Multi-wavelength full-function therapeutic machine

By integrating 980nm, 1940nm and 532nm laser wavelengths into a multi-wavelength, full-function treatment machine, the problem of not being able to achieve lithotripsy, cutting and hemostasis on the same device in the existing technology has been solved, realizing the miniaturization, power saving and ease of use of the device.

CN224039313UActive Publication Date: 2026-03-27REALTON SUZHOU MEDICAL TECH CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-12-26
Publication Date
2026-03-27

AI Technical Summary

Technical Problem

In the existing technology, single-wavelength laser therapy machines cannot achieve lithotripsy, cutting and hemostasis functions on the same device, resulting in high equipment costs, insufficient operating room space, high noise, high power consumption and inconvenience of use.

Method used

Design a multi-wavelength, full-function therapeutic machine that integrates three laser wavelengths: 980 nm, 1940 nm, and 532 nm. It uses a fiber laser and laser coupler, combined with a circuit system and foot pedal control, to achieve integrated functions of lithotripsy, cutting, and hemostasis. The water-cooling device is eliminated, and internal air cooling is used in the laser.

Benefits of technology

It enables the completion of stone crushing, cutting and hemostasis functions on the same equipment, reduces the size and weight of the equipment, reduces power consumption, avoids the problems of water cooling devices, and improves the convenience and economy of use.

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Abstract

The utility model provides a multi-wavelength full-function therapeutic machine, which comprises a 980-nanometer laser, a 1940-nanometer laser, a 532-nanometer laser, a 980-nanometer laser coupler, a 1940-nanometer laser coupler, a 532-nanometer laser coupler, a 980-nanometer laser fiber, a 1940-nanometer laser fiber and a 532-nanometer laser fiber. The 980-nanometer laser is connected with the 980-nanometer laser coupler, the 1940-nanometer laser coupler and the 532-nanometer laser coupler through 980-nanometer laser optical fibers, the 1940-nanometer laser is connected with the 980-nanometer laser coupler, the 1940-nanometer laser coupler and the 532-nanometer laser coupler through 1940-nanometer laser optical fibers, and the 532-nanometer laser is connected with the 980-nanometer laser coupler, the 1940-nanometer laser coupler and the 532-nanometer laser coupler through 532-nanometer laser optical fibers. The power is lower, more electricity is saved, the size is smaller, and the weight is lighter.
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Description

TECHNICAL FIELD

[0001] The utility model relates to medical instrument technical field, specifically, relate to a multi -wavelength full -function therapeutic machine. The present application claims the priority of the patent application of 'a multi -wavelength full -function therapeutic machine' submitted to China State Intellectual Property Office on December 27, 2023, application number is 2023118250316, invention name. BACKGROUND

[0002] In the prior art, in order to solve the problem of urinary calculus or prostate tumor, the 1940nm thulium laser therapeutic machine mainly used for stone crushing, the 532nm green laser therapeutic machine used for cutting and the 980nm laser therapeutic machine used for hemostasis are mostly used, and three devices are required to be operated simultaneously or alternately during the operation to achieve stone crushing, cutting and hemostasis, so there are problems of expensive equipment, insufficient operating room space, large noise of three devices, large power consumption and inconvenient use.

[0003] Therefore, a new laser therapeutic machine needs to be proposed to solve the above technical problems. UTILITY MODEL CONTENT

[0004] The main purpose of the utility model is to provide a multi -wavelength full -function therapeutic machine, which at least solves the technical problem that the single -wavelength green laser therapeutic machine in the prior art cannot realize the functions of stone crushing, cutting and hemostasis on the same machine.

[0005] The utility model provides a multi -wavelength full -function therapeutic machine, and the multi -wavelength full -function therapeutic machine includes 980nm laser, 1940nm laser, 532nm laser, 980nm and 1940nm and 532nm laser coupler, 980nm laser fiber, 1940nm laser fiber and 532nm laser fiber, 980nm laser is connected with 980nm and 1940nm and 532nm laser coupler through 980nm laser fiber, 1940nm laser is connected with 980nm and 1940nm and 532nm laser coupler through 1940nm laser fiber, and 532nm laser is connected with 980nm and 1940nm and 532nm laser coupler through 532nm laser fiber.

