Rapid smoke exhaust device of skin laser equipment

By designing a connecting pipe with a movable inhalation nozzle and a throttle valve to regulate airflow in a skin laser device, a rapid smoke removal system has been developed, solving the problems of low operating efficiency for doctors and difficulty in removing smoke, thus achieving a highly efficient and flexible smoke removal effect.

CN223759880UActive Publication Date: 2026-01-06AIR FORCE MEDICAL CENT PLA
View PDF 0 Cites 0 Cited by

Patent Information

Application Number
CN202422727835.9
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-11-08
Publication Date
2026-01-06
Estimated Expiration
2034-11-08

AI Technical Summary

Technical Problem

In the current use of carbon dioxide laser therapy devices for the skin, doctors need to hold the laser therapy device, sterile cotton swabs, and fume extraction equipment, resulting in low operating efficiency and difficulty in effectively removing fumes.

Method used

A rapid smoke removal device for a skin laser device was designed, including an inhalation nozzle, an exhaust mechanism, a connecting pipe, and a hanging rail mechanism. The inhalation nozzle moves with the treatment device, and the airflow is adjusted through a flexible connecting pipe and a throttle valve to ensure efficient smoke removal.

Benefits of technology

It frees up the doctor's left-hand operating space, improves treatment efficiency, ensures efficient removal of smoke, adapts to different treatment sites and patient positions, and improves the flexibility and safety of operation.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN223759880U_ABST
    Figure CN223759880U_ABST
Patent Text Reader

Abstract

The utility model relates to the technical field of laser treatment equipment, and provides a rapid smoke exhaust device of skin laser equipment, which comprises a suction nozzle, an exhaust mechanism and a connecting pipeline, and the suction nozzle is arranged towards and close to a working area of a skin carbon dioxide laser treatment instrument; the exhaust mechanism is suitable for generating a continuous negative pressure environment for the suction nozzle; the connecting pipeline is connected between the exhaust mechanism and the suction nozzle, and one end, close to the suction nozzle, of the connecting pipeline is fixedly connected with the skin carbon dioxide laser therapeutic instrument; wherein one end, close to the air suction nozzle, of the connecting pipeline is provided with a deformation section which can be bent freely along with the shape, and the deformation section is suitable for adjusting the distance between the air suction nozzle and the tail end of the skin carbon dioxide laser therapeutic instrument. The space for holding the smoke exhaust equipment by the left hand is given out, the operation efficiency of a doctor is improved, the suction nozzle keeps the best distance along with the tail end of the therapeutic apparatus all the time, and generated smoke can be efficiently removed.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] This utility model relates to the field of laser treatment equipment technology, and in particular to a rapid smoke extraction device for skin laser equipment. Background Technology

[0002] The carbon dioxide laser treatment device for the skin generates a photothermal effect during use, removing skin tissue through carbonization. This process produces smoke and dust, so a smoke extraction device is needed when using the laser.

[0003] However, in the current treatment environment in related technical fields, doctors need to hold the laser therapy device in their right hand and the disinfection swabs and fume extraction equipment in their left hand during the operation. This not only greatly reduces the operating efficiency of medical staff, but also easily leads to the inefficient removal of the generated fumes. Utility Model Content

[0004] This utility model provides a rapid smoke extraction device for skin laser equipment, which solves the defects of existing smoke extraction devices that are inconvenient to use and reduce the operating efficiency of medical staff. It frees up the space for the left hand to hold the smoke extraction device, improves the doctor's operating efficiency, and the suction nozzle always maintains the optimal distance with the end of the treatment device, so that the generated smoke can be removed efficiently.

[0005] This utility model provides a rapid smoke extraction device for a skin laser device, comprising:

[0006] An air intake nozzle is positioned facing and close to the working area of ​​the carbon dioxide laser therapy device on the skin.

[0007] An exhaust mechanism adapted to generate a continuous negative pressure environment for the intake nozzle;

[0008] A connecting pipe is provided, which connects the exhaust mechanism and the inhalation nozzle, and the end of the connecting pipe near the inhalation nozzle is connected and fixed to the skin carbon dioxide laser therapy device;

[0009] The connecting pipe has a deformable section at the end near the inhalation nozzle that can be bent arbitrarily, and the deformable section is suitable for adjusting the distance between the inhalation nozzle and the end of the skin carbon dioxide laser treatment device.

