A high-temperature alloy profile pressing-solid solution integrated equipment
Patent Information
- Application Number
- CN202611194549.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2026-08-07
- Publication Date
- 2026-09-25
AI Technical Summary
[0003]现有高温合金中空异型型材固溶冷却采用升降台整体沉入水池的间歇冷却工艺,升降台承载管材快速下沉入水时,管材两端管口迅速被水体封堵,内腔原有高温空气无法及时排出,密闭空气与入水产生的蒸汽气泡在内壁形成完整隔热层,管材外壁瞬间与冷却水接触快速收缩,内腔长期滞留高温气体,内壁冷却严重滞后,造成管材内外金相分层、截面永久椭圆、内壁褶皱等缺陷
[0014]1.设备可根据不同合金异型材的管口朝向以及实际倾斜角度,依托三轴平移组件完成全方位位置预调节,再随角度调节组件转动,根据合金异型材的实际管口偏斜角度实时微调,使锥形喷嘴的中心轴线与偏斜管口的中心轴线完全重合,实现同轴对接,再经由通气槽匀速导流,通过锥形喷嘴定向、稳定、持续地喷射进入合金异型材的整个中空腔体内部,通过贯通式全域吹扫,能够彻底置换并排出型材腔体内部滞留的高温空气、残留水汽、氧化杂质与积尘,完全清空内腔杂气介质,使合金异型材整个中空腔体内部完全填充高密度、高稳定性的惰性保护气体,这样型材浸入冷却水池后,惰性气体能从管口缓慢均匀溢出,无密闭空气隔热层阻隔冷却水接触内壁,型材内外壁同步接触冷却水,冷却速率一致,有效降低淬火热冲击与残余应力,大幅减少型材变形、开裂不良率,保证型材尺寸精度统一。
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Figure CN122811485A_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of metal heat treatment technology, and to an integrated pressure-solid solution treatment device for high-temperature alloy profiles. Background Technology
[0002] High-temperature metals are a class of special metallic materials that can withstand long-term loads in high-temperature environments of 600℃ and above, and possess high-temperature strength, creep resistance, oxidation resistance, and heat corrosion resistance. Unlike conventional metals such as ordinary carbon steel and aluminum alloys, high-temperature alloy pipes with anisotropic end shapes are high-temperature shaped metal components with cavities. The pipes have axial bending, spatial torsion, and diameter variation structures, and the two end shapes are arranged at an angle. The axes of the two end shapes are not collinear or in the same direction, forming a spatially bent hollow flow channel structure. High-temperature alloy solution treatment is the core heat treatment process: the high-temperature metal is heated to the high-temperature single-phase austenite range and held at that temperature for a sufficient period of time, so that the carbides and other precipitated strengthening phases inside the alloy are completely dissolved into the nickel-based austenite matrix, forming a uniformly composed supersaturated solid solution. Then, rapid and controllable cooling is performed to suppress the coarse precipitation of the second phase during the cooling process, laying a uniform microstructure foundation for subsequent aging treatment.
[0003] The existing solution cooling of high-temperature alloy hollow profiles uses an intermittent cooling process in which the entire lifting platform is immersed in a water tank. When the lifting platform carries the pipe and sinks into the water quickly, the pipe ends are quickly blocked by the water. The original high-temperature air in the inner cavity cannot be discharged in time. The sealed air and the steam bubbles generated by the water in the water form a complete heat insulation layer on the inner wall. The outer wall of the pipe comes into contact with the cooling water and contracts rapidly. The high-temperature gas is trapped in the inner cavity for a long time, and the cooling of the inner wall is seriously delayed, resulting in defects such as metallographic delamination inside and outside the pipe, permanent elliptical cross section, and wrinkles on the inner wall. Summary of the Invention
[0004] The purpose of this invention is to provide an integrated pressure-solid solution treatment device for high-temperature alloy profiles, which can solve the problems mentioned in the background art.
