Sintering packaging device of laser pumping xenon lamp
By designing the limiting components and sintering components, the rotation and stable attachment of the glass tube and tungsten rod were achieved, solving the problem of poor limiting in existing devices and improving sintering efficiency and packaging quality.
Patent Information
- Application Number
- CN202422861092.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-11-22
- Publication Date
- 2026-01-27
- Estimated Expiration
- 2034-11-22
AI Technical Summary
The existing laser-pumped xenon lamp sintering and encapsulation device has poor limiting effect and cannot drive the glass tube and tungsten rod to rotate, which affects the sintering effect and material change efficiency.
A laser-pumped xenon lamp sintering and encapsulation device was designed, which includes a limiting component and a sintering component. The glass tube and tungsten rod are rotated through the coordinated work of a motor, gears and a rotating seat, and a molding disk is driven by a telescopic cylinder and a stepper motor to tightly adhere to the glass surface, ensuring stable adhesion.
This improved heating efficiency, shortened sintering time, and enhanced the sintering and packaging quality of laser-pumped xenon lamps and the practical performance of the device.
Smart Images

Figure CN223837314U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of laser-pumped xenon lamp technology, and in particular to a sintering and packaging device for a laser-pumped xenon lamp. Background Technology
[0002] A laser-pumped xenon lamp is a high-intensity light source used in lasers. It uses the light emitted by xenon gas under the action of an electric field to excite the laser medium, thereby generating laser light. Due to its high brightness and high efficiency, this lamp has a wide range of applications in scientific research, medical and industrial fields.
[0003] In the sintering and encapsulation of laser-pumped xenon lamps, existing devices typically use clamping plates to directly limit and fix the glass tube and tungsten rod during the sintering process. However, this structure often suffers from poor limiting effect and the inability to rotate the glass tube and tungsten rod, which affects the sintering effect or the ability to quickly replace the sintered material, thus reducing the practicality of the device. Therefore, there is an urgent need to design a sintering and encapsulation device for laser-pumped xenon lamps to solve the above problems. Utility Model Content
[0004] The purpose of this invention is to address the shortcomings of existing technologies that cannot drive the glass tube and tungsten rod to rotate, thereby affecting the sintering heating effect of the glass tube and tungsten rod, and to propose a sintering and packaging device for a laser-pumped xenon lamp.
[0005] To achieve the above objectives, the present invention adopts the following technical solution:
[0006] A sintering and encapsulation device for a laser-pumped xenon lamp includes a base, a limiting component for fixing glass is slidably connected to the top outer wall of the base, and a sintering component for sintering the glass is disposed on the top outer wall of the base between the limiting components.
[0007] The limiting assembly includes a movable seat. A motor is bolted to the inner wall of one side of the movable seat. A gear is bolted to the output end of the motor. A rotating seat is movably mounted inside the movable seat via bearings, meshing with the teeth of the gear. The motor drives the gear to rotate, and the meshing of the gear and the rotating seat causes the rotating seat to rotate. A mounting seat is bolted inside the rotating seat. Movable plates are slidably connected to the two sides of the mounting seat. A push plate is slidably connected inside the mounting seat and the push plate. A screw threaded through the push plate extends to the outside of the rotating seat. A clamping plate is bolted to the outer wall of the push plate on the other side away from the screw.
[0008] Preferably, the limiting component further includes a moving groove, which is formed at the center of the top outer wall of the base, and the moving seat is slidably connected to the interior of the moving groove.
[0009] Preferably, the sintering assembly includes two slides, which are respectively formed on both sides of the top outer wall of the base, and slide rods are installed inside the slides by bolts.
[0010] Preferably, the sintering assembly further includes movable support plates, with flamethrowers bolted to the outer walls of the opposite sides of the movable support plates, and connecting plates mounted on the top outer walls of the movable support plates via connecting rods.
[0011] Preferably, a telescopic cylinder is bolted to the center of the bottom outer wall of the connecting plate, and a lifting plate is bolted to the output end of the telescopic cylinder. The operation of the telescopic cylinder drives the lifting plate to move up and down.
[0012] Preferably, a stepper motor is bolted to the bottom outer wall of the lifting plate, and a molding disc is mounted on the output end of the stepper motor via a coupling. The operation of the stepper motor drives the molding disc to rotate.