[0010] According to the present invention, a rapid smoke exhaust device for a skin laser device includes a connecting pipe comprising an air intake pipe and a bamboo joint pipe, wherein the bamboo joint pipe is a deformed section, the air intake pipe is connected between the bamboo joint pipe and the exhaust mechanism, and the bamboo joint pipe is connected between the air intake nozzle and the air intake pipe.

[0011] According to the present invention, a rapid smoke extraction device for a skin laser device is provided, wherein the rapid smoke extraction device for the skin laser device further includes a throttle valve connected to the connecting pipeline, and the throttle valve is suitable for adjusting the air flow rate of the connecting pipeline.

[0012] According to the present invention, a rapid smoke extraction device for a skin laser device is provided, wherein the rapid smoke extraction device for the skin laser device further includes a mounting bracket, and the throttle valve is connected and fixed to the skin carbon dioxide laser therapy instrument through the mounting bracket.

[0013] According to the present invention, a rapid smoke extraction device for a skin laser device is provided, wherein the throttling valve includes a first interface and a second interface, the first interface being adapted to be connected and communicated with the suction tube, and the second interface being adapted to be connected and communicated with the bamboo joint tube.

[0014] According to the present invention, a rapid smoke extraction device for a skin laser device is provided, the rapid smoke extraction device for a skin laser device further includes a hanging rail mechanism, the hanging rail mechanism is disposed above the working area of ​​the skin carbon dioxide laser treatment instrument, and the hanging rail mechanism is connected to the connecting pipeline.

[0015] According to the present invention, a rapid smoke extraction device for a skin laser device includes a sliding rail and a slider. The sliding rail is fixedly installed above the working area of ​​the skin carbon dioxide laser treatment instrument. The slider is connected to the connecting pipe and slides in cooperation with the sliding rail to drive the connecting pipe to reciprocate along the extension direction of the sliding rail.

[0016] According to the present invention, a rapid smoke extraction device for a skin laser device includes a hanging rail mechanism that further includes a hanging ring, and the connecting pipe is connected to the slider through the hanging ring.

[0017] According to the present invention, a rapid smoke extraction device for a skin laser device is provided, wherein the air intake is configured in a flared shape.

[0018] According to the present invention, a rapid smoke extraction device for a skin laser device is provided, wherein the bamboo tube includes multiple bamboo units, and two adjacent bamboo units are rotatably connected to each other.

[0019] The rapid smoke extraction device for skin laser equipment provided by this utility model fixes one end of the connecting pipe with the suction nozzle to the skin carbon dioxide laser treatment instrument. The suction nozzle can move with the treatment instrument without additional operation, thus freeing up the space for the left hand to hold the smoke extraction device and improving the doctor's operating efficiency. The end of the connecting pipe near the suction nozzle has a deformable section that can be bent arbitrarily. The distance between the suction nozzle and the end of the skin carbon dioxide laser treatment instrument can be adjusted and controlled through the deformable section, so that the suction nozzle and the end of the treatment instrument always maintain the optimal distance, and the generated smoke can be efficiently removed. Attached Figure Description

[0020] To more clearly illustrate the technical solutions in this utility model or the prior art, the drawings used in the description of the embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are some embodiments of this utility model. For those skilled in the art, other drawings can be obtained from these drawings without creative effort.

[0021] Figure 1 This is a schematic diagram of the rapid smoke extraction device for the skin laser equipment provided by this utility model.

[0022] Figure 2 yes Figure 1 Enlarged view of point A in the middle.

[0023] Figure label:

[0024] 10. Rapid smoke extraction device for skin laser equipment;

[0025] 100. Inhalation nozzle;

[0026] 200. Exhaust mechanism;

[0027] 300. Connecting pipe; 310. Suction pipe; 320. Bamboo joint pipe; 321. Bamboo joint unit;

[0028] 400, Throttling valve; 410, First port; 420, Second port;

[0029] 500. Install the bracket;

[0030] 600. Suspension rail mechanism; 610. Slide rail; 620. Slider; 630. Lifting ring;

[0031] 20. Skin carbon dioxide laser therapy device. Detailed Implementation

[0032] The embodiments of this utility model will be described in further detail below with reference to the accompanying drawings and examples. The following examples are for illustrative purposes only and should not be construed as limiting the scope of this utility model.

