Creep resistant titanium alloy

A titanium alloy with tailored compositions and processing enhances creep resistance and mechanical strength at high temperatures, addressing limitations of conventional alloys for aerospace applications.

JP2026001087APending Publication Date: 2026-01-06ATI PROPERTIES INC
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Patent Information

Application Number
JP2025158937
Authority / Receiving Office
JP · JP
Patent Type
Applications
Current Assignee / Owner
Priority Date
2018-08-28
Filing Date
2025-09-25
Publication Date
2026-01-06

AI Technical Summary

Technical Problem

Conventional titanium alloys exhibit limited creep resistance at elevated temperatures, hindering their use in high-temperature applications.

Method used

A titanium alloy composition comprising specific weight percentages of aluminum, tin, molybdenum, zirconium, silicon, and germanium, along with impurities, which forms intermetallic precipitates to enhance creep resistance, combined with a thermomechanical processing and heat treatment to achieve improved mechanical properties.

Benefits of technology

The alloy demonstrates enhanced creep resistance and mechanical strength at elevated temperatures, with reduced secondary creep rates and improved tensile strength, suitable for aerospace applications.

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Abstract

To provide a method for working a titanium alloy.SOLUTION: A titanium alloy having a composition comprising, in weight percent based on total alloy weight, 5.5 to 6.5 aluminum, 1.5 to 2.5 tin, 1.3 to 2.3 molybdenum, 0.1 to 10.0 zirconium, 0.01 to 0.30 silicon, 0.1 to 2.0 germanium, titanium, and impurities, wherein intermetallic precipitates comprising zirconium, silicon, and germanium are formed, is produced by a method comprising predetermined solution and aging treatments.SELECTED DRAWING: Figure 1
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Description

[Technical Field]

[0001]

[0001] This disclosure relates to creep-resistant titanium alloys. [Background technology]

[0002] Titanium alloys typically exhibit a high strength-to-weight ratio, are corrosion resistant, and are creep resistant at moderately high temperatures. For example, Ti-5Al-4Mo-4Cr-2Sn-2Zr alloy (also designated "Ti-17 alloy" with a composition specified by UNS R58650) is a commercially available alloy widely used in jet engine applications requiring a combination of high strength, fatigue resistance, and toughness at operating temperatures up to 426.7°C (800°F). Other examples of titanium alloys used in high-temperature applications include Ti-6Al-2Sn-4Zr-2Mo alloy (also designated "Beta-C" with a composition specified by UNS R54620) and Ti-3Al-8V-6Cr-4Mo-4Zr alloy (also designated "Beta-C" with a composition specified by UNS R58640). However, these alloys have limited creep resistance at elevated temperatures. Therefore, there has been a need for titanium alloys with improved creep resistance at elevated temperatures. Summary of the Invention

[0003]

[0003] According to one non-limiting embodiment of the present disclosure, the titanium alloy comprises, in weight percent based on the total alloy weight, 5.5 to 6.5 aluminum, 1.5 to 2.5 tin, 1.3 to 2.3 molybdenum, 0.1 to 10.0 zirconium, 0.01 to 0.30 silicon, 0.1 to 2.0 germanium, titanium, and impurities.

[0004]

[0004] According to another non-limiting aspect of the present disclosure, the titanium alloy consists essentially of, in weight percent based on the total alloy weight, 5.5 to 6.5 aluminum, 1.5 to 2.5 tin, 1.3 to 2.3 molybdenum, 0.1 to 10.0 zirconium, 0.01 to 0.30 silicon, 0.1 to 2.0 germanium, titanium, and impurities.

[0005]

[0005] According to another non-limiting aspect of the present disclosure, the titanium alloy comprises, in weight percent based on the total alloy weight, 2-7 aluminum, 0-5 tin, 0-5 molybdenum, 0.1-10.0 zirconium, 0.01-0.30 silicon, 0.05-2.0 germanium, 0-0.30 oxygen, 0-0.30 iron, 0-0.05 nitrogen, 0-0.05 carbon, 0-0.015 hydrogen, titanium, and impurities.

[0006]

[0006] The features and advantages of the alloys, articles, and methods described herein can be better understood by reference to the accompanying drawings. [Brief explanation of the drawings]

[0007] [Figure 1]

[0007] FIG. 1 is a graph plotting creep strain over time for certain non-limiting embodiments of the titanium alloys of the present disclosure compared to certain conventional titanium alloys. [Figure 2]

[0008] 1 is a photomicrograph of a non-limiting embodiment of a titanium alloy of the present disclosure and a graph showing the results of an energy dispersive X-ray (XRD) scan of the alloy before being subjected to a sustained load. [Figure 3]

[0009] 3 is a photomicrograph of the titanium alloy of FIG. 2 and a graph showing the results of an XRD scan of the alloy and the partitioning of Zr / Si / Ge into intermetallic precipitates after the alloy was heated at 482.2°C (900°F) for 125 hours under a sustained load of 358.5 MPa (52 ksi). [Figure 4]

[0010] FIG. 4 is a diagram showing an elemental map of the titanium alloy of FIG. 3. DETAILED DESCRIPTION OF THE INVENTION

[0008]

[0011] The reader will recognize these details, and others as well, in light of the following detailed description of certain non-limiting embodiments of the present disclosure.

[0012] In describing the present invention in non-limiting embodiments, operating examples are provided. Except in examples, or where otherwise stated, all numbers expressing quantities or characteristics should be understood to be modified in all instances by the term "about." Accordingly, unless specifically indicated to the contrary, any numerical parameters set forth in the following description are approximations that may vary depending upon the desired properties sought in the materials and methods of the present disclosure. At the very least, and not as an attempt to limit the application of the doctrine of equivalents to the scope of the claims, each numerical parameter should, at the very least, be construed in light of the number of reported significant digits and by applying ordinary rounding techniques. All ranges set forth herein are inclusive of the recited endpoints unless otherwise indicated.

[0009]

[0013] Any patent, publication, or other disclosure material that is stated to be incorporated herein by reference in whole or in part is incorporated herein only to the extent that the incorporated material does not contradict existing definitions, descriptions, or other disclosure material set forth in this disclosure. Thus, to the extent necessary, the disclosure set forth herein supersedes any conflicting material incorporated herein by reference. Any material, or portion thereof, that is stated to be incorporated herein by reference but that contradicts existing definitions, descriptions, or other disclosure material set forth herein is incorporated only to the extent that no conflict arises between the incorporated material and the existing disclosure material.

