Connecting structure, electronic equipment and endoscope system
By combining the pre-embedded parts with the housing, the problem of easy damage at the bolt connection of the endoscope equipment is solved, thereby improving stability and reliability and extending the service life of the equipment.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-24
- Publication Date
- 2026-03-27
AI Technical Summary
The bolt connections of traditional endoscopic equipment are prone to damage, affecting the stability and reliability of the equipment and leading to safety hazards during surgery.
The connection structure adopts a combination of embedded parts and shell, and the fasteners are connected through blind holes in the embedded parts to avoid direct contact between the fasteners and shell, thereby achieving uniform stress distribution.
It improves the stability and reliability of the connection, reduces the risk of fastener damage to the housing, and extends the service life of the equipment.
Smart Images

Figure CN224039172U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to medical instrument technical field especially, relate to a connecting structure, electronic equipment and endoscope system. BACKGROUND
[0002] In the use process of endoscope, interactive equipment as the key component, usually adopts the all -in -one form, and the doctor carries out real -time control and observation through all -in -one, to realize accurate operation treatment.
[0003] In the related art, in order to ensure the stability of interactive equipment and the convenience of operation, interactive equipment needs to be connected with trolley and other supporting devices.The traditional method is to fix the adapter frame on the trolley on the shell of interactive equipment by bolt, to realize the stable connection of the two.However, it is found in practice that this connection mode is prone to damage at the bolt connection, and even causes the interactive equipment to be unable to be normally used, which affects the smooth progress of operation. UTILITY MODEL CONTENTS
[0004] In order to solve the above problems, the application provides a connecting structure, electronic equipment and endoscope system.
[0005] Firstly, the application provides a connecting structure, which adopts the following technical scheme:
[0006] A connecting structure comprises:
[0007] A shell is provided with a mounting cavity;
[0008] A pre-embedded part is arranged in the mounting cavity, so that the pre-embedded part is connected with the shell, and the pre-embedded part is provided with a connecting hole to be connected with external fasteners;
[0009] Wherein, the connecting hole is a blind hole.
[0010] Preferably, the sidewall of the pre-embedded part is provided with a groove, and the shell is provided with a protruding part matched with the groove;
[0011] And / or, the thickness of the closed end of the connecting hole is greater than the thickness of the sidewall of the pre-embedded part;
[0012] And / or, the inner wall of the closed end of the connecting hole is a first plane, and the first plane is perpendicular to the center axis of the connecting hole;
[0013] And / or, the outer wall of the closed end of the connecting hole is a second plane, and the second plane is perpendicular to the center axis of the connecting hole;
[0014] And / or, at least part of the opening side of the pre-embedded part protrudes from the surface of the shell.
[0015] Preferably, the groove body is a rotary groove with the center axis of the connecting hole as the rotation center.
[0016] Preferably, the groove body is located on the side of the embedded part close to the opening of the connecting hole.
[0017] Preferably, the cross section of the groove body is rectangular.
[0018] Alternatively, the groove body is a necked structure, so that the opening size of the groove body is smaller than the bottom size of the groove body.
[0019] Preferably, the side wall of the embedded part is a cylindrical surface, and the embedded part is limited in cooperation with the shell in the axial direction of the connecting hole.
[0020] Preferably, the shell is provided with a reinforcing rib, and at least part of the reinforcing rib is connected with the shell around the embedded part.
[0021] Preferably, the reinforcing rib includes intersecting first and second rib plates, and the embedded part is located at the intersection of the first and second rib plates.
[0022] And / or, the shell includes a recessed part recessed from the outer side to the inner side, the recessed part is used for accommodating an external functional structure, at least part of the reinforcing rib is connected with the side wall and the bottom wall of the recessed part, and the embedded part is located at the connection between the reinforcing rib and the recessed part.
[0023] In a second aspect, the application provides an electronic device, which adopts the following technical solution:
[0024] An electronic device, which includes the connecting structure described in the above technical solution.
[0025] In a third aspect, the application provides an endoscope system, which adopts the following technical solution:
[0026] An endoscope system, which includes the electronic device described in the above technical solution, and further includes a support device, and the electronic device is connected to the support device.
[0027] The utility model has the following advantages and beneficial effects:
[0028] The application adopts the combination mode of the embedded part and the shell, so that the fastener connection is no longer directly in contact with the shell. The embedded part is a blind hole structure, and when the fastener is screwed in, the end of the fastener will not be in direct contact with the shell, avoiding the generation of reaction force. In this way, the stress at the fastener connection is evenly distributed, effectively reducing the stress concentration between the fastener and the shell, and avoiding damage to the connection.
