Carbon dioxide laser treatment device

By introducing a cooling module into the carbon dioxide laser therapy equipment and monitoring and controlling the temperature of the laser emission module in real time, the noise and cooling instability problems caused by air cooling technology are solved, and the stable operation and long life of the equipment are achieved.

CN223336196UActive Publication Date: 2025-09-16BEIJING HERTZ MEDICAL TECH CO LTD
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Patent Information

Application Number
CN202422048731.5
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-08-23
Publication Date
2025-09-16
Estimated Expiration
2034-08-23

AI Technical Summary

Technical Problem

In existing carbon dioxide laser therapy equipment, the noise generated when cooling the laser emission end with air cooling technology and the unstable cooling effect affect the performance and life of the equipment.

Method used

A cooling module is used, including a circulating heat conduction plate, a water tank and a temperature detection unit. Through a circulating pump and a guide pipe system, the temperature of the laser emission module is monitored and controlled in real time to prevent overheating.

Benefits of technology

Effectively control the temperature of the laser emission module to ensure stable operation of the equipment, extend its service life, reduce noise interference, and improve the safety and comfort of treatment.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the technical field of laser treatment equipment, and discloses a carbon dioxide laser treatment device, which comprises a movable base; the host is arranged above the movable base, the host is fixedly connected with the movable base, and a laser emission module is arranged in the host; the light guide treatment module is arranged above the host, one end of the light guide treatment module penetrates through the outer side wall of the host to be communicated with the laser generation module, and the light guide treatment module is used for guiding the laser emitted by the laser emission module to a preset skin treatment area according to a preset light guide path; the cooling module is arranged in the host, one end of the cooling module is connected with the inner bottom surface in the host, the other end of the cooling module is connected with the laser emission module, and the cooling module is used for cooling the operation temperature when the laser emission module emits laser. According to the utility model, through combination and cooperation of all the modules, accurate laser guidance and efficient heat dissipation are effectively realized, so that the treatment effect and the reliability of the equipment are improved.
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Description

Technical Field

[0001] The utility model relates to the technical field of laser treatment equipment, in particular to a carbon dioxide laser treatment device. Background Art

[0002] CO2 laser therapy is an advanced medical device that utilizes high-energy CO2 laser beams to treat a variety of skin and tissue conditions. By precisely vaporizing the affected area on the surface of the skin or within the tissue, it effectively removes acne scars, fine lines, dark spots, and skin tags. It can also be used in cosmetic surgery and laser wrinkle reduction. CO2 laser treatment offers high precision and a relatively quick recovery time, making it suitable for all skin types.

[0003] Conventional CO2 laser therapy devices generate high temperatures during operation. Existing technologies often rely on air cooling to mitigate this high temperature. However, this cooling method does have several significant drawbacks. First, the air cooling system generates significant noise during operation, which can disrupt the tranquility of the surrounding environment and pose a potential threat to the operator's hearing. Furthermore, the cooling effect of the air cooling system is significantly affected by ambient temperature. When the external ambient temperature rises, its cooling efficiency is significantly limited, resulting in a delay in the cooling process. This delay can not only impair the performance of the laser emitter but, in extreme conditions, can also damage it due to accumulated heat, shortening the overall lifespan of the device and negatively impacting treatment effectiveness.

[0004] Therefore, there is an urgent need to invent a carbon dioxide laser treatment device to solve the problems of noise and unstable cooling effect caused by using air cooling technology to cool the temperature generated by the operation of the laser emitting end in the existing technology. Utility Model Content

[0005] In view of this, the present invention addresses the deficiencies of the existing technology and proposes a carbon dioxide laser treatment device, which aims to solve the problems of noise and unstable cooling effect caused by using air cooling technology to cool the temperature generated by the operation of the laser emitting end.

[0006] The utility model provides a carbon dioxide laser treatment device, comprising:

[0007] Mobile base;

[0008] A host is arranged above the mobile base, the host is fixedly connected to the mobile base, and a laser emission module is arranged inside the host;

[0009] a light-guiding therapy module, disposed above the main unit, one end of which passes through the outer wall of the main unit and communicates with the laser emission module. The light-guiding therapy module is configured to guide the laser light emitted by the laser emission module to a preset skin treatment area according to a preset light-guiding path;

[0010] A cooling module is arranged inside the host, one end of the cooling module is connected to the inner bottom surface of the host, and the other end of the cooling module is connected to the laser emission module. The cooling module is used to cool the operating temperature of the laser emission module when emitting laser.

