Head-mounted real-time display system for endoscopic examination patient

By setting up an endoscope, endoscope processing equipment, main control display equipment, and disinfection cabinet on the operating table, the VR glasses can be automatically disinfected, solving the problem of VR glasses needing special disinfection and improving the efficiency and convenience of the examination.

CN223731377UActive Publication Date: 2025-12-30THE UNIVERSITY OF HONG KONG SHENZHEN HOSPITAL
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Patent Information

Application Number
CN202422867330.2
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-11-22
Publication Date
2025-12-30
Estimated Expiration
2034-11-22

AI Technical Summary

Technical Problem

Current technology requires VR glasses to be specially disinfected, which is time-consuming and labor-intensive, and affects the efficiency of endoscopic examinations.

Method used

An endoscope, endoscope processing equipment, main control display equipment, and a disinfection cabinet are set on the operating table. The disinfection cabinet is equipped with a disinfection component to disinfect the VR glasses. The VR glasses are equipped with a receiving module and a microcontroller, and automatic disinfection is achieved through the disinfection component.

Benefits of technology

It improves the hygiene and safety of VR glasses, increases ease of use, and enhances the efficiency of endoscopic examinations.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the field of medical equipment, and discloses a head-mounted real-time display system for endoscopic examination patients, which comprises an operation table, an endoscope, endoscope processing equipment, master control display equipment, a disinfection cabinet, a disinfection assembly and VR glasses, the endoscope processing equipment is arranged on the operation table, and the endoscope processing equipment is electrically connected with the endoscope; the main control display equipment is arranged on the operation table, is electrically connected with the endoscope processing equipment, and is provided with a transmitting module; the disinfection cabinet is arranged on the operation table, and a cabinet door is connected to the disinfection cabinet through a hinge; the disinfection assembly is arranged in the disinfection cabinet, the VR glasses are arranged in the disinfection cabinet, and the VR glasses are provided with a receiving module and a microcontroller. The endoscope, the endoscopic processing device, the main control display device and the VR glasses are arranged on the operating table, medical staff and a patient can check examination images at the same time, the VR glasses are disinfected through the disinfection assembly arranged in the disinfection cabinet, and the examination efficiency is improved.
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Description

Technical Field

[0001] This utility model relates to the field of medical equipment technology, and in particular to a head-mounted real-time display system for endoscopic examination patients. Background Technology

[0002] With the development of rigid endoscopes and electronic laryngoscopy, the proportion of patients undergoing endoscopic examinations during their visits to otolaryngology outpatient clinics is increasing. Simultaneously, with the implementation of nasal and otoscopy surgeries, nasal or ear canal cleaning is frequently required during follow-up outpatient visits with endoscopic assistance.

[0003] Currently, the standard procedure for examining the location of the nasal cavity, ear canal, and pharynx is as shown in the attached diagram in the instruction manual. Figure 1 As shown, the endoscope is connected to an endoscope processing device, which in turn is connected to a dedicated computer display host. The computer display host then connects to VR glasses. By storing examination images on the computer display host and transmitting them to the VR glasses, both medical staff and patients can view the images separately. However, the VR glasses are placed directly on the operating table. Because they are used by different patients, the VR glasses need to be sterilized in a dedicated sterilization room before each use, which is time-consuming, labor-intensive, and affects examination efficiency.

[0004] Therefore, existing technologies still need to be improved and developed. Utility Model Content

[0005] The technical problem to be solved by this utility model is to provide a real-time head-mounted display system for endoscopic examination patients, which addresses the above-mentioned deficiencies of the prior art. The system aims to solve the problem that VR glasses are placed directly on the operating table and need to be disinfected in a special sterilization department before use, which is time-consuming and labor-intensive.

[0006] The technical solution adopted by this utility model to solve the technical problem is as follows:

[0007] A head-mounted real-time display system for endoscopic patients includes:

[0008] Control panel;

[0009] Endoscopes are used to acquire images in real time;

[0010] An endoscope processing device is mounted on the operating table and is electrically connected to the endoscope.

