Dynamic medical data carrier access monitoring system and device

Through the dynamic medical data carrier access monitoring system and device, real-time monitoring of data hard disk access is achieved using components such as control systems and gravity sensors, solving the problem of dynamic monitoring in existing technologies and improving management efficiency.

CN120803835APending Publication Date: 2025-10-17THE 900TH HOSPITAL OF THE CHINESE PEOPLES LIBERATION ARMY JOINT LOGISTICS SUPPORT FORCE
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Patent Information

Application Number
CN202510673931.6
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-05-23
Publication Date
2025-10-17

AI Technical Summary

Technical Problem

Existing database cabinets cannot dynamically monitor the access status of data hard disks in real time, which easily leads to incorrect storage locations and increases management difficulty.

Method used

A dynamic medical data carrier access monitoring system and device is designed, including a control system, a drive module, a detection module and an interaction module. The data hard disk is moved by horizontal and vertical drive units, and the access status is recorded in real time using a gravity sensor.

Benefits of technology

It realizes real-time dynamic monitoring of data hard disk access, reduces location storage errors and improves management efficiency.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention relates to the technical field of databases, in particular to a dynamic medical data carrier access monitoring system and device. The device comprises a machine cabinet, a driving assembly fixedly arranged on the machine cabinet, a movable bearing assembly movably arranged on the machine cabinet in a penetrating mode and fixedly connected with the driving assembly, and a set of storage assemblies symmetrically and fixedly arranged on the left side and the right side of the bearing assembly in the machine cabinet. The invention aims to provide a dynamic medical data carrier access monitoring device which solves the problem that an existing data carrier storage cabinet cannot dynamically monitor the access condition of an internal data hard disk in real time.
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Description

TECHNICAL FIELD

[0001] The present application relates to the technical field of database, in particular to a dynamic medical data carrier access monitoring system and device. BACKGROUND

[0002] With the continuous development of information technology and the digital transformation of the medical industry, network security has become increasingly important in the medical field. The medical industry handles a large amount of sensitive private data, including patients' personal information, medical records, treatment plans, etc. Once these private data are leaked or tampered with, it will have a serious impact on patients' health and the reputation of medical institutions. The storage data hard disk of the hospital is an indispensable part of the daily operation of the hospital, which includes many important file types, including outpatient case data, assistant case data, operation records, nursing records, etc. during the medical process of patients; various meeting minutes, notices, reports, etc. archive data with value for checking and using are formed in various medical business activities and functional management of the hospital; scientific and technological archive data such as scientific research project reports, paper compilation, equipment archives, etc. are formed in the work process of scientific research, education, medical engineering, infrastructure, etc. of the hospital;

[0003] Such storage data is usually copied, sorted and compressed using special software and stored in data hard disks, and the data hard disks are stored in the database room. According to the needs of use, the content can be checked and copied at any time, but it needs to be noted that the existing database cabinet has a single structure and simple function, and can only realize the simple function of storing data hard disks. It is difficult to monitor the storage and taking of the internal data hard disks in real time and dynamically for the data hard disks stored in the database room, and even due to the manual storage of the data hard disks by the user, the storage position is prone to error, which greatly increases the difficulty of the management personnel in monitoring the storage of the data hard disks in the database.

[0004] Therefore, how to design a dynamic medical database data monitoring device to solve the above technical problems is a technical problem to be solved. SUMMARY

[0005] In order to solve the above problems, the purpose of the present application is to provide a dynamic medical data carrier access monitoring system and device, which solves the problem that the existing data carrier storage cabinet cannot monitor the internal data hard disk access in real time and dynamically.

[0006] In a first aspect, the present application provides a dynamic medical data carrier access monitoring system,

[0007] Referring to Figure 1 As shown, the scheme includes a control system and a driving module, a detection module and an interaction module in signal connection with the control system;

[0008] The interaction module is configured to receive a control instruction from a user and output the control instruction to the control module.

[0009] The control module is configured to receive the control instruction from the interaction module and open the movement through the driving module.

[0010] The driving module comprises:

[0011] A horizontal driving unit is configured to move horizontally in response to a control signal.

