A dual-core laser instrument
Patent Information
- Application Number
- CN202522490451.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-11-24
- Publication Date
- 2026-09-08
- Estimated Expiration
- 2035-11-24
AI Technical Summary
[0003]传统的激光仪一般设置有单一的激光发生模块,这使得激光仪只能够产生特定波长、功率或频率的激光,由于单一激光易受环境干扰,存在分辨率低、误差大的问题,使得该类型设备使用场景受限,难以适配复杂的场景需求
[0015] As can be seen from the above technical solutions, the present invention has the following beneficial effects: In the present invention, the two laser units are arranged independently inside the frame, that is, the laser device of this embodiment has two laser cavities and two gain media, so that each laser unit can generate laser with a specific wavelength, power and frequency. In this way, the two laser units can switch output or output in coordination through the control system. Specifically, when switching output, the corresponding unit can be started separately for different tasks to adapt to different tasks; when outputting in coordination, the two laser units can work together to adapt to some scenarios.
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Figure CN224733285U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of laser instrument technology, specifically to a dual-core laser instrument. Background Technology
[0002] A laser instrument is a device that uses laser technology to achieve specific functions. Due to its unique advantages such as good directionality, high brightness, good monochromaticity, and good coherence, lasers are widely used in various fields including industry, medicine, military, scientific research, and daily life. Although there are many types of laser instruments, most include a laser generator, power supply system, cooling system, control system, light guiding system, and aiming system.
[0003] Traditional laser devices typically have a single laser generating module, which means that the laser device can only generate lasers of a specific wavelength, power, or frequency. Since a single laser is susceptible to environmental interference, it suffers from low resolution and large errors, which limits the application scenarios of this type of device and makes it difficult to adapt to complex scenario requirements. Utility Model Content
[0004] This invention provides a dual-core laser device with two independently designed laser units that work together as needed. It integrates the advantages of two lasers, and by complementing the characteristics of the two units, it solves the shortcomings of a single laser and breaks through the functional or performance limitations of a single device to adapt to more complex scenario requirements.
[0005] A dual-core laser device, comprising: frame; A control panel, which is located inside the frame; An outer casing, which covers the periphery of the frame; A display component is disposed on the outer side of the housing; Laser units, wherein two laser units are independently arranged along the inner side of the frame; and A heat dissipation component is located at the bottom of the frame and is used to dissipate heat from the laser unit.
[0006] Preferably, the display assembly includes a rear cover of the display screen, a front cover of the display screen, and a display screen disposed between the rear cover of the display screen and the front cover of the display screen, and the side wall of the outer casing is provided with a screen hinge that is rotatably connected to the rear cover of the display screen.
[0007] Preferably, the top of the outer shell is also provided with a storage cavity, the storage cavity is provided with probe pearl cotton, and the top of the storage cavity is rotatably connected to the storage box cover through the storage box cover pivot.
[0008] Preferably, the top wall of the outer shell is provided with a magnet for attracting the storage box lid, and the inner side wall of the storage box lid is provided with a magnetic sheet.
[0009] Preferably, the frame includes a rectangular frame and two horizontally arranged shelves in the vertical direction of the rectangular frame, with the two laser units arranged on the shelves.
[0010] Preferably, the laser unit includes a laser main power supply and a laser capacitor, and the laser main power supply is also electrically connected to a 12V power supply, a 24V power supply, an infrared power supply and a photon power supply.
[0011] Preferably, the outer side of the housing is provided with an air switch, a power socket, and a foot switch that are electrically connected to the control board.
[0012] Preferably, the housing is provided with an emergency stop switch and a key switch electrically connected to the control board on one side of the display component.
[0013] Preferably, the frame has a mounting plate on one side of the display component, and the mounting plate has a handle plug-in shell extending to the outside of the housing; The outer casing has a photon handle holder on one side wall and a laser handle holder on the other side wall.
[0014] Preferably, the heat dissipation assembly includes a water radiator, a water pump, a water tank, and a water nozzle disposed inside the frame.
[0015] As can be seen from the above technical solutions, the present invention has the following beneficial effects: In the present invention, the two laser units are arranged independently inside the frame, that is, the laser device of this embodiment has two laser cavities and two gain media, so that each laser unit can generate laser with a specific wavelength, power and frequency. In this way, the two laser units can switch output or output in coordination through the control system. Specifically, when switching output, the corresponding unit can be started separately for different tasks to adapt to different tasks; when outputting in coordination, the two laser units can work together to adapt to some scenarios. Attached Figure Description
[0016] Figure 1 This is one of the exploded schematic diagrams of this utility model; Figure 2 This is the second exploded schematic diagram of this utility model; Figure 3 This is a perspective view of the present invention.
