Medical record safe storage device for biological information identification

By combining biometric identification technology and a transmission system, the security vulnerabilities and inconvenience of searching medical record storage devices have been solved, achieving efficient and secure storage and rapid location of medical records.

CN120977050AInactive Publication Date: 2025-11-18THE FOURTH HOSPITAL OF HEBEI MEDICAL UNIVERSITY (HEBEI CANCER HOSPITAL)
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Patent Information

Application Number
CN202510959300.0
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-07-11
Publication Date
2025-11-18
Estimated Expiration
Not applicable · inactive patent

AI Technical Summary

Technical Problem

Existing medical record security storage devices have security vulnerabilities, making it difficult to verify the operator's identity in real time, and the large number of medical records makes them inconvenient to find.

Method used

The system employs fingerprint recognition, iris scanner, and liveness detection sensor for multimodal biometric fusion verification, combined with servo motors and chain drive systems to achieve rapid location and secure storage of medical records.

Benefits of technology

It improves the security and retrieval efficiency of medical record storage, ensures that patient data is not illegally obtained, and facilitates quick location of the required medical records.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention relates to the technical field of medical record storage devices, and discloses a biological information recognition medical record safety storage device which comprises a medical record storage unit cabinet, the medical record storage unit cabinet comprises a box body, chain buckles are welded to the two sides of the box body, auxiliary wheels are rotationally connected to the two sides of the box body through shafts, and a sliding rail is fixedly connected to the top face of the box body; a cover plate assembly is slidably connected into the sliding rail, and the top end of the cover plate assembly is fixedly connected with a clamping plate through a bolt. According to the invention, a fingerprint identifier, an iris scanner, a living body detection sensor, a camera and the like are used for carrying out multi-modal biological feature fusion verification, and an encrypted data storage disk can be accessed only through dual biological authentication; acquired biological characteristic dynamic information is encrypted and stored in real time, the problem that a traditional identity verification mode is prone to being cracked, copied and shared is effectively avoided, the access authority is strictly controlled from the identity verification link, and the safety of medical record storage is greatly improved.
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Description

Technical Field

[0001] This invention relates to the field of medical record storage devices, specifically a biometric identification-based secure medical record storage device. Background Technology

[0002] Medical records are the sum of written materials, symbols, charts, images, slides, and other data generated by medical personnel during medical activities. They meticulously record the entire process of a patient's illness, including its onset, development, diagnosis, treatment, and outcome. As a crucial component of the medical information management system, secure medical record storage devices play a vital role in the safe and efficient preservation of various types of patient medical data, including medical records, examination reports, and imaging data.

[0003] In existing technologies, most medical record security storage devices still rely on traditional authentication methods, such as fixed passwords, magnetic cards, or IC cards. These technologies generally lack unique binding of the operator's biometric characteristics, leading to frequent security vulnerabilities. For example, passwords are easily cracked or shared, magnetic cards are at risk of being lost or copied, and access control relies solely on manual role assignment, failing to verify the operator's identity in real time. This deficiency makes it difficult for medical institutions to quickly identify the responsible party and take preventative measures when dealing with data breaches, severely restricting the reliability and compliance of the medical record security management system. Furthermore, the sheer volume of medical records after storage presents challenges in retrieval. Summary of the Invention

[0004] To address the shortcomings of existing technologies, this invention provides a biometric identification-based secure medical record storage device. This device incorporates biometric technology, which enhances the security of medical record storage and facilitates quick retrieval of necessary medical records by doctors, thus resolving the aforementioned technical problems.

