Intelligent file volume identification partition access management device
By using machine vision to identify the thickness of file folders and combining it with barcode information, storage space is dynamically allocated, solving the problem of low space utilization caused by fixed partitions in traditional file storage devices, and achieving efficient and intelligent partition management and precise access.
Patent Information
- Application Number
- CN202511667022.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-11-14
- Publication Date
- 2026-01-13
AI Technical Summary
Existing file storage devices, due to their fixed partition design, cannot adapt to changes in the thickness of file folders, resulting in low space utilization. Furthermore, the management process relies on manual operation, which is inefficient, inaccurate, and prone to errors.
By using machine vision to identify the thickness of the file folder and combining it with barcode information, storage space is dynamically allocated. It also integrates infrared posture detection and automatic push functions to achieve intelligent partitioned storage and retrieval management.
It improves space utilization, enhances the accuracy and efficiency of file storage and retrieval, and forms a fully intelligent management system.
Smart Images

Figure CN121329282A_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The present application relates to the technical field of archive management, and in particular to an intelligent archive volume recognition and partition storage and access management device. BACKGROUND
[0002] In the field of modern archive management, the use of standard archive bags is extremely common. However, due to the different thicknesses of the file contents, there are significant differences in the actual thickness of the archive bags after packaging. The current mainstream archive storage device generally adopts a fixed partition design mode, i.e., the storage chamber has a uniform and unchangeable internal size. This mode has a fundamental defect when facing archive bags with large thickness variations: for archive bags with a thickness less than the size of the storage chamber, a large amount of unused invalid space will be generated in the fixed space, which seriously reduces the space utilization rate; and for archive bags with a thickness exceeding the storage capacity of the storage chamber, they cannot be stored at all. Therefore, the fixed partition design cannot adapt to the changes in the thickness of the archive bags, resulting in waste of space resources or storage failure, which becomes the core bottleneck restricting storage efficiency and capacity.
[0003] To cope with the thickness differences of archive bags, traditional solutions rely on manual operations, such as rough classification (e.g., thin, medium, and thick zones) based on the visual inspection or experience of management personnel. This approach has many limitations: first, manual visual inspection has large errors and lacks precision and objective standards; second, even with rough classification, there are still thickness differences among archive bags in the same partition, which cannot finely utilize space, and invalid gaps are still unavoidable; third, it has poor dynamic adaptability and cannot optimally allocate space dynamically according to the real-time space distribution in the cabinet; fourth, during placement, if the archive bags are not placed upright (inclined), it will further cause space waste or access difficulties, and existing systems lack effective means for detection and reminders. In addition, in the archive access link, relying on manual searching of paper directories and manually searching for target archive bags is inefficient, prone to errors, and can easily interfere with and damage adjacent archive bags. Existing technologies adjust the storage chamber volume through movable partitions, such as the disclosed technology CN217137196U, but this method is costly and cumbersome, and there is still room for improvement.
[0004] In summary, the existing archive storage technology faces two major challenges: first, the fixed partition mechanism cannot intelligently adapt to changes in the thickness of archive bags, resulting in low space utilization efficiency; second, the management process relies too much on manual operations (including thickness identification, classification, placement posture control, and searching and retrieval), which is inefficient, inaccurate, and prone to errors. There is an urgent need for an innovative technical solution that can accurately and automatically identify the thickness of archive bags and dynamically and intelligently partition storage based on accurate thickness data and real-time space status for efficient and accurate access management, to overcome the above inherent defects. SUMMARY
[0005] The present application aims to overcome the problem of low storage space utilization caused by the thickness difference of the file bag in the traditional file cabinet, and to realize efficient adaptive partition management based on volume by recognizing the thickness of the file bag through machine vision and dynamically allocating the optimal storage space.