[0006] Optionally, the multi -wavelength full -function therapeutic machine is divided into three layers, and the 980nm laser, the 1940nm laser and the 532nm laser are respectively located in the first layer, the second layer and the third layer of the multi -wavelength full -function therapeutic machine.

[0007] Optionally, the 980nm, 1940nm and 532nm laser coupler is located in the first layer of the multi-wavelength full-function treatment machine.

[0008] Optionally, the 980nm laser includes a first laser output port, the 980nm, 1940nm and 532nm laser coupler includes a first laser input port, a second laser input port and a third laser input port, one end of the 980nm laser fiber is connected with the first laser output port, and the other end is connected with the first laser input port.

[0009] Optionally, the 1940nm laser includes a second laser output port, one end of the 1940nm laser fiber is connected with the second laser output port, and the other end is connected with the second laser input port of the 980nm, 1940nm and 532nm laser coupler.

[0010] Optionally, the 532nm laser includes a third laser output port, one end of the 532nm laser fiber is connected with the third laser output port, and the other end is connected with the third laser input port of the 980nm, 1940nm and 532nm laser coupler.

[0011] Optionally, the 532nm laser further includes a heat dissipation air duct and a heat dissipation fan, the heat dissipation air duct and the heat dissipation fan are respectively arranged at two ends of the 532nm laser, and wind generated by rotation of the heat dissipation fan cools the 532nm laser and is discharged from the heat dissipation air duct.

[0012] Optionally, the multi-wavelength full-function treatment machine further includes a circuit system, the circuit system includes a first laser driver circuit, a second laser driver circuit and a third laser driver circuit, the first laser driver circuit is connected with the 980nm laser, the second laser driver circuit is connected with the 1940nm laser, and the third laser driver circuit is connected with the 532nm laser.

[0013] Optionally, the multi-wavelength full-function treatment machine further includes a foot pedal, the foot pedal includes a high-frequency laser pedal position and a low-frequency laser pedal position, the foot pedal controls operation of the multi-wavelength full-function treatment machine through the circuit system, the high-frequency laser pedal position is a position for performing high-frequency cutting, and the low-frequency laser pedal position is a position for performing low-frequency hemostasis.

[0014] Optionally, the 980nm laser, the 1940nm laser and the 532nm laser are fiber-coupled semiconductor lasers.

[0015] According to another aspect of the present application, a multi-wavelength full-function treatment machine is also provided, comprising: a laser assembly, the laser assembly comprising a plurality of lasers, each laser having a different laser wavelength; a laser coupler, the laser coupler having a laser input port and a laser output port, the laser input port being configured to connect with the lasers, the laser output port being configured to connect with a treatment assembly, the laser input port being a plurality of laser input ports, the plurality of laser input ports being configured to correspond to the plurality of lasers one by one; the laser coupler receiving laser emitted by the lasers through the laser input port and outputting treatment laser to the treatment assembly through the laser output port; wherein the plurality of lasers at least comprises a 1940nm laser and a 980nm laser.

[0016] Optionally, the multi-wavelength full-function treatment machine further comprises a control assembly, the control assembly comprising: an electrical box assembly, the electrical box assembly being electrically connected with the circuit system, the laser assembly and the laser coupler; a display assembly, the display assembly being electrically connected with at least one of the electrical box assembly, the circuit system, the laser assembly and the laser coupler, the display assembly at least having an interactive interface, the interactive interface being configured to display working information of the multi-wavelength full-function treatment machine, and the interactive interface being configured to receive a control instruction, the control instruction being configured to control a working state of the multi-wavelength full-function treatment machine.

[0017] Optionally, the multi-wavelength full-function treatment machine further comprises: a frame, the laser assembly and the laser coupler being arranged on the frame, at least one side of the frame being provided with a shielding cover; a cover shell, the cover shell being arranged along a circumference of the frame, the shielding cover being arranged between the frame and the cover shell.

[0018] With the continuous innovation of laser lithotripsy technology, multi-wavelength laser lithotripsy will become an important treatment method for urinary stone surgery, in order to solve the problems of urinary system stones or prostate tumors, the utility model discloses a multi-wavelength full-function treatment machine which integrates 1940nm, 532nm and 980nm three kinds of laser wavelengths and can realize the integration of stone breaking, cutting and hemostasis.

