Thermal-quenching integrated process and device for titanium alloy lattice structure
By integrating liquid nitrogen quenching into the EBM equipment, the problem of hardenability control of titanium alloy lattice structures in EBM technology has been solved, realizing efficient and stable manufacturing of titanium alloy lattice structures and improving the strength and wear resistance of the workpiece.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2026-02-28
- Publication Date
- 2026-03-27
AI Technical Summary
Existing EBM technology has several drawbacks when preparing titanium alloy lattice structures, including increased production cycle and cost due to the separation of post-processing steps, difficulty in controlling hardenability, mismatch between microstructure and properties, and risks associated with workpiece transfer. In particular, complex lattice structures lack systematic hardenability data for guidance.
By integrating EBM forming and liquid nitrogen quenching into the same equipment, precise hardenability control of the titanium alloy lattice structure is achieved by controlling the liquid nitrogen flow rate and spray pattern, forming a nitrided layer to improve strength and hardness.
This technology integrates EBM forming with liquid nitrogen quenching, reducing the risk of workpiece oxidation, improving production efficiency, promoting the formation of fine α' martensite, enhancing the strength and wear resistance of workpieces, and ensuring the consistency and stability of workpiece quality.
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Figure CN121732836A_ABST
Abstract
Description
Technical Field
[0001] This application belongs to the field of metal additive manufacturing technology, specifically a hot-quenching integrated process and device for titanium alloy lattice structures. Background Technology
[0002] High-energy beam melting (EBM) is an important metal additive manufacturing technology, particularly suitable for fabricating complex lattice structure titanium alloy components commonly used in aerospace and biomedical fields. The EBM process is performed in a vacuum environment, where a high-energy beam scans and melts metal powder, depositing it layer by layer to form a three-dimensional component.
[0003] However, existing EBM technology has the following problems: 1. Separation of post-processing: EBM requires a separate heat treatment process after forming, which increases the production cycle and cost; 2. Difficulty in controlling hardenability: It is difficult to achieve a uniform hardenability effect for lattice structures with different rod diameters; 3. Mismatch between microstructure and properties: A single cooling parameter cannot meet the microstructure optimization requirements of structures with different rod diameters; 4. Workpiece transfer risk: There is a risk of oxidation, deformation and contamination during the process of transferring EBM workpieces formed at high temperature to dedicated heat treatment equipment.
[0004] Especially for complex lattice structures, there is currently a lack of systematic hardenability data to guide process optimization. Liquid nitrogen, as an extremely low temperature cooling medium, has been applied in metal heat treatment, but there are no reports on its integration into EBM processes for integrated manufacturing, or on the systematic study of the hardenability of lattice structures with different rod diameters. Summary of the Invention
[0005] To address the aforementioned issues, the purpose of this application is to provide an integrated hot-quenching process and apparatus for titanium alloy lattice structures. This process, through EBM forming and liquid nitrogen quenching, can precisely control the hardenability of titanium alloy lattice structures with different rod diameters.
[0006] According to a first aspect of this application, this application provides an integrated hot-quenching process for titanium alloy lattice structures, comprising the following steps: S1. Under vacuum conditions, titanium alloy powder is used to print titanium alloy lattice structures in a high-energy beam melting device. S2. After printing is completed, liquid nitrogen is introduced into the high-energy beam melting equipment, and the flow rate of the liquid nitrogen is controlled to quench the titanium alloy lattice structure.
[0007] Furthermore, the titanium alloy powder includes Ti-6Al-4V or Ti-8Al-1Mo-1V.
[0008] Furthermore, step S2 also includes, after printing is completed, when the temperature of the titanium alloy lattice structure drops to 50~100°C below the β transformation temperature, introducing liquid nitrogen into the high-energy beam melting equipment and controlling the flow rate of the liquid nitrogen to quench the titanium alloy lattice structure.
