An internet of things edge computing data storage and forwarding device
By coordinating the connecting plate and the drive rod, the position of the limiting plate is adjusted, enabling the rapid installation or disassembly of the IoT edge computing data storage and forwarding device. This solves the problem of disassembly difficulty caused by spring breakage and optimizes the installation and disassembly method.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- ZHUHAI DAZHENG NETWORK TECHNOLOGY CO LTD
- Filing Date
- 2025-11-09
- Publication Date
- 2026-07-21
AI Technical Summary
During the disassembly process of existing IoT edge computing data storage and forwarding devices, the difficulty of disassembly increases and the disassembly time is extended due to spring breakage.
By coordinating the connecting plate and the drive rod, the position of the limiting plate can be adjusted to enable quick installation or removal of the housing, optimizing the installation and removal process and reducing the complexity of disassembly.
It effectively solves the problem of disassembly difficulty caused by spring breakage, and reduces the complexity and time of disassembly.
Smart Images

Figure CN224536698U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of data processing technology, specifically to an IoT edge computing data storage and forwarding device. Background Technology
[0002] An IoT edge computing data storage and forwarding device is a device used for data processing, storage, and forwarding in an IoT environment. This device is typically deployed at the network edge, close to the data source, and can process and analyze data in real time, reducing latency and bandwidth requirements for data transmission to the cloud or data center. The device has internal redundant power supplies, meaning it is equipped with multiple power modules to ensure that if one power module fails, the others can continue to supply power, thus guaranteeing the normal operation of the device. (Existing technology: Authorization Publication No. CN 110594558) Patent A discloses a data acquisition terminal fixing device that is easy to disassemble and has anti-slip properties. The device includes a data acquisition unit with a lower retaining ring rotatably connected to the bottom left side. A movable rod is movably connected to the middle of the lower retaining ring, and a groove is formed on the inner side of the movable rod. This easy-to-disassemble and anti-slip fixing device uses the cooperation of the movable rod and the movable block. During use, when the upper and lower retaining rings are connected, a spring moves the top block, causing the top block and the retaining block to fit together, thus connecting the upper and lower retaining rings and fixing the device. However, during disassembly, the thrust generated by the extension of the spring needs to be overcome to separate the top block and the retaining block. Furthermore, the spring is prone to fatigue and damage during repeated compression and release, which can lead to sudden breakage during disassembly. This not only increases the difficulty of disassembly but also prolongs the disassembly time. Therefore, we propose an IoT edge computing data storage and forwarding device. Utility Model Content
[0003] The technical problem to be solved by this utility model is to overcome the existing defects and provide an IoT edge computing data storage and forwarding device. By cooperating with the connecting plate and the drive rod, the position of the limiting plate can be adjusted, thereby realizing the quick installation or disassembly of the shell. This optimizes the installation and disassembly method, solves the problem of increased disassembly difficulty due to spring breakage, and further reduces the complexity and time required for disassembly. It can effectively solve the problems in the background technology.
[0004] To achieve the above objectives, the present invention provides the following technical solution: an Internet of Things edge computing data storage and forwarding device, including a housing, an installation groove and a cavity respectively provided in the middle of the lower end of the housing and the lower side of the interior, a data processing module and a hard disk respectively provided on the right side of the bottom wall of the housing, and also including an assembly and disassembly mechanism;
[0005] The assembly / disassembly mechanism includes a limiting plate, a fixing rod, an adjusting plate, and a driving rod. The fixing rod is rotatably connected to the middle of the bottom wall of the cavity. An adjusting plate is provided on the upper side of the outer arc surface of the fixing rod. Driving rods are provided on the left and right sides of the lower end of the adjusting plate. Limiting plates are provided on the left and right sides inside the mounting groove. Through the cooperation of the connecting plate and the driving rod, the position of the limiting plate can be adjusted, thereby realizing the quick installation or disassembly of the shell. This optimizes the assembly / disassembly method, solves the problem of increased disassembly difficulty due to spring breakage, and further reduces the complexity and time required for disassembly.
