Hospital infection monitoring management device
By designing a hospital infection monitoring and management device driven by servo motors, the problems of limited range and inefficiency of manual detection in the prior art are solved, and large-scale and real-time infection monitoring is achieved, and the accuracy and efficiency of monitoring are improved.
Patent Information
- Application Number
- CN202510185378.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-02-20
- Publication Date
- 2025-05-30
- Estimated Expiration
- Not applicable · inactive patent
AI Technical Summary
The existing hospital infection monitoring and management devices rely on manual testing, with limited detection range and low efficiency, and cannot achieve real-time monitoring, resulting in insufficient accuracy and timeliness of monitoring, making it difficult to fully cover all areas of the hospital.
A hospital infection monitoring and management device was designed, using three servo motors to realize the movement of the connection plate, the rotation of the frame and the angle adjustment of the mounting plate, expand the detection range of the camera and the thermal imager, and realize 24-hour real-time monitoring through the fast bacteria detector.
The device can realize large-scale inspection, reduce missed inspections and misoperation, improve the reliability and accuracy of monitoring, reduce the work burden of medical staff, and improve work efficiency and inspection quality.
Smart Images

Figure CN120062486A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of hospital infection monitoring and management, and particularly to a hospital infection monitoring and management device. Background Art
[0002] Hospital infection refers to the infection that occurs during the process of a patient's admission or treatment in a hospital, caused by contact with pathogens in the hospital environment or improper medical operations. These infections seriously threaten the health of patients, not only increasing the medical costs and patient burden, but also potentially becoming the source of large-scale infectious disease spread. Therefore, the monitoring and management of hospital infections are particularly crucial. It not only plays a decisive role in ensuring patient safety and improving hospital service quality, but also is an important measure to reduce the incidence of nosocomial infections, maintain public health safety, and build a harmonious doctor-patient relationship.
[0003] The monitoring and management of hospital infections in the prior art mainly rely on medical staff using hand-held temperature measuring devices to detect patients. However, this method has many drawbacks, such as easy errors in manual operation, limited detection range, low efficiency, increased workload of medical staff, and inability to achieve real-time monitoring. These factors together affect the accuracy and timeliness of monitoring, making it difficult to comprehensively cover all areas of the hospital, easily missing potential infection sources, and being unfavorable for timely prevention and control and management work. Summary of the Invention
[0004] (I) Technical Problems to be Solved
[0005] Aiming at the deficiencies of the prior art, the present invention provides a hospital infection monitoring and management device, which solves the problem of low detection range of manual detection in traditional hospital infection monitoring and management devices.
[0006] (II) Technical Solutions
[0007] To achieve the above object, the present invention is realized by the following technical solutions: A hospital infection monitoring and management device, including a mounting base, both sides of the lower end of the mounting base are fixedly connected with guide rails, and a plurality of sliding plates are slidably connected to the outside of the two guide rails. A first servo motor is arranged on one side of the inside of each of the plurality of sliding plates, and a gear is sleeved on the output end of each of the plurality of first servo motors. Both side end faces of the mounting base are fixedly connected with racks. One side of the lower end of each of the plurality of sliding plates is fixedly connected with a connecting seat. A second servo motor is arranged on one side end face of each of the plurality of connecting seats. The output end of each of the plurality of second servo motors extends into the inside of the connecting seat and is sleeved with a driving bevel gear. A driven bevel gear is meshed with the lower end of each of the plurality of driving bevel gears. A connecting shaft is sleeved inside each of the plurality of driven bevel gears. The lower end of each of the plurality of connecting shafts extends out of the connecting seat and is fixedly connected with a frame. A third servo motor is arranged on one side end face of each of the plurality of frames. The output end of each of the plurality of third servo motors extends into the inside of the frame and is fixedly connected with a connecting rod. The lower end of each of the plurality of connecting rods is fixedly connected with a mounting plate. A camera and an infrared thermal imager are respectively arranged on both sides of the lower end of each of the plurality of mounting plates;
[0008] Both sides of the upper end of the mounting base are fixedly connected with connecting shells. A fourth servo motor is arranged on one side end face of each of the two connecting shells. The output end of each of the two fourth servo motors extends into the inside of the connecting shell and is fixedly connected with a first threaded rod. A first sleeve is threaded on one side of the outside of each of the two first threaded rods. One side end face of each of the two first sleeves is fixedly connected with a support rod. A fifth servo motor is arranged at the lower end of each of the two support rods. The output end of each of the two fifth servo motors extends into the inside of the support rod and is fixedly connected with a second threaded rod. A second sleeve is threaded on the upper side of the outside of each of the two second threaded rods. One side end face of each of the two second sleeves is fixedly connected with a rapid bacteria detector;
[0009] Through the above technical solutions, the device uses three servo motors to realize the movement of the connecting plate, the rotation of the frame, and the angle adjustment of the mounting plate, expands the detection range of the camera and the infrared thermal imager, reduces missed detections and misoperations, realizes 24-hour real-time monitoring, improves safety, reduces the burden on medical staff, and improves work efficiency and detection quality.
