A card storage device

CN224811838UActive Publication Date: 2026-09-29HUBEI YOUYI TECHNOLOGY CO LTD
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Patent Information

Application Number
CN202522020006.1
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-09-19
Publication Date
2026-09-29
Estimated Expiration
2035-09-19

AI Technical Summary

Technical Problem

[0004]上述方案中采用抽屉式结构,需手动抽拉置卡抽屉并操作执行件顶出卡片,操作效率低且易导致卡片错位;并竖直插装卡片方式空间利用率低,且缺乏分类管理;易出现卡顿或顶出失败问题,降低了卡片存取的效率与准确性

Benefits of technology

(1) 通过设置的读卡传送机构读取卡片识别信息,并将卡片传送至垂直传送机构,垂直传送机构使卡片沿竖直方向移动,充分利用了壳体的立体空间,提高了空间的利用率,末端传送机构和存储机构配合可根据卡片的不同类型,准确地将卡片传送至目标存储槽,便于分类存储与管理,提高了卡片存储的效果;

✦ Generated by Eureka AI based on patent content.

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    Figure CN224811838U_ABST
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Abstract

The utility model provides a card storage device, including casing, card reading transmission mechanism, vertical transmission mechanism, end transmission mechanism and storage mechanism, card reading transmission mechanism sets up on the casing, is used for with card to the side of vertical transmission mechanism transmission, vertical transmission mechanism sets up on the casing, is used for receiving the card that card reading transmission mechanism transmits, removes along the vertical direction of casing with card and is transmitted to the side of end transmission mechanism, storage mechanism sets up on the casing, is equipped with a plurality of storage groove that presents annular distribution on the storage mechanism, and a plurality of storage groove rotates along the center point of storage mechanism's circumference, end transmission mechanism sets up on the casing, is used for receiving the card that vertical transmission mechanism transmits, removes along the radial direction of storage mechanism with card and transmits to the corresponding storage groove, the device through each mechanism cooperation realizes to the access of card, and has improved space utilization, and it is convenient for management a large number of cards to improve the access effect of card.
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Description

Technical Field

[0001] This utility model relates to the field of card storage technology, and in particular to a card storage device. Background Technology

[0002] In daily life, we often use various cards, such as bank cards, credit cards, and IoT device cards. These cards need to be stored and managed before they are issued to users, so card storage devices are often used.

[0003] A portable card storage device with publication number CN221368340U includes a base plate, a storage box on the base plate, a box cover adapted to the storage box magnetically fixed on the base plate, multiple card drawers slidably inserted into the side wall of the storage box, multiple cards vertically inserted into the card drawers, multiple rows of card retrieval slots matching the number of card drawers at the top of the storage box, an actuator for pushing the top of the card out of the card retrieval slots inside the card drawers, and a drive unit adapted to the actuator slidably installed at the top of the storage box.

[0004] The above solution uses a drawer-type structure, which requires manually pulling out the card drawer and operating the actuator to push out the card. This is inefficient and can easily lead to card misalignment. Furthermore, the vertical card insertion method has low space utilization and lacks classified management. It is also prone to jamming or failure to push out the card, which reduces the efficiency and accuracy of card storage and retrieval. Utility Model Content

[0005] In view of this, the present invention proposes a card storage device that achieves card storage and retrieval through the coordinated operation of various mechanisms, improves space utilization, and facilitates the management of a large number of cards, thereby enhancing the card storage and retrieval effect.

[0006] The technical solution of this utility model is implemented as follows: This utility model provides a card storage device, including a housing, a card reading and transmission mechanism, a vertical transmission mechanism, a terminal transmission mechanism, and a storage mechanism, wherein, The card reader and delivery mechanism is mounted on the housing. The card reader and delivery mechanism is used to insert a card, read the card's identification information, and deliver the card toward the vertical delivery mechanism. The vertical transmission mechanism is mounted on the housing and located on the output side of the card reader transmission mechanism. The vertical transmission mechanism is used to receive the card transmitted by the card reader transmission mechanism, move the card along the vertical direction of the housing, and transmit it towards the end transmission mechanism. The storage mechanism is mounted on the housing and located on one side of the vertical conveying mechanism. The storage mechanism has several storage slots arranged in a ring, and these storage slots rotate circumferentially around the center point of the storage mechanism. The end-of-line conveying mechanism is mounted on the housing, and its output end is located adjacent to the storage slot. It is used to receive the cards conveyed by the vertical conveying mechanism, move the cards along the radial direction of the storage mechanism, and convey them to the corresponding storage slot.