[0009] Furthermore, step S1 also includes laying titanium alloy powder on the substrate of the high-energy beam melting device, and controlling the pressure in the construction chamber of the high-energy beam melting device to not exceed 5 × 10⁻⁶. -3 Pa, the substrate is preheated to 600~700°C and the temperature of the construction chamber is maintained at 650~700°C. The titanium alloy powder is used in the high-energy beam melting equipment to print titanium alloy lattice structures.
[0010] Furthermore, the accelerating voltage during the printing process is 30~60kV, the beam current is 5~20mA, and the scanning speed is 18~30m / s, while the beam current during the preheating process is 30~65mA and the scanning speed is 30~65m / s.
[0011] Furthermore, the layer thickness during the printing process is 55~150μm, and the pass spacing is 5~180μm.
[0012] Furthermore, when the rod diameter of the titanium alloy lattice structure is greater than or equal to 1 mm and less than or equal to 1.5 mm, the flow rate of the liquid nitrogen is controlled to be greater than 10 L / min and less than or equal to 20 L / min. When the diameter of the titanium alloy lattice structure is greater than 1.5 mm and less than or equal to 2 mm, the flow rate of the liquid nitrogen is controlled to be greater than 20 L / min and less than or equal to 30 L / min.
[0013] Furthermore, step S2 also includes introducing liquid nitrogen into the high-energy beam melting device using a multi-nozzle injection system, wherein the flow rate of the liquid nitrogen injected by each nozzle in the multi-nozzle injection system is independently controlled.
[0014] Furthermore, a nitrided layer is formed on the surface of the titanium alloy lattice structure after quenching, and the thickness of the nitrided layer is 2~10μm.
[0015] According to a second aspect of this application, this application provides a heat-quenching integrated device for titanium alloy lattice structures, used to realize the heat-quenching integrated process for titanium alloy lattice structures as described in any of the above claims. The device is a high-energy beam melting device, comprising: a construction chamber and a liquid nitrogen spraying system. The liquid nitrogen injection system includes a liquid nitrogen storage unit, a multi-nozzle injection system, a flow regulation system, and a temperature monitoring system; The multi-nozzle spraying system includes a nozzle, the temperature monitoring system includes a detection probe, and the nozzle and the detection probe are disposed inside the construction chamber; The flow regulation system is located between the liquid nitrogen storage unit and the multi-nozzle injection system, and is connected to the flow regulation system and the multi-nozzle injection system respectively through a delivery pipeline; The liquid nitrogen storage unit, the multi-nozzle injection system, the flow regulation system, and the temperature monitoring system are all connected to a computer and can be controlled by the computer.
[0016] Furthermore, the flow regulation system controls the flow rate of liquid nitrogen ejected by the multi-nozzle injection system to be 5~30L / min, with a control accuracy of ±0.5L / min.
[0017] This application proposes an integrated hot-quenching process and apparatus for titanium alloy lattice structures, which produces the following beneficial effects: EBM forming and liquid nitrogen quenching are integrated into the same equipment; the vacuum and temperature in the construction chamber are reduced by liquid nitrogen vaporization, lowering the risk of workpiece oxidation and improving efficiency; rapid cooling using liquid nitrogen quenching promotes the formation of fine α' martensite in the titanium alloy and forms a nitrided layer on the surface, improving the workpiece's strength, hardness, and wear resistance; through systematic research on the matching relationship between titanium alloy lattice structures of different rod diameters and liquid nitrogen flow rate, a controllable liquid nitrogen injection system enables precise control of hardenability, improving the consistency and stability of workpiece quality. Attached Figure Description
[0018] To more clearly illustrate the technical solutions in the embodiments of this application or the prior art, the drawings used in the description of the embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are only some embodiments of this application. For those skilled in the art, other drawings can be obtained based on the structures shown in these drawings without creative effort.
[0019] Figure 1 This is a schematic diagram of the liquid nitrogen injection system inside the high-energy beam melting device of this application; Figure 2 These are schematic diagrams of titanium alloy lattice structures with a rod diameter of 1 mm in Examples 1-3; Figure 3 These are schematic diagrams of titanium alloy lattice structures with a rod diameter of 2 mm as shown in Examples 4-6; The realization of the purpose, functional features and advantages of this application will be further explained in conjunction with the embodiments and with reference to the accompanying drawings. Detailed Implementation
[0020] The technical solutions in the embodiments will be clearly and completely described below. Obviously, the described embodiments are only some embodiments of this application, and not all embodiments. Based on the embodiments in this application, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the scope of protection of this application.