[0011] Furthermore, the host includes:

[0012] A shell, the bottom of which is connected to the mobile base, an operating space is provided inside the shell, and a guide hole is opened in the middle and lower part of one side of the shell;

[0013] a laser emitting module, disposed inside the operating space, the laser emitting module being fixedly connected to an inner wall of the operating space;

[0014] a control module, embedded in the outer wall of the upper middle portion of the housing, one end of the control module being electrically connected to the laser emitting module, and the control module being used to control the laser emitting module to emit laser according to preset instructions;

[0015] an energy supply module disposed inside the operating space, one end of the energy supply module being electrically connected to the laser emission module and the control module respectively, and the other end of the energy supply module being disposed on a side of the housing away from the control module after passing through the outer wall of the housing;

[0016] There are two groups of sliding rods, and the two groups of sliding rods are arranged opposite to each other inside the operating space. One side of the sliding rod is fixedly connected to the inner wall of the operating space, and the other side of the sliding rod is provided with a sliding groove.

[0017] Furthermore, the host also includes a power-off pedal, which is arranged in the lower middle part of the shell, and the power-off pedal is electrically connected to the energy supply module, and the power-off pedal is used to interrupt the connection status between the energy supply module and the laser emission module and the control module.

[0018] Furthermore, the cooling module includes:

[0019] A circulating heat conducting plate is provided on the outside of the laser emitting module, the circulating heat conducting plate is connected to the outer side wall of the laser emitting module, and the circulating heat conducting plate is provided with a circulating pump;

[0020] A water tank is disposed inside the chute, the top of the water tank is slidably connected to the chute, and coolant is placed inside the water tank, wherein two groups of communication holes are opened on the top of the water tank;

[0021] a first guide pipe and a second guide pipe, one end of each of the first guide pipe and the second guide pipe being connected to the circulation pump, one end of each of the first guide pipe and the second guide pipe being respectively disposed inside the water tank after passing through the communicating hole, the first guide pipe being used to guide the coolant to the circulation pump, and the second guide pipe being used to guide the coolant of the circulation pump to the inside of the water tank;

[0022] A third flow guide pipe, one end of which is connected to the water tank, and the other end of which is connected to the flow guide hole. The third flow guide pipe is used to guide the coolant to the inside of the water tank, and the second flow guide pipe is also used to guide the coolant inside the water tank to the outside of the shell.

[0023] Furthermore, the cooling module further includes:

[0024] a temperature detection unit, disposed on the outside of the laser emitting module, connected to the outer side wall of the laser emitting module, and used to detect the real-time temperature of the laser emitting module;

[0025] The central control unit is connected to the temperature detection unit and the circulating heat conducting plate respectively. The central control unit is used to determine whether to turn on or off the circulating pump according to the real-time temperature of the laser emitting module.

[0026] Furthermore, the mobile base includes:

[0027] A base is provided below the shell and is fixedly connected to the bottom of the shell, wherein a ventilation ring is provided in the middle of the lower surface of the base;

[0028] A guide fan, wherein a groove is provided in the middle of the upper surface of the base, the guide fan is fixedly connected to the inner bottom surface of the groove, and the guide fan is used to guide the temperature inside the shell to the ventilation ring;

[0029] Four groups of universal wheels are provided, and the four groups of universal wheels are respectively arranged at the corners of the base, and the universal wheels are fixedly connected to the lower surface of the base.

[0030] Furthermore, the control module includes:

[0031] a display unit embedded in the upper middle portion of the housing, the display unit being provided with a plurality of the preset instructions, and the display unit being used to obtain a selected preset instruction;

[0032] a control unit, electrically connected to the display unit, the laser emission module, and the energy supply module, respectively, the control unit being configured to control the laser emission module to emit laser light according to the preset instructions, and the control unit being further configured to transmit the electrical energy supplied by the energy supply module to the laser emission module;

[0033] A control panel is embedded below the display unit and is electrically connected to the control unit and the display unit respectively. The control panel is provided with an emergency disconnect button, a display unit brightness adjustment button and a lock power switch button.