[0007] Based on the above technical solutions, preferably, the card reading and transmission mechanism includes a first horizontal conveyor belt, a card insert, and a card reader. The first horizontal conveyor belt is horizontally mounted on the housing. The card insert is located on one side of the input end of the first horizontal conveyor belt and is used to insert a card. The card reader is located inside the card insert and is used to read the card's identification information. The first horizontal conveyor belt transmits the card toward the vertical transmission mechanism.

[0008] Based on the above technical solutions, preferably, the vertical conveying mechanism includes a first moving component and a second horizontal conveyor belt, wherein... The first moving component is vertically mounted on the housing and is located on the side of the first horizontal conveyor belt away from the insert. The first moving component has a movable end that can move linearly along the vertical direction of the housing. The second horizontal conveyor belt is disposed on the active end of the first moving component, and the center horizontal line of the second horizontal conveyor belt is on the same straight line as the center horizontal line of the first horizontal conveyor belt. The second horizontal conveyor belt is used to receive the cards conveyed by the first horizontal conveyor belt and convey the cards toward the end conveyor mechanism.

[0009] Based on the above technical solutions, preferably, the end-conveying mechanism includes a second moving component, a rotating component, and a third horizontal conveyor belt, wherein, The second moving component is horizontally disposed on the housing and located on the side of the vertical transmission mechanism close to the card reader transmission mechanism. The second moving component has a moving end that can move linearly along the radial direction of the storage mechanism. The rotating component is disposed on the moving end of the second moving component, and the rotating component has a rotating end that rotates circumferentially; The third horizontal conveyor belt is set on the rotating end of the rotating component, and the third horizontal conveyor belt is positioned corresponding to the second horizontal conveyor belt. It is used to receive the cards conveyed by the second horizontal conveyor belt and rotate the angle to convey the cards to the corresponding storage slots.

[0010] Based on the above technical solutions, preferably, when the conveying direction of the third horizontal conveyor belt is parallel to that of the second horizontal conveyor belt, the center lines of the third horizontal conveyor belt and the second horizontal conveyor belt are on the same straight line; when the conveying direction of the third horizontal conveyor belt is perpendicular to that of the second horizontal conveyor belt, the output end of the third horizontal conveyor belt is on the same straight line as the center line of the corresponding storage tank.

[0011] Based on the above technical solutions, preferably, both the first moving component and the second moving component include a mounting plate, at least two transmission wheels, a belt, a guide rail, a slider, and a first driving component, wherein, The mounting plate of the first movable component is vertically mounted on the housing, and the mounting plate of the second movable component is parallel to the housing. At least two drive wheels are rotatably mounted on the same side of the mounting plate, and are spaced apart and on the same straight line; The belt drive is connected to the outside of at least two drive pulleys; The guide rail is fixed to the mounting plate and is parallel to the direction of the belt drive; The slider is slidably connected to the guide rail, and the slider is fixed to the outside of the belt; The first drive component is fixed on the mounting plate, and the output shaft of the first drive component is fixedly connected to the shaft of one of the transmission wheels; The first driving component drives the transmission wheel and belt to move the slider linearly on the guide rail.

[0012] Based on the above technical solutions, preferably, the storage mechanism includes a support member, a wheel, teeth, gears, and a second driving member. The support components are fixedly mounted on the housing; The wheel is rotatably connected to the inner side of the support, and several storage slots are opened on the wheel, and the several storage slots are evenly distributed in a ring around the center point of the wheel. The teeth are arranged around the inside of the wheel; The second driving component is fixed inside the housing, and the gear is fixed on the output shaft of the second driving component, and the gear meshes with the toothed gear. The second driving component drives the gear to rotate the meshing disc.

[0013] Based on the above technical solutions, preferably, the wheel has multiple annular cavities spaced apart along its radial direction, and each annular cavity is provided with several partitions spaced apart in annular order, with a storage slot formed between two adjacent partitions.

