Intelligent psychological card storage box based on Internet of Things and system thereof
By designing an IoT-enabled smart psychological card storage box, which employs a stepped storage structure and IoT modules, the problem of simple structure and low management efficiency of existing card storage boxes is solved, achieving efficient and convenient card management.
Patent Information
- Application Number
- CN202511264213.X
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-09-05
- Publication Date
- 2025-11-28
AI Technical Summary
Existing psychotherapy card storage boxes have a simple structure and only have basic storage functions. They are prone to stacking and becoming messy when storing cards, making it difficult to quickly filter specific types of cards, resulting in low management efficiency and inconvenience.
A smart psychological card storage box based on the Internet of Things was designed, which includes a main frame, storage components and an Internet of Things system. It uses a structure such as connecting springs, guide slots, ejection blocks, control components and cover plates to realize the stepped storage of cards, and collects and manages information through RFID card reading circuit module, Wi-Fi module, Bluetooth module and CPU module.
It enables independent and convenient storage and filtering of cards, improving management efficiency. It also supports remote data communication and local interaction, enhancing ease of use and management efficiency.
Smart Images

Figure CN121019986A_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of card storage and management technology, and in particular to an intelligent psychological card storage box and system based on the Internet of Things. Background Technology
[0002] With rapid socio-economic development and an increasingly fast pace of life, the public's demand for mental health services is becoming increasingly prominent. According to relevant survey data, over 60% of surveyed residents explicitly stated they need mental health services, with approximately 12% requiring regular or frequent psychological counseling. Emotional problems, personal growth / self-exploration issues, and family of origin problems accounted for as high as 78.49%, 59.93%, and 55.56% respectively, becoming major factors affecting people's mental well-being. Simultaneously, the incidence of mental illnesses such as depression and anxiety continues to rise; globally, approximately 5% of adults suffer from depression each year, leading to a continuously widening gap in the demand for mental health services.
[0003] In the field of mental health services, psychotherapy cards (such as mindfulness cards, positive energy cards, OH series cards, etc.) are lightweight psychological intervention tools. Due to their advantages such as portability and strong operability, they are widely used in scenarios such as psychological counseling assistance and personal emotion regulation.
[0004] However, existing psychotherapy card storage boxes have a simple structure, only have basic storage functions, and are prone to stacking and becoming messy when storing cards. They are also difficult to quickly filter specific types of cards, resulting in low management efficiency and inconvenience of use. Summary of the Invention
[0005] The purpose of this invention is to provide an intelligent psychological card storage box and system based on the Internet of Things, which solves the problems of existing psychological therapy card storage boxes having simple structures, only having basic storage functions, being prone to stacking and disorder when storing cards, being difficult to quickly filter specific types of cards, having low management efficiency, and being inconvenient to use.
[0006] To achieve the above objectives, the present invention provides an IoT-based intelligent psychological card storage box, comprising a main frame and a storage assembly. The storage assembly includes a connecting spring, a storage box, a guide groove plate, a push-out block, a control component, a cover plate, a circuit board box, and a closing component. The connecting spring is fixedly connected to the main frame and located within the main frame. The storage box is fixedly connected to the connecting spring and located at one end of the connecting spring. The guide groove plate is fixedly installed on the inner wall of the main frame. The storage box is slidably connected to the guide groove plate. The push-out block is connected to the main frame through the control component, which is installed on the main frame and supports the push-out block. The cover plate is fixedly connected to the main frame and located on one side of the main frame. The circuit board box is fixedly connected to the main frame and located on the side of the main frame away from the cover plate. The closing component is installed on the main frame.
[0007] The control component includes a shaft, a connecting sleeve, a gear sleeve, and a drive unit. The shaft is fixedly connected to the main frame and located within the main frame. The connecting sleeve is sleeved on the outside of the shaft and rotatably connected to it. The ejector block is fixedly installed on the outside of the connecting sleeve. The gear sleeve is sleeved on the outside of the connecting sleeve and fixedly connected to it. The drive unit drives the gear sleeve to rotate.