[0034] Furthermore, the laser emission module is a metal laser or a glass laser.

[0035] Compared to existing technologies, the present invention offers the following advantages: The movable base provides support for the main unit, ensuring that the device does not wobble or tilt during use, thereby improving treatment accuracy. Furthermore, the base's mobility allows for flexible movement between different treatment areas, allowing users to easily adjust the device's position to accommodate varying treatment needs and space constraints. This design not only enhances operational convenience but also improves overall treatment efficiency. Secondly, the design of the light therapy module allows the laser to accurately irradiate the target skin area along a pre-defined light path. This design ensures high laser efficiency, allowing treatment to be targeted to the desired area, thereby enhancing treatment effectiveness. Precise laser guidance not only helps achieve the desired treatment effect but also reduces potential damage to surrounding healthy skin. Finally, the cooling module effectively controls the temperature of the laser emission module during operation, preventing overheating. This design maintains the laser emission module within the optimal operating temperature range, ensuring stable operation and long-term use of the device. Furthermore, effective cooling reduces the impact of overheating on treatment effectiveness, ensuring a safe and comfortable treatment process. BRIEF DESCRIPTION OF THE DRAWINGS

[0036] Figure 1 A schematic structural diagram of a carbon dioxide laser treatment device provided in an embodiment of the present utility model;

[0037] Figure 2 A bottom view of a carbon dioxide laser treatment device provided by an embodiment of the present utility model;

[0038] Figure 3 A schematic diagram of the dissected structure of a host provided by an embodiment of the utility model;

[0039] Among them: 100, mobile base; 110, universal wheel; 120, ventilation ring; 200, main unit; 210, shell; 220, laser emission module; 231, display unit; 233, control panel; 234, emergency disconnect button; 235, display unit brightness adjustment button; 236, lock power switch button; 250, slide bar; 300, light therapy module; 410, circulating heat conduction plate; 420, water tank; 430, first diversion pipe. DETAILED DESCRIPTION

[0040] The following will be combined with the drawings in the embodiments of this application to clearly and completely describe the technical solutions in the embodiments of this application. Obviously, the embodiments described are only part of the embodiments of this application, not all of the embodiments. Based on the embodiments in this application, all other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of this application.

[0041] In the description of this application, it should be understood that the terms "center", "up", "down", "front", "back", "left", "right", "vertical", "horizontal", "top", "bottom", "inside", "outside", etc., indicating the orientation or position relationship, are based on the orientation or position relationship shown in the accompanying drawings, and are only for the convenience of describing this application and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, be constructed and operated in a specific orientation, and therefore cannot be understood as a limitation on this application.

[0042] The terms "first" and "second" are used for descriptive purposes only and should not be construed as indicating or implying relative importance or implicitly specifying the number of the technical features being referred to. Thus, a feature specified as "first" or "second" may explicitly or implicitly include one or more of such features. Throughout this application, unless otherwise specified, "plurality" means two or more.

[0043] In the description of this application, it should be noted that, unless otherwise expressly specified or limited, the terms "mounted," "connected," and "connected" should be understood in a broad sense. For example, they can refer to fixed, detachable, or integral connections; mechanical or electrical connections; direct or indirect connections through an intermediate medium; and internal communication between two components. Those skilled in the art will understand the specific meanings of the above terms in this application based on the specific circumstances.

[0044] CO2 laser therapy is an advanced medical device that utilizes high-energy CO2 laser beams to treat a variety of skin and tissue conditions. By precisely vaporizing the affected area on the surface of the skin or within the tissue, it effectively removes acne scars, fine lines, dark spots, and skin tags. It can also be used in cosmetic surgery and laser wrinkle reduction. CO2 laser treatment offers high precision and a relatively quick recovery time, making it suitable for all skin types.

