Operating room remote monitoring based on 4G communication

By introducing structures such as a mounting base, a monitor, and a U-shaped track into the operating room remote monitoring system, the problem of inflexible monitoring range caused by the fixed installation of the signal acquisition device is solved, and the monitoring accuracy is improved and the operation is simplified.

CN223473883UActive Publication Date: 2025-10-28SHANGHAI LEADBELL ELECTROMECHANICAL EQUIP
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Patent Information

Application Number
CN202422501383.2
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-10-16
Publication Date
2025-10-28
Estimated Expiration
2034-10-16

AI Technical Summary

Technical Problem

In the prior art, the signal acquisition device for operating room monitoring is fixedly installed at a designated location, resulting in a fixed monitoring range. When the monitoring range needs to be adjusted, it needs to be manually disassembled and reinstalled, which is cumbersome and has poor monitoring accuracy.

Method used

The operating room remote monitoring system based on 4G communication is adopted. Through the mounting base, multiple monitors and U-shaped track, combined with the rotation unit, positioning unit, mobile unit and adjustment unit, the monitor can be moved at equal distances and accurately adjusted, and the monitoring range can be adjusted.

Benefits of technology

It realizes the equidistant movement of the monitor, improves the monitoring accuracy and flexibility, simplifies the adjustment operation of the monitoring range, and ensures the stable operation of the operating room system and the timely detection of faults.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses operating room remote monitoring based on 4G communication, and relates to the field of operating room remote monitoring based on 4G communication. According to the operating room remote monitor based on 4G communication, a rotating unit, a positioning unit, a moving unit and an adjusting unit are arranged below the mounting base. According to the operating room remote monitoring device based on 4G communication, when a moving seat is adjusted to slide along a first threaded rod, a rotating rod drives a positioning unit at the other end to move, a plurality of rotating rods move equidistantly, the rotating angles are the same, the rotating rods push a rotating seat to move, and the rotating seat pushes a connecting frame to slide along a U-shaped rail; the corresponding monitors move equidistantly, so that the monitoring ranges of the multiple monitors are adjusted, the monitoring ranges are convenient to adjust, the monitoring precision is relatively accurate, and regulation and control are carried out in time.
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Description

Technical Field

[0001] This utility model relates to the field of operating room remote monitoring technology based on 4G communication, specifically to operating room remote monitoring based on 4G communication. Background Technology

[0002] The 4G-based operating room remote monitoring system uses 4G technology to collect operating room system parameters and remotely transmit them back to the control room. The control room software performs intelligent analysis, and when an anomaly is detected, it notifies the owner or after-sales maintenance personnel to investigate and ensure that the operating room system is always in a healthy operating state.

[0003] Access to the integrated control room is achieved via 4G technology. The control room simultaneously monitors the operation of hundreds of operating rooms. Customized software in the control room will periodically issue instructions to query the operation status of each operating room, detect abnormalities, and take appropriate action.

[0004] The operating room remote monitoring system can identify potential problems through parameters even before a serious malfunction occurs, allowing for timely intervention and ensuring stable operation of each operating room. It can also remind clients how to perform internal cleaning and other preventative procedures. This monitoring system also enables after-sales maintenance personnel to quickly identify and troubleshoot problems, reducing workload and extending the system's lifespan.

[0005] To ensure monitoring of the operating room, signal acquisition devices are installed to monitor the environment. When an anomaly occurs, the abnormal data is fed back and read by the 4G signal acquisition module, which then analyzes and processes it in the control room. However, in existing technologies, the signal acquisition devices for operating room monitoring are fixed in designated locations, resulting in a fixed monitoring range. When different usage scenarios require monitoring data within different ranges, the monitoring accuracy is poor. When higher monitoring accuracy is needed, the signal acquisition devices must be manually disassembled and reinstalled, which is quite cumbersome. Therefore, we propose a 4G-based remote operating room monitoring system. Utility Model Content

[0006] To address the shortcomings of existing technologies, this utility model provides a remote operating room monitoring system based on 4G communication. It solves the problems of fixed installation of signal acquisition devices for operating room monitoring in designated locations, resulting in a fixed monitoring range. When different usage scenarios require monitoring data within different ranges, the monitoring accuracy is poor. Furthermore, when higher monitoring accuracy is needed, the signal acquisition devices must be manually disassembled and reinstalled, making the overall operation cumbersome.