[0033] In the description of the embodiments of this utility model, it should be noted that the terms "center," "longitudinal," "lateral," "upper," "lower," "front," "rear," "left," "right," "vertical," "horizontal," "top," "bottom," "inner," and "outer," etc., indicating the orientation or positional relationship, are based on the orientation or positional relationship shown in the accompanying drawings. They are only for the convenience of describing the embodiments of this utility model and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation. Therefore, they should not be construed as limitations on the embodiments of this utility model. In addition, the terms "first," "second," and "third" are used for descriptive purposes only and should not be construed as indicating or implying relative importance.

[0034] In the description of the embodiments of this utility model, it should be noted that, unless otherwise explicitly specified and limited, the terms "connected" and "linked" should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral connection; they can refer to a mechanical connection or an electrical connection; they can refer to a direct connection or an indirect connection through an intermediate medium. Those skilled in the art can understand the specific meaning of the above terms in the embodiments of this utility model based on the specific circumstances.

[0035] In this embodiment of the utility model, unless otherwise explicitly specified and limited, "above" or "below" the second feature can mean that the first feature is in direct contact with the second feature, or that the first feature is in indirect contact with the second feature through an intermediate medium. Furthermore, "above," "on top of," and "over" the second feature can mean that the first feature is directly above or diagonally above the second feature, or simply that the first feature is at a higher horizontal level than the second feature. "Below," "below," and "under" the second feature can mean that the first feature is directly below or diagonally below the second feature, or simply that the first feature is at a lower horizontal level than the second feature.

[0036] In the description of this specification, the references to terms such as "one embodiment," "some embodiments," "example," "specific example," or "some examples," etc., refer to specific features, structures, materials, or characteristics described in connection with that embodiment or example, which are included in at least one embodiment or example of the present invention. In this specification, the illustrative expressions of the above terms do not necessarily refer to the same embodiment or example. Furthermore, the specific features, structures, materials, or characteristics described may be combined in any suitable manner in one or more embodiments or examples. Moreover, without contradiction, those skilled in the art can combine and integrate the different embodiments or examples described in this specification, as well as the features of different embodiments or examples.

[0037] The following is combined with Figures 1 to 2The rapid smoke extraction device for skin laser equipment provided in this utility model will be described in detail through specific embodiments and application scenarios.

[0038] In the embodiments of the utility model, reference is made to... Figures 1 to 2 The rapid smoke extraction device 10 for skin laser equipment includes an air intake 100, an exhaust mechanism 200, and a connecting pipe 300. The air intake 100 is positioned facing and close to the working area of ​​the skin carbon dioxide laser therapy device 20. The exhaust mechanism 200 is designed to generate a continuous negative pressure environment for the air intake 100. The connecting pipe 300 is connected between the exhaust mechanism 200 and the air intake 100, and one end of the connecting pipe 300 near the air intake 100 is fixedly connected to the skin carbon dioxide laser therapy device 20. The end of the connecting pipe 300 near the air intake 100 has a deformable section that can be bent arbitrarily, which is suitable for adjusting the distance between the air intake 100 and the end of the skin carbon dioxide laser therapy device 20.

[0039] The suction nozzle 100 is an opening that directly faces the laser treatment area. Its main function is to capture the smoke and exhaust gases generated during laser treatment. At the same time, the design of the suction nozzle 100 is to ensure that it is as close as possible to the laser treatment area so as to capture the smoke the moment it is generated, thereby improving smoke extraction efficiency.

[0040] The exhaust mechanism 200 provides a continuous negative pressure environment for the suction nozzle 100 through an air pump or other device that generates negative pressure, ensuring that smoke can be effectively drawn into the smoke exhaust system. The exhaust mechanism 200 can be an air pump, etc., and is not specifically limited here.

[0041] The connecting pipe 300 acts as a bridge between the inhalation nozzle 100 and the exhaust mechanism 200, responsible for transmitting smoke from the laser treatment area to the exhaust mechanism 200 for final discharge. One end of the connecting pipe 300 is fixedly connected to the skin carbon dioxide laser therapy device 20, ensuring that the inhalation nozzle 100 can automatically adjust its position as the laser therapy device moves, without requiring additional operation.