[0008] The drive unit includes a guide seat, a rack, and a guide member. The guide seat is fixedly connected to the main frame via the guide member, which is mounted on the main frame and guides the movement of the guide seat. The rack is fixedly connected to the guide seat and meshes with the gear sleeve.
[0009] The guide component includes a fixed block, a guide rod, and an auxiliary spring. The fixed block is fixedly connected to the main frame and located on the side of the main frame near the guide seat. The guide rod is fixedly connected to the fixed block and slidably connected to the guide seat. The auxiliary spring is sleeved on the outside of the guide rod and located between the fixed block and the guide seat.
[0010] The drive unit further includes an extension rod and a lever. The extension rod passes through the main frame and is fixedly connected to the guide seat. The lever is fixedly connected to the extension rod and is located at the end of the extension rod away from the guide seat.
[0011] The storage component also includes a limiting block, which is fixedly connected to the main frame and located on the inner wall of the main frame.
[0012] The storage component also includes a stabilizing interlayer, which is fixedly connected to the storage box and located inside the storage box.
[0013] The cover component includes a top cover, a magnetic block, and an iron block. The top cover is hinged to the main frame and located on the top of the main frame. The magnetic block is embedded in the main frame and the cover plate. The iron block is fixedly connected to the top cover and cooperates with the magnetic block.
[0014] An IoT-based smart psychological card storage box system is applied to the aforementioned IoT-based smart psychological card storage box;
[0015] The system includes a CPU module, an RFID card reader circuit module, a Wi-Fi module, a Bluetooth module, and a power module. The CPU module is connected to the RFID card reader circuit module, the Wi-Fi module, the Bluetooth module, and the power module. The power module provides operating voltage to the CPU module, the RFID card reader circuit module, the Wi-Fi module, and the Bluetooth module. The RFID card reader circuit module is used to collect card information and transmit it to the CPU module. The Wi-Fi module and the Bluetooth module are used to realize data interaction and transmission.
[0016] The CPU module is used to receive card information transmitted by the RFID card reader circuit module, and to process the data transmitted by the Wi-Fi module and the Bluetooth module.
[0017] The RFID card reader circuit module is used to wirelessly and contactlessly interact with the RFID electronic tag on the card through radio frequency identification communication technology, read card data, and transmit the data to the CPU module.
[0018] The power module is used to stabilize the input voltage and provide an appropriate operating voltage for each module of the system.
[0019] The Wi-Fi module is used to establish a wireless connection with an external router to enable long-distance data communication between the system and the cloud server, and to transmit card management data and device operating status information;
[0020] The Bluetooth module is used to establish a near-field authorization connection with the user's mobile APP to realize local data interaction functions such as card information reading, device status display, and data writing.
[0021] This invention discloses an IoT-based intelligent psychological card storage box and system, comprising a main frame and a storage assembly. The storage assembly includes a connecting spring, a storage box, a guide groove plate, a push-out block, a control component, a cover plate, a circuit board box, and a closing component. The connecting spring is fixedly connected to the main frame and located within the main frame. The storage box is fixedly connected to the connecting spring and located at one end of the connecting spring. The guide groove plate is fixedly installed on the inner wall of the main frame. The storage box is slidably connected to the guide groove plate. The push-out block is controlled by the control component. The component is connected to the main frame, the control component is installed on the main frame and supports the top block, the cover plate is fixedly connected to the main frame and located on one side of the main frame, the circuit board box is fixedly connected to the main frame and located on the side of the main frame away from the cover plate, and the closing component is installed on the main frame. This solves the problems of existing psychotherapy card storage boxes having simple structures, only basic storage functions, easy stacking and disorder when storing cards, difficulty in quickly screening specific types of cards, low management efficiency, and inconvenience of use. Attached Figure Description
[0022] To more clearly illustrate the technical solutions in the embodiments of this application or the prior art, the accompanying drawings used in the description of the embodiments or the prior art will be briefly introduced below.
[0023] Figure 1 This is a schematic diagram of the overall structure of the IoT-based smart psychological card storage box of the present invention.
[0024] Figure 2 This is a schematic diagram of the internal structure of the main frame of the present invention.
[0025] Figure 3 This is a schematic diagram of the structure of the control component of the present invention.
