Heat treatment of additively manufactured aluminum alloys

Tailored heat treatment methods for AM205 aluminum alloy, including solution-aging and overaging, improve the mechanical properties of additively manufactured parts, achieving comparable or superior strength to cast parts by ensuring a uniform grain size distribution.

JP7822692B2Active Publication Date: 2026-03-03THE BOEING CO
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Patent Information

Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2020-10-21
Publication Date
2026-03-03

AI Technical Summary

Technical Problem

Standard heat treatment practices for cast A205 aluminum alloy parts are not effective for optimizing the mechanical properties of additively manufactured AM205 aluminum alloy parts, as they react differently, leading to inferior strength compared to cast parts.

Method used

A method involving solution-aging AM205 components at a first temperature for less than 5 hours, followed by overaging, to achieve a uniform grain size distribution, including optional natural aging steps, tailored to the specific properties of additively manufactured aluminum alloy components.

Benefits of technology

The method enhances the mechanical properties of AM205 aluminum alloy parts, making them comparable or superior to cast A205 alloy parts in terms of strength and uniformity, addressing the limitations of traditional heat treatments.

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Abstract

To provide a heat treatment method for producing a uniform grain size distribution within an additively manufactured A205 aluminum alloy component (AM205 component).SOLUTION: The method comprises: solution-aging the aluminum alloy component at 540°C for a first time period, where the first time period is less than five hours; and overaging the aluminum alloy component after the solution aging.SELECTED DRAWING: Figure 1A
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Description

[Technical Field]

[0001] The present disclosure relates generally to additive manufacturing, and more particularly to heat treatments for aluminum alloys used in additive manufacturing. [Background technology]

[0002] Additive manufacturing, also known as three-dimensional (3D) printing, is a deposition process that builds three-dimensional objects from computer-aided design models by sequentially adding material, typically layer by layer. The materials are typically liquids or powders that are combined to create the three-dimensional object. Currently, 3D printing has evolved to use metals. Metal 3D printing allows for the production of metal parts from metal powder, which would not have been possible without metal 3D printing technology. Furthermore, metal 3D printing is a less wasteful process compared to traditional metal manufacturing, and the resulting metal parts produced by 3D printing are lighter than the same parts produced using traditional manufacturing methods. These characteristics have led to the increasing use of metal 3D parts in various industries, including the aerospace industry.

[0003] Currently, many metal 3D printing processes utilize a combination of a power bed system and an energy source to combine materials, typically powdered metal. The energy source is typically one or more of a laser, a heated nozzle, an energy beam, etc. In the case of a laser and metal powder, the metal 3D printing process may include utilizing one or more lasers to melt and recombine the metal powder into a three-dimensional metal part in an additive process. The additive process involves adding molten powder material (layer by layer) until the three-dimensional metal part is formed.

[0004] Furthermore, aluminum has become an important metal in 3D printing because it has an excellent strength-to-weight ratio, high thermal and electrical conductivity, low density, and weather resistance, which are good properties for functional parts with high strength, rigidity, light weight, and high precision. A205 aluminum alloy is an example of a powdered type of aluminum alloy used as a casting material or base material in additive manufacturing processes (i.e., 3D printing processes). When used in additive manufacturing, A205 aluminum alloy is known as AM205 aluminum alloy (or simply AM205 aluminum, or AM205).

[0005] Heat treatment of AM205 aluminum alloy parts is typically used to attempt to improve the mechanical properties of AM205 aluminum alloy parts after they are produced by an additive manufacturing process (i.e., a deposition process). This heat treatment is the same type of treatment as the heat treatment typically used to cast A205 aluminum alloy parts. Unfortunately, AM205 aluminum alloy reacts differently than cast A205 aluminum alloy parts. Because AM205 aluminum alloy reacts in an unusual manner to heat treatments following a deposition process, standard heat treatment practices utilized for cast A205 aluminum alloy parts are not useful for optimizing AM205 aluminum alloy parts. Therefore, new systems and methods are needed to address these challenges. Summary of the Invention

[0006] A method for heat treating an additively manufactured A205 aluminum alloy component ("AM205 component") to produce a uniform grain size distribution within the AM205 component is disclosed. The method includes solution-aging the AM205 component at a first temperature for a first period of time, the first period of time being less than 5 hours, and overaging the AM205 component after solution-aging. Additionally, an additively manufactured A205 aluminum alloy part ("AM205 part") having a uniform grain size distribution is also described. The AM205 component is made by a process that includes additively manufacturing an A205 aluminum alloy component ("AM205 component") utilizing an A205 aluminum alloy; solution aging the AM205 component at a first temperature for a first period of time, where the first period of time is less than 5 hours; and overaging the AM205 component after solution aging to produce an AM205 component having a uniform grain size distribution.

