Pulse xenon lamp with reflector structure
By incorporating a slider and spring structure within the mounting base of the pulsed xenon lamp, the reflector can slide and rotate, thus solving the problem of poor reflector performance during angle adjustment and improving the practicality and stability of the device.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- NANJING RONGSHIDE OPTOELECTRONICS CO LTD
- Filing Date
- 2025-08-01
- Publication Date
- 2026-05-19
AI Technical Summary
Existing pulsed xenon lamps with reflector structures do not perform well when the reflection angle needs to be adjusted, which affects the widespread use of the device.
A pulsed xenon lamp with a reflector structure was designed. By setting a first slider and a second slider in the mounting base, and the slider is equipped with a spring and a locking block, the slider cooperates with the side groove to realize the sliding and rotation of the reflector, allowing the adjustment of the reflection angle and area. The reflector cavity and the stop block are used for limiting and ensuring the stable installation of the reflector.
It enables flexible adjustment of the reflector angle and area, improves the practicality of the device, avoids reflector detachment or friction damage, and enhances the device's performance.
Smart Images

Figure CN224261527U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of pulsed xenon lamps, specifically a pulsed xenon lamp with a reflector structure. Background Technology
[0002] In many applications requiring instantaneous high-intensity illumination, traditional light sources are insufficient, leading to the development of pulsed xenon lamps. Early lighting sources, such as incandescent and fluorescent lamps, relied on continuous electrical energy conversion, making it impossible to release high-intensity light energy in a short time. Pulsed xenon lamps, however, utilize the inert gas xenon under high-voltage pulses to generate an instantaneous arc discharge, enabling them to release extremely high-intensity light pulses in a very short time, with peak power reaching several megawatts. From high-speed photography in scientific experiments, which requires capturing instantaneous microscopic dynamics, to material surface treatment in the industrial field, where high-intensity light pulses are used to alter material properties; from fundus angiography in medical equipment, providing doctors with clear images of the eye, to automotive nighttime auxiliary lighting to cope with unexpected road conditions, pulsed xenon lamps, with their unique luminous characteristics, compensate for the shortcomings of traditional light sources and have become an indispensable key component. With technological advancements, their performance continues to improve.
[0003] An existing pulsed xenon lamp with a reflector structure typically has a set of shields fixedly installed on one side of the pulsed xenon lamp. The inner wall of the shields is coated with a reflective coating. When the pulsed xenon lamp is in use, the shields can reflect the strong light produced by the pulsed xenon lamp, thereby improving the performance of the pulsed xenon lamp.
[0004] However, for existing pulsed xenon lamps with reflector structures, the existing reflector structures are usually fixedly installed on the pulsed xenon lamp. When the reflection angle needs to be adjusted, the existing reflector structures do not meet the usage requirements, which is not conducive to the popularization and use of the device. Utility Model Content
[0005] Therefore, the purpose of this utility model is to provide a pulsed xenon lamp with a reflector structure to solve the technical problem mentioned in the background art of poor performance of existing pulsed xenon lamps with reflector structures.
[0006] To achieve the above objectives, this utility model provides the following technical solution: a pulsed xenon lamp with a reflector structure, comprising a mounting base, a xenon lamp sleeved between the mounting bases, a side groove formed inside the mounting base, a limiting groove formed at the bottom of the side groove, a first slider and a second slider movably mounted in the side groove, a slider cavity formed inside the first slider and the second slider, a spring fixedly mounted at the bottom of the slider cavity, one end of the spring connected to the slider, a locking block provided on one side of the slider, a first reflector fixedly mounted on one side of the first slider, a reflective cavity formed inside the first reflector, and a second reflector fixedly mounted on one side of the second slider.