[0005] To achieve the above objectives, the present invention provides the following technical solution: a biometric identification medical record secure storage device, comprising a medical record storage unit cabinet, the medical record storage unit cabinet comprising a box body, chain buckles welded to both sides of the box body, and auxiliary wheels rotatably connected to both sides of the box body via shafts, a slide rail fixedly connected to the top surface of the box body, a cover plate assembly slidably connected inside the slide rail, a retaining plate fixedly connected to the top of the cover plate assembly via bolts, a thin rope fixedly connected to the side of the retaining plate, a winding assembly wound around one end of the thin rope, pulleys bolted to the top surface of the box body, multiple partition plates fixedly connected to the inner wall of the box body, and limit clips installed at the bottom of the box body; The cabinet structure includes an outer shell, a support plate fixedly connected to the inner wall of the outer shell, a servo motor mounted on the outer surface of the support plate, a sprocket connected to the output shaft of the servo motor, a chain meshing with the sprocket, a sprocket meshing with the chain, a window opened on the front of the outer shell, and an annular guide rail fixedly connected to the inner side of the support plate. The operating unit includes an operating panel, a main unit, and indicator lights. The operating panel is mounted on the outer surface of the housing, the main unit is mounted on the inner side of the housing, and the indicator lights are mounted at the bottom of the window. The biometric unit includes a fingerprint reader, an iris scanner, a liveness detection sensor, and an encrypted data storage disk. The fingerprint reader is fixedly connected to the side of the operation panel, the iris scanner is fixedly connected to the top of the operation panel, and the liveness detection sensor and the encrypted data storage disk are integrated inside the host.

[0006] Preferably, the cover plate assembly includes a plurality of hinged transparent plates, wherein the lower surface of the bottom transparent plate is fixedly connected with a buckle, the top of the top transparent plate is fixedly connected with a locking plate by bolts, and small rotating wheels are rotatably connected to both sides of the transparent plates, the small rotating wheels slidingly contacting the inner side of the slide rail.

[0007] Preferably, the housing includes a rectangular slot extending through the top for passing through the cover assembly, and the housing also includes a through-hole extending through the bottom for engaging a snap-fit.

[0008] Preferably, the limiting device includes a fixing block, a limiting rod is slidably connected inside the fixing block, a wedge is fixedly connected to one end of the limiting rod, and a spring is sleeved on the outer surface of the limiting rod.

[0009] Preferably, the winding assembly includes two side plates, a rotating rod rotatably connected between the two side plates, a reel fixedly connected to one end of the rotating rod, a thin rope wound inside the reel, a torsion spring inserted inside the rotating rod, and one end of the torsion spring inserted into the inner side of the side plate.

[0010] Preferably, the chain buckle is used to connect the box and the chain, the auxiliary wheel slides in contact with the inner wall of the annular guide rail, and the box has multiple auxiliary wheels arranged around the annular guide rail.

[0011] Preferably, the inner wall of the box is provided with multiple partitions at equal intervals, which divide the internal space of the box into several medical record storage areas. The number of medical record storage areas is equal to the number of indicator lights, and each indicator light corresponds to one medical record storage area. The servo motor is communicatively connected to the host computer and is used to receive the drive command after the biometric unit has been verified. It drives the target box to move along the circular guide rail to the window position through the linkage of sprocket one, chain and sprocket two.

[0012] Preferably, the liveness detection sensor and the encrypted data storage disk are linked through the encryption chip of the host computer. The biometric dynamic information collected by the liveness detection sensor is encrypted in real time and stored on the encrypted data storage disk. The encrypted data storage disk can only be accessed after dual biometric authentication.

[0013] Preferably, the outer surface of the operation panel integrates a touch screen display for displaying the biometric identification progress and the real-time location information of the medical record storage unit cabinet, and the touch screen display is communicatively connected to the host computer.

[0014] Preferably, a camera and a fill light are integrated on the outer surface of the operation panel. The camera is communicatively connected to the host and is used to collect facial biometric data and perform multimodal authentication with the biometric unit.