[0007] The scope of the present disclosure is defined by the claims, which are incorporated into this section by reference. A more complete understanding of the present disclosure and a realization of further advantages thereof will be realized by those skilled in the art upon review of the following detailed description of one or more implementations. Reference will now be made to the accompanying drawings, which will first be briefly described.

[0008] Additionally, other devices, apparatus, systems, methods, features, and advantages of the present disclosure will be or become apparent to one with skill in the art upon examination of the following figures and detailed description. It is intended that all such additional systems, methods, features, and advantages be included within this description, be within the scope of this disclosure, and be protected by the accompanying claims.

[0009] The present disclosure can be better understood by reference to the following drawings, in which components are not necessarily to scale, emphasis instead being placed upon illustrating the principles of the present disclosure, and in which like reference numbers refer to corresponding parts throughout the various views. [Brief explanation of the drawings]

[0010] [Figure 1A] FIG. 1 is a flow diagram of an example implementation of a method for heat treating AM205 aluminum alloy in accordance with the present disclosure. [Figure 1B] FIG. 1 is a flow diagram of an example implementation of another method for heat treating AM205 aluminum alloy in accordance with the present disclosure. [Figure 1C] FIG. 1 is a flow diagram of yet another example implementation of a method for heat treating AM205 aluminum alloy in accordance with the present disclosure. [Figure 2] 1A-1C according to the present disclosure. [Figure 3] 1A-1C according to the present disclosure. [Figure 4] 1A-1C according to the present disclosure. [Figure 5A] 1 is a photomicrograph of the microstructural composition of a solution heat treated (solution aged) AM205 aluminum part and an as-deposited untreated AM205 aluminum component according to the present disclosure. [Figure 5B] 10 is another photomicrograph of the microstructural composition of a solution heat treated (solution aged) AM205 aluminum part and an as-deposited untreated AM205 aluminum component in accordance with the present disclosure; [Figure 6A] 1 shows photographs of the microstructure composition of an AM205 part that was solution heat treated for 4 hours and an AM205 part that was solution heat treated for 8 hours, according to the present disclosure. [Figure 6B] 6B shows additional photographs of the microstructural composition of the AM205 part solution heat treated for 4 hours and the AM205 part solution heat treated for 8 hours shown in FIG. 6A in accordance with the present disclosure. [Figure 7] 1A-1C are graphs of hardness properties of various AM205 aluminum components processed according to the method of FIGS. 1A-1C in accordance with the present disclosure. [Figure 8] 1A-1C are graphs of plots of example implementations of the method described in FIGS. 1A-1C in accordance with the present disclosure. [Figure 9] FIG. 1B is a system block diagram of an example implementation of a system for performing the method described in FIGS. 1A-1C in accordance with the present disclosure. DETAILED DESCRIPTION OF THE INVENTION

[0011] Described herein are various systems and techniques for heat treating AM205 aluminum alloy (generally referred to in this disclosure as "AM205 aluminum," although those skilled in the art will understand that this material is an aluminum alloy, not pure aluminum) after additive manufacturing. As previously mentioned, additive manufacturing, also known as three-dimensional (3D) printing, is a deposition process that builds three-dimensional objects from computer-aided design models by sequentially adding material, typically layer by layer. The material is typically a liquid or powder that is combined to create the three-dimensional object. In this disclosure, the material is A205 aluminum alloy in powdered form (generally referred to in this disclosure as "A205 aluminum"). As an example, A205 aluminum can be provided in powdered form from Aeromet International Limited®, Worcester, England, UK. The powdered A205 aluminum is then used in additive manufacturing to produce solid, three-dimensional objects—additively manufactured A205 aluminum alloy components (“A205 components”) (“AM” indicates that the A205 aluminum has been utilized in an additive manufacturing process). Typically, the AM205 aluminum, once deposited, includes a yield strength of approximately 38.5 kilopounds per square inch (“ksi”), with a 20% elongation at failure, and an ultimate tensile strength of approximately 49.2 ksi. To complete the process of producing an AM205 part from the AM205 component, a heat treatment technique is typically applied to the AM205 component. As an example, a typical heat treatment technique for AM205 aluminum, recommended by Aeromet International Limited®, is the standard T7 aluminum heat treatment. This technique includes an initial extended solution treatment (e.g., solution treatment for 8 to 24 hours), followed by a high-temperature aging treatment (overaging). However, while such techniques improve the ultimate strength of AM205 aluminum components, they do not significantly improve the yield strength.Instead, other standard heat treatment techniques improve the yield strength but do not improve the ultimate strength of the AM205 aluminum components. All standard heat treatment techniques resulted in the AM205 aluminum components performing inferiorly in terms of strength compared to the cast A205 aluminum components (which have a yield strength of 59 ksi and an ultimate tensile strength of 66 ksi).