[0006] Furthermore, it also includes a control switch assembly, a battery, and a power management module. The control switch assembly is located at the front end of the housing, the batteries are located on the rear side of the bottom wall of the housing, and the power management module is located on the left side of the bottom wall of the housing. Both sets of batteries are located behind the power management module. The output terminals of the batteries are electrically connected to the input terminals of the control switch assembly. The input terminal of the power management module is electrically connected to the output terminal of the control switch assembly. The input terminal of the data processing module is electrically connected to the output terminal of the power management module. The hard disk is bidirectionally electrically connected to the data processing module, enabling the regulation of the electrical components inside the device.
[0007] Furthermore, the assembly / disassembly mechanism also includes mounting rods, connecting plates, and push plates. The mounting rods are respectively disposed on the left and right sides inside the cavity. The right ends of two longitudinally adjacent mounting rods are slidably connected to sliding holes on the front and rear sides of the left end of a connecting plate. Push plates are slidably connected in the clearance grooves in the middle of the left and right walls of the mounting groove. The opposite outer ends of the two push plates are respectively fixedly connected to the opposite inner ends of two laterally adjacent connecting plates. Push plates are disposed on the opposite inner ends of the two push plates. The upper end of the connecting plate is provided with a drive groove. The lower ends of the drive rods are respectively located inside the vertically adjacent drive grooves, which can fix the outer shell.
[0008] Furthermore, the assembly / disassembly mechanism also includes a slider and an adjusting rod. The slider is slidably connected to a groove provided in the middle of the cavity bottom wall. An adjusting rod is provided in the middle of the upper end of the slider. An adjusting groove is provided on the right side of the upper end of the adjusting plate. The upper end of the adjusting rod is located inside the adjusting groove, which can drive the adjusting plate to rotate.
[0009] Furthermore, an electric push rod is provided on the right side of the front wall of the cavity. The rear end of the telescopic end of the electric push rod is fixedly connected to the front end of the slider, and the input end of the electric push rod is electrically connected to the output end of the control switch group, which can drive the slider to move.
[0010] Furthermore, shock-absorbing pad 1 is provided on the right side of the bottom wall of the outer casing. The upper end of shock-absorbing pad 1 is fixedly connected to the lower end of the motherboard. Shock-absorbing pad 2 is provided on the rear side of the upper end of the motherboard. The upper end of shock-absorbing pad 2 is fixedly connected to the lower end of the hard drive, which can reduce the vibration amplitude.
[0011] Furthermore, data interfaces are respectively provided on the right side of the front end of the outer shell. The data interfaces are bidirectionally electrically connected to the data processing module and can receive or transmit data.
[0012] Compared with the prior art, the beneficial effects of this utility model are as follows: This Internet of Things edge computing data storage and forwarding device has the following advantages:
[0013] By using the connecting plate and drive rod in combination, the position of the limiting plate can be adjusted, thereby enabling quick installation or removal of the outer shell. This optimizes the installation and removal method, solves the problem of increased disassembly difficulty due to spring breakage, and further reduces the complexity and time required for disassembly. Attached Figure Description
[0014] Figure 1 This is a schematic diagram of the structure of this utility model;
[0015] Figure 2 This is a schematic diagram of the upper sectional structure of this utility model;
[0016] Figure 3 This is a schematic diagram of the internal structure of the cavity in this utility model;
[0017] Figure 4 This is a schematic cross-sectional view of the lower end of the motherboard of this utility model;
[0018] Figure 5 This is a schematic cross-sectional view of the lower end of the hard disk of this utility model;
[0019] Figure 6 This is an enlarged structural diagram of point A in this utility model.
[0020] In the diagram: 1. Housing, 2. Control switch assembly, 3. Battery, 4. Power management module, 5. Main board, 6. Mounting slot, 7. Cavity, 8. Assembly / disassembly mechanism, 81. Mounting rod, 82. Connecting plate, 83. Push plate, 84. Limiting plate, 85. Fixing rod, 86. Adjusting plate, 87. Drive rod, 88. Slider, 89. Adjusting rod, 9. Electric push rod, 10. Data processing module, 11. Hard disk, 12. Shock-absorbing pad one, 13. Shock-absorbing pad two, 14. Data interface. Detailed Implementation
[0021] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.