[0042] The end of the connecting pipe 300 near the suction nozzle 100 has a deformable section that can be bent arbitrarily. This deformable section allows the position of the suction nozzle 100 to be adjusted according to actual needs, ensuring that the suction nozzle 100 always maintains the optimal distance from the end of the laser therapy device. Through the adjustable function of the deformable section, the suction nozzle 100 can adapt to different treatment sites and patient positions, improving the flexibility and adaptability of the device. The deformable section helps the suction nozzle 100 stay in the optimal smoke extraction position, thereby improving smoke extraction efficiency and reducing the residence time of smoke in the treatment room.

[0043] This application fixes one end of the connecting pipe 300, which is equipped with an air inlet 100, to the skin carbon dioxide laser therapy device 20. The air inlet 100 can move with the therapy device without additional operation, thus freeing up the space for the left hand to hold the smoke exhaust device and improving the doctor's operating efficiency. The end of the connecting pipe 300 near the air inlet 100 has a deformable section that can be bent arbitrarily. The distance between the air inlet 100 and the end of the skin carbon dioxide laser therapy device 20 can be adjusted and controlled through the deformable section, so that the air inlet 100 and the end of the therapy device 20 can always maintain the optimal distance, so that the generated smoke can be removed efficiently.

[0044] Reference Figure 1 and Figure 2 In some embodiments, the connecting pipe 300 includes an intake pipe 310 and a bamboo joint pipe 320, the bamboo joint pipe 320 being a deformed section, the intake pipe 310 being connected between the bamboo joint pipe 320 and the exhaust mechanism 200, and the bamboo joint pipe 320 being connected between the intake nozzle 100 and the intake pipe 310.

[0045] Understandably, the suction pipe 310 is responsible for transmitting the smoke collected from the suction nozzle 100 to the exhaust mechanism 200. It is the main channel connecting the suction nozzle 100 and the exhaust mechanism 200. One end of the suction pipe 310 is connected to the exhaust mechanism 200, ensuring that the smoke can be transmitted to the smoke exhaust system and ultimately discharged.

[0046] The bamboo-joint tube 320, as part of the connecting tube 300, is flexible and can be bent at will. It can bend freely as the treatment instrument moves, ensuring that the suction nozzle 100 remains close to the laser treatment area. The design of the bamboo-joint tube 320 allows the doctor to adjust the distance between the suction nozzle 100 and the end of the laser treatment instrument according to actual needs, achieving optimal smoke extraction. Although the bamboo-joint tube 320 is flexible, it maintains its shape after bending and will not easily deform, thus ensuring that the position of the suction nozzle 100 remains relatively fixed during treatment.

[0047] In this way, doctors no longer need to manually operate the fumigation extraction device, allowing them to focus on operating the laser therapy instrument, thus improving the efficiency and accuracy of the treatment process. The adjustability of the bamboo-shaped tube 320 ensures that the suction nozzle 100 can be adjusted at any time to maintain the optimal distance from the end of the laser therapy instrument, thereby improving the fumigation extraction effect. The design of the bamboo-shaped tube 320 increases the flexibility of the device, enabling it to adapt to different treatment sites and patient positions, thus improving the device's adaptability.

[0048] Reference Figure 2 In some embodiments, the rapid smoke exhaust device 10 of the skin laser device further includes a throttle valve 400, which is connected to the connecting pipe 300 and is suitable for adjusting the air flow rate of the connecting pipe 300.

[0049] Understandably, the primary function of the throttle valve 400 is to regulate the airflow in the connecting pipe 300. By adjusting the opening of the throttle valve 400, the negative pressure at the inhalation nozzle 100 can be controlled, thereby affecting the smoke extraction efficiency. This allows the airflow to be adjusted according to different treatment needs and the amount of smoke produced, ensuring effective smoke extraction while avoiding unnecessary resource waste. Simultaneously, adjusting the throttle valve 400 ensures that the inhalation nozzle 100 maintains optimal smoke extraction at different treatment stages. Furthermore, adjusting the airflow also helps improve safety during treatment. Excessive airflow may lead to unnecessary pressure, while insufficient airflow may result in incomplete smoke extraction. The presence of the throttle valve 400 allows doctors to make precise adjustments based on the actual situation.

