High manganese alloyed steels for amine service
View Patent ↗The present invention relates to ferrous alloys with high strength, cost-effective corrosion resistance and cracking resistance for refinery service environments, such as amine service under sweet or sour environments. More specifically, the present invention pertains to a type of ferrous manganese alloyed steels for high strength and cracking resistance and methods of making and using the same for applications including, but not limited to, amine units used in oil and gas production, petroleum refining, and chemical production.
1 . A ferrous austenitic steel comprising less than 30 wt % chromium (Cr) equivalent and more than 7 wt % nickel (Ni) equivalent, wherein:
Ni equivalent is: Ni eq =Ni+Co+0.5*Mn+0.3*Cu+25*N+30*C;
Cr equivalent is: Cr eq =Cr+2*Si+1.5*Mo+5*V+15.5*Al+1.75*Nb+1.5*Ti+0.75*W; and
Wherein the Ni equivalent and Cr equivalent satisfies 6*Ni eq +Cr eq ≥15, and Ni eq +15≥1.5*Cr eq ; and
the ferrous austenitic steel comprising a predominantly austenite phase and a minor phase comprising nitride, wherein nitride comprises inorganic nitride in an amount of at least 0.1 wt %.
2 . The ferrous austenitic steel of claim 1 , further comprising 18 wt % to 30 wt % manganese (Mn).
3 . The ferrous austenitic steel of claim 1 , wherein the ferrous austenitic steel has a strength level ranging from 205 MPa to 900 MPa.
4 . The ferrous austenitic steel of claim 1 , further comprising less than 0.001 wt % copper (Cu).
5 . The ferrous austenitic steel of claim 1 , further comprising 0.1 wt % to 1.5 wt % carbon and 0.001 wt % to 1.5 wt % nitrogen.
6 . The ferrous austenitic steel of claim 1 , further comprising 0.05 wt % to 15 wt % Al.
7 . The ferrous austenitic steel of claim 1 , further comprising 0.05 wt % to 10 wt % Si.
8 . The ferrous austenitic steel of claim 1 , further comprising one or more of niobium (Nb), titanium (Ti), vanadium (V), tungsten (W), tantalum (Ta), and molybdenum (Mo), wherein the total content of these elements ranges from 0.01 wt % to 5 wt %.
9 . The ferrous austenitic steel of claim 1 , further comprising 0.1 wt % to 1.5 wt % carbon and 0.1 wt % to 1.5 wt % nitrogen, 0.05 wt % to 10 wt % Al, 0.1 wt % to 3 wt % Si, and 0.01 wt % to 5 wt % of one or more of niobium (Nb), titanium (Ti), vanadium (V), tantalum (Ta), and molybdenum (Mo).
10 . The ferrous austenitic steel of claim 1 , further comprising less than 15 wt % Cr equivalent.
11 . The ferrous austenitic steel of claim 1 , wherein the austenite phase is at least 95 vol %.
12 . The ferrous austenitic steel of claim 1 , wherein the minor phases are less than 5 vol %.
13 . A process for manufacturing the ferrous austenitic steel according to claim 1 , the process comprising:
melting ferrous steel constituents while controlling evaporation losses of N and Mn to produce a liquid alloy steel having the composition of claim 1 ;
ingot or continuous casting the liquid alloy steel into a mold to form cast ingots while suppressing Mn segregation;
reheating the cast ingots to dissolve secondary phases at temperature ranging from 900° C. to 1250° C.;
hot deforming at or above 600° C. to control grain size and shape of the alloy steel;
cooling rapidly at at least about 10° C./sec to below about 300° C.
14 . The process for manufacturing the ferrous austenitic steel according to claim 13 , further comprising improving the mechanical properties of the ferrous austenitic steel using a thermo-mechanical controlled processing.