Selective laser melting forming connection equipment
Patent Information
- Application Number
- CN202521924150.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-09-08
- Publication Date
- 2026-09-22
- Estimated Expiration
- 2035-09-08
AI Technical Summary
[0005]本实用新型的目的在于提供一种激光选区熔化成形续接装备,旨在解决现有技术中激光选区熔化成形续接精度较低的问题,该激光选区熔化成形续接装备能够有效提高续接效率和续接质量
[0023]本实用新型提供的激光选区熔化成形续接装备,中控系统能够控制平移机构运动,中控系统能够获取实际轮廓数据,确定工件的实际尺寸数据,并将实际轮廓数据与理论模型的理论轮廓数据进行对比,确定位移数据,根据实际尺寸数据和位移数据修改理论模型的缩放比例,并移动理论模型的位置,使得理论轮廓和实际轮廓重合;通过设置激光扫描设备,激光扫描设备用于对烧结层和工件进行扫描并获取烧结层和工件的实际轮廓数据,激光扫描设备能够快速精准地对烧结层和工件进行扫描定位,能够有效提高续接效率和续接质量,续接痕迹的宽度可控制在0.3mm以下。
Smart Images

Figure CN224779362U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of additive manufacturing technology, and in particular to a laser selective melting forming continuation equipment. Background Technology
[0002] Selective Laser Melting (SLM) is a process that uses a laser generator to produce a laser beam. This beam is then collimated and expanded by a collimator and beam expander to reduce its divergence before entering a galvanometer. The galvanometer system, controlled by the workpiece's three-dimensional model, sintersects the workpiece on a powder support platform. Each sintering layer is created by dividing the three-dimensional model into layers of 40μm-100μm thickness, with powder layered and sintered sequentially. The number of sintering layers typically ranges from several thousand to tens of thousands. During sintering, warping often occurs due to model structure issues, support design problems, or unsuitable printing parameters. In such cases, it is usually necessary to open the workpiece chamber and polish it before continuing printing. During the opening process, due to the solidification and shrinkage characteristics of the metal material itself, combined with the vibration of the parts caused by grinding and other processes, the formed solid parts are prone to deviate from the original model. After the printing is continued, there will be certain joint marks. The deviation of the joint is between 0.3mm and 0.8mm. The joint marks cannot be manually ground, and the abnormality is eventually detected, resulting in scrap.
[0003] Currently, laser selective melting equipment primarily uses manual rejoining. There are three main rejoining methods: First, direct rejoining after a long pause by opening the forming chamber; second, rejoining after surface grinding of the workpiece after opening the chamber; and third, rejoining after the part has separated from the substrate, cutting off the defective portion, and re-entering the forming chamber for printing rejoining. The first method is less difficult, and the rejoining marks are generally acceptable. The second and third methods are more challenging. Due to the solidification shrinkage characteristics of metal materials, opening the chamber can cause model position shifts, especially after wire cutting the defective section. When re-entering the forming chamber, the model position is often misaligned. These types of parts are often of extremely high value, resulting in significant scrap costs. Existing rejoining technologies have low precision and cannot meet high-precision rejoining requirements.
[0004] Therefore, there is an urgent need for a laser selective melting forming and splicing equipment to solve the above-mentioned technical problems. Utility Model Content
[0005] The purpose of this invention is to provide a laser selective melting forming continuation equipment, which aims to solve the problem of low continuation accuracy in the existing laser selective melting forming continuation technology. This laser selective melting forming continuation equipment can effectively improve continuation efficiency and continuation quality.
[0006] To achieve this objective, the present invention adopts the following technical solution:
[0007] A laser selective melting forming continuation device includes:
[0008] Forming chamber;
[0009] A powder support platform is disposed inside the forming chamber, and the powder support platform is used to support the powder to be sintered;
[0010] A laser generator is disposed above the forming chamber. The laser generator is used to emit a laser beam, which is used to sinter the powder.
