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- Title
High temperature flow behavior and constitutive model of alloy transition layer in composite steel tube prepared by centrifugal self‐propagating high‐temperature synthesis (SHS).
- Authors
Wang, S.‐z.; Liang, Y.; Wei, S.‐c.; Guo, Y.‐f.; Xu, B.‐s.
- Abstract
Centrifugal self‐propagation high‐temperature synthesis (SHS) is a newly developed composite preparation technique by which a ceramic‐alloy‐carbon steel multilayer composite tube can be prepared. The hot deformation behaviors of the alloy steel layer at 800 °C–1000 °C, strain rates of 0.01 s−1, 0.1 s−1, 1.0 s−1 and 10 s−1 were studied by Gleeble‐1500 thermal simulator. Rheological curve characteristics were analyzed under different thermal compression processes and a phenomenological hyperbolic sinusoidal Arrhenius constitutive equation was established to characterize the rheological mechanics of the material. The results show that the alloy steel is sensitive to temperature and strain rate, and its value of true stress decreases with the increase of temperature and strain rate. Thermal deformation process is the interaction between work hardening and dynamic softening, which is accompanied by the increase and extinction of dislocations. Under the strain rate of 10 s−1, the stress‐strain curve has a significant decrease when the strain exceeds 0.5. According to the observation of microstructure, this phenomenon can be attributed to the micro‐crack generated by the local instability flow in the denatured zone. With the strain rate decreases, the softening mechanism of the alloy changes from dynamic recovery to dynamic recrystallization. The calculation results of the Arrhenius constitutive equation (AARE = 6.54 %, R = 0.99452) indicate that the model can predict the flow stress of the alloy accurately.
- Subjects
SELF-propagating high-temperature synthesis; STEEL tubes; HIGH temperatures; STRAIN hardening; HUMAN behavior models; STRESS-strain curves; STRAIN rate
- Publication
Materialwissenschaft und Werkstoffechnik, 2020, Vol 51, Issue 10, p1412
- ISSN
0933-5137
- Publication type
Article
- DOI
10.1002/mawe.201900151