[0029] In addition, since there is no direct contact between the end of the fastener and the shell, the fastener will not cause additional pressure on the shell during installation, avoiding the risk of the fastener penetrating or damaging the shell. This design not only improves the stability of the structure, but also effectively prolongs the service life of the equipment.
[0030] The contact area between the embedded part and the shell is large, which can effectively disperse the stress between the fastener and the shell, thereby reducing stress concentration. This optimization not only enhances the durability of the shell, but also improves its reliability. BRIEF DESCRIPTION OF DRAWINGS
[0031] In order to more clearly illustrate the technical solutions in the embodiments of the present application or the prior art, the drawings needed to be used in the embodiment or prior art description will be briefly introduced below. Obviously, the drawings in the following description are only some embodiments of the present application, and for those skilled in the art, other drawings can also be obtained from these drawings without creative labor.
[0032] Figure 1 is a first schematic view of the embedded part;
[0033] Figure 2 is a second schematic view of the embedded part;
[0034] Figure 3 is a cross-sectional view of the embedded part;
[0035] Figure 4 is a structural schematic view of the all-in-one machine;
[0036] Figure 5 is a schematic view of the internal structure of the shell;
[0037] Figure 6 is a partial cross-sectional view of the shell;
[0038] Figure 7 is Figure 6 is a schematic view of the enlarged structure of part A in
[0039] Figure 8 is a schematic view of the structure when the all-in-one machine is fixed to the trolley;
[0040] Figure 9 is a schematic view of the local mechanism when the all-in-one machine is fixed to the trolley.
[0041] In the drawings, the following marks are marked:
[0042] 100, housing; 110, protrusion; 120, reinforcing rib; 121, first rib plate; 122, second rib plate; 130, recess; 200, embedded part; 210, connecting hole; 220, groove; 230, first plane; 240, second plane; 300, fastener; 400, support device. DETAILED DESCRIPTION
[0043] In order to make the purpose, technical scheme and advantages of the present application more clear, the technical scheme of the present application will be described in detail below. Obviously, the described embodiments are only part of the embodiments of the present application, not all the embodiments. Based on the embodiments in the present application, all other embodiments obtained by those skilled in the art without creative labor belong to the scope of protection of the present application.
[0044] The terms "first", "second", and the like in the specification and claims of the present application are used to distinguish similar objects, not to describe a specific order or sequence. It should be understood that the data used in this way can be interchanged under appropriate circumstances, so that the embodiments of the present application can be implemented in an order other than those illustrated or described herein, and the objects distinguished by "first", "second", etc. are usually a class, not limited to the number of objects, for example, the first object can be one or more. In addition, "and / or" in the specification and claims means at least one of the connected objects, and the character " / ", generally indicates that the front and rear associated objects are in a "or" relationship.
[0045] Endoscopes have been widely used in medical diagnosis, and endoscope hosts are usually integrated with displays to form all-in-one machines for image display. In order to enhance the flexibility and operation convenience of the equipment, the endoscope all-in-one machine is usually installed on a dedicated trolley. The design of the trolley enables the endoscope host to be conveniently moved between multiple examination rooms or treatment rooms, greatly improving the use efficiency and flexibility of the equipment.
[0046] In the connection process of the endoscope all-in-one machine and the trolley, a bolt is usually used to fixedly connect the adapter frame on the trolley to the shell of the interactive device, so as to realize reliable installation of the two. However, in the actual installation process, if too large torque is applied when the bolt is turned, damage to the shell of the all-in-one machine at the bolt connection position may be caused. This damage may affect the stability of the bolt connection, thereby bringing safety hazards in subsequent use, affecting the normal operation and long-term reliability of the equipment.
[0047] To solve the above problems, the application provides a connecting structure. A pre-embedded part is pre-embedded on a shell, so that a bolt is connected with the pre-embedded part when connected. Since the connecting hole of the pre-embedded part is a blind hole, the end of the bolt will not directly contact the shell, thereby avoiding the generation of reaction force. Thus, when the force for rotating the bolt is too large, damage to the bolt connection can be avoided, the damage risk caused by the excessive torque is effectively reduced, and the stability and reliability of the equipment during long-term use are ensured.
[0048] The application provides a connecting structure, an electronic device and an endoscope system, which will be described in detail below in combination with the accompanying drawings. Figures 1 to 9 The application provides a connecting structure, an electronic device and an endoscope system, which will be described in detail below in combination with the accompanying drawings.
[0049] The first aspect of the embodiment describes a connecting structure in detail.
