Implant inner hole cleaning and drying device adopting ultrasonic vibration
The implant internal pore cleaning and drying device using ultrasonic vibration solves the problem of implants not being securely fixed during ultrasonic cleaning by utilizing fixing and drying components. It achieves uniform cleaning and all-round drying of implant internal pores, improves cleaning quality and production efficiency, and meets diverse implant fixation needs.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-01-08
- Publication Date
- 2026-03-13
AI Technical Summary
Existing implant cleaning and drying devices cannot ensure that implants are firmly fixed during ultrasonic cleaning, leading to displacement or detachment, which affects cleaning effect and production efficiency, and cannot meet the requirements of high-precision cleaning.
An ultrasonic vibration-based implant internal pore cleaning and drying device uses a fixing component to firmly fix the implant on the fixing base, and a drying component to dry the implant, ensuring that the implant maintains a stable position and posture throughout the cleaning process, and adapting to implants of different sizes and shapes.
It achieves uniform and thorough cleaning of the implant's internal pores, avoiding incomplete cleaning caused by poor fixation, improving cleaning quality and production efficiency, ensuring the stability and safety of the implant, and adapting to diverse implant fixation needs.
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Figure CN223988831U_ABST
Abstract
Description
Technical Field
[0001] This utility model belongs to the field of implant cleaning technology, specifically relating to an implant internal pore cleaning and drying device using ultrasonic vibration. Background Technology
[0002] In the field of modern dental implant restoration, the quality and cleanliness of implants are directly related to the success rate of implant surgery and the postoperative recovery effect of patients. If the inner hole of the implant is not clean during dental implant surgery, it may affect the quality of implant-bone integration and thus affect the implantation effect. With the widespread application of implant technology, higher and higher requirements are put forward for the processing technology and cleaning standards of implants.
[0003] Existing implant cleaning and drying equipment often fails to meet the high-precision cleaning requirements. Because ultrasonic waves generate strong vibrations, if the implant is not firmly fixed, it will shift or even fall off during the cleaning process. This not only prevents the cleaning process from fully and evenly acting on all parts of the implant's internal pores, resulting in some areas not being thoroughly cleaned and leaving behind dirt, bacteria, and other contaminants, but may also damage the implant's surface structure due to shaking and collision, causing economic losses. It will also affect the normal operation of the entire cleaning production line and reduce production efficiency.
[0004] To address the aforementioned issues, this application proposes an implant internal pore cleaning and drying device employing ultrasonic vibration. Utility Model Content
[0005] To address the problems mentioned in the background section, this invention provides an implant internal pore cleaning and drying device using ultrasonic vibration. This device avoids implant displacement or even detachment during ultrasonic cleaning, ensuring the implant remains precisely fixed throughout the cleaning process. This guarantees uniform and thorough cleaning of all parts of the internal pore.
[0006] To achieve the above objectives, this utility model provides the following technical solution: a device for cleaning and drying the internal pores of an implant using ultrasonic vibration, comprising a conveyor frame and an ultrasonic cleaner disposed on one side of the conveyor frame, characterized in that: it further comprises a fixing component disposed above the conveyor frame, the fixing component comprising a support frame disposed above the conveyor frame and a fixing plate disposed below the support frame, and a fixing seat, locking cylinder, locking block and spring for firmly fixing the implant;
[0007] It also includes a drying assembly installed inside the conveyor frame, the drying assembly including a first conveyor belt disposed inside the conveyor frame and a second conveyor belt disposed parallel to the first conveyor belt, as well as a baffle plate and a dryer for drying the various surfaces of the implant.
[0008] As a preferred embodiment of the ultrasonic vibration-based implant internal hole cleaning and drying device of this utility model, the lower surface of the fixing plate is fixed with several sets of fixing seats arranged in a rectangular array, the inside of the fixing seat is fixed with a locking cylinder having a hollow structure, the inside of the locking cylinder is slidably connected with a locking block, one end of the locking block has a semi-circular structure, and a spring is fixed between the locking block and the locking cylinder.