[0019] The three-in-one treatment machine adopts a three-in-one coupler of 1940nm, 532nm and 980nm, removes the bulky water cooling device in the single-wavelength treatment machine, adopts internal air cooling of the laser, and the electrical structure becomes simpler, the input power is lower, the power consumption is lower, the volume is smaller, the weight is lighter, and a series of problems caused by the water cooling device are avoided. In addition, the three-in-one treatment machine adopts a fiber laser, and does not have the problem of instability of the solid laser, and starts faster and consumes less power. BRIEF DESCRIPTION OF DRAWINGS

[0020] The above and other objects, features and advantages of the present application will become more apparent from the following detailed description when taken in conjunction with the accompanying drawings in which a number of embodiments of the present application are illustrated by way of example and not limitation. In the drawings:

[0021] Figure 1 A cross section simple schematic view of an optional multi-wavelength full-function treatment machine is provided in the utility model;

[0022] Figure 2 A function module schematic view of an optional multi-wavelength full-function treatment machine is provided in the utility model;

[0023] Figure 3 A 1940nm, 532nm and 980nm three-in-one treatment machine coupler structure schematic view of an optional multi-wavelength full-function treatment machine is provided in the utility model;

[0024] Figure 4 A foot pedal schematic view of an optional multi-wavelength full-function treatment machine is provided in the utility model;

[0025] Figure 5 A structure schematic view of a first embodiment of an optional multi-wavelength full-function treatment machine is provided in the utility model;

[0026] Figure 6 A structure schematic view of a second embodiment of an optional multi-wavelength full-function treatment machine is provided in the utility model;

[0027] Figure 7 A structure schematic view of a third embodiment of an optional multi-wavelength full-function treatment machine is provided in the utility model.

[0028] Among them, the above-mentioned drawing includes the following figure marks:

[0029] 1, 980nm laser; 12, first laser output port;

[0030] 2, 1940nm laser; 22, second laser output port;

[0031] 3, 532nm laser; 32, third laser output port; 33, heat dissipation air duct; 34, heat dissipation fan;

[0032] 4, laser coupler; 41, first laser input port; 42, second laser input port;

[0033] 5, circuit system; 51, first laser driver circuit; 52, second laser driver circuit; 53, third laser driver circuit;

[0034] 6, foot pedal; 61, high-frequency laser treading position; 62, low-frequency laser treading position;

[0035] 7, electric appliance box assembly;

[0036] 8, display assembly;

[0037] 91 frame; 92 shield; 93 housing. DETAILED DESCRIPTION

[0038] It should be noted that the embodiments and features of the embodiments in the present application can be combined with each other without conflict. The present application will be described in detail below with reference to the accompanying drawings and in combination with the embodiments.

[0039] It should be noted that the terms used herein are only for the purpose of describing specific embodiments and are not intended to limit the exemplary embodiments according to the present application. As used herein, the singular form is intended to include the plural form unless the context clearly indicates otherwise, and it should be further understood that the terms "comprise" and / or "include" as used herein specify the presence of features, steps, operations, devices, components and / or their combinations.

[0040] It should be noted that the terms "first", "second", and the like in the specification and claims of the present application and the above-described drawings are used to distinguish similar objects, and do not necessarily have to be used to describe a specific order or sequence. It should be understood that the terms used in this way can be interchanged as appropriate, so that the embodiments of the present application described herein can be implemented, for example, in an order other than that illustrated or described herein. In addition, the terms "include" and "have" and any variations thereof are intended to cover non-exclusive inclusion, for example, a process, method, system, product or device that includes a series of steps or units does not have to be limited to only those steps or units clearly listed, but can include other steps or units that are not clearly listed or inherent to these processes, methods, products or devices.

[0041] Now, exemplary embodiments according to the present application will be described in more detail with reference to the accompanying drawings. However, these exemplary embodiments can be implemented in various different forms, and should not be interpreted as being limited only to the embodiments set forth herein. It should be understood that these embodiments are provided in order to make the present disclosure complete and complete, and to sufficiently convey the ideas of these exemplary embodiments to those of ordinary skill in the art, and in the drawings, the thickness of layers and regions can be exaggerated for the sake of clarity, and the same reference numerals are used to denote the same elements, so that a description thereof will be omitted.

