Research on the Hydrogen Embrittlement Sensitivity of 2.25Cr1Mo0.25V in Electrochemical Hydrogen Charging[J]. 2016, 50(7): 89-95.
DOI:
Research on the Hydrogen Embrittlement Sensitivity of 2.25Cr1Mo0.25V in Electrochemical Hydrogen Charging[J]. 2016, 50(7): 89-95.DOI: 10.7652/xjtuxb201607014.
Research on the Hydrogen Embrittlement Sensitivity of 2.25Cr1Mo0.25V in Electrochemical Hydrogen Charging
The alloy steel 2.25Cr1Mo0.25V is mainly used to make hydrogenation reactors
which is easily subject to failure of hydrogen embrittlement. This paper aims to study the mechanism of hydrogen embrittlement and understand the hydrogen embrittlement sensitivity of the material. With the electrochemical hydrogen permeability technique and applying constant cathode current to let the hydrogen permeate into the steel
the characteristics of hydrogen diffusion under different test conditions were revealed. Meanwhile
the hydrogen embrittlement sensitivity was investigated by combining the hydrogen permeability technique with the slow-rate tensile test. The test results showed that the hydrogen diffusion coefficients were increased wit
h the growth of the electrochemical hydrogen charging current density as well as the reduction of sample thickness. There is a linear relationship between the reciprocal of charging temperature(1/T)and the natural logarithm of hydrogen diffusion coefficient. Results of slow-rate tensile tests showed that with the growth of the charging current density
the fracture strength
the elongation rate and the area reduction of the steel decreased
while the hydrogen embrittlement indexes increased. When the hydrogen charging current density exceeds 2.5×10
-3
A/cm
2
the steel showed obvious hydrogen embrittlement. The test results will help the performance evaluation of materials used to make hydrogenation reactors.
CHEN Xiaoling, LI Duomin, DUAN Zihua. Hydroge-nation reactor development status [J]. Chemical Equipment Technology, 2009, 30(1): 28-31.
华丽, 朱奎龙, 王志文, 等. 29(6): 621-624.
HUA Li, ZHU Kuilong, WANG Zhiwen, et al. An investigation of resistance to hydrogen embrittlement of 2.25Cr-1Mo steel [J]. Journal of East China University of Science and Technology(Natural Science), 2003, 29(6): 621-624.
RAY A K, TIWARI Y N, ROY P K, et al. Creep rupture analysis and remaining life assessment of 2.25Cr1Mo steel tubes from a thermal power plant [J]. Materials Science and Engineering: A, 2007, 454: 679-684.
MORO L, GONZALEZ G, BRIZUERLA G, et al. Influence of chromium and vanadium in the mechanical resistance of steels [J]. Materials Chemistry and Physics, 2008, 109(2): 212-216.
PEREIRAE P A S, FRANCO C S G, GUERRAFILHO J L M, et al. Hydrogen effects on the microstructure of a 2.25Cr-1Mo-0.25V steel welded joint [J]. International Journal of Hydrogen Energy, 2015, 40(47): 17136-17143.
MA X, HU C, QIN H, et al. Effect of heat treatment process on critical transformation temperature of 2.25Cr1Mo0.25V steel [J]. Journal of Petro-Chemical Universities, 2011, 3: 019.
刘长海, 邓文彬, 高军, 等. 2014, 31(2): 9-13.
LIU Changhai, DENG Wenbin, GAO Jun, et al. Experimental investigation of 2.25Cr1Mo0.25V steel's hydrogen sulfide stress corrosion [J]. Pressure Vessel Technology, 2014, 31(2): 9-13.
JEBARAJ J J M, MORRISON D J, SUNI I I. Hydrogen diffusion coefficients through Inconel 718 in different metallurgical conditions [J]. Corrosion Science, 2014, 80: 517-522.
ZHOU C, ZHENG S, CHEN C, et al. The effect of the partial pressure of H2S on the permeation of hydrogen in low carbon pipeline steel [J]. Corrosion Science, 2013, 67: 184-192.
CARNEIRO R A, RATNAPULI R C, DE FREITAS C L V. The influence of chemical composition and microstructure of API linepipe steels on hydrogen induced cracking and sulfide stress corrosion cracking [J]. Materials Science and Engineering: A, 2003, 357(1): 104-110.
DONG C F, LIU Z Y, LI X G, et al. Effects of hydrogen charging on the susceptibility of X100 pipeline steel to hydrogen-induced cracking [J]. International Journal of Hydrogen Energy, 2009, 34(24): 9879-9884.
RIVERA P C, RAMUNNI V P, BRUZZONI P. Hydrogen trapping in an API 5L X60 steel [J]. Corrosion Science, 2012, 54: 106-118.
ADDACH H, BERCOT P, REZRAZI M, et al. Hydrogen permeation in iron at different temperatures [J]. Materials Letters, 2005, 59(11): 1347-1351.
MAIER H J, POPP W, KAESCHE H. Effects of hydrogen on ductile fracture of a spheroidized low alloy steel [J]. Materials Science and Engineering: A, 1995, 191(1): 17-26.
BRIOTTET L, MORO I, LEMOINE P. Quantifying the hydrogen embrittlement of pipeline steels for safety considerations [J]. International Journal of Hydrogen Energy, 2012, 37(22): 17616-17623.
WANG Yanbin, WANG Sheng. The role of plastic deformation on hydrogen induced fracture [J]. Journal of Chinese Society for Corrosion and Protection, 2000, 20(4): 248-252.