[0009] As a preferred embodiment of the ultrasonic vibration-based implant internal hole cleaning and drying device of this utility model, the surface of the support frame is screwed with a push-pull cylinder, the output end of the push-pull cylinder is fixed with a push-pull plate, the surface of the support frame is fixed with a push-pull slide rail, and the push-pull plate is slidably connected to the surface of the push-pull slide rail. The lower surface of the push-pull plate is screwed with two sets of lifting cylinders, and the fixing plate is fixed between the output ends of the two sets of lifting cylinders.
[0010] As a preferred embodiment of the ultrasonic vibration-based implant internal hole cleaning and drying device of this utility model, the inside of the fixed base is slidably connected to the extrusion plate through an opening relief groove, the locking cylinder is disposed on both sides of the extrusion plate, the inside of the fixed base is fixed with an electromagnet, and the surface of the extrusion plate is fixed with an armature on the side close to the electromagnet, and the end of the armature is directly facing the surface of the electromagnet.
[0011] As a preferred embodiment of the ultrasonic vibration-based implant internal hole cleaning and drying device of this utility model, springs are fixed at the four corners between the extrusion plate and the fixed base, and extrusion push plates with an arc-shaped structure are symmetrically fixed on both sides of the extrusion plate, with the extrusion push plates facing the locking block.
[0012] As a preferred embodiment of the ultrasonic vibration-based implant internal hole cleaning and drying device of this utility model, a dryer is fixed to the surface of the conveyor frame, and the support frame is fixed to the surface of the dryer. An inclined blocking plate is provided between the first conveyor belt and the second conveyor belt, and the discharge end of the obstructing plate faces the surface of the second conveyor belt.
[0013] As a preferred embodiment of the ultrasonic vibration-based implant internal hole cleaning and drying device of this utility model, each of the left and right ends of the first conveyor belt and the second conveyor belt is tightly connected to a drive roller shaft. The drive roller shaft is rotatably connected inside the conveyor frame. A drive motor is screwed to one side of the surface of the conveyor frame near the two sets of drive roller shafts, and the output end of the drive motor is fixedly connected to one end of the drive roller shaft.
[0014] Compared with the prior art, the beneficial effects of this utility model are:
[0015] 1. The fixed components securely fix the implant to the mounting base for subsequent ultrasonic cleaning, preventing displacement or even dislodgement during ultrasonic cleaning. This effectively resists interference from ultrasonic vibrations, ensuring the implant remains precisely fixed throughout the cleaning process. This stable position and posture guarantee uniform and thorough cleaning of all parts of the internal cavity, significantly improving cleaning quality and reducing potential implant-related problems caused by incomplete cleaning. It provides a more reliable instrument for subsequent implantation surgery and can accommodate implants of different sizes and shapes, meeting diverse implant fixation needs and enhancing the device's versatility and practicality.
[0016] 2. The drying components can dry the implants, removing residual moisture after cleaning. With the help of the obstructing inclined plates, the implants are flipped and transferred between conveyor belts one and two. The hot air generated by the dryer dries all surfaces of the implants, ensuring that the implants are dried in all directions. This effectively avoids problems such as rusting, corrosion, or bacterial growth caused by residual moisture, improving the quality and safety of the implants and ensuring their reliability and stability in subsequent medical procedures. The dried implants are finally output from the end of conveyor belt two, completing the entire cleaning and drying process. Attached Figure Description
[0017] The accompanying drawings are provided to further illustrate the present invention and form part of the specification. They are used together with the embodiments of the present invention to explain the present invention, but do not constitute a limitation thereof. In the drawings:
[0018] Figure 1 This is a schematic diagram of the overall structure of the present invention. Figure 1 ;
[0019] Figure 2 This is a schematic diagram of the overall structure of the present invention. Figure 2 ;
[0020] Figure 3 This is a cross-sectional view of the fixing plate and fixing base in this utility model;
[0021] Figure 4 This is a cross-sectional view of the fixing base in this utility model;
[0022] Figure 5 This is a cross-sectional view of the conveyor frame and conveyor belt in this utility model.