[0007] To achieve the above objectives, this utility model provides the following technical solution: a remote operating room monitoring system based on 4G communication, comprising a mounting base, multiple monitoring instruments, and a U-shaped track. The U-shaped track is installed on the bottom end face of the mounting base, and the multiple monitoring instruments are equidistantly positioned below the mounting base. A rotation unit, a positioning unit, a moving unit, and an adjustment unit are provided below the mounting base.

[0008] The rotating unit includes a connecting seat fixedly connected to the mounting base. A first threaded rod is fixedly connected to the bottom end face of the connecting seat. A movable seat is slidably connected to the outer peripheral wall of the first threaded rod. A plurality of rotating rods are provided on the outer peripheral wall of the movable seat.

[0009] The positioning unit includes a connecting frame disposed at one end of the rotating rod. The connecting frame is slidably connected to the U-shaped track. A fixed seat is fixedly connected to the outer wall of the connecting frame. The movement of the connecting frame drives the monitoring instrument to move along the inner wall of the U-shaped track.

[0010] The moving unit includes a sliding frame fixedly connected to the fixed base, and a pull rod is slidably connected to the inner wall of the sliding frame. The pull rod slides to drive the monitoring instrument to move.

[0011] Preferably, the bottom end face of the movable seat is rotatably connected to an adjusting seat, which is threadedly connected to the outer peripheral wall of the first threaded rod.

[0012] Preferably, the outer peripheral wall of the movable seat is rotatably connected to a plurality of rotating sleeves, each of which is rotatably connected to a rotating rod on its outer wall, and the rotating rods on the plurality of rotating sleeves are distributed at equal distances.

[0013] Preferably, the end of the rotating rod away from the rotating sleeve is rotatably connected to a rotating seat, and the rotating seat is rotatably connected to the top end face of the corresponding connecting frame.

[0014] Preferably, a limiting seat is fixedly connected to the bottom end face of the connecting frame, and the limiting seat is slidably connected to the inner wall of the U-shaped track.

[0015] Preferably, the top end face of the sliding frame is fitted with a pressing seat, the top end face of the pulling rod is fixedly connected with a spring, and the top end face of the spring is fixedly connected with a pressing seat.

[0016] Preferably, the bottom end face of the lower pressure seat is fixedly connected to the pull rod, and the pull rod is slidably connected to the extrusion seat.

[0017] Preferably, the lower part of the pull rod is connected to an adjustment unit, the adjustment unit includes a second threaded rod fixedly connected to the pull rod, a fixed rod is slidably connected to the outer peripheral wall of the second threaded rod, and a mounting bracket is fixedly connected to the outer wall of the fixed rod, the mounting bracket being used to install the monitoring instrument.

[0018] Preferably, the outer peripheral wall of the second threaded rod is threadedly connected to an adjusting seat, and the adjusting seat is rotatably connected to the fixed rod.

[0019] This utility model discloses a remote monitoring system for operating rooms based on 4G communication, which has the following beneficial effects:

[0020] 1. This 4G communication-based remote monitoring system for the operating room involves adjusting the movable seat to slide along the first threaded rod. This movement causes the rotating sleeve connected to its outer peripheral wall to move accordingly. The rotating sleeve then drives the rotating rod to move, which rotates along the outer peripheral wall of the rotating sleeve. Simultaneously, the rotating rod pulls the rotating sleeve to rotate on the movable seat, causing the rotating rod to move the positioning unit at the other end. Multiple rotating rods move at equal distances and with the same rotation angle, resulting in the corresponding monitoring instruments moving at equal distances.