[0010] Preferably, a plurality of sliders are evenly and spacedly fixedly connected to one side end face of each of the two support rods, and slideways are arranged outside each of the plurality of sliders;
[0011] Through the above technical solutions, the slideway can be connected to the wall and cooperate with the slider, effectively improving the stability and accuracy of the device, reducing friction and wear during operation, and ensuring the smoothness and reliability of the equipment during long-term operation.
[0012] Preferably, one end of each of the plurality of connecting rods extends into the interior of the frame and is rotatably connected thereto;
[0013] Through the above technical solution, by rotatably connecting one end of the connecting rod to the frame, the mounting plate can be kept stable during rotation, thereby improving the stability of its camera and thermal imager during detection.
[0014] Preferably, one side end face of each of the two rapid bacteriological detectors is mutually attached to one side end face of the support rod;
[0015] Through the above technical solution, the fitting design of the rapid bacteriological detector and the end face of the support rod ensures the stability of the rapid bacteriological detector, enables the rapid bacteriological detector to move smoothly, avoids shaking during detection, and improves the accuracy and stability of detection.
[0016] Preferably, a data processing module and a communication module are provided on one side of the upper end of the mounting seat;
[0017] Through the above technical solution, setting the data processing module helps to analyze and process the detection data in real time, and realizes remote connection with other devices or systems through the communication module, improving the intelligent level and remote control ability of the device.
[0018] Preferably, each of the plurality of gears is meshed with the rack;
[0019] Through the above technical solution, the meshing connection between the gear and the rack ensures the stability and accuracy of the transmission system, can efficiently transmit power, reduces the occurrence of mechanical failures, and improves the working efficiency and durability of the system.
[0020] Preferably, one end of each of the two first threaded rods away from the fourth servo motor is rotatably connected to the connecting shell;
[0021] Through the above technical solution, by rotatably connecting the first threaded rod to the connecting shell, the first threaded rod can be kept stable during rotation, thereby realizing the stable movement of the support rod and enabling the rapid bacteriological detector to perform stable detection.
[0022] Preferably, one end of each of the two second threaded rods away from the fifth servo motor is rotatably connected to the support rod;
[0023] Through the above technical solution, by rotatably connecting the second threaded rod to the support rod, the second threaded rod can be kept stable during rotation, thereby realizing the stable movement of the rapid bacteriological detector and enabling the rapid bacteriological detector to perform stable detection.
[0024] (III) Beneficial effects
[0025] The present invention provides a hospital infection monitoring and management device, which has the following beneficial effects:
[0026] 1. The present invention provides a hospital infection monitoring and management device. Compared with the existing hospital infection monitoring and management devices, this device realizes the movement of the connecting plate through the cooperation of the first servo motor driving the gear and the rack, the second servo motor controls the rotation of the frame, and the third servo motor adjusts the angle of the mounting plate, so that the camera and the thermal imager can conduct large-range detection, expanding the detection range, avoiding the limitations of local detection of traditional handheld devices, reducing the risk of missed detection. At the same time, it effectively reduces the dependence on manual operation, reduces the risk of misoperation or missed detection caused by factors such as human negligence or fatigue, improves the reliability and accuracy of monitoring. In addition, this device can conduct 24-hour uninterrupted real-time detection, timely discover potential infection sources or abnormal situations, enhance the safety of areas such as wards and corridors, reduce the patrol pressure of medical staff, avoid work fatigue, and improve work efficiency and detection quality.