[0042] In conjunction with Figures 1 to 7As shown, according to the specific embodiments of the present application, a multi-wavelength full-function treatment machine is provided, which comprises a 980 nm laser 1, a 1940 nm laser 2, a 532 nm laser 3, a 980 nm and 1940 nm and 532 nm laser coupler 4, a 980 nm laser fiber, a 1940 nm laser fiber and a 532 nm laser fiber, the 980 nm laser 1 is connected with the 980 nm and 1940 nm and 532 nm laser coupler 4 through the 980 nm laser fiber, the 1940 nm laser 2 is connected with the 980 nm and 1940 nm and 532 nm laser coupler 4 through the 1940 nm laser fiber, and the 532 nm laser 3 is connected with the 980 nm and 1940 nm and 532 nm laser coupler 4 through the 532 nm laser fiber.

[0043] Further, the multi-wavelength full-function treatment machine is divided into three layers, the 980 nm laser 1, the 1940 nm laser 2 and the 532 nm laser 3 are respectively located in the first layer, the second layer and the third layer of the multi-wavelength full-function treatment machine.

[0044] Further, the 980 nm and 1940 nm and 532 nm laser coupler 4 is located in the first layer of the multi-wavelength full-function treatment machine.

[0045] Further, the 980 nm laser 1 comprises a first laser output port 12, the 980 nm and 1940 nm and 532 nm laser coupler 4 comprises a first laser input port 41, a second laser input port 42 and a third laser input port, one end of the 980 nm laser fiber is connected with the first laser output port 12, and the other end is connected with the first laser input port 41.

[0046] Further, the 1940 nm laser 2 comprises a second laser output port 22, one end of the 1940 nm laser fiber is connected with the second laser output port 22, and the other end is connected with the second laser input port 42 of the 980 nm and 1940 nm and 532 nm laser coupler 4.

[0047] Further, the 532 nm laser 3 comprises a third laser output port 32, one end of the 532 nm laser fiber is connected with the third laser output port 32, and the other end is connected with the third laser input port 43 of the 980 nm and 1940 nm and 532 nm laser coupler 4.

[0048] Furthermore, the aforementioned 532 nm laser 3 also includes a heat dissipation duct 33 and a heat dissipation fan 34. The heat dissipation duct 33 and the heat dissipation fan 34 are located at opposite ends of the aforementioned 532 nm laser 3. The air generated by the rotation of the heat dissipation fan 34 cools the aforementioned 532 nm laser 3 and is discharged from the aforementioned heat dissipation duct 33.

[0049] Furthermore, the aforementioned multi-wavelength full-function therapeutic machine also includes a circuit system 5, which includes a first laser driving circuit 51, a second laser driving circuit 52, and a third laser driving circuit 53. The first laser driving circuit 51 is connected to the 980 nm laser 1, the second laser driving circuit 52 is connected to the 1940 nm laser 2, and the third laser driving circuit 53 is connected to the 532 nm laser 3.

[0050] Furthermore, the aforementioned multi-wavelength full-function therapeutic machine also includes a foot pedal 6, which includes a high-frequency laser stepping position 61 and a low-frequency laser stepping position 62. The foot pedal 6 controls the operation of the aforementioned multi-wavelength full-function therapeutic machine through the aforementioned circuit system 5. The high-frequency laser stepping position 61 is the position for performing high-frequency cutting, and the low-frequency laser stepping position 62 is the position for performing low-frequency hemostasis.

[0051] Furthermore, the aforementioned 980 nm laser 1, 1940 nm laser 2, and 532 nm laser 3 are fiber-coupled semiconductor lasers.

