Intelligent induction unmanned aerial vehicle storage beehive

By employing intelligent sensing technology to authenticate drone storage beehives and designing a stable structure, the problem of insufficient access control in drone storage is solved, enabling secure storage of drones and preventing equipment loss and data leakage.

CN224682695UActive Publication Date: 2026-08-25ZHONGKE HONGXIANG AEROSPACE TECHNOLOGY INFORMATION (SUZHOU) CO LTD
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Patent Information

Application Number
CN202521315324.4
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-06-25
Publication Date
2026-08-25
Estimated Expiration
2035-06-25

AI Technical Summary

Technical Problem

Existing drone storage facilities lack effective access control mechanisms, allowing outsiders to easily access and take away drones, posing risks of equipment loss, data leakage, and unauthorized operations.

Method used

Design an intelligent sensor-controlled drone storage beehive. The cabinet door is opened through an identity verification process, and the lock is released using an electromagnet, ensuring that only authorized users can access the drones. A stable structure is used to prevent the drones from moving and avoid damage from bumps and knocks.

Benefits of technology

This effectively eliminates the possibility of unauthorized personnel accessing drones, improves security during storage, prevents equipment loss and data leakage, and ensures the safe storage of drones.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model provides a kind of intelligent response unmanned aerial vehicle storage beehive, it is related to unmanned aerial vehicle storage equipment technical field, including: control cabinet and storage structure;The control cabinet is equipped with display screen, the bottom of display screen is equipped with card swiping device, the side of control cabinet is equipped with storage structure, and storage structure contains following components: storage cabinet: be equipped with the side of control cabinet, the inside of storage cabinet is opened with bee groove, and the side of storage cabinet is fixedly connected with fixed hinge;Fixed support: fixedly connected with the side of storage cabinet, fixed support is fixedly connected with movable load frame on, movable load frame is opened with moving groove in its inside, and electromagnet is fixedly installed in the middle of moving groove, by setting storage structure, when opening cabinet door, it needs to be authenticated first to release the locking of cabinet door, effectively prevents the possibility that unauthorized personnel arbitrarily uses unmanned aerial vehicle, avoids potential risks such as equipment loss, data leakage, irregular operation from source, improves the security in the process of unmanned aerial vehicle storage.
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Description

Technical Field

[0001] This utility model belongs to the field of drone storage equipment technology, and more specifically, it relates to an intelligent sensing drone storage beehive. Background Technology

[0002] In recent years, drone technology has developed rapidly, and its application areas have continued to expand. In aerial photography, drones capture stunning images from a unique perspective, providing new visions for film and television production and geographical exploration; in logistics and delivery, drones overcome terrain limitations to achieve fast and accurate delivery, significantly improving delivery efficiency; in agricultural plant protection operations, drones contribute to the modernization of agriculture with their efficient spraying capabilities; in surveying and mapping, drones can quickly acquire terrain data, improving the accuracy and efficiency of surveying. However, when drones finish their work, their storage problems gradually become apparent.

[0003] Based on the above, current drone storage generally relies on ordinary open storage racks or simple cabinets. Due to the lack of effective access control mechanisms, such storage facilities allow outsiders to easily access and take away drones. Once drones are used by unauthorized personnel, not only may the equipment be lost or damaged, but there are also potential risks such as data leakage and unauthorized operation, making it difficult to guarantee the security of drone storage. Utility Model Content

[0004] To address the aforementioned technical problems, this disclosure relates to an intelligent sensing drone storage beehive. This beehive solves the problem that current drone storage lacks an effective access control mechanism, allowing external personnel to easily access and remove drones. By setting up a storage structure, an identity verification process is required before opening the cabinet door. The system accurately compares and verifies the user's identity information. Only after successful verification will the electromagnet be energized under the controller's command, unlocking the cabinet door. This effectively prevents unauthorized personnel from taking drones without authorization, mitigating potential risks such as equipment loss, data leakage, and unauthorized operations, thus improving the security of drone storage.

[0005] This utility model discloses an intelligent sensor-controlled drone storage beehive, achieved through the following specific technical means:

[0006] In a first aspect, this disclosure provides an intelligent sensing drone storage beehive, specifically including: a control cabinet and a storage structure;

[0007] The control cabinet is equipped with a display screen, and a card reader is located at the bottom of the display screen. A storage structure is located on one side of the control cabinet, and the storage structure includes the following components:

[0008] Storage cabinet: Located on one side of the control cabinet, the storage cabinet has honeycomb grooves inside, and a fixed hinge is fixedly connected to one side of the storage cabinet;

[0009] Fixed support: Fixedly connected to one side of the storage cabinet. A movable frame is fixedly connected to the fixed support. A movable slot is opened inside the movable frame. An electromagnet is fixedly installed in the middle of the movable slot. Fixed sliding rods are fixedly connected between the two sides of the electromagnet and the two ends of the movable slot. Springs are provided on the outside of the fixed sliding rods.