[0011] A main control display device is mounted on the operating table. The main control display device is electrically connected to the endoscope processing device. The main control display device is equipped with a transmission module.

[0012] A disinfection cabinet is installed on the operating table, and the cabinet door is connected to the cabinet by hinges.

[0013] A disinfection component is installed inside the disinfection cabinet for disinfection.

[0014] VR glasses are installed inside the disinfection cabinet. The VR glasses are equipped with a receiving module and a microcontroller. The receiving module is communicatively connected to the transmitting module and electrically connected to the microcontroller.

[0015] Optionally, a hook is provided on the side wall of the disinfection cabinet away from the operating table. The VR glasses include a main body and a strap. The main body is connected to the strap, and the strap is disposed on the hook, so that the main body is spaced apart from the side wall of the disinfection cabinet near the operating table.

[0016] Optionally, the disinfection component includes:

[0017] The first disinfection lamp is installed inside the disinfection cabinet on the side wall near the operating table;

[0018] The second disinfection lamp is installed inside the disinfection cabinet on the side wall away from the cabinet door;

[0019] A disinfection controller is installed inside the disinfection cabinet and is electrically connected to the first disinfection lamp and the second disinfection lamp.

[0020] Optionally, the disinfection component further includes a control switch, which is located inside the disinfection cabinet and electrically connected to the disinfection controller.

[0021] Optionally, the disinfection component further includes a storage battery, which is disposed inside the disinfection cabinet and electrically connected to the disinfection controller.

[0022] Optionally, the disinfection cabinet is equipped with limit frames on both sides, with the two limit frames located on both sides of the VR glasses, and each of the two limit frames is equipped with a fixing component for fixing one side of the strap.

[0023] Optionally, the fixing component includes a fixing strap, one end of which is disposed on one end of the limiting frame, and the other end of which passes around one side of the strap and is detachably connected to the other end of the limiting frame.

[0024] Optionally, the limiting frame is provided with a male buckle, and the fixing strap is provided with a female buckle. The fixing strap wraps around one side of the binding strap so that the male buckle and the female buckle are fixedly connected.

[0025] Optionally, the VR glasses are equipped with an identity authentication module, which is connected to the microcontroller.

[0026] Optionally, the VR glasses are equipped with a controller interaction component, which is electrically connected to the microcontroller.

[0027] Beneficial effects:

[0028] This invention provides a real-time head-mounted display system for endoscopic examinations. By setting up an endoscope, endoscopic processing equipment, a main control display device, and VR glasses on the operating table, medical staff can view the examination images through the main control display device, and patients can view the examination images by wearing VR glasses. At the same time, by setting up a disinfection cabinet on the operating table, with disinfection components inside the cabinet to disinfect the VR glasses, the hygiene and safety of the VR glasses are increased, and the ease of use and examination efficiency of the VR glasses are improved. Attached Figure Description

[0029] Figure 1 This is a structural diagram of an existing endoscopic examination system;

[0030] Figure 2 This is a structural diagram of the head-mounted real-time display system of this utility model;

[0031] Figure 3 This is an internal structural diagram of the disinfection cabinet of this utility model;

[0032] Figure 4 This is a structural diagram of the limiting frame, hook, and VR glasses of this utility model;

[0033] Figure 5 This is a side view of the disinfection cabinet of this utility model;

[0034] Figure 6 This is a schematic diagram of the head-mounted real-time display system of this utility model.

