milled powders
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Materials ◽  
2021 ◽  
Vol 15 (1) ◽  
pp. 136
Author(s):  
Ricardo Chávez-Vásconez ◽  
Sheila Lascano ◽  
Sergio Sauceda ◽  
Mauricio Reyes-Valenzuela ◽  
Christopher Salvo ◽  
...  

Commercially pure (c.p.) titanium grade IV with a bimodal microstructure is a promising material for biomedical implants. The influence of the processing parameters on the physical, microstructural, and mechanical properties was investigated. The bimodal microstructure was achieved from the blends of powder particles with different sizes, while the porous structure was obtained using the space-holder technique (50 vol.% of ammonium bicarbonate). Mechanically milled powders (10 and 20 h) were mixed in 50 wt.% or 75 wt.% with c.p. titanium. Four different mixtures of powders were precompacted via uniaxial cold pressing at 400 MPa. Then, the specimens were sintered at 750 °C via hot pressing in an argon gas atmosphere. The presence of a bimodal microstructure, comprised of small-grain regions separated by coarse-grain ones, was confirmed by optical and scanning electron microscopies. The samples with a bimodal microstructure exhibited an increase in the porosity compared with the commercially available pure Ti. In addition, the hardness was increased while the Young’s modulus was decreased in the specimens with 75 wt.% of the milled powders (20 h).


Author(s):  
Purvam Mehulkumar Gandhi ◽  
Siva Kumar Valluri ◽  
Mirko Schoenitz ◽  
Edward Dreizin

Author(s):  
Felipe Amélio de Lucena ◽  
Guilherme Yuuki Koga ◽  
Rudimar Riva ◽  
Conrado Ramos Moreira Afonso

AIP Advances ◽  
2021 ◽  
Vol 11 (2) ◽  
pp. 025036
Author(s):  
M. A. Islam ◽  
M. Z. Ahsan ◽  
Sakin S. Satter ◽  
M. A. A. Bally ◽  
F. A. Khan

2021 ◽  
Vol 379 ◽  
pp. 447-456
Author(s):  
Shashank Vummidi Lakshman ◽  
John D. Gibbins ◽  
Timothy P. Weihs

2021 ◽  
Vol 313 ◽  
pp. 127-135
Author(s):  
S.V. Klinkov ◽  
V.F. Kosarev ◽  
A.E. Chesnokov ◽  
A.V. Smirnov ◽  
V.S. Shikalov

This paper presents the results of a study of the effect of preliminary heat treatment and ball milling of aluminum powder on the cold spraying process and the properties of the obtained coatings (porosity and microhardness). The ball milling of aluminum powder leads to an increase in specific surface area, a decrease in apparent density and a decrease in the value of the crystallite size, which indicates a decrease in grain size. It is shown that coatings deposited from ball milled powders have slightly higher coatings hardness averagely. The profilometry of aluminum coatings obtained under the same conditions from the initial and processed powders did not reveal significant changes in the form of coatings and their typical dimensions (width, thickness), which indicates the absence of significant changes in the deposition coefficient of the initial and processed aluminum powders. Ball milled powders on average correspond to slightly higher hardnesses of coatings.


Author(s):  
Ganesan Dharmalingam ◽  
Murali Arun Prasad ◽  
Sachin Salunkhe

The oxide dispersion strengthened (ODS) ferritic steels are one of the most important in fuel cladding materials for 4th Generation nuclear reactors because of their excellent mechanical properties such as irradiation resistance, swelling resistance, and elevated temperature tensile/compressive strength. Mechanical alloying (MA) is one of the most promising routes for developing nanocrystalline ferritic ODS steel materials. For the production of nanocrystalline ferritic ODS steel powders, the most influencing factor is the milling speed and milling time during the mechanical alloying process. With the improper selection of milling time and speed, the final milled powders become an amorphous structure consisting of high impurity inclusions in the microstructure, and strength was also affected. In order to overcome these drawbacks, the present investigation was taken into account for the selection of appropriate mechanical milling speed and time, which was optimized through Taguchi analysis followed by the MA process. The optimized mechanical milling speed and time of milled powders were characterized through X-Ray Diffraction Analysis (XRD) and Scanning Electron Microscope (SEM).


2020 ◽  
Vol 40 (15) ◽  
pp. 5423-5430 ◽  
Author(s):  
Xiangxia Wei ◽  
Yinhua Liu ◽  
Dongjie Zhao ◽  
Shuzhi Sam Ge

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