Method to prevent abnormal grain growth for beta annealed Ti—6AL—4V forgings
10822682 · 2020-11-03
Assignee
Inventors
- Rahbar Nasserrafi (Andover, KS, US)
- Gerald E. Hicks (Wichita, KS, US)
- Michael A. Walker (Wichita, KS, US)
- Craig M. Clasper (Derby, KS, US)
Cpc classification
International classification
Abstract
A method for heat-treating a titanium alloy, such as Ti-6Al-4V. The method may occur after or include a step of forging the titanium alloy such that localized, highly deformed grains are formed in the titanium alloy. Then the method may include steps of recrystallization annealing the titanium alloy by heating the titanium alloy to a temperature in a range between 30 F. to 200 F. below beta transus of the titanium alloy for 1 hour to 6 hours and then furnace cooling of the titanium alloy to 1200 F. to 1500 F. at a rate of 50 F. to 500 F. per hour. Following the recrystallization annealing, the method may include beta annealing the titanium alloy. These steps may be performed in a single heat treating cycle.
Claims
1. A method for heat-treating a titanium alloy, the method comprising the steps of: recrystallization annealing the titanium alloy, wherein recrystallization annealing includes heating the titanium alloy to a temperature below a beta transus of the titanium alloy for a length of time followed by slow cooling the titanium alloy; and beta annealing the titanium alloy following completion of the recrystallization annealing steps by heating the titanium alloy to a temperature in a range of 10 to 100 F. above the beta transus of the titanium alloy.
2. The method of claim 1, wherein the beta transus of the titanium alloy is a temperature between 1800 F. and 1850 F.
3. The method of claim 1, wherein the temperature to which the titanium alloy is heated during recrystallization annealing is 30 F. to 200 F. below the beta transus of the titanium alloy.
4. The method of claim 1, wherein the length of time for which the temperature below the beta transus of the titanium alloy is maintained during recrystallization annealing is in a range of 1 hour to 6 hours.
5. The method of claim 1, wherein following heating the titanium alloy to the temperature below the beta transus of the titanium alloy for the length of time during recrystallization annealing, the titanium alloy is cooled to 1200 F. to 1500 F. at a rate of 50 F. to 500 F. per hour.
6. The method of claim 1, wherein the beta annealing includes holding the temperature above the beta transus for 30 minutes per inch of thickness of the titanium alloy.
7. The method of claim 1, wherein the beta annealing further includes holding the temperature in the range of 10 to 100 F. above the beta transus for 15 minutes to 5 hours.
8. The method of claim 1, further comprising a step of gradually heating then holding the titanium alloy at a temperature 30 F. to 200 F. below the beta transus of the titanium alloy following the slow cooling of the recrystallization annealing step and immediately preceding the step of beta annealing.
9. The method of claim 8, further comprising the steps of cooling the titanium alloy to a stabilization temperature between 1200 F. to 1450 F. for one or more hours following the beta annealing step and then cooling the titanium alloy to room temperature.
10. A method for heat-treating a titanium alloy, the method comprising the steps of: recrystallization annealing the titanium alloy, wherein recrystallization annealing includes heating the titanium alloy to a temperature 30 F. to 200 F. below a beta transus of the titanium alloy for a length of time in a range of 1 hour to 6 hours followed by slow cooling the titanium alloy to 1000 F. to 1500 F. at a rate of 50 F. to 500 F. per hour; and beta annealing the titanium alloy following completion of the recrystallization annealing steps, including heating the titanium alloy to a temperature in a range of 10 to 100 F. above the beta transus of the titanium alloy.
11. The method of claim 10, wherein the beta annealing includes holding the temperature above the beta transus for 30 minutes per inch of thickness of the titanium alloy.
12. The method of claim 11, wherein the beta annealing further includes holding the temperature in the range of 10 to 100 F. above the beta transus for 15 minutes to 5 hours.
13. The method of claim 10, further comprising a step of gradually heating then holding the titanium alloy at a temperature 30 F. to 200 F. below the beta transus of the titanium alloy following the slow cooling of the recrystallization annealing step and immediately preceding the step of beta annealing.
14. The method of claim 13, further comprising the steps of cooling the titanium alloy to a stabilization temperature between 1200 F. to 1450 F. for one or more hours following the beta annealing step and then cooling the titanium alloy to room temperature.