[0005] According to the technical solution provided by this invention: a high-temperature alloy profile pressing-solution integrated equipment includes a heat treatment furnace, which is horizontally fixed on the ground; the heat treatment furnace is horizontally fixed on the ground, a material press is correspondingly arranged on one side of the heat treatment furnace, a lifting component is arranged at the discharge opening on the other side of the heat treatment furnace, a three-axis translation component is mounted on the lifting component, an angle adjustment component is fixedly installed on the three-axis translation component, a cooling water pool is arranged directly below the lifting component, a conical nozzle is mounted at the end of the angle adjustment component, the conical nozzle can be adjusted to multiple angles with the angle adjustment component, and the conical nozzle can match the angle of the oblique pipe opening of the profile to complete the coaxial docking operation.
[0006] Preferably, the lifting assembly includes a lifting control frame, a lifting roller frame, a lifting machine, and rotating shafts. The lifting control frame is located on the side closest to the heat treatment furnace. The lifting control frame is an integral lifting support frame. The lifting roller frame is vertically mounted inside the lifting control frame. The lifting roller frame is used to support and transport alloy profiles. A cooling water pool is located directly below the lifting roller frame on the ground. The lifting machine is fixedly installed on the top of the lifting control frame. The output end of the lifting machine is fixedly connected to the lifting roller frame. The lifting machine can drive the entire lifting roller frame to complete vertical lifting and lowering along the lifting control frame. Multiple rotating shafts are rotatably connected to the bottom of the lifting roller frame, and alloy profiles are placed on the rotating shafts.
[0007] Preferably, a three-axis translation assembly is provided on the top of the lifting roller frame. The three-axis translation assembly includes a base, a transverse translation axis assembly, a longitudinal translation axis assembly, and a vertical lifting axis assembly. The base is fixedly connected to the lifting roller frame and is oriented towards the rotation axis. The longitudinal translation axis assembly is slidably connected to the base, the transverse translation axis assembly is slidably connected to the longitudinal translation axis assembly, and the vertical lifting axis assembly is slidably connected to the transverse translation axis assembly, thus forming a three-axis linkage translation adjustment structure.
[0008] Preferably, the three-axis translation assembly is arranged in the direction of the rotation axis. Through the step-by-step sliding adjustment of the horizontal translation axis assembly, the vertical translation axis assembly, and the vertical lifting axis assembly, the conical nozzle can be driven to be precisely aligned in multiple dimensions in the horizontal, vertical, and longitudinal directions.
[0009] Preferably, the angle adjustment assembly includes a mounting platform, a worm gear, a worm, an angle adjustment frame, and a drive motor. The mounting platform is slidably connected to the vertical lifting shaft assembly. The worm gear is rotatably connected to the mounting platform. The drive motor is fixedly mounted on the mounting platform, and its output end is fixedly connected to the worm gear. The worm is meshed with the worm gear. The angle adjustment frame is rotatably connected to the mounting platform, and the worm is rotatably connected to the angle adjustment frame. The worm gear can drive the angle adjustment frame through the worm to complete the angle adjustment action.
[0010] Preferably, the conical nozzle is fixedly installed at the end of the angle adjustment frame. Relying on the meshing and self-locking transmission characteristics of the worm gear and worm, the angle adjustment frame is driven to drive the conical nozzle to achieve angle deflection, which is in conjunction with the skewed pipe opening of the metal profile.
[0011] Preferably, the side of the angle adjustment frame is provided with a ventilation groove, which is interconnected with the interior of the conical nozzle. Inert gas is directionally introduced into the cavity of the alloy profile through the ventilation groove and the conical nozzle, so that the air in the cavity is completely replaced before the profile is immersed in the cooling water pool.
[0012] Preferably, the lifting roller frame is a hollow support structure, which can stably support alloy profiles and can be driven down as a whole into the cooling water pool.
