Citations
Citation:
T-41. I. Timokhina, H. Beladi, X.-Y. Xiong, and P.D. Hodgson, “On the Low Temperature Strain Aging of Bainite in the TRIP Steel”, Metallurgical and Materials Transactions A, Vol 44, pages 5177–5191, 2013, doi.org/10.1007/s11661-013-1864-y.
Citations
Citation:
H-59. T. Hojo, R. Kikuchi, H. Waki, R. Okuma, Y. Ukai, and E. Akiyama, “Effects of Strain Rate on the Hydrogen Embrittlement Properties of 1180 MPa grade Ultra High-strength Low-alloy TRIP-aided Steels,” ISIJ International, 2018, Volume 58, Issue 4, Pages 751-759, doi.org/10.2355/isijinternational.ISIJINT-2017-576.
Citations
Citation:
B-58. A. Bachmaier, K. Hausmann, D. Krizan, and A. Pichler, “Development of TBF Steels with 980 MPa Tensile Strength for Automotive Applications: Microstructure and Mechanical Properties,” Proceedings of the International Symposium on New Developments in Advanced High Strength Sheet Steels, Vail, CO, USA, 2013, doi.org/10.13140/RG.2.2.24907.80169;
Citations
Citation:
R-23. J. Rehrl and S. Heibel, Development of Dual-Phase High-Ductility (HD) Grades and Application in Modern Car-Body Manufacturing, Materials in Car Body Engineering 2019.
Citations
Citation:
A-70. E. Arenholz, “Modern AHSS Grades: Improved formability by advanced microstructure control,” GALM 2018, Munich, Global Automotive Lightweight Materials;
Citations
Citation:
C-31. F.G. Caballero, S. Allain , J. Cornide , J.D. Puerta Velásquez , C. Garcia-Mateo and M.K. Miller, “Design of Cold Rolled and Continuous Annealed Carbide-Free Bainitic Steels for Automotive Application,” Materials & Design, Volume 49, August 2013, Pages 667-680, doi.org/10.1016/j.matdes.2013.02.046.