[0023] In the diagram: 1. Conveyor frame; 2. Ultrasonic cleaner; 3. Fixing assembly; 31. Support frame; 32. Push-pull cylinder; 33. Push-pull plate; 34. Push-pull slide rail; 35. Lifting cylinder; 36. Fixing plate; 37. Fixing seat; 38. Extrusion plate; 39. Locking cylinder; 310. Locking block; 311. Spring 1; 312. Armature; 313. Electromagnet; 314. Spring 2; 315. Extrusion plate; 4. Drying assembly; 41. Conveyor belt 1; 42. Conveyor belt 2; 43. Drive roller; 44. Drive motor; 45. Blocking inclined plate; 46. Dryer. Detailed Implementation
[0024] The technical solutions of the present utility model 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 utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.
[0025] like Figure 1 As shown:
[0026] An implant internal pore cleaning and drying device using ultrasonic vibration includes a conveyor frame 1 and an ultrasonic cleaner 2 disposed on one side of the conveyor frame 1.
[0027] like Figures 1-5 As shown:
[0028] In conjunction with the above, to prevent the implant from shifting or even falling off due to insecure fixation during ultrasonic cleaning, a fixing component 3 is also included, which is set above the conveyor frame 1. The fixing component 3 includes a support frame 31, a push-pull cylinder 32, a push-pull plate 33, a push-pull slide rail 34, a lifting cylinder 35, a fixing plate 36, a fixing seat 37, a pressing plate 38, a locking cylinder 39, a locking block 310, a spring 1 311, an armature 312, an electromagnet 313, a spring 2 314, and a pushing plate 315.
[0029] A support frame 31 is installed above the conveyor frame 1. A push-pull cylinder 32 is screwed to the surface of the support frame 31. A push-pull plate 33 is fixed to the output end of the push-pull cylinder 32. A push-pull slide rail 34 is fixed to the surface of the support frame 31, and the push-pull plate 33 is slidably connected to the surface of the push-pull slide rail 34. Two sets of lifting cylinders 35 are screwed to the lower surface of the push-pull plate 33. A fixing plate 36 is fixed between the output ends of the two sets of lifting cylinders 35. Several sets of fixing seats 37 arranged in a rectangular array are fixed to the lower surface of the fixing plate 36. An extrusion plate 38 is slidably connected to the inside of the fixing seat 37 through a clearance groove. Hollow locking cylinders 3 are symmetrically arranged on both sides of the extrusion plate 38. 9. The locking cylinder 39 is fixed inside the fixing base 37. The locking block 310 is slidably connected inside the locking cylinder 39. One end of the locking block 310 has a semi-circular structure. A spring 311 is fixed between the locking block 310 and the locking cylinder 39. An electromagnet 313 is fixed inside the fixing base 37. An armature 312 is fixed on the side of the extrusion plate 38 near the electromagnet 313. The end of the armature 312 is directly opposite the surface of the electromagnet 313. Springs 314 are fixed at the four corners between the extrusion plate 38 and the fixing base 37. An arc-shaped extrusion plate 315 is symmetrically fixed on both sides of the extrusion plate 38. The extrusion plate 315 is directly opposite the locking block 310.
[0030] In conjunction with the above, in order to dry the various surfaces of the implant, a drying assembly 4 is also included, which is installed inside the conveyor frame 1. The drying assembly 4 includes a first conveyor belt 41, a second conveyor belt 42, a drive roller shaft 43, a drive motor 44, a blocking inclined plate 45, and a dryer 46.
[0031] The conveyor frame 1 is equipped with a first conveyor belt 41 inside, and a second conveyor belt 42 is arranged parallel below the first conveyor belt 41. The left and right ends of the first conveyor belt 41 and the second conveyor belt 42 are each tightly connected to a drive roller shaft 43. The drive roller shaft 43 is rotatably connected inside the conveyor frame 1. The surface of the conveyor frame 1 is screwed to the side of the two sets of drive roller shafts 43, and the output end of the drive motor 44 is fixedly connected to one end of the drive roller shaft 43. An inclined blocking plate 45 is arranged between the first conveyor belt 41 and the second conveyor belt 42, and the discharge end of the blocking plate 45 faces the surface of the second conveyor belt 42. A dryer 46 is fixed to the surface of the conveyor frame 1, and a support frame 31 is fixed to the surface of the dryer 46.