[0013] The integrated pressure-solution treatment equipment for high-temperature alloy profiles provided in this invention has the following advantages:
[0014] 1. The equipment can perform omnidirectional position pre-adjustment based on the nozzle orientation and actual tilt angle of different alloy profiles using a three-axis translation component. Then, as the angle adjustment component rotates, it performs real-time fine-tuning according to the actual nozzle tilt angle of the alloy profile, ensuring the central axis of the conical nozzle perfectly coincides with the central axis of the tilted nozzle, achieving coaxial connection. The air is then uniformly guided through the ventilation channel and injected directionally, stably, and continuously into the entire hollow cavity of the alloy profile through the conical nozzle. Through this through-flow, full-area purging, the material can be completely replaced and discharged. The high-temperature air, residual moisture, oxidation impurities, and dust trapped inside the cavity are completely removed, and the impurities in the cavity are completely emptied. This allows the entire hollow cavity of the alloy profile to be completely filled with a high-density, high-stability inert protective gas. When the profile is immersed in the cooling water pool, the inert gas can slowly and evenly overflow from the pipe opening. There is no sealed air insulation layer to prevent the cooling water from contacting the inner wall. The inner and outer walls of the profile are in contact with the cooling water simultaneously, resulting in a consistent cooling rate. This effectively reduces the thermal shock and residual stress during quenching, significantly reduces the profile deformation and cracking rate, and ensures uniform dimensional accuracy of the profile. Attached Figure Description
[0015] Figure 1 This is a schematic diagram of the overall structure of the present invention;
[0016] Figure 2 This is a front view of the present invention;
[0017] Figure 3 This is a top view of the present invention;
[0018] Figure 4 This is a schematic diagram of the lifting component structure of the present invention;
[0019] Figure 5 for Figure 4 Enlarged view of point A in the middle;
[0020] Figure 6 This is a schematic diagram of the three-axis translation component structure of the present invention;
[0021] Figure 7 This is a schematic diagram of the angle adjustment component structure of the present invention;
[0022] Figure 8 This is an exploded view of the angle adjustment component of the present invention.
[0023] In the diagram: 1. Heat treatment furnace; 2. Material press; 3. Lifting assembly; 31. Lifting control frame; 32. Lifting roller frame; 33. Lift; 34. Rotating shaft; 4. Three-axis translation assembly; 41. Base; 42. Lateral translation axis assembly; 43. Longitudinal translation axis assembly; 44. Vertical lifting axis assembly; 5. Angle adjustment assembly; 51. Mounting platform; 52. Worm gear; 53. Worm; 54. Angle adjustment frame; 55. Drive motor; 6. Conical nozzle; 7. Ventilation groove; 8. Alloy profile. Detailed Implementation
[0024] To enable those skilled in the art to better understand the present invention, the technical solutions of the present invention will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort should fall within the scope of protection of the present invention.
[0025] In the description of this invention, it should be understood that the terms "upper", "lower", "front", "rear", "left", "right", "top", "bottom", "inner", "outer", etc., indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings. They are only for the convenience of describing this invention and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation. Therefore, they should not be construed as limitations on this invention.
[0026] Combination Figure 1 and Figure 3 As shown, this invention is an integrated pressing-solution equipment for high-temperature alloy profiles, comprising: a heat treatment furnace 1, which is horizontally fixed on the ground; a material press 2 is provided on one side of the heat treatment furnace 1, and a lifting assembly 3 is provided at the discharge opening on the other side of the heat treatment furnace 1. A three-axis translation assembly 4 is mounted on the lifting assembly 3, and an angle adjustment assembly 5 is fixedly installed on the three-axis translation assembly 4. A cooling water pool is provided directly below the lifting assembly 3. A conical nozzle 6 is mounted at the end of the angle adjustment assembly 5. The conical nozzle 6 can be adjusted to multiple angles with the angle adjustment assembly 5. The conical nozzle 6 can match the angle of the oblique pipe opening of the profile to complete the coaxial docking operation.