[0014] Based on the above technical solutions, preferably, the width of the multiple annular cavities in the radial direction increases sequentially along the side away from the axis, and the size of the storage slot matches the corresponding card size.

[0015] Based on the above technical solutions, preferably, the storage mechanism further includes multiple pushing members and fixing members. The multiple pushing members are disposed in each storage slot, and the telescopic end of the pushing member can move linearly toward the third horizontal conveyor belt. The fixing member is fixed on the telescopic end of the pushing member and abuts against the inner wall of the storage slot and the end face of the card. The pushing member pushes the fixing member to move the card to the third horizontal conveyor belt for reverse extraction.

[0016] The card storage device of this invention has the following advantages over the prior art: (1) The card identification information is read by the card reading and transmission mechanism and the card is transmitted to the vertical transmission mechanism. The vertical transmission mechanism makes the card move in the vertical direction, making full use of the three-dimensional space of the shell and improving the space utilization rate. The end transmission mechanism and the storage mechanism work together to accurately transmit the card to the target storage slot according to the different types of cards, which facilitates classification, storage and management and improves the card storage effect. (2) Multiple annular cavities with progressively increasing widths along the side away from the axis are provided radially through the storage mechanism to form storage slots of different sizes, which can accommodate cards of various sizes, improve versatility and reduce costs; the storage slots match the card size, can accurately position and stably store cards, and do not shift or fall off when the wheel rotates; and facilitates accurate docking and card retrieval by the end-of-line conveying mechanism, reducing errors and failures, and improving the working efficiency and reliability of the device. Attached Figure Description

[0017] To more clearly illustrate the technical solutions in the embodiments of this utility model or the prior art, the drawings used in the description of the embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are only some embodiments of this utility model. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.

[0018] Figure 1 This is a perspective view of the card storage device of this utility model; Figure 2 This is a perspective view of the interior of the card storage device of this utility model; Figure 3 This is a left view of the card storage device of this utility model; Figure 4 This is a right view of the card storage device of this utility model; Figure 5 This is another perspective view of the card storage device of this utility model; Figure 6 This is a front view of the wheel of the card storage device of this utility model; Figure 7 This is a cross-sectional view of the storage slot of the card storage device of this utility model. Detailed Implementation

[0019] The technical solutions of this utility model will be clearly and completely described below with reference to the embodiments of this utility model. Obviously, the described embodiments are only a part of the embodiments of this utility model, and not all of them. Based on the embodiments of this utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of this utility model.

[0020] like Figure 1-7 As shown, this utility model discloses a card storage device, comprising a housing 1, a card reading and conveying mechanism 2, a vertical conveying mechanism 3, a terminal conveying mechanism 4, and a storage mechanism 5. The card reading and conveying mechanism 2 is mounted on the housing 1 and is used to insert a card, read its identification information, and convey the card towards the vertical conveying mechanism 3. The vertical conveying mechanism 3 is mounted on the housing 1 and located on one side of the output end of the card reading and conveying mechanism 2. It receives the card from the card reading and conveying mechanism 2, moves the card vertically along the housing 1, and conveys it towards the terminal conveying mechanism 4. The storage mechanism 5 is mounted on the housing 1 and located on one side of the vertical conveying mechanism 3. It has several storage slots 500 arranged in a ring, and these slots 500 rotate circumferentially around the center point of the storage mechanism 5. The terminal conveying mechanism 4 is mounted on the housing 1, with its output end adjacent to the storage slots 500. It receives the card from the vertical conveying mechanism 3, moves the card radially along the storage mechanism 5, and conveys it into the corresponding storage slot 500.

[0021] It should be noted that the card reading and transmission mechanism 2 is installed on the housing 1. When a card is inserted, the card reading and transmission mechanism 2 reads the card's identification information and then transmits the card toward the vertical transmission mechanism 3. After receiving the card, the vertical transmission mechanism 3 moves the card along the vertical direction of the housing 1 and transmits it toward the end transmission mechanism 4. Several storage slots 500 arranged in a ring on the storage mechanism 5 can rotate circumferentially around the center point of the storage mechanism 5. The output end of the end transmission mechanism 4 is adjacent to the storage slot 500. After receiving the card transmitted by the vertical transmission mechanism 3, the end transmission mechanism 4 moves the card along the radial direction of the storage mechanism 5. When the corresponding storage slot 500 rotates to the position corresponding to the end transmission mechanism 4, the end transmission mechanism 4 transmits the card into the corresponding storage slot 500, completing the card storage.

