Traditional Chinese medicine slow-release titanium alloy imitation bone preparation equipment
By introducing lifting and separating discharge mechanism, internal circulation cleaning mechanism and top auxiliary lighting mechanism into the titanium alloy bone imitation preparation equipment, the problem of difficult to quickly separate titanium alloy bone imitation is solved, and the convenience of the equipment and cleaning efficiency are improved.
Patent Information
- Application Number
- CN202422310262.X
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-09-23
- Publication Date
- 2025-08-01
- Estimated Expiration
- 2034-09-23
AI Technical Summary
The existing titanium alloy imitation bone preparation equipment lacks an auxiliary separation structure, which leads to the inability to quickly separate from the metal powder after the production of titanium alloy imitation bone, reducing the convenience of the equipment.
A Chinese medicine-sustained-release titanium alloy bone-imitation preparation equipment including a lift separation discharge mechanism, an internal circulation cleaning mechanism and a top auxiliary lighting mechanism is designed. The rapid separation of titanium alloy bone-imitation is achieved through a lift separation grid and a vibration motor, and the rapid cleaning of dust is achieved in combination with an internal circulation cleaning mechanism, and the observation clarity is improved through the lighting lamp.
It improves the convenience of using and cleaning of titanium alloy imitation bone preparation equipment, and enhances the functional expansion and use effect of the equipment.
Smart Images

Figure CN223171926U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of titanium alloy bone imitation preparation, in particular to a titanium alloy bone imitation preparation device with slow release of traditional Chinese medicine. Background Technique
[0002] 3D printing, also known as additive manufacturing technology, has become a relatively mature technology after decades of development and plays an increasingly important role in modern manufacturing. Among them, the additive manufacturing technology of metal materials has also been widely valued and developed in China in the past decade. This technology forms structural parts by melting and depositing metal materials layer by layer in the form of spherical powders or wires through high-energy jets. Corresponding printing equipment is required in the process of producing titanium alloy bone imitations;
[0003] However, at present, due to the lack of corresponding auxiliary separation structures during the use of titanium alloy bone imitation preparation equipment, the titanium alloy bone imitations cannot be quickly separated from the metal powder after production, reducing the convenience of use of the titanium alloy bone imitation preparation equipment. Content of the Utility Model
[0004] The utility model provides a titanium alloy bone imitation preparation device with slow release of traditional Chinese medicine, which can effectively solve the problem that the titanium alloy bone imitation preparation device lacks corresponding auxiliary separation structures during use, resulting in the inability to quickly separate the titanium alloy bone imitations from the metal powder after production and reducing the convenience of use of the titanium alloy bone imitation preparation device as mentioned in the above background technique.
[0005] To achieve the above object, the utility model provides the following technical solution: A titanium alloy bone imitation preparation device with slow release of traditional Chinese medicine, including a 3D printer main body, a driving installation frame is fixedly installed on the top of the 3D printer main body, and a laser printing head is movably installed inside the driving installation frame;
[0006] A lifting separation and discharging mechanism is arranged inside the 3D printer main body;
[0007] The lifting separation and discharging mechanism includes an installation inner plate, installation angle holes, lifting driving rods, installation rubber blocks, a lifting separation net and a vibration motor;
[0008] The installation inner plate is fixedly installed in the middle of the inner side of the 3D printer main body, installation angle holes are respectively opened through the four corners of the top surface of the installation inner plate, the lifting driving rods are fixedly connected to the positions corresponding to the inside of the installation angle holes at the bottom of the inner side of the 3D printer main body, the installation rubber blocks are fixedly bonded to the tops of the lifting driving rods, the lifting separation net is fixedly connected to the tops of the plurality of installation rubber blocks, and the vibration motor is fixedly installed in the middle of both ends of the top surface of the lifting separation net.
[0009] Preferably, a plurality of bumps are provided on the top of the installation inner plate, and the holes between the bumps on the top of the installation inner plate and the lifting and separating net correspond and fit with each other. After the lifting and separating net is buckled with the installation inner plate, the top surface of the lifting and separating net is flush with the top surface of the installation inner plate.