[0022] Please see Figure 1-6This embodiment provides a technical solution: an IoT edge computing data storage and forwarding device, including a housing 1, with a mounting groove 6 and a cavity 7 respectively provided in the middle of the lower end of the housing 1 and the lower side of the interior, and a data processing module 10 and a hard disk 11 respectively provided on the right side of the bottom wall of the housing 1, and also includes a disassembly mechanism 8;
[0023] The assembly / disassembly mechanism 8 includes a limiting plate 84, a fixing rod 85, an adjusting plate 86, and a driving rod 87. The fixing rod 85 is rotatably connected to the middle of the bottom wall of the cavity 7. The adjusting plate 86 is provided on the upper side of the outer arc surface of the fixing rod 85. The driving rod 87 is provided on the left and right sides of the lower end of the adjusting plate 86. The limiting plate 84 is provided on the left and right sides inside the mounting groove 6. The adjusting component will drive the driving rod 87 to rotate. At this time, the driving rod 87 will slide inside the driving groove and rotate relative to the driving groove, so that the adjusting plate 86 drives the limiting plate 84 to move through the driving rod 87. Through the cooperation of the connecting plate 82 and the driving rod 87, the position of the limiting plate 84 can be adjusted, thereby realizing the quick installation or disassembly of the outer shell 1. The assembly / disassembly method is optimized, the problem of increased disassembly difficulty due to spring breakage is solved, and the complexity and time required for disassembly are further reduced.
[0024] The device also includes a control switch assembly 2, a battery 3, and a power management module 4. The control switch assembly 2 is located at the front end of the housing 1, the batteries 3 are located on the rear side of the bottom wall of the housing 1, and the power management module 4 is located on the left side of the bottom wall of the housing 1. Both sets of batteries 3 are located on the rear side of the power management module 4. The output terminals of the batteries 3 are electrically connected to the input terminals of the control switch assembly 2. The input terminal of the power management module 4 is electrically connected to the output terminal of the control switch assembly 2. The input terminal of the data processing module 10 is electrically connected to the output terminal of the power management module 4. The hard disk 11 is bidirectionally electrically connected to the data processing module 10, enabling the control of the electrical components inside the device.
[0025] The assembly / disassembly mechanism 8 includes mounting rods 81, connecting plates 82, and push plates 83. Mounting rods 81 are respectively located on the left and right sides inside the cavity 7. The right ends of two longitudinally adjacent mounting rods 81 are slidably connected to sliding holes on the front and rear sides of the left end of a connecting plate 82. Push plates 83 are slidably connected in clearance grooves in the middle of the left and right walls of the mounting groove 6. A drive groove is provided at the upper end of each connecting plate 82. The lower ends of drive rods 84 are located inside vertically adjacent drive grooves. The opposing outer ends of two push plates 83 are fixedly connected to the opposite inner ends of two laterally adjacent connecting plates 82. Push plates 83 are provided at the opposite inner ends of each push plate 83. 3. The connecting plate 82 will drive the limiting plate 84 to move through the push plate 83. Finally, the limiting plate 84 will contact the front and rear ends of the installation station or the mounting frame. At this time, due to the increased friction between the limiting plate 84 and the front and rear ends of the installation station or the mounting frame, the electric push rod 9 can no longer extend. This indicates that the limiting plate 84 has been firmly contacted with the front and rear ends of the installation station or the mounting frame. The operator can then gently pull the outer shell 1 upwards to confirm whether it is firmly fixed. If the outer shell 1 is found to be loose, the electric push rod 9 can be extended appropriately until the outer shell 1 stops loosening. This is how the installation and fixing of the IoT edge computing data storage and forwarding device is achieved.
[0026] The assembly / disassembly mechanism 8 also includes a slider 88 and an adjusting rod 89. The slider 88 is slidably connected to a groove provided in the middle of the bottom wall of the cavity 7. The adjusting rod 89 is provided in the middle of the upper end of the slider 88. An adjusting groove is provided on the right side of the upper end of the adjusting plate 86. The upper end of the adjusting rod 89 is located inside the adjusting groove. During the movement of the slider 88, the adjusting rod 89 will slide inside the adjusting groove and rotate relative to the adjusting groove, thereby causing the slider 88 to drive the adjusting plate 86 to rotate around the fixed rod 85 through the adjusting rod 89.