[0006] An intelligent file volume recognition partition access management device, comprising a plurality of storage rooms and a control console, the storage rooms are used for storing file bags, each file bag has a bar code pasted on the side, the control console is integrated with a computer and is provided with a reading slot, a camera is arranged in the reading slot, the image information collected by the camera is transmitted to the computer, the computer is provided with a built-in machine vision analysis system for automatically identifying the geometric parameters of the file bag and the bar code information. The present application solves the problem of low utilization of traditional fixed partition storage space caused by the thickness difference of the file bag, and cannot dynamically adapt to different thickness files. A basic system capable of automatically identifying the physical appearance (especially the thickness) of the file bag and the bar code information is provided, which lays a technical foundation for subsequent realization of intelligent partition storage based on thickness. The file bag is placed in the reading slot, and the camera and the machine vision analysis system are used to realize automatic, non-contact and accurate measurement of the shape (core is thickness d) of the file bag. At the same time, the camera recognizes the bar code to establish the accurate association between the identity of the file bag and its physical dimension (thickness d), and this thickness data is used as the core basis for the computer to calculate the required storage space (volume requirement) of a single file bag and to plan the optimal space, thereby eliminating the thickness recognition error and space waste caused by manual visual inspection or rough classification. All storage rooms have consistent internal volume dimensions; except for the thickness d, the remaining size specifications of the file bag are uniform. The standard size data of the storage room and the file bag are pre-input into the computer. The computer dynamically allocates the storage position of the file bag according to the real-time remaining width value of each storage room.
[0007] An intelligent file volume recognition partition access management device, the storage room is provided with a detection surface, a first infrared sensor is arranged at the top center line of the detection surface, and a second infrared sensor is arranged at the bottom center line of the detection surface.
[0008] An intelligent document volume recognition and partitioned storage management device includes a computer integrated with an alarm. A first infrared sensor detects the distance *b* between the top of the document bag and the detection surface, and a second infrared sensor detects the distance *c* between the bottom of the document bag and the detection surface. The detected data are fed back to the computer. When the absolute value of *b* and *c* exceeds a preset tolerance threshold, the alarm is activated. After the staff uses a camera to read the internal information of the document bag's barcode in the reading slot, the cabinet door of the corresponding storage compartment opens, and the staff places the document bag into the storage compartment from left to right. At this time, the first and second infrared ranging sensors detect the distances *b* and *c*, respectively. If |*b* and *c*| exceed the tolerance, the alarm prompts the staff to adjust the document bag's position to an upright state to ensure effective utilization of the storage compartment space. Once the document bag is placed upright, the alarm is deactivated, and the sensor data *b* and *c* are transmitted to the computer. The computer can then calculate the average value, which is the effective remaining capacity width of the current storage compartment.
[0009] An intelligent document volume identification and partitioned storage management device includes a query module and a real-time verification module on the computer screen. The query module allows users to retrieve detailed information about document folders based on specified criteria, while the real-time verification module displays the physical storage location information of the document folders in real time. Staff can retrieve relevant information about document folders by entering their file codes in the query module, and the location visualization module simultaneously and graphically indicates the specific storage room where the target document folder is located, significantly improving the efficiency of manual searches.
[0010] An intelligent archive volume recognition and partitioned storage management device is provided. A horizontal guide rail is provided at the rear of the storage chamber. A slider that can slide along the guide rail is mounted on the guide rail. The slider integrates an axially retractable push rod. A push head is fixedly connected to the end of the push rod. The push head is made of flexible material, such as PU, which can effectively prevent damage to the archive bag when pushing it.
[0011] An intelligent document volume recognition and partitioned storage management device has a pusher head with two working states: a retracted position and an extended position. In the retracted position, the pusher head is completely housed within the slider cavity; in the extended position, the pusher head, together with a push rod, extends axially outward. After querying the target document bag information on a computer, staff can remotely control the access to the corresponding storage room. The computer controls the drive device based on pre-stored document bag information, including thickness 'd', causing the slider assembly to move along the guide rail to the positioning point behind the target document bag. After positioning, the pusher head extends towards the access door, pushing the target document bag outward a certain distance for quick identification and retrieval by staff.
[0012] An intelligent document volume recognition and partitioned storage management device is disclosed, wherein the push head is detachably mounted at the end of the push rod. The width L of the push head is designed to be less than the thickness of the thinnest document bag that the storage chamber can accommodate. If a special document bag with a thickness less than the current push head width L needs to be stored, a narrower adapter push head must be removed and replaced.
[0013] An intelligent document volume recognition and partitioned access management device includes a drive chamber adjacent to the storage chamber. The access door of the drive chamber is located on the rear panel of the intelligent document volume recognition and partitioned access management device. The drive chamber houses the drive unit and remains sealed during system operation; its access door is typically closed. The rear-facing arrangement of the drive chamber is designed to avoid spatial interference with the access door on the front of the storage unit.