[0011] A laser scanning device is slidably mounted on the inner wall of the forming chamber via a translation mechanism. The laser scanning device is used to scan the sintered layer and the workpiece and obtain the actual contour data of the sintered layer and the workpiece.
[0012] The central control system includes the laser scanning device and the translation mechanism, both of which are electrically connected to the central control system.
[0013] In some possible implementations, the laser selective melting forming continuation equipment further includes a dust removal structure, which includes a blowing assembly and a suction assembly. The blowing assembly is disposed on one outer side wall of the forming chamber, and the suction assembly is disposed on the other outer side wall of the forming chamber. The blowing assembly and the suction assembly are disposed opposite to each other and are both in communication with the forming chamber.
[0014] In some possible implementations, the blowing assembly includes an interconnected blowing pipe and a blower. The blowing pipe includes a main blowing pipe and two branch blowing pipes. The forming chamber has two blowing ports, one of which is located near the top of the forming chamber and the other is located near the bottom of the forming chamber. One end of each of the two branch blowing pipes is connected to the main blowing pipe, and the other end of each branch blowing pipe is connected to the two blowing ports respectively.
[0015] In some possible implementations, the suction assembly includes a suction pipe and a suction device that are interconnected, with a filter element disposed inside the suction device, the end of the suction pipe away from the suction device communicating with the suction port of the forming chamber, and the suction port being disposed near the bottom end of the forming chamber.
[0016] In some possible implementations, both the air outlet and the air intake are configured as a mesh.
[0017] In some possible implementations, the translation mechanism includes a drive unit mounted on the forming chamber, a slide rail disposed on the forming chamber, and a slide groove disposed on the laser scanning device. The laser scanning device is drivenly connected to the output end of the drive unit, and the drive unit is electrically connected to the central control system.
[0018] In some possible implementations, the slide rail is detachably mounted to the forming chamber.
[0019] In some possible implementations, the slide rail is connected to the forming chamber via a threaded component, or the slide rail and the forming chamber are interlocked, or the slide rail is detachably bonded to the forming chamber via an adhesive component.
[0020] In some possible implementations, the laser selective melting forming continuation equipment further includes a scraper slidably mounted within the forming chamber, the scraper being used to level the powder.
[0021] In some possible implementations, the laser selective melting forming continuation equipment further includes a scanning galvanometer and a flat mirror. The scanning galvanometer is disposed on the top of the forming chamber, and the flat mirror is disposed between the scanning galvanometer and the laser generator. The laser beam emitted by the laser generator passes through the scanning galvanometer and the flat mirror in sequence before entering the forming chamber to sinter the powder.
[0022] The beneficial effects of this utility model are:
[0023] The laser selective melting forming and rejoining equipment provided by this utility model has a central control system that can control the movement of the translation mechanism. The central control system can acquire actual contour data, determine the actual size data of the workpiece, compare the actual contour data with the theoretical contour data of the theoretical model, determine the displacement data, modify the scaling ratio of the theoretical model according to the actual size data and displacement data, and move the position of the theoretical model so that the theoretical contour and the actual contour coincide. By setting up a laser scanning device, the laser scanning device is used to scan the sintered layer and the workpiece and acquire the actual contour data of the sintered layer and the workpiece. The laser scanning device can quickly and accurately scan and position the sintered layer and the workpiece, which can effectively improve the rejoining efficiency and rejoining quality. The width of the rejoining mark can be controlled to be below 0.3mm. Attached Figure Description
[0024] Figure 1 This is a schematic diagram of the structure of the laser selective melting and forming continuation equipment provided in this embodiment of the utility model;
[0025] Figure 2 This is a flowchart of the laser selective melting forming continuation method provided in this embodiment of the utility model.