[0026] Figure 4 This is a schematic diagram of the drive unit of the present invention.
[0027] Figure 5 This is a schematic diagram of the ejector block of the present invention.
[0028] Figure 6 This is a schematic diagram of the structure intended to stabilize the interlayer of the present invention.
[0029] Figure 7 This is a structural schematic diagram of the cover component of the present invention.
[0030] Figure 8 This is a schematic diagram of the Internet of Things-based intelligent psychological card storage box system of the present invention.
[0031] In the diagram: 101-Main frame, 102-Connecting spring, 103-Storage box, 104-Guide slot plate, 105-Ejection block, 106-Cover plate, 107-Circuit board box, 108-Shaft, 109-Connecting sleeve, 110-Gear sleeve, 111-Guide seat, 112-Rack, 113-Fixing block, 114-Guide rod, 115-Auxiliary spring, 116-Extension rod, 117-Pulling block, 118-Limit stop block, 119-Stabilizing interlayer, 120-Top cover, 121-Magnetic block, 122-Iron block, 201-CPU module, 202-RFID card reader circuit module, 203-Wi-Fi module, 204-Bluetooth module, 205-Power module. Detailed Implementation
[0032] The embodiments of the present invention are described in detail below. Examples of the embodiments are shown in the accompanying drawings. The embodiments described below with reference to the accompanying drawings are exemplary and intended to explain the present invention, but should not be construed as limiting the present invention.
[0033] The embodiment of this application is as follows:
[0034] Please see Figures 1-8 , Figure 1 This is a schematic diagram of the overall structure of the IoT-based smart psychological card storage box of the present invention. Figure 2 This is a schematic diagram of the internal structure of the main frame 101 of the present invention. Figure 3 This is a schematic diagram of the structure of the control component of the present invention. Figure 4 This is a schematic diagram of the drive unit of the present invention. Figure 5 This is a schematic diagram of the ejector block 105 of the present invention. Figure 6 This is a schematic diagram of the structure intended to stabilize the interlayer 119 of the present invention. Figure 7 This is a structural schematic diagram of the cover component of the present invention. Figure 8 This is a schematic diagram of the Internet of Things-based intelligent psychological card storage box system of the present invention.
[0035] The present invention relates to an IoT-based intelligent psychological card storage box, comprising a main frame 101, a connecting spring 102, a storage box 103, a guide groove plate 104, a push-out block 105, a cover plate 106, a circuit board box 107, a shaft 108, a connecting sleeve 109, a toothed sleeve 110, a guide seat 111, a rack 112, a fixing block 113, a guide rod 114, an auxiliary spring 115, an extension rod 116, a lever 117, a limit stop block 118, a stabilizing interlayer 119, a top cover 120, a magnetic block 121, an iron block 122, a CPU module 201, an RFID card reading circuit module 202, a Wi-Fi module 203, a Bluetooth module 204, and a power module 205. This invention solves the problems of existing psychological therapy card storage boxes 103, which have simple structures, only basic storage functions, are prone to stacking and disorder when storing cards, are difficult to quickly filter specific types of cards, have low management efficiency, and are inconvenient to use. Understandably, the aforementioned solutions can also be used to improve ease of use.
[0036] In this embodiment, the main frame 101 is a hollow rectangular body with one side and top open. The storage component is installed on the main frame 101, thereby solving the problems of the existing psychotherapy card storage box 103, which has a simple structure, only has basic storage function, is easy to stack and mess when storing cards, is difficult to quickly filter specific types of cards, has low management efficiency, and is inconvenient to use.