[0010] Movable slide plate: It is slidably installed in the moving slot. The movable slide plate has guide holes and a locking block is fixedly connected to one side of the movable slide plate.

[0011] Cabinet door: Located at the front of the storage cabinet, with two sets of fixed locking blocks fixedly connected to one end of the inner side of the cabinet door. A locking slot is provided on the opposite side of the fixed locking block, and the locking block is fitted into the locking slot.

[0012] In at least some embodiments, the cabinet door is hinged to a fixed hinge via a movable hinge, and a handle is fixedly connected to one side of the front end of the cabinet door.

[0013] In at least some embodiments, the honeycomb channel has a stabilizing structure inside, the stabilizing structure including a supporting base plate and a first clamping plate, the supporting base plate being fixedly connected inside the honeycomb channel, and the first clamping plate being fixedly connected to both ends of the supporting base plate.

[0014] In at least some embodiments, a movable groove is provided in the middle of the supporting base plate, and guide grooves are provided on both sides of the supporting base plate.

[0015] In at least some embodiments, a dual-axis motor is fixedly installed at the middle of the movable groove, and a lead screw is fixedly connected to the drive end of the dual-axis motor.

[0016] In at least some embodiments, the movable groove is provided with a movable belt block, a threaded hole is opened in the middle of the movable belt block, the threaded hole engages with the lead screw, a second clamping plate is fixedly connected to the top of the movable belt block, and guide blocks are fixedly connected to both ends of the bottom of the second clamping plate, and the guide blocks are slidably installed in the guide groove.

[0017] This utility model provides an intelligent sensor-controlled drone storage beehive, which has the following advantages:

[0018] 1. By setting up a storage structure, an identity verification process is required before opening the cabinet door. The system accurately compares and verifies the user's identity information. Only after successful verification will the electromagnet be energized under the controller's command, thus unlocking the cabinet door. This effectively prevents unauthorized personnel from taking the drone without authorization, avoiding potential risks such as equipment loss, data leakage, and unauthorized operation from the source, and improving the security of drone storage.

[0019] 2. By setting up a stable structure, the bottom support frame of the drone in the honeycomb slot is clamped and limited, preventing the drone from moving unnecessarily and preventing the drone from being damaged by collisions. Attached Figure Description

[0020] Figure 1 This is a schematic diagram of the structure of this utility model.

[0021] Figure 2 This is a schematic diagram of the cabinet door structure after it is opened according to this utility model.

[0022] Figure 3 This is a partially enlarged schematic diagram of the storage structure of this utility model.

[0023] Figure 4 This is a schematic diagram of the cabinet door structure of this utility model.

[0024] Figure 5 This is a schematic diagram of the stable structural bearing base plate and the first clamping plate of this utility model.

[0025] Figure 6 This is a schematic diagram of the structural components of the stable structure of this utility model.

[0026] In the diagram, the correspondence between component names and drawing numbers is as follows:

[0027] 1. Control cabinet;

[0028] 101. Display screen; 1011. Card reader;

[0029] 2. Storage structure;

[0030] 201. Storage cabinet; 2011. Honeycomb trough; 2012. Fixed hinge;

[0031] 202. Fixed support; 2021. Movable frame; 2022. Moving slot; 2023. Electromagnet; 2024. Fixed slide bar; 2025. Spring;

[0032] 203. Movable sliding plate; 2031. Guide sliding hole; 2032. Locking block;

[0033] 204. Cabinet door; 2041. Hinge; 2042. Handle;

[0034] 205. Fixed locking block; 2051. Locking slot;

[0035] 3. Stable structure;

[0036] 301. Support base plate; 3011. First clamping plate; 3012. Movable groove; 3013. Guide groove;

[0037] 302, Dual-shaft motor; 3021, Lead screw;

[0038] 303, Second clamping plate; 3031, Guide block; 3032, Moving belt block; 3033, Threaded hole. Detailed Implementation

[0039] The embodiments of this utility model will be described in further detail below with reference to the accompanying drawings and examples. The following examples are for illustrative purposes only and should not be construed as limiting the scope of this utility model.