[0014] An intelligent document volume recognition and partitioned storage management device includes a transmission channel between a drive chamber and an adjacent storage chamber. A drive motor is housed within the drive chamber. The output shaft of the drive motor is connected to a power transmission rod. The power transmission rod is driven by a slider within the storage chamber via the transmission channel. The drive motor is controlled by computer commands. Based on the identification information and thickness parameter 'd' of the target document bag, the computer precisely controls the movement and positioning of the power transmission rod-driven slider assembly, ensuring that the pusher can effectively eject the target document bag.
[0015] An intelligent archive volume recognition and partitioned storage management device is provided, with a status indicator light installed on the top of the outer side of each storage compartment's cabinet door. When the indicator light is green, it indicates that the storage door is fully closed and locked. When the indicator light is red, it indicates that the storage door is not fully closed or locked, requiring staff to conduct a safety check.
[0016] The advantages of this invention are as follows: By accurately identifying the thickness of the file folder through machine vision and establishing a physical dimension association with barcode information, it breaks through the problem of low space utilization in traditional fixed partition storage; Based on the real-time remaining capacity width, it dynamically allocates storage locations, realizing intelligent partition optimization and efficient volume management to adapt to thickness differences; At the same time, it integrates infrared posture detection, graphical location query and automatic push access functions, which significantly improves the accuracy and efficiency of file access and operation, forming a highly automated full-process intelligent management. Attached Figure Description
[0017] To more clearly illustrate the embodiments of the present invention or the technical solutions in 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 merely exemplary, and those skilled in the art can derive other embodiments based on the provided drawings without creative effort.
[0018] Figure 1 This is a schematic diagram of the overall device of the present invention; Figure 2 This is a schematic diagram of the storage chamber of the present invention; Figure 3 This is a front view of the console of the present invention; Figure 4This is a schematic diagram of the operation of the infrared sensor of the present invention; Figure 5 This is a schematic diagram of the device of the present invention from the rear. Figure 6 This is a top view of the storage chamber and drive chamber of the present invention; Figure 7 This is a front view of the overall device of the present invention; Figure 8 This is a schematic diagram of the file folder of the present invention; Figure 9 This is a schematic diagram of the extended position state of the present invention.
[0019] Figure descriptions: 1-Storage chamber; 1a-Detection surface; 2-Control console; 3-File folder; 11-Guide rail; 12-Slider; 13-Push rod; 14a-First infrared sensor; 14b-Second infrared sensor; 15-Drive chamber; 15a-Transmission channel; 16-Drive motor; 16a-Power transmission rod; 17-Push head; 21-Reading slot; 22-Camera; 23-Computer; 23a-Query module; 23b-Real-time inspection module; 24-Status indicator light; 31-Barcode; S11-Storage chamber 1, S13-Storage chamber 3, S15-Storage chamber 5, S17-Storage chamber 7. Detailed Implementation
[0020] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.
[0021] The concepts involved in this application will first be described with reference to the accompanying drawings. It should be noted that the following descriptions of various concepts are only for the purpose of making the content of this application easier to understand and do not constitute a limitation on the scope of protection of this application; furthermore, the embodiments and features in the embodiments of this application can be combined with each other unless otherwise specified. This application will now be described in detail with reference to the accompanying drawings and embodiments.
[0022] Example 1: See attached document Figure 1 Appendix Figure 3 Appendix Figure 8As shown, the specific implementation process of an intelligent document volume recognition and partitioned storage management device of the present invention is as follows: The system includes multiple storage chambers 1 with uniform internal volume dimensions and a control console 2 integrating a computer 23. During operation, the operator first places the standard-sized document bag 3 to be stored into the reading slot 21 of the control console 2. The camera 22 installed in the reading slot 21 immediately captures image information of the side of the document bag 3, including the barcode 31 affixed to its surface and the overall outline. This image data is transmitted to the computer 23 in real time. The machine vision analysis system built into the computer 23 first automatically identifies and parses the barcode 31 to obtain the unique identification information of the document bag 3; at the same time, the system performs precise analysis of the shape image of the document bag 3, and, particularly importantly, non-contactly measures the thickness d of the document bag 3. The computer 23 accurately associates and stores the identification information of the document bag 3 with its precisely measured thickness d, forming a core database.