[0026] In the picture:
[0027] 100. Forming chamber; 110. Air outlet; 120. Air suction outlet; 200. Powder support platform; 300. Laser generator; 400. Laser scanning equipment; 500. Central control system; 611. Air blowing pipe; 6111. Branch air blowing pipe; 6112. Main air blowing pipe; 621. Air suction pipe; 700. Translation mechanism; 800. Scanning galvanometer; 900. Flat mirror; 1000. Scraper; 1100. Positioning grid;
[0028] 10. Workpiece. Detailed Implementation
[0029] The present invention will now be described in further detail with reference to the accompanying drawings and embodiments. It should be understood that the specific embodiments described herein are merely illustrative of the present invention and not intended to limit it. Furthermore, it should be noted that, for ease of description, the accompanying drawings show only the parts relevant to the present invention, not the entire structure.
[0030] In the description of this utility model, unless otherwise explicitly specified and limited, the terms "connected," "linked," and "fixed" should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral part; they can refer to a mechanical connection or an electrical connection; they can refer to a direct connection or an indirect connection through an intermediate medium; they can refer to the internal communication of two components or the interaction between two components. Those skilled in the art can understand the specific meaning of the above terms in this utility model based on the specific circumstances.
[0031] In this invention, unless otherwise explicitly specified and limited, "above" or "below" the second feature can include direct contact between the first and second features, or contact between the first and second features through another feature between them. Furthermore, "above," "over," and "on top" of the second feature includes the first feature directly above or diagonally above the second feature, or simply indicates that the first feature is at a higher horizontal level than the second feature. "Below," "below," and "under" the second feature includes the first feature directly below or diagonally below the second feature, or simply indicates that the first feature is at a lower horizontal level than the second feature.
[0032] In the description of this embodiment, the terms "upper," "lower," "right," etc., refer to the orientation or positional relationship shown in the accompanying drawings. They are used only for ease of description and simplification of operation, 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 utility model. In addition, the terms "first" and "second" are only used for distinction in description and have no special meaning.
[0033] like Figure 1As shown, this embodiment provides a laser selective melting forming continuation equipment, including a forming chamber 100, a powder support platform 200, a laser generator 300, a laser scanning device 400, and a central control system 500. The powder support platform 200 is disposed within the forming chamber 100 and is used to support the powder to be sintered. The laser generator 300 is disposed within the forming chamber 100 and above the powder support platform 200, and is used to emit a laser beam for sintering the powder. The laser scanning device 400 is slidably disposed on the inner wall of the forming chamber 100 via a translation mechanism 700. The laser scanning device 400 is used to scan the sintered layer (such as the positioning grid 1100) and the workpiece 10 and obtain the actual contour data of the sintered layer and the workpiece 10. Both the laser scanning device 400 and the translation mechanism 700 are electrically connected to the central control system 500.
[0034] The laser selective melting forming and splicing equipment provided in this embodiment has a central control system 500 that can control the movement of the translation mechanism 700. The central control system 500 can acquire actual contour data, determine the actual size data of the workpiece 10, compare the actual contour data with the theoretical contour data of the theoretical model, determine the displacement data, modify the scaling ratio of the theoretical model according to the actual size data and displacement data, and move the position of the theoretical model so that the theoretical contour and the actual contour coincide. By setting up a laser scanning device 400, which is slidably set on the inner side wall of the forming chamber 100 through the translation mechanism 700, the laser scanning device 400 is used to scan the sintered layer and the workpiece 10 and acquire the actual contour data of the sintered layer and the workpiece 10. The laser scanning device 400 can quickly and accurately scan and position the sintered layer and the workpiece 10, which can effectively improve the splicing efficiency and splicing quality, and the width of the splicing mark can be controlled to be less than 0.3mm.