[0045] Conventional CO2 laser therapy devices generate high temperatures during operation. Existing technologies often rely on air cooling to mitigate this high temperature. However, this cooling method does have several significant drawbacks. First, the air cooling system generates significant noise during operation, which can disrupt the tranquility of the surrounding environment and pose a potential threat to the operator's hearing. Furthermore, the cooling effect of the air cooling system is significantly affected by ambient temperature. When the external ambient temperature rises, its cooling efficiency is significantly limited, resulting in a delay in the cooling process. This delay can not only impair the performance of the laser emitter but, in extreme conditions, can also damage it due to accumulated heat, shortening the overall lifespan of the device and negatively impacting treatment effectiveness.

[0046] In view of this, the present invention addresses the deficiencies of the existing technology and proposes a carbon dioxide laser treatment device, which aims to solve the problems of noise and unstable cooling effect caused by using air cooling technology to cool the temperature generated by the operation of the laser emitting end.

[0047] like Figure 1-Figure 3 As shown, the present invention provides a carbon dioxide laser treatment device, comprising: a mobile base 100, a main unit 200, a light guide treatment module 300, and a cooling module. The main unit 200 is arranged above the mobile base 100, and is fixedly connected to the mobile base 100. A laser emission module 220 is arranged inside the main unit 200; the light guide treatment module 300 is arranged above the main unit 200, and one end of the light guide treatment module 300 passes through the outer wall of the main unit 200 and is connected to the laser generating module. The light guide treatment module 300 is used to guide the laser emitted by the laser emission module 220 to a preset skin treatment area according to a preset light guide path; the cooling module is arranged inside the main unit 200, and one end of the cooling module is connected to the inner bottom surface of the main unit 200, and the other end of the cooling module is connected to the laser emission module 220. The cooling module is used to cool the operating temperature of the laser emission module 220 when emitting laser light.

[0048] Specifically, the base provides stable support, ensuring the main unit 200 remains stable during treatment, preventing vibration or tilt from affecting treatment accuracy. Furthermore, the design of the mobile base 100 allows for free movement between different treatment areas, making it easy for the operator to adjust the device's position as needed to accommodate different treatment scenarios and spatial layouts. Secondly, the integration of the laser emission module 220 and the light therapy module 300 enables precise laser guidance. The laser emission module 220, located within the main unit 200, generates high-energy laser light. The light therapy module 300, through a connection through the outer wall of the main unit 200, precisely guides the laser light to the designated skin treatment area. This light-guiding design allows the laser path to be customized according to treatment needs, ensuring accurate laser irradiation of the target area, thereby enhancing treatment effectiveness and safety. This mechanism effectively prevents laser interference with surrounding healthy skin, maximizing the targeted and effective treatment. Finally, a cooling module is located within the main unit 200, with one end connected to the bottom surface of the main unit 200 and the other end connected to the laser emission module 220. This heat dissipation controls the temperature of the laser emission module 220, preventing overheating. By maintaining the laser emitting module 220 within a suitable operating temperature range, the cooling module not only ensures stable operation of the device, but also extends its service life and maintains temperature stability during treatment. This thermal management measure prevents overheating from affecting device performance while ensuring safety and comfort during treatment.

[0049] In some embodiments of the present application, the host 200 includes: a shell 210, a laser emission module 220, a control module, an energy supply module, a slide bar 250, and a power-off pedal. The bottom of the shell 210 is connected to the mobile base 100, and an operating space is provided inside the shell 210. A guide hole is provided in the middle and lower part of one side of the shell 210; the laser emission module 220 is provided inside the operating space, and the laser emission module 220 is fixedly connected to the inner wall of the operating space; the control module is embedded in the outer wall of the middle and upper part of the shell 210, and one end of the control module is electrically connected to the laser emission module 220. The control module is used to control the laser emission module 220 to emit laser according to preset instructions; the energy supply module is provided inside the operating space, and one end of the energy supply module is respectively It is electrically connected to the laser emission module 220 and the control module, and the other end of the energy supply module is arranged on the side of the shell 210 away from the control module after passing through the outer wall of the shell 210; there are two groups of slide bars 250, and the two groups of slide bars 250 are relatively arranged inside the operating space, one side of the slide bar 250 is fixedly connected to the inner wall of the operating space, and the other side of the slide bar 250 is provided with a slide groove; the power-off pedal is arranged in the middle and lower part of the shell 210, and the power-off pedal is electrically connected to the energy supply module. The power-off pedal is used to interrupt the connection between the energy supply module and the laser emission module 220 and the control module.