[0021] 2. This 4G communication-based remote operating room monitoring system, when the rotating rod rotates, pushes the rotating seat to move. At this time, the rotating seat pushes the connecting frame to slide along the U-shaped track. Simultaneously, the rotating seat rotates on the connecting frame. The movement of the connecting frame causes the fixed seat to move accordingly, which in turn drives the moving unit and the adjusting unit to move, causing the monitoring instruments to move accordingly. Because the rotating rod moves at equal distances, multiple monitoring instruments move at equal distances, thereby adjusting the monitoring range of multiple monitoring instruments, facilitating the adjustment of the monitoring range, making the monitoring accuracy more accurate, and allowing for timely control. Attached Figure Description

[0022] To more clearly illustrate the technical solutions in the embodiments of this utility model or the prior art, the drawings used in the description of the embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are only some embodiments of this utility model. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.

[0023] Figure 1 This is a schematic diagram of the structure of this utility model;

[0024] Figure 2 This is a schematic diagram of the lower structure of the mounting base of this utility model;

[0025] Figure 3 This is a schematic diagram showing the connection between the rotating unit and the positioning unit of this utility model;

[0026] Figure 4 This is a schematic diagram of the rotating unit structure of this utility model;

[0027] Figure 5 This utility model Figure 3 Enlarged view of the middle section structure;

[0028] Figure 6 This is a schematic diagram of the positioning unit structure of this utility model;

[0029] Figure 7 This is a schematic diagram of the adjustment unit structure of this utility model;

[0030] Figure 8 This is a schematic diagram of the mobile unit structure of this utility model.

[0031] In the diagram: 1. Mounting base; 2. Monitoring instrument; 3. U-shaped track; 4. Rotating unit; 401. Connecting seat; 402. First threaded rod; 403. Rotating rod; 404. Moving seat; 405. Rotating sleeve; 5. Positioning unit; 501. Connecting frame; 502. Rotating seat; 503. Limiting seat; 504. Fixed seat; 6. Moving unit; 601. Sliding frame; 602. Lowering seat; 603. Pulling rod; 604. Pressing seat; 605. Spring; 7. Adjusting unit; 701. Second threaded rod; 702. Fixed rod; 703. Mounting frame. Detailed Implementation

[0032] To make the objectives, technical solutions, and advantages of the embodiments of this utility model clearer, the technical solutions in the embodiments of this utility model are described clearly and completely. Obviously, the described embodiments are only some embodiments of this utility model, not all embodiments. Based on the embodiments of this utility model, all other embodiments obtained by those skilled in the art without creative effort are within the protection scope of this utility model.

[0033] This application provides a 4G-based remote monitoring system for operating rooms, solving the problems of fixed installation of signal acquisition devices in operating room monitoring, resulting in a fixed monitoring range. When different usage scenarios require monitoring data within different ranges, the monitoring accuracy is poor. Furthermore, improving monitoring accuracy necessitates manual disassembly and reinstallation of the signal acquisition devices, which is cumbersome. The system achieves this by adjusting the sliding seat 404 along the first threaded rod 402. This movement causes the rotating sleeve 405, connected to its outer peripheral wall, to move. The rotating sleeve 405 then moves the rotating rod 403, which rotates along the outer peripheral wall of the rotating sleeve 405. Simultaneously, the rotating rod 403 pulls the rotating sleeve 405 to rotate on the sliding seat 404, causing the rotating rod 403 to move the positioning unit 5 at the other end. Multiple rotating rods 403 move at equal distances and with the same rotation angle, causing the corresponding monitoring instrument 2 to move at equal distances.

[0034] When the rotating rod 403 rotates, it pushes the rotating seat 502 to move. At this time, the rotating seat 502 pushes the connecting frame 501 to slide along the U-shaped track 3. Simultaneously, the rotating seat 502 rotates on the connecting frame 501. With the movement of the connecting frame 501, the fixed seat 504 moves accordingly, thereby driving the moving unit 6 and the adjusting unit 7 to move, causing the monitoring instrument 2 to move accordingly. Because the rotating rod 403 moves at equal distances, multiple monitoring instruments 2 move at equal distances, thereby adjusting the monitoring range of multiple monitoring instruments 2, making it convenient to adjust the monitoring range, making the monitoring accuracy more accurate, and allowing for timely control.