[0050] Reference Figure 2 In some embodiments, the rapid smoke exhaust device 10 of the skin laser device also includes a mounting bracket 500, and the throttle valve 400 is connected and fixed to the skin carbon dioxide laser therapy instrument 20 through the mounting bracket 500.

[0051] Understandably, the main function of the mounting bracket 500 is to fix the throttle valve 400 to the skin carbon dioxide laser treatment device 20, ensuring that the throttle valve 400 will not deviate from its position due to vibration or movement during use. Through the mounting bracket 500, the throttle valve 400 can be securely installed on the laser treatment device, avoiding changes in the position of the throttle valve 400 due to equipment movement or improper operation, thereby ensuring the stable operation of the smoke extraction system.

[0052] The mounting bracket 500 can be a clamp or a clip, etc., and no special restrictions are made here.

[0053] Reference Figure 1 and Figure 2 In some embodiments, the throttle valve 400 includes a first interface 410 and a second interface 420, the first interface 410 being adapted to be connected and communicated with the intake pipe 310, and the second interface 420 being adapted to be connected and communicated with the bamboo joint pipe 320.

[0054] Understandably, the first interface 410 is mainly used to connect to the intake pipe 310 to ensure that the smoke transmitted from the bamboo joint pipe 320 can smoothly enter the exhaust mechanism 200. Through the first interface 410, the throttle valve 400 can adjust the airflow from the intake pipe 310, thereby controlling the airflow speed and volume of the entire smoke exhaust system.

[0055] Optionally, the first interface 410 can be connected to the suction tube 310 by threads, snaps, or other reliable connection methods to ensure a tight and airtight connection.

[0056] The second interface 420 is used to connect to the bamboo tube 320 to ensure that the smoke collected from the mouthpiece 100 can be smoothly transmitted to the throttle valve 400 through the bamboo tube 320. Through the second interface 420, the throttle valve 400 can adjust the airflow from the bamboo tube 320 to ensure that the negative pressure at the mouthpiece 100 is appropriate.

[0057] Alternatively, the second interface 420 can also be connected to the bamboo tube 320 by threads, snaps, or other reliable connection methods to ensure a secure and airtight connection.

[0058] Specifically, when the skin carbon dioxide laser therapy device 20 is working, the generated smoke is captured by the inhalation nozzle 100. The smoke is transmitted through the bamboo tube 320 to the second port 420 of the throttle valve 400. After being regulated by the throttle valve 400, it is transmitted through the first port 410 to the suction tube 310, and finally discharged through the exhaust mechanism 200.

[0059] Reference Figure 1 In some embodiments, the rapid smoke exhaust device 10 of the skin laser device also includes a hanging rail mechanism 600, which is located above the working area of ​​the skin carbon dioxide laser therapy instrument 20 and is connected to the connecting pipe 300.

[0060] Understandably, the hanging rail mechanism 600 is installed above the working area of ​​the skin CO2 laser therapy device 20, typically fixed to the ceiling or wall of the room. It may have one or more rails used to support and guide the connecting tubing 300, allowing it to move flexibly within the working area as needed. The primary function of the hanging rail mechanism 600 is to provide support and guidance for the connecting tubing 300, ensuring its stability and flexibility within the working area. Through the hanging rail mechanism 600, the connecting tubing 300 can move along preset rails, adapting to the operational needs of the laser therapy device in different positions and directions. This design not only improves the efficiency of the fume extraction system but also reduces interference from the tubing to the treatment area.

[0061] Reference Figure 1 In some embodiments, the hanging rail mechanism 600 includes a slide rail 610 and a slider 620. The slide rail 610 is fixedly installed above the working area of ​​the skin carbon dioxide laser therapy instrument 20. The slider 620 is connected to the connecting pipe 300. The slider 620 and the slide rail 610 cooperate to slide, so as to drive the connecting pipe 300 to reciprocate along the extension direction of the slide rail 610.

[0062] Understandably, the slide rail 610 is the main support structure of the hanging rail mechanism 600, and it is fixedly installed above the working area of ​​the skin carbon dioxide laser treatment instrument 20.

[0063] The slider 620 is the part connected to the connecting pipe 300, and is a sliding structure that matches the slide rail 610, such as a roller or a groove. The slider 620 cooperates with the slide rail 610 through the sliding structure to realize reciprocating movement along the slide rail 610.