[0010] Preferably, an internal circulation cleaning mechanism is provided at the bottom inside the 3D printer main body;
[0011] The internal circulation cleaning mechanism includes an installation inner box, a collection sliding box, an intercepting inclined net, a collection fan, a blowing pipe, a blowing front box, a collection pipe, a collection end box, and an isolation sliding plate;
[0012] An installation inner box is fixedly installed at the bottom inside the 3D printer main body. A collection sliding box is slidably installed at one end inside the installation inner box. An intercepting inclined net is installed corresponding to the top of the collection sliding box inside the installation inner box. A collection fan is fixedly connected to the middle of the top end of one side of the installation inner box through a pipe. The collection fan is powered by an external power supply. A blowing pipe is fixedly connected to the middle of the top end of the collection fan. A blowing front box is fixedly connected to the end of the blowing pipe corresponding to the top of the installation inner plate. Collection pipes are fixedly connected to the top ends of both ends of the back of the installation inner box. A collection end box is fixedly connected to the end of the collection pipe corresponding to the top of the installation inner plate. Isolation sliding plates are fixedly connected to both sides of the lifting and separating net corresponding to the side positions of the blowing front box and the collection end box.
[0013] Preferably, the outer side of the collection sliding box is in close sliding fit with the inner wall of the installation inner box, and the side of the isolation sliding plate is in close sliding fit with the inner wall of the 3D printer main body.
[0014] Preferably, a top auxiliary lighting mechanism is provided at the bottom of the drive mounting frame;
[0015] The top auxiliary lighting mechanism includes an installation end box, a guiding chute, an installation slider, an adjusting bolt, and a lighting lamp;
[0016] Installation end boxes are fixedly connected to both ends of the bottom surface of the drive mounting frame. A guiding chute is formed through the middle of one side of the installation end box. Installation sliders are slidably installed equidistantly and uniformly inside the installation end box. An adjusting bolt is installed through the thread at the middle of one side of the installation slider corresponding to the inside of the guiding chute. A lighting lamp is installed obliquely at the bottom end of the installation slider. The lighting lamp is powered by an external power supply.
[0017] Preferably, the outer side of the installation slider is in close fit with the inner wall of the installation end box, and the end of the adjusting bolt is in close fit with the outer side of the installation end box.
[0018] Compared with the prior art, the beneficial effects of the present utility model are as follows: The structure of the present utility model is scientific and reasonable, and it is safe and convenient to use:
[0019] 1. A lifting and separating discharging mechanism is provided. By the elongation of the installation angle holes, the lifting and separating mesh is driven to move up and down along the top of the installation inner plate. Then, during the upward movement of the lifting and separating mesh, the completely printed titanium alloy bone-like objects and part of the metal dust are synchronously driven to rise. Then, the vibration motor is started to drive the lifting and separating mesh to vibrate at high frequency along the top of the installation rubber block, so that the titanium alloy bone-like objects can be quickly separated from the metal powder, effectively improving the convenience of using the 3D printer.
[0020] 2. An internal circulation cleaning mechanism is provided. The collecting fan generates continuous air flow inside the blowing tube, and through the blowing front box, the high-speed air flow inside the blowing tube is blown towards the top of the installation inner plate. The dust on the top of the installation inner plate is gradually separated and lifted by the high-speed air flow. At the same time, the collecting fan generates negative pressure inside the installation inner box, and the lifted metal dust is collected through the collecting pipe and the collecting end box, and then transported to the inside of the installation inner box through the collecting pipe. The dust is intercepted by the intercepting inclined mesh and collected by the collecting sliding box, thus realizing the rapid cleaning and collection of the metal dust inside the 3D printer main body, effectively improving the convenience of cleaning the inside of the 3D printer.