[0035] Optionally, the laser selective melting forming continuation equipment also includes a scanning galvanometer 800 and a flat mirror 900. The scanning galvanometer 800 is disposed on top of the forming chamber 100, and the flat mirror 900 is disposed between the scanning galvanometer 800 and the laser generator 300. The laser beam emitted by the laser generator 300 passes sequentially through the scanning galvanometer 800 and the flat mirror 900 before entering the forming chamber 100 to sinter the powder. The scanning galvanometer 800 can perform planar offset processing on the laser beam, and the flat mirror 900 is used to protect the scanning galvanometer 800. See, for example... Figure 1In this embodiment, the laser generator 300 employs a dual-laser design, serving as the energy output terminal and capable of emitting two laser beams to perform additive manufacturing on two workpieces 10. Correspondingly, two scanning galvanometers 800 and two planar mirrors 900 are provided, with each of the two scanning galvanometers 800 corresponding to one of the two laser beams, and each of the two planar mirrors 900 corresponding to one of the two scanning galvanometers 800. In other embodiments, the type and number of laser generators 300 can also be configured as needed.
[0036] See also Figure 1 The laser selective melting forming continuation equipment also includes a dust removal structure, which comprises a blowing assembly and a suction assembly. The blowing assembly is located on one outer wall of the forming chamber 100, and the suction assembly is located on the other outer wall of the forming chamber 100. The blowing assembly and the suction assembly are arranged opposite to each other and are both connected to the forming chamber 100. The blowing assembly is used to blow air into the forming chamber 100 to blow away the smoke and slag powder generated during laser sintering. The suction assembly is used to suck the blown smoke and slag powder out of the forming chamber 100 to prevent the smoke and slag powder from adhering to the surface of the flat mirror 900 and damaging the flat mirror 900.
[0037] Optionally, the blowing assembly includes interconnected blowing pipes 611 and blowers. The blowing pipes 611 include a main blowing pipe 6112 and two branch blowing pipes 6111. The forming chamber 100 has two blowing ports 110, one of which is located near the top of the forming chamber 100, and the other is located near the bottom of the forming chamber 100. One end of each of the two branch blowing pipes 6111 is connected to the main blowing pipe 6112, and the other end of each branch blowing pipe 6111 is connected to the two blowing ports 110 respectively. By providing two blowing ports 110, the upper blowing port 110 is used to press down the smoke and dust in the upper space of the forming chamber 100 to prevent the smoke and dust from floating and contaminating the flat mirror 900; the lower blowing port 110 is used to blow away the smoke and dust in the lower space of the forming chamber 100, thereby improving dust removal efficiency.
[0038] Optionally, the suction assembly includes a suction pipe 621 and a suction device that are interconnected. A filter element is installed inside the suction device. The end of the suction pipe 621 away from the suction device is connected to the suction port 120 of the forming chamber 100. The suction port 120 is located near the bottom of the forming chamber 100. The suction device absorbs smoke and dust from the space below the forming chamber 100 and filters the extracted smoke and dust.
[0039] Preferably, both the air outlet 110 and the air inlet 120 are designed in a mesh shape. The mesh-shaped air outlets make the airflow more evenly distributed, avoiding local airflow that is too strong or too weak; the mesh-shaped air outlets can act as a barrier to prevent foreign objects from entering the forming chamber 100; the mesh-shaped air outlets have a stable and durable structure with strong resistance to deformation; the mesh-shaped air outlets have neat lines and a simple appearance.
[0040] Optionally, the laser selective melting forming continuation equipment also includes a scraper 1000, which is slidably mounted within the forming chamber 100. The scraper 1000 is used to spread powder on the forming surface of the workpiece 10, ensuring that the thickness of each powder layer is consistent, providing a stable powder layer for the subsequent laser melting process; during the powder spreading process, the scraper 1000 can apply a certain pressure to the powder, compacting it, thereby providing a denser powder layer, reducing voids between powder particles, and improving the density and mechanical properties of the workpiece 10.