[0007] By adopting the above technical solution, the problem of poor performance of existing pulse xenon lamps with reflector structures mentioned in the background art is solved. By providing a first reflector and a second reflector, which are slidably mounted in a side groove via a first slider and a second slider, the first and second reflectors can reflect the strong light produced by the xenon lamp. A circular protrusion is provided on one side of the side groove, which limits the movement of the first and second sliders, allowing them to slide within the side groove. Simultaneously, the first and second sliders... The device allows the first and second reflectors to rotate, thus adjusting the reflection angle and effectively improving its practicality. A reflective cavity is formed inside the first reflector, and the second reflector is fitted inside this cavity. When the xenon lamp requires different reflective areas, the second reflector is slid into the reflective cavity to adjust the reflective area. A first stop is provided on one side of the inner wall of the reflective cavity, and a second stop is provided at one end of the second reflector, which limits the sliding of the second reflector and prevents it from sliding out of the reflective cavity, thus affecting the device's performance.
[0008] The present invention is further configured such that annular protrusions are provided on both sides of the side groove, and one side of the annular protrusion and the first slider and the second slider are in contact.
[0009] Preferably, by providing annular protrusions on both sides of the side groove, and having one side of the annular protrusion fit into the first slider and the second slider, the first slider and the second slider can be fixedly installed in the side groove, preventing the first slider and the second slider from falling off and thus affecting the normal use of the device.
[0010] The present invention is further configured such that one side of the limiting groove is a circular arc surface, and one side of the card block is provided with a circular arc surface with the same curvature as the limiting groove.
[0011] Preferably, by setting one side of the limiting groove as an arc surface and setting one side of the locking block as an arc surface with the same curvature as the limiting groove, the locking block can better apply pressure to the spring when the first slider and the second slider rotate, which facilitates the rotation of the first slider and the second slider.
[0012] The present invention is further configured such that the first reflector and the second reflector are configured as arc-shaped blocks, and the first reflector and the second reflector do not contact the outer wall of the mounting base.
[0013] Preferably, by setting the first reflector and the second reflector as arc-shaped blocks, the first reflector and the second reflector can achieve a better reflective effect. The first reflector and the second reflector do not contact the outer wall of the mounting base, so as to avoid the generation of large friction between the first reflector and the second reflector and the mounting base, thereby affecting the normal use of the device.
[0014] The present invention is further configured such that the second reflector is sleeved inside the reflective cavity, the second reflector does not contact the inner wall of the reflective cavity, and the inner walls of both the first reflector and the second reflector are coated with a reflective coating.
[0015] Preferably, by fitting the second reflector inside the reflective cavity, the second reflector does not contact the inner wall of the reflective cavity, thus avoiding friction between the second reflector and the reflective cavity, which would affect the normal use of the device. The inner walls of both the first and second reflectors are coated with a reflective coating, so that the first and second reflectors have a reflective effect.
[0016] The present invention is further configured such that a first stop is provided inside the reflective cavity, and the first stop is in contact with the wall surface of the second reflector.
[0017] Preferably, a first stop is provided inside the reflective cavity, and the first stop contacts the wall surface of the second reflector, so that the first stop can provide support for the second reflector, improve the service life of the second reflector, and make the device more practical.
[0018] The present invention is further configured such that a second baffle is provided at one end of the second reflector, and the second baffle does not contact the wall surface of the reflective cavity.
[0019] Preferably, by providing a second baffle at one end of the second reflector, the second reflector can be prevented from slipping out of the reflective cavity, thereby affecting the normal use of the device. The second baffle does not contact the wall of the reflective cavity, thus avoiding friction between the second baffle and the wall of the reflective cavity, thereby preventing wear on the wall of the reflective cavity.
[0020] The present invention is further configured such that the first slider and the second slider are fan-shaped blocks, and the surfaces of the first slider and the second slider are smoothed.
[0021] Preferably, by setting the first slider and the second slider as fan-shaped blocks and smoothing the surfaces of the first slider and the second slider, the sliding effect of the first slider and the second slider can be improved, making the first slider and the second slider more practical.