[0021] 3. A top auxiliary lighting mechanism is provided. The installation slider is installed at the bottom of the driving installation frame through the installation end box and the guiding sliding groove. Then, the horizontal position of the installation slider is adjusted through the adjusting bolt and the guiding sliding groove to adjust the horizontal position of the lighting lamp, and the inside of the 3D printer main body is illuminated by the lighting lamp, making the workpieces on the lifting and separating mesh look clearer, effectively expanding the functions of the 3D printer and improving the use effect of the 3D printer. BRIEF DESCRIPTION OF THE DRAWINGS
[0022] The drawings are used to provide further understanding of the present invention and constitute a part of the specification. They are used together with the embodiments of the present invention to explain the present invention and do not constitute a limitation to the present invention.
[0023] In the drawings:
[0024] Figure 1 is the structural schematic diagram of the present invention;
[0025] Figure 2 is the structural schematic diagram of the lifting and separating discharging mechanism of the present invention;
[0026] Figure 3 is the structural schematic diagram of the internal circulation cleaning mechanism of the present invention;
[0027] Figure 4 is the structural schematic diagram of the top auxiliary lighting mechanism of the present invention;
[0028] Reference numerals in the figure: 1. 3D printer main body; 2. Driving installation frame; 3. Laser printing head;
[0029] 4. Lifting and separating discharging mechanism; 401. Installation inner plate; 402. Installation angle hole; 403. Lifting driving rod; 404. Installation rubber block; 405. Lifting and separating net; 406. Vibration motor;
[0030] 5. Internal circulation cleaning mechanism; 501. Installation inner box; 502. Collection sliding box; 503. Intercepting inclined net; 504. Collection fan; 505. Blowing pipe; 506. Blowing front box; 507. Collection pipe; 508. Collection end box; 509. Isolation slide plate;
[0031] 6. Top auxiliary lighting mechanism; 601. Installation end box; 602. Guide chute; 603. Installation slider; 604. Adjusting bolt; 605. Lighting lamp. Specific implementation mode
[0032] The preferred embodiments of the present invention will be described below with reference to the accompanying drawings. It should be understood that the preferred embodiments described herein are only used to illustrate and explain the present invention, and are not used to limit the present invention.
[0033] Embodiment: As Figures 1-4 shown, the present invention provides a technical solution, a titanium alloy bone-like preparation device for slow release of traditional Chinese medicine, including a 3D printer main body 1, a driving installation frame 2 is fixedly installed on the top of the 3D printer main body 1, and a laser printing head 3 is movably installed inside the driving installation frame 2;
[0034] An internal lifting and separating discharging mechanism 4 is arranged inside the 3D printer main body 1;
[0035] The lifting and separating discharging mechanism 4 includes an installation inner plate 401, an installation angle hole 402, a lifting driving rod 403, an installation rubber block 404, a lifting and separating net 405 and a vibration motor 406;
[0036] In the middle of the inner side of the 3D printer main body 1, an installation inner plate 401 is fixedly installed. Installation angle holes 402 are penetrated and opened at the four corners of the top surface of the installation inner plate 401. At the positions corresponding to the inside of the installation angle holes 402 at the bottom of the inner side of the 3D printer main body 1, lifting drive rods 403 are fixedly connected. Installation glue blocks 404 are fixedly bonded to the top ends of the lifting drive rods 403. A lifting separation net 405 is fixedly connected to the top ends of multiple installation glue blocks 404. Vibration motors 406 are fixedly installed in the middle of the two ends of the top surface of the lifting separation net 405. A plurality of convex blocks are arranged on the top of the installation inner plate 401, and the holes between the convex blocks on the top of the installation inner plate 401 and the lifting separation net 405 correspond and fit with each other. After the lifting separation net 405 and the installation inner plate 401 are buckled, the top surface of the lifting separation net 405 is flush with the top surface of the installation inner plate 401. The lifting separation net 405 is driven to lift along the top of the installation inner plate 401 by the elongation of the installation angle holes 402. Then, during the rising process of the lifting separation net 405, the printed complete titanium alloy bone imitation and part of the metal dust are driven to rise synchronously. Then, the vibration motors 406 are started to drive the lifting separation net 405 to perform high-frequency vibration along the top of the installation glue blocks 404. Thus, the titanium alloy bone imitation can be quickly separated from the metal powder, and the use convenience of the 3D printer is effectively improved;