[0050] The application discloses a connecting structure, which is suitable for an all-in-one machine of an endoscope. For example, referring to Figure 8 The connecting mechanism is used to fix the shell of the all-in-one machine and the supporting device 400, so as to realize the support of the supporting device 400 on the all-in-one machine. It can be understood that the supporting device 400 can be a supporting structure such as a trolley, which can adjust the position, angle and height of the all-in-one machine as needed to ensure that the all-in-one machine is in the required position.
[0051] For example, referring to Figure 1 , Figure 4 The connecting structure includes a shell 100 and a pre-embedded part 200. The shell 100 can be part or all of the shell of the all-in-one machine of the endoscope. For example, the shell 100 is used to protect the internal circuit board and other components of the all-in-one machine. When the all-in-one machine is fixed on the trolley, the shell 100 is only fixed on the trolley, and stable connection of the all-in-one machine and the trolley can be realized. In some embodiments, the shell 100 can be composed of a middle frame and a bottom shell and the like, and the pre-embedded part 200 is arranged on the bottom shell to enhance the stability of the connection. In other embodiments, the shell 100 is composed of a plurality of shell units, and each shell unit forms an integral structure by splicing, thereby improving the flexibility and adaptability of the design.
[0052] In some embodiments, the pre-embedded part 200 is provided with a connecting hole 210, which can be connected with an external fastener 300. Specifically, when the shell 100 is fixed on the trolley, the external fastener 300 is threadedly connected with the connecting hole 210, so that the connecting structure can be stably fixed on the shell 100, thereby realizing the fixation of the shell 100 and the trolley. This design is conducive to improving the convenience and stability of equipment installation.
[0053] Further, in some embodiments, a limit fit is adopted between the embedded part 200 and the shell 100 in the axial direction of the connecting hole 210. Through this design, after the embedded part 200 is connected with the external fastener 300, the relative position of the embedded part 200 and the shell 100 is effectively limited, reducing the possibility of separation between the embedded part 200 and the shell 100, thereby benefiting the improvement of the connection strength between the shell 100 and the trolley, and enhancing the stability and reliability of the equipment during use. This design can reduce the loosening of the connection caused by external force to a certain extent through structural limitation, ensuring the long-term effectiveness of the connection. Exemplarily, the fastener 300 is a bolt or a screw, etc.
[0054] This structural design optimizes the connection stability, so that the endoscope all-in-one machine can better disperse stress when adjusting the position and angle, and avoid damage caused by excessive torque. At the same time, through the limit fit between the embedded part 200 and the shell 100, the durability and safety of the equipment during use can be effectively improved.
[0055] Exemplarily, referring to Figure 6 , Figure 7 , a protrusion and a groove are arranged between the embedded part 200 and the shell 100 to realize the limit fit between the embedded part 200 and the shell 100 in the axial direction of the connecting hole 210. Through this structural design, the axial displacement of the embedded part 200 can be effectively limited when it is connected with the external fastener 300, thereby reducing the relative movement between the embedded part 200 and the shell 100, and further improving the stability of the connection. It should be noted that although the cooperation mode of the protrusion and the groove is adopted in this embodiment, other forms of structures can also be adopted to realize similar limit fit effect in other embodiments.
[0056] In some schemes, referring to Figure 1 , Figure 2 , the connecting hole 210 is a blind hole, i.e., one end of the connecting hole 210 is open, and the other end is closed. Exemplarily, the external fastener 300 is screwed through the open end of the connecting hole 210 and cooperates with the internal thread of the embedded part 200. With the rotation of the fastener 300, the fastener 300 gradually contacts the closed end of the connecting hole 210, and finally the fastener 300 cannot continue to rotate. This design effectively avoids the continuous force exerted by the fastener 300 during rotation, preventing damage to the shell 100 when the fastener 300 further rotates.
[0057] In use, the connecting fastener 300 is in contact with the embedded part 200, so the continuous rotation of the external fastener 300 will not cause it to contact the shell 100. Since there is no direct contact between the end of the fastener 300 and the shell 100, the fastener 300 will not exert additional pressure on the shell 100 during installation, thereby avoiding the risk of the fastener 300 penetrating or damaging the shell 100. This design not only improves the stability of the structure, but also effectively prolongs the service life of the equipment.
[0058] According to an optional embodiment, with reference to Figure 2 、 Figure 3 , the side wall of the embedded part 200 is a cylindrical surface. Exemplarily, the overall shape of the embedded part 200 is cylindrical, the connecting hole 210 is opened along the central axis direction of the embedded part 200, and the connecting hole 210 is open at one end of the embedded part 200 and closed at the other end. In use, the external fastener 300 is screwed into the connecting hole 210 along the central axis direction of the embedded part 200, and the contact between the end of the fastener 300 and the inner wall of the connecting hole 210 can provide clear tactile feedback to the operator, helping him to screw the external fastener 300 into place.