[0023] See attached document Figure 4 As shown, the computer 23 then dynamically calculates and intelligently allocates the location of the storage room 1 that can best utilize the remaining space, based on the pre-stored standard dimensions of all storage rooms 1 and the real-time feedback of the remaining effective accommodating width of each storage room 1 (this value is obtained by the first infrared sensor 14a and the second infrared sensor 14b on the detection surface 1a of the storage room, and can also use the difference |bc| to trigger an alarm during placement to ensure that the file bag 3 is placed upright to accurately reflect the remaining space), combined with the current thickness d of the file bag 3.
[0024] See attached document Figure 1 Appendix Figure 3 Appendix Figure 5 Appendix Figure 6 Appendix Figure 9 As shown, after allocation, the access door of the target storage room 1 opens, and the staff places the file bag 3 in the designated position, ensuring the posture is correct before closing the door. The status indicator light 24 lights up green to indicate safe closure. When retrieval is needed, the staff can enter the file code in the query module 23a of the control panel 2. The system quickly retrieves the specific location information of the target file bag 3 and displays it intuitively through the real-time verification module 23b. The computer 23 issues a command, the door of the storage room 1 opens, and at the same time, the drive motor 16 in the drive chamber 15 drives the slider 12 to move precisely behind the target file bag 3 along the guide rail 11 through the power transmission rod 16a. After positioning, the pusher head 17 extends towards the access door, pushing the target file bag 3 slightly to an easily accessible position. If the file bag 3 is too thin (thickness d is less than the width L of the current pusher head 17), a narrower adapter pusher head 17 needs to be replaced in advance to ensure reliable pushing. This embodiment realizes automatic identification of file bag thickness and accurate calculation of space requirements, eliminates manual estimation errors and the space waste of traditional fixed partitions, and significantly improves management efficiency and accuracy through an automated storage and retrieval mechanism.
[0025] Example 2: This embodiment describes the implementation process of intelligent archive storage and retrieval with numbering and data.
[0026] See attached document Figure 1 Appendix Figure 2 As shown, attached Figure 3 Appendix Figure 4 Appendix Figure 5 Appendix Figure 6 Appendix Figure 9 As shown, this intelligent archive volume recognition and partitioned storage management device includes 16 storage chambers 1 with uniform internal volume and a control console 2 integrating a computer 23. The control console 2 is equipped with a reading slot 21, which houses a camera 22. A first infrared sensor 14a and a second infrared sensor 14b are respectively installed on the top and bottom of the detection surface 1a of the storage chamber 1. Each storage chamber 1 has a horizontal guide rail 11 on its side, on which a slider 12 is mounted. The slider 12 integrates an axially telescopic push rod 13 and a detachable push head 17 at its end. The storage chambers 1 are adjacent to each other as drive chambers 15, which are connected by a transmission channel 15a. The drive chamber 15 has a built-in drive motor 16, whose power transmission rod 16a drives the slider 12 through the transmission channel 15a. A status indicator light 24 is provided on the top of the cabinet door of each storage chamber 1. The computer 23 screen of the control console 2 integrates a query module 23a and a real-time verification module 23b.
[0027] Warehousing Implementation: See attached document Figure 3 Appendix Figure 6 Appendix Figure 7 Appendix Figure 8As shown, a staff member places a standard file folder 3 into the reading slot 21 of the control console 2. The camera 22 captures the image and transmits it to the computer 23. The computer 23's built-in machine vision system accurately identifies the barcode 31 affixed to its side and automatically, non-contactly measures the thickness of the file folder 3, d1 = 20.5 mm (accuracy ±0.5 mm), establishing a precise association between the barcode information and the thickness. Simultaneously, the computer 23 monitors in real-time the remaining effective capacity width (initial design width W0 = 300 mm) of the 16 storage compartments 1, calculating this value after ensuring the folder is placed upright (|bc| difference does not exceed the preset tolerance). Assuming the current state: storage compartment S13 has 30 mm remaining, storage compartment S11 has 280 mm remaining, and storage compartment S15 is completely empty (300 mm). Based on the thickness d1=20.5mm of the file bag 3 and the space utilization optimization algorithm, computer 23 intelligently allocates it to storage room S13 (after placement, the remaining width of storage room S13 becomes 9.5mm, which is better than allocating it to the empty storage room S15 (after placement, the remaining 279.5mm of space has low utilization). The door of S13 opens, and after the file bag 3 is placed inside, the first infrared sensor 14a and the second infrared sensor 14b confirm that it is placed correctly (the difference is within the tolerance). After the door closes, the status indicator light 24 turns green. Subsequently, another file bag 3 (thickness d2=38.2mm) is placed in the storage, and the system performs further adjustments based on the latest space. Analysis (S11 remaining 280mm > 38.2mm): Because storage compartment S13 cannot accommodate file bags of this thickness, and storage compartment S15 has too low space utilization, the file bag is finally allocated to storage compartment S11 (remaining 241.8mm after placement). This dynamically adapts to file bags of different thicknesses (ranging from 15mm to 60mm) and maximizes the overall space utilization of the 16 storage compartments (approximately 95%). Computer 23 will prioritize placing file bag 3 in storage compartment 1, which has a higher storage capacity. If storage compartment 1 does not have enough remaining capacity to accommodate file bag 3, it will choose storage compartment 1 with a lower storage capacity for storage.
