Endoscope host compatible with soft and hard lenses and integrated with light source

By designing an endoscopic host that can be compatible with the integration of soft and hard lenses and light sources, the compatibility and portability of traditional endoscopic systems are solved, and the adaptation and equipment for different types of endoscopic surgery is achieved, and the efficiency and convenience of the surgery are improved.

CN120052787APending Publication Date: 2025-05-30HUNAN ENDOSO LIFE TECH CO LTD
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Patent Information

Application Number
CN202510227619.4
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-02-27
Publication Date
2025-05-30

AI Technical Summary

Technical Problem

Traditional endoscope systems are usually only compatible with one of hard or soft mirrors, and the light source system exists as an independent device, which limits the flexibility and portability of the endoscope. The compatibility issues between endoscopes of different brands and models and light source systems have caused inconvenience to doctors.

Method used

An endoscope host that is compatible with the integration of soft and hard mirrors and light sources is designed. By setting a soft mirror jack, hard mirror jack and light source jack on the main body of the host, compatibility with the hard mirror and soft mirror is achieved, and the light source system is integrated.

Benefits of technology

It enables adaptation to different types of endoscopic surgery without changing the host, simplifies surgical equipment, improves the convenience and efficiency of surgery, and reduces the complexity of equipment management.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention relates to the technical field of endoscope hosts, and discloses an endoscope host compatible with integration of soft and hard lenses and a light source, which comprises a host body, an operation part arranged on the host body, and a mounting part arranged at the top of the host body, and the heat dissipation part is arranged in the host body. According to the endoscope host compatible with the integration of the soft and hard lenses and the light source, the host body is provided with the soft lens jack, the hard lens jack and the light source jack, so that the host body is compatible with the hard lens and the soft lens, different types of endoscopic operations can be adapted without replacing the host, and the situation that a hospital purchases a plurality of different types of hosts can be avoided; the main machine integrates a light source system, operation equipment is further simplified, meanwhile, independent light source equipment does not need to be additionally connected and debugged, the operation process is simplified, and operation convenience and efficiency are improved.
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Description

Technical Field

[0001] The present invention relates to the technical field of endoscope hosts, and particularly to an endoscope host that can be compatible with rigid and flexible endoscopes and integrate a light source. Background Art

[0002] As an indispensable tool in modern medical surgeries and diagnoses, endoscopes have been widely used in various minimally invasive surgeries. It penetrates deep into the human body through natural body cavities or minimally invasive interventions, providing doctors with clear and intuitive images of the patient's body interior, thus greatly improving the accuracy and safety of surgeries. According to whether the endoscope body is bendable and the way it enters the human body, endoscopes are mainly divided into two categories: rigid endoscopes and flexible endoscopes.

[0003] Rigid endoscopes usually have a fixed shape and angle, and are suitable for surgical scenarios that require a large operating space and a clear field of view. In recent years, with the continuous development of CMOS technology, it has gradually replaced CCD and become the mainstream choice for endoscope image sensors. Flexible endoscopes, on the other hand, are characterized by their soft and bendable bodies and are suitable for exploring and operating in complex human body cavities.

[0004] However, traditional endoscope systems usually can only be compatible with one of rigid endoscopes or flexible endoscopes, and the light source system often exists as an independent device. This to a certain extent limits the flexibility and portability of endoscopes. At the same time, the compatibility issues between endoscopes of different brands and models and the light source system also bring many inconveniences to doctors during actual operations. Summary of the Invention

[0005] In view of the above problems that traditional endoscope systems usually can only be compatible with one of rigid endoscopes or flexible endoscopes, and the light source system often exists as an independent device, which to a certain extent limits the flexibility and portability of endoscopes. At the same time, the compatibility issues between endoscopes of different brands and models and the light source system also bring many inconveniences to doctors during actual operations, the present invention is proposed.