[0012] Accordingly, this disclosure describes heat treatment techniques specifically developed for AM205 aluminum. The heat treatment techniques described herein enable additively manufactured AM205 aluminum to be comparable or substantially comparable to cast A205 aluminum. These techniques include an initial solution aging step of shorter duration (e.g., 4 hours) and possible additional aging steps.

[0013] Generally, the present disclosure discloses a method for heat treating an additively manufactured A205 aluminum alloy component ("aluminum alloy component, or "AM205 component") to produce a uniform grain size distribution within the AM205 component. The method includes solution aging the AM205 component at a first temperature for a first period of time, where the first period of time is less than 5 hours, and overaging the AM205 component after solution aging. FIGS. 1A-1C describe the technique in further detail.

[0014] Also described is an additively manufactured A205 aluminum alloy part ("aluminum alloy part" or "AM205 part") having a uniform grain size distribution. The AM205 part is made by a process that includes additively manufacturing an A205 aluminum alloy component ("AM205 component") utilizing an A205 aluminum alloy, solution-aging the AM205 component at a first temperature for a first period of time, where the first period of time is less than 5 hours, and overaging the AM205 component after solution-aging to produce the AM205 part with a uniform grain size distribution.

[0015] Figure 1A is a flow diagram of an example implementation of a method 100 for heat treating AM205 aluminum alloy shown in accordance with the present disclosure. Figure 1B is a flow diagram of an example implementation of another method 102 for heat treating AM205 aluminum alloy shown in accordance with the present disclosure. Figure 1C is a flow diagram of an example implementation of yet another method 104 for heat treating AM205 aluminum alloy shown in accordance with the present disclosure. Generally, Figures 1A-1C are flow diagrams detailing techniques for heat treating AM205 aluminum with three different heat treatment techniques for additively manufactured AM205 aluminum.

[0016] 1A, the method 100 begins with additive manufacturing 106 of an AM205 component from A205 aluminum powder. As described above, the additive manufacturing 106 step is a deposition process that produces the AM205 component as a three-dimensional object from a computer-aided design model by sequentially adding A205 aluminum powder, typically melted by a high-energy source (e.g., one or more of a laser or an electron beam), layer by layer. Once produced, the AM205 component is solution aged 108 at a first temperature for a first period of time.

[0017] The solution aging 108 step can involve holding the AM205 component in a liquid. The liquid can be heated to an elevated first temperature (e.g., a temperature between 400°C and 700°C (e.g., about 540°C)). Further, the AM205 component can be solution aged 108 for a first period of time, such as less than 4 hours (e.g., about 4 hours) (where about can be + / - 5% of the value, and the first period can be between 3 hours 45 minutes and 4 hours 15 minutes). In this example, solution aging 108 of the AM205 component can result in grain growth within the AM205 component.

[0018] For reference, one skilled in the art will appreciate that the solution aging step 108 for the first period of time in this example is shorter than the time that AM205 components are typically solution aged during a T7 heat treatment. A solution aging time shorter than the T7 heat treatment may result in reduced etching by the solution while dissolving the copper-rich layer within the material.

[0019] Although a single step is shown in this example, the solution aging 108 step may alternatively be a multi-step solution treatment. For example, an AM205 component may be solution aged at an elevated temperature for two hours, returned to ambient temperature, and then solution aged again for two hours at the same or a different elevated temperature zone. It will be understood that ambient temperature generally refers to the temperature of the environment (e.g., room temperature of about 20°C, but may vary and rise to about 52°C).

[0020] The method 100 then includes a further heat treatment step after the solution aging treatment 108 step. In this example, the next step of the method 100 includes natural aging 110 the AM205 component for a second period of time. The natural aging treatment 110 may include holding the AM205 component at a second temperature, which may be ambient (e.g., room temperature), for a second period of time. In this example, the second period of time may be longer than the first period of time. For example, the second period of time may be between 12 and 36 hours. After the natural aging treatment 110, the AM205 component may be overaged 112 at a third temperature for a third period of time. This overaged treatment 112 step may include exposing the AM205 component to an environment at a temperature higher than room temperature. Thus, for example, the overaging 112 step may include placing the AM205 component in an environment at a temperature between 150°C and 250°C (e.g., 190°C, or between 170°C and 210°C) for between 2 hours and 36 hours (e.g., between 5 hours, or between 4 hours and 6 hours). In this example, the overaging 112 step may affect (e.g., increase) the hardness of the AM205 component. The method 100 then terminates.