[0017] In the diagram: 10. Frame; 110. Rectangular frame; 120. Shelf; 130. Mounting plate; 140. Handle plug-in housing; 20. Control board; 30. Housing; 310. Probe pearl cotton; 320. Storage box lid hinge; 330. Storage box lid; 340. Magnet; 350. Magnetic sheet; 360. Circuit switch; 370. Power socket; 380. Foot switch; 391. Emergency stop switch; 392. Key switch; 410. Rear shell of display screen; 420. Front shell of display screen; 430. Display screen; 440. Screen hinge; 510. Laser main power supply; 520. Laser capacitor; 530. 12V power supply; 540. 24V power supply; 550. Infrared sight power supply; 560. Photon power supply; 610. Water radiator; 620. Water pump; 630. Water tank; 640. Water nozzle; 710. Photon handle bracket; 720. Laser handle bracket. Detailed Implementation
[0018] A preferred embodiment of the present invention will now be described in detail with reference to the accompanying drawings.
[0019] To achieve the above objectives, the embodiments of this utility model adopt the following technical solutions: (Refer to...) Figure 1 , Figure 2 , Figure 3 A dual-core laser device includes a frame 10, a control board 20, a housing 30, a display component, laser units, and a heat dissipation component. The control board is located inside the frame 10, the housing 30 completely covers the periphery of the frame 10, the display component is located on the outer side of the housing 30, and two laser units are independently arranged along the inner side of the frame 10. The heat dissipation component is located at the bottom of the frame 10 for cooling the laser units. In use, the two laser units are independently arranged inside the frame. That is, the laser device of this embodiment has two laser cavities and two gain media, allowing each laser unit to independently generate lasers of specific wavelengths, power, and frequencies. Thus, the two laser units can switch outputs or work together through a control system. Specifically, during output switching, the corresponding unit can be activated individually for different tasks to adapt to different needs; during collaborative output, the two laser units can work together to adapt to certain scenarios. Therefore, the dual laser units of this invention are independently designed and operate collaboratively as needed, which can integrate the advantages of two lasers. By complementing the characteristics of the dual units, the shortcomings of a single laser are solved, and the functional or performance limitations of a single device are overcome, so as to adapt to more complex scenario requirements.
[0020] In addition, traditional single-frequency laser instruments in industry are susceptible to environmental interference. This application can use dual laser units to compare two laser frequency signals, which can eliminate some errors and improve the resolution from the micrometer level to the nanometer level.
[0021] Reference Figure 1 , Figure 2 , Figure 3 As a preferred technical solution in this embodiment, the display component includes a rear shell 410, a front shell 420, and a display 430. The rear shell 410 and the front shell 420 can be combined to form a housing structure. The display 430 is disposed within the housing structure composed of the rear shell and the front shell. Meanwhile, in order to realize the rotational adjustment of the display component relative to the outer shell 30, a screen pivot 440 is fixedly provided on the side wall of the outer shell 30, and the screen pivot 440 is rotatably connected to the rear shell 410.
[0022] Reference Figure 1 In some embodiments, in order to store the probe, a storage cavity is provided on the top of the housing 30, and a probe pearl cotton 310 is provided in the storage cavity. The probe pearl cotton has several slots for placing the probe. When in use, the probe can be placed in the slot.
[0023] Furthermore, a storage box cover pivot 320 is fixedly connected to the top of the storage cavity, and a storage box cover 330 is rotatably connected to the storage box cover pivot 320 so as to open and close the storage cavity using the storage box cover.
[0024] Furthermore, the top wall of the outer shell 30 is provided with a magnet 340 for adsorbing the storage box lid 330. Correspondingly, a magnetic sheet 350 is provided on the inner side wall of the storage box lid 330. In this way, when the storage box lid 330 is closed, the magnet and the magnetic sheet can be used to achieve the fastening of the storage box lid 330 with the outer shell 30.
[0025] In some embodiments, the frame 10 includes a rectangular frame 110 and two shelf 120s, with the two shelf 120s being horizontally arranged in the vertical direction of the rectangular frame, so that two laser units can be arranged on the shelf 120s.
[0026] Furthermore, the laser unit includes a laser main power supply 510 and a laser capacitor 520. The laser main power supply is also electrically connected to a 12V power supply 530, a 24V power supply 540, an infrared power supply 550, and a photon power supply 560. It should be noted that this laser unit operates according to the three essential elements of laser operation: a pump source, a working medium, and a resonant cavity. During use, the xenon lamp in the photon handle pulses to provide the pump source. Simultaneously, the Nd:YAG laser rod in the photon handle acts as the working medium, absorbing the light emitted by the xenon lamp and converting it into 1064nm spontaneous emission light. The reflective surfaces at both ends of the laser rod form a resonant cavity, which stimulates the amplification of the spontaneous emission light, transforming it into a 1064nm laser.
[0027] In addition, the photonic power supply 560 can charge the laser capacitor 520 to store electrical energy, while the laser capacitor 520 can discharge the xenon lamp, converting electrical energy into light energy.
[0028] The 12V power supply 530, 24V power supply 540, infrared sight power supply 550, and photon power supply 560 are all DC power supplies. Among them, the 12V power supply 530 is used to power the control board 20, the 24V power supply 540 is used to power the water pump, the infrared sight power supply 550 is used to power the infrared sight, and the photon power supply 560 is used to power the laser capacitor.