[0027] 2. The present invention provides a hospital infection monitoring and management device. Compared with the existing hospital infection monitoring and management devices, this device drives the first threaded rod to rotate through the fourth servo motor, enabling the support rod to translate, and the fifth servo motor drives the second threaded rod to rotate to realize the lifting of the rapid bacteria detector at the upper end of the support rod, so as to conduct large-range detection of bacteria in the air within a specified space, ensuring more comprehensive monitoring coverage, being able to timely discover potential bacterial pollution sources, overcoming the limitations of traditional detection methods in terms of range, improving the comprehensiveness of detection. At the same time, the automated translation and lifting operations reduce manual intervention, reduce the risk of operation errors, and support 24-hour uninterrupted detection, significantly improving work efficiency and the sustainability of environmental monitoring. BRIEF DESCRIPTION OF THE DRAWINGS
[0028] Figure 1 is the schematic diagram of the main structure of the present invention;
[0029] Figure 2 is the axonometric schematic diagram of the support rod of the present invention;
[0030] Figure 3 is the expanded schematic diagram of the support rod and the slideway of the present invention;
[0031] Figure 4 is the axonometric schematic diagram of the mounting seat of the present invention;
[0032] Figure 5 is the connection schematic diagram of the guide rail and the sliding plate of the present invention;
[0033] Figure 6 is the structure schematic diagram of the connecting seat and the frame of the present invention;
[0034] Figure 7Schematic diagram of the internal structure of the support rod of the present invention;
[0035] Figure 8 Schematic diagram of the internal structure of the mounting base of the present invention.
[0036] Among them, 1. Mounting base; 2. Guide rail; 3. Sliding plate; 4. First servo motor; 5. Gear; 6. Rack; 7. Connecting seat; 8. Second servo motor; 9. Driving bevel gear; 10. Driven bevel gear; 11. Connecting shaft; 12. Frame; 13. Third servo motor; 14. Connecting rod; 15. Mounting plate; 16. Camera; 17. Thermal imager; 18. Connecting shell; 19. Fourth servo motor; 20. First threaded rod; 21. First sleeve; 22. Support rod; 23. Fifth servo motor; 24. Second threaded rod; 25. Second sleeve; 26. Rapid bacteria detector; 27. Slide block; 28. Slideway; 29. Data processing module; 30. Communication module. Specific embodiments
[0037] Next, the technical solutions in the embodiments of the present invention will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those of ordinary skill in the art without creative efforts shall fall within the protection scope of the present invention.
[0038] As Figure 1-8 shown, the embodiment of the present invention provides a hospital infection monitoring and management device, including a mounting base 1. Both sides of the lower end of the mounting base 1 are fixedly connected with guide rails 2. The outer sides of the two guide rails 2 are slidably connected with a plurality of sliding plates 3. One side of the inside of the plurality of sliding plates 3 is provided with a first servo motor 4. The output ends of the plurality of first servo motors 4 are sleeved with gears 5. Both side ends of the mounting base 1 are fixedly connected with racks 6. One side of the lower end of the plurality of sliding plates 3 is fixedly connected with connecting seats 7. One side end of the plurality of connecting seats 7 is provided with a second servo motor 8. The output ends of the plurality of second servo motors 8 extend into the inside of the connecting seats 7 and are sleeved with driving bevel gears 9. The lower ends of the plurality of driving bevel gears 9 are meshed with driven bevel gears 10. The inside of the plurality of driven bevel gears 10 is sleeved with connecting shafts 11. The lower ends of the plurality of connecting shafts 11 extend out of the connecting seats 7 and are fixedly connected with frames 12. One side end of the plurality of frames 12 is provided with a third servo motor 13. The output ends of the plurality of third servo motors 13 extend into the inside of the frames 12 and are fixedly connected with connecting rods 14. The lower ends of the plurality of connecting rods 14 are fixedly connected with mounting plates 15. The two sides of the lower end of the plurality of mounting plates 15 are respectively provided with a camera 16 and a thermal imager 17;
[0039] On both sides of the upper end of the mounting base 1, there are fixedly connected connection shells 18. On one side end face of each of the two connection shells 18, there is a fourth servo motor 19. The output ends of the two fourth servo motors 19 both extend into the interior of the connection shell 18 and are fixedly connected with a first threaded rod 20. On the outer side of each of the two first threaded rods 20, there is a first sleeve 21 threaded thereon. On one side end face of each of the two first sleeves 21, there is a support rod 22 fixedly connected. At the lower end of each of the two support rods 22, there is a fifth servo motor 23. The output ends of the two fifth servo motors 23 both extend into the interior of the support rod 22 and are fixedly connected with a second threaded rod 24. On the upper outer side of each of the two second threaded rods 24, there is a second sleeve 25 threaded thereon. On one side end face of each of the two second sleeves 25, there is a rapid bacteria detector 26 fixedly connected;
[0040] The device uses three servo motors to achieve the movement of the connecting plate, the rotation of the frame 12, and the angle adjustment of the mounting plate 15, expanding the detection range of the camera and the thermal imager 17, reducing missed detections and misoperations, achieving 24-hour real-time monitoring, enhancing safety, reducing the burden on medical staff, and improving work efficiency and detection quality.