[0035] In the picture:

[0036] 100. Operating table; 200. Endoscope; 300. Endoscope processing equipment; 400. VR glasses; 410. Main unit; 420. Straps; 430. Microcontroller; 440. Receiving module; 450. Identity authentication module; 460. Handheld interaction component; 500. Main control display device; 510. Transmitting module; 600. Examination bed; 700. Disinfection cabinet; 710. Hook; 720. Limiting frame; 730. Control switch; 740. Disinfection controller; 750. First disinfection lamp; 760. Second disinfection lamp; 770. Fixing strap; 780. Battery. Detailed Implementation

[0037] The embodiments of this application are described in detail below. Examples of these embodiments are shown in the accompanying drawings, wherein the same or similar reference numerals denote the same or similar elements or elements having the same or similar functions throughout. The embodiments described below with reference to the accompanying drawings are exemplary and are only used to explain this application, and should not be construed as limiting this application.

[0038] In the description of this application, it should be understood that the terms "center," "longitudinal," "lateral," "upper," "lower," "front," "rear," "left," "right," "vertical," "horizontal," "top," "bottom," "inner," and "outer," etc., indicating orientation or positional relationships based on the orientation or positional relationships shown in the accompanying drawings, are used only for the convenience of describing this application and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation, and therefore should not be construed as a limitation on this application. Furthermore, the terms "first" and "second" are used for descriptive purposes only and should not be construed as indicating or implying relative importance or implicitly specifying the number of indicated technical features. Thus, a feature defined as "first" or "second" may explicitly or implicitly include one or more of that feature. In the description of this application, unless otherwise stated, "a plurality of" means two or more.

[0039] In the description of this application, it should be noted that, unless otherwise expressly specified and limited, the terms "installation," "connection," and "linking" should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral connection; they can refer to a mechanical connection or an electrical connection; they can refer to a direct connection or an indirect connection through an intermediate medium; and they can refer to the internal connection between two components. Those skilled in the art can understand the specific meaning of the above terms in this application based on the specific circumstances.

[0040] Please see Figure 1 As shown, in the conventional operating table 100 and examination bed 600, the endoscope 200 is connected to the endoscope processing device 300, which is connected to a dedicated main control display device 500, i.e., a computer display host. The computer display host is connected to VR glasses 400. By storing examination images in the computer display host and transmitting examination images to the VR glasses 400, medical staff and patients can view the examination images separately. However, the VR glasses 400 are placed directly on the operating table 100. After each patient uses them, they need to be taken to a special disinfection department for disinfection, which is inconvenient and time-consuming. Therefore, this application improves upon the above problems.

[0041] Please see Figure 2 and Figure 6As shown, this application provides a head-mounted real-time display system for endoscopic examination patients, including an operating table 100, an endoscope 200, an endoscope processing device 300, a main control display device 500, a disinfection cabinet 700, a disinfection component, and VR glasses 400. The endoscope 200 is used for real-time image acquisition. The endoscope processing device 300 is disposed on the operating table 100 and electrically connected to the endoscope 200. The main control display device 500 is disposed on the operating table 100 and connected to the endoscope. The processing device 300 is electrically connected. The main control display device 500 is equipped with a transmitting module 510. The disinfection cabinet 700 is installed on the operating table 100. The disinfection cabinet 700 is hinged to have a cabinet door. The disinfection component is installed inside the disinfection cabinet for disinfection. The VR glasses 400 is installed inside the disinfection cabinet 700. The VR glasses 400 is equipped with a receiving module 440 and a microcontroller 430. The receiving module 440 is communicatively connected to the transmitting module 510 and electrically connected to the microcontroller 430.