[0037] The connecting spring 102 is fixedly connected to the main frame 101 and located inside the main frame 101. The storage box 103 is fixedly connected to the connecting spring 102 and located at one end of the connecting spring 102. The guide groove plate 104 is fixedly installed on the inner wall of the main frame 101. The storage box 103 is slidably connected to the guide groove plate 104. The ejector block 105 is connected to the main frame 101 through the control component. The control component is installed on the main frame 101 and supports the ejector block 105. The cover plate 106 is fixedly connected to the main frame 101 and located on one side of the main frame 101. The circuit board box 107 is fixedly connected to the main frame 101 and located inside the main frame 101. The main frame 101 is located away from the cover plate 106. The cover fitting is installed on the main frame 101. Multiple connecting springs 102 are vertically arranged inside the main frame 101, in pairs. The bottom end of each connecting spring 102 is fixedly connected to the bottom inner side of the main frame 101. Multiple storage boxes 103 are also present. The bottom of each storage box 103 is fixedly connected to the top end of a corresponding pair of connecting springs 102. When a storage box 103 extends out of the main frame 101, the connecting spring 102 is stretched. When the storage box 103 is inside the main frame 101, the connecting spring 102 is in a retracted, reset state. The spring force of the connecting spring 102 allows the box to be pulled out. The storage box 103 is reset into the main frame 101. The guide plate 104 has a groove corresponding to the width of the storage box 103. There are two guide plates 104, symmetrically arranged on the inner wall of the main frame 101. The two sides of the storage box 103 are respectively engaged in the corresponding grooves of the guide plates 104. The guide plates 104 guide the movement of the storage box 103. The ejector block 105 is installed on the inner bottom of the storage box 103 via the control component. The ejector block 105 has a stepped surface. The control component can control the ejector block 105 to rotate. Through the rotation of the ejector block 105, the stepped surface of the ejector block 105 interacts with multiple storage boxes. The storage boxes 103 are ejected, allowing multiple boxes 103 to be ejected in a stepped manner, facilitating card retrieval and storage for the user. The cover plate 106 is a rectangular plate, its dimensions corresponding to the opening size on the side of the main frame 101. The cover plate 106 is fixedly connected to the main frame 101 with screws. By designing the main frame 101 and the cover plate 106 as detachable, future maintenance is facilitated. The circuit board box 107 is a rectangular box used to install circuit boards, enabling IoT functions. The closing component is installed on the top of the main frame 101, closing the top opening of the main frame 101. The rotation of the ejector block 105 is controlled by this mechanism.This allows multiple storage boxes 103 to be pushed out in a stepped manner, enabling independent and convenient storage of cards. This solves the problems of existing psychotherapy card storage boxes 103, which have simple structures, only basic storage functions, are prone to stacking and becoming messy when storing cards, are difficult to quickly filter specific types of cards, have low management efficiency, and are inconvenient to use.
[0038] Secondly, the shaft 108 is fixedly connected to the main frame 101 and located inside the main frame 101; the connecting sleeve 109 is sleeved on the outside of the shaft 108 and rotatably connected to the shaft 108; the ejector block 105 is fixedly installed on the outside of the connecting sleeve 109; the toothed sleeve 110 is sleeved on the outside of the connecting sleeve 109 and fixedly connected to the connecting sleeve 109; the driving unit drives the toothed sleeve 110 to rotate, and the shaft 108 is arranged along the thickness direction of the main frame 101. On the inner bottom of body 101, the connecting sleeve 109 is sleeved on the outside of the shaft 108 through a bearing, so that the connecting sleeve 109 can rotate on the shaft 108. The toothed sleeve 110 is arc-shaped and fixedly installed on the outer surface of the connecting sleeve 109. The outer periphery of the toothed sleeve 110 is provided with teeth. The driving part is used to drive the toothed sleeve 110 to rotate. By driving the toothed sleeve 110 to rotate, the ejector block 105 can be rotated to realize the ejection of the storage box 103.
[0039] Then, the guide seat 111 is fixedly connected to the main frame 101 via the guide member. The guide member is installed on the main frame 101 and guides the movement of the guide seat 111. The rack 112 is fixedly connected to the guide seat 111 and meshes with the gear sleeve 110. The guide seat 111 is a long rectangular body and is installed on the inner bottom of the main frame via the guide member. The guide member can provide support for the guide seat 111 and allow the guide seat 111 to move within the main frame 101, and guides the movement of the guide seat 111. The rack 112 is fixedly installed on the top of the guide seat 111. The side of the rack 112 facing the gear sleeve 110 is also provided with teeth, so that the rack 112 meshes with the gear sleeve 110 and moves. By controlling the movement of the rack 112, the gear sleeve 110 can be rotated.