[0059] In addition, when the external fastener 300 exerts a large rotational torque, and the end of the fastener 300 has contacted the embedded part 200, it may cause a relative rotation tendency between the embedded part 200 and the shell 100. Since the side wall of the embedded part 200 is a cylindrical surface, even if the rotational torque is large, it will not cause damage to the embedded part 200 or the shell 100. During this process, only relative rotation occurs between the embedded part 200 and the shell 100, thereby achieving stress relief. Through this cylindrical surface design, damage to the shell 100 caused by excessive torque can be effectively avoided, ensuring the structural integrity of the equipment.
[0060] It can be understood that since the embedded part 200 is fixed in the shell 100, for example, embedded in the shell 100 during injection molding, there is a large contact pressure between the embedded part 200 and the shell 100. This contact pressure makes it difficult for the embedded part 200 and the shell 100 to rotate relative to each other. Specifically, when the embedded part 200 and the shell 100 rotate relative to each other under external force, they still maintain a large friction force between them, which helps to ensure that the external fastener 300 can be smoothly screwed into the embedded part 200, thereby preventing excessive relative rotation between the embedded part 200 and the shell 100 and ensuring normal installation of the fastener 300.
[0061] According to an optional embodiment, with reference to Figure 2 、 Figure 3The side wall of the embedded part 200 is provided with a groove 220, and the shell 100 is provided with a protruding part 110 matched with the groove 220. Through the cooperation of the groove 220 and the protruding part 110, the embedded part 200 can be effectively prevented from being separated from the shell 100, thereby enhancing the connection strength between the embedded part 200 and the shell 100. In this way, after the shell 100 is connected with the trolley, the embedded part 200 can be effectively prevented from being separated from the shell 100, thereby improving the stability and reliability of the entire connection structure.
[0062] For example, the outer wall of the embedded part 200 is concave to form a groove 220, and the shell 100 is provided with a protruding part 110 at a position corresponding to the groove 220. Through the cooperation of the protruding part 110 and the groove 220, the embedded part 200 can be more stably fixed in the shell 100, reducing the possibility of separation of the embedded part 200 from the shell 100, thereby improving the reliability of the connection.
[0063] According to an optional embodiment, referring to Figure 2 、 Figure 3 The thickness of the closed end of the connecting hole 210 is greater than the thickness of the side wall of the embedded part 200. When the external fastener 300 is screwed into the connecting hole 210, the end of the fastener 300 will abut against the closed end of the connecting hole 210. Since the closed end of the connecting hole 210 provides a terminal contact surface for the fastener 300, when the fastener 300 continues to be screwed in, the end thereof will exert a certain pressure on the closed end. If the thickness of the closed end is thin, under the action of a larger external force, local stress concentration may occur, thereby causing deformation or even piercing of the closed end. Especially when the end of the external fastener 300 is a pointed or conical structure, under the action of a larger tightening torque, the embedded part 200 is more likely to be damaged, and even the safety of the shell 100 or the components inside the shell 100 may be affected.
[0064] By designing the thickness of the closed end of the connecting hole 210 to be greater than the thickness of the side wall of the embedded part 200, the closed end can withstand a certain degree of external pressure, reducing the effect of local stress concentration. In this way, when the end of the external fastener 300 contacts the closed end, even if a larger tightening force is applied, the closed end can provide relatively stable support, reducing the risk of piercing or deformation. In addition, the enhanced design of the closed end helps to improve the overall structural stability of the embedded part 200, thereby enhancing the connection reliability of the shell 100 and the trolley, so that the equipment can maintain good fixing effect during long-term use.
[0065] According to an optional embodiment, referring to Figure 2 、 Figure 3The inner wall of the closed end of the connecting hole 210 is a first plane 230, which is perpendicular to the central axis of the connecting hole 210. The first plane 230 can be formed by planing or mold forming, for example, to ensure that it provides stable support when the external fastener 300 is screwed in. When the external fastener 300 is screwed to the limit position, its end face will be in contact with the first plane 230, and a larger contact area will be formed during the contact, so that the pressure of the external fastener 300 is evenly distributed on the first plane 230.
[0066] Compared with the closed end of the pointed or curved structure, the first plane 230 can reduce the local stress concentration to some extent, avoiding the risk of local extrusion or penetration of the end of the fastener 300 to the closed end. In addition, due to the presence of the first plane 230, the tightening force of the external fastener 300 can be evenly transmitted to the embedded part 200, improving the stability of the embedded part 200 under stress, and thus improving the reliability of the entire connecting structure.