[0032] The working principle and usage process of this utility model are as follows: First, the implant to be cleaned and dried is placed inside the fixing base 37. The end of the implant is aligned with the recessed groove inside the fixing base 37. Then, the implant is pushed into the fixing base 37. As the implant is inserted, the squeezing plate 38 slides inside the fixing base 37, compressing the second spring 314, causing it to deform and generate elastic force. During this process, the movement of the squeezing plate 38 drives the pushing plate 315 to move synchronously. When the pushing plate 315 contacts the locking block 310, it squeezes the locking block 310, causing it to overcome the elastic force of the first spring 311 and retract into the locking cylinder 39. Simultaneously, the squeezing plate 38 also moves the armature 312 closer to the surface of the electromagnet 313. The energized electromagnet 313 then attracts the armature 312, causing the squeezing plate 38 to move further into the fixing base 37. When the armature 312 and the electromagnet 313 are tightly fitted together, the squeezing plate 312... When the push plate 315 moves to the outside of the locking block 310, the locking block 310, now free from obstruction, will quickly extend under the restoring force of the spring 311, locking the implant and firmly fixing it to the fixing seat 37 for subsequent ultrasonic cleaning. This prevents the implant from shifting or even falling off due to insecure fixation during ultrasonic cleaning, effectively resisting interference from ultrasonic vibrations and ensuring the implant remains in a precise fixed position throughout the cleaning process. This ensures the implant maintains a stable position and posture, guaranteeing uniform and thorough cleaning of all parts of the inner hole, significantly improving cleaning quality, reducing potential implant-related problems caused by incomplete cleaning, providing more reliable instrument support for subsequent implantation surgery, and adapting to implants of different sizes and shapes to meet diverse implant fixation needs, thus improving the versatility and practicality of the device.
[0033] Furthermore, when the implant needs to be fixed for cleaning, the push-pull cylinder 32 on the support frame 31 is first activated. The push-pull cylinder 32 pushes the push-pull plate 33 to move along the push-pull slide rail 34, moving the lifting cylinder 35 and the fixing plate 36 to the appropriate position. Then, the lifting cylinder 35 is activated, thereby driving the fixing plate 36 to descend, which can drive the fixing seat 37 and the implant fixed inside it to move down synchronously, realizing the rapid and accurate transfer of the implant into the ultrasonic cleaner 2. The whole process is highly automated, without the need for manual handling and precise alignment, which greatly saves time and labor costs. After the fixing seat 37 and the implant are moved into the ultrasonic cleaner 2, the ultrasonic cleaner 2 is activated, which can perform all-round and uniform automated cleaning of the implant, ensuring that each implant can meet the high standard of cleanliness requirements, and improving the quality stability and reliability of the implant.
[0034] Furthermore, after cleaning, the push-pull cylinder 32 and lifting cylinder 35 are activated again to move the implant above conveyor belt 41. Then, the electromagnet 313 is deactivated, causing it to lose its magnetic attraction to the armature 312. Under the rebound force of the spring 314, the pressing plate 38 is pushed against the fixed seat 37 and slides in the opposite direction, thereby pushing the locking block 310 back into the locking cylinder 39, releasing the implant from its fixation and allowing it to fall onto conveyor belt 41. Once the implant is on conveyor belt 41, the drive motor 44 is activated to rotate the drive roller 43, causing conveyor belts 41 and 42 to start operating. The implant then moves forward with conveyor belt 41. The entire process is highly automated, requiring no manual handling or complex adjustments, allowing the cleaned implant to quickly enter the drying stage, improving overall production efficiency. When the implant encounters the inclined baffle 45, due to the inclined setting of the inclined baffle 45, the implant will slide down the inclined baffle 45 onto the second conveyor belt 42, realizing the flipping and transfer of the implant, so that all surfaces can be fully dried. During the implant transport process, the dryer 46 is started, and the hot air generated by the dryer 46 blows onto the implant to dry it and remove the residual moisture after cleaning. With the help of the inclined baffle 45, the implant is flipped and transferred between the first conveyor belt 41 and the second conveyor belt 42. The hot air generated by the dryer 46 dries all surfaces of the implant, ensuring that the implant is dried in all directions. This effectively avoids problems such as rusting, corrosion or bacterial growth of the implant caused by residual moisture, improves the quality and safety of the implant, and ensures its reliability and stability in subsequent medical procedures. The dried implant is finally output from the end of the second conveyor belt 42, completing the entire cleaning and drying process.