[0021] With respect to methods 102 and 104 described in connection with FIGS. 1B and 1C, the first two steps 106 and 108 shown in FIG. 1A and described above are repeated in both methods 102 and 104.

[0022] 1B , the method 102 begins with and includes the additive manufacturing 106 and solution aging 108 steps described above in connection with FIG. 1A . However, in this example, the method 102 includes an overaging 114 step after the solution aging 108 step. The overaging 114 step may be similar to the previously described overaging 112 step shown in FIG. 1A , except that in this example, the overaging 114 step may include overaging 114 at a fourth temperature and for a fourth time period that may differ from the third temperature and third time period described above for the overaging 112 step described above in connection with FIG. 1A . In this example, the fourth temperature may be between 150° C. and 290° C. (e.g., 170° C.), and the fourth time period may be between 12 and 28 hours (e.g., between 12 and 20 hours, between 20 and 28 hours, or 24 hours). The method 102 then ends.

[0023] 1C , like methods 100 and 102, method 104 begins with and includes the additive manufacturing 106 and solution aging 108 steps described above in connection with FIG. 1A . In this example, method 104 utilizes two different overaging steps 116 and 118. After solution aging 108, method 104 includes overaging 116 at a fifth temperature for a fifth time period, followed by overaging 118 at a sixth temperature for a sixth time period. In this example, the fifth and sixth temperatures of overaging steps 116 and 118, respectively, may be the same or different temperatures. Similarly, the first and sixth time periods of overaging steps 116 and 118, respectively, may be the same or different times. By way of example, the fifth temperature may be between 170°C and 210°C (e.g., 170°C), the sixth temperature may be 190°C, the fifth period may be 3 to 16 hours (e.g., 3 to 5 hours) long, and the sixth period may be about 4 hours long. Method 104 then terminates.

[0024] In another embodiment, the method 104 may include an optional natural aging treatment 120 step between the solution aging treatment 108 and the overaging treatment 116 steps. In this embodiment, the optional natural aging treatment 120 step is an interval between multiple aging treatment steps. In particular, the optional natural aging treatment 120 step is a natural aging treatment interval similar to the natural aging treatment 110 step described in connection with FIG. 1A. In this embodiment, the optional natural aging treatment 120 step includes naturally aging the AM205 component for a seventh period of time. Similar to the natural aging treatment 110 step described in connection with FIG. 1A, the natural aging treatment 120 may include holding the AM205 component at a seventh temperature, which may be ambient temperature, for the seventh period of time. As with the embodiment described in connection with FIG. 1A, in this embodiment, the seventh period of time may be longer than the first period of time. For example, the seventh period of time may be between 12 and 36 hours. Thus, in an embodiment of this method 104, the environment may be changed from a fifth temperature to a sixth temperature, and the AM205 component may be moved between various thermal treatment chambers or may remain in place.

[0025] It should be noted that in the foregoing description of method 104, the fifth temperature of the first overaging treatment 116 step is lower than the sixth temperature of the second overaging treatment 118 step. However, it should be understood that method 104 may include other situations where the first overaging treatment 116 step is performed at a higher temperature than the second overaging treatment 118 step. Similarly, while an embodiment of method 104 has been described in which the first overaging treatment is longer than the second overaging treatment, other embodiments may include the first overaging treatment 116 step being shorter than the second overaging treatment 118 step. Furthermore, other embodiments may include three or more overaging treatment steps, each performed at the same or a different temperature as one of the first overaging treatment 116 or second overaging treatment 118 steps, or for the same or a different duration as one of the first overaging treatment 116 or second overaging treatment 118 steps.

[0026] It will be understood that the values ​​illustrated in Figures 1A-1C are exemplary values ​​for illustrative purposes only, and other embodiments may include processes performed at different temperature values ​​and for different durations.

[0027] Turning now to Figure 2, a graph of ultimate tensile strength is shown for an example implementation of an AM205 aluminum component processed according to the techniques of Figures 1A-1C in accordance with the present disclosure. In Figure 3, a graph of yield stress is shown for an example implementation of an AM205 aluminum component processed according to the techniques of Figures 1A-1C in accordance with the present disclosure. Figure 4 is a graph of calculated elongation for an example implementation of an AM205 aluminum component processed according to the techniques of Figures 1A-1C in accordance with the present disclosure. Generally, Figures 2-4 are graphs illustrating the properties of an AM205 aluminum component heat treated according to the techniques of Figures 1A-1C.