[0035] To better understand the above technical solutions, the following will provide a detailed explanation of the technical solutions in conjunction with the accompanying drawings and specific implementation methods.

[0036] This utility model discloses a remote monitoring system for operating rooms based on 4G communication.

[0037] According to the appendix Figure 1-8 As shown, the device includes a mounting base 1, multiple monitoring instruments 2, and a U-shaped track 3. The U-shaped track 3 is installed on the bottom end face of the mounting base 1. The multiple monitoring instruments 2 are equidistantly positioned below the mounting base 1. A rotating unit 4, a positioning unit 5, a moving unit 6, and an adjusting unit 7 are arranged below the mounting base 1.

[0038] The rotating unit 4 includes a connecting seat 401 fixedly connected to the mounting base 1. A first threaded rod 402 is fixedly connected to the bottom end face of the connecting seat 401. A movable seat 404 is slidably connected to the outer peripheral wall of the first threaded rod 402. Multiple rotating rods 403 are provided on the outer peripheral wall of the movable seat 404. When the movable seat 404 slides along the first threaded rod 402, the movement of the movable seat 404 causes the rotating sleeve 405 rotatably connected to its outer peripheral wall to move accordingly. The movement of the rotating sleeve 405 drives the rotating rods 403 to move. The rotating rods 403 rotate along the outer peripheral wall of the rotating sleeve 405. At the same time, the rotation of the rotating rods 403 pulls the rotating sleeve 405 to rotate on the movable seat 404, so that the rotating rods 403 drive the positioning unit 5 at the other end to move. Multiple rotating rods 403 move at equal distances and rotate at the same angle, so that the corresponding monitoring instrument 2 moves at equal distances.

[0039] The positioning unit 5 includes a connecting frame 501 disposed at one end of the rotating rod 403. The connecting frame 501 is slidably connected to the U-shaped track 3. A fixed seat 504 is fixedly connected to the outer wall of the connecting frame 501. The movement of the connecting frame 501 drives the monitoring instrument 2 to move along the inner wall of the U-shaped track 3. When the rotating rod 403 rotates, it pushes the rotating seat 502 to move. At this time, the rotating seat 502 pushes the connecting frame 501 to slide along the U-shaped track 3. At the same time, the rotating seat 502 rotates on the connecting frame 501. With the movement of the connecting frame 501, the fixed seat 504 moves accordingly, thereby driving the moving unit 6 and the adjusting unit 7 to move, so that the monitoring instrument 2 moves accordingly. Because the rotating rod 403 moves at equal distances, multiple monitoring instruments 2 move at equal distances, thereby adjusting the monitoring range of multiple monitoring instruments 2, which facilitates the adjustment of the monitoring range, makes the monitoring accuracy more accurate, and allows for timely adjustment.

[0040] The moving unit 6 includes a sliding frame 601 fixedly connected to the fixed base 504. A pull rod 603 is slidably connected to the inner wall of the sliding frame 601. The pull rod 603 is used to move the monitor 2. When the monitor 2 needs to be inspected, the adjusting unit 7 is pulled down to move the pull rod 603 down, so that the monitor 2 moves down, making it easier to inspect the monitor 2.

[0041] An adjusting seat is rotatably connected to the bottom end face of the movable seat 404. The adjusting seat is threadedly connected to the outer peripheral wall of the first threaded rod 402. By rotating the adjusting seat, the adjusting seat rotates along the first threaded rod 402, causing the first threaded rod 402 to drive the movable seat 404 to slide along the first threaded rod 402.