[0064] The connection between slider 620 and connecting pipe 300 is typically achieved through components such as fasteners and connectors. This ensures a tight connection and stable transmission between slider 620 and connecting pipe 300.

[0065] By sliding the slider 620, the connecting tube 300 can reciprocate along the extension direction of the slide rail 610. This allows the connecting tube 300 to move flexibly with the movement of the laser therapy device, ensuring that the suction nozzle 100 always maintains the optimal distance from the end of the therapy device. Simultaneously, the reciprocating movement also allows the connecting tube 300 to be adjusted in different treatment positions and directions to adapt to changing needs in different treatment scenarios.

[0066] Reference Figure 1 In some embodiments, the rail mechanism 600 further includes a lifting ring 630, through which the connecting pipe 300 is connected to the slider 620.

[0067] Understandably, the main function of the lifting ring 630 is to connect the slider 620 and the connecting tube 300, ensuring that the connecting tube 300 can move along with the slider 620 on the slide rail 610. Through the connection of the lifting ring 630, the connecting tube 300 can swing more freely, reducing the obstruction caused by the rigid connection of the connecting tube 300, allowing the suction nozzle 100 to more flexibly follow the movement of the laser therapy device. At the same time, the design of the lifting ring 630 can distribute the stress on the connecting tube 300, preventing damage to the connection point due to long-term tension and extending the service life of the connecting tube 300.

[0068] Reference Figure 2 In some embodiments, the air intake 100 is flared.

[0069] Understandably, the flared design increases the opening area of ​​the suction nozzle 100, allowing more smoke to be drawn into the exhaust system, thus improving exhaust efficiency. Simultaneously, the flared design enables the suction nozzle 100 to better cover the laser treatment area, ensuring that the generated smoke does not easily dissipate and improving smoke capture rate.

[0070] Reference Figure 2 In some embodiments, the bamboo tube 320 includes a plurality of bamboo units 321, and two adjacent bamboo units 321 are rotatably connected to each other.

[0071] Understandably, the design of multiple bamboo-joint units 321 allows the bamboo-joint tube 320 to bend like a joint, thus more flexibly adapting to the needs of different treatment sites. Through the rotatable connection between adjacent bamboo-joint units 321, the shape of the bamboo-joint tube 320 can be easily adjusted, ensuring that the inhalation nozzle 100 always remains in the optimal smoke extraction position. The rotatable connection design allows the bamboo-joint tube 320 to maintain a certain stability after bending, preventing it from changing shape due to gravity or slight contact. The design of the bamboo-joint tube 320 better adapts to different treatment scenarios, improving the adaptability and flexibility of the device. Finally, it should be noted that the above embodiments are only used to illustrate the technical solutions of this utility model, and not to limit it; although this utility model has been described in detail with reference to the foregoing embodiments, those skilled in the art should understand that modifications can still be made to the technical solutions described in the foregoing embodiments, or equivalent substitutions can be made to some of the technical features; and these modifications or substitutions do not cause the essence of the corresponding technical solutions to deviate from the spirit and scope of the technical solutions of the various embodiments of this utility model.

Claims

1. A rapid smoke evacuation device for a skin laser apparatus, characterized by, The application relates to a quick smoke exhaust device of a skin laser equipment. The application relates to a quick smoke exhaust device of a skin laser equipment. The application relates to a quick smoke exhaust device of a skin laser equipment. The application relates to a quick smoke exhaust device of a skin laser equipment. The application relates to a quick smoke exhaust device of a skin laser equipment.

2. The quick smoke evacuation device for a skin laser apparatus according to claim 1, wherein The application relates to a quick smoke exhaust device of a skin laser equipment.

3. The quick smoke evacuation device for a skin laser apparatus according to claim 2, wherein The application relates to a quick smoke exhaust device of a skin laser equipment.

4. The quick smoke evacuation device for a skin laser apparatus according to claim 3, wherein The application relates to a quick smoke exhaust device of a skin laser equipment.

5. The quick smoke evacuation device for a skin laser apparatus according to claim 3, wherein The application relates to a quick smoke exhaust device of a skin laser equipment.

6. The quick smoke evacuation device for a skin laser apparatus according to any one of claims 1 to 5, characterized in that, The application relates to a quick smoke exhaust device of a skin laser equipment.