[0021] According to a first aspect of this application, this application provides an integrated hot-quenching process for titanium alloy lattice structures, comprising the following steps: S1. Under vacuum conditions, titanium alloy powder is used to print titanium alloy lattice structures in a high-energy beam melting device. Preferably, titanium alloy powder is deposited on the substrate of the high-energy beam melting device, and the pressure in the construction chamber of the high-energy beam melting device is controlled to not exceed 5 × 10⁻⁶. -3 Pa, the substrate is preheated to 600~700℃, the beam current during the preheating process is 30~65mA, the scanning speed is 30~65m / s, and the temperature of the build chamber is maintained at 650~700℃. Titanium alloy lattice structure is printed using titanium alloy powder in a high-energy beam melting device. During the printing process, the acceleration voltage of the high-energy beam is 30~60kV, the beam current is 5~20mA, the scanning speed is 18~30m / s, the layer thickness is 55~150μm, and the pass spacing is 5~180μm; Specifically, the substrate is preheated to any one or a combination of 600℃, 620℃, 640℃, 660℃, 680℃, and 700℃; the beam current during preheating can be any one or a combination of 30mA, 40mA, 50mA, 60mA, and 65mA; the scanning speed can be any one or a combination of 30m / s, 40m / s, 50m / s, 60m / s, and 65m / s; the temperature of the build chamber is maintained at any one or a combination of 650℃, 660℃, 670℃, 680℃, 690℃, and 700℃; and the accelerating voltage during printing can be 30... The voltage range can be any one or any two of kV, 40kV, 50kV, and 60kV; the beam current can be any one or any two of 5mA, 10mA, 15mA, and 20mA; the scan speed can be any one or any two of 18m / s, 21m / s, 24m / s, 27m / s, and 30m / s; the slice thickness can be any one or any two of 55μm, 70μm, 90μm, 110μm, 130μm, and 150μm; and the pass spacing can be any one or any two of 5μm, 50μm, 100μm, 150μm, and 180μm.
[0022] S2. After printing, liquid nitrogen is introduced into the high-energy beam melting equipment, and the flow rate of liquid nitrogen is controlled to quench the titanium alloy lattice structure. Specifically, after printing, high-energy beam scanning and heating are stopped, and a small amount of high-temperature nitrogen gas is injected at high speed into the chamber to separate the titanium alloy lattice structure from the titanium alloy powder. When the temperature of the titanium alloy lattice structure drops to 50-100°C below the β-transformation temperature, liquid nitrogen is introduced into the high-energy beam melting equipment. Upon contact with the high-temperature titanium alloy lattice structure, the liquid nitrogen rapidly vaporizes, forming a uniform cooling medium to uniformly cool the titanium alloy lattice structure and simultaneously reduce the vacuum level in the high-energy beam melting equipment. During the process, the flow rate of liquid nitrogen is adjusted to differentiate the control of lattice structures with different rod diameters to achieve precise control of hardenability. If the rod diameter of the titanium alloy lattice structure is greater than or equal to 1 mm and less than or equal to 1.5 mm, the flow rate of liquid nitrogen is controlled accordingly. The flow rate should be greater than 10 L / min and less than or equal to 20 L / min. If the diameter of the rod in the titanium alloy lattice structure is greater than 1.5 mm and less than or equal to 2 mm, the flow rate of liquid nitrogen should be controlled to be greater than 20 L / min and less than or equal to 30 L / min. At the same time, after liquid nitrogen comes into contact with the high-temperature titanium alloy lattice structure, a nitride layer with a thickness of 2~10 μm can be formed on the surface of the titanium alloy. This is because liquid nitrogen decomposes into active nitrogen atoms on the surface of the high-temperature titanium alloy, and the nitrogen atoms diffuse into the surface of the titanium alloy to form nitrides. Generally speaking, the thickness of the nitride layer increases with the increase of liquid nitrogen flow rate and quenching time. Therefore, the thickness of the nitride layer can be controlled by controlling the liquid nitrogen flow rate and quenching time. At the same time, the aluminum element in the titanium alloy can significantly promote the growth of the nitride layer.