[0042] Multiple rotating sleeves 405 are rotatably connected to the outer peripheral wall of the movable seat 404. The outer wall of each rotating sleeve 405 is rotatably connected to a rotating rod 403, and the rotating rods 403 on the multiple rotating sleeves 405 are evenly distributed. When the movable seat 404 moves along the first threaded rod 402, the movable seat 404 drives the rotating sleeves 405 to move accordingly. When the rotating sleeves 405 move, the rotating rods 403 drill accordingly.

[0043] The end of the rotating rod 403 away from the rotating sleeve 405 is rotatably connected to the rotating seat 502. The rotating seat 502 is rotatably connected to the top end face of the corresponding connecting frame 501. At this time, the other end of the rotating rod 403 pulls the rotating seat 502 to move, so that the connecting frame 501 drives the limiting seat 503 to slide along the U-shaped track 3.

[0044] When the position of the connecting frame 501 changes, the rotating seat 502 rotates on the connecting frame 501, and at the same time the rotating rod 403 rotates, causing the rotating sleeve 405 to rotate on the outer peripheral wall of the moving seat 404. At this time, multiple rotating rods 403 rotate simultaneously, causing the corresponding connecting frame 501 to move, and multiple connecting frames 501 move at equal distances.

[0045] The bottom end face of the connecting frame 501 is fixedly connected to the limiting seat 503, which is slidably connected to the inner wall of the U-shaped track 3. Under the action of the limiting seat 503, the sliding path of the connecting frame 501 on the U-shaped track 3 is limited.

[0046] The top end face of the sliding frame 601 is fitted with a pressing seat 604, the top end face of the pull rod 603 is fixedly connected with a spring 605, and the top end face of the spring 605 is fixedly connected with a lower pressing seat 602.

[0047] The bottom end face of the lower pressure seat 602 is fixedly connected to the pull rod 603, and the pull rod 603 is slidably connected to the extrusion seat 604. When the second threaded rod 701 is pulled to move, the second threaded rod 701 drives the pull rod 603 to move, causing the lower pressure seat 602 to move and compress the spring 605. At this time, the monitor 2 can be pulled down to check the monitor 2.

[0048] Once the inspection is complete, the second threaded rod 701 is released, and the spring 605 rebounds, causing the monitor 2 to move upward, thus restoring the monitor 2 to the designated monitoring position.

[0049] The lower part of the pull rod 603 is connected to the adjustment unit 7. The adjustment unit 7 includes a second threaded rod 701 fixedly connected to the pull rod 603. A fixed rod 702 is slidably connected to the outer peripheral wall of the second threaded rod 701. A mounting bracket 703 is fixedly connected to the outer wall of the fixed rod 702. The mounting bracket 703 is used to install the monitoring instrument 2.

[0050] An adjusting seat is threadedly connected to the outer peripheral wall of the second threaded rod 701. The adjusting seat is rotatably connected to the fixed rod 702. By rotating the adjusting seat, the fixed rod 702 is driven to slide along the inner wall of the second threaded rod 701, thereby adjusting the height of the fixed rod 702 and the mounting bracket 703, and adjusting the monitor 2 to a suitable monitoring position to facilitate monitoring accuracy.

[0051] The 4G signal acquisition device is installed on the operating room information panel. The technical parameters of the air conditioning unit are collected by the PLC of the control cabinet and sent to the information panel, where they are then read by the 4G signal acquisition module.

[0052] The computer in the control room can periodically send instructions to 4G signal collectors in various locations, requesting the transmission of relevant parameters via 4G signals. These parameters are analyzed by the control room software, which promptly alerts the system if problems are detected, facilitating technicians to determine the location of the fault and issue appropriate commands.

[0053] Data is collected using a 4G signal acquisition device and fed back to the integrated control room monitoring and analysis system for fault diagnosis. The data is then fed back to the automatic control cabinet of the air conditioning unit to investigate any abnormalities in the operating room and ensure its stable operation.