[0022] In summary, the present invention has the following main advantages:
[0023] 1. This utility model, by providing a mounting base, xenon lamp, side groove, limiting groove, first slider, second slider, slider inner cavity, spring, slider, locking block, first reflector, reflecting inner cavity, first stop block, second reflector, and second stop block, solves the problem of poor performance of existing pulse xenon lamps with reflector structures mentioned in the background art. By providing a first reflector and a second reflector, which are slidably mounted in the side groove via the first and second sliders, the first and second reflectors can reflect the strong light generated by the xenon lamp. A circular protrusion is provided on one side of the side groove, which can limit the movement of the first and second sliders. The first and second sliders are slidably mounted in the side groove, allowing the first and second reflectors to rotate and thus adjust the reflection angle, effectively improving the practicality of the device. A reflective cavity is formed inside the first reflector, and the second reflector is fitted inside the reflective cavity. When the xenon lamp requires different reflective areas, the second reflector is slid into the reflective cavity to adjust the reflective area. A first stop is provided on one side of the inner wall of the reflective cavity, and a second stop is provided at one end of the second reflector, which limits the sliding of the second reflector and prevents it from sliding out of the reflective cavity, thus affecting the device's performance.
[0024] 2. This utility model comprises a first slider and a second slider, each with an inner cavity. A spring is located at the bottom of the inner cavity, with one end of the spring connected to the slider. A locking block is located on one side of the slider, fitting inside a limiting groove at the bottom of the side groove. When the first and second sliders rotate to a designated position, the locking block engages within the limiting groove, thus limiting their rotation and preventing them from sliding freely within the side groove, which would affect the performance of the first and second reflectors. Furthermore, the wall of the limiting groove and one side of the locking block are both curved surfaces, allowing the locking block to apply pressure to the spring more effectively when the first and second sliders rotate, facilitating their rotation. Attached Figure Description
[0025] Figure 1 This is a schematic diagram of the first main structure of this utility model;
[0026] Figure 2 This utility model Figure 1 Enlarged view of A in the middle;
[0027] Figure 3 This is a sectional view of the mounting base of this utility model;
[0028] Figure 4 This is a schematic diagram of the second main structure of this utility model;
[0029] Figure 5 This utility model Figure 4 Enlarged view of B in the middle;
[0030] Figure 6 This utility model Figure 4 Enlarged view of C;
[0031] Figure 7 This is a detailed structural drawing of the reflector of this utility model;
[0032] Figure 8 This utility model Figure 7 Enlarged view of D;
[0033] Figure 9 This utility model Figure 7 A magnified view of E in the middle.
[0034] Explanation of reference numerals in the attached figures:
[0035] 1. Mounting base; 2. Xenon lamp; 3. Side groove; 4. Limiting groove; 5. First slider; 51. Second slider; 6. Slider inner cavity; 7. Spring; 8. Slider; 81. Locking block; 9. First reflector; 91. Reflector inner cavity; 92. First stop block; 10. Second reflector; 101. Second baffle. Detailed Implementation
[0036] The technical solutions of the present invention will be clearly and completely described below with reference to the accompanying drawings. The embodiments described below with reference to the accompanying drawings are exemplary and are only used to explain the present invention, and should not be construed as limiting the present invention.
[0037] The embodiments of this utility model will be described below based on its overall structure.
[0038] Please see Figures 1-9The system includes a mounting base 1, a xenon lamp 2 fitted between the mounting bases 1, a side groove 3 inside the mounting base 1, a limiting groove 4 at the bottom of the side groove 3, a first slider 5 and a second slider 51 movably mounted inside the side groove 3, a slider cavity 6 inside the first slider 5 and the second slider 51, a spring 7 fixedly mounted at the bottom of the slider cavity 6, a slider 8 connected to one end of the spring 7, a locking block 81 on one side of the slider 8, a first reflector 9 fixedly mounted on one side of the first slider 5, a reflective cavity 91 inside the first reflector 9, and a second reflector 10 fixedly mounted on one side of the second slider 51.
[0039] For details regarding the above embodiments, please refer to [link / reference]. Figure 2 Annular protrusions are provided on both sides of the side groove 3. One side of the annular protrusion is in contact with the first slider 5 and the second slider 51. By providing annular protrusions on both sides of the side groove 3, and having one side of the annular protrusion in contact with the first slider 5 and the second slider 51, the first slider 5 and the second slider 51 can be fixedly installed in the side groove 3, preventing the first slider 5 and the second slider 51 from falling off and thus affecting the normal use of the device.