7. The quick smoke evacuation device for a skin laser apparatus according to claim 6, wherein The application relates to a quick smoke exhaust device of a skin laser equipment.

8. The quick smoke evacuation device for a skin laser apparatus according to claim 7, wherein The application relates to a quick smoke exhaust device of a skin laser equipment.

9. The quick smoke evacuation device for a skin laser apparatus according to any one of claims 1 to 5, characterized in that, The application relates to a quick smoke exhaust device of a skin laser equipment.

10. The quick smoke evacuation device for a skin laser apparatus according to claim 2, wherein The application relates to a quick smoke exhaust device of a skin laser equipment. The application relates to a quick smoke exhaust device of a skin laser equipment. The application relates to a quick smoke exhaust device of a skin laser equipment. The application relates to a quick smoke exhaust device of a skin laser equipment. The application relates to a quick smoke exhaust device of a skin laser equipment. The application relates to a quick smoke exhaust device of a skin laser equipment. The application relates to a quick smoke exhaust device of a skin laser equipment. The application relates to a quick smoke exhaust device of a skin laser equipment. The application relates to a quick smoke exhaust device of a skin laser equipment. The application relates to a quick smoke exhaust device of a skin laser equipment. The application relates to a quick smoke exhaust device of a skin laser equipment. The application relates to a quick smoke exhaust device of a skin laser equipment. The application relates to a quick smoke exhaust device of a skin laser equipment. The application relates to a quick smoke exhaust device of a skin laser equipment. The application relates to a quick smoke exhaust device of a skin laser equipment. The application relates to a quick smoke exhaust device of a skin laser equipment. The application relates to a quick smoke exhaust device of a skin laser equipment. The application relates to a quick smoke exhaust device of a skin laser equipment. The application relates to a quick smoke exhaust device of a skin laser equipment. The application relates to a quick smoke exhaust device of a skin laser equipment. The application relates to a quick smoke exhaust device of a skin laser equipment. The application relates to a quick smoke exhaust device of a skin laser equipment. The application relates to a quick smoke exhaust device of a skin laser equipment. The application relates to a quick smoke exhaust device of a skin laser equipment. The application relates to a quick smoke exhaust device of a skin laser equipment. The application relates to a quick smoke exhaust device of a skin laser equipment. The application relates to a quick smoke exhaust device of a skin laser equipment. The application relates to a quick smoke exhaust device of a skin laser equipment. The application relates to a quick smoke exhaust device of a skin laser equipment. The application relates to a quick smoke exhaust device of a skin laser equipment. The application relates to a quick smoke exhaust device of a skin laser equipment. The application relates to a quick smoke exhaust device of a skin laser equipment. The application relates to a quick smoke exhaust device of a skin laser equipment. The application relates to a quick smoke exhaust device of a skin laser equipment. The application relates to a quick smoke exhaust device of a skin laser equipment. The application relates to a quick smoke exhaust device of a skin laser equipment. The application relates to a quick smoke exhaust device of a skin laser equipment. The application relates to a quick smoke exhaust device of a skin laser equipment. The application relates to a quick smoke exhaust device of a skin laser equipment. The application relates to a quick smoke exhaust device of a skin laser equipment. The application relates to a quick smoke exhaust device of a skin laser equipment. The application relates to a quick smoke exhaust device of a skin laser equipment. The application relates to a quick smoke exhaust device of a skin laser equipment. The application relates to a quick smoke exhaust device of a skin laser equipment. The application relates to a quick smoke exhaust device of a skin laser equipment. The application relates to a quick smoke exhaust device of a skin laser equipment. The application relates to a quick smoke exhaust device of a skin laser equipment. The application relates to a quick smoke exhaust device of a skin laser equipment. The application relates to a quick smoke exhaust device of a skin laser equipment. The application relates to a quick smoke exhaust device of a skin laser equipment. The application relates to a quick smoke exhaust device of a skin laser equipment. The application relates to a quick smoke exhaust device of a skin laser equipment. The application relates to a quick smoke exhaust device of a skin laser equipment. The application relates to a quick smoke exhaust device of a skin laser equipment. The application relates to a quick smoke exhaust device of a skin laser equipment. The application relates to a quick smoke exhaust device of a skin laser equipment. The application relates to a quick smoke exhaust device of a skin laser equipment. The application relates to a quick smoke exhaust device of a skin