[0022] In this embodiment, the card reader and transmission mechanism 2 can quickly read card identification information and rapidly transmit the card to the subsequent mechanism, reducing card processing time, improving overall work efficiency, and eliminating the need for users to wait for extended periods. Furthermore, the vertical transmission mechanism 3 moves the card vertically, making full use of the three-dimensional space of the housing 1, making the device more compact and improving space utilization. Simultaneously, through the circumferentially rotating storage slot 500 of the end transmission mechanism 4 and storage mechanism 5, cards can be accurately transmitted to the appropriate storage slot 500 according to different card types or identification information, facilitating classified storage and management, and effectively improving the efficiency and accuracy of card storage.

[0023] In this embodiment, the card reading and conveying mechanism 2 includes a first horizontal conveyor belt 21, a card insert 22, and a card reader 23. The first horizontal conveyor belt 21 is horizontally arranged on the housing 1. The card insert 22 is arranged on one side of the input end of the first horizontal conveyor belt 21 and is used to insert a card. The card reader 23 is arranged inside the card insert 22 and is used to read the card's identification information. The first horizontal conveyor belt 21 conveys the card toward the vertical conveying mechanism 3.

[0024] It should be noted that when the card reader and transmission mechanism 2 is working, the user inserts the card into the card insert 22 located on one side of the input end of the first horizontal conveyor belt 21. Since the card reader 23 is located inside the card insert 22, after the card is inserted, the card reader 23 immediately reads the card's identification information, which includes the card's position information. At the same time, the first horizontal conveyor belt 21 transports the card horizontally toward the vertical transmission mechanism 3, thereby completing the card reading and initial transmission process.

[0025] In this embodiment, the vertical conveying mechanism 3 includes a first moving component 31 and a second horizontal conveyor belt 32. The first moving component 31 is vertically disposed on the housing 1 and located on the side of the first horizontal conveyor belt 21 away from the card insert 22. The first moving component 31 has a movable end that can move linearly along the vertical direction of the housing 1. The second horizontal conveyor belt 32 is disposed on the movable end of the first moving component 31, and the center horizontal line of the second horizontal conveyor belt 32 is on the same straight line as the center horizontal line of the first horizontal conveyor belt 21. The second horizontal conveyor belt 32 is used to receive the card conveyed by the first horizontal conveyor belt 21 and convey the card toward the end conveying mechanism 4.

[0026] It should be noted that the movable end of the first moving component 31 drives the second horizontal conveyor belt 32 to move vertically, so that the input end of the second horizontal conveyor belt 32 and the output end of the first horizontal conveyor belt 21 are at the same height. When the first horizontal conveyor belt 21 conveys the card to a position close to the vertical conveyor mechanism 3, the card can smoothly reach the second horizontal conveyor belt 32. Then, the movable end of the first moving component 31 drives the second horizontal conveyor belt 32 to move vertically, so that the input end of the second horizontal conveyor belt 32 and the input end of the end conveyor mechanism 4 are at the same height. The second horizontal conveyor belt 32 conveys the card horizontally towards the end conveyor mechanism 4 and delivers it to the end conveyor mechanism 4. This ensures that the card can be delivered smoothly and accurately to the end conveyor mechanism 4, greatly improving the stability and accuracy of card delivery and increasing the operating efficiency of the entire card storage device.

[0027] In this embodiment, the end-transfer mechanism 4 includes a second moving component 41, a rotating component 42, and a third horizontal conveyor belt 43. The second moving component 41 is horizontally disposed on the housing 1 and located on the side of the vertical transfer mechanism 3 near the card reader transfer mechanism 2. The second moving component 41 has a moving end that can move linearly in the radial direction of the storage mechanism 5. The rotating component 42 is disposed on the moving end of the second moving component 41 and has a rotating end that can rotate circumferentially. The third horizontal conveyor belt 43 is disposed on the rotating end of the rotating component 42 and is positioned corresponding to the second horizontal conveyor belt 32. It is used to receive the card transferred by the second horizontal conveyor belt 32 and rotate the angle to transfer the card into the corresponding storage slot 500.