[0042] Specifically, this application provides a real-time head-mounted display system for patients undergoing endoscopic examinations. The endoscope 200 refers to a common endoscope lens found in medical departments. The endoscope processing device 300 is a dedicated nasal endoscopy system acquisition card used to convert the optical signals of the nasal endoscope image into digital image signals, and can output various video formats such as HDMI, VGA, and DVI. The main control display device 500 is a PC host computer, internally equipped with nasal endoscopy-specific software connected to the endoscope processing device 300, enabling the main control display device 500 to display images from the endoscope 200 examination for real-time viewing by medical staff. A transmitting module 510 is installed on the main control display device 500, which is connected to a receiving module 440 of the VR glasses 400. The receiving module 440 is in turn connected to a microcontroller 430 of the VR glasses 400, enabling the VR glasses 400 to display images from the endoscope 200 examination for real-time viewing by the patient. Meanwhile, a disinfection cabinet 700 is installed on the operating table 100. The cabinet door of the disinfection cabinet 700 is connected by hinges. The disinfection cabinet 700 is equipped with disinfection components. After the previous patient has finished using it, the VR glasses 400 are placed in the disinfection cabinet 700 and disinfected by the disinfection components. In this way, the next patient can use it directly without medical staff having to take the VR glasses 400 to the disinfection department, thus improving the convenience of using the VR glasses 400.

[0043] It should be noted that the receiving module 440 of the VR glasses 400 and the transmitting module 510 of the main control display device 500 can be connected via VR platform software. Meanwhile, the main control display device 500 selects image processing software to process image data, and the VR glasses 400 is a VR glasses 400 that supports Bluetooth and Wi-Fi. Then, they are configured to the same network so that the image data of the main control display device 500 can be transmitted to the VR glasses 400. The microcontroller 430 of the VR glasses 400 processes the image data for display by the VR glasses 400.

[0044] See Figures 3 to 5 As shown, in another embodiment of this application, a hook 710 is provided on the side wall of the disinfection cabinet 700 away from the operating table 100. The VR glasses 400 includes a body 410 and a strap 420. The body 410 is connected to the strap 420, and the strap 420 is disposed on the hook 710 so that the body 410 is spaced from the side wall of the disinfection cabinet 700 near the operating table 100.

[0045] Specifically, the side wall of the disinfection cabinet 700 away from the operating table 100 refers to the top wall. The top wall inside the disinfection cabinet 700 is equipped with hooks 710. The VR glasses 400 includes the main body 410 and the strap 420. The strap 420 of the VR glasses 400 is hung on the hooks 710 and there is a gap between it and the bottom wall inside the disinfection cabinet 700, so that the bottom of the VR glasses 400 is not blocked, and the disinfection of the VR glasses 400 will be more comprehensive.

[0046] See Figures 3 to 5 As shown, in another embodiment of this application, the disinfection assembly includes a first disinfection lamp 750, a second disinfection lamp 760, and a disinfection controller 740. The first disinfection lamp 750 is disposed inside the disinfection cabinet 700 near the side wall of the operating table 100; the second disinfection lamp 760 is disposed inside the disinfection cabinet 700 away from the cabinet door; and the disinfection controller 740 is disposed inside the disinfection cabinet 700 and electrically connected to the first disinfection lamp 750 and the second disinfection lamp 760.

[0047] Specifically, the disinfection assembly includes a first disinfection lamp 750, a second disinfection lamp 760, and a disinfection controller 740. The first disinfection lamp 750 is installed on the bottom wall inside the disinfection cabinet 700 and is located in the center. The second disinfection lamp 760 is installed on the rear wall of the cabinet door. Both the first disinfection lamp 750 and the second disinfection lamp 760 are ultraviolet germicidal lamps. The disinfection controller 740 is installed on the top wall inside the disinfection cabinet 700 and is connected to the first disinfection lamp 750 and the second disinfection lamp 760 through wires. The disinfection controller 740 is a single-chip microcomputer controller used to simultaneously control the first disinfection lamp 750 and the second disinfection lamp 760 to turn on and off at the same time, which is convenient for medical staff to use.

[0048] See Figure 5 As shown, in another embodiment of this application, the disinfection component further includes a control switch 730, which is disposed inside the disinfection cabinet 700 and is electrically connected to the disinfection controller 740.

[0049] Specifically, the control switch 730 is located on the left side wall of the disinfection cabinet 700 and at the top. The control switch 730 is connected to the disinfection controller 740 by a wire. In this way, when medical staff open the cabinet door, they can press the control switch 730 to turn on the first disinfection lamp 750 and the second disinfection lamp 760 to disinfect the VR glasses 400 inside.