[0067] According to an optional embodiment, the outer wall of the closed end of the connecting hole 210 is a second plane 240, which is perpendicular to the central axis of the connecting hole 210. The second plane 240 can be formed on the outer surface of the embedded part 200 and combined with the material of the shell 100 during the injection molding of the shell 100, for example. This structure can form a larger contact area between the second plane 240 and the shell 100 when the embedded part 200 is subjected to external force, especially along the axial direction of the connecting hole 210.
[0068] Due to the larger contact area between the second plane 240 and the shell 100, the external force on the embedded part 200 can be dispersed to some extent, thereby reducing the local stress concentration effect. When the external force is large, this design helps to reduce the extrusion of the embedded part 200 to the shell 100, avoiding local damage or deformation of the shell 100, and improving the durability and reliability of the entire connecting structure. In addition, the second plane 240 can also provide additional support when the embedded part 200 is subjected to lateral force, so that the embedded part 200 remains stable in the shell 100, reducing the risk of loosening or falling during long-term use.
[0069] According to an optional embodiment, at least part of the opening side of the embedded part 200 protrudes from the surface of the shell 100. The protruding design of the opening side of the embedded part 200 helps to facilitate the connection and positioning between the support device 400 and the shell 100. For example, when the shell 100 is connected with the support device 400, an adapter plate can be connected on the shell 100, and the protruding embedded part 200 cooperates with the adapter plate, thereby improving the installation efficiency between the shell 100 and the support device 400.
[0070] In addition, the protruding embedded part 200 can enable the installer to intuitively see the relative position relationship between the fastener 300 and the embedded part 200 when installing the fastener 300 to the connecting hole 210. This design is beneficial to avoid stress concentration caused by the inability to accurately know the position of the fastener 300 during installation, thereby reducing the problem of excessive stress between the fastener 300 and the embedded part 200.
[0071] The embedded part 200 protruding from the surface of the shell 100 can play a self-fixing role when connected with the external fastener 300, thereby ensuring effective tightening or loosening of the fastener 300 even when the friction between the shell 100 and the embedded part 200 is small. Specifically, the part of the embedded part 200 protruding from the surface of the shell 100 can be clamped using a tool to assist in the installation or removal of the fastener 300.
[0072] According to an optional embodiment, referring to Figure 2 、 Figure 3 , the groove body 220 is a rotary groove with the center axis of the connecting hole 210 as the center of rotation. Specifically, the rotary groove refers to the shape of the groove body 220 rotating along the direction of the center axis of the connecting hole 210, thereby forming a structure that can allow the embedded part 200 to rotate relative to the shell 100. Since the groove body 220 is a rotary groove, when the embedded part 200 rotates relative to the shell 100 under the action of external force, the rotary groove can make the protruding part 110 smoothly cooperate with the groove body 220, thereby making the relative rotation between the embedded part 200 and the shell 100 more smooth.
[0073] This structural design is beneficial to reduce the friction and stress concentration between the embedded part 200 and the shell 100, especially when the relative rotation between the embedded part 200 and the shell 100 is large, it can avoid the case that the shell 100 is damaged due to excessive stress. Through the design of the rotary groove, the stress between the embedded part 200 and the shell 100 can be dispersed to a certain extent, thereby reducing the risk of damage caused by local stress concentration.
[0074] According to an optional embodiment, referring to Figure 2 、 Figure 3 , the groove body 220 is located on the side of the embedded part 200 close to the opening of the connecting hole 210. In use, due to the weight of the all-in-one machine itself or external forces, when the embedded part 200 is fixed on the trolley, it may cause a tendency of relative movement away between the embedded part 200 and the shell 100. In other words, the embedded part 200 may have a tendency to come out of the shell 100, which will cause the connecting part to bear a large stress.
[0075] To address this situation, the groove body 220 is designed to be located on the side of the embedded part 200 close to the opening of the connecting hole 210. Through this design, the embedded part 200 can provide more size to share the stress generated by the relative distance between the embedded part 200 and the shell 100, thereby effectively improving the strength and stability of the embedded part 200 during use. This structure enables the embedded part 200 to better resist the tendency to come out due to external forces or gravity, reduces the risk of damage due to excessive stress, and prolongs the service life of the embedded part 200.
[0076] According to an optional embodiment, with reference to Figure 3 , Figure 7 , the groove body 220 is flat or tapered. The flat structure means that the width of the groove is the same as the inside of the groove body 220, while the tapered structure means that the width of the groove is smaller than the inside of the groove body 220. By adopting a flat or tapered structure, the groove body 220 and the protruding part 110 can better cooperate when stressed.
[0077] Specifically, the flat structure helps to provide a uniform contact surface between the groove body 220 and the protruding part 110, thereby ensuring stable cooperation between the two. The tapered structure, by making the groove width smaller than the inside of the groove body 220, can provide a tighter fit when stressed, enhancing the locking effect between the groove body 220 and the protruding part 110 and effectively improving the stability of the structure.