[0013] The beneficial effects of this utility model are as follows:
[0014] 1. With the screw installed, when the screw is rotated, it drives the push plate to move through the threaded engagement with the push plate. The push plate and the moving plate are slidably connected, allowing them to move closer or further apart. In this way, the device can conveniently and stably position and fix the glass tube and tungsten rod. In addition, through the coordinated work of the motor, gears and rotating seat, the device can achieve rotation during the sintering of the glass tube and tungsten rod, thereby improving heating efficiency and shortening the time required for sintering and encapsulation.
[0015] 2. Through the telescopic cylinder and stepper motor, the telescopic cylinder can drive the lifting plate to move during the activation process, thereby allowing the molding disk to closely adhere to the heated and softened glass surface. This process ensures that the glass can be stably attached to the tungsten rod surface, and the adhesion effect is improved through the transmission connection between the stepper motor and the molding disk, which in turn significantly improves the sintering and packaging quality of the laser-pumped xenon lamp and enhances the practical performance of the device. Attached Figure Description
[0016] Figure 1 This is a schematic diagram of the sintering and packaging device for a laser-pumped xenon lamp proposed in this utility model.
[0017] Figure 2 This is a schematic diagram of the molding disk structure of a sintering and packaging device for a laser-pumped xenon lamp proposed in this utility model.
[0018] Figure 3 This is a schematic diagram of the moving plate and pushing plate structure of a sintering and packaging device for a laser-pumped xenon lamp proposed in this utility model;
[0019] Figure 4 This is a schematic diagram of the cross-sectional structure of the movable seat of the sintering and packaging device for a laser-pumped xenon lamp proposed in this utility model.
[0020] In the diagram: 1. Base; 2. Limiting component; 21. Movable seat; 22. Movable groove; 23. Motor; 24. Gear; 25. Rotating seat; 26. Mounting seat; 27. Movable plate; 28. Push plate; 29. Clamping plate; 210. Screw; 3. Slide rod; 4. Sintering component; 41. Slide groove; 42. Movable support plate; 43. Flamethrower; 44. Connecting plate; 45. Telescopic cylinder; 46. Lifting plate; 47. Stepper motor; 48. Molding plate. Detailed Implementation
[0021] 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.
[0022] It should be noted that when a component is described as "fixed to" another component, it can be directly on the other component or may have a component in between. When a component is considered "connected to" another component, it can be directly connected to the other component or may have a component in between. When a component is considered "set on" another component, it can be directly set on the other component or may have a component in between. The terms "vertical," "horizontal," "left," "right," and similar expressions used in this document are for illustrative purposes only.
[0023] Unless otherwise defined, all technical and scientific terms used herein have the same meaning as commonly understood by one of ordinary skill in the art to which this invention pertains. The terminology used herein is for the purpose of describing particular embodiments only and is not intended to be limiting of the invention. The term "and / or" as used herein includes any and all combinations of one or more of the associated listed items.
[0024] Please also see Figures 1 to 4A sintering and encapsulation device for a laser-pumped xenon lamp includes a base 1, a limiting component 2 for fixing glass is slidably connected to the top outer wall of the base 1, and a sintering component 4 for sintering the glass is provided on the top outer wall of the base 1 between the limiting components 2.