[0040] Meanwhile, the fixing block 113 is fixedly connected to the main frame 101 and located on the side of the main frame 101 near the guide seat 111; the guide rod 114 is fixedly connected to the fixing block 113 and slidably connected to the guide seat 111; the auxiliary spring 115 is sleeved on the outside of the guide rod 114 and located between the fixing block 113 and the guide seat 111. There are two fixing blocks 113, fixedly installed on the inner bottom of the main frame 101, providing installation conditions for the guide rod 114. Both ends of the guide seat 111 are connected to the two fixing blocks 113 respectively to fix it. The guide seat 111 has a through hole corresponding to the guide rod 114. The guide seat 111 is sleeved on the outside of the guide rod 114 through the through hole and is slidably connected to the guide rod 114. The auxiliary spring 115 is located on one side of the guide seat 111. The elastic force of the auxiliary spring 115 facilitates the reset of the guide seat 111. The fixing blocks 113 and the guide rod 114 are used to support and guide the guide seat 111.
[0041] In addition, the extension rod 116 passes through the main frame 101 and is fixedly connected to the guide seat 111; the lever 117 is fixedly connected to the extension rod 116 and is located at the end of the extension rod 116 away from the guide seat 111. A through groove is provided at the bottom of the main frame 101, and the extension rod 116 extends into the main frame 101 through the through groove and is fixedly connected to the guide seat 111. The lever 117 is located on the end of the extension rod 116 located outside the main frame 101, so as to facilitate the lever 116 to move the guide seat 111. Through the extension rod 116 and the lever 117, it is easy to control the movement of the guide seat 111.
[0042] Subsequently, the limiting block 118 is fixedly connected to the main frame 101 and located on the inner wall of the main frame 101. There are two limiting blocks 118, which are symmetrically arranged on the bottom inner wall of the main frame 101. This can prevent the storage box 103 from being excessively displaced when it is stored in the main frame 101. The limiting block 118 can thus limit the position of the storage box 103.
[0043] Subsequently, the stabilizing interlayer 119 is fixedly connected to the storage box 103 and located inside the storage box 103. The stabilizing interlayer 119 is made of sponge material and is attached to the inner wall of the storage box 103 by means of adhesive. When the card is placed in the storage box 103, it will be in close contact with the stabilizing interlayer 119. The close contact between the stabilizing interlayer 119 and the card will generate friction and improve the stability of card storage.
[0044] Finally, the top cover 120 is hinged to the main frame 101 and located on top of the main frame 101; the magnetic block 121 is embedded in the main frame 101 and the cover plate 106; the iron block 122 is fixedly connected to the top cover 120 and cooperates with the magnetic block 121. The top cover 120 is connected to the top of the main frame 101 through a hinge. By flipping the top cover 120, the top opening of the main frame 101 can be covered. There are multiple magnetic blocks 121, which are respectively embedded in the top of the main frame 101 and the cover plate 106. The number and position of the iron blocks 122 correspond to the magnetic blocks 121. The iron blocks 122 can be attracted by the magnetic blocks 121, thereby facilitating the opening and closing of the top cover 120.
[0045] In this embodiment, when the cards need to be stored, the top cover 120 is opened, and the lever 117 is moved, causing the guide seat 111 to move in the direction of compressing the auxiliary spring 115. Simultaneously, the guide seat 111 moves, driving the rack 112 to move. The rack 112 engages with the toothed sleeve 110, causing the toothed sleeve 110 to rotate. The rotation of the toothed sleeve 110, through the connecting sleeve 109, drives the ejector block 105 to rotate. Since the ejector block 105 has a stepped structure, multiple storage boxes 103 are ejected in a stepped manner. The user can then insert the cards into the storage boxes 103. A stable interlayer 11 is provided inside the storage boxes 103. 9. The card can be squeezed, and under the action of friction, the card will not easily slip out of the storage box 103, improving stability. After the card is inserted into the storage box 103, the user releases the lever 117. Under the action of the auxiliary spring 115, the push-out block 105 rotates to make way for the storage box 103. Under the action of the connecting spring 102, the storage box 103 returns to the main frame 101, thereby realizing the storage of the card. Finally, the user closes the top cover 120. When the card needs to be taken out, the user opens the top cover 120 and moves the lever 117. Multiple storage boxes 103 extend in a stepped manner, and the user can selectively pull out the card. This application controls the rotation of the ejector block 105 by toggling the toggle block 117, thereby allowing multiple storage boxes 103 to be ejected in a stepped manner, thus enabling independent and convenient storage of cards. This solves the problems of existing psychotherapy card storage boxes 103 having simple structures, only basic storage functions, easy stacking and disorder when storing cards, difficulty in quickly filtering specific types of cards, low management efficiency, and inconvenience of use.