[0052] like Figure 3 The diagram shown is a coupler structure diagram for a three-in-one therapy device with 1940nm, 532nm, and 980nm wavelengths. Figure 1 An enlarged schematic diagram of laser coupler 4 is shown. The three-in-one treatment machine consists of three fiber lasers (1940nm, 532nm, and 980nm), a three-in-one coupler (1940nm, 532nm, and 980nm), a circuit system, and casters. The circuit system controls the operation of the lasers and couplers via wires. The lasers and couplers are connected by optical fibers, and the lasers and circuit system are connected by wires. The couplers and circuit system are connected by circuits. The operator adjusts the required parameters via a display screen. The touch screen is connected to the circuit system, which controls the operation of the lasers and couplers. The laser of the desired wavelength passes through the laser, enters the optical fiber, and then enters the coupler. The medical optical fiber is connected to the coupler by a screw thread. The laser from the coupler enters the medical optical fiber and is then transmitted to the treatment end. The fiber optic treatment end acts on the lesion tissue to achieve the purpose of lithotripsy, cutting, or hemostasis.

[0053] The multi-wavelength full-function treatment machine realizes the functions of laser lithotripsy, cutting and hemostasis in one, adopts a three-in-one coupler of 1940nm, 532nm and 980nm, and the lasers of 1940nm, 532nm and 980nm of the multi-wavelength full-function treatment machine are all optical fiber lasers.

[0054] As shown in Figure 4 The foot pedal 6 of the multi-wavelength full-function treatment machine is shown in the figure, which includes a high-frequency laser pedal position 61 and a low-frequency laser pedal position 62. The operation and parameter adjustment of the laser are controlled through circuit system control and laser power supply. The foot pedal is connected with the 1940nm, 532nm and 980nm three-in-one treatment machine through wires, and controls the operation of the laser through circuit. After setting the parameters, the laser light is emitted by stepping on the foot pedal. The required wavelength laser passes through the laser, enters the optical fiber, and then enters the coupler. The laser from the coupler enters the medical optical fiber and then is transmitted to the treatment end. The optical fiber treatment end acts on the lesion tissue, so as to achieve the purpose of lithotripsy or cutting or hemostasis. The multi-wavelength full-function treatment machine has three kinds of wavelength lasers in one, which is more time-saving than single wavelength, and has the advantages of low power consumption and low cost.

[0055] The main structure of the 532nm laser is an optical fiber laser and a frequency doubling crystal. A plurality of pump sources are used in the laser. The pump source output optical fiber is connected with one end of a beam combiner, and a active optical fiber is connected with the other end of the beam combiner. The light emitted by the plurality of pump sources passes through the active optical fiber and is converted into 1064nm, and then is converted into 532nm green laser through the frequency doubling crystal.

[0056] The 980nm and 1940nm lasers are emitted from the laser and then reach the coupler. The coupler is connected with the optical fiber, emits light of corresponding wavelength, reaches the treatment end, and acts on the lesion tissue, so as to achieve the purpose of treating diseases.

[0057] The multi-wavelength full-function treatment machine removes the bulky water cooling device in the single-wavelength treatment machine, adopts internal air cooling of the laser, integrates the laser driver into the laser, and has a simpler electrical structure, lower input power, more power saving, smaller size and lighter weight. Moreover, a series of problems caused by the water cooling device are avoided. The multi-wavelength full-function treatment machine cancels the previous water cooling mode and adopts internal air cooling of the laser, which has the advantages of smaller size, more compact structure and lighter weight.

[0058] The 1940nm, 532nm and 980nm lasers are connected to the multi-wavelength coupler at one end and connected to the electrical related devices and touch panel at the other end. After the power is turned on, the three-in-one treatment machine is started, the touch screen is turned on, and after the device is stabilized by adjusting the parameters, the laser related parameters can be adjusted, the laser is operated, the laser is transmitted in the optical fiber through the coupler, and reaches the lesion tissue through the optical fiber. According to the needs of the doctor, the purpose of vaporization cutting and hemostasis is achieved, thereby bringing great convenience to the prostate hyperplasia surgery, and the research in the field of medical devices also has far-reaching research value and significance.

[0059] In combination with Figure 5 , Figure 6 , Figure 7 According to another specific embodiment of the present application, a multi-wavelength full-function treatment machine is also provided.