[0027] Wherein: An electric push rod 9 is provided on the right side of the front wall of cavity 7. The rear end of the telescopic end of the electric push rod 9 is fixedly connected to the front end of the slider 88. The input end of the electric push rod 9 is electrically connected to the output end of the control switch group 2. By adjusting the control switch group 2, the electric push rod 9 starts to run. The telescopic end of the electric push rod 9 extends, thereby causing the electric push rod 9 to drive the adjusting rod 89 to move backward through the slider 88. (During the movement of the slider 88, the slide groove provides a guide support, thereby reducing the radial force applied by the slider 88 to the electric push rod 9, preventing the telescopic end of the electric push rod 9 from bending and deforming. The radial force of the electric push rod 9 is borne by the sliding of the slide groove, and the electric push rod 9 is only subjected to the axial force of the front and rear).
[0028] The following components are provided: Shock-absorbing pad 12 is installed on the right side of the bottom wall of the outer casing 1, with the upper end of each pad fixedly connected to the lower end of the motherboard 5. Shock-absorbing pad 23 is installed on the rear side of the upper end of the motherboard 5, with the upper end of each pad fixedly connected to the lower end of the hard drive 11. Shock-absorbing pads 12 and 23 are made of silicone and have good elasticity, capable of elastic deformation under external force. When the external force disappears, the material can return to its original shape. During elastic deformation, shock-absorbing pads 12 and 23 store some energy, which is released when the material returns to its original shape, thus reducing the amplitude of vibration. The internal molecular structure of shock-absorbing pads 12 and 23 generates internal friction during deformation, which converts mechanical energy into heat energy, thereby dissipating energy and reducing the vibration amplitude and frequency of the motherboard 5 and hard drive 11.
[0029] Among them, data interfaces 14 are respectively provided on the right side of the front end of the outer shell 1. The data interfaces 14 are bidirectionally electrically connected to the data processing module 10. The serial communication interface built into the data processing module 10 can receive data from the external Internet of Things through the data interfaces 14.
[0030] The working principle of the IoT edge computing data storage and forwarding device provided by this utility model is as follows: Before use, the top wall of the mounting groove 6 is brought into contact with the upper end of the corresponding installation station or mounting frame. Then, by controlling the switch group 2, the electric push rod 9 starts to run, and the telescopic end of the electric push rod 9 extends, thereby causing the electric push rod 9 to drive the adjusting rod 89 to move backward through the slider 88 (during the movement of the slider 88, the slide groove provides a guide support, thereby reducing the radial force applied by the slider 88 to the electric push rod 9, preventing the telescopic end of the electric push rod 9 from bending and deforming, the radial force of the electric push rod 9 is borne by the sliding of the slide groove, and the electric push rod 9 is only subjected to the axial force of the front and rear). At this time, the adjusting rod 89 slides inside the adjusting groove and is relative to the adjusting groove. The slider 88 rotates, causing the adjusting plate 86 to rotate around the fixed rod 85 via the adjusting rod 89. The adjusting plate 86 then drives the driving rod 87 to rotate. At this time, the driving rod 87 slides inside the driving groove and rotates relative to the driving groove, causing the adjusting plate 86 to move the connecting plate 82 via the driving rod 87. The connecting plate 82 then moves the limiting plate 84 via the push plate 83. When the limiting plate 84 contacts the front and rear ends of the installation station or mounting frame, the electric push rod 9 can no longer extend, and the friction between the limiting plate 84 and the front and rear ends of the installation station or mounting frame increases. The operator can then gently pull the outer shell 1 upwards to confirm whether it is securely fixed. If the outer shell 1 is found to be loose, it indicates that the limiting plate 84 is not secure. If the device is not properly positioned, the electric push rod 9 can be extended appropriately until the outer casing 1 stops loosening, thereby securing the IoT edge computing data storage and forwarding device. During subsequent use, the IoT edge computing data storage and forwarding device, through the control of switch group 2, closes the circuit between one set of batteries 3 and the power management module 4. The power management module 4 internally houses a high-efficiency DC-DC converter, whose core function is to convert the voltage of the batteries 3 into the voltage used by the data processing module 10 load and provide a stable voltage output. The power management module 4, through its