[0028] Furthermore, when the conveying direction of the third horizontal conveyor belt 43 is parallel to that of the second horizontal conveyor belt 32, the center lines of the third horizontal conveyor belt 43 and the second horizontal conveyor belt 32 are on the same straight line; when the conveying direction of the third horizontal conveyor belt 43 is perpendicular to that of the second horizontal conveyor belt 32, the output end of the third horizontal conveyor belt 43 is on the same straight line as the center line of the corresponding storage tank 500.

[0029] It should be noted that during the card transfer process, when the second horizontal conveyor belt 32 transfers the card to the position corresponding to the third horizontal conveyor belt 43, since the center lines of the two conveyors are on the same straight line when their transfer directions are parallel, the card can smoothly transition from the second horizontal conveyor belt 32 to the third horizontal conveyor belt 43. Subsequently, the moving end of the second moving component 41 drives the rotating component 42 and the third horizontal conveyor belt 43 to move linearly along the radial direction of the storage mechanism 5, so that the third horizontal conveyor belt 43 is close to the area where the target storage slot 500 is located. Then, the rotating end of the rotating component 42 drives the third horizontal conveyor belt 43 to rotate circumferentially. When the transfer direction of the third horizontal conveyor belt 43 is perpendicular to that of the second horizontal conveyor belt 32, the output end of the third horizontal conveyor belt 43 is on the same straight line as the center line of the corresponding storage slot 500. The third horizontal conveyor belt 43 operates, accurately transferring the card into the corresponding storage slot 500, which greatly improves the stability, accuracy and efficiency of card transfer and storage.

[0030] In a preferred embodiment, both the first moving component 31 and the second moving component 41 in this embodiment include a mounting plate 341, at least two drive wheels 342, a belt 343, a guide rail 344, a slider 345, and a first driving member 346. The mounting plate 341 of the first moving component 31 is vertically mounted on the housing 1, and the mounting plate 341 of the second moving component 41 is parallel to the housing 1. At least two drive wheels 342 are rotatably mounted on the same side of the mounting plate 341, and are spaced apart and aligned on the same straight line. The belt... 343 is connected to the outside of at least two drive wheels 342; the guide rail 344 is fixed on the mounting plate 341 and parallel to the direction of the belt 343; the slider 345 is slidably connected to the guide rail 344 and fixed to the outside of the belt 343; the first drive member 346 is fixed on the mounting plate 341 and the output shaft of the first drive member 346 is fixedly connected to the axis of one of the drive wheels 342; the first drive member 346 drives the drive wheel 342 and the belt 343 to drive the slider 345 to move linearly on the guide rail 344.

[0031] It should be noted that in this preferred embodiment, when the first driving member 346 is started, its output shaft rotates. Since the output shaft of the first driving member 346 is fixedly connected to the axis of one of the transmission wheels 342, it will drive the transmission wheel 342 to rotate synchronously. Since at least two transmission wheels 342 are connected by a belt 343 and are on the same straight line, the rotating transmission wheel 342 drives the other transmission wheels 342 to rotate together through the belt 343, thereby realizing the transmission of the belt 343. The slider 345 is fixed on the outside of the belt 343 and slidably connected to the guide rail 344 parallel to the transmission direction of the belt 343. Therefore, when the belt 343 is in motion, it will drive the slider 345 to move linearly along the guide rail 344. The movement of the slider in the first moving assembly 31 can drive the second horizontal conveyor belt 32 to move vertically. The movement of the slider in the second moving assembly 41 can drive the rotating assembly 42 and the third horizontal conveyor belt 43 to move radially along the storage mechanism 5.

[0032] In a preferred embodiment, the storage mechanism 5 includes a support 51, a wheel 52, a toothed gear 53, a gear 54, and a second drive 55. The support 51 is fixedly mounted on the housing 1. The wheel 52 is rotatably connected to the inner side of the support 51, and a plurality of storage slots 500 are formed on the wheel 52, and the plurality of storage slots 500 are evenly distributed in a ring around the center point of the wheel 52. The toothed gear 53 is arranged around the inner side of the wheel 52. The second drive 55 is fixed inside the housing 1, and the gear 54 is fixed on the output shaft of the second drive 55, and the gear 54 meshes with the toothed gear 53.