[0041] In this embodiment, the translation mechanism 700 includes a drive component mounted on the forming chamber 100, a slide rail (not shown) disposed on the forming chamber 100, and a slide groove (not shown) disposed on the laser scanning device 400. The laser scanning device 400 is drive-connected to the output end of the drive component, and the drive component is electrically connected to the central control system 500. The combination of the slide rail and the slide groove can effectively improve the sliding stability of the laser scanning device 400 and prevent movement deviation. During the sliding process of the laser scanning device 400, there is a surface contact between the laser scanning device 400 and the slide rail, which can evenly distribute the weight of the laser scanning device 400 on the slide rail and improve the load-bearing capacity of the slide rail.
[0042] Optionally, the slide rail can be detachably installed in the forming chamber 100 to facilitate adjustment of the slide rail's installation position.
[0043] Optionally, the slide rail can be connected to the forming chamber 100 via threaded parts, or the slide rail and the forming chamber 100 can be interlocked, or the slide rail can be detachably bonded to the forming chamber 100 via adhesive. When the slide rail is connected to the forming chamber 100 via threaded parts, the threaded meshing surfaces make close contact, allowing for disassembly without damaging parts, facilitating later maintenance and simplifying operation. When the slide rail and the forming chamber 100 are interlocked, the interlocking is achieved through the deformation of the elastic buckle and the cooperation of the slot, resulting in high installation efficiency, tool-free operation, simple structure, and low manufacturing cost. When the slide rail is detachably bonded to the forming chamber 100 via adhesive, there is no stress concentration on the adhesive surface, and after connection, there are no exposed fasteners (such as threaded parts and buckles), resulting in a smooth and flat surface while reducing weight.
[0044] like Figure 2 As shown, this embodiment also provides a laser selective melting forming continuation method. Using the above-mentioned laser selective melting forming continuation equipment, the laser selective melting forming continuation method includes the following steps:
[0045] S1. Provide a defective workpiece 10, and after cutting off the defect, place the workpiece 10 into the forming chamber 100, with the top surface of the workpiece 10 flush with the top surface of the powder supported on the powder support platform 200.
[0046] S2, sintering positioning grid 1100;
[0047] S3. The central control system 500 controls the translation mechanism 700 to move, so that the laser scanning device 400 slides along the inner wall of the forming chamber 100. The laser scanning device 400 scans the positioning grid 1100 and the top surface contour of the workpiece 10 to obtain the actual contour data.
[0048] S4. The central control system 500 acquires the actual contour data, compares the actual contour data with the theoretical contour data of the theoretical model, determines the adjustment data, and modifies the theoretical model according to the adjustment data so that the theoretical contour and the actual contour coincide.
[0049] The laser selective melting forming continuation method provided in this embodiment uses the aforementioned laser selective melting forming continuation equipment. When acquiring actual contour data, the central control system 500 can flexibly control the translation mechanism 700, allowing the laser scanning device 400 to slide smoothly along the inner wall of the forming chamber 100. The laser scanning device 400 scans the positioning grid 1100 and the top surface contour of the workpiece 10 to obtain actual contour data. The laser scanning device 400 can quickly and accurately scan and position the positioning grid 1100 and the top surface contour of the workpiece 10, obtaining high-precision contour data. The central control system 500 compares the actual contour data with the theoretical contour data of the theoretical model, determines the adjustment data, and modifies the theoretical model according to the adjustment data, so that the theoretical contour and the actual contour coincide, which can effectively improve the continuation efficiency and continuation quality. The width of the continuation mark can be controlled to be below 0.3mm.
[0050] It should be noted that during the sintering of the positioning grid 1100, the scraper 1000 is required to spread the powder, which flattens the powder and exposes the top surface contour of the workpiece 10. Whether the workpiece 10 is removed and placed back into the forming chamber 100 for further joining, the position of the positioning grid 1100 in the forming chamber 100 and the theoretical model remains fixed. Using the positioning grid 1100 as the positioning reference, the laser scanning device 400 acquires and outputs the scanned image to the central control system 500 during sintering. The central control system 500 can directly measure the position of the current workpiece 10's solid feature joining surface relative to the positioning grid 1100, and then compare it with the position of the workpiece 10's feature joining surface relative to the positioning grid 1100 in the theoretical model. This allows for precise determination of the positional offset, moving the X and Y axes of the theoretical model to ensure that the theoretical and actual contours coincide with high accuracy. Among them, the theoretical contour data of the theoretical model refers to the model constructed by the central control system 500 based on the size parameters of the workpiece 10. The theoretical model also includes the theoretical positioning grid 1100.