[0015] Compared with the prior art, the present invention provides a biometric identification-based secure medical record storage device, which has the following beneficial effects: 1. This invention utilizes fingerprint recognition, iris scanner, liveness detection sensor, and camera for multimodal biometric fusion verification. Access to the encrypted data storage disk is only granted through dual biometric authentication. The collected biometric dynamic information is encrypted and stored in real time, effectively avoiding the problems of traditional identity verification methods (such as fixed passwords, magnetic cards, etc.) being easily cracked, copied, and shared. By strictly controlling access permissions at the identity verification stage, the security of medical record storage is greatly improved, ensuring that patient medical data is not illegally obtained or leaked.

[0016] 2. This invention features multiple partitions inside the cabinet, dividing its space into several medical record storage areas, each corresponding to an indicator light. When the target cabinet moves to the window position, the host computer controls the corresponding indicator light to illuminate based on the retrieval information. It can also display a real-time location distribution map on a touch screen. Combined with a transmission system consisting of a servo motor, sprockets, and chains, the target cabinet can be quickly driven to the designated location, facilitating precise positioning for users and significantly improving the efficiency of finding medical records. This solves the problem of traditional storage devices having a large number of medical records and being inconvenient to find. Attached Figure Description

[0017] Figure 1 This is a perspective view of the present invention; Figure 2 This is a three-dimensional schematic diagram of the medical record storage unit cabinet in this invention; Figure 3 This is a perspective view of the box and other components in this invention; Figure 4 This is a side view of the box and other components in this invention; Figure 5 For the present invention Figure 4 A magnified view of part A in the diagram; Figure 6 This is an exploded perspective view of the winding assembly in this invention; Figure 7 This is a partial perspective view of the cover plate assembly in this invention; Figure 8 This is a perspective view of the operating unit in this invention; Figure 9 This is a logic block diagram of the biometric identification unit and the operation unit.

[0018] The components are as follows: 101. Box body; 102. Chain buckle; 103. Auxiliary wheel; 104. Slide rail; 105. Cover plate assembly; 1051. Transparent plate; 1052. Snap buckle; 1053. Small rotating wheel; 106. Card plate; 107. Thin rope; 108. Rewinding assembly; 1081. Side plate; 1082. Rotating rod; 1083. Reel; 1084. Torsion spring; 109. Pulley; 110. Divider plate; 111. Limiting clip; 1110. Fixing block; 1111. Limiting rod; 1112, Wedge; 1113, Spring; 201, Outer shell; 202, Support plate; 203, Servo motor; 204, Sprocket 1; 205, Chain; 206, Sprocket 2; 207, Window; 208, Circular guide rail; 301, Operation panel; 302, Main unit; 303, Indicator light; 304, Camera; 305, Fill light; 401, Fingerprint reader; 402, Iris scanner; 403, Liveness detection sensor; 404, Encrypted data storage disk. Detailed Implementation

[0019] 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.

[0020] Please see Figures 1-7The present invention provides a biometric identification medical record security storage device, including a medical record storage unit cabinet, the medical record storage unit cabinet including a box body 101, chain buckles 102 welded on both sides of the box body 101, and auxiliary wheels 103 rotatably connected to both sides of the box body 101 via shafts, a slide rail 104 fixedly connected to the top surface of the box body 101, a cover plate assembly 105 slidably connected inside the slide rail 104, a clamping plate 106 fixedly connected to the top of the cover plate assembly 105 by bolts, a thin rope 107 fixedly connected to the side of the clamping plate 106, a winding assembly 108 wound around one end of the thin rope 107, a pulley 109 fixedly connected to the top surface of the box body 101 by bolts, a plurality of partition plates 110 fixedly connected to the inner wall of the box body 101, and a limit clip 111 installed at the bottom of the box body 101; For details regarding the cabinet structure, please refer to [link / reference]. Figures 1-2 The cabinet structure includes an outer shell 201, a support plate 202 fixedly connected to the inner wall of the outer shell 201, a servo motor 203 mounted on the outer surface of the support plate 202, a sprocket 204 connected to the output shaft of the servo motor 203, a chain 205 meshing with the sprocket 204, a sprocket 206 meshing with the chain 205, a window 207 opened on the front of the outer shell 201, and an annular guide rail 208 fixedly connected to the inner side of the support plate 202. For details on the specific structure of the operating unit, please refer to [link / reference]. Figures 8-9 The operation unit includes an operation panel 301, a main unit 302, and an indicator light 303. The operation panel 301 is installed on the outer surface of the housing 201, the main unit 302 is installed on the inner side of the housing 201, and the indicator light 303 is installed at the bottom of the window 207. For details on the specific structure of the biometric unit, please refer to [link / reference]. Figures 8-9 The biometric unit includes a fingerprint reader 401, an iris scanner 402, a liveness detection sensor 403, and an encrypted data storage disk 404. The fingerprint reader 401 is fixedly connected to the side of the operation panel 301, the iris scanner 402 is fixedly connected to the top of the operation panel 301, and the liveness detection sensor 403 and the encrypted data storage disk 404 are integrated inside the host 302.