[0006] Therefore, the object of the present invention is to provide an endoscope host that can be compatible with rigid and flexible endoscopes and integrate a light source, and its purpose is to: achieve compatibility with rigid and flexible endoscopes, and adapt to different types of endoscopic surgeries without replacing the host. At the same time, the host also integrates the light source system, further simplifying the surgical equipment and improving the convenience and efficiency of surgeries.

[0007] To solve the above technical problems, the present invention provides the following technical solution: An endoscope host that can be compatible with rigid and flexible endoscopes and integrate a light source, including a host body, and further including an operating component arranged on the host body, a holding groove arranged at the bottom of the host body, a buckle plate arranged at one end of the inner cavity of the holding groove, an installation component arranged on the top of the host body, and a heat dissipation component arranged inside the host body;

[0008] The operating component includes a flexible endoscope jack disposed on one side at one end of the main body of the host, a rigid endoscope jack disposed on one side at one end of the main body of the host near the flexible endoscope jack, and a light source jack disposed on one side at the end of the main body of the host away from the flexible endoscope jack.

[0009] As a preferred solution of the endoscope host capable of compatible integration of flexible and rigid endoscopes and light source according to the present invention, wherein: a control main board is disposed at the bottom of the inner cavity of the main body of the host, and a host processor is disposed on one side of the bottom of the inner cavity of the main body of the host away from the control main board.

[0010] As a preferred solution of the endoscope host capable of compatible integration of flexible and rigid endoscopes and light source according to the present invention, wherein: the mounting component includes a top cover plate disposed above the main body of the host, hinges disposed on both sides at one end of the top of the main body of the host, and one end of the hinge is connected to the top cover plate, limiting grooves disposed on both sides at one end of the top of the main body of the host near the hinge, and a display screen disposed at the top end of the main body of the host.

[0011] As a preferred solution of the endoscope host capable of compatible integration of flexible and rigid endoscopes and light source according to the present invention, wherein: the heat dissipation component includes a first heat dissipation hole disposed on one side at the end of the main body of the host away from the flexible endoscope jack, and the first heat dissipation hole is communicated with the inner cavity of the main body of the host, a first heat dissipation fan disposed on one side of the inner cavity of the main body of the host near the first heat dissipation hole, and the first heat dissipation fan corresponds to the first heat dissipation hole, and an auxiliary heat dissipation component disposed in the inner cavity of the main body of the host.

[0012] As a preferred solution of the endoscope host capable of compatible integration of flexible and rigid endoscopes and light source according to the present invention, wherein: the heat dissipation component further includes two groups of second heat dissipation holes disposed on one side of the main body of the host, and the second heat dissipation holes are communicated with the inner cavity of the main body of the host, the second heat dissipation holes are located on the side of the main body of the host close to the host processor, two groups of second heat dissipation fans disposed on one side of the inner cavity of the main body of the host, and the two groups of second heat dissipation fans correspond to the two groups of second heat dissipation holes, and the two groups of second heat dissipation fans are located on the side of the main body of the host close to the host processor.

[0013] As a preferred solution of the endoscope host capable of compatible integration of flexible and rigid endoscopes and light source according to the present invention, wherein: the heat dissipation component further includes two groups of third heat dissipation holes disposed on one side of the main body of the host, and the third heat dissipation holes are communicated with the inner cavity of the main body of the host, the third heat dissipation holes are located on the side of the main body of the host close to the control main board, two groups of third heat dissipation fans disposed on one side of the inner cavity of the main body of the host, and the two groups of third heat dissipation fans correspond to the two groups of third heat dissipation holes, and the two groups of third heat dissipation fans are located on the side of the main body of the host close to the control main board.

[0014] As a preferred embodiment of the endoscope host compatible with the integration of rigid and flexible endoscopes and light sources of the present invention, wherein: the auxiliary heat dissipation component includes two groups of fixed heat conducting plates arranged at the bottom of the inner cavity of the host body near one side of the host processor, and the host processor is located between the two groups of fixed heat conducting plates. The fixed heat conducting plates are L-shaped, and fixing bolts are arranged at both ends of the top of the fixed heat conducting plates. The bottom end of the fixing bolt penetrates through the fixed heat conducting plate and is threadedly connected to the bottom of the inner cavity of the host body.