[0027] When using it, refer to Figure 1 and Figure 4As shown, the equipment uses a horizontally arranged heat treatment furnace 1 as the core heat treatment carrier, and a single-sided material press 2 to realize the integrated pre-processing of profile forming and solution treatment. The material press 2 completes the shaping of the high-temperature alloy profile 8 through high-pressure extrusion, so that the profile reaches the preset external dimensions and basic structural form. The formed alloy profile 8 is sent into the heat treatment furnace 1 for high-temperature solution treatment and heat preservation. Through high-temperature heating, the alloy solute elements inside the profile are fully dissolved in the matrix structure to form a uniform supersaturated solid solution, eliminating the internal stress and structural segregation generated in the early processing of the profile, laying the structural foundation for subsequent quenching and strengthening and improving the mechanical properties of the profile, and completing the pre-processing of the profile heat treatment. After heat treatment, the alloy profile 8 is sent out from the outlet of the heat treatment furnace 1. The lifting component 3 realizes stable reception and lifting position switching. The three-axis translation component 4 and the angle adjustment component 5 adjust the deflection of the conical nozzle 6 to adaptively match the tilt angle of the nozzle of the alloy profile 8.
[0028] Combination Figure 4 As shown, the lifting assembly 3 includes a lifting control frame 31, a lifting roller frame 32, a lifting machine 33, and a rotating shaft 34. The lifting control frame 31 is located on the side near the heat treatment furnace 1. The lifting control frame 31 is an integral lifting support frame. The lifting roller frame 32 is vertically mounted inside the lifting control frame 31. The lifting roller frame 32 is used to support and transport alloy profiles. A cooling water pool is located directly below the lifting roller frame 32 on the ground. The lifting machine 33 is fixedly installed on the top of the lifting control frame 31. The output end of the lifting machine 33 is fixedly connected to the lifting roller frame 32. The lifting machine 33 can drive the lifting roller frame 32 to complete vertical lifting along the lifting control frame 31. Multiple rotating shafts 34 are rotatably connected to the bottom end of the lifting roller frame 32. Alloy profiles 8 are placed on the rotating shafts 34.
[0029] The lifting roller frame 32 is a hollow support structure that can stably support the alloy profile 8 and can be driven down as a whole to the cooling water pool by the lifting machine 33.
[0030] When using it, refer to Figure 1 and Figure 4 As shown, the lifting assembly 3 uses the lifting control frame 31 as a fixed support frame, and the lifting machine 33 mounted on the top is the power source. Through the rigid connection of the output end, it drives the lifting roller frame 32 to make vertical reciprocating linear motion along the lifting control frame 31. Multiple sets of rotating shafts 34 are arranged at the bottom of the lifting roller frame 32, which can flexibly support the high-temperature soft alloy profile 8. This can avoid hard contact scratches and extrusion deformation of the profile, and can also realize the stable conveying and positioning of the profile. At the same time, the lifting roller frame 32 adopts a hollow and transparent structure without structural obstruction, which can be freely adapted to the immersion operation of the cooling water pool below. Through precise lifting and adjustment, the profile can be accurately switched and positioned at the heat treatment discharge station, gas replacement station, and immersion cooling station, ensuring continuous connection of processes.
[0031] Combination Figure 6 As shown, a three-axis translation assembly 4 is provided on the top of the lifting roller frame 32. The three-axis translation assembly 4 includes a base 41, a transverse translation axis assembly 42, a longitudinal translation axis assembly 43, and a vertical lifting axis assembly 44. The base 41 is fixedly connected to the lifting roller frame 32 and faces the rotation axis 34. The longitudinal translation axis assembly 43 is slidably connected to the base 41. The transverse translation axis assembly 42 is slidably connected to the longitudinal translation axis assembly 43. The vertical lifting axis assembly 44 is slidably connected to the transverse translation axis assembly 42, thus forming a three-axis linkage translation adjustment structure.