[0021] Furthermore, the cover plate assembly 105 includes a plurality of hinged transparent plates 1051, wherein the lower surface of the bottom transparent plate 1051 is fixedly connected to a buckle 1052, and the top of the top transparent plate 1051 is fixedly connected to a clamping plate 106 by bolts. Small rotating wheels 1053 are rotatably connected to both sides of the transparent plate 1051, and the small rotating wheels 1053 slide in contact with the inner side of the slide rail 104.

[0022] Furthermore, the housing 101 includes a rectangular slot extending through the top for passing through the cover assembly 105, and the housing 101 also includes a through-hole extending through the bottom for engaging the snap fastener 1052.

[0023] Furthermore, the limiting clip 111 includes a fixing block 1110, a limiting rod 1111 is slidably connected inside the fixing block 1110, a wedge block 1112 is fixedly connected to one end of the limiting rod 1111, and a spring 1113 is sleeved on the outer surface of the limiting rod 1111.

[0024] Furthermore, the winding assembly 108 includes two side plates 1081, a rotating rod 1082 rotatably connected between the two side plates 1081, a reel 1083 fixedly connected to one end of the rotating rod 1082, a thin rope 107 wound inside the reel 1083, and a torsion spring 1084 inserted inside the rotating rod 1082, one end of the torsion spring 1084 being inserted into the inner side of the side plate 1081.

[0025] When the cabinet 101 of a specific set of medical record storage units required by the user moves to the position of window 207, the user's finger touches the outer surface of the cover assembly 105 near the bottom and then presses the transparent panel 1051 inward. At this time, the buckle 1052 at the bottom of the transparent panel 1051 abuts against the wedge block 1112, and the wedge block 1112 compresses the spring 1113. At this time, the insertion hole at the bottom of the cabinet 101 no longer limits the buckle 1052. Since the thin rope 107, together with the locking plate 106, pulls the entire cover assembly 105, and the thin rope 107 is wound on the reel 1083, while the torsion spring 1084 stores force to reel in the rotating rod 1082, the rotating rod 1082 drives the reel 1083 to rotate, and the reel 1083 reels in the thin rope 107. The thin rope 107 pulls multiple sets of transparent panels 1051 upward. During this process, the small rotating wheel 1053 slides in the slide rail 104. Guided by the slide rail 104, the cover assembly 105 can be moved away from the front of the box 101, thus opening the box 101 and allowing the user to retrieve or store medical records from the medical record storage area inside the box 101. When it is necessary to close the cover assembly 105 on the front of the box 101, a transparent plate 1051 at the bottom of the cover assembly 105 is pulled downwards, causing the buckle 1052 at the bottom of the transparent plate 1051 to re-insert into the socket at the bottom of the box 101. The spring 1113 drives the wedge 1112 to abut against the buckle 1052, causing the buckle 1052 to lock into the socket at the bottom of the box 101. In this way, the entire cover assembly 105 covers the front of the box 101, thus preventing dust from entering the interior of the box 101 and avoiding the problem of the medical records falling out when the front of the box 101 is open during movement.