[0028] Properties of an AM205 aluminum component heat treated according to one version of the method 100 of FIG. 1A are shown in box 202. By way of example, the heat treatment may include a 4-hour solution aging treatment 108 at 540°C, a 24-hour natural aging treatment 110, and a 5-hour overaging treatment 112 at 190°C. Properties of an AM205 aluminum component heat treated according to one version of the method 102 of FIG. 1B are shown in box 204. By way of example, the heat treatment may include a 4-hour solution aging treatment 108 at 540°C, and a 24-hour overaging treatment 114 at 170°C. Properties of an AM205 aluminum component heat treated according to one version of the method 104 of FIG. 1C are shown in box 206. As an example, the heat treatment may include a solution aging treatment 108 at 540°C for 4 hours, a first overaging treatment 116 at 170°C for 16 hours, and a second overaging treatment 118 at 190°C for 4 hours.

[0029] Generally, Figures 2-4 show the measured maximum, minimum, and average values ​​for the properties tested. Figure 2 details the ultimate tensile strength of the material (i.e., AM205 aluminum component) after heat treatment according to the process of Figures 1A-1C. Figure 3 details the 0.2% elongation yield strength of the material after heat treatment according to the process of Figures 1A-1C. Figure 4 details the elongation of the material after heat treatment according to the process of Figures 1A-1C.

[0030] As shown in Figures 2-4, the properties of the AM205 aluminum components are broadly similar, but the material heat treated by the process of Figure 1C (i.e., method 104) has the highest average ultimate strength, and the material heat treated by the process of Figure 1B (i.e., method 102) has the highest average yield strength. The properties shown are similar to those of cast A205 aluminum alloy. In these examples, the ultimate tensile strength of two of these techniques actually exceeds that of cast A205 aluminum alloy.

[0031] 5 and 6 are photomicrographs of various deposited and heat-treated AM205 aluminum components and parts according to the present disclosure. In this disclosure, the original, non-heat-treated additively manufactured A205 aluminum alloy component is referred to as the AM205 component, and the heat-treated AM205 component is referred to as the additively manufactured A205 aluminum alloy part ("AM205 part").

[0032] Turning to Figure 5A, a photomicrograph of the microstructural composition of a solution heat treated (solution aged) AM205 aluminum component and an as-deposited, untreated AM205 aluminum component according to the present disclosure is shown. In Figure 5B, another photomicrograph of the microstructural composition of a solution heat treated (solution aged) AM205 aluminum component (in column 502) and an as-deposited, untreated AM205 aluminum component (in column 504) according to the present disclosure is shown. Figures 5A and 5B are photographs at various magnification levels. As shown in Figures 5A and 5B, the solution heat treated AM205 component exhibits significant grain growth.

[0033] Figure 6A shows photographs of the microstructural composition of an AM205 component solution heat treated for 4 hours in column 602 and an AM205 component solution heat treated for 8 hours in column 604, according to the present disclosure. Figure 6B shows photographs of the microstructural composition of an AM205 component solution heat treated for 4 hours in column 602 and an AM205 component solution heat treated for 8 hours in column 604, according to the present disclosure. Figures 6A and 6B are photographs at various magnification levels. As shown in Figures 6A and 6B, the AM205 component solution heat treated for 4 hours has dissolved the copper-rich layer with a reduced amount of etching compared to the AM205 component solution heat treated for 8 hours.

[0034] Turning to FIG. 7, there is shown a graph 700 of hardness properties of various AM205 aluminum components processed according to methods 100, 102, and 103 shown in FIGS. 1A-1C in accordance with the present disclosure.

[0035] Various heat treatment properties are listed in legend 702. In this example, SOL refers to solution heat treatment, SLM refers to selective laser melting, and CAST refers to a cast A205 part rather than an additively manufactured part ("AM205 part"). A single digit (e.g., 4 in "SOL4") indicates the number of hours (e.g., 4 hours) that the solution heat treatment was performed. A three digit number (e.g., 150, 170, or 190) indicates the temperature value at which the overaging treatment was performed.

[0036] 8 shows a graph of a plot 800 of an example implementation of methods 100, 102, and 104 according to the present disclosure. Plot 800 illustrates two aging steps (i.e., a solution treatment 802 and a single or multiple aging 804 steps) performed by all three of the above-described methods 100, 102, and 104. Plot 800 is a plot of temperature 806 versus time 808, illustrating the solution aging treatment (i.e., solution treatment 802) of the AM205 component at a first temperature 810 for a first period of time 812 and the overaging treatment (i.e., one of multiple aging 804 steps) at a second temperature 814 for a second period of time 816. In this example, the method may include an optional third aging step at a third temperature 818 for a third period of time 820. It will be appreciated that in this plot 800, the first temperature 810 of the solution treatment 802 is higher than the second temperature 814 or the third temperature 818 of the aging treatment 804 step or steps.

[0037] 9, a system block diagram of an example implementation of a system 900 for performing the methods 100, 102, and 104 described in connection with FIGURES 1A-1C according to the present disclosure is shown. The system 900 may include a computing device 902, a 3D printer 904, and an aging chamber 906.