[0050] Specifically, by connecting the bottom of the housing 210 to the mobile base 100, the device provides a stable foundation, ensuring that the main unit 200 does not tilt or move during treatment. Secondly, an operating space is provided within the housing 210 to accommodate the various functional modules, ensuring their stable operation in their designated positions. Furthermore, the laser emission module 220 is mounted within the operating space and fixedly connected to the inner wall to ensure stable laser emission. This module is responsible for generating the required laser light and precisely directing it to the treatment area via the light guide module 300. The stable installation of the laser emission module 220 is crucial to ensuring consistent laser output and reliable treatment results. The control module is embedded in the outer wall of the upper middle portion of the housing 210 and electrically controls the laser emission of the laser emission module 220. The control module adjusts the laser intensity and emission time according to user-preset instructions, thereby achieving precise control of the treatment process. Its design allows the operator to flexibly adjust laser parameters according to different treatment needs, enhancing the device's applicability and therapeutic effectiveness. The power supply module provides the necessary power to the laser emission module 220 and the control module. One end of the energy supply module is electrically connected to the laser emission module 220 and the control module respectively, ensuring that these two key components can obtain a stable power supply. The other end of the energy supply module passes through the outer wall of the shell 210 and is arranged on the side of the shell 210 away from the control module. This design helps to reasonably arrange the power lines and avoid interfering with the normal operation of other functional modules. Finally, the power-off pedal provides a key safety function. It is electrically connected to the energy supply module and is used to quickly interrupt the electrical connection between the energy supply module and the laser emission module 220 and the control module when necessary. The pedal provides a quick power-off option for emergencies, helps to ensure safety during operation, and prevents equipment failures or safety hazards due to power supply problems.

[0051] In some embodiments of the present application, the cooling module includes: a circulating heat conduction plate 410, a water tank 420, a first conduit 430, a second conduit, a third conduit, a temperature detection unit, and a central control unit. The circulating heat conduction plate 410 is arranged on the outside of the laser emission module 220, and the circulating heat conduction plate 410 is connected to the outer wall of the laser emission module 220, wherein the circulating heat conduction plate 410 is provided with a circulating pump; the water tank 420 is arranged inside the chute, and the top of the water tank 420 is slidably connected to the chute, and a coolant is placed inside the water tank 420, wherein the top of the water tank 420 is provided with two groups of connecting holes; the first conduit 430 and the second conduit, one end of the first conduit 430 and the second conduit are respectively connected to the circulating pump, One end of the first and second conduits passes through the connecting hole and is respectively disposed within the water tank 420. The first conduit 430 is used to direct the coolant to the circulation pump, and the second conduit is used to direct the coolant from the circulation pump to the interior of the water tank 420. One end of the third conduit is connected to the water tank 420, and the other end of the third conduit is connected to the conduit hole. The third conduit is used to direct the coolant to the interior of the water tank 420, and the second conduit is also used to direct the coolant in the interior of the water tank 420 to the exterior of the housing 210. A temperature detection unit is disposed outside the laser emitting module 220 and is connected to the outer wall of the laser emitting module 220. The temperature detection unit is used to detect the real-time temperature of the laser emitting module 220. The central control unit is respectively connected to the temperature detection unit and the circulating heat conducting plate 410. The central control unit is used to determine whether to turn the circulating pump on or off based on the real-time temperature of the laser emitting module 220.