[0033] It should be noted that the second driving component 55 drives the gear 54 to rotate, and the gear 54 drives the wheel 52 to rotate through the meshing teeth 53. This can precisely control the position of each storage slot 500. When a card needs to be stored, the target storage slot 500 can be accurately positioned to dock with the end conveyor mechanism 4. When a card needs to be retrieved, the storage slot 500 where the required card is located can be quickly located, ensuring the accuracy and orderliness of card storage and retrieval, and improving the working efficiency of the entire card storage device.

[0034] In this embodiment, the wheel 52 has a plurality of annular cavities 510 spaced apart along its radial direction. Each annular cavity 510 is provided with a plurality of partitions 520 spaced apart in annular arrangement. A storage slot 500 is formed between two adjacent partitions 520.

[0035] It should be noted that multiple annular cavities 510 are arranged radially at intervals, and storage slots 500 are separated in each annular cavity 510 by partitions 520, so that the storage space layout on the entire wheel 52 is orderly, which facilitates the classification, storage and management of cards.

[0036] In this embodiment, the width of the multiple annular cavities 510 in the radial direction increases sequentially along the side away from the axis, and the size of the storage slot 500 matches the corresponding card size.

[0037] It should be noted that cards of different types and uses often vary in size. The width of multiple annular cavities 510 in the radial direction increases sequentially along the side away from the axis, so that each annular cavity 510 can form a storage slot 500 of different sizes. The storage mechanism 5 can adapt to a variety of different card sizes, eliminating the need to design a separate storage device for each size of card, which greatly improves versatility and applicability and reduces usage costs. Furthermore, the size of the storage slot 500 matches the corresponding card size, providing the card with precise positioning and a stable storage environment. During the rotation of the wheel 52, the card can be firmly placed in the storage slot 500 without shifting or falling due to shaking. At the same time, when the end conveying mechanism 4 conveys or retrieves cards to or from the storage slot 500, it can also more accurately dock with the cards, reducing errors and malfunctions in the card storage and retrieval process, and improving the working efficiency and reliability of the entire card storage device.

[0038] The storage mechanism 5 in this embodiment also includes a plurality of pushers 56 and fixing members 57. The plurality of pushers 56 are disposed in each storage slot 500, and the telescopic end of the pusher 56 can move linearly toward the third horizontal conveyor belt 43. The fixing member 57 is fixed on the telescopic end of the pusher 56 and abuts against the inner wall of the storage slot 500 and the end face of the card. The pusher 56 pushes the fixing member 57 to move the card to the third horizontal conveyor belt 43 for reverse extraction.

[0039] It should be noted that when it is necessary to reverse the card stored in the storage slot 500 and send it to the third horizontal conveyor belt 43, the pusher 56 is activated, and its telescopic end begins to move in a straight line towards the side where the third horizontal conveyor belt 43 is located, pushing the card along the storage slot 500 towards the third horizontal conveyor belt 43, and finally moving the card onto the third horizontal conveyor belt 43, thus realizing the reverse card removal operation.

[0040] Specifically, in this embodiment, the rotating component 42, the first driving component 346, and the second driving component 55 are all drive motors.

[0041] In addition, user identity needs to be authenticated before the storage and retrieval process. In this embodiment, the user's identity information can be recognized by fingerprint or facial recognition. When storing a card, the system verifies whether the card number is a card number already stored in the system. If they match, the card is sent to the corresponding storage slot 500 for storage according to the card number. If they do not match, the card is ejected and the user is warned. When borrowing a card, the system checks whether the historical user information stored in the system matches the identified identity information. If they match, the corresponding card location information is obtained to retrieve the card. Furthermore, if a borrowed card is not returned within a preset time, the system automatically sends an SMS notification to the user and system administrator. Moreover, each card is embedded with an RFID tag, and the device automatically scans and records the storage and retrieval status. At the same time, the storage and retrieval process is saved in logs, supporting traceability and query.