[0038] The computing device 902 may be, for example, a personal computer (including a desktop, tower, or other similar device), a portable computer (including a laptop, notebook, tablet, or other similar device), a mobile device (including a tablet, smartphone, or other similar device), or any other type of computing device that can connect the 3D printer 904, the aging chamber 906, and optional other devices via a server, the internet, or other smart device. Generally, the computing device 902 is operated by an end user (not shown).

[0039] In some implementations, the computing device 902 includes one or more input / output (I / O) interfaces 908. The input / output (I / O) interfaces 908 enable communication with the 3D printer 904, the aging chamber 906, and input / output devices, such as user input devices including peripheral input devices (e.g., keyboard, mouse, pen, voice input device, touch input device, gesture input device, etc.) and / or output devices including peripheral output devices (e.g., display, printer, audio speaker, etc.).

[0040] The computing device 902 may represent any type of computing device having one or more processing units 910 in signal communication with a computer-readable medium 912 via a bus (not shown). The bus may include, in some cases, one or more of a system bus, a data bus, an address bus, a PCI bus, a mini-PCI bus, and any type of local, peripheral, and / or independent bus. The executable instructions stored on the computer-readable medium 912 may include software 914. The software 914 includes, for example, an operating system, a client communication module, a profile module, and other modules, programs, or applications loadable and executable by one or more processing units. The computing device 902 may further include one or more memory units 916. The memory unit 916 may be utilized to store additional software and data and / or may be utilized by the computer-readable medium 912.

[0041] In this embodiment, the one or more interfaces 908 may include one or more network interface controllers (NICs) or other types of transmitting and receiving devices for communicating and / or transmitting and receiving data over one or more networks, which may include a local network utilized by the computing device 902, the 3D printer 904, and the aging chamber 906.

[0042] The computing device 902 may be in signal communication with the 3D printer 904, the aging chamber 906, and optionally an external network (e.g., the Internet 918). While the circuits, components, modules, and / or devices of or associated with the computing device 902 have been described as being in signal communication with each other, those skilled in the art will understand that signal communication refers to any type of communication and / or connection between circuits, components, modules, and / or devices that allows a circuit, component, module, and / or device to send or receive signals and / or information from another circuit, component, module, and / or device. The communication and / or connection may be along any signal path between circuits, components, modules, and / or devices that allows signals and / or information to be sent from one circuit, component, module, and / or device to another, including wireless or wired signal paths. A signal path may be a physical path (e.g., a wire, an electromagnetic waveguide, a cable, a terminal (e.g., an attached and / or electromagnetic terminal, or a mechanically coupled terminal), a semiconductor or dielectric material, or other similar physical connector or coupler). Additionally, a signal path may be a non-physical path. A non-physical path is, for example, an information path through free space (in the case of electromagnetic propagation) or digital components, where communication information is passed from one circuit, component, module, and / or device to another in various digital forms without passing through a direct electromagnetic connection.

[0043] Returning to system 900, system 900 is a system for heat treating an additively manufactured AM205 component 920 to produce a uniform grain size distribution within the AM205 component. System 900 includes an aging chamber 906 and a computing device 902 in signal communication with aging chamber 906. System 900 may further include a 3D printer 904. Computing device 902 includes one or more processing units (i.e., processors) 910 and a computer-readable medium 912 that stores instructions. The instructions, when executed by the one or more processing units 910, cause computing device 902 to perform a plurality of operations. These operations may include solution-aging AM205 component 920 at a first temperature for a first period of time using aging chamber 906, and aging AM205 component 920 after solution-aging. In one example, the first period of time may be less than 5 hours, for example, the first period of time may be between 3 hours 45 minutes and 4 hours 15 minutes, and the first temperature may be between 530°C and 550°C.

[0044] The computing device 902 may further perform operations including naturally aging the AM205 component 920 for a second period of time after the solution aging treatment and before the overaging treatment. In this example, the second period of time may be between 12 and 36 hours. Furthermore, the overaging treatment may be performed at a third temperature for a third period of time, where the third temperature may be between 170°C and 210°C, and the third period of time may be between 4 and 6 hours. Furthermore, the overaging treatment may be performed at a fourth temperature for a fourth period of time, where the fourth temperature may be between 150°C and 290°C, and the fourth period of time may be between 20 and 28 hours.