[0026] Furthermore, the chain buckle 102 is used to connect the housing 101 and the chain 205, and the auxiliary wheel 103 slides in contact with the inner wall of the annular guide rail 208. The housing 101 has multiple rings arranged around the annular guide rail 208.

[0027] Furthermore, multiple partitions 110 are evenly spaced on the inner wall of the housing 101, dividing the internal space of the housing 101 into several medical record storage areas. The number of medical record storage areas is equal to the number of indicator lights 303, and each indicator light 303 corresponds to one medical record storage area. The servo motor 203 is communicatively connected to the host 302 to receive the drive command after the biometric unit verification is successful. It drives the target housing 101 to move along the annular guide rail 208 to the window 207 position through the linkage of sprocket 1 204, chain 205 and sprocket 2 206.

[0028] By connecting multiple partitions 110 at equal intervals on the inner wall of the cabinet 101, the internal space of the cabinet 101 is divided into several medical record storage areas, which facilitates the classification and storage of medical records. When a group of cabinets 101 moves to the position of window 207, multiple indicator lights 303 correspond to multiple medical record storage areas inside the cabinet 101. When the user completes biometric verification through the fingerprint reader 401, iris scanner 402, or camera 304 on the operation panel 301, the host 302 receives the verification pass signal and confirms the authenticity of the operator's identity through the encryption chip and the liveness detection sensor 403. Subsequently, the host 302 sends a drive command to the servo motor 203. 03. Through the transmission of sprocket 1 204, chain 205 and sprocket 2 206, the cabinet 101 of the target medical record storage unit is driven to move along the circular guide rail 208 to the window 207 position. Since each cabinet 101 is divided into multiple medical record storage areas by partition 110, and each area corresponds to an indicator light 303, when the target cabinet 101 reaches the window 207, the host 302 controls the corresponding indicator light 303 to switch to a solid green light according to the medical record location information retrieved by the user, intuitively indicating the target medical record storage area. If there is a need for multiple areas, a real-time location distribution map is displayed on the touch screen to assist the user in quickly locating the corresponding medical record.

[0029] Furthermore, the liveness detection sensor 403 and the encrypted data storage disk 404 achieve data linkage through the encryption chip of the host 302. The biometric dynamic information collected by the liveness detection sensor 403 is encrypted in real time and stored in the encrypted data storage disk 404. The encrypted data storage disk 404 can only be accessed after dual biometric authentication.

[0030] Furthermore, the outer surface of the operation panel 301 integrates a touch screen display for displaying the biometric recognition progress and the real-time location information of the target box 101, and the touch screen display is communicatively connected to the host 302.

[0031] Furthermore, a camera 304 and a fill light 305 are integrated and installed on the outer surface of the operation panel 301. The camera 304 is communicatively connected to the host 302 and is used to collect facial biometric data and perform multimodal authentication with the biometric unit.

[0032] When a user performs biometric authentication on the operation panel 301, fingerprint features are first collected by the fingerprint reader 401 or iris data is obtained by the iris scanner 402. Simultaneously, the liveness detection sensor 403 monitors the dynamic changes in biometric features in real time (such as blood flow and pupil contraction) to eliminate the possibility of forged features. The camera 304, assisted by the supplementary light 305, simultaneously captures the user's facial image, achieving multimodal biometric fusion verification. All biometric data is encrypted in real time by the encryption chip of the host 302 and compared with the pre-stored authorized template in the encrypted data storage disk 404. Upon successful verification, the host 302 triggers the servo motor 203 to move the target cabinet 101 to the window 207, and displays the biometric recognition progress and cabinet location information on the touch screen. Simultaneously, the corresponding indicator light 303 illuminates to indicate the specific storage area. Throughout this process, the liveness detection sensor 403 continuously monitors the authenticity of the biometric features, and the encrypted data storage disk 404 only allows access via dual biometric authentication (such as fingerprint + iris), ensuring the dynamism of the authentication process and the security of data storage.