[0023] In some embodiments of this application, Ti-6Al-4V (TC4) or Ti-8Al-1Mo-1V (TA11) titanium alloy powders are used to prepare titanium alloy lattice structures with rod diameters of 1 mm or 2 mm. TC4 alloy contains 6 wt% aluminum and 4 wt% vanadium, exhibiting moderate β-phase stability. Complete quenching can be achieved by controlling the liquid nitrogen flow rate at 15-30 L / min, maintaining a cooling rate within the range of 45-65 °C / s. Furthermore, the nitride layer formed on its surface mainly consists of TiN and Ti2N phases, with a relatively thin thickness (2-7 μm) but high hardness. TA11, with its higher aluminum content (8 wt%), improves its α-phase stability. Complete quenching can be achieved by controlling the liquid nitrogen flow rate at 20-30 L / min, maintaining a cooling rate within the range of 50-60 °C / s. Its surface nitride layer mainly consists of TiN, AlN, and complex nitrides, with a significantly increased thickness (8-10 μm) and higher hardness. This is because the higher aluminum content promotes the formation of a thicker AlN reinforcing layer.
[0024] According to a second aspect of this application, this application provides a high-energy beam melting apparatus for realizing the above-mentioned integrated hot-quenching process of titanium alloy lattice structures, comprising: a construction chamber and a... Figure 1The liquid nitrogen injection system shown; The liquid nitrogen injection system includes a liquid nitrogen storage unit, a multi-nozzle injection system, a flow regulation system, and a temperature monitoring system; The multi-nozzle spraying system includes a nozzle, and the temperature monitoring system includes a detection probe, with the nozzle and detection probe located inside the construction chamber; The flow regulation system is located between the liquid nitrogen storage unit and the multi-nozzle injection system, and is connected to the flow regulation system and the multi-nozzle injection system respectively through delivery pipelines; The liquid nitrogen storage unit, multi-nozzle injection system, flow regulation system, and temperature monitoring system are all connected to and can be controlled by a computer.
[0025] Preferably, the flow regulation system controls the flow rate of liquid nitrogen ejected by the multi-nozzle injection system to be 5~30L / min, with a control accuracy of ±0.5L / min; Preferably, the flow rate of liquid nitrogen is controlled in stages according to the diameter of the rod in the titanium alloy lattice structure, including low flow rate, medium flow rate and high flow rate, wherein the low flow rate is greater than or equal to 5 L / min and less than or equal to 10 L / min, the medium flow rate is greater than 10 L / min and less than or equal to 20 L / min, and the high flow rate is greater than 20 L / min and less than or equal to 30 L / min.
[0026] The technical solution of this application will be further described below with reference to specific embodiments.
[0027] Example 1 A heat-quenching integrated process for titanium alloy lattice structures includes the following steps: S1. Under vacuum conditions, titanium alloy powder is used to print titanium alloy lattice structures in a high-energy beam melting device. The titanium alloy powder used is TC4; the accelerating voltage during the printing process is 50kV, the beam current is 12mA, and the scanning speed is 30m / s; the titanium alloy lattice structure is a cubic lattice with a unit size of 4×4×4mm and a rod diameter of 1.0mm. S2. After printing, liquid nitrogen is introduced into the high-energy beam melting equipment, and the flow rate of liquid nitrogen is controlled to quench the titanium alloy lattice structure. The temperature of the titanium alloy lattice structure when liquid nitrogen is introduced is 950℃; the liquid nitrogen flow rate is 8L / min; the liquid nitrogen injection mode is intermittent (5s injection, 5s interval); and the quenching time is 12min. The performance test results of the titanium alloy lattice structure after quenching in this embodiment are as follows: cooling rate is 28~35℃ / s, surface hardness is HV385±15, core hardness is HV355±20, quenching depth is 0.6~0.7mm, quenching rate is 65%, surface nitriding layer thickness is 1~2μm, nitriding layer microhardness is HV650±50, and its microstructure is fine lath α' martensite on the surface and α+β mixed structure in the core.
