Mechanical analysis of ultrasonic bonding for rapid prototyping

被引:60
|
作者
Gao, Y [1 ]
Doumanidis, C [1 ]
机构
[1] Tufts Univ, Dept Mech Engn, Medford, MA 02155 USA
关键词
D O I
10.1115/1.1459082
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Ultrasonic bonding of thin foils has been recently introduced to rapid prototyping of complex-shaped and/or internally structured layered parts. This article provides the Mechanical analysis of an elementary ultrasonic spot welding process of a metal foil on a previously deposited substrate. A 2-D, quasi-static/dynamic, elasto-plastic numerical model of the stress/strain field is developed by finite element analysis. Its frictional boundary conditions at the foil/substrate interface are described via a simpler plain stress, static analytical formulation, and identified experimentally, by strain measurements on the substrate surface, adjacently to the ultrasonic probe. The calibrated computational simulation is validated in the laboratory and applied in studying the elastic stress concentrations, plastic deformation initiation and propagation patterns, the slippage at the interface surface and the dynamic effects of ultrasonic loading on the bonding process. This mechanical model is suitable for analysis of multi-joint ultrasonic rapid prototyping and its applications in fabrication of multi-material, functional internal structures with embedded components.
引用
收藏
页码:426 / 434
页数:9
相关论文
共 50 条
  • [21] Validation of rapid prototyping material for rapid experimental stress analysis
    Schley, C
    Smith, GF
    Calvert, GC
    [J]. SOLID FREEFORM FABRICATION PROCEEDINGS, SEPTEMBER 1997, 1997, : 635 - 642
  • [22] Anisotropic Mechanical Properties of Rapid Prototyping Parts Fabricated by Stereolithography
    Yang, Na-Na
    Liu, Hao-Rui
    Mi, Ning
    Zhou, Qi
    He, Li-Qun
    Liu, Xin
    Zhao, Lei
    Yang, Lai-Dong
    [J]. SCIENCE OF ADVANCED MATERIALS, 2021, 13 (09) : 1812 - 1819
  • [23] Development of microsprinkler prototypes through rapid prototyping and mechanical lathing
    Almeida, Alexsandro C. S.
    Botrel, Tarlei A.
    Souza, Wanderley J.
    Oliveira, Marcelo F.
    Camargo, Antonio P.
    [J]. REVISTA BRASILEIRA DE ENGENHARIA AGRICOLA E AMBIENTAL, 2010, 14 (07): : 686 - 691
  • [24] Composite rapid prototyping: overcoming the drawback of poor mechanical properties
    Karalekas, D
    Antoniou, K
    [J]. JOURNAL OF MATERIALS PROCESSING TECHNOLOGY, 2004, 153 : 526 - 530
  • [25] Filling Modules into Spaces for Rapid Prototyping of Mechanical Assembly: Algorithm
    Qian, Z. Q.
    Han, B.
    Lin, W. J.
    Lin, Y.
    Zhang, W. J.
    [J]. PROCEEDINGS OF THE 2016 IEEE 11TH CONFERENCE ON INDUSTRIAL ELECTRONICS AND APPLICATIONS (ICIEA), 2016, : 1779 - 1785
  • [26] ANYL 398-Solvent imprinting and bonding for rapid prototyping of polymer microchips
    Sun, Xiuhua
    Woolley, Adam T.
    [J]. ABSTRACTS OF PAPERS OF THE AMERICAN CHEMICAL SOCIETY, 2007, 234
  • [27] Rapid prototyping by laser foil bonding and cutting: Thermomechanical modeling and process optimization
    Hardjadinata, Glory
    Doumanidis, Charalabos C.
    [J]. Journal of Manufacturing Processes, 2001, 3 (02) : 108 - 119
  • [28] Principle of Error Analysis for Rapid Prototyping Technology
    Peng An-hua
    [J]. FRONTIERS OF MANUFACTURING AND DESIGN SCIENCE II, PTS 1-6, 2012, 121-126 : 330 - +
  • [29] Analysis of errors in medical rapid prototyping models
    Choi, JY
    Choi, JH
    Kim, NK
    Kim, Y
    Lee, JK
    Kim, MK
    Lee, JH
    Kim, MJ
    [J]. INTERNATIONAL JOURNAL OF ORAL AND MAXILLOFACIAL SURGERY, 2002, 31 (01) : 23 - 32
  • [30] Experimental analysis of properties of materials for rapid prototyping
    Pilipovic, Ana
    Raos, Pero
    Sercer, Mladen
    [J]. INTERNATIONAL JOURNAL OF ADVANCED MANUFACTURING TECHNOLOGY, 2009, 40 (1-2): : 105 - 115