[0078] Through the flat or tapered structure, stress can be better transmitted and dispersed, reducing the instability of the connection caused by poor contact or uneven stress, thereby improving the compatibility and durability of the overall structure. In different use scenarios, the appropriate groove body 220 structure can be selected according to the specific stress requirements to optimize the connection effect.
[0079] According to an optional embodiment, with reference to Figure 5 , Figure 6 , the shell 100 is provided with a reinforcing rib 120, and at least part of the reinforcing rib 120 is connected to the shell 100 around the embedded part 200. During use, the embedded part 200 needs to bear the force generated when connected to the trolley, resulting in a relatively concentrated stress at the connection between the shell 100 and the embedded part 200. This stress concentration can make the connection prone to damage. By providing a reinforcing rib 120 in the shell 100, the strength of the shell 100 can be effectively increased, and the stress at the connection can be dispersed, thereby reducing the risk of damage to the shell 100. In addition, by placing the embedded part 200 at the reinforcing rib 120, the structural stability of this area can be further enhanced, making the shell 100 less likely to be damaged during use.
[0080] According to an optional embodiment, with reference to Figure 5 , Figure 6The reinforcing rib 120 includes intersecting first rib 121 and second rib 122, with the embedded part 200 located at the intersection of the first rib 121 and second rib 122. The intersection of the first rib 121 and second rib 122 effectively improves the overall strength of the housing 100, especially in the area connected to the embedded part 200, further enhancing the load-bearing capacity of the connection. Positioning the embedded part 200 at the intersection of the first rib 121 and second rib 122 makes the connection between the embedded part 200 and the housing 100 more secure, increasing the connection strength and reducing the risk of the integrated machine breaking off at that point due to excessive force during use. This design not only improves the stability of the connection between the housing 100 and the embedded part 200 but also effectively extends the service life of the equipment and enhances the overall structural reliability.
[0081] According to an optional embodiment, refer to Figure 5 , Figure 6 The housing 100 includes a recessed portion 130 that curves inward from the outside. The recessed portion 130 is used to accommodate external functional structures. At least a portion of the reinforcing ribs 120 are connected to the sidewalls and bottom wall of the recessed portion 130. An embedded part 200 is located at the connection point between the reinforcing ribs 120 and the recessed portion 130. During the production of the housing 100, the recessed portion 130 is designed on the housing 100 because external functional components need to be connected to the outside of the housing 100. Since the recessed portion 130 curves inward from the outside of the housing 100, it appears to protrude from the inside of the housing 100 when viewed from within. By providing this recessed portion 130, additional space can be provided to accommodate external functional structures. Furthermore, by rationally designing the position and shape of the recessed portion 130, the overall strength of the housing 100 can be improved.
[0082] To enhance the strength of the shell 100 and improve structural stability, the reinforcing rib 120 is connected to the sidewalls and bottom wall of the recess 130. This connection not only increases the compressive strength of the shell 100 but also optimizes the stress distribution, mitigating the impact of external forces that the shell 100 may experience during use, thereby reducing the risk of damage due to excessive stress. Through this design, the shell 100 can better disperse external forces, reduce local stress concentration, and improve overall durability.
[0083] The embedded part 200 is positioned at the connection between the reinforcing rib 120 and the recess 130, ensuring that the connection of the embedded part 200 is supported by the reinforcing rib 120, further enhancing the connection strength between the embedded part 200 and the housing 100. This design can, to a certain extent, prevent the connection from loosening or falling off due to external forces, ensuring the reliability of the equipment during long-term use. This structure not only improves the fixing stability of the embedded part 200 but also extends the service life of the connection between the embedded part 200 and the housing 100, further enhancing the overall performance and durability of the equipment.
[0084] A second aspect of the embodiment is to provide an electronic device.
[0085] With reference to Figure 4 , Figure 8 An electronic device comprising the connecting structure of the above technical solution. The electronic device can include a housing 100, a display, a processor, an electronic element (not shown in the figure) such as a circuit board. Exemplarily, the electronic device is an all-in-one machine suitable for an endoscope.
[0086] In use, the housing 100 is cooperated with the supporting device 400 (such as a trolley) through the connecting structure, so as to stably install the electronic device on the trolley. Specifically, the connection between the housing 100 and the trolley is realized through the connecting structure described above, which ensures the fixation of the housing 100 on the trolley and can withstand external forces that may be generated during movement. Due to the design of the connecting structure, damage or loosening caused by excessive torque can be effectively reduced, and the stability of the device is improved.