[0060] Specifically, the multi-wavelength full-function treatment machine comprises a laser assembly and a laser coupler 4. The laser assembly comprises a plurality of lasers, and the laser wavelengths of the lasers are set differently. The laser coupler 4 has a laser input port and a laser output port. The laser input port is used to be connected with the lasers, and the laser output port is used to be connected with a treatment assembly. The laser input port is multiple, and the multiple laser input ports are set in one-to-one correspondence with the multiple lasers. The laser coupler 4 receives the laser emitted by the laser through the laser input port and outputs the treatment laser to the treatment assembly through the laser output port. The multiple lasers at least comprise a 1940nm laser and a 980nm laser.

[0061] By applying the technical solution of the embodiment, the laser assembly comprises a plurality of lasers capable of emitting different wavelengths. The multiple lasers input the laser into the laser coupler 4 through the laser beam entrance, and then output the laser to the treatment assembly for laser treatment through the laser output port. The laser coupler 4 integrates different wavelengths of laser beams emitted by the laser assembly to achieve the integration of different lasers corresponding to different treatment functions, so as to solve the problems of insufficient operating room space and inconvenience of use in the prior art, in which three different wavelength laser treatment devices are required to be simultaneously and alternately operated during the operation process.

[0062] In the embodiment, the multiple lasers at least comprise at least two of the 1940nm laser, the 980nm laser and the 532nm laser. Preferably, the multiple lasers comprise the 1940nm laser, the 980nm laser and the 532nm laser. The multiple lasers can be simultaneously used or combined for use to select different situations requiring stone breaking, cutting and hemostasis during the operation process. The integrated arrangement of the multiple lasers makes the multi-wavelength full-function treatment machine smaller in size and more convenient to use.

[0063] Specifically, as shown inFigure 5 As shown, the multi-wavelength full-function treatment machine further comprises a control assembly, the control assembly comprising an electrical box assembly 7 and a display assembly 8, the electrical box assembly 7 being electrically connected with the circuit system 5, the laser assembly, and the laser coupler 4 to realize power supply and circuit management functions; the display assembly 8 being electrically connected with at least one of the electrical box assembly 7, the circuit system 5, the laser assembly, and the laser coupler 4, the display assembly 8 having at least an interactive interface, the interactive interface being used to display working information of the multi-wavelength full-function treatment machine, and the interactive interface being used to receive control instructions, the control instructions being used to control the working state of the multi-wavelength full-function treatment machine. The electrical box assembly 7 controls the start and stop of the lasers of different wavelengths through a plurality of different drive circuits to realize the free switching of the working of different lasers and the free combination of the working of a plurality of lasers to realize the treatment effect of different functions in the surgical process. The display assembly 8 sets the interactive interface, and the operator or medical personnel can send control instructions through the interactive interface to control the lasers to work according to the preset state of each laser. At the same time, the display assembly 8 can display the real-time state of each laser on the interactive interface, so that the operator or medical personnel can timely understand the state of each laser, such as the energy (power) state of each laser, the start and stop state of each laser, the working (treatment) time of each laser, etc., to facilitate the operator to plan the subsequent use of laser treatment.

[0064] In the embodiment, the operator or medical personnel can more conveniently operate and control the multi-wavelength full-function treatment machine through the control assembly, and can more intuitively obtain the state of the multi-wavelength full-function treatment machine in the current treatment process, which can improve the accuracy of treatment and improve the treatment efficiency.

[0065] Further, the multi-wavelength full-function treatment machine further comprises a frame 91 and a cover 93, the laser assembly and the laser coupler 4 are arranged on the frame 91, and at least one side of the frame 91 is provided with a shielding cover 92; the cover 93 is arranged along the circumference of the frame 91, and the shielding cover 92 is arranged between the frame 91 and the cover 93. The frame 91 is divided into multiple layers, and the laser assembly and the laser coupler 4 are arranged on different levels of the frame 91, wherein the laser coupler 4 is located on the top layer of the frame 91, the 980-nanometer laser 1 is located on the top layer of the frame 91, the 1940-nanometer laser 2 is located on the middle layer of the frame 91, and the 532-nanometer laser 3 is located on the bottom layer of the frame 91. Arranging the laser coupler 4 on the top layer of the frame 91 can realize the quick access of the laser coupler 4, and arranging the lasers to be driven by the control assembly in the frame 91 can realize the stable driving of the lasers and avoid external interference. Arranging the cover 93 around the frame 91 can protect the frame 91 and avoid the shaking or movement of the laser assembly and the laser coupler 4 during use. Arranging the shielding cover 92 between the frame 91 and the cover 93 can avoid the leakage of laser and cause damage to the surrounding environment.