[0015] As a preferred embodiment of the endoscope host compatible with the integration of rigid and flexible endoscopes and light sources of the present invention, wherein: the auxiliary heat dissipation component further includes multiple groups of heat conducting cross plates arranged on the side of the fixed heat conducting plate away from the host processor, multiple groups of communication ports arranged on the top of the heat conducting cross plates, and the communication ports penetrate through the heat conducting cross plates, and a heat dissipation through hole arranged on the bottom of the host body near one side of the host processor, and the heat dissipation through hole is communicated with the inner cavity of the host body.

[0016] Advantages of the present invention:

[0017] 1. In the present invention, by providing a flexible endoscope jack, a rigid endoscope jack and a light source jack on the host body, the host body is compatible with rigid and flexible endoscopes. There is no need to replace the host to adapt to different types of endoscopic surgeries, and it is also possible to avoid hospitals purchasing multiple different types of hosts, saving equipment procurement costs. At the same time, the host also integrates the light source system, further simplifying the surgical equipment. At the same time, there is no need to additionally connect and debug an independent light source device, simplifying the operation process and improving the convenience and efficiency of the surgery.

[0018] 2. In the present invention, it is also more conducive to the unified management of equipment. The unified host is also convenient for maintenance and management. The equipment maintenance personnel in the hospital only need to be familiar with the operation and maintenance processes of one host, rather than multiple different types of hosts. Therefore, there is no need to separately consider the special requirements of different hosts, reducing the complexity of equipment management.

[0019] 3. In the present invention, through the coordinated setting of the first cooling fan, the second cooling fan and the third cooling fan, an air duct is formed inside the host body to quickly take away the heat generated inside the host body, preventing heat from accumulating inside. Furthermore, effective heat dissipation can prevent the electronic components and optical components inside the endoscope body from malfunctioning due to overheating. At the same time, it can reduce the temperature of the image sensor, reduce the generation of thermal noise, thereby improving the clarity and accuracy of the image, and can also maintain the stable operating temperature of the control main board and the optical components of the host processor, ensuring that its performance is not affected. Description of the Drawings

[0020] To more clearly illustrate the technical solutions of the embodiments of the present invention, the following will briefly introduce the drawings required for the description of the embodiments. Obviously, the drawings in the following description are only some embodiments of the present invention. For those of ordinary skill in the art, without creative efforts, other drawings can also be obtained based on these drawings. Among them:

[0021] Figure 1 It is a schematic diagram of the overall structure of the endoscope host that can be compatible with the integration of flexible and rigid endoscopes and light sources of the present invention.

[0022] Figure 2 It is a schematic diagram of the overall structure of the endoscope host that can be compatible with the integration of flexible and rigid endoscopes and light sources of the present invention from another perspective.

[0023] Figure 3 It is a schematic diagram of the side view cross-sectional three-dimensional structure of the endoscope host that can be compatible with the integration of flexible and rigid endoscopes and light sources of the present invention.

[0024] Figure 4 It is a schematic diagram of the top view cross-sectional three-dimensional structure of the main body of the endoscope host that can be compatible with the integration of flexible and rigid endoscopes and light sources of the present invention.

[0025] Figure 5 It is a schematic diagram of the top view cross-sectional three-dimensional structure of the main body of the endoscope host that can be compatible with the integration of flexible and rigid endoscopes and light sources of the present invention from another perspective.

[0026] Figure 6 For the endoscope host that can be compatible with the integration of flexible and rigid endoscopes and light sources of the present invention Figure 1 The enlarged structure diagram at position A.

[0027] Figure 7 For the endoscope host that can be compatible with the integration of flexible and rigid endoscopes and light sources of the present invention Figure 3 The enlarged structure diagram at position B.