[0010]

[0014] As used herein, a titanium alloy "comprising" a particular composition is intended to include alloys "consisting essentially of" or "consisting of" the indicated composition. It is understood that titanium alloy compositions "comprising," "consisting of," or "consisting essentially of" a particular composition described herein may also include impurities.

[0011]

[0015] Articles and components in high temperature environments may undergo creep. As used herein, "high temperature" refers to temperatures above about 200°F (93.3°C). Creep is a time-dependent strain that occurs under stress. Creep that occurs at reduced strain rates is referred to as primary creep, creep that occurs at a minimum, nearly constant strain rate is referred to as secondary (steady-state) creep, and creep that occurs at an accelerated strain rate is referred to as tertiary creep. Creep strength is the stress that produces a given creep strain in a creep test at a given time in a specific, defined environment.

[0012]

[0016] The creep resistance behavior of titanium and titanium alloys at elevated temperatures and under sustained loads is primarily determined by microstructural characteristics. Titanium has two allotropes: the beta ("β") phase, which has a body-centered cubic ("bcc") crystal structure, and the alpha ("α") phase, which has a hexagonal close-packed ("hcp") crystal structure. Generally, beta titanium alloys exhibit poor elevated-temperature creep strength. This is the result of the significant concentration of beta phase that these alloys exhibit at elevated temperatures, such as 482.2°C (900°F). Due to its body-centered cubic structure, the beta phase is less resistant to creep and leads to many deformation mechanisms. These shortcomings have limited the use of beta titanium alloys.

[0013]

[0017] One group of titanium alloys that is commonly used in a variety of applications are α / β titanium alloys. In α / β titanium alloys, the distribution and size of the primary α particles can directly affect creep resistance. Various published reviews of studies of silicon-containing α / β titanium alloys have shown that precipitation of silicides at grain boundaries can further improve creep resistance, but at room temperature There is a loss in tensile ductility. The decrease in room temperature tensile ductility that occurs with silicon addition limits the silicon concentration that can be added, typically to 0.3% (by weight).

[0014]

[0018] The present disclosure is directed, in part, to alloys that address certain limitations of conventional titanium alloys. One embodiment of the disclosed titanium alloy includes (i.e., comprises), in weight percent based on total alloy weight, 5.5-6.5 aluminum, 1.5-2.5 tin, 1.3-2.3 molybdenum, 0.1-10.0 zirconium, 0.01-0.30 silicon, 0.1-2.0 germanium, titanium, and impurities. Another embodiment of the disclosed titanium alloy includes, in weight percent based on total alloy weight, 5.5-6.5 aluminum, 1.7-2.1 tin, 1.7-2.1 molybdenum, 3.4-4.4 zirconium, 0.03-0.11 silicon, 0.1-0.4 germanium, titanium, and impurities. Yet another embodiment of the disclosed titanium alloy includes, in weight percent based on total alloy weight, 5.9-6.0 aluminum, 1.9-2.0 tin, 1.8-1.9 molybdenum, 3.7-4.0 zirconium, 0.06-0.11 silicon, 0.1-0.4 germanium, titanium, and impurities. In non-limiting embodiments of the disclosed alloy, the incidental elements and other impurities in the alloy composition can include or consist essentially of one or more of oxygen, iron, nitrogen, carbon, hydrogen, niobium, tungsten, vanadium, tantalum, manganese, nickel, hafnium, gallium, antimony, cobalt, and copper. Certain non-limiting embodiments of the titanium alloys of the present disclosure can include, in weight percent based on total alloy weight, 0.01-0.25 oxygen, 0-0.30 iron, 0.001-0.05 nitrogen, 0.001-0.05 carbon, 0-0.015 hydrogen, and 0 to 0.1 each of niobium, tungsten, hafnium, nickel, gallium, antimony, vanadium, tantalum, manganese, cobalt, and copper.

[0015]

[0019] Aluminum can be included in the alloys of the present disclosure to increase the alpha content and improve strength. In certain non-limiting embodiments of the present disclosure, aluminum can be present in a weight concentration of 2-7%, based on the total alloy weight. In certain non-limiting embodiments, aluminum can be present in a weight concentration of 5.5-6.5%, or in some embodiments, 5.9-6.0%, based on the total alloy weight.

[0016]

[0020] Tin can be included in the alloys of the present disclosure to increase the alpha content and improve strength. In certain non-limiting embodiments of the present disclosure, tin can be present in a weight concentration of 0-4%, based on the total alloy weight. In certain non-limiting embodiments, tin can be present in a weight concentration of 1.5-2.5%, or in some embodiments, 1.7-2.1%, based on the total alloy weight.

[0017]

[0021] Molybdenum can be included in the alloys of the present disclosure to increase the beta content and improve strength. In certain non-limiting embodiments of the present disclosure, molybdenum can be present in a weight concentration of 0-5% based on the total alloy weight. In certain non-limiting embodiments, molybdenum can be present in a weight concentration of 1.3-2.3%, or in some embodiments, 1.7-2.1%, based on the total alloy weight.

[0018]

[0022] Zirconium can be included in the alloys of the present disclosure to increase the alpha content, improve strength, and enhance creep resistance by forming intermetallic precipitates. In certain non-limiting embodiments of the present disclosure, zirconium can be present in a weight concentration of 1 to 10%, based on the total alloy weight. In certain non-limiting embodiments, zirconium can be present in a weight concentration of 3.4 to 4.4%, or in some embodiments, 3.5 to 4.3%, based on the total alloy weight.

[0019]

[0023] The inclusion of silicon in the alloys of the present disclosure can enhance creep resistance by forming intermetallic precipitates. In certain non-limiting embodiments of the present disclosure, silicon can be present in a weight concentration of 0.01 to 0.30%, based on the total alloy weight. In certain non-limiting embodiments, silicon can be present in a weight concentration of 0.03 to 0.11%, or in some embodiments, 0.06 to 0.11%, based on the total alloy weight.