[0040] Example 1: As shown in the attached document Figure 1 To be continued Figure 6 As shown:

[0041] This utility model provides an intelligent sensor drone storage beehive, including: a control cabinet 1 and a storage structure 2;

[0042] The control cabinet 1 is equipped with a display screen 101, and a card reader 1011 is located at the bottom of the display screen 101. A storage structure 2 is located on one side of the control cabinet 1, and the storage structure 2 includes the following components:

[0043] Storage cabinet 201: Located on one side of control cabinet 1, storage cabinet 201 has a honeycomb groove 2011 inside, and a fixed hinge 2012 is fixedly connected to one side of storage cabinet 201.

[0044] Fixed support 202: Fixedly connected to one side of storage cabinet 201. A movable frame 2021 is fixedly connected to the fixed support 202. A movable slot 2022 is opened inside the movable frame 2021. An electromagnet 2023 is fixedly installed in the middle of the movable slot 2022. Fixed slide rods 2024 are fixedly connected between the two sides of the electromagnet 2023 and the two ends of the movable slot 2022. A spring 2025 is provided on the outside of the fixed slide rods 2024.

[0045] Movable slide plate 203: It is slidably installed in the moving groove 2022. The movable slide plate 203 has a guide sliding hole 2031. A locking block 2032 is fixedly connected to one side of the movable slide plate 203.

[0046] Cabinet door 204: Located at the front end of storage cabinet 201, the inner side of cabinet door 204 is fixedly connected to two sets of fixing lock blocks 205. The opposite side of the fixing lock block 205 has a locking slot 2051, and the locking plug 2032 is fitted into the locking slot 2051.

[0047] Cabinet door 204 is hinged to fixed hinge 2012 via movable hinge 2041, and a handle 2042 is fixedly connected to one side of the front end of cabinet door 204.

[0048] Control cabinet 1 contains a control system. Display screen 101 shows which cabinets are empty for easy placement. Card reader 1011 is electrically connected to the control system, which stores user identification information. Electromagnet 2023 is also electrically connected to the control system. Therefore, when a user opens cabinet door 204, they need to verify their identification card at card reader 1011. The control system then accurately compares and verifies the information with the user's identification information in the database. After verification, the control system controls electromagnet 2023 to open, causing the movable slide 203 to move under magnetic attraction. The movable slide plate 203 causes the locking block 2032 to disengage from the locking slot 2051, thereby opening the cabinet door 204 to retrieve the drone. When closing, the control system de-energizes the electromagnet 2023 by closing the cabinet door 204, causing it to lose its magnetic attraction. As the movable slide plate 203 moves, it compresses the spring 2025, causing the spring 2025 to become elastic. When the pressure is released, the spring 2025 releases its elasticity, thereby pushing the movable slide plate 203 to move. The movable slide plate 203 then causes the locking block 2032 to reset and insert into the locking slot 2051, thus completing the closing of the cabinet door 204.

[0049] Example 2: Based on Example 1, wherein... Figure 5 and Figure 6 As shown, the honeycomb channel 2011 has a stabilizing structure 3 inside. The stabilizing structure 3 includes a supporting base plate 301 and a first clamping plate 3011. The supporting base plate 301 is fixedly connected inside the honeycomb channel 2011, and the first clamping plate 3011 is fixedly connected to both ends of the supporting base plate 301.

[0050] A movable groove 3012 is provided in the middle of the supporting base plate 301, and guide grooves 3013 are provided on both sides of the supporting base plate 301.

[0051] A dual-axis motor 302 is fixedly installed in the middle of the movable slot 3012, and a lead screw 3021 is fixedly connected to the drive end of the dual-axis motor 302.

[0052] The movable groove 3012 is provided with a movable belt block 3032. A threaded hole 3033 is opened in the middle of the movable belt block 3032. The threaded hole 3033 meshes with the lead screw 3021. A second clamping plate 303 is fixedly connected to the top of the movable belt block 3032. Guide blocks 3031 are fixedly connected to both ends of the bottom of the second clamping plate 303. The guide blocks 3031 are slidably installed in the guide groove 3013.

[0053] By placing the drone on the support base plate 301, and then controlling the dual-axis motor 302 to rotate, the dual-axis motor 302 drives the lead screw 3021 to rotate. The lead screw 3021 rotates and engages with the threaded hole 3033 on the moving belt block 3032. However, the moving belt block 3032 is limited and guided in the guide groove 3013 by the guide block 3031. Then, the lead screw 3021 drives the moving belt block 3032 to move in the opposite direction. The moving belt block 3032 drives the second clamping plate 303 to cooperate with the first clamping plate 3011 to clamp and limit the support frame at the bottom of the drone.