[0033] In use, the user first approaches the control panel 301, places their finger on the fingerprint reader 401 to collect fingerprint features, or faces their eyes towards the iris scanner 402 to acquire iris data. Simultaneously, the camera 304 on the control panel 301, aided by the supplementary light 305, captures facial images, and the liveness detection sensor 403 monitors the dynamic changes in biometrics in real time. These biometric data are encrypted by the encryption chip of the host 302 and compared with the authorized template pre-stored in the encrypted data storage disk 404. After successful verification, the host 302 sends a drive command to the servo motor 203, which drives the first sprocket 204 to rotate. Through the engagement of the chain 205 and the second sprocket 206, the cabinet 101 of the target medical record storage unit connected to the chain buckle 102 is driven to move along the circular guide rail 208 to the window 207 position. At this time, the indicator light 303 corresponding to the medical record storage area inside the cabinet 101 lights up. The user can also use the touch screen integrated on the outer surface of the control panel 301. The user displays the real-time location information of the medical record storage unit cabinet on the control screen; then, the user presses the transparent plate 1051 inward near the bottom of the outer surface of the cover assembly 105 with their finger. The buckle 1052 abuts against the wedge block 1112, compressing the spring 1113. The bottom insertion hole of the cabinet 101 is no longer limited by the buckle 1052. The torsion spring 1084 of the winding assembly 108 stores the winding rod 1082, driving the reel 1083 to rotate and wind up the thin rope 107, pulling the transparent plate 1051 upward. The wheel 1053 slides within the slide rail 104, causing the cover assembly 105 to move away from the front of the box 101. The user can then access the medical records from the medical record storage area divided by the partition plate 110 inside the box 101. After accessing the medical records, the transparent plate 1051 at the bottom of the cover assembly 105 is pulled to move it downwards. The buckle 1052 is then reinserted into the bottom socket of the box 101. The spring 1113 drives the wedge block 1112 to abut against the buckle 1052 and fix it in place. The cover assembly 105 then covers the front of the box 101.

[0034] Although embodiments of the invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the invention, the scope of which is defined by the appended claims and their equivalents.

Claims

1. A biometric identification-based secure storage device for medical records, characterized in that: include, A medical record storage unit cabinet includes a cabinet (101), with chain buckles (102) welded to both sides of the cabinet (101), and auxiliary wheels (103) rotatably connected to both sides of the cabinet (101) via shafts. A slide rail (104) is fixedly connected to the top surface of the cabinet (101), and a cover plate assembly (105) is slidably connected inside the slide rail (104). A clamping plate (106) is fixedly connected to the top of the cover plate assembly (105) via bolts, and a thin rope (107) is fixedly connected to the side of the clamping plate (106). A winding assembly (108) is wound around one end of the thin rope (107). A pulley (109) is bolted to the top surface of the cabinet (101), and multiple partition plates (110) are fixedly connected to the inner wall of the cabinet (101). A limit clamp (111) is installed at the bottom of the cabinet (101). The cabinet structure includes an outer shell (201), a support plate (202) fixedly connected to the inner wall of the outer shell (201), a servo motor (203) mounted on the outer surface of the support plate (202), a sprocket (204) connected to the output shaft of the servo motor (203), a chain (205) meshing with the sprocket (205), a sprocket (206) meshing with the chain (205), a window (207) opened on the front of the outer shell (201), and an annular guide rail (208) fixedly connected to the inner side of the support plate (202). The operation unit includes an operation panel (301), a main unit (302), and an indicator light (303). The operation panel (301) is installed on the outer surface of the outer casing (201), the main unit (302) is installed on the inner side of the outer casing (201), and the indicator light (303) is installed at the bottom of the window (207). The biometric unit includes a fingerprint reader (401), an iris scanner (402), a liveness detection sensor (403), and an encrypted data storage disk (404). The fingerprint reader (401) is fixedly connected to the side of the operation panel (301), the iris scanner (402) is fixedly connected to the top of the operation panel (301), and the liveness detection sensor (403) and the encrypted data storage disk (404) are integrated inside the host (302).