[0050] See Figure 5 As shown, in another embodiment of this application, the disinfection component further includes a storage battery 780, which is disposed inside the disinfection cabinet 700 and electrically connected to the disinfection controller 740.

[0051] Specifically, the storage battery 780 is electrically connected to the disinfection controller 740, which in turn controls the power supply to the first disinfection lamp 750 and the second disinfection lamp 760, making the application of this device unrestricted. More specifically, the storage battery 780 is a rechargeable storage battery 780, which is connected to a data charging cable. The data charging cable can be connected to an external power source for charging, making it convenient for repeated use.

[0052] See Figure 4 and Figure 5 As shown, in another embodiment of this application, a limit frame 720 is provided on both sides of the disinfection cabinet 700. The two limit frames 720 are respectively located on both sides of the VR glasses 400, and each of the two limit frames 720 is provided with a fixing component for fixing one side of the strap 420.

[0053] Specifically, two limiting brackets 720 are installed on the left and right walls inside the disinfection cabinet 700, respectively. Both limiting brackets 720 are U-shaped and symmetrically arranged, so that the limiting brackets 720 will not block the light range of the first disinfection lamp 750 and the second disinfection lamp 760. Fixing components are installed on the limiting brackets 720 to fix one side of the strap 420. This ensures that the VR glasses 400 will not shake when hung on the hook 710, avoid collision with the inner wall of the disinfection cabinet 700, and improve the safety of use.

[0054] See Figure 4 As shown, in another embodiment of this application, the fixing component includes a fixing strap 770, one end of which is disposed on one end of the limiting frame 720, and the other end is wrapped around one side of the binding strap 420 and detachably connected to the other end of the limiting frame 720.

[0055] Specifically, one end of the fixing strap 770 is installed on the limiting frame 720, and the other end of the fixing strap 770 is wrapped around one side of the strap 420 and detachably connected to another position of the limiting frame 720, making the use of the fixing strap 770 more convenient.

[0056] In another embodiment of this application, the limiting frame 720 is provided with a male buckle, the fixing strap 770 is provided with a female buckle, and the fixing strap 770 passes around one side of the binding strap 420 so that the male buckle and the female buckle are fixedly connected.

[0057] Specifically, the male and female buckles are a male-female buckle structure. The male buckle is installed at the other end of the fixing strap 770. After the fixing strap 770 passes around the binding strap 420, the female buckle is installed at the corresponding position of the limiting frame 720. The male-female buckle structure makes the fixing strap 770 detachable. The structure is simple, easy to use, and low in cost.

[0058] See Figure 6 As shown, in another embodiment of this application, the VR glasses 400 are provided with an identity authentication module 450, which is connected to the microcontroller 430.

[0059] Specifically, by setting up an authentication module 450 on the VR glasses 400, which is connected to the microcontroller 430 in an integrated manner, the authentication module 450 sends control commands to the microcontroller 430 to view image data. This improves the security of the VR glasses 400, effectively protecting patient privacy. Furthermore, after the examination is completed, the patient can view the examination image data at any time because the microcontroller 430 of the VR glasses 400 stores the data. It can be understood that the authentication module 450 is a RAID authentication device, i.e., a RAID card reader. Medical staff create an access ID for each patient, configure it on the corresponding IC card, and open the VR glasses by swiping the card.

[0060] See Figure 6 As shown, in another embodiment of this application, the VR glasses 400 is provided with a controller interaction component 460, which is electrically connected to the microcontroller 430.

[0061] Specifically, the controller interaction component 460 is installed on the VR glasses 400. The controller interaction component 460 is a controller interaction knob and is connected to the microcontroller 430. The microcontroller 430 has a corresponding control program set inside. The controller interaction component 460 is used to control the VR glasses 400 to perform switching actions so that the patient can view the images.