[0028] Example 3: When staff need to retrieve file bag 3 with barcode number A, they first enter this number into the query module 23a of console 2. Computer 23 searches the internal database and confirms that file bag 3 is located in storage room S17. The database records that the thickness of file bag 3 is d=16mm and its order in storage room S17: it is the third file bag 3 stored from left to right in storage room S17. Simultaneously, the first infrared sensor 14a and the second infrared sensor 14b monitor and update the current remaining capacity width of the storage room in real time, which is 145mm.
[0029] Computer 23 immediately calculates the exact position of the target file folder 3 within storage chamber S17. It is known that the thicknesses of the two preceding file folders 3 are 30mm and 24mm respectively, and its own thickness is 16mm. The space occupied by the target file folder 3 begins at the position where the total thickness of the two preceding file folders 3 is 54mm, and ends at the position where 54mm + 16mm = 70mm is reached. For precise pushing, computer 23 sets the target positioning point of push head 17 as the center position of the file folder 3, i.e., (54mm + 16mm / )² = 62mm. Simultaneously, computer 23 queries and confirms that the width L of push head 17 installed in storage chamber S17 is 10mm (smaller than the 16mm thickness of file folder 3, making it suitable for use).
[0030] See attached document Figure 5 As shown, computer 23 immediately sends a command to drive motor 16 in drive chamber 15 serving storage chamber S17. Drive motor 16 drives slider assembly 12 in storage chamber S17 to move along horizontal guide rail 11 via precision-controlled power transmission rod 16a. Computer 23's control system has high precision (drive motor 16 step equivalent is 0.05mm / pulse), and calculates the precise number of pulses required by drive motor 16 based on the difference between the target position 62mm and the current initial position of slider 12 (ΔP=62mm): 62mm / (0.05mm / pulse) = 1240 pulses. Drive motor 16 receives the command and runs at a set speed (e.g., 500 pulses / second) for approximately 2.48 seconds, driving slider assembly 12 to a precise position 62mm ± 1mm from the starting point of guide rail 11.
[0031] After slider 12 is positioned, computer 23 immediately issues a second command: to control push rod 13 to extend axially. Push head 17, 10mm wide and fixed to the end of push rod 13, moves from its original retracted position inside slider 12, advancing its maximum stroke of 50mm towards the cabinet door of storage room S17. As push head 17 extends, its front end (at the 62mm position) contacts the back of file bag 3 (numbered A), which is 16mm thick. As push head 17 continues to extend 50mm, file bag 3 protrudes 50mm outward relative to its adjacent file bag 3, partially exposing itself in the open cabinet door area, allowing staff to easily and quickly identify and remove it. The entire positioning and extension process is completed efficiently, achieving automated retrieval based on precise thickness data.
[0032] It should also be noted that the terms "center," "upper," "lower," "left," "right," "vertical," "horizontal," "inner," and "outer," etc., indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings, and are 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. Unless otherwise expressly specified and limited, the terms "installed," "connected," "linked," etc., 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; they can refer to the internal communication between two elements. For those skilled in the art, the specific meaning of the above terms in this application can be understood according to the specific circumstances.