[0028] Example 2 A heat-quenching integrated process for titanium alloy lattice structures includes the following steps: S1. Under vacuum conditions, titanium alloy powder is used to print titanium alloy lattice structures in a high-energy beam melting device. The titanium alloy powder used is TC4; the accelerating voltage during the printing process is 50kV, the beam current is 12mA, and the scanning speed is 30m / s; the titanium alloy lattice structure is a cubic lattice with a unit size of 4×4×4mm and a rod diameter of 1.0mm. S2. After printing, liquid nitrogen is introduced into the high-energy beam melting equipment, and the flow rate of liquid nitrogen is controlled to quench the titanium alloy lattice structure. The temperature of the titanium alloy lattice structure was 950℃ when liquid nitrogen was introduced; the liquid nitrogen flow rate was 15L / min; the liquid nitrogen injection mode was continuous; and the quenching time was 10min. The performance test results of the titanium alloy lattice structure after quenching in this embodiment are as follows: cooling rate is 45~55℃ / s, surface hardness is HV405±10, core hardness is HV395±12, quenching depth is 0.9~1.0mm, quenching rate is 100%, surface nitriding layer thickness is 2~3μm, nitriding layer microhardness is HV680±40, and its microstructure is a uniform and fine α' martensite structure.
[0029] Example 3 A heat-quenching integrated process for titanium alloy lattice structures includes the following steps: S1. Under vacuum conditions, titanium alloy powder is used to print titanium alloy lattice structures in a high-energy beam melting device. The titanium alloy powder used is TC4; the accelerating voltage during the printing process is 50kV, the beam current is 12mA, and the scanning speed is 30m / s; the titanium alloy lattice structure is a cubic lattice with a unit size of 4×4×4mm and a rod diameter of 1.0mm. S2. After printing, liquid nitrogen is introduced into the high-energy beam melting equipment, and the flow rate of liquid nitrogen is controlled to quench the titanium alloy lattice structure. The temperature of the titanium alloy lattice structure was 950℃ when liquid nitrogen was introduced; the liquid nitrogen flow rate was 25L / min; the liquid nitrogen injection mode was continuous; and the quenching time was 8min. The performance test results of the titanium alloy lattice structure after quenching in this embodiment are as follows: the cooling rate is 65~75℃ / s, the surface hardness is HV420±8, the core hardness is HV410±10, the quenching depth is 1.0mm, the quenching rate is 100%, the surface nitride layer thickness is 4~5μm, the nitride layer microhardness is HV720±30, its microstructure is ultrafine α' martensite, and microcracks appear in some areas.
[0030] Example 4 A heat-quenching integrated process for titanium alloy lattice structures includes the following steps: S1. Under vacuum conditions, titanium alloy powder is used to print titanium alloy lattice structures in a high-energy beam melting device. The titanium alloy powder used is TC4; the accelerating voltage during the printing process is 50kV, the beam current is 15mA, and the scanning speed is 20m / s; the titanium alloy lattice structure is a cubic lattice with a unit size of 5×5×5mm and a rod diameter of 2.0mm. S2. After printing, liquid nitrogen is introduced into the high-energy beam melting equipment, and the flow rate of liquid nitrogen is controlled to quench the titanium alloy lattice structure. The temperature of the titanium alloy lattice structure when liquid nitrogen is introduced is 950℃; the liquid nitrogen flow rate is 10L / min; the liquid nitrogen injection mode is intermittent (8s injection, 4s interval); and the quenching time is 18min. The performance test results of the titanium alloy lattice structure after quenching in this embodiment are as follows: cooling rate is 20~25℃ / s, surface hardness is HV375±18, core hardness is HV325±25, quenching depth is 0.8~1.0mm, quenching rate is 45%, surface nitriding layer thickness is 3~4μm, nitriding layer microhardness is HV620±45, and its microstructure is α' martensite on the surface and coarse α+β structure in the core.
