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Basic Principles and Techniques in Powder Metallurgy

Archana Pramod Parnerkar, Jayshri Deepak Shastri

Abstract


This study provides a brief overview of recent advances in powder metallurgy methods, and their applications as challenges encountered throughout the research. The primary goal of this paper is to showcase the different uses of modern powder metallurgy technology and to inspire visitors to learn more about these topics and produce more papers about it. Metallic injection moulding (MIM) is another term for advanced powder metallurgy. The technique could be used to create complex load balancer with a minimum financial commitment. Powder metallurgy is a new technology that uses sintering temperatures underneath the melting point to create new materials diffusing different metals and ceramic powders used raw components. This study also includes a brief discussion of the production process, like the benefits, uses, and restrictions of powder metallurgy. Powder metallurgy is now used to make a wide range of components, such as metal cutting and refractory parts. Mechanical engineers will find this paper helpful in studying about the principles of metal powder processing. The powder may be easily moulded directly into the ultimate product which is an advantage of this procedure.


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References


Akanksha Verma. Powder metallurgy: Advanced techniques and applications. International Journal of Advance Research, Ideas and Innovations in Technology. 2018; 4(4): 425–426.

RL Orban. New Research Directions in Powder Metallurgy. Romanian Reports in Physics. 2004; 56(3): 505–516.

Osef Sedlaka. Study of materials produced by powder metallurgy using classical and modern additive laser technology. Procedia Engineering. Jan 2015; 100: 1232–1241.

Sandeep Chauhan et al. Analysis of powder metallurgy process parameters for mechanical properties of sintered Fe–Cr–Mo alloy steel. Materials and Manufacturing Processes. Apr 2017; 32(5): 537–541.

Hideshi Miura. Introduction and materials used in powder metallurgy. NTN Technical Review. 2014; 82.

RL Orban. On the microstructure formation in sintering by infiltration of loose powders. Sintering Science and Technology. 2000; 253–258.

Yuvaraj N, Pradeep Kumar M. Multi-response optimization of abrasive water jet cutting process parameters using TOPSIS approach. Materials and Manufacturing Processes. Jul 2015; 30(7): 882–889.

Upadhyaya GS. Powder metallurgy technology. Cambridge Int Science Publishing; 1997.

Dewidar MM, Yoon HC, Lim JK. Mechanical properties of metals for biomedical applications using powder metallurgy process: A review. Metals and Materials International. Jun 2006; 12(3): 193–206.

Torres Y, Pavón JJ, Nieto I, Rodríguez JA. Conventional powder metallurgy process and characterization of porous titanium for biomedical applications. Metallurgical and Materials Transactions B. Aug 2011; 42(4): 891–900.

Selcuk C, Bond S, Woollin P. Secondary & finishing operations: Critical review of joining processes for powder metallurgy parts. European Congress and Exhibition on Powder Metallurgy. European PM Conference Proceedings 2008 (Vol. 3, p. 255). The European Powder Metallurgy Association.

Liao J, Tan MJ. Mixing of carbon nanotubes (CNTs) and aluminum powder for powder metallurgy use. Powder technology. Mar 2011; 10; 208(1): 42–48.

Samal P, Newkirk J. Powder metallurgy methods and applications. ASM handbook of powder metallurgy. 2015; 7.

Qian M, Froes FH, (eds). Titanium powder metallurgy: Science, technology and applications.


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