[0029] Furthermore, the outer side of the housing 30 is provided with an air switch 360, a power socket 370 and a foot switch 380 that are electrically connected to the control board 20; Furthermore, the housing 30 is provided with an emergency stop switch 391 and a key switch 392 that are electrically connected to the control board 20 on one side of the display component; Meanwhile, the frame 10 is provided with a mounting plate 130 on one side of the display component. The mounting plate is provided with a handle plug-in shell 140 extending to the outside of the outer shell 30. The handle plug-in shell 140 is connected to the control board 20 inside the frame 10, and is also connected to the laser capacitor 520, various sensors, control circuits and heat dissipation components inside the frame 10. The handle plug-in shell 140 has a plug-in function, which is mainly to facilitate the replacement of the handle and transportation.
[0030] The outer casing 30 has a photon handle hanger 710 on one side wall and a laser handle hanger 720 on the other side wall.
[0031] Furthermore, the heat dissipation assembly includes a water radiator 610, a water pump 620, a water tank 630, and a water nozzle 640 disposed inside the frame 10. The water nozzle 640 is connected to the water tank 630 inside the frame 10. In use, the water first enters the water tank 630 through the water nozzle 640, and the amount of water added is controlled to an appropriate level. It should be noted that the photon handle is equipped with a cooling water pipe that circulates with the water tank 630. Thus, during heat dissipation, the water circulation path is as follows: the water pump 620 draws water from the water tank 630 into the photon handle to dissipate heat from the light-emitting components of the photon handle. The hot water after absorbing heat flows back to the water radiator 610, where the heat is discharged by the cooling fan and flows back to the water tank 630. This continuous circulation achieves heat dissipation for the laser unit.
[0032] In addition, when it is necessary to transport the dual-core laser or to change the cooling water of the heat dissipation components, the water in the laser can be discharged through the water nozzle 640 on the water tank 630, and subsequent operations can be carried out.
[0033] The above-described embodiments are merely preferred embodiments of the present utility model and are not intended to limit the scope of the present utility model. Various modifications and improvements made by those skilled in the art to the technical solutions of the present utility model without departing from the spirit of the present utility model should fall within the protection scope defined by the claims of the present utility model.
Claims
1. A dual-core laser, characterized in that, include: Framework (10); Control panel (20), the control panel is located inside the frame (10); The outer casing (30) covers the periphery of the frame (10); Display component, the display component being disposed on the outer side of the housing (30); Laser units, wherein two laser units are independently arranged along the inner side of the frame (10); and A heat dissipation component is provided at the bottom of the frame (10) for dissipating heat from the laser unit.
2. The dual-core laser instrument according to claim 1, characterized in that, The display assembly includes a rear cover (410) of the display screen, a front cover (420) of the display screen, and a display screen (430) disposed between the rear cover and the front cover. The side wall of the outer shell (30) is provided with a screen pivot (440) that is rotatably connected to the rear cover (410) of the display screen.
3. The dual-core laser instrument according to claim 1, characterized in that, The top of the outer shell (30) is also provided with a storage cavity, and the storage cavity is provided with probe pearl cotton (310). The top of the storage cavity is rotatably connected to the storage box cover (330) through the storage box cover pivot (320).
4. The dual-core laser instrument according to claim 3, characterized in that, The top wall of the outer shell (30) is provided with a magnet (340) for adsorbing the storage box cover (330), and the inner side wall of the storage box cover (330) is provided with a magnetic sheet (350).
5. The dual-core laser instrument according to claim 3, characterized in that, The frame (10) includes a rectangular frame (110) and two horizontally arranged shelves (120) in the vertical direction of the rectangular frame, with the two laser units arranged on the shelves (120).
6. The dual-core laser device according to claim 5, characterized in that, The laser unit includes a laser main power supply (510) and a laser capacitor (520). The laser main power supply is also electrically connected to a 12V power supply (530), a 24V power supply (540), an infrared power supply (550), and a photon power supply (560).
7. The dual-core laser device according to claim 6, characterized in that, The outer side of the housing (30) is provided with an air switch (360), a power socket (370) and a foot switch (380) that are electrically connected to the control board (20).
8. The dual-core laser device according to claim 7, characterized in that, The housing (30) is provided with an emergency stop switch (391) and a key switch (392) electrically connected to the control board (20) on one side of the display component.
9. The dual-core laser instrument according to claim 8, characterized in that, The frame (10) has a mounting plate (130) on one side of the display component, and the mounting plate has a handle plug-in shell (140) extending to the outside of the housing (30). The outer casing (30) has a photon handle hanger (710) on one side wall and a laser handle hanger (720) on the other side wall.
10. The dual-core laser instrument according to claim 9, characterized in that, The heat dissipation assembly includes a water radiator (610), a water pump (620), a water tank (630), and a water nozzle (640) disposed inside the frame (10).