[0045] Generally, the system 900 accepts A205 powder 922, which is placed into a 3D printer 904. The 3D printer 904 may include an energy source 924, which may be one or more lasers or electron beams, to melt the A205 powder 922 and generate an AM205 component 920 through a layer-by-layer additive manufacturing process. The computing device 902 acts as a controller for the 3D printer and generates the AM205 component 920 from a data file located in the memory 916 of the computing device 902. Once generated, the AM205 component 920 is removed from the 3D printer 904 and placed in an aging chamber 906 for aging, according to methods 100, 102, and 104 described above. Once aging is complete, the AM205 component 920 is removed from the aging chamber 906 as an AM205 part 924.

[0046] In this example, the 3D printer 904 and the aging chamber 906 are shown as separate devices, but it will be understood that in some examples, the 3D printer 904 and the aging chamber 906 may be configured as the same device that first manufactures the AM205 component 920 and then ages the AM205 component 920 before producing the final product, which is the AM205 part 926.

[0047] Furthermore, the present invention includes embodiments according to the following clauses:

[0048] Clause 1 1. A method for heat treating an aluminum alloy component (920) additively manufactured from aluminum alloy powder (922) to produce a uniform particle size distribution within the aluminum alloy component (920), comprising: solution aging (802) the aluminum alloy component (902) at a first temperature (810) for a first period of time (812), wherein the first period of time (810) is less than 5 hours; After the solution aging treatment (802), overaging (804) the aluminum alloy component (902); A method comprising:

[0049] Clause 2 10. The method of claim 1, wherein the first period of time (812) is between 3 hours 45 minutes and 4 hours 15 minutes.

[0050] Clause 3 10. The method of claim 1, wherein the first temperature (810) is between 530°C and 550°C.

[0051] Clause 4 10. The method of claim 1, further comprising naturally aging (110) the aluminum alloy component (902) for a second time (820) after the solution aging treatment and before the overaging treatment.

[0052] Clause 5 5. The method of clause 4, wherein the second period of time (820) is between 12 hours and 36 hours.

[0053] Clause 6 5. The method of claim 4, wherein the overaging (112) occurs at a third temperature (818) for a third period of time (820).

[0054] Clause 7 the third temperature (818) is between 170°C and 210°C; 7. The method of clause 6, wherein the third period of time (820) is between 4 hours and 6 hours.

[0055] Article 8 10. The method of claim 1, wherein the overaging (120) occurs at a fourth temperature for a fourth period of time.

[0056] Article 9 the fourth temperature is between 150°C and 290°C; 9. The method of clause 8, wherein the fourth period of time is between 20 and 28 hours.

[0057] Article 10 the overaging treatment is a first overaging treatment, 9. The method of claim 8, wherein the method further comprises a second overaging treatment conducted at a fifth temperature for a fifth period of time after the first overaging treatment.

[0058] Article 11 the fourth temperature is between 150°C and 190°C; the fourth period of time is between 12 hours and 20 hours; the fifth temperature is between 170°C and 210°C; 11. The method of clause 10, wherein the fifth period of time is between 3 hours and 5 hours.

[0059] Article 12 A system (900) for carrying out the method described in clause 1.

[0060] Article 13 1. A method for heat treating an additively manufactured aluminum alloy component (920) to produce a uniform grain size distribution within the aluminum alloy component (920), comprising: solution aging (108) the aluminum alloy component (920) at 540°C for a first period of time (812), wherein the first period of time (812) is less than 5 hours; overaging (112) the aluminum alloy component (920) after the solution aging treatment (108); A method comprising:

[0061] Article 14 14. The method of claim 13, further comprising naturally aging (110) the aluminum alloy component (920) for 24 hours after the solution aging treatment (108) and before the overaging treatment (112).

[0062] Article 15 15. The method of claim 14, wherein the overaging treatment (112) is performed at 190°C.

[0063] Article 16 16. The method of claim 15, wherein the overaging treatment (112) is performed for 5 hours.

[0064] Article 17 16. The method of claim 15, wherein the overaging treatment (112) is performed for 4 hours.

[0065] Article 18 16. The method of claim 15, wherein the overaging treatment (112) is a second overaging treatment, the method further comprising a first overaging treatment after the solution aging treatment (108) and before the first overaging treatment (112).

[0066] Article 19 19. The method of claim 18, wherein the first overaging treatment (112) is performed at 170°C for 16 hours.

[0067] Article 20 14. The method of claim 13, wherein the overaging treatment (112) is carried out at 170°C for 24 hours.