[0020]

[0024] Germanium can be included in embodiments of the disclosed titanium alloys to improve secondary creep rate behavior at elevated temperatures. In certain non-limiting embodiments of the present disclosure, germanium can be present in a weight concentration of 0.05 to 2.0%, based on the total alloy weight. In certain non-limiting embodiments, germanium can be present in a weight concentration of 0.1 to 2.0%, or in some embodiments, 0.1 to 0.4%, based on the total alloy weight. While not intending to be bound by any theory, it is believed that the germanium content of the alloy, in combination with a suitable heat treatment, can promote the precipitation of zirconium-silicon-germanium intermetallic compound precipitates. The germanium addition can be, for example, via a pure metal or a master alloy of germanium and one or more other suitable metallic elements. Si-Ge and Al-Ge can be suitable examples of master alloys. Certain master alloys can be in the form of powder, pellets, wire, crushed chips, or sheet. The titanium alloys described herein are not limited in this respect. After final melting to obtain a substantially homogeneous mixture of titanium and alloying elements, the cast ingot can be thermomechanically processed by one or more of the steps of forging, rolling, extruding, drawing, swaging, upsetting, and annealing to obtain the desired microstructure. It should be understood that the alloys of the present disclosure can be thermomechanically processed and / or processed by other suitable methods.

[0021]

[0025] Non-limiting embodiments of methods for producing titanium alloys of the present disclosure include heat treating by annealing, solution treatment, and a combination of annealing, solution treatment, and aging (STA), direct aging, or thermal cycling to achieve a desired balance of mechanical properties. As used herein, the "solution treatment and aging (STA)" method refers to a heat treatment method applied to a titanium alloy that includes solution treating the titanium alloy at a solution treatment temperature below the beta transus temperature of the titanium alloy. In non-limiting embodiments, the solution treatment temperature is in the temperature range of about 1780°F (971.1°C) to about 1800°F (982.2°C). The solution-treated alloy is subsequently aged by heating the alloy for a period of time to an aging temperature range that is below the beta transus temperature of the titanium alloy and below the solution treatment temperature. As used herein, the terms "heated to" or "heating to," etc., refer to a temperature, temperature range, or minimum temperature, and mean that the alloy is heated until at least a desired portion of the alloy has a temperature at least equal to a reference temperature or minimum temperature, or a temperature within a reference temperature range, throughout the range of the portion. In non-limiting embodiments, the solution treatment time ranges from about 30 minutes to about 4 hours. In some non-limiting embodiments, the solution treatment time may be less than 30 minutes or greater than 4 hours, and is generally recognized as being dependent on the size and cross-section of the titanium alloy. Once the solution treatment is complete, the titanium alloy is cooled to ambient temperature at a rate dependent on the cross-sectional thickness of the titanium alloy.

[0022]

[0026] The solution-treated titanium alloy is subsequently aged at an aging temperature, also referred to herein as the "age-hardening temperature," which is in the α + β phase field and below the β transus temperature of the titanium alloy. In a non-limiting embodiment, the aging temperature ranges from about 579.44°C (1075°F) to about 607.2°C (1125°F). In some non-limiting embodiments, the aging time can range from about 30 minutes to about 8 hours. In some non-limiting embodiments, the aging time can be less than 30 minutes or more than 8 hours, and it is recognized that this will generally depend on the size and cross-section of the titanium alloy product form. Titanium The general techniques used in STA processing of alloys are known to those skilled in the art and therefore will not be further described herein.

[0023]

[0027] While it is recognized that the mechanical properties of titanium alloys are generally affected by the size of the specimen being tested, in certain non-limiting embodiments of the titanium alloys of the present disclosure, the titanium alloys are tested at temperatures of at least 476.7°C (890°F) under a load of 358.5 MPa (52 ksi) and at a strength of 8 x 10 -4 (24 hours) -1 Also, for example, certain non-limiting embodiments of the titanium alloys of the present disclosure exhibit a steady-state (also known as second-order or "stage II") creep rate of less than 8×10 under a load of 358.5 MPa (52 ksi) at a temperature of 482.2°C (900°F). -4 (24 hours) -1 In certain non-limiting embodiments of the present disclosure, the titanium alloy exhibits an ultimate tensile strength of at least 130 ksi at 900°F. In other non-limiting embodiments, the titanium alloy of the present disclosure exhibits a time to 0.1% creep strain of less than 20 hours at 900°F under a load of 52 ksi.

[0024]

[0028] The following examples are intended to further illustrate non-limiting embodiments of the present disclosure without limiting the scope of the invention. Those skilled in the art will recognize that variations of the following examples are possible within the scope of the invention, which is defined solely by the claims. [Example]

[0025] Example 1

[0029] Table 1 lists the elemental compositions of certain non-limiting embodiments of titanium alloys of the present disclosure ("Experimental Titanium Alloy No. 1," "Experimental Titanium Alloy No. 2," and "Experimental Titanium Alloy No. 3"), along with a comparative titanium alloy ("Comparative Titanium Alloy") that does not contain any intentional addition of germanium.

[0026] [Table 1]

[0027]

[0030] A plasma arc furnace was used to plasma arc melt (PAM) the comparative titanium alloy, experimental titanium alloy #1, experimental titanium alloy #2, and experimental titanium alloy #3 listed in Table 1 to produce 9-inch diameter welding rods weighing approximately 400 lb to 800 lb, respectively. The welding rods were remelted in a vacuum arc remelting (VAR) furnace to produce 10-inch diameter ingots. Each ingot was then cut into 3-inch diameter ingots using a hot working press. The billets were converted into billets of 17.78 cm (7 inches) diameter. After beta forging to a 7-inch diameter, alpha + beta prestrain forging to a 5-inch diameter, and beta finish forging to a 3-inch diameter, the ends of each billet were trimmed to remove suck-ins and edge cracks, and the billets were cut into multiple pieces. At 7 inches in diameter, the top and bottom of each billet were sampled for chemistry and beta transus. Based on the chemistry results of the intermediate billets, 2-inch long samples were cut from the billets and "pancake" forged in a press. The pancake specimens were heat treated under solution and aging conditions as follows: the titanium alloy was solution treated at 1780°F to 1800°F for 4 hours, the titanium alloy was cooled to ambient temperature at a rate dependent on the section thickness of the titanium alloy, the titanium alloy was aged at 1025°F to 1125°F for 8 hours, and the titanium alloy was air cooled.

[0028]

[0031] Control specimens for room- and high-temperature tensile testing, creep testing, fracture toughness, and microstructural analysis were cut from the STA-processed pancake specimens. Final chemical analysis was performed on the fracture toughness specimens after testing to ensure accurate correlation between chemistry and mechanical properties. Certain mechanical properties of the experimental titanium alloys listed in Table 1 were measured and compared with those of the comparative titanium alloys listed in Table 1. The results are listed in Table 2. Tensile testing was performed in accordance with American Society for Testing and Materials (ASTM) standard E8 / E8M-09 ("Standard Test Methods for Tension Testing of Metallic Materials," ASTM International, 2009). As shown by the results listed in Table 2, the experimental titanium alloy specimens exhibited ultimate tensile strength and yield strength at room temperature comparable to the comparative titanium alloys without the intentional addition of germanium.