[0046] The present invention also provides an Internet of Things-based intelligent psychological card storage box system, which is applied to the aforementioned Internet of Things-based intelligent psychological card storage box;
[0047] The system includes a CPU module 201, an RFID card reader circuit module 202, a Wi-Fi module 203, a Bluetooth module 204, and a power module 205. The CPU module 201 is connected to the RFID card reader circuit module 202, the Wi-Fi module 203, the Bluetooth module 204, and the power module 205. The power module 205 provides operating voltage to the CPU module 201, the RFID card reader circuit module 202, the Wi-Fi module 203, and the Bluetooth module 204. The RFID card reader circuit module 202 is used to collect card information and transmit it to the CPU module 201. The Wi-Fi module 203 and the Bluetooth module 204 are used to realize data interaction and transmission.
[0048] The CPU module 201 is used to receive card information transmitted by the RFID card reading circuit module 202, and to process the data transmitted by the Wi-Fi module 203 and the Bluetooth module 204.
[0049] The RFID card reading circuit module 202 is used to perform wireless contactless information interaction with the RFID electronic tag on the card through radio frequency identification communication technology, read card data, and transmit the data to the CPU module 201.
[0050] The power module 205 is used to stabilize the input voltage and provide an appropriate operating voltage for each module of the system.
[0051] The Wi-Fi module 203 is used to establish a wireless connection with an external router to realize long-distance data communication between the system and the cloud server, and to transmit card management data and device working status information.
[0052] The Bluetooth module 204 is used to establish a near-field authorization connection with the user's mobile APP to realize local data interaction functions such as card information reading, device status display and data writing.
[0053] First, the cards used in the IoT smart psychological card box system. For cards that need to collect information, special cards need to be made in the early stages of use. The methods are: (1) attaching RFID radio frequency identification electronic tags to ordinary cards. (2) printing directly using electronic tag cards with RFID radio frequency identification. Information can be written to the dot tags on the cards through an RFID reader or the ID number of the electronic tag on the card can be read directly for identification. In addition, for cards that are simply for storage and do not need to collect information, they can be used directly.
[0054] Secondly, during the process of taking the card out and putting it into the card box, the card is RFID radio frequency identification through the circuit part in the card box, which can obtain all the card information in the card box. The RFID card reading circuit module 202 transmits the obtained information to the CPU module 201 in the main circuit for information processing.
[0055] Next, after the CPU module 201 acquires the card information, it communicates with the router via the Wi-Fi module 203 in the circuit. The router then communicates with the system server via the internet. It also communicates with the mobile app via the Bluetooth module 204 in the circuit. The card and card holder information is sent to the mobile app software and cloud server management software at the system application layer.
[0056] Finally, users can query and manage their own card boxes and card information through a mobile app, while administrators can query and manage the card boxes and card information throughout the entire system through cloud server management software.
[0057] The above-disclosed embodiments are merely one or more preferred embodiments of this application and should not be construed as limiting the scope of this application. Those skilled in the art can understand that all or part of the processes for implementing the above embodiments and equivalent changes made in accordance with the claims of this application still fall within the scope of this application.