[0087] In addition, since the connection between the housing 100 and the trolley adopts the structure design of the embedded part 200 and the reinforcing rib 120, not only the connection strength is improved, but also the stress generated during use can be effectively dispersed, the risk of structural damage caused by long-term use or external force is reduced, thereby prolonging the service life of the device.
[0088] A third aspect of the embodiment is to provide an endoscope system.
[0089] With reference to Figure 8 , Figure 9 An endoscope system comprising the electronic device of the above embodiment, further comprising a supporting device 400, and the electronic device is connected to the supporting device 400. Exemplarily, the supporting device 400 comprises a trolley.
[0090] The above is only a specific embodiment of the present application, but the protection scope of the present application is not limited thereto, any skilled person in the art can easily think of changes or replacements within the technical range disclosed by the present application, which should be covered within the protection scope of the present application.
Claims
1. A connection structure characterized by comprising: The utility model relates to a connecting structure of a shell and a pre-embedded part, and belongs to the technical field of electronic equipment. The utility model discloses a connecting structure of a shell and a pre-embedded part, and belongs to the technical field of electronic equipment. The utility model discloses a connecting structure of a shell and a pre-embedded part, and belongs to the technical field of electronic equipment. The utility model discloses a connecting structure of a shell and a pre-embedded part, and belongs to the technical field of electronic equipment.
2. A connection structure according to claim 1, characterized in that The utility model discloses a connecting structure of a shell and a pre-embedded part, and belongs to the technical field of electronic equipment. The utility model discloses a connecting structure of a shell and a pre-embedded part, and belongs to the technical field of electronic equipment. The utility model discloses a connecting structure of a shell and a pre-embedded part, and belongs to the technical field of electronic equipment. The utility model discloses a connecting structure of a shell and a pre-embedded part, and belongs to the technical field of electronic equipment. The utility model discloses a connecting structure of a shell and a pre-embedded part, and belongs to the technical field of electronic equipment.
3. A connection structure according to claim 2, wherein The utility model discloses a connecting structure of a shell and a pre-embedded part, and belongs to the technical field of electronic equipment.
4. The connection structure according to claim 2, wherein The utility model discloses a connecting structure of a shell and a pre-embedded part, and belongs to the technical field of electronic equipment.
5. The connection structure according to claim 2, wherein The utility model discloses a connecting structure of a shell and a pre-embedded part, and belongs to the technical field of electronic equipment. The utility model discloses a connecting structure of a shell and a pre-embedded part, and belongs to the technical field of electronic equipment.
6. The connection structure according to claim 1, wherein The utility model discloses a connecting structure of a shell and a pre-embedded part, and belongs to the technical field of electronic equipment.
7. A connection structure according to any one of claims 1 to 6, wherein The utility model discloses a connecting structure of a shell and a pre-embedded part, and belongs to the technical field of electronic equipment.
8. A connection structure according to claim 7, wherein The utility model discloses a connecting structure of a shell and a pre-embedded part, and belongs to the technical field of electronic equipment. The utility model discloses a connecting structure of a shell and a pre-embedded part, and belongs to the technical field of electronic equipment.
9. An electronic device, comprising: The utility model discloses a connecting structure of a shell and a pre-embedded part, and belongs to the technical field of electronic equipment.
10. An endoscope system characterized by comprising: The utility model discloses a connecting structure of a shell and a pre-embedded part, and belongs to the technical field of electronic equipment. The utility model discloses a connecting structure of a shell and a pre-embedded part, and belongs to the technical field of electronic equipment. The utility model discloses a connecting structure of a shell and a pre-embedded part, and belongs to the technical field of electronic equipment. The utility model discloses a connecting structure of a shell and a pre-embedded part, and belongs to the technical field of electronic equipment. The utility model discloses a connecting structure of a shell and a pre-embedded part, and belongs to the technical field of electronic equipment. The utility model discloses a connecting structure of a shell and a pre-embedded part, and belongs to the technical field of electronic equipment. The utility model discloses a connecting structure of a shell and a pre-embedded part, and belongs to the technical field of electronic equipment. The utility model discloses a connecting structure of a shell and a pre-embedded part, and belongs to the technical field of electronic equipment. The utility model discloses a connecting structure of a shell and a pre-embedded part, and belongs to the technical field of electronic equipment. The utility model discloses a connecting structure of a shell and a pre-embedded part, and belongs to the technical field of electronic equipment. The utility model discloses a connecting structure of a shell and a pre-embedded part, and belongs to the technical field of electronic equipment. The utility model discloses a connecting structure of a shell and a pre-embedded part, and belongs to the technical field of electronic equipment. The utility model discloses a connecting structure of a shell and a pre-embedded part, and belongs