[0028] Explanation of reference numerals:

[0029] 1. Main body of the host; 11. Operating component; 111. Flexible endoscope jack; 112. Rigid endoscope jack; 113. Light source jack; 12. Holding groove; 13. Buckle plate; 14. Control main board; 15. Host processor; 2. Mounting component; 21. Top cover plate; 22. Display screen; 23. Hinge; 24. Limiting groove; 3. Heat dissipation component; 31. First heat dissipation hole; 32. Second heat dissipation hole; 33. Third heat dissipation hole; 34. First heat dissipation fan; 35. Second heat dissipation fan; 36. Third heat dissipation fan; 37. Auxiliary heat dissipation component; 371. Fixed heat conduction plate; 372. Fixed bolt; 373. Heat conduction cross plate; 374. Communication port; 375. Heat dissipation port. Detailed implementation manners

[0030] In order to make the above objects, features, and advantages of the present invention more obvious and understandable, the following detailed description of the specific embodiments of the present invention will be given in conjunction with the accompanying drawings of the specification.

[0031] In the following description, many specific details are set forth in order to fully understand the present invention. However, the present invention can also be implemented in other ways different from those described herein. Those skilled in the art can make similar extensions without departing from the connotation of the present invention. Therefore, the present invention is not limited by the specific embodiments disclosed below.

[0032] Embodiment 1

[0033] Refer to Figures 1-3 , for the first embodiment of the present invention, an endoscope host compatible with the integration of rigid and flexible endoscopes and light sources is provided. This endoscope host compatible with the integration of rigid and flexible endoscopes and light sources includes a main body 1 of the host. Rubber bottom blocks are provided at the four corners of the bottom of the main body 1 of the host, which can effectively absorb the mechanical vibration energy generated during the operation of the main body 1 of the host. At the same time, it can provide reliable grip and prevent the main body 1 of the host from shifting. It also includes an operating component 11 provided on the main body 1 of the host, a holding groove 12 opened at the bottom of the main body 1 of the host, and a snap plate 13 fixedly connected to one end of the inner cavity of the holding groove 12. The snap plate 13 facilitates the holding and taking of the main body 1 of the host for moving operations. An installation component 2 is provided on the top of the main body 1 of the host, and a heat dissipation component 3 is provided inside the main body 1 of the host;

[0034] The operating component 11 includes a flexible endoscope jack 111 installed on one side of one end of the main body 1 of the host, a rigid endoscope jack 112 installed on one side of one end of the main body 1 of the host near the flexible endoscope jack 111, and a light source jack 113 installed on one side of the other end of the main body 1 of the host away from the flexible endoscope jack 111.

[0035] A control main board 14 is installed at the bottom of the inner cavity of the main body 1 of the host, and a host processor 15 is installed on the side of the bottom of the inner cavity of the main body 1 of the host away from the control main board 14. The control main board 14 is connected to the flexible endoscope jack 111, the rigid endoscope jack 112, and the light source jack 113, and then the host processor 15 controls the flexible endoscope jack 111, the rigid endoscope jack 112, and the light source jack 113 to perform corresponding operations.

[0036] During use, the integration of the flexible endoscope jack 111 and the rigid endoscope jack 112 on the main body 1 of the host realizes the compatibility with rigid and flexible endoscopes. There is no need to replace the host to adapt to different types of endoscopic surgeries. At the same time, the main body 1 of the host also integrates the light source jack 113, further simplifying the surgical equipment and improving the convenience and efficiency of the surgery.

[0037] Embodiment 2

[0038] Refer to Figures 1-6, which is the second embodiment of the present invention. The difference between this embodiment and the first embodiment is that the installation component 2 includes a top cover plate 21 disposed above the main body 1 of the host, hinges 23 fixedly installed on both sides of one end of the top of the main body 1 of the host, and one end of the hinge 23 is connected to the top cover plate 21, limiting grooves 24 disposed on both sides of one end of the top of the main body 1 of the host near the hinge 23, and a display screen 22 embedded in the top end of the main body 1 of the host.

