共 30 条
- [1] Viswanathan R, Henry J F, Tanzosh J, Et al., U.S. program on materials technology for ultra-supercritical coal power plants, Journal of Materials Engineering and Performance, 14, 3, (2005)
- [2] Zhao L, Dong X P, Sun F, Et al., Microstructure and mechanical properties of super304H ultra supercritical pressure boiler superheater tube after serving for a long time, Materials for Mechanical Engineering, 36, 7, (2013)
- [3] Cheng X N, Wang J, Luo R, Et al., Plastic deformation behavior and constitutive model of new austenitic stainless steel at high temperature used for ultra super critical power plant, Journal of Plasticity Engineering, 25, 4, (2018)
- [4] Cheng X N, Zhu J J, Luo R, Et al., Hot deformation behavior of new-typed CHDG-A06 austenitic stainless steel, Materials for Mechanical Engineering, 24, 3, (2017)
- [5] Wang D Y, Wang L Y, Feng X, Et al., Creep Properties of Pre-deformed F316 Stainless Steel, Chinese Journal of Materials Research, 33, 7, (2019)
- [6] Zhao X H, Li H, Li M Q., Dynamic recrystallization model of GH696 superalloy, The Chinese Journal of Nonferrous Metals, 27, 8, (2017)
- [7] Cai Y, Sun C Y, Wan L, Et al., Study on the dynamic recrystallization softening behavior of AZ80 magnesium alloy, Acta. Metall. Sin, 52, 9, (2016)
- [8] Poliak E I, Jonas J J, A one-parameter approach to determining the critical conditions for the initiation of dynamic recrystallization, Acta Materialia, 44, 1, (1996)
- [9] Jonas J J, Poliak E I, The critical strain for dynamic recrystallization in rolling mills, Mater. Sci. Forum, 426-432, (2003)
- [10] Zhang C B, Liu J, Zhang J X, Et al., Mathematical model of dynamic recrystallization for nuclear power 304 austenitic stainless steel, Foundry Equipment and Technology, 1, (2011)