[0031] Example 5 A heat-quenching integrated process for titanium alloy lattice structures includes the following steps: S1. Under vacuum conditions, titanium alloy powder is used to print titanium alloy lattice structures in a high-energy beam melting device. The titanium alloy powder used is TC4; the accelerating voltage during the printing process is 50kV, the beam current is 15mA, and the scanning speed is 20m / s; the titanium alloy lattice structure is a cubic lattice with a unit size of 5×5×5mm and a rod diameter of 2.0mm. S2. After printing, liquid nitrogen is introduced into the high-energy beam melting equipment, and the flow rate of liquid nitrogen is controlled to quench the titanium alloy lattice structure. The temperature of the titanium alloy lattice structure was 950℃ when liquid nitrogen was introduced; the liquid nitrogen flow rate was 18L / min; the liquid nitrogen injection mode was continuous; and the quenching time was 15min. The performance test results of the titanium alloy lattice structure after quenching in this embodiment are as follows: cooling rate is 35~45℃ / s, surface hardness is HV395±12, core hardness is HV380±15, quenching depth is 1.5~1.7mm, quenching rate is 80%, surface nitriding layer thickness is 5~6μm, nitriding layer microhardness is HV670±35, and its microstructure is fine martensite on the surface, mixed structure in the transition zone, and a small amount of untransformed β phase in the core.
[0032] Example 6 A heat-quenching integrated process for titanium alloy lattice structures includes the following steps: S1. Under vacuum conditions, titanium alloy powder is used to print titanium alloy lattice structures in a high-energy beam melting device. The titanium alloy powder used is TC4; the accelerating voltage during the printing process is 50kV, the beam current is 15mA, and the scanning speed is 20m / s; the titanium alloy lattice structure is a cubic lattice with a unit size of 5×5×5mm and a rod diameter of 2.0mm. S2. After printing, liquid nitrogen is introduced into the high-energy beam melting equipment, and the flow rate of liquid nitrogen is controlled to quench the titanium alloy lattice structure. The temperature of the titanium alloy lattice structure was 950℃ when liquid nitrogen was introduced; the liquid nitrogen flow rate was 28L / min; the liquid nitrogen injection mode was continuous; and the quenching time was 12min. The performance test results of the titanium alloy lattice structure after quenching in this embodiment are as follows: cooling rate is 55~65℃ / s, surface hardness is HV415±10, core hardness is HV305±12, quenching depth is 2.0mm, quenching rate is 100%, surface nitride layer thickness is 5~7μm, nitride layer microhardness is HV710±25, and its microstructure is a uniform α' martensite structure with no untransformed structure.
[0033] Example 7 A heat-quenching integrated process for titanium alloy lattice structures includes the following steps: S1. Under vacuum conditions, titanium alloy powder is used to print titanium alloy lattice structures in a high-energy beam melting device. The titanium alloy powder used is TA11; the accelerating voltage during the printing process is 55kV, the beam current is 14mA, and the scanning speed is 18m / s; the titanium alloy lattice structure is a cubic lattice with a unit size of 5×5×5mm and a rod diameter of 2.0mm. S2. After printing, liquid nitrogen is introduced into the high-energy beam melting equipment, and the flow rate of liquid nitrogen is controlled to quench the titanium alloy lattice structure. The temperature of the titanium alloy lattice structure was 1000℃ when liquid nitrogen was introduced; the liquid nitrogen flow rate was 12L / min; the liquid nitrogen injection mode was intermittent (10s injection, 5s interval); and the quenching time was 20min. The performance test results of the titanium alloy lattice structure after quenching in this embodiment are as follows: cooling rate is 25~35℃ / s, surface hardness is HV365±20, core hardness is HV315±28, quenching depth is 0.7~0.9mm, quenching rate is 40%, surface nitriding layer thickness is 6~8μm, nitriding layer microhardness is HV750±40, and its microstructure is α' martensite on the surface and α2+β structure in the core.