[0029] [Table 2]

[0030]

[0032] Creep-rupture testing according to ASTM E139 was performed on the alloys listed in Table 1. The results are shown in Figure 1. The experimental titanium alloys of the present disclosure exhibited significantly more favorable secondary creep rates compared to the comparative titanium alloys. Referring to Figures 2-4, precipitation of a zirconium-silicon-germanium intermetallic phase was detected in experimental titanium alloy No. 2 after being subjected to creep under sustained load and elevated temperature beyond the time for primary (or Stage I) creep. As shown in Figure 1, the experimental titanium alloy specimen of the present disclosure exhibited steady-state creep after approximately 30 hours at 900°F (482.2°C) and 52 ksi (358.5 MPa). The comparative titanium alloy exhibited a time to 0.1% creep strain of 19.4 hours at 900°F (482.2°C) and 52 ksi (358.5 MPa). Experimental Titanium Alloy No. 1, Experimental Titanium Alloy No. 2, and Experimental Titanium Alloy No. 3 all exhibited significantly longer times to 0.1% creep strain under a load of 358.5 MPa (52 ksi) at 482.2°C (900°F): 32.6 hours, 55.3 hours, and 93.3 hours, respectively.

[0031]

[0033] Specimens tested before creep (but after heat treatment) did not reveal the presence of intermetallic precipitates. Referring to Figure 2, an energy dispersive X-ray (EDS) elemental scan of experimental titanium alloy No. 2 before creep revealed a substantially uniform distribution of germanium in the α / β microstructure, free of intermetallic particles. In Figures 3-4, partitioning of zirconium, silicon, and germanium into the intermetallic particles is evident after creep. The intermetallic particles generally exhibit aluminum depletion compared to the surrounding alpha particles. The precipitation of intermetallic particles after creep was particularly unexpected and surprising. While not intending to be bound by any theory, it is believed that the intermetallic particles may improve the secondary creep of the alloy without substantially affecting the high-temperature yield strength.

[0032]

[0034] The potential uses for the alloys of the present disclosure are numerous. As described and demonstrated above, the titanium alloys described herein are advantageously used in a variety of applications where creep resistance at elevated temperatures is important. Articles of manufacture for which the titanium alloys of the present disclosure may be particularly advantageous include certain aerospace and aviation applications, such as jet engine turbine disks and turbofan blades. Those skilled in the art will be able to fabricate the aforementioned devices, components, and other articles of manufacture from the alloys of the present disclosure without further explanation herein. The foregoing examples of possible uses for the alloys of the present disclosure are presented by way of example only and are not intended to be exhaustive of all applications to which the alloy product forms of the present invention may be applied. Those skilled in the art will be able to readily identify additional uses for the alloys described herein upon reading this disclosure.

[0033]

[0035] Various non-exhaustive, non-limiting embodiments of the novel alloys and methods of the present disclosure may be useful alone or in combination with one or more other embodiments described herein. Without limiting the foregoing, in a first, non-limiting embodiment of the present disclosure, a titanium alloy includes, in weight percent based on total alloy weight, 5.5-6.5 aluminum, 1.5-2.5 tin, 1.3-2.3 molybdenum, 0.1-10.0 zirconium, 0.01-0.30 silicon, 0.1-2.0 germanium, titanium, and impurities.

[0034]

[0036] According to a second non-limiting embodiment of the present disclosure, which can be used in combination with the first embodiment, the titanium alloy includes, in weight percent based on the total alloy weight, 5.5 to 6.5 aluminum, 1.7 to 2.1 tin, 1.7 to 2.1 molybdenum, 3.4 to 4.4 zirconium, 0.03 to 0.11 silicon, 0.1 to 0.4 germanium, titanium, and impurities.

[0035]

[0037] According to a third non-limiting embodiment of the present disclosure, which may be used in combination with each or any of the above embodiments, the titanium alloy includes, in weight percent based on total alloy weight, 5.9-6.0 aluminum, 1.9-2.0 tin, 1.8-1.9 molybdenum, 3.5-4.3 zirconium, 0.06-0.11 silicon, 0.1-0.4 germanium, titanium, and impurities.

[0036]

[0038] According to a fourth non-limiting embodiment of the present disclosure, which may be used in combination with each or any of the above embodiments, the titanium alloy further comprises, in weight percent based on the total alloy weight, 0-0.30 oxygen, 0-0.30 iron, 0-0.05 nitrogen, 0-0.05 carbon, 0-0.015 hydrogen, and 0-0.1 each of niobium, tungsten, hafnium, nickel, gallium, antimony, vanadium, tantalum, manganese, cobalt, and copper.

[0037]

[0039] According to a fifth, non-limiting embodiment of the present disclosure, which may be used in combination with each or any of the above embodiments, the titanium alloy includes zirconium-silicon-germanium intermetallic compound precipitates.

[0038]

[0040] According to a sixth, non-limiting embodiment of the present disclosure, which may be used in combination with each or any of the above embodiments, the titanium alloy is characterized by a thermal conductivity of 8×10 sintered bodies at a temperature of at least 476.7° C. (890° F.) under a load of 358.5 MPa (52 ksi). -4 (24 hours) -1 The steady-state creep rate is less than 1000 kJ / s.

[0039]

[0041] According to a seventh non-limiting embodiment of the present disclosure, a method of producing a titanium alloy includes solution treating a titanium alloy at 1780°F to 1800°F for 4 hours, cooling the titanium alloy to ambient temperature at a rate dependent on the section thickness of the titanium alloy, aging the titanium alloy at 1025°F to 1125°F for 8 hours, and air-cooling the titanium alloy, wherein the titanium alloy has a composition as detailed in each or any of the preceding embodiments.

[0040]

[0042] According to an eighth, non-limiting embodiment of the present disclosure, which may be used in combination with each or any of the above embodiments, the titanium alloy exhibits an ultimate tensile strength of at least 130 ksi at 900°F.