[0037] An internal circulation cleaning mechanism 5 is arranged at the bottom of the inner side of the 3D printer main body 1;
[0038] The internal circulation cleaning mechanism 5 includes an installation inner box 501, a collection sliding box 502, an intercepting inclined net 503, a collection fan 504, a blowing pipe 505, a blowing front box 506, a collection pipe 507, a collection end box 508 and an isolation slide plate 509;
[0039] Inside the bottom of the main body 1 of the 3D printer, an installation inner box 501 is fixedly installed. Inside one end of the installation inner box 501, a collection sliding box 502 is slidably installed. At the top of the collection sliding box 502 inside the installation inner box 501, an intercepting inclined net 503 is installed. In the middle of the top end of one side of the installation inner box 501, a collection fan 504 is fixedly connected through a pipeline. The collection fan 504 is powered by an external power supply. In the middle of the top end of the collection fan 504, a blowing pipe 505 is fixedly connected. At the position corresponding to the top of the installation inner plate 401 at the end of the blowing pipe 505, a blowing front box 506 is fixedly connected. At the top of both ends of the back of the installation inner box 501, a collection pipe 507 is fixedly connected. At the position corresponding to the top of the installation inner plate 401 at the end of the collection pipe 507, a collection end box 508 is fixedly connected. On both sides of the lifting separation net 405, at the positions corresponding to the sides of the blowing front box 506 and the collection end box 508, isolation sliding plates 509 are fixedly connected. The outer side of the collection sliding box 502 is in close sliding fit with the inner wall of the installation inner box 501, and the side of the isolation sliding plate 509 is in close sliding fit with the inner wall of the main body 1 of the 3D printer. By the collection fan 504 generating a continuous air flow inside the blowing pipe 505, and blowing the high-speed air flow inside the blowing pipe 505 towards the top of the installation inner plate 401 through the blowing front box 506, the dust on the top of the installation inner plate 401 is gradually separated and lifted by the high-speed air flow, and at the same time, a negative pressure is generated inside the installation inner box 501 by the collection fan 504, and the lifted metal dust is collected through the collection pipe 507 and the collection end box 508, and then transported to the inside of the installation inner box 501 through the collection pipe 507. The dust is intercepted by the intercepting inclined net 503, and the dust is collected by the collection sliding box 502, thus realizing the rapid cleaning and collection of the metal dust inside the main body 1 of the 3D printer, and effectively improving the convenience of cleaning inside the 3D printer;
[0040] At the bottom of the driving installation frame 2, a top auxiliary lighting mechanism 6 is provided;
[0041] The top auxiliary lighting mechanism 6 includes an installation end box 601, a guiding sliding groove 602, an installation slider 603, an adjusting bolt 604 and a lighting lamp 605;
[0042] Both ends of the bottom surface of the driving mounting bracket 2 are fixedly connected with mounting end boxes 601. A guiding sliding groove 602 is formed through the middle of one side of the mounting end box 601. Mounting sliders 603 are slidably mounted inside the mounting end box 601 at equal intervals and evenly. A regulating bolt 604 is installed at the middle of one side of the mounting slider 603 corresponding to the position inside the guiding sliding groove 602 by means of threads. A lighting lamp 605 is obliquely installed at the bottom end of the mounting slider 603. The lighting lamp 605 is powered by an external power supply. The outer side of the mounting slider 603 is in close fit with the inner wall of the mounting end box 601, and the end of the regulating bolt 604 is in close fit with the outer side of the mounting end box 601. The mounting slider 603 is installed at the bottom of the driving mounting bracket 2 through the cooperation of the mounting end box 601 and the guiding sliding groove 602. Then, the horizontal position of the mounting slider 603 is adjusted through the cooperation of the regulating bolt 604 and the guiding sliding groove 602, so as to adjust the horizontal position of the lighting lamp 605, and the interior of the 3D printer main body 1 is illuminated by the lighting lamp 605, making the workpiece on the lifting and separating net 405 look clearer, thereby effectively expanding the functions of the 3D printer and improving the use effect of the 3D printer.