[0012] A vertical driving unit is configured to move up and down in response to a control signal.

[0013] The detection module is configured to detect the pickup of the data hard disk.

[0014] Further, the detection module further comprises a leveling detection module and a leveling alignment module; the leveling detection module is configured to send a leveling signal to the control module, and the leveling alignment module is configured to detect whether the positioning is accurate.

[0015] Further, the interaction module comprises an interactive display screen.

[0016] Further, the detection module comprises a gravity sensor.

[0017] In a second aspect, a dynamic medical data carrier access monitoring device is provided.

[0018] Referring to Figures 2-4 As shown in the drawings, the scheme comprises a cabinet, a driving assembly fixedly arranged on the cabinet, a moving bearing assembly movably arranged on the cabinet and fixedly connected with the driving assembly, and a group of storage assemblies symmetrically fixedly arranged on the left and right sides of the bearing assembly in the cabinet.

[0019] The driving assembly comprises a support plate fixedly arranged on the outer side wall of the cabinet, a screw rod rotationally connected with the bottom end of the support plate, a bevel gear fixedly arranged on the top end of the screw rod, a driving motor fixedly arranged on the top of the cabinet, a transmission gear drivingly connected with the output end of the driving motor and meshingly connected with the bevel gear, and a sliding sleeve threadedly sleeved on the outside of the screw rod.

[0020] The moving bearing assembly comprises a connecting plate, an X-axis assembly fixedly arranged on the inner side surface of the connecting plate along the length direction of the connecting plate, a Y-axis assembly fixedly arranged on the inner side surface of the connecting plate along the height direction of the connecting plate, a first connecting rod mounted on the X-axis assembly, a moving bearing plate fixedly arranged on the movable end of the first connecting rod, a second connecting rod mounted on the Y-axis assembly, a pressing plate fixedly arranged on the movable end of the second connecting rod, and a third connecting rod fixedly arranged on the outer side surface of the connecting part and fixedly connected with the sliding sleeve through the side wall of the cabinet.

[0021] The storage assembly is composed of a plurality of storage frames which are equidistantly arranged along the height direction of the cabinet; the storage frame is provided with a through hole on the side of the first connecting rod for the first connecting rod to pass through; the upper surface of the storage frame is further provided with a gravity sensor.

[0022] Further, the cabinet is provided with a controller which is in electrical connection with the gravity sensor, the driving motor, the X-axis assembly and the Y-axis assembly.

[0023] Further, the length of the first connecting rod is greater than the distance between the inner sides of the connecting plate storage frames.

[0024] Further, the length and width of the moving bearing plate are both less than the length and width of the storage frame.

[0025] Further, the X-axis assembly and the Y-axis assembly are both linear modules.

[0026] Further, the concave limiting block is movably arranged on the storage frame and the opening direction of the concave limiting block is towards the center of the storage frame.

[0027] Further, the bottom of the cabinet is further fixedly provided with a positioning frame which is matched with the shape and size of the storage frame.

[0028] The present application has the following advantages:

[0029] 1. The present application is provided with a driving assembly, a moving bearing assembly and a storage assembly, the corresponding sensing signals are outputted by the controller to drive the moving bearing assembly to move to the position of the corresponding storage frame, so as to take or store the data hard disk; the corresponding control signals are outputted by the gravity sensor to the controller to dynamically record the recording condition of the data hard disk in the cabinet, and the user can conveniently monitor the storage and taking condition of the data hard disk in the cabinet. BRIEF DESCRIPTION OF DRAWINGS

[0030] Figure 1 The present application is a flowchart

[0031] Figure 2 The present application is a cross-sectional view

[0032] Figure 3 The present application is a top view of the cabinet

[0033] Figure 4 The present application is a longitudinal cross-sectional view of the cabinet

[0034] REFERENCE SIGNS:

[0035] 100-control system, 200-driving module, 210-horizontal driving unit, 220-vertical driving unit, 300-detection module, 310-leveling alignment module, 320-leveling detection module, 400-interaction module;

[0036] 1-cabinet, 11-controller;

