Study on the Crystal Structure and Microstructure Evolution of Shock-processed Titanium Powder

Authors

  • Akash Deep Sharma Department of Physics, Government College Chowari, Chamba, 176302, India
  • A.K. Sharma Dean Research, Om Sterling University, Hisar -125001, India
  • N. Thakur Department of Physics, Himachal Pradesh University, Shimla, 171005, India

DOI:

https://doi.org/10.30564/jmmr.v2i2.771

Abstract

Titanium powder was rapidly solidified by using shock-wave consolidation technique. The critical parameters were controlled by intrumented detonics and pin-oscillography. The compacted specimens were investigated for crystal structure and microstructural strengthening by using standard diagnostic techniques. The density of the final product was found to be greater than 96% of the theoretical value. X-ray diffraction pattern reveals intact crystalline structure without the presence of any undesired phases. The particle size reduction indicated by XRD was supported by laser diffraction based particle size analyzer. Results from energy dispersive spectroscopy ruled out the possibility of any segregation within the compacts. Scanning electron microscopy showed crack-free, voids-free, melt-free, fracture-less compacts of titanium with a unidirectional dendrite orientation without any grain-growth.

Keywords:

Crystal structure, Microstructure, Shock waves, Rapid solidification, Titanium

References

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How to Cite

Sharma, A. D., Sharma, A., & Thakur, N. (2019). Study on the Crystal Structure and Microstructure Evolution of Shock-processed Titanium Powder. Journal of Metallic Material Research, 2(2), 20–25. https://doi.org/10.30564/jmmr.v2i2.771

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Article