[0040] For details regarding the above embodiments, please refer to [link / reference]. Figure 3 and Figure 9 One side of the limiting groove 4 is set as an arc surface, and one side of the locking block 81 is set with an arc surface with the same curvature as the limiting groove 4. By setting one side of the limiting groove 4 as an arc surface and one side of the locking block 81 is set with an arc surface with the same curvature as the limiting groove 4, when the first slider 5 and the second slider 51 rotate, the locking block 81 can better apply pressure to the spring 7, which facilitates the rotation of the first slider 5 and the second slider 51.
[0041] For details regarding the above embodiments, please refer to [link / reference]. Figure 7 The first reflector 9 and the second reflector 10 are configured as arc-shaped blocks, and the first reflector 9 and the second reflector 10 do not contact the outer wall of the mounting base 1. By configuring the first reflector 9 and the second reflector 10 as arc-shaped blocks, the first reflector 9 and the second reflector 10 can achieve a better reflective effect. The fact that the first reflector 9 and the second reflector 10 do not contact the outer wall of the mounting base 1 avoids generating large friction between the first reflector 9 and the second reflector 10 and the mounting base 1, thereby affecting the normal use of the device.
[0042] For details regarding the above embodiments, please refer to [link / reference]. Figure 5The second reflector 10 is fitted inside the reflective cavity 91. The second reflector 10 does not contact the inner wall of the reflective cavity 91. The inner walls of both the first reflector 9 and the second reflector 10 are coated with a reflective coating. By fitting the second reflector 10 inside the reflective cavity 91, the second reflector 10 does not contact the inner wall of the reflective cavity 91, thus avoiding friction between the second reflector 10 and the reflective cavity 91, which would affect the normal use of the device. The inner walls of both the first reflector 9 and the second reflector 10 are coated with a reflective coating, giving the first reflector 9 and the second reflector 10 a reflective effect.
[0043] For details regarding the above embodiments, please refer to [link / reference]. Figure 6 A first stop 92 is provided inside the reflective cavity 91. The first stop 92 is in contact with the wall surface of the second reflector 10. By providing the first stop 92 inside the reflective cavity 91 and having the first stop 92 in contact with the wall surface of the second reflector 10, the first stop 92 can provide support for the second reflector 10, thereby improving the service life of the second reflector 10 and making the device more practical.
[0044] For details regarding the above embodiments, please refer to [link / reference]. Figure 5 A second baffle 101 is provided at one end of the second reflector 10. The second baffle 101 does not contact the wall of the reflective cavity 91. By providing the second baffle 101 at one end of the second reflector 10, the second reflector 10 can be prevented from slipping out of the reflective cavity 91, thereby affecting the normal use of the device. The second baffle 101 does not contact the wall of the reflective cavity 91, thereby preventing friction between the second baffle 101 and the wall of the reflective cavity 91, thus preventing wear on the wall of the reflective cavity 91.
[0045] For details regarding the above embodiments, please refer to [link / reference]. Figure 8 and Figure 9 The first slider 5 and the second slider 51 are set as fan-shaped blocks, and the surfaces of the first slider 5 and the second slider 51 are smooth. By setting the first slider 5 and the second slider 51 as fan-shaped blocks and smoothing the surfaces of the first slider 5 and the second slider 51, the sliding effect of the first slider 5 and the second slider 51 can be improved, making the first slider 5 and the second slider 51 more practical.