[0037] 2-driving assembly, 21-supporting plate, 22-screw rod, 23-bevel gear, 24-driving motor, 25-transmission gear, 26-sliding sleeve;

[0038] 3-moving bearing assembly, 31-connecting plate, 32-X-axis assembly, 33-Y-axis assembly, 34-first connecting rod, 35-second connecting rod, 36-moving bearing plate, 37-pressing plate, 38-third connecting rod;

[0039] 4-storage assembly, 41-storage frame, 411-through hole, 412-concave limiting block, 42-gravity sensor;

[0040] 5-positioning frame. DETAILED DESCRIPTION

[0041] The application will be further described in detail below in combination with the drawings and specific embodiments:

[0042] Embodiment one

[0043] Referring to Figure 1 As shown in the figure, the scheme comprises a control system 100 and a driving module 200, a detection module 300 and an interaction module 400 in electrical connection with the control system 100;

[0044] The interaction module 400 is used for accepting the control instruction issued by the user and outputting to the control system 100;

[0045] The control system 100 is used for accepting the control instruction of the interaction module 400 and starting the movement through the driving module 200;

[0046] The driving module 200 comprises:

[0047] The horizontal driving unit 210 is used for responding to the control signal and making horizontal movement;

[0048] The vertical driving unit 220 is used for responding to the control signal and making up and down movement;

[0049] The detection module 300 is used for detecting the taking of the data hard disk.

[0050] Further, the detection module 300 further comprises a flat layer detection module 320 and a flat layer alignment module 310; the flat layer detection module 320 is used to send a flat layer signal to the control system 100, and the flat layer alignment module 310 is used to detect whether the positioning is accurate.

[0051] Further, the interaction module 400 comprises an interactive display screen.

[0052] Further, the detection module 300 comprises a gravity sensor

[0053] In a second aspect, a dynamic medical data carrier access monitoring device is provided.

[0054] Embodiment two

[0055] Referring to Figures 2-4 As shown in the figure, the scheme comprises a cabinet 1, a driving assembly 2 fixedly arranged on the cabinet 1, a mobile bearing assembly 3 movably arranged on the cabinet 1 and fixedly connected with the driving assembly 2, and a plurality of storage assemblies 4 symmetrically fixedly arranged on the left and right sides of the bearing assembly in the cabinet 1;

[0056] The driving assembly 2 comprises a support plate 21 fixedly arranged vertically on the outer side wall of the cabinet 1, a screw rod 22 rotationally connected with the bottom end of the support plate 21, a bevel gear 23 fixedly arranged on the top end of the screw rod 22, a driving motor 24 fixedly arranged on the top of the cabinet 1, a transmission gear 25 drivingly connected with the output end of the driving motor 24 and meshingly connected with the bevel gear 23, and a sliding sleeve 26 threadedly sleeved on the outside of the screw rod 22;

[0057] The mobile bearing assembly 3 comprises a connecting plate 31, an X-axis assembly 32 fixedly arranged on the inner side surface of the connecting plate 31 along the length direction of the connecting plate 31, a Y-axis assembly 33 fixedly arranged on the inner side surface of the connecting plate 31 along the height direction of the connecting plate 31, a first connecting rod 34 mounted on the X-axis assembly 32, a mobile bearing plate 36 fixedly arranged on the movable end of the first connecting rod 34, a second connecting rod 35 mounted on the Y-axis assembly 33, a pressing plate 37 fixedly arranged on the movable end of the second connecting rod 35, and a third connecting rod 38 fixedly arranged on the outer side surface of the connecting part and fixedly connected with the sliding sleeve 26 through the side wall of the cabinet 1;

[0058] The storage assembly 4 is composed of a plurality of storage frames 41 equidistantly arranged along the height direction of the cabinet 1; the storage frame 41 is provided with a through hole 411 on the side relative to the first connecting rod 34, so that the first connecting rod 34 can pass through the through hole 411; and the upper surface of the storage frame 41 is further provided with a gravity sensor 42. The frame edges of the storage frame 41 are arranged according to the length and width of the existing data hard disk, so that the length and width of the data hard disk are within the frame spacing of the storage frame, and the data hard disk can be placed flat on the storage frame.