[0042] Working principle: The user inserts a card into the card slot 22 located on one side of the input end of the first horizontal conveyor belt 21. The card reader 23 reads the identification position information on the card, and authentication is completed. The first horizontal conveyor belt 21 transports the card to the second horizontal conveyor belt 32. The first drive component 346 of the first moving component 31 is activated, adjusting the vertical position of the second horizontal conveyor belt 32 so that the output end of the second horizontal conveyor belt 32 is at the same height as the input end of the end conveyor mechanism 4. The second horizontal conveyor belt 32 transports the card to the third horizontal conveyor belt 43. The rotating end of the rotating component 42 begins to rotate, driving the third horizontal conveyor belt 43. The horizontal conveyor belt 43 rotates circumferentially until it is perpendicular to the conveying direction of the second horizontal conveyor belt 32. At this time, the first drive member 346 of the second moving component 41 is activated, driving the rotating component 42 and the third horizontal conveyor belt 43 to move linearly along the radial direction of the storage mechanism 5, so that the third horizontal conveyor belt 43 reaches the target storage slot 500 area. The second drive member 55 drives the gear 54 to rotate, which in turn drives the wheel 52 to rotate, so that the target storage slot 500 and the end conveying mechanism 4 are docked at a horizontal position. The third horizontal conveyor belt 43 sends the card into the target storage slot 500. When it is necessary to remove the card stored in the storage slot 500 in reverse, the second drive member 55 drives the wheel 52 to rotate again, rotating the storage slot 500 containing the card to be removed to the position corresponding to the third horizontal conveyor belt 43. Then, the pusher 56 pushes the card to the conveying end face of the third horizontal conveyor belt 43, and similarly, it is finally removed from the card insert 22.

[0043] The above description is only a preferred embodiment of the present utility model and is not intended to limit the present utility model. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of the present utility model should be included within the protection scope of the present utility model.

Claims

1. A card storage device, characterized in that, It includes a housing (1), a card reader / transmitter mechanism (2), a vertical transmission mechanism (3), a terminal transmission mechanism (4), and a storage mechanism (5), wherein, The card reader and delivery mechanism (2) is installed on the housing (1). The card reader and delivery mechanism (2) is used to insert a card, read the card's identification information, and deliver the card toward the vertical delivery mechanism (3). The vertical transmission mechanism (3) is set on the housing (1) and located on the output side of the card reader transmission mechanism (2). The vertical transmission mechanism (3) is used to receive the card transmitted by the card reader transmission mechanism (2), move the card along the vertical direction of the housing (1) and transmit it to the end transmission mechanism (4). The storage mechanism (5) is set on the housing (1) and located on one side of the vertical conveying mechanism (3). The storage mechanism (5) is provided with a number of storage slots (500) arranged in a ring, and the storage slots (500) rotate circumferentially around the center point of the storage mechanism (5). The end-transfer mechanism (4) is set on the housing (1), and the output end of the end-transfer mechanism (4) is set adjacent to the storage slot (500) to receive the card transferred by the vertical transfer mechanism (3), move the card along the radial direction of the storage mechanism (5) and transfer it to the corresponding storage slot (500).

2. The card storage device as claimed in claim 1, characterized in that: The card reading and transmission mechanism (2) includes a first horizontal conveyor belt (21), a card insert (22), and a card reader (23). The first horizontal conveyor belt (21) is horizontally arranged on the housing (1). The card insert (22) is arranged on one side of the input end of the first horizontal conveyor belt (21) for inserting a card. The card reader (23) is arranged inside the card insert (22) for reading the card's identification information. The first horizontal conveyor belt (21) transmits the card toward the vertical transmission mechanism (3).

3. The card storage device as described in claim 2, characterized in that: The vertical conveying mechanism (3) includes a first moving component (31) and a second horizontal conveyor belt (32), wherein, The first moving component (31) is vertically disposed on the housing (1) and located on the side of the first horizontal conveyor belt (21) away from the insert (22). The first moving component (31) has a movable end that can move linearly along the vertical direction of the housing (1). The second horizontal conveyor belt (32) is disposed on the active end of the first moving component (31), and the center horizontal line of the second horizontal conveyor belt (32) and the first horizontal conveyor belt (21) are on the same straight line. The second horizontal conveyor belt (32) is used to receive the card conveyed by the first horizontal conveyor belt (21) and convey the card toward the end conveyor mechanism (4).