[0066] Specifically, in one exemplary embodiment of the present application, the laser coupler 4 has a first laser input port 41, a second laser input port 42 and a third laser input port, wherein the first laser input port 41, the second laser input port 42 and the third laser input port can be arranged as independent structures (not shown in the figure) or two of them can share one structure, for example, the second laser input port 42 and the third laser input port share one input port structure of the laser coupler 4.

[0067] Further, in the present embodiment, the circuit system 5 includes a first laser driver circuit 51, a second laser driver circuit 52 and a third laser driver circuit 53, which can be conventional driver circuits in the prior art to control the lasers.

[0068] For the purpose of description, spatial relative terms, such as "above", "upper", "top", "up", and the like, can be used herein for describing the spatial relationship between one device or feature and another device or feature as shown in the figures. It is to be understood that the spatial relative terms are intended to encompass different orientations of the devices in use or operation, in addition to the orientations depicted in the figures. For example, if a device in the figures is turned over, a device described as "above" or "up" other devices or structures would then be oriented "below" or "down" the other devices or structures. Accordingly, the exemplary term "above" can encompass both an orientation of above and below. The devices can be oriented in other ways (rotated 90 degrees or at other orientations) and the spatial relative descriptions used herein interpreted accordingly.

[0069] In addition to the above, it is to be noted that the terms "one embodiment", "another embodiment", "an embodiment", etc. as used in the specification refer to specific features, structures, or characteristics described in connection with that embodiment, and that the appearance of the same in different instances in the specification are not necessarily to be construed as being the same embodiment. Further, it is to be noted that the terms "comprising", "including", "containing", and / or "having" as used in the specification are not to be construed as being limited to members, components, or objects listed thereafter. Further, it is to be noted that the terms "coupled", "connected", and / or "with" as used in the specification can have the same meaning as "comprising", "including", "containing", and / or "having".

[0070] In the above embodiments, the description of each embodiment is focused on a certain aspect, and the parts not described in detail in a certain embodiment can be referred to the relevant description of other embodiments.

[0071] The above merely describes preferred embodiments of the present application and is not intended to limit the present application. For those skilled in the art, the present application can have various modifications and changes. Any modification, equivalent replacement, improvement, etc. made within the spirit and principle of the present application shall be included in the protection scope of the present application.

Claims

1. A multi-wavelength full-function therapeutic machine, characterized in that, The multi-wavelength full-function therapeutic machine comprises a 980nm laser (1), a 1940nm laser (2), a 532nm laser (3), a 980nm, 1940nm and 532nm laser coupler (4), a 980nm laser fiber, a 1940nm laser fiber and a 532nm laser fiber, the 980nm laser (1) is connected with the 980nm, 1940nm and 532nm laser coupler (4) through the 980nm laser fiber, the 1940nm laser (2) is connected with the 980nm, 1940nm and 532nm laser coupler (4) through the 1940nm laser fiber, and the 532nm laser (3) is connected with the 980nm, 1940nm and 532nm laser coupler (4) through the 532nm laser fiber.

2. The multi-wavelength full-function therapeutic machine according to claim 1, characterized in that, The multi-wavelength full-function therapeutic machine is divided into three layers, the 980nm laser (1), the 1940nm laser (2) and the 532nm laser (3) are respectively located in the first layer, the second layer and the third layer of the multi-wavelength full-function therapeutic machine.

3. The multi-wavelength full-function therapeutic machine according to claim 2, characterized in that, The 980nm, 1940nm and 532nm laser coupler (4) is located in the first layer of the multi-wavelength full-function therapeutic machine.

4. The multi-wavelength full-function therapeutic machine according to claim 1, characterized in that, The 980nm laser (1) comprises a first laser output port (12), the 980nm, 1940nm and 532nm laser coupler (4) comprises a first laser input port, a second laser input port (42) and a third laser input port, one end of the 980nm laser fiber is connected with the first laser output port (12), and the other end is connected with the first laser input port.