[0062] In summary, this utility model provides a real-time head-mounted display system for endoscopic examinations. By setting up an endoscope, endoscopic processing equipment, a main control display device, and VR glasses on the operating table, medical staff can view examination images through the main control display device, and patients can view examination images by wearing VR glasses. Simultaneously, a disinfection cabinet with disinfection components on the operating table enhances the hygiene and safety of the VR glasses, improves their ease of use, and increases the system's examination efficiency. The first and second disinfection lamps allow for multi-angle disinfection of the VR glasses, ensuring more comprehensive disinfection. The included limit frame and fixing strap prevent the VR glasses from shaking, improving storage safety. The included identity authentication module effectively protects patient privacy. The included handle interaction component enhances the ease of use of the VR glasses.

[0063] It should be understood that the application of this utility model is not limited to the examples above. Those skilled in the art can make improvements or modifications based on the above description, and all such improvements and modifications should fall within the protection scope of the appended claims.

Claims

1. An endoscopic patient head-mounted real-time display system, comprising: The utility model relates to an endoscope operation platform, which comprises the following parts: an operation table; an endoscope for real-time image acquisition; an endoscopic treatment device arranged on the operation table, which is electrically connected with the endoscope; a master display device arranged on the operation table, which is electrically connected with the endoscopic treatment device, and is provided with a transmitting module; a sterilization cabinet arranged on the operation table, which is hingedly connected with a cabinet door; a sterilization assembly arranged in the sterilization cabinet for sterilization; a VR glasses arranged in the sterilization cabinet, which is provided with a receiving module and a microcontroller, the receiving module is in communication connection with the transmitting module, and the receiving module is electrically connected with the microcontroller.

2. A real-time display system for endoscopic examination of a patient according to claim 1, wherein A hook is arranged on the side wall of the sterilization cabinet away from the operation table, the VR glasses comprise a body and a strap, the body is connected with the strap, the strap is arranged on the hook, so that the body is arranged with a spacing from the side wall of the sterilization cabinet close to the operation table.

3. A real-time display system for endoscopic examination of a patient's head as defined in claim 2, wherein The sterilization assembly comprises: a first sterilization lamp arranged on the side wall of the sterilization cabinet close to the operation table; a second sterilization lamp arranged on the side wall of the sterilization cabinet away from the cabinet door; a sterilization controller arranged in the sterilization cabinet and electrically connected with the first sterilization lamp and the second sterilization lamp.

4. A real-time display system for endoscopic procedures worn by a patient, according to claim 3, wherein, The sterilization assembly further comprises a control switch arranged in the sterilization cabinet, which is electrically connected with the sterilization controller.

5. A real-time display system for endoscopic examination of a patient according to claim 3, wherein The sterilization assembly further comprises a storage battery arranged in the sterilization cabinet and electrically connected with the sterilization controller.

6. A real-time display system for endoscopic examination of a patient according to claim 2, wherein, Both sides of the sterilization cabinet are provided with limiting racks, two limiting racks are respectively arranged on both sides of the VR glasses, and each limiting rack is provided with a fixing assembly for fixing one side of the strap.

7. A real-time display system for endoscopic examination of a patient according to claim 6, wherein, The fixing assembly comprises a fixing belt, one end of the fixing belt is arranged on one end of the limiting rack, the other end of the fixing belt passes through one side of the strap, and is detachably connected with the other end of the limiting rack.

8. A real-time display system for endoscopic examination of a patient according to claim 7, wherein, A female buckle is arranged on the limiting rack, and a male buckle is arranged on the fixing belt, the fixing belt passes through one side of the strap, so that the male buckle and the female buckle are fixedly connected.

9. A real-time display system for endoscopic examination of a patient according to claim 1, wherein, An identity authentication module is arranged on the VR glasses, which is connected with the microcontroller.

10. The real-time display system for endoscopic examination of a patient's head of claim 1, wherein, The VR glasses are provided with a handle interaction assembly, which is electrically connected with the microcontroller.