[0046] In practical operation, this invention requires: first, the xenon lamp 2 is fitted between two sets of mounting bases 1; then, the xenon lamp 2 is installed and fixed using the mounting bases 1; next, the first reflector 9 and the second reflector 10 are rotated to a designated position using the first slider 5 and the second slider 51. The first slider 5 and the second slider 51 are fitted into the side grooves 3 opened within the mounting bases 1. The first slider 5 and the second slider 51 allow the first reflector 9 and the second reflector 10 to rotate, thereby achieving a better performance. A reflective cavity 91 is provided inside the first reflector 9, and the second reflector 10 is fitted inside the reflective cavity 91. When the xenon lamp 2 requires different reflective areas and different reflective angles, the second reflector 10 can be slid into the reflective cavity 91 to adjust the reflective area and reflective angle, improving the practicality of the device. A first stop 92 is provided on one side of the inner wall of the reflective cavity 91, and a second stop 101 is provided at one end of the second reflector 10 to limit the sliding of the second reflector 10. To prevent the second reflector 10 from sliding out of the reflective cavity 91 and thus affecting the device's performance, a slider cavity 6 is provided within both the first slider 5 and the second slider 51. A spring 7 is located at the bottom of the slider cavity 6, with one end of the spring 7 connected to a slider 8. A locking block 81 is provided on one side of the slider 8, and the locking block 81 is fitted into the limiting groove 4 at the bottom of the side groove 3. When the first slider 5 and the second slider 51 rotate to the designated position, the locking block 81 can be engaged in the limiting groove 4, thereby controlling the first slider... The rotation of the first slider 5 and the second slider 51 serves as a limiting function, preventing the first slider 5 and the second slider 51 from sliding freely in the side groove 3, thereby affecting the performance of the first reflector 9 and the second reflector 10. At the same time, the wall surface of the limiting groove 4 is set as an arc surface, and one side of the locking block 81 is also set as an arc surface. When the first slider 5 and the second slider 51 rotate, they can better apply pressure to the locking block 81, avoiding excessive friction between the locking block 81 and the limiting groove 4, which would affect the rotation of the first slider 5 and the second slider 51.
[0047] Although embodiments of the present invention have been shown and described, these specific embodiments are merely explanations of the present invention and are not intended to limit the invention. The specific features, structures, materials, or characteristics described may be combined in any suitable manner in one or more embodiments or examples. After reading this specification, those skilled in the art may make modifications, substitutions, and variations to the embodiments as needed without departing from the principles and spirit of the present invention, provided that such modifications, substitutions, and variations are within the scope of the claims of the present invention and are protected by patent law.
Claims
1. A pulsed xenon lamp with a reflector structure, comprising a mounting base (1), characterized in that: A xenon lamp (2) is fitted between the mounting bases (1). A side groove (3) is provided inside the mounting base (1). A limiting groove (4) is provided at the bottom of the side groove (3). A first slider (5) and a second slider (51) are movably installed in the side groove (3). A slider cavity (6) is provided inside the first slider (5) and the second slider (51). A spring (7) is fixedly installed at the bottom of the slider cavity (6). A slider (8) is connected to one end of the spring (7). A locking block (81) is provided on one side of the slider (8). A first reflector (9) is fixedly installed on one side of the first slider (5). A reflective cavity (91) is provided inside the first reflector (9). A second reflector (10) is fixedly installed on one side of the second slider (51).
2. A pulsed xenon lamp with a reflector structure according to claim 1, characterized in that: The side groove (3) is provided with annular protrusions on both sides, and one side of the annular protrusion and the first slider (5) are in contact with the second slider (51).
3. A pulsed xenon lamp with a reflector structure according to claim 1, characterized in that: One side of the limiting groove (4) is set as an arc surface, and one side of the card block (81) is set with an arc surface with the same curvature as the limiting groove (4).
4. A pulsed xenon lamp with a reflector structure according to claim 1, characterized in that: The first reflector (9) and the second reflector (10) are set as arc-shaped blocks, and the first reflector (9) and the second reflector (10) do not contact the outer wall of the mounting base (1).
5. A pulsed xenon lamp with a reflector structure according to claim 1, characterized in that: The second reflector (10) is fitted inside the reflective cavity (91). The second reflector (10) does not contact the inner wall of the reflective cavity (91). The inner walls of the first reflector (9) and the second reflector (10) are coated with a reflective coating.
6. A pulsed xenon lamp with a reflector structure according to claim 1, characterized in that: The reflective cavity (91) is provided with a first stop (92), which is in contact with the wall of the second reflector (10).
7. A pulsed xenon lamp with a reflector structure according to claim 1, characterized in that: A second baffle (101) is provided at one end of the second reflector (10), and the second baffle (101) does not contact the wall of the reflective cavity (91).
8. A pulsed xenon lamp with a reflector structure according to claim 1, characterized in that: The first slider (5) and the second slider (51) are configured as fan-shaped blocks, and the surfaces of the first slider (5) and the second slider (51) are smoothed.