[0054] The specific usage and function of this embodiment are as follows:

[0055] In this invention, when opening the cabinet door 204, an identity card needs to be verified at the card reader 1011. The control system then accurately compares and verifies the information with the user's identity information in the database. After verification, the control system controls the electromagnet 2023 to open, causing the movable slide plate 203 to move under magnetic attraction. The movable slide plate 203 then disengages the locking block 2032 from the locking slot 2051, allowing the cabinet door 204 to be opened and the drone to be retrieved. To close the cabinet door 204, the control system de-energizes the electromagnet 2023. The magnetic attraction is lost because the movable slide plate 203 compresses the spring 2025 when it moves, causing the spring 2025 to become elastic. When the pressure is released, the spring 2025 releases its elasticity, which in turn pushes the movable slide plate 203 to move. The movable slide plate 203 then drives the locking block 2032 to reset and insert into the locking slot 2051, thereby completing the closing of the cabinet door 204. This effectively prevents unauthorized personnel from taking the drone without authorization, avoids potential risks such as equipment loss, data leakage, and illegal operation from the source, and improves the security of the drone storage process.

Claims

1. A smart sensor-controlled drone storage beehive, comprising: Control cabinet (1) and storage structure (2); The control cabinet (1) is equipped with a display screen (101), and a card reader (1011) is provided at the bottom of the display screen (101). A storage structure (2) is provided on one side of the control cabinet (1). The storage structure (2) is characterized in that it includes the following components: Storage cabinet (201): Located on one side of control cabinet (1), the storage cabinet (201) has a honeycomb groove (2011) inside, and a fixed hinge (2012) is fixedly connected to one side of the storage cabinet (201). Fixed support (202): Fixedly connected to one side of storage cabinet (201), a movable frame (2021) is fixedly connected to the fixed support (202), a movable slot (2022) is opened inside the movable frame (2021), an electromagnet (2023) is fixedly installed in the middle of the movable slot (2022), a fixed slide rod (2024) is fixedly connected between the two sides of the electromagnet (2023) and the two ends of the movable slot (2022), and a spring (2025) is provided on the outside of the fixed slide rod (2024). Movable slide plate (203): It is slidably installed in the moving slot (2022). The movable slide plate (203) is provided with a guide slide hole (2031). A locking plug (2032) is fixedly connected to one side of the movable slide plate (203). Cabinet door (204): Located at the front end of the storage cabinet (201), the inner side of the cabinet door (204) is fixedly connected with two sets of fixed locking blocks (205). The opposite side of the fixed locking blocks (205) is provided with a locking slot (2051), and the locking plug (2032) is fitted into the locking slot (2051).

2. The intelligent sensing drone storage beehive as described in claim 1, characterized in that: The cabinet door (204) is hinged to a fixed hinge (2012) via a movable hinge (2041), and a handle (2042) is fixedly connected to one side of the front end of the cabinet door (204).

3. The intelligent sensing drone storage beehive as described in claim 1, characterized in that: The honeycomb (2011) has a stabilizing structure (3) inside. The stabilizing structure (3) includes a supporting base plate (301) and a first clamping plate (3011). The supporting base plate (301) is fixedly connected inside the honeycomb (2011), and the first clamping plate (3011) is fixedly connected to both ends of the supporting base plate (301).

4. The intelligent sensing drone storage beehive as described in claim 3, characterized in that: A movable groove (3012) is provided in the middle of the bearing base plate (301), and guide grooves (3013) are provided on the bearing base plate (301) on both sides of the movable groove (3012).

5. The intelligent sensing drone storage beehive as described in claim 4, characterized in that: A dual-axis motor (302) is fixedly installed in the middle of the movable groove (3012), and a lead screw (3021) is fixedly connected to the drive end of the dual-axis motor (302).

6. The intelligent sensing drone storage beehive as described in claim 4, characterized in that: The movable groove (3012) is provided with a movable belt block (3032), and a threaded hole (3033) is opened in the middle of the movable belt block (3032). The threaded hole (3033) meshes with the lead screw (3021). A second clamping plate (303) is fixedly connected to the top of the movable belt block (3032), and guide blocks (3031) are fixedly connected to both ends of the bottom of the second clamping plate (303). The guide blocks (3031) are slidably installed in the guide groove (3013).