scholarly journals Conducting properties of M0.25Ce0.75O1.875 (M=Dy, Gd) sintered specimen fabricated by the combined process of pulsed electric current sintering and fast sintering

2008 ◽  
Vol 33 (4) ◽  
pp. 1085-1088
Author(s):  
Hirokazu Suga ◽  
Toshiyuki Mori ◽  
Fei Ye ◽  
Ding Rong Ou ◽  
Toshiyuki Nishimura ◽  
...  
2007 ◽  
Vol 534-536 ◽  
pp. 589-592
Author(s):  
Yuan Yuan Li ◽  
Yan Long ◽  
Xiao Qiang Li ◽  
Yun Zhong Liu

A new process of pulsed electric current sintering was developed. It combines compaction with activated sintering effectively and can manufacture bulky nano-crystalline materials very quickly. Pulsed electric current sintering of high-energy ball-milled nano-crystalline iron-based powders is investigated in this work. A nanostructured steel is obtained with high relative density and hardness by this process. The average grain size of iron matrix is 58nm and the carbide particulate size is less than 100nm. The densification temperature of ball-milled powders is approximately 200°C lower than that of blended powders. When the sintering temperature increases, the density of as-sintered specimen increases but the hardness of as-sintered specimen first increases and then decreases. Microstructure analysis results show that the decrease of hardness is caused by the dramatic grain growth of iron matrix.


2018 ◽  
Vol 43 (13) ◽  
pp. 3065 ◽  
Author(s):  
Hiroaki Furuse ◽  
Yuki Koike ◽  
Ryo Yasuhara

2016 ◽  
Vol 721 ◽  
pp. 419-424
Author(s):  
M. Erkin Cura ◽  
Vivek Kumar Singh ◽  
Panu Viitaharju ◽  
Joonas Lehtonen ◽  
Simo Pekka Hannula

Chromium oxide is a promising material for applications where excellent corrosion resistance, high hardness, and high wear resistance are needed. However, its use is limited because of low fracture toughness. Improvement of fracture toughness of chromium oxide while maintaining its afore mentioned key properties is therefore of high interest. In this communication we study the possibility of increasing the toughness of pulsed electric current sintered (PECS) chromium oxide by the addition of graphene oxide (GO). The indentation fracture toughness was improved markedly with the addition of graphene oxide. Materials prepared by direct chemical homogenization had better fracture toughness. In composites with 10 vol.% GO piling of thin graphene oxide layers resulted in the formation of graphite layers between Cr2O3 and in carbide formation, which were observed to be the main reasons for the degradation of the mechanical properties. The distribution of graphene oxide was more homogeneous, when the GO amount was 0.1 vol.% and the formation of graphitic layers were avoided due to lesser amount of GO as well as ultrasonic treatment following the ball milling.


2011 ◽  
Vol 509 (20) ◽  
pp. 5981-5987 ◽  
Author(s):  
Outi Söderberg ◽  
David Brown ◽  
Ilkka Aaltio ◽  
Jussi Oksanen ◽  
Jesse Syrén ◽  
...  

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