[0051] Optionally, when sintering the positioning grid 1100, the laser power of the laser generator 300 is 140W-220W, and the scanning speed of the laser generator 300 is 1000mm / s-1500mm / s; the thickness of the powder layer is 60μm-100μm. By using low energy density sintering process parameters, it is ensured that the sintered lines can be clearly identified by the laser scanning device 400, preventing warping.
[0052] Optionally, in step S3, the laser power of the laser scanning device 400 when scanning the positioning grid 1100 and the top surface contour of the workpiece 10 is 13mW-17mW, the laser wavelength is 600nm-700nm, the point spacing is 0.005mm-0.015mm, and the scanning speed v < 500,000 points / second. If the laser power is too high, the highly reflective surface will be overexposed, leading to errors in the calculation of the sampling point position; if the laser power is too low, the number of photons reflected from the surface of the workpiece 10 and the surface of the positioning grid 1100 will be small, making them susceptible to interference from ambient light and reducing data accuracy. If the point spacing is too large, the point cloud density will be insufficient and unable to reflect the true contour; if the point spacing is too small, the sampling areas of adjacent points will overlap, generating redundant points and increasing data processing time. If the scanning speed is too fast, the scanning head of the laser scanning device 400 will not be able to accurately stop at the preset position due to inertia, causing the position of adjacent sampling points to shift; if the scanning speed is too slow, the scanning rate will be too low. For example, the laser power can be set to 15mW, the laser wavelength to 650nm, and the dot pitch to 0.01mm.
[0053] Optionally, in step S3, when the laser scanning device 400 scans the positioning grid 1100 and the top surface contour of the workpiece 10, the movement accuracy of the laser scanning device 400 is ±1μm to ensure the scanning accuracy of the laser scanning device 400.
[0054] Optionally, the distance between the bottom surface of the translation mechanism 700 and the top surface of the powder is 10cm-14cm, and the moving step size of the laser scanning device 400 is ≤0.05mm / step. This configuration ensures that the laser scanning device 400 acquires all contour data during the forming process of the workpiece 10 and ensures high scanning accuracy. For example, the distance between the bottom surface of the translation mechanism 700 and the top surface of the powder can be any value among 10cm, 12cm, 14cm, or 10cm-14cm.
[0055] In this embodiment, step S4 includes:
[0056] S41. The central control system 500 acquires the actual contour data, determines the actual size data of the workpiece 10, and compares the actual contour data with the theoretical contour data of the theoretical model (i.e., the theoretical size data of the workpiece 10) to determine the area scaling ratio. The central control system 500 then performs scaling processing on the theoretical contour data according to the area scaling ratio.
[0057] S42. Compare the actual contour data with the scaled theoretical contour data to determine the displacement data, and move the position of the theoretical model according to the displacement data so that the theoretical contour and the actual contour coincide.
[0058] By determining the area scaling ratio, the theoretical contour data is scaled to correct and calibrate the theoretical model, compensating for dimensional shrinkage caused by cooling after powder forming, and improving the positional accuracy of subsequent positioning. It is conceivable that in other embodiments, the actual contour data can first be compared with the theoretical contour data of the theoretical model to determine the displacement data. Based on the displacement data, the position of the theoretical model is moved so that the centers of the theoretical and actual contours coincide. Then, the actual contour data is compared with the theoretical contour data of the theoretical model (i.e., the theoretical dimensions of workpiece 10) to determine the area scaling ratio. Based on the area scaling ratio, the theoretical contour data is scaled to make the theoretical and actual contours coincide.