[0052] Specifically, a circulating heat transfer plate 410 is installed on the outside of the laser emitting module 220, directly connected to its outer wall. An internal circulating pump circulates coolant between the heat transfer plate and the water tank 420, ensuring that heat is quickly and evenly transferred from the laser emitting module 220 to the coolant. This design effectively reduces the temperature of the laser emitting module 220, preventing it from overheating, thereby ensuring stable laser output and long-term reliable operation of the equipment. Secondly, by placing the water tank 420 inside the chute, it serves as the core component for storing and circulating the coolant. The top of the water tank 420 is slidably connected to the chute, facilitating adjustment and maintenance. The water tank 420 stores coolant and is connected to the conduit system through two sets of connecting holes on the top. The coolant flows through a first conduit 430 and a second conduit. The first conduit 430 directs the coolant from the water tank 420 to the circulating pump, while the second conduit returns the cooled liquid from the circulating pump to the water tank 420. Through this circulation method, the coolant can continuously exchange heat with the laser emitting module 220, maintaining the temperature balance of the system. The third flow conduit is connected to the water tank 420 at one end and to the flow guide hole of the housing 210 at the other end. This allows the operator to quickly replenish or drain the coolant inside the water tank 420. By placing a temperature detection unit on the outside of the laser emitting module 220, the temperature of the laser emitting module 220 can be monitored in real time. The temperature detection unit is connected to the outer wall of the laser emitting module 220 and transmits the measured temperature data to the central control unit. This allows the temperature detection unit to provide accurate temperature feedback to the central control unit, which is responsible for controlling the circulation pump based on the data from the temperature detection unit. The central control unit is connected to the temperature detection unit and the circulating heat conduction plate 410 and can decide whether to turn the circulation pump on or off based on the real-time temperature of the laser emitting module 220. By intelligently adjusting the operating status of the circulating pump, the central control unit ensures that the laser transmitter module 220 operates within a safe temperature range, thus preventing equipment failure or performance degradation caused by overheating. This mechanism enables the cooling system to dynamically respond to temperature changes, optimizing the cooling efficiency and safety of the equipment.

[0053] Preferably, the central control unit is configured with a preset temperature threshold. When the temperature of the laser emission module 220 is equal to or higher than the preset temperature threshold, the central control unit controls the circulation pump to be turned on.

[0054] Preferably, the coolant is one or more combinations of cooling water or cooling oil;

[0055] Preferably, the central control unit is a microcontroller, a digital signal processor or a programmable logic controller.

[0056] In some embodiments of the present application, the mobile base 100 includes: a base, a guide fan, and universal wheels 110. The base is disposed below the housing 210 and is fixedly connected to the bottom of the housing 210. A ventilation ring 120 is provided in the middle of the lower surface of the base. A groove is provided in the middle of the upper surface of the guide fan base, and the guide fan is fixedly connected to the inner bottom surface of the groove. The guide fan is used to guide the temperature inside the housing 210 to the ventilation ring 120. Four sets of universal wheels 110 are provided, and the four sets of universal wheels 110 are respectively disposed at the corners of the base, and the universal wheels 110 are fixedly connected to the lower surface of the base.

[0057] Specifically, by installing the base below the housing 210 and ensuring its stability through a fixed connection, the entire device is protected from displacement due to vibration or instability during operation. A vent ring 120, located in the middle of the base's lower surface, allows air circulation, helping to dissipate heat from the device. The design of the vent ring 120 not only helps maintain the device's operating temperature but also improves cooling efficiency, thereby preventing performance degradation or malfunction due to overheating. Secondly, by positioning the guide fan in a groove on the base's upper surface, it accelerates air flow and effectively removes heat from the housing 210 through forced convection. This further improves the heat dissipation capacity of the water tank 420, ensuring that the laser emission module 220 and other internal components operate within a safe temperature range. The provision of universal wheels 110 enhances the device's mobility and ease of operation. Four sets of universal wheels 110 are mounted at the corners of the base, enabling flexible movement of the device in various directions. This design allows the operator to easily move the device when necessary to adjust its position or change the treatment area, without the need for additional tools or complex mechanical mechanisms. The universal wheels 110 are fixedly connected to the lower surface of the base to ensure stability and balance during movement and prevent the device from tilting or becoming unstable due to movement.

[0058] In some embodiments of the present application, the control module includes: a display unit 231, a control unit and a control panel 233. The display unit 231 is embedded in the upper middle part of the housing 210. The display unit 231 is provided with a number of preset instructions. The display unit 231 is used to obtain the selected preset instructions. The control unit is electrically connected to the display unit 231, the laser emission module 220 and the energy supply module respectively. The control unit is used to control the laser emission module 220 to emit laser according to the preset instructions. The control unit is also used to transmit the electrical energy supplied by the energy supply module to the laser emission module 220. The control panel 233 is embedded below the display unit 231. The control panel 233 is electrically connected to the control unit and the display unit 231 respectively. The control panel 233 is provided with an emergency disconnect button 234, a display unit brightness adjustment button 235 and a lock power switch button 236.