[0041] On one side end face of the two support rods 22, sliders 27 are fixedly connected at uniform intervals. Sliding channels 28 are arranged outside multiple sliders 27. The sliding channels 28 can be connected to the wall and cooperate with the sliders 27, effectively improving the stability and precision of the device, reducing friction and wear during operation, ensuring the smoothness and reliability of the equipment during long-term operation. One end of each of the multiple connecting rods 14 extends into the interior of the frame 12 and is rotatably connected thereto. Through the rotational connection between one end of the connecting rod 14 and the frame 12, the mounting plate 15 can remain stable during rotation, thereby improving the smoothness of its camera 16 and thermal imager 17 during detection. On one side end face of each of the two rapid bacteriological detectors 26, it is in mutual contact with the one side end face of the support rod 22. The contact design between the rapid bacteriological detector 26 and the end face of the support rod 22 ensures the stability of the rapid bacteriological detector 26, enabling the rapid bacteriological detector 26 to move smoothly, avoiding shaking during detection, and improving the accuracy and stability of detection. On the upper side of one end of the mounting base 1, a data processing module 29 and a communication module 30 are provided. The provision of the data processing module 29 helps to perform real-time analysis and processing of detection data and achieve remote connection with other devices or systems through the communication module 30, improving the intelligent level and remote control ability of the equipment. Multiple gears 5 are all meshed with the rack 6. The meshing connection between the gear 5 and the rack 6 ensures the stability and precision of the transmission system, can efficiently transmit power, reduces the occurrence of mechanical failures, and improves the working efficiency and durability of the system. One end of each of the two first threaded rods 20 away from the fourth servo motor 19 is rotatably connected to the connecting shell 18. Through the rotational connection between the first threaded rod 20 and the connecting shell 18, the first threaded rod 20 can remain stable during rotation, thereby realizing the smooth movement of the support rod 22 and enabling the rapid bacteriological detector 26 to perform stable detection. One end of each of the two second threaded rods 24 away from the fifth servo motor 23 is rotatably connected to the support rod 22. Through the rotational connection between the second threaded rod 24 and the support rod 22, the second threaded rod 24 can remain stable during rotation, thereby realizing the smooth movement of the rapid bacteriological detector 26 and enabling the rapid bacteriological detector 26 to perform stable detection.
[0042] Working principle: When the device is in use, the staff fixes the mounting base 1 on the top of the wall and installs the slideway 28 on the wall. Then, through an external controller, the first servo motor 4 is controlled to drive the cooperation of the gear 5 and the rack 6 to achieve the translation of the connecting plate. The second servo motor 8 controls the rotation of the frame 12, and the third servo motor 13 adjusts the angle of the mounting plate 15 so that the camera and the thermal imager 17 can perform environmental detection in a large range. At the same time, the fourth servo motor 19 is controlled to drive the first threaded rod 20 to rotate, so that the support rod 22 can translate. The fifth servo motor 23 is controlled to drive the second threaded rod 24 to rotate, quickly adjusting the lifting of the bacteria detector at the upper end of the support rod 22 to ensure a large-range detection of bacteria in the air, thus effectively reducing the dependence on manual operation, reducing the risk of human error, avoiding the limitations of traditional handheld device detection, ensuring a more comprehensive monitoring coverage, and improving the comprehensiveness of detection.
