Effects of layer thickness and binder saturation level parameters on 3D printing process

被引:256
作者
Vaezi, Mohammad [1 ]
Chua, Chee Kai [2 ]
机构
[1] Babol Noshirvani Univ Technol, Dept Mech Engn, Babol Sar, Iran
[2] Nanyang Technol Univ, Sch Mech & Aerosp Engn, Singapore 639798, Singapore
关键词
3D printing; Layer thickness; Binder saturation; Surface quality; Mechanical strength; Dimensional accuracy; FABRICATION; ACCURACY; INK;
D O I
10.1007/s00170-010-2821-1
中图分类号
TP [自动化技术、计算机技术];
学科分类号
0812 ;
摘要
Various parameters, such as binder properties, printing layer thickness, powder size, and binder saturation level, have effects on the strength and surface finish of the three-dimensional printing (3D printing) process. The objective of this research is to study the effects of two parameters of layer thickness and binder saturation level on mechanical strength, integrity, surface quality, and dimensional accuracy in the 3D printing process. Various specimens include tensile and flexural test specimens and individual network structure specimens are made by the 3D printing process under different layer thicknesses and binder saturation by use of ZCorp.'s ZP102 powder and Zb56 binder. Two printing layer thicknesses, 0.1 and 0.087 mm, are evaluated at 90% and 125% binder saturation levels. Experimental findings show that under the same layer thickness, increment of binder saturation level from 90% to 125% would result in an increase of tensile and flexural strengths of the specimens and decrease of dimensional accuracy and surface uniformity of specimens. On the other hand, under the same binder saturation conditions, increase in layer thickness from 0.087 to 0.1 mm would decrease tensile strength and increase flexural strength. Also, it gives better uniformity on the surface.
引用
收藏
页码:275 / 284
页数:10
相关论文
共 27 条
[1]   Direct inkjet printing of Si3N4:: Characterization of ink, green bodies and microstructure [J].
Cappi, B. ;
Oezkol, E. ;
Ebert, J. ;
Telle, R. .
JOURNAL OF THE EUROPEAN CERAMIC SOCIETY, 2008, 28 (13) :2625-2628
[2]   Solid freeform fabrication of ceramics [J].
Cawley, JD .
CURRENT OPINION IN SOLID STATE & MATERIALS SCIENCE, 1999, 4 (05) :483-489
[3]   Rapid prototyping and tooling techniques: a review of applications for rapid investment casting [J].
Cheah, CM ;
Chua, CK ;
Lee, CW ;
Feng, C ;
Totong, K .
INTERNATIONAL JOURNAL OF ADVANCED MANUFACTURING TECHNOLOGY, 2005, 25 (3-4) :308-320
[4]   Direct digital manufacturing of three-dimensional functionally graded material objects [J].
Chiu, W. K. ;
Yu, K. M. .
COMPUTER-AIDED DESIGN, 2008, 40 (12) :1080-1093
[5]  
Chua CK, 2010, RAPID PROTOTYPING: PRINCIPLES AND APPLICATIONS, 3RD EDITION, DOI 10.1142/6665
[6]   3-DIMENSIONAL RAPID PROTOTYPING TECHNOLOGIES AND KEY DEVELOPMENT AREAS [J].
CHUA, CK .
COMPUTING & CONTROL ENGINEERING JOURNAL, 1994, 5 (04) :200-206
[7]   A study of the state-of-the-art rapid prototyping technologies [J].
Chua, CK ;
Chou, SM ;
Wong, TS .
INTERNATIONAL JOURNAL OF ADVANCED MANUFACTURING TECHNOLOGY, 1998, 14 (02) :146-152
[8]   Rapid prototyping of electrically conductive components using 3D printing technology [J].
Czyzewski, J. ;
Burzynski, P. ;
Gawel, K. ;
Meisner, J. .
JOURNAL OF MATERIALS PROCESSING TECHNOLOGY, 2009, 209 (12-13) :5281-5285
[9]   Investigating the achievable accuracy of three dimensional printing [J].
Dimitrov, D ;
van Wijck, W ;
Schreve, K ;
de Beer, N .
RAPID PROTOTYPING JOURNAL, 2006, 12 (01) :42-52
[10]  
FREMOND F, 1996, SHAPE MEMORY ALLOYS