15. A method for heat-treating a titanium alloy, the method comprising the steps of: recrystallization annealing the titanium alloy, wherein recrystallization annealing includes heating the titanium alloy to a temperature 30 F. to 200 F. below the beta transus of the titanium alloy for a length of time in a range of 1 hour to 6 hours followed by slow cooling the titanium alloy to 1000 F. to 1500 F. at a rate of 50 F. to 500 F. per hour; and beta annealing the titanium alloy following completion of the recrystallization annealing steps, including heating the titanium alloy to a temperature above the beta transus of the titanium alloy and holding the temperature above the beta transus for at least 15 minutes per inch of thickness of the titanium alloy.
16. The method of claim 15, wherein the beta transus of the titanium alloy is a temperature between 1800 F. and 1850 F.
17. The method of claim 15, wherein the beta annealing further includes holding the temperature above the beta transus for 30 minutes to 5 hours.
18. The method of claim 15, further comprising a step of gradually heating then holding the titanium alloy at a temperature 30 F. to 200 F. below the beta transus of the titanium alloy following the slow cooling of the recrystallization annealing step and immediately preceding the step of beta annealing.
19. The method of claim 18, further comprising the steps of cooling the titanium alloy to a stabilization temperature between 1200 F. to 1450 F. for one or more hours following the beta annealing step and then cooling the titanium alloy to room temperature.
Description
BRIEF DESCRIPTION OF THE DRAWING FIGURES
(1) Embodiments of the current invention are described in detail below with reference to the attached drawing figures, wherein:
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(7) The drawing figures do not limit the current invention to the specific embodiments disclosed and described herein. The drawings are not necessarily to scale, emphasis instead being placed upon clearly illustrating the principles of the invention.
DETAILED DESCRIPTION OF THE EMBODIMENTS
(8) The following detailed description of the invention references the accompanying drawings that illustrate specific embodiments in which the invention can be practiced. The embodiments are intended to describe aspects of the invention in sufficient detail to enable those skilled in the art to practice the invention. Other embodiments can be utilized and changes can be made without departing from the scope of the current invention. The following detailed description is, therefore, not to be taken in a limiting sense. The scope of the current invention is defined only by the appended claims, along with the full scope of equivalents to which such claims are entitled.
(9) In this description, references to one embodiment, an embodiment, or embodiments mean that the feature or features being referred to are included in at least one embodiment of the technology. Separate references to one embodiment, an embodiment, or embodiments in this description do not necessarily refer to the same embodiment and are also not mutually exclusive unless so stated and/or except as will be readily apparent to those skilled in the art from the description. For example, a feature, structure, act, etc. described in one embodiment may also be included in other embodiments, but is not necessarily included. Thus, the current technology can include a variety of combinations and/or integrations of the embodiments described herein.
(10) The present invention is a method of heat treating a titanium alloy 10, as pictured in
(11) The methods described herein for heat treating the titanium alloy 10 may use any number of heat sources, heating devices, and/or heat-treating systems known in the art of titanium forging. For example, vacuum furnaces (not shown) or inert gas (e.g., argon) cover may be used for heat treating of the titanium alloy 10. Alternatively, one or more of the steps described below may be performed in electric or gas furnaces. However, parts heat treated in a non-inert or non-vacuum environment may require chemical milling to remove alpha phase formed as oxygen/nitrogen atoms diffuse into surfaces of the titanium alloy 10, causing a very hard and brittle surface layer that needs to be removed before use of the heat-treated titanium alloy 10.
(12) The vacuum furnaces may use sealed chambers and electric heating elements to heat the titanium alloy 10. Gas furnaces may use a retort that is purged with argon to seal an inside of the retort where the titanium alloy 10 is located from reacting with combustion gases from the gas furnace. Air electric ovens may also be used if alpha case will be removed in a separate step via machining or chemical milling.