to the technical field of electronic equipment. The utility model discloses a connecting structure of a shell and a pre-embedded part, and belongs to the technical field of electronic equipment. The utility model discloses a connecting structure of a shell and a pre-embedded part, and belongs to the technical field of electronic equipment. The utility model discloses a connecting structure of a shell and a pre-embedded part, and belongs to the technical field of electronic equipment. The utility model discloses a connecting structure of a shell and a pre-embedded part, and belongs to the technical field of electronic equipment. The utility model discloses a connecting structure of a shell and a pre-embedded part, and belongs to the technical field of electronic equipment. The utility model discloses a connecting structure of a shell and a pre-embedded part, and belongs to the technical field of electronic equipment. The utility model discloses a connecting structure of a shell and a pre-embedded part, and belongs to the technical field of electronic equipment. The utility model discloses a connecting structure of a shell and a pre-embedded part, and belongs to the technical field of electronic equipment. The utility model discloses a connecting structure of a shell and a pre-embedded part, and belongs to the technical field of electronic equipment. The utility model discloses a connecting structure of a shell and a pre-embedded part, and belongs to the technical field of electronic equipment. The utility model discloses a connecting structure of a shell and a pre-embedded part, and belongs to the technical field of electronic equipment. The utility model discloses a connecting structure of a shell and a pre-embedded part, and belongs to the technical field of electronic equipment. The utility model discloses a connecting structure of a shell and a pre-embedded part, and belongs to the technical field of electronic equipment. The utility model discloses a connecting structure of a shell and a pre-embedded part, and belongs to the technical field of electronic equipment. The utility model discloses a connecting structure of a shell and a pre-embedded part, and belongs to the technical field of electronic equipment. The utility model discloses a connecting structure of a shell and a pre-embedded part, and belongs to the technical field of electronic equipment. The utility model discloses a connecting structure of a shell and a pre-embedded part, and belongs to the technical field of electronic equipment. The utility model discloses a connecting structure of a shell and a pre-embedded part, and belongs to the technical field of electronic equipment. The utility model discloses a connecting structure of a shell and a pre-embedded part, and belongs to the technical field of electronic equipment. The utility model discloses a connecting structure of a shell and a pre-embedded part, and belongs to the technical field of electronic equipment. The utility model discloses a connecting structure of a shell and a pre-embedded part, and belongs to the technical field of electronic equipment. The utility model discloses a connecting structure of a shell and a pre-embedded part, and belongs to the technical field of electronic equipment. The utility model discloses a connecting structure of a shell and a pre-embedded part, and belongs to the technical field of electronic equipment. The utility model discloses a connecting structure of a shell and a pre-embedded part, and belongs to the technical field of electronic equipment. The utility model discloses a connecting structure of a shell and a pre-embedded part, and belongs to the technical field of electronic equipment. The utility model discloses a connecting structure of a shell and a pre-embedded part, and belongs to the technical field of electronic equipment. The utility model discloses a connecting structure of a shell and a pre-embedded part, and belongs to the technical field of electronic equipment. The utility model discloses a connecting structure of a shell and a pre-embedded part, and belongs to the technical field of electronic equipment. The utility model discloses a connecting structure of a shell and a pre-embedded part, and belongs to the technical field of electronic equipment. The utility model discloses a connecting structure of a shell and a pre-embedded part, and belongs to the technical field of electronic equipment. The utility model discloses a connecting structure of a shell and a pre-embedded part, and belongs to the technical field of electronic equipment. The utility model discloses a connecting structure of a shell and a pre-embedded part, and belongs to the technical field of electronic equipment. The utility model discloses a connecting structure of a shell and a pre-embedded part, and belongs to the technical field of electronic equipment. The utility model discloses a connecting structure of a shell and a pre-embedded part, and belongs to the technical field of electronic equipment. The utility model discloses a connecting structure of a shell and a pre-embedded part, and belongs to the technical field of electronic equipment. The utility model discloses a connecting structure of a shell and a pre-embedded part, and belongs to the technical field of electronic equipment. The utility model discloses a connecting structure of a shell and a pre-embedded part, and belongs to the technical field of electronic equipment. The utility model discloses a connecting structure of a shell and a pre-embedded part, and belongs to the technical field of electronic equipment. The utility model discloses a connecting structure of a shell and a pre-embedded part, and belongs to the technical field of electronic equipment. The utility model discloses a connecting structure of a shell and a pre-embedded part, and belongs to the technical field of electronic equipment. The utility model discloses a connecting structure of a shell and a pre-embedded part, and belongs to the technical field of electronic equipment. The utility model discloses a connecting structure of a shell and a pre-embedded part, and belongs to the technical field of electronic equipment. The utility model disc