[0032] The three-axis translation assembly 4 is arranged in the direction of the rotation axis 34. Through the step-by-step sliding adjustment of the horizontal translation axis assembly 42, the vertical translation axis assembly 43, and the vertical lifting axis assembly 44, the conical nozzle 6 can be driven to be precisely aligned in multiple dimensions in the horizontal, vertical, and longitudinal directions.
[0033] When using it, refer to Figure 4. Figure 5 and Figure 6 As shown, to address the lateral, longitudinal, and height positional deviations of the pipe openings of different profile specifications, the equipment uses a three-axis translation assembly 4 to align the conical nozzle 6. The three-axis translation assembly 4 is fixed to the top of the lifting roller frame 32 via a base 41. Using the base 41 as a fixed reference, a hierarchically nested sliding adjustment structure is formed. The longitudinal translation axis assembly 43 relies on the base 41 to adjust the position of the profile in the length direction, adapting to the axial position of the pipe opening of different length profiles. The lateral translation axis assembly 42 is slidably mounted on the longitudinal translation axis assembly 43 to achieve fine-tuning of the radial lateral position of the profile, correcting the left and right offset errors of the profile. The vertical lifting axis assembly 44 is slidably mounted on the lateral translation axis assembly 42 to match the pipe opening height of different diameter profiles, eliminating height positional deviations. The three-axis assemblies slide independently and work together in a step-by-step manner, which can comprehensively compensate for the positional tolerances caused by the transfer and installation of the profiles, ensuring that the subsequent angle adjustment assembly 5 and the conical nozzle 6 are accurately aligned with the reference position of the profile pipe opening.
[0034] Referring to Figure 5, Figure 7 and Figure 8 As shown, the angle adjustment assembly 5 includes a mounting platform 51, a worm gear 52, a worm 53, an angle adjustment frame 54, and a drive motor 55. The mounting platform 51 is slidably connected to the vertical lifting shaft assembly 44. The worm gear 52 is rotatably connected to the mounting platform 51. The drive motor 55 is fixedly mounted on the mounting platform 51, and the output end of the drive motor 55 is fixedly connected to the worm gear 52. The worm 53 is meshed with the worm gear 52. The angle adjustment frame 54 is rotatably connected to the mounting platform 51, and the worm 53 is rotatably connected to the angle adjustment frame 54. The worm gear 52 can drive the angle adjustment frame 54 through the worm 53 to complete the angle adjustment action.
[0035] The conical nozzle 6 is fixedly installed at the end of the angle adjustment frame 54. Relying on the meshing self-locking transmission characteristics of the worm gear 52 and the worm 53, the angle adjustment frame 54 drives the conical nozzle 6 to achieve angle deflection, which is in conjunction with the skewed pipe opening of the metal profile 8.
[0036] The angle adjustment bracket 54 has a ventilation groove 7 on its side. The ventilation groove 7 and the conical nozzle 6 are interconnected. Inert gas is directionally introduced into the cavity of the alloy profile 8 through the ventilation groove 7 and the conical nozzle 6, so that the air in the cavity is completely replaced before the profile is immersed in the cooling water pool.