[0059] Specifically, the display unit 231 is embedded in the upper center portion of the housing 210 and serves as the user interface for interaction with the device. The display unit 231 not only displays the device's operating status and parameter settings, but also provides several preset commands for the user to select. The user can intuitively view the current operating mode, laser emission settings, and other important system information through the display unit 231. This design allows the user to easily select and adjust the device's operating mode, ensuring that the device can be precisely tailored to treatment needs. The display unit 231 enhances the visualization of device operation, allowing the user to fully understand the device's operating status and settings before treatment. Secondly, the control unit is responsible for adjusting the device's operating status based on the preset commands selected by the user via the display unit 231. The control unit is electrically connected to the display unit 231, the laser emission module 220, and the energy supply module to ensure that commands are correctly executed. It not only controls the laser output of the laser emission module 220 but also transmits power from the energy supply module to the laser emission module 220. By precisely adjusting the laser intensity and emission timing, the control unit ensures the effectiveness and safety of the laser treatment process. The power supply of the energy supply module is regulated by the control unit, which ensures the stable operation of the laser emission module 220 and prevents the treatment effect from being affected by insufficient or unstable power. Finally, by locating the control panel 233 below the display unit 231, an interface for users to directly operate the device is provided. The control panel 233 includes an emergency disconnect button 234, a display unit brightness adjustment button 235, and a power switch lock button 236. The emergency disconnect button 234 allows the user to quickly interrupt the power supply of the device in an emergency, thereby ensuring safety during operation; the display unit brightness adjustment button 235 allows the user to adjust the brightness of the display unit 231 according to changes in ambient light to ensure clear and visible operation information; the power switch lock button 236 is used to lock the power status to prevent unauthorized operation or misoperation. These function buttons provide a quick operation method, making the control of the device more flexible and safe.

[0060] In some embodiments of the present application, the laser emission module 220 is a metal laser or a glass laser.

[0061] The CO2 laser treatment device described in each of the above embodiments utilizes a movable base 100 to support the main unit 200, ensuring that the device does not wobble or tilt during use, thereby improving treatment accuracy. Furthermore, the base's mobility allows for flexible movement between treatment areas, allowing users to easily adjust the device's position to accommodate varying treatment needs and space constraints. This design not only enhances operational convenience but also improves overall treatment efficiency. Secondly, the design of the light therapy module 300 allows the laser to accurately irradiate the target skin area along a pre-defined light path. This design ensures high laser efficiency, allowing treatment to be targeted to the desired area, thereby enhancing treatment effectiveness. Precise laser guidance not only helps achieve the desired treatment effect but also reduces potential damage to surrounding healthy skin. Finally, the cooling module effectively controls the operating temperature of the laser emitting module 220, preventing overheating. This design maintains the laser emitting module 220 within the optimal operating temperature range, ensuring stable operation and long-term use of the device. Furthermore, effective cooling reduces the impact of overheating on treatment effectiveness, ensuring a safe and comfortable treatment process.

[0062] Obviously, those skilled in the art may make various modifications and variations to the present invention without departing from the spirit and scope of the present invention. Thus, if such modifications and variations fall within the scope of the claims of the present invention and their equivalents, the present invention is intended to include such modifications and variations.

Claims

1. A carbon dioxide laser treatment device, characterized in that: include: Mobile base; A host is arranged above the mobile base, the host is fixedly connected to the mobile base, and a laser emission module is arranged inside the host; a light-guiding therapy module, disposed above the main unit, one end of which passes through the outer wall of the main unit and communicates with the laser emission module. The light-guiding therapy module is configured to guide the laser light emitted by the laser emission module to a preset skin treatment area according to a preset light-guiding path; A cooling module is arranged inside the host, one end of the cooling module is connected to the inner bottom surface of the host, and the other end of the cooling module is connected to the laser emission module. The cooling module is used to cool the operating temperature of the laser emission module when emitting laser.

