材料科学与技术 ›› 2017, Vol. 33 ›› Issue (12): 1475-1486.DOI: 10.1016/j.jmst.2017.09.002
收稿日期:
2016-11-28
修回日期:
2017-02-20
接受日期:
2017-02-20
出版日期:
2017-12-20
发布日期:
2018-01-30
Zhu Kangyinga*(), Mager Coraliea, Huang Mingxinb*(
)
Received:
2016-11-28
Revised:
2017-02-20
Accepted:
2017-02-20
Online:
2017-12-20
Published:
2018-01-30
Contact:
Zhu Kangying,Huang Mingxin
. [J]. 材料科学与技术, 2017, 33(12): 1475-1486.
Zhu Kangying, Mager Coralie, Huang Mingxin. Effect of substitution of Si by Al on the microstructure and mechanical properties of bainitic transformation-induced plasticity steels[J]. J. Mater. Sci. Technol., 2017, 33(12): 1475-1486.
Steel | C | Mn | Si | Al | P | S | N |
---|---|---|---|---|---|---|---|
Ref | 0.25 | 2.07 | 0.098 | 0.021 | 0.023 | <0.002 | 0.0033 |
0.5Al | 0.247 | 2.07 | 0.083 | 0.53 | 0.025 | 0.0022 | 0.0038 |
1Al | 0.256 | 2.07 | 0.085 | 1.01 | 0.026 | 0.002 | 0.0041 |
1.5Al | 0.249 | 2.07 | 0.084 | 1.54 | 0.028 | 0.0021 | 0.0032 |
1Si | 0.252 | 2.07 | 1.09 | 0.023 | 0.025 | <0.002 | 0.0036 |
Table 1 Chemical compositions of the steels (in wt%).
Steel | C | Mn | Si | Al | P | S | N |
---|---|---|---|---|---|---|---|
Ref | 0.25 | 2.07 | 0.098 | 0.021 | 0.023 | <0.002 | 0.0033 |
0.5Al | 0.247 | 2.07 | 0.083 | 0.53 | 0.025 | 0.0022 | 0.0038 |
1Al | 0.256 | 2.07 | 0.085 | 1.01 | 0.026 | 0.002 | 0.0041 |
1.5Al | 0.249 | 2.07 | 0.084 | 1.54 | 0.028 | 0.0021 | 0.0032 |
1Si | 0.252 | 2.07 | 1.09 | 0.023 | 0.025 | <0.002 | 0.0036 |
0Al | 0.5Al | 1Al | 1.5Al | 1Si | |
---|---|---|---|---|---|
Experimental | 585 ± 5 | 605 ± 5 | 615 ± 5 | 625 ± 5 | 560 ± 5 |
Calculated | 582 | 607 | 617 | 625 | 560 |
Table 2 Bs temperatures of the different steels (°C).
0Al | 0.5Al | 1Al | 1.5Al | 1Si | |
---|---|---|---|---|---|
Experimental | 585 ± 5 | 605 ± 5 | 615 ± 5 | 625 ± 5 | 560 ± 5 |
Calculated | 582 | 607 | 617 | 625 | 560 |
Fig. 2. TTT diagram at 5% bainite transformation for 1Al and 1Si showing the effect of soaking temperature (1100 °C vs. 950 °C) on bainite transformation kinetics.
Fig. 4. Optical microstructure of (a) Ref, (b) 1Al and (c) 1Si steels subjected to a soaking at 1100 °C for 5 min followed by an isothermal holding at 550 °C for 20 min.
Fig. 5. Optical microstructure of (a) 0.5Al, (b) 1Al, (c) 1.5Al and (d) 1Si subjected to a soaking at 1100 °C for 5 min followed by an isothermal holding at 500 °C for 20 min.
Fig. 6. SEM observations of the microstructures of (a) 0.5Al and (b) 1.5Al steels after soaking at 1100 °C followed by isothermal holding at 500 °C for 20 min, as well as (c) 1Al and (d) 1Si steels after soaking at 950 °C for 5 min followed by isothermal holding at 500 °C for 150 s. The yellow arrows indicating the locations of pearlite (P), M showing the martensite islands formed upon final cooling.