[0041]

[0043] According to a ninth non-limiting aspect of the present disclosure, the present disclosure also provides a titanium alloy consisting essentially of, in weight percent based on total alloy weight, 5.5-6.5 aluminum, 1.5-2.5 tin, 1.3-2.3 molybdenum, 0.1-10.0 zirconium, 0.01-0.30 silicon, 0.1-2.0 germanium, titanium, and impurities.

[0042]

[0044] According to a tenth non-limiting embodiment of the present disclosure, which may be used in combination with each or any of the above embodiments, the aluminum content of the alloy is 5.9 to 6.0 weight percent based on the total alloy weight.

[0043]

[0045] According to an eleventh, non-limiting embodiment of the present disclosure, which may be used in combination with each or any of the above embodiments, the tin content of the alloy is 1.7 to 2.1, in weight percent based on the total alloy weight.

[0044]

[0046] According to a twelfth, non-limiting embodiment of the present disclosure, which may be used in combination with each or any of the above embodiments, the tin content of the alloy is 1.9 to 2.0, in weight percent based on the total alloy weight.

[0045]

[0047] According to a thirteenth, non-limiting embodiment of the present disclosure, which may be used in combination with each or any of the above embodiments, the molybdenum content of the alloy is 1.7 to 2.1 weight percent based on the total alloy weight.

[0046]

[0048] According to a fourteenth non-limiting embodiment of the present disclosure, which may be used in combination with each or any of the above embodiments, the molybdenum content of the alloy is 1.8 to 1.9 weight percent based on the total alloy weight.

[0047]

[0049] According to a fifteenth, non-limiting embodiment of the present disclosure, which may be used in combination with each or any of the above embodiments, the zirconium content of the alloy is 3.4 to 4.4, in weight percent based on the total alloy weight.

[0048]

[0050] According to a sixteenth non-limiting embodiment of the present disclosure, which may be used in combination with each or any of the above embodiments, the zirconium content of the alloy is 3.5 to 4.3 weight percent based on the total alloy weight.

[0049]

[0051] According to a seventeenth, non-limiting embodiment of the present disclosure, which may be used in combination with each or any of the above embodiments, the silicon content of the alloy is 0.03 to 0.11 weight percent based on the total alloy weight.

[0050]

[0052] According to an eighteenth non-limiting embodiment of the present disclosure, which may be used in combination with each or any of the above embodiments, the silicon content of the alloy is 0.06 to 0.11 weight percent based on the total alloy weight.

[0051]

[0053] According to a nineteenth, non-limiting embodiment of the present disclosure, which may be used in combination with each or any of the above embodiments, the germanium content of the alloy is 0.1 to 0.4 weight percent based on the total alloy weight.

[0052]

[0054] According to a twentieth non-limiting embodiment of the present disclosure, which can be used in combination with each or any of the above embodiments, in a titanium alloy, the oxygen content is 0 to 0.30, the iron content is 0 to 0.30, the nitrogen content is 0 to 0.05, the carbon content is 0 to 0.05, the hydrogen content is 0 to 0.015, and the contents of niobium, tungsten, hafnium, nickel, gallium, antimony, vanadium, tantalum, manganese, cobalt, and copper are each 0 to 0.1, all in weight percent based on the total weight of the titanium alloy.

[0053]

[0055] According to a twenty-first non-limiting embodiment of the present disclosure, which may be used in combination with each or any of the embodiments described above, a method of producing a titanium alloy includes solution treating a titanium alloy at 1780°F (971.1°C) to 1800°F (982.2°C) for 4 hours, cooling the titanium alloy to ambient temperature at a rate dependent on a section thickness of the titanium alloy, aging the titanium alloy at 1025°F (551.7°C) to 1125°F (607.2°C) for 8 hours, and air-cooling the titanium alloy, wherein the titanium alloy has a composition detailed in each or any of the foregoing embodiments.

[0054]

[0056] According to a twenty-second, non-limiting embodiment of the present disclosure, which may be used in combination with each or any of the above embodiments, the titanium alloy is resistant to 8×10 tensile strength at a temperature of at least 476.7° C. (890° F.) under a load of 358.5 MPa (52 ksi). -4 (24 hours) -1 The steady-state creep rate is less than 1000 kJ / s.

[0055]

[0057] According to a twenty-third, non-limiting embodiment of the present disclosure, which may be used in combination with each or any of the above embodiments, the titanium alloy exhibits an ultimate tensile strength of at least 896.3 MPa (130 ksi) at 482.2°C (900°F).

[0056]

[0058] According to a twenty-fourth non-limiting embodiment of the present disclosure, the present disclosure also provides a titanium alloy including, in weight percent based on total alloy weight, 2-7 aluminum, 0-5 tin, 0-5 molybdenum, 0.1-10.0 zirconium, 0.01-0.30 silicon, 0.05-2.0 germanium, 0-0.30 oxygen, 0-0.30 iron, 0-0.05 nitrogen, 0-0.05 carbon, 0-0.015 hydrogen, titanium, and impurities.

[0057]

[0059] According to a twenty-fifth, non-limiting embodiment of the present disclosure, which may be used in combination with each or any of the above embodiments, the titanium alloy is resistant to 8×10 tensile strength at a temperature of at least 476.7° C. (890° F.) under a load of 358.5 MPa (52 ksi). -4 (24 hours) -1 The steady-state creep rate is less than 1000 kJ / s.

[0058]

[0060] According to a twenty-sixth, non-limiting embodiment of the present disclosure, which may be used in combination with each or any of the above embodiments, the titanium alloy further comprises 0 to 5 chromium, in weight percent based on the total alloy weight.

[0059]

[0061] According to a twenty-seventh non-limiting embodiment of the present disclosure, which may be used in combination with each or any of the above embodiments, the titanium alloy further comprises, by weight percent based on the total alloy weight, 0 to 6.0 of each of niobium, tungsten, vanadium, tantalum, manganese, nickel, hafnium, gallium, antimony, cobalt, and copper.

[0060]

[0062] According to a twenty-eighth non-limiting embodiment of the present disclosure, which may be used in combination with each or any of the above embodiments, the titanium alloy is resistant to 8×10 tensile strength at a temperature of at least 476.7°C (890°F) under a load of 358.5 MPa (52 ksi). -4 (24 hours) -1 The steady-state creep rate is less than 1000 kJ / s.

[0061]

[0063] According to a twenty-ninth, non-limiting embodiment of the present disclosure, which may be used in combination with each or any of the above embodiments, the titanium alloy further comprises 0 to 5 chromium, in weight percent based on the total alloy weight.