[0068] Article 21 An additively manufactured aluminum alloy part (926) having a uniform grain size distribution, Additive manufacturing an additively manufactured aluminum alloy component (920) using an A205 aluminum alloy; solution aging (108) the aluminum alloy component (920) at a first temperature (810) for a first period of time (812), wherein the first period of time (812) is less than 5 hours; overaging (112) the aluminum alloy component (920) after the solution aging treatment (108) to produce an aluminum alloy part (926) having a uniform strength distribution. 1. An additively manufactured aluminum alloy part (926) produced by a process comprising:

[0069] Article 22 1. A system (900) for heat treating an additively manufactured aluminum alloy component (920) to produce a uniform grain size distribution within the aluminum alloy component (920), comprising: an aging chamber (906), and a computing device (902) in signal communication with the aging chamber (906), one or more processing units (916); A computer-readable medium (912) storing instructions that, when executed by the one or more processing units (916), cause the computing device (902) to perform operations, including: solution aging (108) the aluminum alloy component (920) at a first temperature (810) for a first period of time (812), wherein the first period of time (812) is less than 5 hours; and overaging (112) the aluminum alloy component (920) after the solution aging treatment (108). A computing device (902) comprising: A system (900) comprising:

[0070] Article 23 23. The system (900) of clause 22, wherein the first period (812) is between 3 hours 45 minutes and 4 hours 15 minutes.

[0071] Article 24 23. The system (900) of claim 22, wherein the first temperature (810) is between 530°C and 550°C.

[0072] Article 25 23. The system (900) of claim 22, wherein the computing device (902) further performs operations including naturally aging (110) the aluminum alloy component (920) for a second period of time (816) after the solution aging treatment (108) and before the overaging treatment (112).

[0073] Article 26 26. The system (900) of clause 25, wherein the second period (816) is between 12 hours and 36 hours.

[0074] Article 27 23. The system (900) of claim 22, wherein the overaging (112) occurs at a third temperature (818) for a third period of time (820).

[0075] Article 28 the third temperature (818) is between 170°C and 210°C; 28. The system (900) of clause 27, wherein the third period (820) is between four hours and six hours.

[0076] Article 29 23. The system (900) of claim 22, wherein the overaging (112) occurs at a fourth temperature for a fourth period of time.

[0077] Article 30 the fourth temperature is between 150°C and 290°C; 30. The system (900) of clause 29, wherein the fourth period of time is between 20 hours and 28 hours.

[0078] It will be understood that changes in various aspects or details of the present disclosure can be made without departing from the scope of the present disclosure. The present disclosure is not exhaustive or intended to limit the disclosure to the precise form disclosed. Moreover, the foregoing description is merely illustrative and not intended to be limiting. Modifications and variations are possible in light of the above description or may be realized by practicing the present disclosure. The claims and their equivalents define the scope of the present disclosure.

Claims

1. 1. A method for heat treating an additively manufactured A205 aluminum alloy component (920) to produce a uniform grain size distribution within said aluminum alloy component (920), comprising: solution aging (108) the aluminum alloy component (920) at 540°C for a first period of time (812), wherein the first period of time (812) is between 3 hours 45 minutes and 4 hours 15 minutes; overaging (112) the aluminum alloy component (920) after the solution aging treatment (108); natural aging (110) the aluminum alloy component (920) for 24 hours after the solution aging treatment (108) and before the overaging treatment (112). A method comprising:

2. 10. The method of claim 1, wherein the overaging treatment (112) is performed at 190°C and the overaging treatment (112) is performed for 5 hours.

3. 10. The method of claim 1, wherein the overaging treatment (112) is performed at 190°C and the overaging treatment (112) is performed for 4 hours.

4. 4. The method of claim 2 or 3, wherein the overaging treatment (112) is a second overaging treatment, and the method further comprises a first overaging treatment after the solution aging treatment (108) and before the second overaging treatment (112).

5. The method of claim 4, wherein the first overaging treatment (112) is performed at 170°C for 16 hours.

6. 1. A system (900) for heat treating an additively manufactured A205 aluminum alloy component (920) to produce a uniform grain size distribution within the aluminum alloy component (920), comprising: an aging chamber (906), and a computing device (902) in signal communication with the aging chamber (906), one or more processing units (916); A computer-readable medium (912) storing instructions that, when executed by the one or more processing units (916), cause the computing device (902) to perform operations, including: solution aging (108) the aluminum alloy component (920) at a first temperature (810) for a first period of time (812), wherein the first period of time (812) is between 3 hours 45 minutes and 4 hours 15 minutes; overaging (112) the aluminum alloy component (920) after the solution aging treatment (108); a computer readable medium (912) comprising: naturally aging (110) said aluminum alloy component (920) for a second period (816) after said solution aging treatment (108) and before said overaging treatment (112); A computing device (902) comprising: A system (900) comprising:

7. the first period of time (812) is between 3 hours 45 minutes and 4 hours 15 minutes; The system (900) of claim 6, wherein the first temperature (810) is between 530°C and 550°C.

8. The system (900) of claim 6, wherein the overaging (112) occurs at a third temperature (818) for a third period of time (820).

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