, JE
    Eastwood, AJ
    Kelly, SM
    APPLIED PHYSICS LETTERS, 2000, 76 (18) : 2553 - 2555
  • [27] Picosecond pulsed laser ablation of dielectric rods: Angle-dependent ablation process model for laser micromachining
    Boerner, P.
    Hajri, M.
    Wahl, T.
    Weixler, J.
    Wegener, K.
    JOURNAL OF APPLIED PHYSICS, 2019, 125 (23)
  • [28] Micromachining - Miniature micromechanical device modulates laser
    Peach, LA
    LASER FOCUS WORLD, 1997, 33 (10): : 49 - 50
  • [29] Excimer Laser Micromachining and its Applications
    Jacob, James
    Shanmugavelu, P.
    Balasubramaniam, R.
    Singh, Ramesh K.
    LASERS BASED MANUFACTURING, 2015, : 157 - 177
  • [30] Applications test potential of laser micromachining
    Ogura, G
    Angell, J
    Wall, D
    LASER FOCUS WORLD, 1998, 34 (06): : 117 - +