2. The biometric identification-based secure medical record storage device according to claim 1, characterized in that: The cover plate assembly (105) includes a plurality of hinged transparent plates (1051), wherein the lower surface of the bottom transparent plate (1051) is fixedly connected with a buckle (1052), and the top of the top transparent plate (1051) is fixedly connected with a clamping plate (106) by bolts. Small rotating wheels (1053) are rotatably connected to both sides of the transparent plate (1051), and the small rotating wheels (1053) slide in contact with the inner side of the slide rail (104).

3. The biometric identification-based secure medical record storage device according to claim 2, characterized in that: The housing (101) includes a rectangular slot extending through the top for passing through the cover assembly (105), and the housing (101) also includes a through-hole extending through the bottom for engaging a snap fastener (1052).

4. The biometric identification-based secure medical record storage device according to claim 1, characterized in that: The limiting clip (111) includes a fixing block (1110), a limiting rod (1111) is slidably connected inside the fixing block (1110), a wedge (1112) is fixedly connected to one end of the limiting rod (1111), and a spring (1113) is sleeved on the outer surface of the limiting rod (1111).

5. A biometric identification-based secure medical record storage device according to claim 1, characterized in that: The winding assembly (108) includes two side plates (1081), and a rotating rod (1082) is rotatably connected between the two side plates (1081). One end of the rotating rod (1082) is fixedly connected to a reel (1083). A thin rope (107) is wound inside the reel (1083). A torsion spring (1084) is inserted inside the rotating rod (1082), and one end of the torsion spring (1084) is inserted into the inside of the side plate (1081).

6. A biometric identification-based secure medical record storage device according to claim 1, characterized in that: The chain buckle (102) is used to connect the box (101) and the chain (205). The auxiliary wheel (103) slides in contact with the inner wall of the annular guide rail (208). Multiple medical record storage units are arranged around the annular guide rail (208).

7. A biometric identification-based secure medical record storage device according to claim 1, characterized in that: The inner wall of the box (101) is provided with multiple partitions (110) at equal intervals. The multiple partitions (110) divide the internal space of the box (101) into several medical record storage areas. The number of medical record storage areas is equal to the number of indicator lights (303), and each indicator light (303) corresponds to one medical record storage area. The servo motor (203) is connected to the host (302) for receiving the drive command after the biometric unit verification is passed. It drives the target box (101) to move along the circular guide rail (208) to the window (207) position through the linkage of sprocket one (204), chain (205) and sprocket two (206).

8. A biometric identification-based secure medical record storage device according to claim 1, characterized in that: The liveness detection sensor (403) and the encrypted data storage disk (404) are linked through the encryption chip of the host (302). The biometric dynamic information collected by the liveness detection sensor (403) is encrypted in real time and stored in the encrypted data storage disk (404). The encrypted data storage disk (404) can only be accessed after dual biometric authentication.

9. A biometric identification-based secure medical record storage device according to claim 1, characterized in that: The outer surface of the operation panel (301) is integrated with a touch screen for displaying the biometric recognition progress and the real-time location information of the box (101), and the touch screen is communicatively connected to the host (302).

10. A biometric identification-based secure medical record storage device according to claim 1, characterized in that: The outer surface of the operation panel (301) is integrated with a camera (304) and a fill light (305). The camera (304) is connected to the host (302) for collecting facial biometric data and performing multimodal authentication with the biometric unit.