(13) The methods described herein avoid formation of abnormally coarse grains 12, as pictured in
(14) Specifically, the methods of the present invention add a controlled alpha-beta recrystallization step, referred to herein as recrystallization annealing, prior to a final beta anneal heat treatment, referred to herein as beta annealing, in order to promote recrystallization and nucleation of copious new grains from highly deformed grains formed when the titanium alloy 10 was forged (deformed) extensively in an alpha-beta temperature range (e.g., approximately 1650 F. to 1770 F.). The benefit of this intermediate recrystallization annealing step prior to the final beta annealing heat treatment is that this recrystallization takes place below a beta transus of the titanium alloy 10, where the presence of primary alpha phase acts as a natural obstacle/barrier to the otherwise unrestricted and rapid growth of the beta grains if the recrystallization was to take place above the beta transus. The Beta transus is represented by reference numeral 12 in
(15) The chart of
(16) The method 300 may first include a step of recrystallization annealing. The recrystallization annealing may occur, for example, after finish forging or die forging of the titanium alloy 10, and prior to beta annealing thereof. Specifically, recrystallization annealing may include the individual steps of ramping up to a temperature below beta transus, as depicted with line 302, and stabilizing or holding the temperature at approximately 30200 F. below beta transus, as depicted with line 304. Specifically, step 304 may include exposing the titanium alloy to a temperature in a range of 1650 F. to 1770 F. or a temperature in a range of 1675 F. to 1725 F. for 1 hour to 6 hours or for 1 hour to 4 hours.
(17) Following step 304, the recrystallization annealing may further include a step of slow cooling or furnace cooling the titanium alloy 10 to a stabilization temperature, as depicted with line 306, and optionally stabilizing or holding the temperature at that stabilization temperature for a short amount of time, as depicted with line 308. Specifically, this stabilization temperature may be in a range of 1000 F. to 1500 F., in a range of 1200 F. to 1500 F., in a range of 1300 F. to 1500 F., in a range of 1350 F. to 1450 F., and/or in a range of 1375 F. to 1425 F. This cooling may be performed at a rate between 50 F. to 500 F. per hour, between 50 F. to 250 F. per hour, or between 75 F. to 125 F. per hour, depending on a thickness of the titanium alloy, requirements related to uses of the titanium alloy, and other characteristics of the titanium alloy.
(18) Following the slow cooling or furnace cooling step, the method 300 may include a step of beta annealing, which may specifically include the steps of ramping up and holding (soaking) the titanium alloy 10 to a temperature slightly below beta transus, as depicted with line 310, then heating the titanium alloy 10 to above beta transus and holding at that temperature for a limited time, as depicted with line 312. The temperature slightly below beta transus may be 25 F. to 75 F. below beta transus in step 310, or alternatively between 30 to 200 F. below beta transus. The temperature above beta transus may be in a range of 10 F. to 100 F. above beta transus or in a range of 25 to 45 F. The titanium alloy 10 in step 312 may be held at the temperature above beta transus for a length of time corresponding to a thickness of the titanium alloy 10, such as approximately 30 minutes per inch of thickness of the titanium alloy 10. Thus, a range of time at which the titanium alloy 10 is held above beta transus during the beta annealing step may be in a range of approximately 15 minutes to 5 hours.
(19) Next, the method 300 may include the steps of cooling and stabilizing the temperature of the titanium alloy 10 back to the stabilization temperature for adequate time, as depicted with lines 314 and 316. The cooling of step 314 may be accomplished via air cooling or any method known in the art to cool the titanium alloy 10 down to a temperature of approximately 1200 F. to 1450 F. and then holding or stabilizing the titanium alloy 10 at that temperature for approximately 2 hours or 3-4 hours. Finally, the method 300 may include a step of cooling the titanium alloy 10 down to room temperature, as depicted with line 318.
(20) Note that the method 300 in
(21) In yet another alternative embodiment of the invention, a method 500, as illustrated in
(22) In the present invention, when recrystallization is performed below the beta transus, the excessive strain energy, which acts as the driving force for grain growth in areas with the highest levels of pre-existing plastic strain, is mainly consumed by nucleation of copious new grains in place of rapid growth of fewer grains. During the recrystallization annealing, many finer new grains are formed from highly deformed grains and the driving force for grain growth in the form of the excessive strain energy is consumed. Recrystallization annealing of new grains below the beta transus just prior to the final beta annealing heat treatment will promote the nucleation of new grains at the expense of rapid grain growth. Subsequent beta anneal will then fully transform the grains into transformed beta grains.
(23) Advantageously, the tendency for abnormal grain growth can be effectively eliminated or minimized with the methods described herein. Specifically, the methods described herein eliminate the root causes of abnormal grain growth without the need for new dies or extra beta anneal cycles. The methods herein also eliminate the risk of nonconforming titanium products due to excessive hydrogen or scaling due to repeated beta cycles experienced with conventional methods.
(24) Although the invention has been described with reference to the embodiments illustrated in the attached drawing figures, it is noted that equivalents may be employed and substitutions made herein without departing from the scope of the invention.