[0062]

[0064] It should be understood that this specification presents aspects of the invention that are adequate for a clear understanding of the present invention. Certain aspects that would be obvious to those skilled in the art and therefore would not facilitate a better understanding of the present invention have not been presented in order to simplify the specification. While only a limited number of embodiments of the present invention have necessarily been described herein, those skilled in the art will recognize in light of this specification that many modifications and variations of the present invention can be used. All such modifications and variations of the present invention are intended to be included within the scope of this specification and the following claims.

[0063] [Mode of Invention] [1] Percent by weight based on total alloy weight: 5.5~6.5 aluminum, 1.5 to 2.5 tin, 1.3 to 2.3 molybdenum, Zirconium 0.1 to 10.0 0.01 to 0.30 silicon, 0.1 to 2.0 germanium, Titanium, and Titanium alloy containing impurities. [2] Percent by weight based on total alloy weight: 5.5~6.5 aluminum, 1.7 to 2.1 tin, Molybdenum 1.7-2.1 Zirconium 3.4-4.4 0.03 to 0.11 silicon, 0.1-0.4 germanium, Titanium, and 2. The titanium alloy of 1, containing impurities. [3] Percent by weight based on total alloy weight: 5.9~6.0 aluminum, 1.9~2.0 tin, 1.8-1.9 molybdenum, Zirconium 3.5-4.3 silicon 0.06-0.11, 0.1-0.4 germanium, Titanium, and 2. The titanium alloy of 1, containing impurities. [4] Percent by weight based on total alloy weight: Oxygen from 0 to 0.30 0-0.30 iron, Nitrogen from 0 to 0.05 0 to 0.05 carbon, 0 to 0.015 hydrogen, and 10. The titanium alloy of claim 1, further comprising 0 to 0.1 of each of niobium, tungsten, hafnium, nickel, gallium, antimony, vanadium, tantalum, manganese, cobalt, and copper. [5] 10. The titanium alloy of claim 1, containing zirconium-silicon-germanium intermetallic compound precipitates. [6] The titanium alloy is heat-resistant to 8×10 sintering at a temperature of at least 476.7°C (890°F) under a load of 358.5 MPa (52 ksi). -4 (24 hours) -1 10. A titanium alloy as recited in claim 1, exhibiting a steady-state creep rate of less than 1000 K. [7] 1. A method for producing a titanium alloy, comprising: Solution heat treating the titanium alloy at 971.1°C (1780°F) to 982.2°C (1800°F) for 4 hours; cooling the titanium alloy to ambient temperature at a rate dependent on the cross-sectional thickness of the titanium alloy; Aging the titanium alloy at 1025°F (551.7°C) to 1125°F (607.2°C) for 8 hours; and air-cooling the titanium alloy; 1. The method of claim 1, wherein the titanium alloy has a composition according to 1. [8] 10. The titanium alloy of claim 1, wherein the titanium alloy exhibits an ultimate tensile strength of at least 130 ksi at 900°F. [9] Percent by weight based on total alloy weight: 5.5~6.5 aluminum, 1.5 to 2.5 tin, 1.3 to 2.3 molybdenum, Zirconium 0.1 to 10.0 0.01 to 0.30 silicon, 0.1 to 2.0 germanium, Titanium, and A titanium alloy consisting essentially of impurities.

[10] 10. The titanium alloy of claim 9, wherein the aluminum content of the alloy is 5.9 to 6.0, in weight percent based on total alloy weight.

[11] 10. The titanium alloy of claim 9, wherein the tin content of the alloy is 1.7 to 2.1, in weight percent based on total alloy weight.

[12] 10. The titanium alloy of claim 9, wherein the tin content of the alloy is 1.9 to 2.0, in weight percent based on the total alloy weight.

[13] 10. The titanium alloy of claim 9, wherein the molybdenum content of the alloy is 1.7 to 2.1, in weight percent based on total alloy weight.

[14] 10. The titanium alloy of claim 9, wherein the molybdenum content of the alloy is 1.8 to 1.9, in weight percent based on the total alloy weight.

[15] 10. The titanium alloy of claim 9, wherein the zirconium content of the alloy is 3.4 to 4.4, in weight percent based on total alloy weight.

[16] 10. The titanium alloy of claim 9, wherein the zirconium content of the alloy is 3.5 to 4.3, in weight percent based on total alloy weight.

[17] 10. The titanium alloy of claim 9, wherein the silicon content of the alloy is 0.03 to 0.11, in weight percent based on the total alloy weight.

[18] 10. The titanium alloy of claim 9, wherein the silicon content of the alloy is 0.06 to 0.11, in weight percent based on the total alloy weight.

[19] The germanium content of the alloy is 0.1 to 0.4 weight percent based on the total alloy weight. 9. The titanium alloy according to claim 9.

[20] In the titanium alloy, The oxygen content is 0 to 0.30. The iron content is 0 to 0.30, The nitrogen content is 0 to 0.05, The carbon content is 0 to 0.05, The hydrogen content is 0 to 0.015, The content of each of niobium, tungsten, hafnium, nickel, gallium, antimony, vanadium, tantalum, manganese, cobalt, and copper is 0 to 0.1; 10. The titanium alloy of claim 9, wherein all weight percentages are based on the total weight of the titanium alloy. [twenty one] 1. A method for producing a titanium alloy, comprising: Solution heat treating the titanium alloy at 971.1°C (1780°F) to 982.2°C (1800°F) for 4 hours; cooling the titanium alloy to ambient temperature at a rate dependent on the cross-sectional thickness of the titanium alloy; Aging the titanium alloy at 1025°F (551.7°C) to 1125°F (607.2°C) for 8 hours; and air-cooling the titanium alloy; 11. The method of claim 10, wherein the titanium alloy has a composition according to claim 10. [twenty two] The titanium alloy is heat-resistant to 8×10 sintering at a temperature of at least 476.7°C (890°F) under a load of 358.5 MPa (52 ksi). -4 (24 hours) -1 10. A titanium alloy as recited in claim 9, exhibiting a steady-state creep rate of less than 1000 kJ / s. [twenty three] 10. The titanium alloy of claim 9, wherein the titanium alloy exhibits an ultimate tensile strength of at least 896.3 MPa (130 ksi) at 482.2°C (900°F). [twenty four] Percent by weight based on total alloy weight: 2~7 aluminum, 0-5 tin, 0-5 molybdenum, Zirconium 0.1 to 10.0 0.01 to 0.30 silicon, Germanium 0.05 to 2.0 Oxygen from 0 to 0.30 0-0.30 iron, Nitrogen from 0 to 0.05 0 to 0.05 carbon, 0 to 0.015 hydrogen, Titanium, and Titanium alloy containing impurities. [twenty five] The titanium alloy is heat-resistant to 8×10 sintering at a temperature of at least 476.7°C (890°F) under a load of 358.5 MPa (52 ksi). -4 (24 hours) -1 25. A titanium alloy as recited in claim 24, exhibiting a steady-state creep rate of less than 2500 K.