[0039] During use, through the setting of the hinge 23, the opening and closing function of the top cover plate 21 can be realized. At the same time, the hinge 23 also bears the role of partially bearing the weight of the top cover plate 21, making the operation of the top cover plate 21 more smooth. At the same time, by using the setting of the limiting groove 24, when the top cover plate 21 is folded and stored on the top of the main body 1 of the host, the hinge 23 just gets stuck in the limiting groove 24. In this way, it can effectively prevent the hinge 23 from pressing the display screen 22 on the top cover plate 21 when folding the top cover plate 21, thereby improving the safety of the display screen 22 when folding.

[0040] The remaining structures are the same as those in Embodiment 1.

[0041] Embodiment 3

[0042] Refer to Figures 1-7 , which is the third embodiment of the present invention. The difference between this embodiment and the second embodiment is that the heat dissipation component 3 includes a first heat dissipation hole 31 opened on one side of one end of the main body 1 of the host away from the flexible mirror jack 111, and the first heat dissipation hole 31 is in communication with the inner cavity of the main body 1 of the host. The first heat dissipation hole 31 is an exhaust hole, a first heat dissipation fan 34 fixedly installed on one side of one end of the inner cavity of the main body 1 of the host near the first heat dissipation hole 31, and the first heat dissipation fan 34 corresponds to the first heat dissipation hole 31. The first heat dissipation fan 34 is an exhaust fan, which extracts the air inside the main body 1 of the host to the outside of the main body 1 of the host through the first heat dissipation hole 31, and an auxiliary heat dissipation component 37 disposed in the inner cavity of the main body 1 of the host.

[0043] The heat dissipation component 3 further includes two groups of second heat dissipation holes 32 opened on one side of the main body 1 of the host, and the second heat dissipation holes 32 are in communication with the inner cavity of the main body 1 of the host. The second heat dissipation holes 32 are intake holes. The second heat dissipation holes 32 are located on the side of the main body 1 of the host close to the host processor 15. Two groups of second heat dissipation fans 35 fixedly installed on one side of the inner cavity of the main body 1 of the host, and the two groups of second heat dissipation fans 35 correspond to the two groups of second heat dissipation holes 32. The second heat dissipation fans 35 are exhaust fans, which extract the air inside the main body 1 of the host to the outside of the main body 1 of the host through the second heat dissipation holes 32. The two groups of second heat dissipation fans 35 are located on the side of the main body 1 of the host close to the host processor 15.

[0044] The heat dissipation component 3 further includes two groups of third heat dissipation holes 33 opened on one side of the main body 1 of the host, and the third heat dissipation holes 33 communicate with the inner cavity of the main body 1 of the host. The third heat dissipation holes 33 are air intake holes, and the third heat dissipation holes 33 are located on the side of the main body 1 of the host close to the control main board 14. Two groups of third heat dissipation fans 36 fixedly installed on one side of the inner cavity of the main body 1 of the host, and the two groups of third heat dissipation fans 36 correspond to the two groups of third heat dissipation holes 33. The third heat dissipation fans 36 are air intake fans, which are used to extract the air outside the main body 1 of the host into the main body 1 of the host through the third heat dissipation holes 33. The two groups of third heat dissipation fans 36 are located on the side of the main body 1 of the host close to the control main board 14.