5. The multi-wavelength full-function therapeutic machine according to claim 4, characterized in that, The 1940nm laser (2) comprises a second laser output port (22), one end of the 1940nm laser fiber is connected with the second laser output port (22), and the other end is connected with the second laser input port (42) of the 980nm, 1940nm and 532nm laser coupler (4).

6. The multi-wavelength full-function therapeutic machine according to claim 4, characterized in that, The 532nm laser (3) comprises a third laser output port (32), one end of the 532nm laser fiber is connected with the third laser output port (32), and the other end is connected with the third laser input port of the 980nm, 1940nm and 532nm laser coupler (4).

7. The multi-wavelength full-function therapeutic machine according to claim 1, characterized in that, The 532nm laser (3) further comprises a heat dissipation air duct (33) and a heat dissipation fan (34), the heat dissipation air duct (33) and the heat dissipation fan (34) are respectively located at two ends of the 532nm laser (3), and the rotation of the heat dissipation fan (34) generates wind to cool the 532nm laser (3) and discharge from the heat dissipation air duct (33).

8. The multi-wavelength full-function therapeutic machine according to claim 1, characterized in that, The multi-wavelength full-function treatment machine further comprises circuit system (5), the circuit system (5) includes first laser driver circuit (51), second laser driver circuit (52) and third laser driver circuit (53), the first laser driver circuit (51) is connected with the 980nm laser (1), the second laser driver circuit (52) is connected with the 1940nm laser (2), the third laser driver circuit (53) is connected with the 532nm laser (3).

9. The multi-wavelength full-function therapeutic machine according to claim 8, characterized in that, The multi-wavelength full-function treatment machine further comprises foot pedal (6), the foot pedal (6) includes high-frequency laser pedal position (61) and low-frequency laser pedal position (62), the foot pedal (6) controls the operation of the multi-wavelength full-function treatment machine by the circuit system (5), the high-frequency laser pedal position (61) is the position of executing high-frequency cutting, the low-frequency laser pedal position (62) is the position of executing low-frequency hemostasis.

10. The multi-wavelength full-function therapeutic machine according to any one of claims 1 to 9, characterized in that, The 980nm laser (1), the 1940nm laser (2) and the 532nm laser (3) adopt fiber-coupled semiconductor laser.

11. A multi-wavelength full-function therapeutic machine, characterized in that, Comprise: Laser assembly, the laser assembly includes a plurality of lasers, the laser wavelength of each laser is different; Laser coupler (4), the laser coupler (4) has laser input port and laser output port, the laser input port is used to be connected with the laser, and the laser output port is used to be connected with the treatment assembly, the laser input port is multiple, and multiple laser input ports are arranged one by one with the plurality of lasers; The laser coupler (4) receives the laser emitted by the laser through the laser input port, and outputs treatment laser to the treatment assembly through the laser output port; Wherein, the plurality of lasers at least includes 1940nm laser and 980nm laser.

12. The multi-wavelength full-function therapeutic machine according to claim 11, characterized in that, The multi-wavelength full-function treatment machine further comprises control assembly, and the control assembly comprises: Electric appliance box assembly (7), the electric appliance box assembly (7) is used to be electrically connected with circuit system (5), the laser assembly, the laser coupler (4); Display assembly (8), the display assembly (8) is electrically connected with at least one of the electric appliance box assembly (7), the circuit system (5), the laser assembly, the laser coupler (4), the display assembly (8) at least has interactive interface, the interactive interface is used to display the working information of the multi-wavelength full-function treatment machine, and the interactive interface is used to receive control instruction, and the control instruction is used to control the working state of the multi-wavelength full-function treatment machine.

13. The multi-wavelength full-function therapeutic machine according to claim 11, characterized in that, The multi-wavelength full-function treatment machine further comprises: Frame (91), the laser assembly, the laser coupler (4) are arranged on the frame (91), and at least one side of the frame (91) is provided with shielding cover (92); Cover (93), the cover (93) is arranged along the circumference of the frame (91), and the shielding cover (92) is arranged between the frame (91) and the cover (93).