[0025] The limiting assembly 2 includes a movable base 21. A motor 23 is bolted to the inner wall of one side of the movable base 21. A gear 24 is bolted to the output end of the motor 23. A rotating base 25, which meshes with the teeth of the gear 24, is movably mounted inside the movable base 21 via bearings. The motor 23 drives the gear 24 to rotate, and the meshing of the gear 24 and the rotating base 25 causes the rotating base 25 to rotate. A mounting base 26 is bolted to the inside of the rotating base 25. Movable plates 27 are slidably connected to both sides of the mounting base 26. A push plate 28 is slidably connected to the mounting base 26 inside the movable plates 27. A screw 210, extending to the outside of the rotating base 25, is threaded to the inside of the push plate 28. A clamping plate 29 is bolted to the outer wall of the push plate 28 on the other side away from the screw 210. When the screw 210 is rotated, it can rotate inside the mounting base 26. During the rotation of the screw 210, the screw 210 can utilize its threaded connection with the push plate 28 to push... The movable plate 28 can move inside the mounting base 26. During the movement of the push plate 28, the push plate 28 slides with the movable plate 27, causing the movable plates 27 to move away from each other. This allows the user to place materials between the clamping plates 29 and fix the clamping plates 29 by rotating the screw 210 in the opposite direction. This structure allows the device to conveniently and quickly limit or disassemble the glass tube and tungsten rod in the laser pump xenon lamp. When the motor 23 is started, the motor 23 can use the transmission connection with the gear 24 to make the gear 24 rotate. During the rotation of the gear 24, the gear 24 meshes with the teeth on the outer wall of the rotating seat 25, allowing the rotating seat 25 to rotate, so that the glass tube of the laser pump xenon lamp is heated more evenly. The limiting component 2 also includes a moving groove 22, which is opened at the center of the top outer wall of the base 1. The moving seat 21 is slidably connected to the inside of the moving groove 22. When the moving seat 21 is pulled, the moving seat 21 can slide inside the moving groove 22.
[0026] See Figure 1 and Figure 2The sintering assembly 4 includes two sliding grooves 41, which are respectively opened on both sides of the top outer wall of the base 1. A sliding rod 3 is installed inside the sliding groove 41 by bolts. The sliding rod 3 can limit the movement direction of the movable support plate 42, so that the movable support plate 42 can only slide left and right inside the sliding groove 41. The sintering assembly 4 also includes a movable support plate 42. A flamethrower 43 is installed on the outer wall of the side of the movable support plate 42 that is far apart from each other by bolts. A connecting plate 44 is installed on the top outer wall of the movable support plate 42 by connecting rods. When the flamethrower 43 is activated, the flamethrower 43 will produce a high-temperature flame, which can perform thermoplastic treatment on the glass of the laser pump xenon lamp. The connecting plate 44 can support the installation of the flamethrower 43. The flamethrower 43 is a relatively mature technology in the market, and the operation of the flamethrower 43 is achieved by connecting external raw material storage and pipelines.
[0027] See Figure 1 and Figure 2 A telescopic cylinder 45 is bolted to the center of the bottom outer wall of the connecting plate 44. A lifting plate 46 is bolted to the output end of the telescopic cylinder 45. The operation of the telescopic cylinder 45 drives the lifting plate 46 to move up and down. The connecting plate 44 provides an installation position for the telescopic cylinder 45. When the telescopic cylinder 45 is started, it can realize the up and down movement of the lifting plate 46 by means of its connection with the lifting plate 46. A stepper motor 47 is bolted to the bottom outer wall of the lifting plate 46. A molding disk 48 is bolted to the output end of the stepper motor 47 by means of a coupling. The operation of the stepper motor 47 drives the molding disk 48 to rotate. When the stepper motor 47 is started, it can use its transmission connection with the molding disk 48 to allow the molding disk 48 to perform molding processing on the laser pump xenon lamp glass after it has been thermoformed.
[0028] Using the above-described method, the telescopic cylinder 45 and stepper motor 47 are configured so that during the activation of the telescopic cylinder 45, the lifting plate 46 can be driven to move, thereby allowing the molding disk 48 to closely adhere to the heated and softened glass surface. This process ensures that the glass can be stably attached to the tungsten rod surface, and the adhesion effect is improved through the transmission connection between the stepper motor 47 and the molding disk 48. This significantly improves the sintering and encapsulation quality of the laser-pumped xenon lamp and enhances the practicality of the device.
