Characterization of Micro Metal Injection Molding by Using PMMA & PEG

Article Preview

Abstract:

Due to its versatility, micro metal injection molding has become an alternative method in powder metallurgy where it can produce small part with a minimal number of waste. The success of micro MIM is greatly influenced by feedstock characteristics. This paper investigated the characterization and optimization which both of them plays an important characteristic in determining the successful of micro MIM. In this paper, stainless steel SS 316L was used with composite binder, which consists of PEG (Polyethelena Glycol), PMMA (Polymethyl Methacrilate) and SA (Stearic Acid). The rheology properties are investigated using Shimadzu Flowtester CFT-500D capillary rheometer. The geometry of water atomised stainless steel powder are irregular shape, therefore it is expected significant changes in the rheological results that can influence the microcomponent, surface quality, shape retention and resolution capabilities. From rheological characteristics, feedstock with 61.5% shows a significant value with several injection parameters were optimized through screening experiment such as injection pressure (A), injection temperature (B), mold temperature (C), injection time (D) and holding time (E). Besides that, interaction effects between injection pressure, injection temperature and mold temperature were also considered to optimize in the Taguchis orthogonal array. Result shows that 61.5%vol contributes a significant stability over a range of temperature and the best powder loading from a critical powder volume percentage (CPVP) and rheological point of view. Furthermore interaction between injection temperature and mold temperature (BxC) give highest significant factor followed by interaction between injection pressure and mold temperature (AxC).

You might also be interested in these eBooks

Info:

Periodical:

Pages:

992-996

Citation:

Online since:

April 2013

Export:

Price:

Permissions CCC:

Permissions PLS:

Сopyright:

© 2013 Trans Tech Publications Ltd. All Rights Reserved

Share:

Citation:

[1] Liu, Z.Y., Loh, N.H., Tor, S.B., Khor, K.A., Murakoshi, Y., Maeda, R., Shimizu,T., 2002. Micropowder injection molding .J. Mater. Proc. Tech. 127, 165-168.

DOI: 10.1016/s0924-0136(02)00119-x

Google Scholar

[2] Huang, B., Liang, S., Qu, X., 2003. The rheology of metal injection molding. JMPT 137, 132-137.

Google Scholar

[3] Karatas, C., Kocer, A., Unal, H.I., Saritas, S., 2004. Rheological properties of feedstock prepared with steatite powder and polyethylene-based thermoplastic binders. J. of Materials Processing Technology 152, 77-83.

DOI: 10.1016/j.jmatprotec.2004.03.009

Google Scholar

[4] Reddy, J.H., Ravi, N., Vijiayakumar, M., 2000 . A simple model for viscosity of powder injection moulding mixes with binder content above powder critical binder volume concentration. J. of European Ceramic Society 20, 2183-2190.

DOI: 10.1016/s0955-2219(00)00096-0

Google Scholar

[5] Ibrahim MHI, Muhamad N, Sulong AB, Rheological investigation of water atomized stainless steel powder for micro metal injection molding, International Journal of Mechanical and Manufacturing Engineering, Vol 4. (2009)No. 1, 1-8.

Google Scholar

[6] Quinard, C., Barriere, T., Gelin, J.C., 2008. Development and property identification of 316L stainless steel feedstock for PIM and µPIM. Powder Technology (corrected proof).

DOI: 10.1016/j.powtec.2008.04.044

Google Scholar

[7] Chuankrerkkul, N., Messer, P.F., Davies, H.A., Ellis, B., 2005. The effect of a PEG/PMMA composite binder system on the powder injection moulding of Wc-Co hardmetal components. Advances in Powder Metallurgy & Particulate Materials (2005).

Google Scholar

[8] Ghani JA, Choudhury IA, Hassan HH, Application of Taguchi method in the optimization of end milling parameters, J. of Materials Processing Technology 145(2004) 84-92.

DOI: 10.1016/s0924-0136(03)00865-3

Google Scholar

[9] Chen RS, Lee HH, Yu CY, Application of Taguchi's method on the optimal process design of an injection molded PC/PBT automobile bumper, Composite Structures 39(1997); 209-214.

DOI: 10.1016/s0263-8223(97)00110-4

Google Scholar

[10] Tuncay E, Babur O, Minimization of warpage and sink index in an injection-molded thermoplastic parts using Taguchi optimization method, Mats and Design 27(2006); 853-861.

DOI: 10.1016/j.matdes.2005.03.017

Google Scholar

[11] Mohd H.I. Ibrahim, Norhamidi Muhamad, Abu B. Sulong, Khairur R. Jamaludin, Nor H.M. Nor and Sufizar Ahmad (2011).

Google Scholar

[12] Oktem H, Tuncay E, Ibrahim U, Application of Taguchi optimization technique in determining plastic injection molding process parameters for a thin shell part, Materials and Design 28(2007); 1271-1278.

DOI: 10.1016/j.matdes.2005.12.013

Google Scholar