Steel | Bainitic holding temperature (°C) | Holding time (s) | γ% | C% |
---|---|---|---|---|
1Al | 500 | 100 | 12.7 | 0.92 |
600 | 6.8 | 0.82 | ||
450 | 100 | 12.7 | 1.17 | |
600 | 12.7 | 1.04 | ||
400 | 150 | 5 | 1.16 | |
600 | 1.4 | - | ||
1Si | 500 | 200 | 4.7 | 0.67 |
450 | 150 | 14.7 | 0.98 | |
600 | 8.8 | 0.85 | ||
400 | 600 | 9.8 | 1.02 |
Table 3 Retained austenite fraction (γ%) and the C content in retained austenite (C%) measured at room temperature using X-ray diffraction in 1Al and 1Si steels after soaking at 950 °C for 5 min followed by a bainitic holding at different temperatures for different times.
Steel | Bainitic holding temperature (°C) | Holding time (s) | γ% | C% |
---|---|---|---|---|
1Al | 500 | 100 | 12.7 | 0.92 |
600 | 6.8 | 0.82 | ||
450 | 100 | 12.7 | 1.17 | |
600 | 12.7 | 1.04 | ||
400 | 150 | 5 | 1.16 | |
600 | 1.4 | - | ||
1Si | 500 | 200 | 4.7 | 0.67 |
450 | 150 | 14.7 | 0.98 | |
600 | 8.8 | 0.85 | ||
400 | 600 | 9.8 | 1.02 |
Fig. 7. SEM observations of the microstructures of (a) 0.5Al, (b) 1Al, (c) 1.5Al and (d) 1Si steels after soaking at 1100 °C for 5 min followed by isothermal holding at 450 °C for 20 min. Areas delineated by yellow lines indicate the locations of pearlite (P) and MA shows the martensite-austenite islands.
Fig. 8. SEM observations of the microstructures of (a) 1Al and (b) 1Si steels after soaking at 950 °C for 5 min followed by isothermal holding at 450 °C for 10 min. Areas surrounded by yellow lines indicate the location where retained austenite decomposed into pearlite (P) and carbides during holding and M indicates the martensite island.
Fig. 9. SEM observation of the microstructures of (a) 1Al and (b) 1Si steels after soaking at 950 °C for 5 min followed by isothermal holding at 400 °C for 10 min. Yellow arrows indicate the locations of martensite-austenite islands (MA).
Fig. 10. Intercepted lath size as a function of the threshold misorientation to define a grain boundary in 1Al and 1Si steels after soaking at 950 °C followed by isothermal holding at 450 °C and 400 °C for 10 min.
Fig. 11. Superimposition of EBSD band contrast map with IPF color showing the microstructure 1Si steel subjected to a soaking at (a) 950 °C and (b) 1100 °C for 5 min and an isothermal holding at 450 °C for 10 min, with yellow arrows indicating the area of martensite (M) or MA islands, (c) intercepted lath size as a function of threshold misorientation to define grain boundaries in 1Al steel after soaking at 950 °C and 1100 °C for 5 min and isothermal holding at 400 °C and 450 °C for 10 min.
Fig. 12. (a) Yield strength (YS) and ultimate tensile strength (UTS), (b) uniform elongation (Uel) and total elongation (Tel), (c) yield strength-uniform elongation product (YS × Uel) and ultimate tensile strength-total elongation product (UTS × Tel) as a function of bainitic isothermal holding temperature for 1Al and 1Si steels.
Fig. 13. Engineering stress-strain curves of 1Al and 1Si steels after soaking at 950 °C for 5 min followed by isothermal holding at (a) 400 °C and (b) 500 °C for different times and the correponding n value at (c) 400 °C and (d) 500 °C holding temperatures. n=1σ·dσds’, where σ is the stress and ε is the strain.
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