Prediction of steady-state freeze front position during 3D printing of microstructures

被引:9
|
作者
Gannarapu, Abhishek [1 ]
Dutta, Prashanta [1 ]
Gozen, B. Arda [1 ]
机构
[1] Washington State Univ, Sch Mech & Mat Engn, Pullman, WA 99164 USA
关键词
Additive manufacturing; Freeze-front propagation; 3D printing; Solidification; EGaln; LIQUID;
D O I
10.1016/j.ijheatmasstransfer.2017.07.092
中图分类号
O414.1 [热力学];
学科分类号
摘要
Additive manufacturing with alloys at micro and meso-scales is an emerging technology with applications in printed, flexible or conformable electronics, solar energy and biomedical science. Among various additive manufacturing techniques, the recently introduced 3D-freeze-printing technique has the potential to revolutionize printed circuits, sensors and conformal wearable electronics. In 3D-freeze-printing, low melting point alloys are dispensed through a micro-scale nozzle on a cooled substrate and frozen simultaneously to create three-dimensional structures. The quality of the 3D printed structures relies on a continuous liquid-to-solid phase change of the printed filamentary structures through the propagation of a freeze-front. Thus to achieve stable printing of complex 3D structures, the study of freeze-front position is critical. In this paper, we present a thermal model to predict the steady-state freeze-front position during the freeze-printing process. Thermal modeling can aid in predicting parameter dependent process response and help achieve robust 3D printing with high accuracy and high throughput. Owing to the disparate length scale and nature of materials, quasi 1D energy equations are developed to model the printed structures and dispensing nozzle, while 2D energy equations are used to model the heat transfer from the liquid alloy reservoir. A finite volume method with a modified variable time-step approach is used for the discretization of governing differential equations to find the freeze front. The validity of this model was experimentally tested for three cases: vertical printed structures with and without a connected nozzle and a horizontally printed structure with a connected nozzle. It was shown that the model predicted the freeze-front position with high accuracy for various substrate temperatures and process conditions. (C) 2017 Elsevier Ltd. All rights reserved.
引用
收藏
页码:743 / 753
页数:11
相关论文
共 50 条
  • [1] Unusual microstructures by 3D printing
    Clarke, Amy J.
    [J]. NATURE MATERIALS, 2022, 21 (11) : 1223 - 1224
  • [2] Unusual microstructures by 3D printing
    Amy J. Clarke
    [J]. Nature Materials, 2022, 21 : 1223 - 1224
  • [3] 3D steady-state MR cisternography in CSF rhinorrhoea
    Jayakumar, PN
    Kovoor, JME
    Srikanth, SG
    Praharaj, SS
    [J]. ACTA RADIOLOGICA, 2001, 42 (06) : 582 - 584
  • [4] Microstructures to Control Elasticity in 3D Printing
    Schumacher, Christian
    Bickel, Bernd
    Rys, Jan
    Marschner, Steve
    Daraio, Chiara
    Gross, Markus
    [J]. ACM TRANSACTIONS ON GRAPHICS, 2015, 34 (04):
  • [5] 3D FREEZE PRINTING: DEVELOPMENT OF AN EXPERIMENTAL SETUP AND DETERMINATION OF 3D PRINTING PARAMETERS
    Tetik, Halil
    Lin, Dong
    [J]. PROCEEDINGS OF THE ASME 2020 15TH INTERNATIONAL MANUFACTURING SCIENCE AND ENGINEERING CONFERENCE (MSEC2020), VOL 1A, 2020,
  • [6] Steady-state dynamics of a 3D tensegrity structure: Simulations and experiments
    Michielsen, J.
    Fey, R. H. B.
    Nijmeijer, H.
    [J]. INTERNATIONAL JOURNAL OF SOLIDS AND STRUCTURES, 2012, 49 (7-8) : 973 - 988
  • [7] Steady-State 3D Trapping and Manipulation of Microbubbles Using Thermocapillary
    Munoz-Perez, F. M.
    Ortega-Mendoza, J. G.
    Padilla-Vivanco, A.
    Toxqui-Quitl, C.
    Sarabia-Alonso, J. A.
    Ramos-Garcia, R.
    [J]. FRONTIERS IN PHYSICS, 2020, 8
  • [8] Research on Steady-State Visual Evoked Potentials in 3D Displays
    Chien, Yu-Yi
    Lee, Chia-Ying
    Lin, Fang-Cheng
    Huang, Yi-Pai
    Ko, Li-Wei
    Shieh, Han-Ping D.
    [J]. THREE-DIMENSIONAL IMAGING, VISUALIZATION, AND DISPLAY 2015, 2015, 9495
  • [9] Exact steady-state solutions of 3D toroidal flows and their stability
    Yang, Jiayan
    Wang, Quan
    Liu, Ruikuan
    [J]. JOURNAL OF GEOMETRY AND PHYSICS, 2018, 132 : 205 - 221
  • [10] 3D Cartesian fast interrupted steady-state (FISS) imaging
    Kustner, Thomas
    Bustin, Aurelien
    Jaubert, Olivier
    Neji, Radhouene
    Prieto, Claudia
    Botnar, Rene
    [J]. MAGNETIC RESONANCE IN MEDICINE, 2019, 82 (05) : 1617 - 1630