[0043] The working principle and usage process of the present utility model: During the process of preparing the titanium alloy bone imitation by using the titanium alloy bone imitation preparation device of the present utility model, it is necessary to drive the laser printing head 3 by the driving mounting bracket 2 to layer-print the dust inside the 3D printer main body 1. After the titanium alloy bone imitation on the top of the mounting inner plate 401 is printed, the lifting and separating net 405 is driven to lift along the top of the mounting inner plate 401 by the elongation of the mounting angle hole 402. Then, during the rising process of the lifting and separating net 405, the printed complete titanium alloy bone imitation and part of the metal dust are driven to rise synchronously.
[0044] Then, the vibration motor 406 is started to drive the lifting and separating net 405 to perform high-frequency vibration along the top of the mounting rubber block 404, so that the titanium alloy bone imitation can be quickly separated from the metal powder, thereby effectively improving the usage convenience of the 3D printer.
[0045] When it is necessary to recover the residual metal powder on the top of the mounting inner plate 401, a continuous air flow is generated inside the blowing tube 505 by the collecting fan 504, and the high-speed air flow inside the blowing tube 505 is blown towards the top of the mounting inner plate 401 through the blowing front box 506. The dust on the top of the mounting inner plate 401 is gradually separated and lifted by the high-speed air flow. At the same time, a negative pressure is generated inside the mounting inner box 501 by the collecting fan 504, and the lifted metal dust is collected through the collecting tube 507 and the collecting end box 508, and then transported to the inside of the mounting inner box 501 through the collecting tube 507. The dust is intercepted by the intercepting inclined net 503 and collected by the collecting sliding box 502, thereby realizing the rapid cleaning and collection of the metal dust inside the 3D printer main body 1, and effectively improving the convenience of cleaning inside the 3D printer.
[0046] During the process of picking up the parts, it is necessary to observe and inspect the titanium alloy bone imitation. The installation slider 603 is installed at the bottom of the driving installation frame 2 through the cooperation of the installation end box 601 and the guiding sliding groove 602. Then, the horizontal position of the installation slider 603 is adjusted through the cooperation of the adjusting bolt 604 and the guiding sliding groove 602, so as to adjust the horizontal position of the illuminating lamp 605, and the interior of the 3D printer main body 1 is illuminated by the illuminating lamp 605, making the workpiece on the lifting and separating net 405 look clearer. Furthermore, the function of the 3D printer is effectively expanded, and the use effect of the 3D printer is improved.
[0047] Finally, it should be noted that the above are only the preferred examples of the present utility model and are not used to limit the present utility model. Although the present utility model has been described in detail with reference to the foregoing embodiments, for those skilled in the art, they can still modify the technical solutions recorded in the foregoing embodiments, or perform equivalent replacements for some of the technical features. Any modification, equivalent replacement, improvement, etc. made within the spirit and principle of the present utility model shall be included within the protection scope of the present utility model.
Claims
1. A titanium alloy bone - like preparation device for sustained release of traditional Chinese medicine, comprising a 3D printer main body (1), characterized in that: A driving mounting frame (2) is fixedly installed on the top of the 3D printer main body (1), and a laser printing head (3) is movably installed inside the driving mounting frame (2); A lifting and separating discharging mechanism (4) is arranged inside the 3D printer main body (1); The lifting and separating discharging mechanism (4) includes an installation inner plate (401), installation corner holes (402), lifting driving rods (403), installation rubber blocks (404), a lifting and separating net (405) and a vibration motor (406); An installation inner plate (401) is fixedly installed in the middle of the inner side of the 3D printer main body (1). Installation corner holes (402) are respectively formed through the four corners of the top surface of the installation inner plate (401). Lifting driving rods (403) are fixedly connected to the inner bottom of the 3D printer main body (1) corresponding to the positions inside the installation corner holes (402). The top ends of the lifting driving rods (403) are fixedly adhered with installation rubber blocks (404). The top ends of the plurality of installation rubber blocks (404) are fixedly connected with a lifting and separating net (405). Vibration motors (406) are fixedly installed in the middle of the two ends of the top surface of the lifting and separating net (405).