[0037] When using it, refer to Figure 5. Figure 7 and Figure 8As shown, the equipment can perform omnidirectional position pre-adjustment based on the pipe opening orientation and actual tilt angle of different alloy profiles 8, relying on the three-axis translation component 4. This allows the conical nozzle 6 to be initially positioned at the corresponding position of the pipe opening of the alloy profile 8, completing the preliminary alignment benchmark calibration and eliminating positional deviations in the axial, radial, and height directions of the pipe opening. After completing the position pre-positioning, based on the actual pipe opening tilt angle of the alloy profile 8, the mounting platform 51 serves as the angle adjustment benchmark carrier, providing stable support for the overall angle adjustment mechanism. The drive motor 55, fixed on the mounting platform 51, outputs power to drive the worm gear 52, which is rotatably connected to the mounting platform 51, to rotate precisely at a fixed angle. Because the worm gear 52 is meshed with the worm 53, the worm... The rotation of wheel 52 synchronously drives worm 53 to shift its angle. Simultaneously, worm 53 and angle adjustment frame 54 are rotated and assembled, allowing angle adjustment frame 54 to rotate and swing synchronously with the shift angle of worm 53. Ultimately, the conical nozzle 6, fixedly mounted at the end of angle adjustment frame 54, shifts its angle synchronously with the overall structure, adapting to various forward and lateral inclined pipe opening conditions of alloy profile 8. Through dynamic fine-tuning throughout the process, it ensures that the air outlet of the conical nozzle 6 is always precisely aligned with the inclined pipe opening of the alloy profile 8, making the central axis of the conical nozzle 6 completely coincide with the central axis of the inclined pipe opening, achieving a close-fitting coaxial connection. This solves the problem that traditional equipment cannot adapt to irregularly shaped inclined pipe openings. At this time, a ventilation groove 7 is provided on the side of the angle adjustment frame 54. The ventilation groove 7 is completely connected to the internal cavity of the end conical nozzle 6, forming a sealed, smooth, and leak-free inert gas inlet and guide path. Before the alloy profile 8 is immersed in the cooling water pool below for quenching, the external high-purity, low-temperature, and high-pressure inert gas can be uniformly guided through the ventilation groove 7 and injected directionally, stably, and continuously into the entire hollow cavity of the alloy profile 8 through the conical nozzle 6. Through the through-type full-area purging, the high-temperature air, residual water vapor, oxidation impurities, and dust trapped inside the profile cavity can be completely replaced and discharged, completely clearing the impurity medium in the internal cavity, so that the entire hollow cavity of the alloy profile 8 is completely filled with high-density and high-stability gas. Inert protective gas provides a pre-treatment guarantee for the immersion cooling process, avoiding problems such as high-temperature oxidation and uneven cooling in the profile's inner cavity. Combined with the reverse mechanical self-locking characteristic of the worm gear mechanism, mechanical locking can be achieved after the angle is adjusted to the correct position, unaffected by external interference such as high-pressure gas backflow or equipment vibration. This ensures the sealing and stability of the inert gas replacement operation. High-density inert gas fills the profile's inner cavity. After the profile is immersed in the cooling water tank, the inert gas slowly and evenly overflows from the pipe opening. Without a sealed air insulation layer preventing cooling water from contacting the inner wall, the inner and outer walls of the profile simultaneously contact the cooling water, resulting in a consistent cooling rate. This effectively reduces quenching thermal shock and residual stress, significantly reducing profile deformation and cracking rates, and ensuring uniform dimensional accuracy.
[0038] It is understood that the above embodiments are merely exemplary implementations used to illustrate the principles of the present invention, and the present invention is not limited thereto. For those skilled in the art, various modifications and improvements can be made without departing from the spirit and essence of the present invention, and these modifications and improvements are also considered to be within the scope of protection of the present invention.
Claims
1. A high-temperature alloy profile pressing-solution integrated equipment, characterized in that, The equipment includes a heat treatment furnace (1), which is horizontally fixed on the ground. The heat treatment furnace (1) is horizontally fixed on the ground. A material press (2) is set on one side of the heat treatment furnace (1). A lifting assembly (3) is set at the discharge opening on the other side of the heat treatment furnace (1). A three-axis translation assembly (4) is mounted on the lifting assembly (3). An angle adjustment assembly (5) is fixedly installed on the three-axis translation assembly (4). A cooling water pool is set directly below the lifting assembly (3). A conical nozzle (6) is mounted at the end of the angle adjustment assembly (5). The conical nozzle (6) can be adjusted to multiple angles with the angle adjustment assembly (5). The conical nozzle (6) can match the angle of the oblique pipe opening of the irregular pipe to complete the coaxial docking operation.