[0043] Although the embodiments of the present invention have been shown and described, for those of ordinary skill in the art, it can be understood that various changes, modifications, substitutions, and variations can be made to these embodiments without departing from the principles and spirit of the present invention. The scope of the present invention is defined by the appended claims and their equivalents.
Claims
1. A hospital infection monitoring and management device, comprising a mounting seat (1), characterized in that: Both sides of the lower end of the mounting seat (1) are fixedly connected to guide rails (2), the outer sides of the two guide rails (2) are slidably connected to a plurality of sliding plates (3), a first servo motor (4) is provided on one side of the inner side of the plurality of sliding plates (3), and a gear (5) is sleeved on the output end of the plurality of first servo motors (4), both side end surfaces of the mounting seat (1) are fixedly connected to racks (6), a lower side side of the plurality of sliding plates (3) is fixedly connected to a connecting seat (7), a second servo motor (8) is provided on one side end surface of the plurality of connecting seats (7), and the output ends of the plurality of second servo motors (8) extend into the interior of the connecting seat (7) and are sleeved with an active bevel gear (9), and the plurality of The lower ends of the driving bevel gears (9) are meshedly connected with driven bevel gears (10), the interiors of the driven bevel gears (10) are sleeved with connecting shafts (11), the lower ends of the connecting shafts (11) extend out of the connecting seats (7) and are fixedly connected with the frames (12), the end surfaces of one side of the frames (12) are provided with third servo motors (13), the output ends of the third servo motors (13) extend into the interior of the frames (12) and are fixedly connected with connecting rods (14), the lower ends of the connecting rods (14) are fixedly connected with mounting plates (15), and cameras (16) and thermal imagers (17) are respectively provided on both sides of the lower ends of the mounting plates (15); Both sides of the upper end of the mounting seat (1) are fixedly connected with a connecting shell (18), one side end surface of the two connecting shells (18) is provided with a fourth servo motor (19), the output ends of the two fourth servo motors (19) extend into the interior of the connecting shell (18) and are fixedly connected with a first threaded rod (20), the outer side of the two first threaded rods (20) are threaded with a first sleeve (21), one side end surface of the two first sleeves (21) is fixedly connected with a support rod (22), the lower ends of the two support rods (22) are provided with a fifth servo motor (23), the output ends of the two fifth servo motors (23) extend into the interior of the support rod (22) and are fixedly connected with a second threaded rod (24), the outer upper ends of the two second threaded rods (24) are threaded with a second sleeve (25), and one side end surface of the two second sleeves (25) is fixedly connected with a rapid bacteria detector (26).
2. A hospital infection monitoring and management device according to claim 1, characterized in that: Slide blocks (27) are evenly spaced and fixedly connected to one end surface of the two support rods (22), and slideways (28) are arranged outside the plurality of slide blocks (27).
3. A hospital infection monitoring and management device according to claim 1, characterized in that: One end of each of the connecting rods (14) extends into the interior of the frame (12) and is rotatably connected thereto.
4. A hospital infection monitoring and management device according to claim 1, characterized in that: One end surface of each of the two rapid bacteria detectors (26) is in contact with one end surface of the support rod (22).
5. A hospital infection monitoring and management device according to claim 1, characterized in that: A data processing module (29) and a communication module (30) are provided on one side of the upper end of the mounting seat (1).
6. A hospital infection monitoring and management device according to claim 1, characterized in that: The plurality of gears (5) are all meshingly connected with the rack (6).
7. A hospital infection monitoring and management device according to claim 1, characterized in that: One end of the two first threaded rods (20) away from the fourth servo motor (19) is rotatably connected to the connecting shell (18).
8. A hospital infection monitoring and management device according to claim 1, characterized in that: One end of the two second threaded rods (24) away from the fifth servo motor (23) is rotatably connected to the support rod (22).