[0045] The auxiliary heat dissipation component 37 includes two groups of fixed heat conduction plates 371 arranged on the bottom of the inner cavity of the main body 1 of the host close to one side of the host processor 15, and the host processor 15 is located between the two groups of fixed heat conduction plates 371. The fixed heat conduction plates 371 are L-shaped, and fixing bolts 372 threadedly connected to both ends of the top of the fixed heat conduction plates 371. The bottom ends of the fixing bolts 372 penetrate through the fixed heat conduction plates 371 and are threadedly connected to the bottom of the inner cavity of the main body 1 of the host. The auxiliary heat dissipation component 37 further includes a plurality of heat conduction cross plates 373 fixedly installed on the side of the fixed heat conduction plates 371 away from the host processor 15, and a plurality of communication ports 374 opened on the top of the heat conduction cross plates 373. The communication ports 374 penetrate through the heat conduction cross plates 373, and a heat dissipation through port 375 opened on the bottom of the main body 1 of the host close to one side of the host processor 15. The heat dissipation through port 375 communicates with the inner cavity of the main body 1 of the host.

[0046] During the use process, when the control main board 14 and the host processor 15 generate a large amount of heat during the use of the main body 1 of the host, at this time, by starting the first heat dissipation fan 34 and the second heat dissipation fan 35, the heat generated by the host processor 15 in the main body 1 of the host can be extracted, and then discharged from the first heat dissipation holes 31 at the front end of the main body 1 of the host and the two groups of second heat dissipation holes 32 on one side. And when the first heat dissipation fan 34 and the second heat dissipation fan 35 extract the heat in the inner cavity of the main body 1 of the host, a negative pressure will be generated, and then the heat dissipation through port 375 will suck the air at the bottom of the main body 1 of the host into the inner part of the main body 1 of the host for heat exchange, and then discharged from the first heat dissipation holes 31 and the second heat dissipation holes 32. At the same time, the third heat dissipation fan 36 will be started to extract the air outside the main body 1 of the host into the inner part of the main body 1 of the host through the third heat dissipation holes 33, and then blow the heat generated by the control main board 14 to one side of the host processor 15 in the inner cavity of the main body 1 of the host, and discharged synchronously through the first heat dissipation holes 31 and the second heat dissipation fan 35. In this way, a stable air duct can be formed in the inner cavity of the main body 1 of the host, which is more conducive to the discharge of the heat in the main body 1 of the host;

[0047] By arranging fixed heat-conducting plates 371 on both sides of the host processor 15, the host processor 15 can be limited in position. At the same time, the heat of the host processor 15 can also be conducted to multiple heat-conducting cross plates 373 on the fixed heat-conducting plates 371. Then, through multiple communication ports 374 on the heat-conducting cross plates 373, the contact area between the heat-conducting cross plates 373 and the air can be increased, and then the heat dissipation effect of the heat-conducting cross plates 373 can be improved, which is more conducive to the first heat dissipation fan 34 and the second heat dissipation fan 35 extracting and discharging the heat generated by the host processor 15 from the host body 1.

[0048] The remaining structures are the same as those in Embodiment 2.

[0049] It should be noted that the above embodiments are only used to illustrate the technical solutions of the present invention and are not intended to limit them. Although the present invention has been described in detail with reference to the preferred embodiments, those of ordinary skill in the art should understand that the technical solutions of the present invention can be modified or equivalently replaced without departing from the spirit and scope of the technical solutions of the present invention, and they should all be covered by the scope of the claims of the present invention.

Claims

1. An endoscope host compatible with soft and hard endoscopes and light source integration, comprising a host body (1), characterized in that: It also includes an operating component (11) arranged on the host body (1), a holding groove (12) arranged at the bottom of the host body (1), a snap plate (13) arranged at one end of the inner cavity of the holding groove (12), a mounting component (2) arranged at the top of the host body (1), and a heat dissipation component (3) arranged inside the host body (1); The operating component (11) comprises a soft mirror plug hole (111) arranged on one side of one end of the host body (1), a hard mirror plug hole (112) arranged on one side of one end of the host body (1) close to the soft mirror plug hole (111), and a light source plug hole (113) arranged on one side of one end of the host body (1) away from the soft mirror plug hole (111).

2. The endoscope host compatible with soft and hard endoscopes and light source integration according to claim 1, characterized in that: A control mainboard (14) is arranged at the bottom of the inner cavity of the host body (1), and a host processor (15) is arranged at a side of the bottom of the inner cavity of the host body (1) away from the control mainboard (14).