2. The titanium alloy bone-mimicking preparation device for traditional Chinese medicine sustained release according to claim 1, wherein, A plurality of convex blocks are arranged on the top of the installation inner plate (401), and the holes between the convex blocks on the top of the installation inner plate (401) and the lifting and separating net (405) correspond and fit with each other. After the lifting and separating net (405) is buckled with the installation inner plate (401), the top surface of the lifting and separating net (405) is flush with the top surface of the installation inner plate (401).
3. A titanium alloy bone-mimicking preparation device for slow release of traditional Chinese medicine according to claim 1, characterized in that, An internal circulation cleaning mechanism (5) is arranged at the inner bottom of the 3D printer main body (1); The internal circulation cleaning mechanism (5) includes an installation inner box (501), a collection sliding box (502), an intercepting inclined net (503), a collection fan (504), a blowing pipe (505), a blowing front box (506), a collection pipe (507), a collection end box (508) and an isolation sliding plate (509); An installation inner box (501) is fixedly installed at the inner bottom of the 3D printer main body (1). A collection sliding box (502) is slidably installed at one end inside the installation inner box (501). An intercepting inclined net (503) is installed at the inner side of the installation inner box (501) corresponding to the top of the collection sliding box (502). A collection fan (504) is fixedly connected to the middle of the top end of the installation inner box (501) through a pipeline. The collection fan (504) is powered by an external power supply. A blowing pipe (505) is fixedly connected to the middle of the top end of the collection fan (504). The end of the blowing pipe (505) is fixedly connected to a blowing front box (506) corresponding to the top of the installation inner plate (401). Collection pipes (507) are fixedly connected to the top of the two ends of the back surface of the installation inner box (501). The ends of the collection pipes (507) are fixedly connected to a collection end box (508) corresponding to the top of the installation inner plate (401). Isolation sliding plates (509) are fixedly connected to the two sides of the lifting and separating net (405) corresponding to the side positions of the blowing front box (506) and the collection end box (508).
4. A titanium alloy bone-mimicking preparation device for sustained release of traditional Chinese medicine according to claim 3, characterized in that, The outer side of the collection sliding box (502) is closely and slidably fitted with the inner wall of the installation inner box (501), and the side surface of the isolation sliding plate (509) is closely and slidably fitted with the inner wall of the 3D printer main body (1).
5. A titanium alloy bone-mimicking preparation device for sustained release of traditional Chinese medicine according to claim 1, characterized in that, A top auxiliary lighting mechanism (6) is provided at the bottom of the driving mounting frame (2); The top auxiliary lighting mechanism (6) includes a mounting end box (601), a guiding chute (602), a mounting slider (603), an adjusting bolt (604) and a lighting lamp (605); Both ends of the bottom surface of the driving mounting frame (2) are fixedly connected with mounting end boxes (601). A guiding chute (602) is penetrated and opened in the middle of one side of the mounting end box (601). Mounting sliders (603) are equidistantly and uniformly slidably mounted inside the mounting end box (601). An adjusting bolt (604) is installed by threading at the middle position corresponding to the inside of the guiding chute (602) on one side of the mounting slider (603). A lighting lamp (605) is obliquely installed at the bottom end of the mounting slider (603), and the lighting lamp (605) is powered by an external power source.
6. The preparation device of titanium alloy bone imitation for traditional Chinese medicine sustained release according to claim 5, characterized in that, The outer side of the mounting slider (603) is closely fitted with the inner wall of the mounting end box (601), and the end of the adjusting bolt (604) is closely fitted with the outer side of the mounting end box (601).