4. The card storage device as claimed in claim 3, characterized in that: The end-conveying mechanism (4) includes a second moving component (41), a rotating component (42), and a third horizontal conveyor belt (43), wherein, The second moving component (41) is horizontally disposed on the housing (1) and located on the side of the vertical transmission mechanism (3) close to the card reading transmission mechanism (2). The second moving component (41) has a moving end that can move linearly in the radial direction of the storage mechanism (5). The rotating component (42) is disposed on the moving end of the second moving component (41), and the rotating component (42) has a rotating end that can rotate circumferentially; The third horizontal conveyor belt (43) is set on the rotating end of the rotating component (42), and the third horizontal conveyor belt (43) is set in a position corresponding to the second horizontal conveyor belt (32). It is used to receive the card conveyed by the second horizontal conveyor belt (32) and rotate the angle to convey the card to the corresponding storage slot (500).

5. The card storage device as claimed in claim 4, characterized in that: When the conveying direction of the third horizontal conveyor belt (43) is parallel to that of the second horizontal conveyor belt (32), the center lines of the third horizontal conveyor belt (43) and the second horizontal conveyor belt (32) are on the same straight line; when the conveying direction of the third horizontal conveyor belt (43) is perpendicular to that of the second horizontal conveyor belt (32), the output end of the third horizontal conveyor belt (43) is on the same straight line as the center line of the corresponding storage tank (500).

6. The card storage device as claimed in claim 4, characterized in that: Both the first moving assembly (31) and the second moving assembly (41) include a mounting plate (341), at least two drive wheels (342), a belt (343), a guide rail (344), a slider (345), and a first drive member (346), wherein, The mounting plate (341) of the first moving component (31) is vertically disposed on the housing (1), and the mounting plate (341) of the second moving component (41) is parallel disposed on the housing (1); At least two drive wheels (342) are rotatably mounted on the same side of the mounting plate (341), and are spaced apart and on the same straight line; The belt (343) is connected to the outside of at least two drive pulleys (342); The guide rail (344) is fixed on the mounting plate (341) and is parallel to the direction of the belt (343) drive; The slider (345) is slidably connected to the guide rail (344), and the slider (345) is fixed to the outside of the belt (343); The first drive unit (346) is fixed on the mounting plate (341), and the output shaft of the first drive unit (346) is fixedly connected to the shaft of one of the transmission wheels (342); The first driving component (346) drives the transmission wheel (342) and belt (343) to drive the slider (345) to move linearly on the guide rail (344).

7. The card storage device as claimed in claim 5, characterized in that: The storage mechanism (5) includes a support (51), a wheel (52), teeth (53), gears (54), and a second drive (55). The support member (51) is fixedly mounted on the housing (1); The wheel (52) is rotatably connected to the inner side of the support (51), and several storage slots (500) are opened on the wheel (52), and the several storage slots (500) are evenly distributed in a ring along the center point of the wheel (52); The teeth (53) are arranged around the inner side of the wheel (52); The second drive unit (55) is fixed inside the housing (1), and the gear (54) is fixed on the output shaft of the second drive unit (55), and the gear (54) meshes with the tooth (53); The second driving component (55) drives the gear (54) to rotate the meshing wheel (52).

8. The card storage device as claimed in claim 7, characterized in that: The wheel (52) has a plurality of annular cavities (510) spaced apart along its radial direction. Each annular cavity (510) has a plurality of partitions (520) spaced apart in annular arrangement. A storage slot (500) is formed between two adjacent partitions (520).

9. The card storage device as claimed in claim 8, characterized in that: The width of the multiple annular cavities (510) in the radial direction increases sequentially along the side away from the axis, and the size of the storage slot (500) matches the corresponding card size.

10. The card storage device as claimed in claim 7, characterized in that: The storage mechanism (5) also includes multiple pushers (56) and fixing members (57). The multiple pushers (56) are disposed in each storage slot (500), and the telescopic end of the pusher (56) can move linearly toward the third horizontal conveyor belt (43). The fixing member (57) is fixed on the telescopic end of the pusher (56) and abuts against the inner wall of the storage slot (500) and the end face of the card. The pusher (56) pushes the fixing member (57) to move the card to the third horizontal conveyor belt (43) for reverse extraction.

Citation Information

Patent Citations

  • Portable card storage device

    CN221368340U