3. The endoscope host compatible with soft and hard endoscopes and light source integration according to claim 2, characterized in that: The mounting component (2) comprises a top cover plate (21) arranged above the host body (1), hinges (23) arranged on both sides of one end of the top of the host body (1), one end of the hinge (23) and the top cover plate (21) being connected to each other, limiting grooves (24) arranged on both sides of one end of the hinge (23) at the top of the host body (1), and a display screen (22) arranged at the top of the host body (1).

4. The endoscope host compatible with soft and hard endoscopes and light source integration according to claim 3, characterized in that: The heat dissipation component (3) comprises a first heat dissipation hole (31) arranged at one end of the host body (1) away from the side of the soft mirror insertion hole (111), and the first heat dissipation hole (31) and the inner cavity of the host body (1) are connected to each other; a first heat dissipation fan (34) is arranged at one end of the inner cavity of the host body (1) close to the first heat dissipation hole (31), and the first heat dissipation fan (34) and the first heat dissipation hole (31) correspond to each other; and an auxiliary heat dissipation component (37) is arranged in the inner cavity of the host body (1).

5. The endoscope host compatible with soft and hard endoscopes and light source integration according to claim 4, characterized in that: The heat dissipation component (3) further comprises two groups of second heat dissipation holes (32) arranged on one side of the host body (1), and the second heat dissipation holes (32) and the inner cavity of the host body (1) are interconnected, and the second heat dissipation holes (32) are located on a side of the host body (1) close to the host processor (15), and two groups of second heat dissipation fans (35) are arranged on one side of the inner cavity of the host body (1), and the two groups of second heat dissipation fans (35) and the two groups of second heat dissipation holes (32) correspond to each other, and the two groups of second heat dissipation fans (35) are located on a side of the host body (1) close to the host processor (15).

6. The endoscope host compatible with soft and hard endoscopes and light source integration according to claim 5, characterized in that: The heat dissipation component (3) further comprises two groups of third heat dissipation holes (33) arranged on one side of the host body (1), and the third heat dissipation holes (33) and the inner cavity of the host body (1) are interconnected, and the third heat dissipation holes (33) are located on a side of the host body (1) close to the control mainboard (14), and two groups of third heat dissipation fans (36) are arranged on one side of the inner cavity of the host body (1), and the two groups of the third heat dissipation fans (36) and the two groups of the third heat dissipation holes (33) correspond to each other, and the two groups of the third heat dissipation fans (36) are located on a side of the host body (1) close to the control mainboard (14).

7. The endoscope host compatible with soft and hard endoscopes and light source integration according to claim 6, characterized in that: The auxiliary heat dissipation component (37) comprises two groups of fixed heat-conducting plates (371) arranged at the bottom of the inner cavity of the host body (1) close to the host processor (15), and the host processor (15) is located between the two groups of fixed heat-conducting plates (371), the fixed heat-conducting plates (371) are L-shaped, and fixing bolts (372) are arranged at both ends of the top of the fixed heat-conducting plates (371), and the bottom ends of the fixing bolts (372) pass through the fixed heat-conducting plates (371) and are threadedly connected to the bottom of the inner cavity of the host body (1).

8. The endoscope host compatible with soft and hard endoscopes and light source integration according to claim 7, characterized in that: The auxiliary heat dissipation component (37) further comprises a plurality of groups of heat-conducting transverse plates (373) arranged on the side of the fixed heat-conducting plate (371) away from the host processor (15), a plurality of groups of connecting ports (374) arranged on the top of the heat-conducting transverse plates (373), wherein the connecting ports (374) penetrate the heat-conducting transverse plates (373), and a heat dissipation vent (375) arranged on the bottom of the host body (1) close to the host processor (15), wherein the heat dissipation vent (375) and the inner cavity of the host body (1) are connected to each other.