[26] Percent by weight based on total alloy weight: 25. The titanium alloy of claim 24, further comprising 0 to 5 chromium.

[27] Percent by weight based on total alloy weight: 25. The titanium alloy of claim 24, further comprising 0.0 to 6.0 of each of niobium, tungsten, vanadium, tantalum, manganese, nickel, hafnium, gallium, antimony, cobalt, and copper.

[28] The titanium alloy is heat-resistant to 8×10 sintering at a temperature of at least 476.7°C (890°F) under a load of 358.5 MPa (52 ksi). -4 (24 hours) -1 28. A titanium alloy as recited in claim 27, exhibiting a steady-state creep rate of less than 2000kJ / s.

[29] Percent by weight based on total alloy weight: 28. The titanium alloy of 27, further comprising 0 to 5 chromium.

Claims

1. 1. A method of processing a titanium alloy, comprising: solution treating the titanium alloy; and Aging the titanium alloy. Including, the titanium alloy forms intermetallic compound precipitates containing zirconium, silicon, and germanium; and The titanium alloy comprises, in weight percent based on total alloy weight: 5.5 to 6.5 aluminum, 1.5 to 2.5 tin, 1.3 to 2.3 molybdenum, 0.1 to 10.0 zirconium, 0.01 to 0.30 silicon, 0.1 to 2.0 germanium, Oxygen between 0 and 0.15, Iron from 0 to 0.30; 0 to 0.05 nitrogen, 0 to 0.05 carbon, 0 to 0.015 hydrogen, 0 to 0.1 of each of niobium, tungsten, hafnium, nickel, gallium, antimony, vanadium, tantalum, manganese, cobalt, and copper Titanium, and impurities Consists of: method.

2. solution treating the titanium alloy at 1780°F (971.1°C) to 1800°F (982.2°C); and Aging the titanium alloy at 551.7°C (1025°F) to 607.2°C (1125°F). Including, The method of claim 1.

3. solution treating the titanium alloy at 1780°F (971.1°C) to 1800°F (982.2°C) for 4 hours; and Aging the titanium alloy at 551.7°C (1025°F) to 607.2°C (1125°F) for 8 hours. Including, The method of claim 1.

4. solution treating the titanium alloy at 1780°F (971.1°C) to 1800°F (982.2°C); cooling the titanium alloy to ambient temperature; Aging the titanium alloy at 551.7°C (1025°F) to 607.2°C (1125°F); and air-cooling the titanium alloy; Including, The method of claim 1.

5. solution treating the titanium alloy at 1780°F (971.1°C) to 1800°F (982.2°C) for 4 hours; cooling the titanium alloy to ambient temperature at a rate dependent on the cross-sectional thickness of the titanium alloy; Aging the titanium alloy at 551.7°C (1025°F) to 607.2°C (1125°F) for 8 hours; and air-cooling the titanium alloy; Including, The method of claim 1.

6. The titanium alloy comprises, in weight percent based on total alloy weight: 5.5 to 6.5 aluminum, 1.7 to 2.1 tin, 1.7 to 2.1 molybdenum, Zirconium from 3.4 to 4.4, 0.03 to 0.11 silicon, 0.1 to 0.4 germanium, Oxygen between 0 and 0.15, Iron from 0 to 0.30; 0 to 0.05 nitrogen, 0 to 0.05 carbon, 0 to 0.015 hydrogen, 0 to 0.1 of each of niobium, tungsten, hafnium, nickel, gallium, antimony, vanadium, tantalum, manganese, cobalt, and copper Titanium, and impurities Consists of: The method of claim 1.

7. The titanium alloy comprises, in weight percent based on total alloy weight: Aluminum 5.9-6.0, 1.9 to 2.0 tin, 1.8 to 1.9 molybdenum, Zirconium from 3.5 to 4.3, 0.06 to 0.11 silicon, 0.1 to 0.4 germanium, Oxygen between 0 and 0.15, Iron from 0 to 0.30; 0 to 0.05 nitrogen, 0 to 0.05 carbon, 0 to 0.015 hydrogen, 0 to 0.1 of each of niobium, tungsten, hafnium, nickel, gallium, antimony, vanadium, tantalum, manganese, cobalt, and copper Titanium, and impurities Consists of: The method of claim 1.

8. The titanium alloy is subjected to a 8×10 tensile test under a load of 358.5 MPa (52 ksi) at a temperature of at least 476.7° C. (890° F.). -4 (24 hours) -1 exhibiting a steady-state creep rate of less than The method of claim 1.

9. the titanium alloy exhibits an ultimate tensile strength of at least 896.3 MPa (130 ksi) at 482.2°C (900°F); The method of claim 1.

10. 1. A method of processing a titanium alloy, comprising: solution treating the titanium alloy; and Aging the titanium alloy. Including, The titanium alloy comprises, in weight percent based on total alloy weight: 5.5 to 6.5 aluminum, 1.5 to 2.5 tin, 1.3 to 2.3 molybdenum, 0.1 to 10.0 zirconium, 0.01 to 0.30 silicon, 0.1 to 2.0 germanium, Oxygen between 0 and 0.15, Iron from 0 to 0.30; 0 to 0.05 nitrogen, 0 to 0.05 carbon, 0 to 0.015 hydrogen, 0 to 0.1 of each of niobium, tungsten, hafnium, nickel, gallium, antimony, vanadium, tantalum, manganese, cobalt, and copper Titanium, and impurities Consists of: method.

11. solution treating the titanium alloy at 1780°F (971.1°C) to 1800°F (982.2°C); and Aging the titanium alloy at 551.7°C (1025°F) to 607.2°C (1125°F). Including, The method of claim 10.

12. solution treating the titanium alloy at 1780°F (971.1°C) to 1800°F (982.2°C) for 4 hours; and Aging the titanium alloy at 551.7°C (1025°F) to 607.2°C (1125°F) for 8 hours. Including, The method of claim 10.

