dynamic strain
Recently Published Documents


TOTAL DOCUMENTS

1631
(FIVE YEARS 334)

H-INDEX

61
(FIVE YEARS 8)

Metals ◽  
2022 ◽  
Vol 12 (1) ◽  
pp. 79
Author(s):  
Igor Litovchenko ◽  
Kseniya Almaeva ◽  
Nadezhda Polekhina ◽  
Sergey Akkuzin ◽  
Valeria Linnik ◽  
...  

The effect of high-temperature thermomechanical treatment (HTMT) with plastic deformation by rolling in austenitic region on the microstructure and mechanical properties of 12% chromium ferritic-martensitic steel EP-823 is investigated. The features of the grain and defect microstructure of steel are studied by Scanning Electron Microscopy with Electron Back-Scatter Diffraction (SEM EBSD) and Transmission Electron Microscopy (TEM). It is shown that HTMT leads to the formation of pancake structure with grains extended in the rolling direction and flattened in the rolling plane. The average sizes of martensitic packets and ferrite grains are approximately 1.5–2 times smaller compared to the corresponding values after traditional heat treatment (THT, which consists of normalization and tempering). The maximum grain size in the section parallel to the rolling plane increases up to more than 80 µm. HTMT leads to the formation of new sub-boundaries and a higher dislocation density. The fraction of low-angle misorientation boundaries reaches up to ≈68%, which exceeds the corresponding value after HTMT (55%). HTMT does not practically affect the carbide subsystem of steel. The mechanical properties are investigated by tensile tests in the temperature range 20–700 °C. It is shown that the values of the yield strength in this temperature range after HTMT increase relative to the corresponding values after THT. As a result of HTMT, the elongation decreases. A significant decrease is observed in the area of dynamic strain aging (DSA). The mechanisms of plastic deformation and strengthening of ferritic-martensitic steel under the high-temperature thermomechanical treatments are also discussed.


Measurement ◽  
2022 ◽  
pp. 110677
Author(s):  
Chunyan Ao ◽  
Baijie Qiao ◽  
Lei Chen ◽  
Jinghui Xu ◽  
Meiru Liu ◽  
...  
Keyword(s):  

Metals ◽  
2021 ◽  
Vol 12 (1) ◽  
pp. 63
Author(s):  
Sergey Akkuzin ◽  
Igor Litovchenko ◽  
Nadezhda Polekhina ◽  
Kseniya Almaeva ◽  
Anna Kim ◽  
...  

The deformation microstructures formed by novel multistage high-temperature thermomechanical treatment (HTMT) and their effect on the mechanical properties of austenitic reactor steel are investigated. It is shown that HTMT with plastic deformation at the temperature decreasing in each stage (1100, 900, and 600 °C with a total strain degree of e = 2) is an effective method for refining the grain structure and increasing the strength of the reactor steel. The structural features of grains, grain boundaries and defective substructure of the steel are studied in two sections (in planes perpendicular to the transverse direction and perpendicular to the normal direction) by Scanning Electron Microscopy with Electron Back-Scatter Diffraction (SEM EBSD) and Transmission Electron Microscopy (TEM). After the multistage HTMT, a fragmented structure is formed with grains elongated along the rolling direction and flattened in the rolling plane. The average grain size decreases from 19.3 µm (for the state after solution treatment) to 1.8 µm. A high density of low-angle boundaries (up to ≈ 80%) is found inside deformed grains. An additional cold deformation (e = 0.3) after the multistage HTMT promotes mechanical twinning within fragmented grains and subgrains. The resulting structural states provide high strength properties of steel: the yield strength increases up to 910 MPa (at 20 °C) and up to 580 MPa (at 650 °C), which is 4.6 and 6.1 times higher than that in the state after solution treatment (ST), respectively. The formation of deformed substructure and the influence of dynamic strain aging at an elevated tensile temperature on the mechanical properties of the steel are discussed. Based on the results obtained, the multistage HTMT used in this study can be applied for increasing the strength of austenitic steels.


2021 ◽  
Vol 50 (1) ◽  
pp. 575-575
Author(s):  
Harry Ramcharran ◽  
Joshua Satalin ◽  
Sarah Blair ◽  
Penny Andrews ◽  
Nader Habashi ◽  
...  

Author(s):  
Sarath Chandran ◽  
Wenqi Liu ◽  
Junhe Lian ◽  
Sebastian Münstermann ◽  
Patricia Verleysen

2021 ◽  
Vol 17 (12) ◽  
pp. 723-728
Author(s):  
Wei Wang ◽  
Chuanyi Tao ◽  
Hao Wang ◽  
Xuhai Jiang ◽  
Rong Chen ◽  
...  

Sign in / Sign up

Export Citation Format

Share Document