[0059] Preferably, if the overlap rate between the theoretical profile and the actual profile is low, steps S2-S4 need to be repeated.
[0060] Taking a workpiece 10 with an outline size of 600mm × 600mm and an original scaling ratio of 1.0025 as an example, the laser selective melting forming continuation method includes:
[0061] S1. Cut off the cracked part of the workpiece 10, reinstall it into the forming chamber 100, fill the forming chamber 100 with protective gas, and after the oxygen content reaches the control requirements, run the scraper 1000 to spread powder. The scraper 1000 scrapes the powder flat to expose the outline of the workpiece 10.
[0062] S2, sintering positioning grid 1100;
[0063] S3, the central control system 500 controls the translation mechanism 700 to move, and the laser scanning device 400 scans the positioning grid 1100 and the top surface contour of the workpiece 10 to obtain the actual contour data. The contour size of the scanned workpiece 10 is 599.45mm×599.78mm.
[0064] S4. The central control system 500 acquires the actual contour data, resets the scaling ratio to 1.001, compares the actual contour data with the scaled theoretical contour data, determines the displacement data, the X-axis offset is 1.3mm, the Y-axis offset is 1.0mm, and moves the position of the theoretical model so that the theoretical contour and the actual contour coincide.
[0065] To verify the actual splicing effect, after step S4, powder can be re-spread on the top surface of workpiece 10, and scraper 1000 can scrape the powder flat to expose the outline of workpiece 10. The positioning grid 1100 is sintered, and laser scanning equipment 400 scans the positioning grid 1100 and the top surface outline of workpiece 10 to obtain the actual outline data. The outline size of workpiece 10 is 600.05mm × 600.38mm. Then, the displacement data is determined, with X-axis offset of 0.25mm and Y-axis offset of 0.25mm. The width of the actual splicing mark is measured to be 0.25mm, which further improves the splicing accuracy.
[0066] Taking a workpiece 10 with an outline size of 350mm × 350mm and an original scaling ratio of 1.0033 as an example, the laser selective melting forming continuation method includes:
[0067] S1. Open the chamber, grind the warped area of the workpiece 10 flat, close the chamber, fill the forming chamber 100 with protective gas, and after the oxygen content reaches the control requirements, run the scraper 1000 to spread powder. The scraper 1000 scrapes the powder flat, revealing the outline of the workpiece 10.
[0068] S2, sintering positioning grid 1100;
[0069] S3, the central control system 500 controls the translation mechanism 700 to move, and the laser scanning device 400 scans the positioning grid 1100 and the top surface contour of the workpiece 10 to obtain the actual contour data. The contour size of the scanned workpiece 10 is 349.23mm×349.36mm.
[0070] S4. The central control system 500 acquires the actual contour data, resets the scaling ratio to 1.0025, compares the actual contour data with the scaled theoretical contour data, determines the displacement data, the X-axis offset is 0.9mm, the Y-axis offset is 1.2mm, and moves the position of the theoretical model so that the theoretical contour and the actual contour coincide.
[0071] To verify the actual splicing effect, after step S4, powder can be re-spread on the top surface of workpiece 10, and scraper 1000 can scrape the powder flat to expose the outline of workpiece 10. The positioning grid 1100 is sintered, and laser scanning equipment 400 scans the positioning grid 1100 and the top surface outline of workpiece 10 to obtain the actual outline data. The outline size of workpiece 10 is 350.1mm × 350.23mm. Then, the displacement data is determined, the X-axis offset is 0.13mm, the Y-axis offset is 0.13mm, and the width of the actual splicing mark is measured to be 0.13mm, which further improves the splicing accuracy.
