scholarly journals Spark plasma sintering for high-rate diffusion welding of a UFG titanium alloy PT3V

Author(s):  
A V Nokhrin ◽  
M S Boldin ◽  
E A Lantsev ◽  
M M Vostokov ◽  
M Yu Gryaznov ◽  
...  
2020 ◽  
Vol 50 ◽  
pp. 713-718
Author(s):  
Kaihua Xu ◽  
Yong Xue ◽  
Zhimin Zhang ◽  
Qiang Wang ◽  
Jiangpeng Yan ◽  
...  

Materials ◽  
2019 ◽  
Vol 12 (3) ◽  
pp. 541 ◽  
Author(s):  
Dina Dudina ◽  
Boris Bokhonov ◽  
Eugene Olevsky

Spark plasma sintering (SPS), a sintering method that uses the action of pulsed direct current and pressure, has received a lot of attention due to its capability of exerting control over the microstructure of the sintered material and flexibility in terms of the heating rate and heating mode. Historically, SPS was developed in search of ways to preserve a fine-grained structure of the sintered material while eliminating porosity and reaching a high relative density. These goals have, therefore, been pursued in the majority of studies on the behavior of materials during SPS. Recently, the potential of SPS for the fabrication of porous materials has been recognized. This article is the first review to focus on the achievements in this area. The major approaches to the formation of porous materials by SPS are described: partial densification of powders (under low pressures, in pressureless sintering processes or at low temperatures), sintering of hollow particles/spheres, sintering of porous particles, and sintering with removable space holders or pore formers. In the case of conductive materials processed by SPS using the first approach, the formation of inter-particle contacts may be associated with local melting and non-conventional mechanisms of mass transfer. Studies of the morphology and microstructure of the inter-particle contacts as well as modeling of the processes occurring at the inter-particle contacts help gain insights into the physics of the initial stage of SPS. For pre-consolidated specimens, an SPS device can be used as a furnace to heat the materials at a high rate, which can also be beneficial for controlling the formation of porous structures. In sintering with space holders, SPS processing allows controlling the structure of the pore walls. In this article, using the literature data and our own research results, we have discussed the formation and structure of porous metals, intermetallics, ceramics, and carbon materials obtained by SPS.


2020 ◽  
Vol 321 ◽  
pp. 12022
Author(s):  
Benoît Denand ◽  
Bhupendra Sharma ◽  
Guillaume Geandier ◽  
Guy Dirras ◽  
Kei Ameyama ◽  
...  

The present study focuses on the formation of harmonic microstructures in a metastable β titanium alloy, the β-Cez alloy (Tβ =890°C). Previous studies showed that harmonic structures obtained by a powder metallurgy route led to an increase in mechanical properties. In this study, the harmonic structure was obtained after a Mechanical Milling of the Initial Powder followed by Spark Plasma Sintering. The phase transformations occurring in the Initial Powder and Mechanical Milled powders during a heat treatment similar to the SPS one were studied. Electrical resistivity, high energy XRD and SEM-EBSD were used to characterize the evolution of phases and microstructures and highlight the effect of the thermal treatment and the milling. It was shown that after thermal treatment of Mechanical Milled powders, a harmonic α + β microstructure is obtained consisting of nodular α grains in the powder shell and α lamellae in the powder core. The stress/strain induced martensite formed during the milling associated with the heavier deformation at the powder surface areas contributes highly to the formation of network arrangement of nodular α grains by a recovery/recrystallization phenomenon of β and α phases during the heating.


2014 ◽  
Vol 617 ◽  
pp. 933-945 ◽  
Author(s):  
Tushar Borkar ◽  
Soumya Nag ◽  
Yang Ren ◽  
Jaimie Tiley ◽  
Rajarshi Banerjee

2020 ◽  
Vol 275 ◽  
pp. 116383 ◽  
Author(s):  
Weijun Shen ◽  
Linping Yu ◽  
Huixin Liu ◽  
Yuehui He ◽  
Zhe Zhou ◽  
...  

2020 ◽  
Vol 22 (6) ◽  
pp. 2000076 ◽  
Author(s):  
Jenniffer Bustillos ◽  
Cheng Zhang ◽  
Archana Loganathan ◽  
Benjamin Boesl ◽  
Arvind Agarwal

2015 ◽  
Vol 50 (14) ◽  
pp. 4860-4878 ◽  
Author(s):  
N. S. Weston ◽  
F. Derguti ◽  
A. Tudball ◽  
M. Jackson

Sign in / Sign up

Export Citation Format

Share Document