2. The carbon dioxide laser treatment device according to claim 1, wherein: The host comprises: A shell, the bottom of which is connected to the mobile base, an operating space is provided inside the shell, and a guide hole is opened in the middle and lower part of one side of the shell; a laser emitting module, disposed inside the operating space, the laser emitting module being fixedly connected to an inner wall of the operating space; a control module, embedded in the outer wall of the upper middle portion of the housing, one end of the control module being electrically connected to the laser emitting module, and the control module being used to control the laser emitting module to emit laser according to preset instructions; an energy supply module disposed inside the operating space, one end of the energy supply module being electrically connected to the laser emission module and the control module respectively, and the other end of the energy supply module being disposed on a side of the housing away from the control module after passing through the outer wall of the housing; There are two groups of sliding rods, and the two groups of sliding rods are arranged opposite to each other inside the operating space. One side of the sliding rod is fixedly connected to the inner wall of the operating space, and the other side of the sliding rod is provided with a sliding groove.

3. The carbon dioxide laser treatment device according to claim 2, wherein: The host also includes a power-off pedal, which is arranged in the lower middle part of the shell, and the power-off pedal is electrically connected to the energy supply module. The power-off pedal is used to interrupt the connection between the energy supply module and the laser emission module and the control module.

4. The carbon dioxide laser treatment device according to claim 3, wherein: The cooling module comprises: A circulating heat conducting plate is provided on the outside of the laser emitting module, the circulating heat conducting plate is connected to the outer side wall of the laser emitting module, and the circulating heat conducting plate is provided with a circulating pump; A water tank is disposed inside the chute, the top of the water tank is slidably connected to the chute, and coolant is placed inside the water tank, wherein two groups of communication holes are opened on the top of the water tank; a first guide pipe and a second guide pipe, one end of each of the first guide pipe and the second guide pipe being connected to the circulation pump, one end of each of the first guide pipe and the second guide pipe being respectively disposed inside the water tank after passing through the communicating hole, the first guide pipe being used to guide the coolant to the circulation pump, and the second guide pipe being used to guide the coolant of the circulation pump to the inside of the water tank; A third flow guide pipe, one end of which is connected to the water tank, and the other end of which is connected to the flow guide hole. The third flow guide pipe is used to guide the coolant to the inside of the water tank, and the second flow guide pipe is also used to guide the coolant inside the water tank to the outside of the shell.

5. The carbon dioxide laser treatment device according to claim 4, characterized in that: The cooling module further comprises: a temperature detection unit, disposed on the outside of the laser emitting module, connected to the outer side wall of the laser emitting module, and used to detect the real-time temperature of the laser emitting module; The central control unit is connected to the temperature detection unit and the circulating heat conducting plate respectively. The central control unit is used to determine whether to turn on or off the circulating pump according to the real-time temperature of the laser emitting module.

6. The carbon dioxide laser treatment device according to claim 4, characterized in that: The mobile base comprises: A base is provided below the shell and is fixedly connected to the bottom of the shell, wherein a ventilation ring is provided in the middle of the lower surface of the base; A guide fan, wherein a groove is provided in the middle of the upper surface of the base, the guide fan is fixedly connected to the inner bottom surface of the groove, and the guide fan is used to guide the temperature inside the shell to the ventilation ring; Four groups of universal wheels are provided, and the four groups of universal wheels are respectively arranged at the corners of the base, and the universal wheels are fixedly connected to the lower surface of the base.

7. The carbon dioxide laser treatment device according to claim 2, wherein: The control module includes: a display unit embedded in the upper middle portion of the housing, the display unit being provided with a plurality of the preset instructions, and the display unit being used to obtain a selected preset instruction; a control unit, electrically connected to the display unit, the laser emission module, and the energy supply module, respectively, the control unit being configured to control the laser emission module to emit laser light according to the preset instructions, and the control unit being further configured to transmit the electrical energy supplied by the energy supply module to the laser emission module; A control panel is embedded below the display unit and is electrically connected to the control unit and the display unit respectively. The control panel is provided with an emergency disconnect button, a display unit brightness adjustment button and a lock power switch button.

8. The carbon dioxide laser treatment device according to claim 2, wherein: The laser emission module is a metal laser or a glass laser.