[0072] Obviously, the above embodiments of this utility model are merely examples for clearly illustrating the present utility model, and are not intended to limit the implementation of the present utility model. Those skilled in the art can make various obvious changes, readjustments, and substitutions without departing from the protection scope of this utility model. It is neither necessary nor possible to exhaustively describe all embodiments here. Any modifications, equivalent substitutions, and improvements made within the spirit and principles of this utility model should be included within the protection scope of the claims of this utility model.
Claims
1. A laser selective melting forming and splicing device, characterized in that, include: Forming chamber (100); A powder support platform (200) is disposed inside the forming chamber (100), and the powder support platform (200) is used to support the powder to be sintered; A laser generator (300) is disposed above the forming chamber (100). The laser generator (300) is used to emit a laser beam, which is used to sinter the powder. A laser scanning device (400) is slidably disposed on the inner wall of the forming chamber (100) via a translation mechanism (700). The laser scanning device (400) is used to scan the sintered layer and the workpiece (10) and obtain the actual contour data of the sintered layer and the workpiece (10). The central control system (500), the laser scanning device (400), and the translation mechanism (700) are all electrically connected to the central control system (500).
2. The laser selective melting forming and splicing equipment according to claim 1, characterized in that, The laser selective melting forming continuation equipment also includes a dust removal structure, which includes a blowing component and a suction component. The blowing component is disposed on one outer side wall of the forming chamber (100), and the suction component is disposed on the other outer side wall of the forming chamber (100). The blowing component and the suction component are disposed opposite to each other and are both connected to the forming chamber (100).
3. The laser selective melting forming and splicing equipment according to claim 2, characterized in that, The blowing assembly includes an interconnected blowing pipe (611) and a blower. The blowing pipe (611) includes a main blowing pipe (6112) and two branch blowing pipes (6111). The forming chamber (100) has two blowing ports (110), one of which is located near the top of the forming chamber (100) and the other is located near the bottom of the forming chamber (100). One end of each of the two branch blowing pipes (6111) is connected to the main blowing pipe (6112), and the other end of each branch blowing pipe (6111) is connected to the two blowing ports (110).
4. The laser selective melting forming and splicing equipment according to claim 3, characterized in that, The suction assembly includes a suction pipe (621) and a suction device that are interconnected. A filter element is installed inside the suction device. The end of the suction pipe (621) away from the suction device is connected to the suction port (120) of the forming chamber (100). The suction port (120) is located near the bottom end of the forming chamber (100).
5. The laser selective melting forming and splicing equipment according to claim 4, characterized in that, Both the air outlet (110) and the air inlet (120) are configured as a mesh.
6. The laser selective melting forming and splicing equipment according to claim 1, characterized in that, The translation mechanism (700) includes a drive component installed in the forming chamber (100), a slide rail disposed in the forming chamber (100), and a slide groove disposed in the laser scanning device (400). The laser scanning device (400) is connected to the output end of the drive component, and the drive component is electrically connected to the central control system (500).
7. The laser selective melting forming and splicing equipment according to claim 6, characterized in that, The slide rail is detachably installed in the forming chamber (100).
8. The laser selective melting forming and splicing equipment according to claim 7, characterized in that, The slide rail is connected to the forming chamber (100) via a threaded component, or the slide rail and the forming chamber (100) are interlocked, or the slide rail is detachably bonded to the forming chamber (100) via an adhesive component.
9. The laser selective melting forming and splicing equipment according to claim 1, characterized in that, The laser selective melting forming continuation equipment also includes a scraper (1000), which is slidably installed in the forming chamber (100) and is used to spread the powder.
10. The laser selective melting forming and splicing equipment according to claim 1, characterized in that, The laser selective melting forming continuation equipment also includes a scanning galvanometer (800) and a flat mirror (900). The scanning galvanometer (800) is disposed on the top of the forming chamber (100), and the flat mirror (900) is disposed between the scanning galvanometer (800) and the laser generator (300). The laser beam emitted by the laser generator (300) passes through the scanning galvanometer (800) and the flat mirror (900) in sequence before entering the forming chamber (100) to sinter the powder.