[0029] Working Principle: In use, the pusher is first connected to the movable base 21 and movable support plate 42 according to the user's needs. Then, the external gas injection device is connected to the flamethrower 43. Subsequently, the tungsten rod of the laser-pumped xenon lamp is inserted into the glass tube. At this time, the laser-pumped xenon lamp glass tube and tungsten rod are respectively inserted between the clamping plates 29. Then, by rotating the screw 210, the screw 210 can move inside the mounting base 26 through the threaded connection with the pusher plate 28. During the backward movement of the pusher plate 28, the pusher plate 28 will slide through the movable plate 27, allowing the movable plate 27 to drive the clamping plate 29 to limit the glass and tungsten rod of the laser-pumped xenon lamp. At this time, the movement of the movable support plate 42 drives the flamethrower 43 to move. When the flamethrower 43 moves to the designated position, it is activated to spray flames onto the outer wall of the glass tube, heating the glass tube and softening it due to the high temperature. Then, the motor 23 is activated, which, through its transmission connection with the gear 24, causes the gear 24 to rotate. During the rotation of the gear 24, the gear 24 meshes with the teeth on the outer wall of the rotating seat 25, allowing the rotating seat 25 to rotate, further heating the glass tube of the laser-pumped xenon lamp. At this time, the telescopic cylinder 45 is activated, which drives the lifting plate 46 and the molding disk 48 to descend, causing the molding disk 48 to fit against the glass tube. Then, the stepper motor 47 is activated, which drives the molding disk 48 to rotate, causing the molding disk 48 to fit tightly against the surface of the tungsten rod of the laser-pumped xenon lamp, achieving the sintering and encapsulation of the laser-pumped xenon lamp.
[0030] The above description is only a preferred embodiment of the present utility model, but the protection scope of the present utility model is not limited thereto. Any equivalent substitutions or changes made by those skilled in the art within the technical scope disclosed in the present utility model, based on the technical solution and the inventive concept of the present utility model, should be included within the protection scope of the present utility model.
Claims
1. A sintering and packaging device for a laser-pumped xenon lamp, comprising a base (1), characterized in that, A limiting component (2) for fixing the glass is slidably connected to the top outer wall of the base (1), and a sintering component (4) for sintering the glass is provided on the top outer wall of the base (1) between the limiting components (2). The limiting component (2) includes a movable base (21). A motor (23) is bolted to the inner wall of the top of one side of the movable base (21). A gear (24) is bolted to the output end of the motor (23). A rotating seat (25) is movably mounted inside the movable base (21) via bearings, meshing with the teeth on the outer wall of the gear (24). The operation of the motor (23) drives the gear (24) to rotate. The meshing of the gear (24) and the rotating seat (25) causes the rotating seat (25) to move. The rotating motion is performed by bolting a mounting base (26) inside the rotating seat (25). A movable plate (27) is slidably connected to both sides inside the mounting base (26). A push plate (28) is slidably connected inside the mounting base (26) and the movable plate (27). A screw (210) is threaded inside the push plate (28) and extends to the outside of the rotating seat (25). A clamping plate (29) is bolted to the outer wall of the push plate (28) on the other side away from the screw (210).
2. The sintering and packaging apparatus for a laser-pumped xenon lamp according to claim 1, characterized in that, The limiting component (2) also includes a moving groove (22), which is located at the center of the top outer wall of the base (1), and the moving seat (21) is slidably connected to the inside of the moving groove (22).
3. The sintering and packaging apparatus for a laser-pumped xenon lamp according to claim 1, characterized in that, The sintering assembly (4) includes two slides (41), which are respectively opened on both sides of the top outer wall of the base (1), and slide rods (3) are installed inside the slides (41) by bolts.
4. The sintering and packaging apparatus for a laser-pumped xenon lamp according to claim 1, characterized in that, The sintering assembly (4) also includes a movable support plate (42), on which a flamethrower (43) is bolted to the outer wall of the movable support plate (42) on the side away from each other, and a connecting plate (44) is mounted on the top outer wall of the movable support plate (42) by a connecting rod.
5. The sintering and packaging apparatus for a laser-pumped xenon lamp according to claim 4, characterized in that, A telescopic cylinder (45) is bolted to the center of the bottom outer wall of the connecting plate (44). A lifting plate (46) is bolted to the output end of the telescopic cylinder (45). The operation of the telescopic cylinder (45) drives the lifting plate (46) to move up and down.
6. The sintering and packaging apparatus for a laser-pumped xenon lamp according to claim 5, characterized in that, A stepper motor (47) is bolted to the bottom outer wall of the lifting plate (46). A molding disc (48) is mounted on the output end of the stepper motor (47) via a coupling. The operation of the stepper motor (47) drives the molding disc (48) to rotate.