[0034] Example 8 A heat-quenching integrated process for titanium alloy lattice structures includes the following steps: S1. Under vacuum conditions, titanium alloy powder is used to print titanium alloy lattice structures in a high-energy beam melting device. The titanium alloy powder used is TA11; the accelerating voltage during the printing process is 55kV, the beam current is 14mA, and the scanning speed is 18m / s; the titanium alloy lattice structure is a cubic lattice with a unit size of 5×5×5mm and a rod diameter of 2.0mm. S2. After printing, liquid nitrogen is introduced into the high-energy beam melting equipment, and the flow rate of liquid nitrogen is controlled to quench the titanium alloy lattice structure. The temperature of the titanium alloy lattice structure was 1000℃ when liquid nitrogen was introduced; the liquid nitrogen flow rate was 22L / min; the liquid nitrogen injection mode was continuous; and the quenching time was 16min. The performance test results of the titanium alloy lattice structure after quenching in this embodiment are as follows: cooling rate is 50~60℃ / s, surface hardness is HV390±15, core hardness is HV375±18, quenching depth is 1.8~2.0mm, quenching rate is 95%, surface nitriding layer thickness is 8~10μm, nitriding layer microhardness is HV820±35, and its microstructure is fine α' martensite with a small amount of α2 phase.
[0035] Example 9 A heat-quenching integrated process for titanium alloy lattice structures includes the following steps: S1. Under vacuum conditions, titanium alloy powder is used to print titanium alloy lattice structures in a high-energy beam melting device. The titanium alloy powder used is TA11; the accelerating voltage during the printing process is 55kV, the beam current is 14mA, and the scanning speed is 18m / s; the titanium alloy lattice structure is a cubic lattice with a unit size of 5×5×5mm and a rod diameter of 2.0mm. S2. After printing, liquid nitrogen is introduced into the high-energy beam melting equipment, and the flow rate of liquid nitrogen is controlled to quench the titanium alloy lattice structure. The temperature of the titanium alloy lattice structure was 1000℃ when liquid nitrogen was introduced; the liquid nitrogen flow rate was 30L / min; the liquid nitrogen injection mode was continuous; and the quenching time was 14min. The performance test results of the titanium alloy lattice structure after quenching in this embodiment are as follows: cooling rate is 70~80℃ / s, surface hardness is HV410±12, core hardness is HV395±15, quenching depth is 2.0mm, quenching rate is 100%, surface nitride layer thickness is 10~12μm, nitride layer microhardness is HV880±30, its microstructure is ultrafine α' martensite, and microcracks appear in the surface nitride layer.
[0036] Schematic diagrams of the titanium alloy lattice structures prepared in Examples 1-3 of this application are shown below. Figure 2 Schematic diagrams of the titanium alloy lattice structures prepared in Examples 4-6 are shown below. Figure 3 .
[0037] This application proposes an integrated hot-quenching process and apparatus for titanium alloy lattice structures, which produces the following beneficial effects: EBM forming and liquid nitrogen quenching are integrated into the same equipment; the vacuum and temperature in the construction chamber are reduced by liquid nitrogen vaporization, lowering the risk of workpiece oxidation and improving efficiency; rapid cooling using liquid nitrogen quenching promotes the formation of fine α' martensite in the titanium alloy and forms a nitrided layer on the surface, improving the workpiece's strength, hardness, and wear resistance; through systematic research on the matching relationship between titanium alloy lattice structures of different rod diameters and liquid nitrogen flow rate, a controllable liquid nitrogen injection system enables precise control of hardenability, improving the consistency and stability of workpiece quality.
[0038] The above description is only a preferred embodiment of this application and does not limit the patent scope of this application. All equivalent structural transformations made using the content of this application's specification under the inventive concept of this application, or direct / indirect applications in other related technical fields, are included within the patent protection scope of this application.