[0033] The embodiments and / or implementation methods described above are merely preferred embodiments and / or implementation methods for implementing the technology of the present invention, and are not intended to limit the implementation methods of the technology of the present invention in any way. Any person skilled in the art may make some modifications to other equivalent embodiments without departing from the scope of the technical means disclosed in the content of the present invention, but these should still be regarded as the technology or embodiments that are substantially the same as the present invention. This document uses specific examples to illustrate the principles and implementation methods of this application. The descriptions of the above embodiments are only for the purpose of helping to understand the methods and core ideas of this application. The above descriptions are only preferred embodiments of this application. It should be noted that due to the limitations of written expression, while there are objectively infinite specific structures, those skilled in the art can make several improvements, modifications, or changes without departing from the principles of this application, and can also combine the above technical features in an appropriate manner. These improvements, modifications, changes, or combinations, or the direct application of the inventive concept and technical solution to other situations without modification, should all be considered within the scope of protection of this application.
Claims
1. An intelligent file volume recognition and partitioned storage management device, comprising several storage chambers (1) and a control console (2), wherein the storage chambers (1) are used to store file bags (3), characterized in that: Each file bag (3) is pasted with a bar code (31) on the side, the control console (2) is integrated with a computer (23), and is provided with a reading slot (21) in which a camera (22) is arranged, image information collected by the camera (22) is transmitted to the computer (23), the computer (23) is built-in with a machine vision analysis system for automatically identifying the geometric parameters of the file bag shape and the bar code information.
2. The intelligent archive volume identification zoning access management device according to claim 1, characterized in that: The storage room (1) is provided with a detection surface (1a), the top center line of the detection surface (1a) is provided with a first infrared sensor (14a), and the bottom center line is provided with a second infrared sensor (14b).
3. The intelligent archive volume identification zoning access management device according to claim 2, characterized in that: The computer (23) is integrated with an alarm, the first infrared sensor (14a) is used for detecting the distance b between the top of the file bag (3) and the detection surface (1a), the second infrared sensor (14b) is used for detecting the distance c between the bottom of the file bag (3) and the detection surface (1a), and the detected data is fed back to the computer (23), when the absolute value of b-c is greater than a preset tolerance threshold, the alarm is activated.
4. The intelligent archive volume identification zoning access management device of claim 1, wherein: The screen of the computer (23) is provided with a query module (23a) and a real-time inspection module (23b), the query module (23a) supports searching the detailed information of the file bag (3) according to specified conditions, and the real-time inspection module (23b) is used for real-time display of the physical storage location information of the file bag (3).
5. The intelligent archive volume identification zoning access management device of claim 1, wherein: The rear of the storage room (1) is provided with a horizontal guide rail (11), the guide rail (11) is provided with a sliding block (12) which can slide horizontally along the rail, and the sliding block (12) is integrated with an axially retractable push rod (13), and the end of the push rod (13) is fixedly connected with a push head (17).
6. The intelligent archive volume identification zoning access management device according to claim 5, characterized in that: The push head (17) has two working states of retracted position and extended position: when in the retracted position, the push head (17) is completely accommodated in the cavity of the sliding block (12); when in the extended position, the push head (17) is extended outward along the axial direction together with the push rod (13).
7. The intelligent archive volume identification zoning access management device of claim 6, wherein: The push head (17) is detachably installed at the end of the push rod (13), and the width L of the push head (17) is designed to be smaller than the thickness of the thinnest file bag (3) that can be accommodated in the storage room (1).
8. The intelligent archive volume identification zoning access management device of claim 6, wherein: The adjacent compartment of the storage room (1) is a drive chamber (15), and the access door of the drive chamber (15) is arranged on the back panel of the intelligent file volume recognition and access management device.
9. The intelligent archive volume identification zoning access management device of claim 8, wherein: The drive chamber (15) and the adjacent storage room (1) are provided with a transmission channel (15a), the drive chamber (15) is provided with a drive motor (16), the output shaft of the drive motor (16) is connected with a power transmission rod (16a), and the power transmission rod (16a) is drivingly connected with the sliding block (12) in the storage room (1) through the transmission channel (15a).
10. The intelligent archive volume identification zoning access management device of claim 1, wherein: The state indicating lamp (24) is arranged on the outside top of the cabinet door of each storage room (1).
Citation Information
Patent Citations
RFID intelligent file cabinet capable of realizing millimeter-thickness file management
CN217137196U