Claims
1. A smart psychological card storage box based on the Internet of Things, comprising a main frame, characterized in that, It also includes storage components; The storage assembly includes a connecting spring, a storage box, a guide groove plate, a push-out block, a control component, a cover plate, a circuit board box, and a closing component. The connecting spring is fixedly connected to the main frame and located within the main frame. The storage box is fixedly connected to the connecting spring and located at one end of the connecting spring. The guide groove plate is fixedly installed on the inner wall of the main frame, and the storage box is slidably connected to the guide groove plate. The push-out block is connected to the main frame through the control component, which is installed on the main frame and supports the push-out block. The cover plate is fixedly connected to the main frame and located on one side of the main frame. The circuit board box is fixedly connected to the main frame and located on the side of the main frame away from the cover plate. The closing component is installed on the main frame.
2. The IoT-based smart psychological card storage box as described in claim 1, characterized in that, The control component includes a shaft, a connecting sleeve, a gear sleeve, and a drive unit. The shaft is fixedly connected to the main frame and located within the main frame. The connecting sleeve is sleeved on the outside of the shaft and rotatably connected to the shaft. The ejector block is fixedly installed on the outside of the connecting sleeve. The gear sleeve is sleeved on the outside of the connecting sleeve and fixedly connected to the connecting sleeve. The drive unit drives the gear sleeve to rotate.
3. The IoT-based smart psychological card storage box as described in claim 2, characterized in that, The drive unit includes a guide seat, a rack, and a guide member. The guide seat is fixedly connected to the main frame via the guide member, which is mounted on the main frame and guides the movement of the guide seat. The rack is fixedly connected to the guide seat and meshes with the gear sleeve.
4. The IoT-based smart psychological card storage box as described in claim 3, characterized in that, The guide component includes a fixed block, a guide rod, and an auxiliary spring. The fixed block is fixedly connected to the main frame and is located on the side of the main frame near the guide seat. The guide rod is fixedly connected to the fixed block and slidably connected to the guide seat. The auxiliary spring is sleeved on the outside of the guide rod and is located between the fixed block and the guide seat.
5. The IoT-based smart psychological card storage box as described in claim 3, characterized in that, The drive unit also includes an extension rod and a lever. The extension rod passes through the main frame and is fixedly connected to the guide seat. The lever is fixedly connected to the extension rod and is located at the end of the extension rod away from the guide seat.
6. The IoT-based smart psychological card storage box as described in claim 1, characterized in that, The storage component also includes a limiting block, which is fixedly connected to the main frame and located on the inner wall of the main frame.
7. The IoT-based smart psychological card storage box as described in claim 1, characterized in that, The storage component also includes a stabilizing interlayer, which is fixedly connected to the storage box and located inside the storage box.
8. The IoT-based smart psychological card storage box as described in claim 1, characterized in that, The cover component includes a top cover, a magnetic block, and an iron block. The top cover is hinged to the main frame and located at the top of the main frame. The magnetic block is embedded in the main frame and the cover plate. The iron block is fixedly connected to the top cover and cooperates with the magnetic block.
9. An IoT-based intelligent psychological card storage box system, applied to the IoT-based intelligent psychological card storage box as described in any one of claims 1-8, characterized in that, The system includes a CPU module, an RFID card reader circuit module, a Wi-Fi module, a Bluetooth module, and a power module. The CPU module is connected to the RFID card reader circuit module, the Wi-Fi module, the Bluetooth module, and the power module. The power module provides operating voltage to the CPU module, the RFID card reader circuit module, the Wi-Fi module, and the Bluetooth module. The RFID card reader circuit module is used to collect card information and transmit it to the CPU module. The Wi-Fi module and the Bluetooth module are used to realize data interaction and transmission. The CPU module is used to receive card information transmitted by the RFID card reader circuit module, and to process the data transmitted by the Wi-Fi module and the Bluetooth module. The RFID card reader circuit module is used to wirelessly and contactlessly interact with the RFID electronic tag on the card through radio frequency identification communication technology, read card data, and transmit the data to the CPU module. The power module is used to stabilize the input voltage and provide an appropriate operating voltage for each module of the system. The Wi-Fi module is used to establish a wireless connection with an external router, enabling long-distance data communication between the system and the cloud server, and transmitting card management data and device operating status information; The Bluetooth module is used to establish a near-field authorization connection with the user's mobile APP to realize local data interaction functions such as card information reading, device status display, and data writing.