[0059] Further, the cabinet 1 is externally provided with a controller 11 in electrical connection with the gravity sensor 42, the driving motor 24, the X-axis assembly 32 and the Y-axis assembly 33.

[0060] Further, the first connecting rod 34 has a length greater than the distance from the inside of the storage frame 41.

[0061] Further, the mobile bearing plate 36 has a length and a width both less than the length and the width of the storage frame 41.

[0062] Further, the X-axis assembly 32 and the Y-axis assembly 33 are both linear modules.

[0063] Further, the storage frame 41 is movably provided with a concave limiting block 412, and the concave limiting block 412 is open towards the center of the storage frame 41. In the initial state, the bottom end of the concave limiting block 412 is close to the bottom surface of the storage frame 41, and the top end of the concave limiting block 412 is away from the top surface of the storage frame 41. When the mobile bearing plate 36 moves downward through the storage frame 41, the mobile bearing plate 36 pushes the concave limiting block 412 to move downward, so that the top end of the concave limiting block 412 is placed on the upper surface of the data hard disk to limit the data hard disk. When the data hard disk is taken, the mobile bearing assembly 3 moves upward through the storage frame 41 to push the data hard disk, and the top end of the concave limiting block 412 is pushed upward away from the data hard disk.

[0064] Further, the bottom of the cabinet 1 is further fixedly provided with a positioning frame 5 matching the shape and size of the storage frame 41.

[0065] The working principle is roughly as follows:

[0066] In the initial state, the mobile bearing plate 36 is placed in the positioning frame 5 at the bottom end of the cabinet 1. When storing the data hard disk, the data hard disk is placed on a mobile bearing plate 36, and the pressing plate 37 is moved downward along the Y-axis assembly 33 to press and fix the data hard disk, so as to avoid the data hard disk from shaking and deviating during the upward movement of the mobile bearing plate 36. When the driving motor 24 works, the mobile bearing plate 36 moves upward to the height of the corresponding storage frame 41, and then the pressing plate 37 moves upward through the Y-axis assembly 33. According to the position of the storage frame 41, the mobile bearing plate 36 is moved to the upper side of the corresponding storage frame 41 through the X-axis assembly 32. The driving motor 24 is reversed to move the sliding sleeve 26 downward on the screw rod 22, and the first connecting rod 34 and the mobile bearing plate 36 move downward through the storage frame 41, so that the data hard disk is stored on the upper end surface of the corresponding storage frame 41. The mobile bearing plate 36 is reset through the X-axis assembly 32, and the gravity sensing device on the corresponding storage frame 41 senses that the data hard disk is stored in the storage frame 41, and outputs a control signal to the controller 11 to record the storage condition of the data hard disk in real time.

[0067] When taking a data hard disk, the number of the data hard disk storage frame 41 is input through the controller 11. When the driving motor 24 is working, the mobile carrier plate 36 is moved upward to the bottom of the corresponding storage frame 41. Then, according to the position of the storage frame 41, the mobile carrier plate 36 is moved left or right through the X-axis assembly 32 to the bottom of the corresponding storage frame 41. The driving motor 24 rotates forward to move the sleeve 26 upward on the screw 22. The first connecting rod 34 and the mobile carrier plate 36 move upward through the storage frame 41 to take the data hard disk. After the X-axis assembly 32 is reset, the pressing plate 37 moves downward along the Y-axis assembly 33 to squeeze and fix the data hard disk. At this time, the gravity sensing device on the corresponding storage frame 41 outputs a control signal to the controller 11 to record the taking of the data hard disk in real time.

[0068] The gravity sensor 42 is used to dynamically record the number of hard disks accessed and the status of the hard disks taken from the cabinet 1 in real time.

[0069] The above description is only a specific embodiment of the present invention and does not limit the patent scope of the present invention. Any equivalent structural transformation made by using the contents of the present invention description and drawings, or directly or indirectly applied in other related technical fields, are also included in the patent protection scope of the present invention.