Claims
1. A heat-quenching integrated process for titanium alloy lattice structures, characterized in that, Includes the following steps: S1. Under vacuum conditions, titanium alloy powder is used to print titanium alloy lattice structures in a high-energy beam melting device. The titanium alloy powder includes Ti-6Al-4V or Ti-8Al-1Mo-1V. S2. After printing is completed, liquid nitrogen is introduced into the high-energy beam melting equipment, and the flow rate of the liquid nitrogen is controlled to quench the titanium alloy lattice structure.
2. The integrated hot-quenching process for titanium alloy lattice structures according to claim 1, characterized in that, Step S2 further includes, after printing is completed, when the temperature of the titanium alloy lattice structure drops to 50~100°C below the β transformation temperature, introducing liquid nitrogen into the high-energy beam melting equipment and controlling the flow rate of the liquid nitrogen to quench the titanium alloy lattice structure.
3. The integrated hot-quenching process for titanium alloy lattice structures according to claim 1, characterized in that, Step S1 further includes laying titanium alloy powder on the substrate of the high-energy beam melting device and controlling the pressure in the construction chamber of the high-energy beam melting device to not exceed 5 × 10⁻⁶. -3 Pa, the substrate is preheated to 600~700°C and the temperature of the construction chamber is maintained at 650~700°C. The titanium alloy powder is used in the high-energy beam melting equipment to print titanium alloy lattice structures.
4. The integrated hot-quenching process for titanium alloy lattice structures according to claim 3, characterized in that, The accelerating voltage during the printing process is 30~60kV, the beam current is 5~20mA, and the scanning speed is 18~30m / s. The beam current during the preheating process is 30~65mA, and the scanning speed is 30~65m / s.
5. The integrated hot-quenching process for titanium alloy lattice structures according to claim 1, characterized in that, When the diameter of the rod in the titanium alloy lattice structure is greater than or equal to 1 mm and less than or equal to 1.5 mm, the flow rate of the liquid nitrogen is controlled to be greater than 10 L / min and less than or equal to 20 L / min. When the diameter of the titanium alloy lattice structure is greater than 1.5 mm and less than or equal to 2 mm, the flow rate of the liquid nitrogen is controlled to be greater than 20 L / min and less than or equal to 30 L / min.
6. The integrated hot-quenching process for titanium alloy lattice structures according to claim 1, characterized in that, Step S2 further includes introducing liquid nitrogen into the high-energy beam melting device using a multi-nozzle injection system, wherein the flow rate of the liquid nitrogen injected by each nozzle in the multi-nozzle injection system is independently controlled.
7. The integrated hot-quenching process for titanium alloy lattice structures according to claim 1, characterized in that, A nitrided layer is formed on the surface of the titanium alloy lattice structure after quenching, and the thickness of the nitrided layer is 2~10μm.
8. A titanium alloy lattice structure integrated hot-quenching device, characterized in that, The apparatus for implementing the integrated hot-quenching process of titanium alloy lattice structure according to any one of claims 1 to 7 is a high-energy beam melting device, comprising: a building chamber and a liquid nitrogen spraying system; The liquid nitrogen injection system includes a liquid nitrogen storage unit, a multi-nozzle injection system, a flow regulation system, and a temperature monitoring system; The multi-nozzle spraying system includes a nozzle, the temperature monitoring system includes a detection probe, and the nozzle and the detection probe are disposed inside the construction chamber; The flow regulation system is located between the liquid nitrogen storage unit and the multi-nozzle injection system, and is connected to the flow regulation system and the multi-nozzle injection system respectively through a delivery pipeline; The liquid nitrogen storage unit, the multi-nozzle injection system, the flow regulation system, and the temperature monitoring system are all connected to a computer and can be controlled by the computer.
9. The integrated hot-quenching device for titanium alloy lattice structure according to claim 8, characterized in that, The flow regulation system controls the flow rate of liquid nitrogen ejected by the multi-nozzle injection system to be 5~30L / min, with a control accuracy of ±0.5L / min.
Citation Information
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