laser equipment. The application relates to a quick smoke exhaust device of a skin laser equipment. The application relates to a quick smoke exhaust device of a skin laser equipment. The application relates to a quick smoke exhaust device of a skin laser equipment. The application relates to a quick smoke exhaust device of a skin laser equipment. The application relates to a quick smoke exhaust device of a skin laser equipment. The application relates to a quick smoke exhaust device of a skin laser equipment. The application relates to a quick smoke exhaust device of a skin laser equipment. The application relates to a quick smoke exhaust device of a skin laser equipment. The application relates to a quick smoke exhaust device of a skin laser equipment. The application relates to a quick smoke exhaust device of a skin laser equipment. The application relates to a quick smoke exhaust device of a skin laser equipment. The application relates to a quick smoke exhaust device of a skin laser equipment. The application relates to a quick smoke exhaust device of a skin laser equipment. The application relates to a quick smoke exhaust device of a skin laser equipment. The application relates to a quick smoke exhaust device of a skin laser equipment. The application relates to a quick smoke exhaust device of a skin laser equipment. The application relates to a quick smoke exhaust device of a skin laser equipment. The application relates to a quick smoke exhaust device of a skin laser equipment. The application relates to a quick smoke exhaust device of a skin laser equipment. The application relates to a quick smoke exhaust device of a skin laser equipment. The application relates to a quick smoke exhaust device of a skin laser equipment. The application relates to a quick smoke exhaust device of a skin laser equipment. The application relates to a quick smoke exhaust device of a skin laser equipment. The application relates to a quick smoke exhaust device of a skin laser equipment. The application relates to a quick smoke exhaust device of a skin laser equipment. The application relates to a quick smoke exhaust device of a skin laser equipment. The application relates to a quick smoke exhaust device of a skin laser equipment. The application relates to a quick smoke exhaust device of a skin laser equipment. The application relates to a quick smoke exhaust device of a skin laser equipment. The application relates to a quick smoke exhaust device of a skin laser equipment. The application relates to a quick smoke exhaust device of a skin laser equipment. The application relates to a quick smoke exhaust device of a skin laser equipment. The application relates to a quick smoke exhaust device of a skin laser equipment. The application relates to a quick smoke exhaust device of a skin laser equipment. The application relates to a quick smoke exhaust device of a skin laser equipment. The application relates to a quick smoke exhaust device of a skin laser equipment. The application relates to a quick smoke exhaust device of a skin laser equipment. The application relates to a quick smoke exhaust device of a skin laser equipment. The application relates to a quick smoke exhaust device of a skin laser equipment. The application relates to a quick smoke exhaust device of a skin laser equipment. The application relates to a quick smoke exhaust device of a skin laser equipment. The application relates to a quick smoke exhaust device of a skin laser equipment. The application relates to a quick smoke exhaust device of a skin laser equipment. The application relates to a quick smoke exhaust device of a skin laser equipment. The application relates to a quick smoke exhaust device of a skin laser equipment. The application relates to a quick smoke exhaust device of a skin laser equipment. The application relates to a quick smoke exhaust device of a skin laser equipment. The application relates to a quick smoke exhaust device of a skin laser equipment. The application relates to a quick smoke exhaust device of a skin laser equipment. The application relates to a quick smoke exhaust device of a skin laser equipment. The application relates to a quick smoke exhaust device of a skin laser equipment. The application relates to a quick smoke exhaust device of a skin laser equipment. The application relates to a quick smoke exhaust device of a skin laser equipment. The application relates to a quick smoke exhaust device of a skin laser equipment. The application relates to a quick smoke exhaust device of a skin laser equipment. The application relates to a quick smoke exhaust device of a skin laser equipment. The application relates to a quick smoke exhaust device of a skin laser equipment. The application relates to a quick smoke exhaust device of a skin laser equipment. The application relates to a quick smoke exhaust device of a skin laser equipment. The application relates to a quick smoke exhaust device of a skin laser equipment. The application relates to a quick smoke exhaust device of a skin laser equipment. The application relates to a quick smoke exhaust device of a skin laser equipment. The application relates to a quick smoke exhaust device of a skin laser equipment. The application relates to a quick smoke exhaust device of a skin laser equipment. The application relates to a quick smoke exhaust device of a skin laser equipment. The application relates to a quick smoke exhaust