[0054] The above shows and describes the basic principles, main features and advantages of the present invention. Those skilled in the art should understand that the present invention is not limited to the above embodiments. The above embodiments and descriptions are merely illustrative of the principles of the present invention. Various changes and improvements may be made to the present invention without departing from the spirit and scope of the present invention. Such changes and improvements are intended to fall within the scope of the present invention. The scope of protection claimed in this invention is defined by the appended claims and their equivalents.

Claims

1. A 4G-based remote monitoring system for operating rooms, comprising a mounting base (1), multiple monitoring instruments (2), and a U-shaped track (3), wherein the U-shaped track (3) is mounted on the bottom end face of the mounting base (1), and the multiple monitoring instruments (2) are equidistantly positioned below the mounting base (1), characterized in that, The mounting base (1) is provided with a rotating unit (4), a positioning unit (5), a moving unit (6), and an adjusting unit (7) below it. The rotating unit (4) includes a connecting seat (401) fixedly connected to the mounting seat (1). A first threaded rod (402) is fixedly connected to the bottom end face of the connecting seat (401). A movable seat (404) is slidably connected to the outer peripheral wall of the first threaded rod (402). A plurality of rotating rods (403) are provided on the outer peripheral wall of the movable seat (404). The positioning unit (5) includes a connecting frame (501) set at one end of the rotating rod (403). The connecting frame (501) is slidably connected in the U-shaped track (3). A fixed seat (504) is fixedly connected to the outer wall of the connecting frame (501). The movement of the connecting frame (501) drives the monitoring instrument (2) to move along the inner wall of the U-shaped track (3). The moving unit (6) includes a sliding frame (601) fixedly connected to the fixed base (504). A pull rod (603) is slidably connected to the inner wall of the sliding frame (601). The pull rod (603) is slidably used to drive the monitor (2) to move.

2. The operating room remote monitoring based on 4G communication according to claim 1, characterized in that, The bottom end face of the movable seat (404) is rotatably connected to an adjusting seat, which is threadedly connected to the outer peripheral wall of the first threaded rod (402).

3. The operating room remote monitoring based on 4G communication according to claim 2, characterized in that, The outer peripheral wall of the movable seat (404) is rotatably connected to a plurality of rotating sleeves (405), and the outer wall of each rotating sleeve (405) is rotatably connected to a rotating rod (403), and the rotating rods (403) on the plurality of rotating sleeves (405) are distributed at equal distances.

4. The operating room remote monitoring based on 4G communication according to claim 3, characterized in that, The rotating rod (403) is rotatably connected to a rotating seat (502) at the end away from the rotating sleeve (405), and the rotating seat (502) is rotatably connected to the top end face of the corresponding connecting frame (501).

5. The operating room remote monitoring based on 4G communication according to claim 4, characterized in that, The bottom end face of the connecting frame (501) is fixedly connected to the limiting seat (503), and the limiting seat (503) is slidably connected to the inner wall of the U-shaped track (3).

6. The operating room remote monitoring based on 4G communication according to claim 1, characterized in that, The top end face of the sliding frame (601) is fitted with a pressing seat (604), the top end face of the pulling rod (603) is fixedly connected with a spring (605), and the top end face of the spring (605) is fixedly connected with a lower pressing seat (602).

7. The operating room remote monitoring based on 4G communication according to claim 6, characterized in that, The bottom end face of the lower pressure seat (602) is fixedly connected to the pull rod (603), and the pull rod (603) is slidably connected to the compression seat (604).

8. The operating room remote monitoring based on 4G communication according to claim 7, characterized in that, The lower part of the pull rod (603) is connected to the adjustment unit (7). The adjustment unit (7) includes a second threaded rod (701) fixedly connected to the pull rod (603). A fixed rod (702) is slidably connected to the outer peripheral wall of the second threaded rod (701). A mounting bracket (703) is fixedly connected to the outer wall of the fixed rod (702). The mounting bracket (703) is used to install the monitoring instrument (2).

9. The operating room remote monitoring based on 4G communication according to claim 8, characterized in that, The outer peripheral wall of the second threaded rod (701) is threaded with an adjusting seat, which is rotatably connected to the fixed rod (702).