13. solution treating the titanium alloy at 1780°F (971.1°C) to 1800°F (982.2°C); cooling the titanium alloy to ambient temperature; Aging the titanium alloy at 551.7°C (1025°F) to 607.2°C (1125°F); and air-cooling the titanium alloy; Including, The method of claim 10.

14. solution treating the titanium alloy at 1780°F (971.1°C) to 1800°F (982.2°C) for 4 hours; cooling the titanium alloy to ambient temperature at a rate dependent on the cross-sectional thickness of the titanium alloy; Aging the titanium alloy at 551.7°C (1025°F) to 607.2°C (1125°F) for 8 hours; and air-cooling the titanium alloy; Including, The method of claim 10.

15. The titanium alloy is subjected to a 8×10 tensile test under a load of 358.5 MPa (52 ksi) at a temperature of at least 476.7° C. (890° F.). -4 (24 hours) -1 exhibiting a steady-state creep rate of less than The method of claim 10.

16. the titanium alloy exhibits an ultimate tensile strength of at least 896.3 MPa (130 ksi) at 482.2°C (900°F); The method of claim 10.

17. The titanium alloy comprises, in weight percent based on total alloy weight: 5.5 to 6.5 aluminum, 1.7 to 2.1 tin, 1.7 to 2.1 molybdenum, Zirconium from 3.4 to 4.4, 0.03 to 0.11 silicon, 0.1 to 0.4 germanium, Oxygen between 0 and 0.15, Iron from 0 to 0.30; 0 to 0.05 nitrogen, 0 to 0.05 carbon, 0 to 0.015 hydrogen, 0 to 0.1 of each of niobium, tungsten, hafnium, nickel, gallium, antimony, vanadium, tantalum, manganese, cobalt, and copper Titanium, and impurities Consists of: The method of claim 10.

18. The titanium alloy comprises, in weight percent based on total alloy weight: Aluminum 5.9-6.0, 1.9 to 2.0 tin, 1.8 to 1.9 molybdenum, Zirconium from 3.5 to 4.3, 0.06 to 0.11 silicon, 0.1 to 0.4 germanium, Oxygen between 0 and 0.15, Iron from 0 to 0.30; 0 to 0.05 nitrogen, 0 to 0.05 carbon, 0 to 0.015 hydrogen, 0 to 0.1 of each of niobium, tungsten, hafnium, nickel, gallium, antimony, vanadium, tantalum, manganese, cobalt, and copper Titanium, and impurities Consists of: The method of claim 10.

19. 1. A method of processing a titanium alloy, comprising: solution treating the titanium alloy; and Aging the titanium alloy. Including, the titanium alloy forms intermetallic compound precipitates containing zirconium, silicon, and germanium; and The titanium alloy comprises, in weight percent based on total alloy weight: 5.5 to 6.5 aluminum, 1.5 to 2.5 tin, 1.3 to 2.3 molybdenum, 0.1 to 10.0 zirconium, 0.01 to 0.30 silicon, 0.1 to 2.0 germanium, Oxygen between 0 and 0.15, Iron from 0 to 0.30; 0 to 0.05 nitrogen, 0 to 0.05 carbon, 0 to 0.015 hydrogen, 0 to 0.1 of each of niobium, tungsten, hafnium, nickel, gallium, antimony, vanadium, tantalum, manganese, cobalt, and copper Titanium, and impurities consisting essentially of method.

20. solution treating the titanium alloy at 1780°F (971.1°C) to 1800°F (982.2°C); and Aging the titanium alloy at 551.7°C (1025°F) to 607.2°C (1125°F). Including, 20. The method of claim 19.

21. solution treating the titanium alloy at 1780°F (971.1°C) to 1800°F (982.2°C) for 4 hours; and Aging the titanium alloy at 551.7°C (1025°F) to 607.2°C (1125°F) for 8 hours. Including, 20. The method of claim 19.

22. solution treating the titanium alloy at 1780°F (971.1°C) to 1800°F (982.2°C); cooling the titanium alloy to ambient temperature; Aging the titanium alloy at 551.7°C (1025°F) to 607.2°C (1125°F); and air-cooling the titanium alloy; Including, 20. The method of claim 19.

23. solution treating the titanium alloy at 1780°F (971.1°C) to 1800°F (982.2°C) for 4 hours; cooling the titanium alloy to ambient temperature at a rate dependent on the cross-sectional thickness of the titanium alloy; Aging the titanium alloy at 551.7°C (1025°F) to 607.2°C (1125°F) for 8 hours; and air-cooling the titanium alloy; Including, 20. The method of claim 19.

24. The titanium alloy comprises, in weight percent based on total alloy weight: 5.5 to 6.5 aluminum, 1.7 to 2.1 tin, 1.7 to 2.1 molybdenum, Zirconium from 3.4 to 4.4, 0.03 to 0.11 silicon, 0.1 to 0.4 germanium, Oxygen between 0 and 0.15, Iron from 0 to 0.30; 0 to 0.05 nitrogen, 0 to 0.05 carbon, 0 to 0.015 hydrogen, 0 to 0.1 of each of niobium, tungsten, hafnium, nickel, gallium, antimony, vanadium, tantalum, manganese, cobalt, and copper Titanium, and impurities Consists of:

20. The method of claim 19.

25. The titanium alloy comprises, in weight percent based on total alloy weight: Aluminum 5.9-6.0, 1.9 to 2.0 tin, 1.8 to 1.9 molybdenum, Zirconium from 3.5 to 4.3, 0.06 to 0.11 silicon, 0.1 to 0.4 germanium, Oxygen between 0 and 0.15, Iron from 0 to 0.30; 0 to 0.05 nitrogen, 0 to 0.05 carbon, 0 to 0.015 hydrogen, 0 to 0.1 of each of niobium, tungsten, hafnium, nickel, gallium, antimony, vanadium, tantalum, manganese, cobalt, and copper Titanium, and impurities Consists of:

20. The method of claim 19.

26. The titanium alloy is subjected to a 8×10 tensile test under a load of 358.5 MPa (52 ksi) at a temperature of at least 476.7° C. (890° F.). -4 (24 hours) -1 exhibiting a steady-state creep rate of less than 20. The method of claim 19.

27. the titanium alloy exhibits an ultimate tensile strength of at least 896.3 MPa (130 ksi) at 482.2°C (900°F); 20. The method of claim 19.