2. The high-temperature alloy profile pressure-solution integrated equipment according to claim 1, characterized in that: The lifting assembly (3) includes a lifting control frame (31), a lifting roller frame (32), a lifting machine (33), and a rotating shaft (34). The lifting control frame (31) is located on the side near the heat treatment furnace (1). The lifting control frame (31) is an integral lifting support frame. The lifting roller frame (32) is installed vertically inside the lifting control frame (31). The lifting roller frame (32) is used to support and transport alloy profiles. A cooling water pool is located directly below the lifting roller frame (32) on the ground. The lifting machine (33) is fixedly installed on the top of the lifting control frame (31). The output end of the lifting machine (33) is fixedly connected to the lifting roller frame (32). The lifting machine (33) can drive the lifting roller frame (32) to complete vertical lifting along the lifting control frame (31). Multiple rotating shafts (34) are rotatably connected to the bottom end of the lifting roller frame (32). Alloy profiles (8) are placed on the rotating shafts (34).
3. A high-temperature alloy profile pressing-solution integrated equipment according to claim 2, characterized in that: The top of the lifting roller frame (32) is provided with a three-axis translation assembly (4). The three-axis translation assembly (4) includes a base (41), a transverse translation axis assembly (42), a longitudinal translation axis assembly (43), and a vertical lifting axis assembly (44). The base (41) is fixedly connected to the lifting roller frame (32) and the base (41) is set facing the rotation axis (34). The longitudinal translation axis assembly (43) is slidably connected to the base (41), the transverse translation axis assembly (42) is slidably connected to the longitudinal translation axis assembly (43), and the vertical lifting axis assembly (44) is slidably connected to the transverse translation axis assembly (42), thus forming a three-axis linkage translation adjustment structure.
4. A high-temperature alloy profile pressing-solution integrated equipment according to claim 3, characterized in that: The three-axis translation assembly (4) is arranged in the direction of the rotation axis (34). Through the step-by-step sliding adjustment of the horizontal translation axis assembly (42), the vertical translation axis assembly (43), and the vertical lifting axis assembly (44), the conical nozzle (6) can be driven to be precisely aligned in multiple dimensions in the horizontal, vertical and vertical directions.
5. A high-temperature alloy profile pressing-solution integrated equipment according to claim 4, characterized in that: The angle adjustment assembly (5) includes a mounting platform (51), a worm gear (52), a worm (53), an angle adjustment frame (54), and a drive motor (55). The mounting platform (51) is slidably connected to the vertical lifting shaft assembly (44). The worm gear (52) is rotatably connected to the mounting platform (51). The drive motor (55) is fixedly mounted on the mounting platform (51). The output end of the drive motor (55) is fixedly connected to the worm gear (52). The worm (53) is meshed with the worm gear (52). The angle adjustment frame (54) is rotatably connected to the mounting platform (51), and the worm (53) is rotatably connected to the angle adjustment frame (54). The worm gear (52) can drive the angle adjustment frame (54) through the worm (53) to complete the angle adjustment action.
6. A high-temperature alloy profile pressing-solution integrated equipment according to claim 5, characterized in that: The conical nozzle (6) is fixedly installed at the end of the angle adjustment frame (54). Relying on the meshing self-locking transmission characteristics of the worm gear (52) and the worm (53), the angle adjustment frame (54) drives the conical nozzle (6) to achieve angle deflection, which is in conjunction with the skewed opening of the metal profile (8).
7. A high-temperature alloy profile pressing-solution integrated equipment according to claim 5, characterized in that: The angle adjustment bracket (54) has a ventilation groove (7) on its side. The ventilation groove (7) and the conical nozzle (6) are interconnected. Inert gas is directed into the cavity of the alloy profile (8) through the ventilation groove (7) and the conical nozzle (6) to completely replace the air in the cavity before the profile is immersed in the cooling water pool.
8. A high-temperature alloy profile pressing-solution integrated equipment according to claim 2, characterized in that: The lifting roller frame (32) is a hollow support structure that can stably support alloy profiles (8) and can be driven down into the cooling water pool by the elevator (33).