Self-Consolidation Mechanism of Nanostructured Ti5Si3 Compact Induced by Electrical Discharge

Joint Authors

Lee, W. H.
Cheon, Y. W.
Jo, Y. H.
Seong, J. G.
Jo, Y. J.
Kim, Y. H.
Noh, M. S.
Jeong, H. G.
Van Tyne, C. J.
Chang, S. Y.

Source

The Scientific World Journal

Issue

Vol. 2015, Issue 2015 (31 Dec. 2015), pp.1-8, 8 p.

Publisher

Hindawi Publishing Corporation

Publication Date

2015-03-25

Country of Publication

Egypt

No. of Pages

8

Main Subjects

Medicine
Information Technology and Computer Science

Abstract EN

Electrical discharge using a capacitance of 450 μF at 7.0 and 8.0 kJ input energies was applied to mechanical alloyed Ti5Si3 powder without applying any external pressure.

A solid bulk of nanostructured Ti5Si3 with no compositional deviation was obtained in times as short as 159 μsec by the discharge.

During an electrical discharge, the heat generated is the required parameter possibly to melt the Ti5Si3 particles and the pinch force can pressurize the melted powder without allowing the formation of pores.

Followed rapid cooling preserved the nanostructure of consolidated Ti5Si3 compact.

Three stepped processes during an electrical discharge for the formation of nanostructured Ti5Si3 compact are proposed: (a) a physical breakdown of the surface oxide of Ti5Si3 powder particles, (b) melting and condensation of Ti5Si3 powder by the heat and pinch pressure, respectively, and (c) rapid cooling for the preservation of nanostructure.

Complete conversion yielding a single phase Ti5Si3 is primarily dominated by the solid-liquid mechanism.

American Psychological Association (APA)

Lee, W. H.& Cheon, Y. W.& Jo, Y. H.& Seong, J. G.& Jo, Y. J.& Kim, Y. H.…[et al.]. 2015. Self-Consolidation Mechanism of Nanostructured Ti5Si3 Compact Induced by Electrical Discharge. The Scientific World Journal،Vol. 2015, no. 2015, pp.1-8.
https://search.emarefa.net/detail/BIM-1079162

Modern Language Association (MLA)

Lee, W. H.…[et al.]. Self-Consolidation Mechanism of Nanostructured Ti5Si3 Compact Induced by Electrical Discharge. The Scientific World Journal No. 2015 (2015), pp.1-8.
https://search.emarefa.net/detail/BIM-1079162

American Medical Association (AMA)

Lee, W. H.& Cheon, Y. W.& Jo, Y. H.& Seong, J. G.& Jo, Y. J.& Kim, Y. H.…[et al.]. Self-Consolidation Mechanism of Nanostructured Ti5Si3 Compact Induced by Electrical Discharge. The Scientific World Journal. 2015. Vol. 2015, no. 2015, pp.1-8.
https://search.emarefa.net/detail/BIM-1079162

Data Type

Journal Articles

Language

English

Notes

Includes bibliographical references

Record ID

BIM-1079162