Claims

1. A dynamic medical data carrier access monitoring system, characterized by: It comprises a control system (100), a driving module (200), a detection module (300), and an interaction module (400) which are connected to the control system (100) by telecommunication; The interaction module (400) is used to receive control instructions issued by the user and output them to the control system (100); The control system (100) is used to receive control instructions from the interaction module (400) and start movement through the driving module (200); The driving module (200) comprises: A horizontal driving unit (210), configured to respond to a control signal and make horizontal movements; A vertical driving unit (220) is used to respond to the control signal and move up and down; The detection module (300) is used to detect the removal of the data hard disk.

2. A dynamic medical data carrier access monitoring system according to claim 1, characterized in that: The detection module (300) further comprises a leveling detection module (320) and a leveling alignment module (310); the leveling detection module (320) is used to send a leveling signal to the control system (100), and the leveling alignment module (310) is used to detect whether positioning is accurate.

3. A dynamic medical data carrier access monitoring system according to claim 1, characterized in that: The interactive module (400) includes an interactive display screen.

4. The dynamic medical data carrier access monitoring system according to claim 1, characterized in that: The detection module (300) includes a gravity sensor.

5. A dynamic medical data carrier access monitoring device, characterized in that: It comprises a cabinet (1), a drive assembly (2) fixed on the cabinet (1), a movable bearing assembly (3) movably arranged on the cabinet (1) and fixedly connected to the drive assembly (2), and a group of storage assemblies (4) symmetrically fixed on the left and right sides of the bearing assembly in the cabinet (1); The driving assembly (2) comprises a support plate (21) fixed vertically to the outer wall of the cabinet (1), a screw (22) whose bottom end is rotatably connected to the support plate (21), a bevel gear (23) fixed to the top end of the screw (22), a driving motor (24) fixed to the top of the cabinet (1), a transmission gear (25) connected to the output end of the driving motor (24) and meshingly connected to the bevel gear (23), and a sliding sleeve (26) threadedly sleeved on the outside of the screw (22); The movable bearing assembly (3) comprises a connecting plate (31), an X-axis assembly (32) fixedly arranged at the bottom of the inner side surface of the connecting plate (31) and arranged along the length direction of the connecting plate (31), a Y-axis assembly (33) fixedly arranged at the middle of the inner side surface of the connecting plate (31) and arranged along the height direction of the connecting plate (31), a first connecting rod (34) mounted on the X-axis assembly (32), a movable bearing plate (36) fixedly arranged at the movable end of the first connecting rod (34), a second connecting rod (35) mounted on the Y-axis assembly (33), a pressing plate (37) fixedly arranged at the movable end of the second connecting rod (35), and a third connecting rod (38) fixedly arranged on the outer side surface of the connecting portion and passing through the side wall of the cabinet (1) and fixedly connected to the sliding sleeve (26); The storage assembly (4) is composed of a plurality of storage frames (41) arranged at equal intervals along the height direction of the cabinet (1); a through hole (411) is provided on the side of the storage frame (41) opposite to the first connecting rod (34) to facilitate the passage of the first connecting rod (34); and a gravity sensor (42) is also provided on the upper surface of the storage frame (41).

6. The dynamic medical data carrier access monitoring device according to claim 5, characterized in that: A controller (11) is provided outside the cabinet (1) and is connected to the gravity sensor (42), the drive motor (24), the X-axis assembly (32) and the Y-axis assembly (33) via telecommunications.

7. The dynamic medical data carrier access monitoring device according to claim 5, characterized in that: The length of the first connecting rod (34) is greater than the distance inside the connecting plate (31) storage frame (41).

8. The dynamic medical data carrier access monitoring device according to claim 5, characterized in that: The length and width of the movable carrying plate (36) are both smaller than the length and width of the storage frame (41).

9. The dynamic medical data carrier access monitoring device according to claim 1, characterized in that: The X-axis assembly (32) and the Y-axis assembly (33) are both linear modules.

10. The dynamic medical data carrier access monitoring device according to claim 5, characterized in that: A concave limiting block (412) is movably provided on the storage frame (41), and the opening direction of the concave limiting block (412) faces the center of the storage frame (41).