[0035] Finally, it should be noted that the above are merely preferred embodiments of this utility model and are not intended to limit the utility model. Although the utility model has been described in detail with reference to the foregoing embodiments, those skilled in the art can still modify the technical solutions described in the foregoing embodiments or make equivalent substitutions for some of the technical features. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of this utility model should be included within the protection scope of this utility model.
Claims
1. A kind of implant hole cleaning and drying device using ultrasonic vibration, including conveying frame (1) and the ultrasonic cleaning machine (2) being arranged in the side of conveying frame (1), it is characterized by: It also includes a fixed assembly (3) arranged above the conveying frame (1), the fixed assembly (3) includes a support frame (31) arranged above the conveying frame (1), and a fixed plate (36) and a fixing seat (37) for firmly fixing the implant arranged below the support frame (31), a locking cylinder (39), a locking block (310) and a spring (311); It also includes a drying assembly (4) installed inside the conveying frame (1), the drying assembly (4) includes a conveying belt (41) arranged inside the conveying frame (1), and a conveying belt (42) arranged in parallel below the conveying belt (41), and a blocking inclined plate (45) and a dryer (46) for drying each surface of the implant.
2. The apparatus for cleaning and drying the hole of the implant using ultrasonic vibration according to claim 1, wherein: The lower surface of the fixed plate (36) is fixed with several groups of rectangular array fixing seats (37), the inside of the fixing seat (37) is fixed with a hollow locking cylinder (39), the inside of the locking cylinder (39) is slidably connected with a locking block (310), one end of the locking block (310) is in a semicircular structure, and the locking block (310) and the locking cylinder (39) are fixed with a spring (311).
3. The apparatus for cleaning and drying the hole of the implant using ultrasonic vibration according to claim 1, wherein: The surface of the support frame (31) is screw connected with a push-pull air cylinder (32), the output end of the push-pull air cylinder (32) is fixed with a push-pull plate (33), the surface of the support frame (31) is fixed with a push-pull slide rail (34), and the push-pull plate (33) is slidably connected to the surface of the push-pull slide rail (34), the lower surface of the push-pull plate (33) is screw connected with two groups of lifting air cylinders (35), and the fixed plate (36) is fixed between the output ends of the two groups of lifting air cylinders (35).
4. The apparatus for cleaning and drying the hole of the implant using ultrasonic vibration according to claim 1, wherein: The inside of the fixing seat (37) is slidably connected with an extrusion plate (38) through the opening of the gap groove, the locking cylinder (39) is arranged on both sides of the extrusion plate (38), the inside of the fixing seat (37) is fixed with an electromagnet (313), one side of the surface of the extrusion plate (38) close to the electromagnet (313) is fixed with an armature (312), and the end of the armature (312) is opposite to the surface of the electromagnet (313).
5. The apparatus for cleaning and drying the implant hole using ultrasonic vibration according to claim 4, wherein: The four corners between the extrusion plate (38) and the fixing seat (37) are fixed with a spring (314), the two sides of the extrusion plate (38) are symmetrically fixed with an extrusion plate (315) in an arc structure, and the extrusion plate (315) is opposite to the locking block (310).
6. The apparatus for cleaning and drying the implant hole using ultrasonic vibration according to claim 1, wherein: The surface of the conveying frame (1) is fixed with a dryer (46), and the support frame (31) is fixed on the surface of the dryer (46), the conveying belt (41) and the conveying belt (42) are provided with a blocking inclined plate (45) arranged in an inclined manner, and the discharge end of the blocking inclined plate (45) is opposite to the surface of the conveying belt (42).
7. The apparatus for cleaning and drying the implant hole using ultrasonic vibration according to claim 1, wherein: The left and right ends of the conveying belt one (41) and the conveying belt two (42) are respectively tightly connected with driving roller shafts (43), the driving roller shafts (43) are rotationally connected in the inside of the conveying frame (1), the surface of the conveying frame (1) near the sides of the two groups of driving roller shafts (43) are respectively screw-connected with driving motors (44), and the output ends of the driving motors (44) are fixedly connected with one ends of the driving roller shafts (43).