built-in control circuit and switches, can control the power path and achieve power switching. The power management module 4 also uses built-in detection equipment to detect the battery level. If battery 3 fails, the power management module 4 will automatically switch to another battery 3 to provide power, thus ensuring the normal operation of the equipment. The data processing module 10's built-in serial communication interface can receive data from an external IoT device through data interface 14. The data processing module 10 then processes and analyzes the data in real time, extracts key information, and reduces the amount of data. Subsequently, the data processing module 10 transmits the processed data to the hard disk 11 through the built-in serial communication interface. The hard disk 11 receives the data through its built-in serial communication interface and stores it. When data needs to be forwarded, the hard disk 11 transmits the stored data to the data processing module 10 through its built-in serial communication interface.Then, the data processing module 10 transmits the data to the data interface 14 through the built-in serial communication interface according to preset rules and conditions. Finally, the data interface 14 transmits the data to the cloud or data center. The shock-absorbing pads 12 and 13 are made of silicone and have good elasticity, capable of elastic deformation under external force. When the external force disappears, the material can return to its original shape. During the elastic deformation process, the shock-absorbing pads 12 and 13 store some energy, which is released when the material returns to its original shape, thereby reducing the amplitude of vibration. The molecular structure inside the shock-absorbing pads 12 and 13 generates internal friction during deformation. This internal friction converts mechanical energy into heat energy, thus dissipating energy and reducing the vibration amplitude and frequency of the motherboard 5 and hard drive 11. Later, during the disassembly of the IoT edge computing data storage and forwarding device, the control switch... In Group 2, the electric push rod 9 begins operation. The telescopic end of the electric push rod 9 retracts, causing it to move the adjusting rod 89 forward via the slider 88. At this time, the adjusting rod 89 slides within the adjusting groove and rotates relative to it. This causes the slider 88 to rotate the adjusting plate 86 around the fixed rod 85 via the adjusting rod 89. The adjusting plate 86 then rotates the drive rod 87. The drive rod 87 slides within the drive groove and rotates relative to it, causing the adjusting plate 86 to move the connecting plate 82 via the drive rod 87. The connecting plate 82 then moves the limiting plate 84 via the push plate 83. The distance between the two limiting plates 84 gradually increases, eventually separating the limiting plates 84 from the front and rear ends of the installation station or mounting frame. The operator can then remove the IoT edge computing data storage and forwarding device, thus completing the disassembly process.
[0031] It is worth noting that the battery 3 disclosed in the above embodiments can be a 6GFM12-100, the power management module 4 can be a TPS65912, the electric actuator 9 can be an L12-100-50-6-S, the data processing module 10 can be an Intel Atomx6425E, the hard drive 11 can be a Samsung 970EVO Plus, and the data interface 14 can be a USB 3.0. The data processing module 10 controls the operation of the hard drive 11 and the data interface 14 using methods commonly used in the prior art. The control switch group 2 is provided with switch buttons that correspond one-to-one with the power management module 4 and the electric actuator 9 and are used to control their switching.
[0032] The above description is merely an embodiment of this utility model and does not limit the patent scope of this utility model. Any equivalent structural or procedural transformations made based on the content of this utility model specification and drawings, or direct or indirect applications in other related technical fields, are similarly included within the patent protection scope of this utility model.
Claims
1. An IoT edge computing data storage and forwarding device, comprising a housing (1), wherein a mounting groove (6) and a cavity (7) are respectively provided in the middle of the lower end of the housing (1) and the lower side of the interior, and a data processing module (10) and a hard disk (11) are respectively provided on the right side of the bottom wall of the housing (1), characterized in that: It also includes a disassembly and assembly mechanism (8); The assembly / disassembly mechanism (8) includes a limiting plate (84), a fixing rod (85), an adjusting plate (86), and a driving rod (87). The fixing rod (85) is rotatably connected to the middle of the bottom wall of the cavity (7). An adjusting plate (86) is provided on the upper side of the outer arc surface of the fixing rod (85). A driving rod (87) is provided on the left and right sides of the lower end of the adjusting plate (86). A limiting plate (84) is provided on the left and right sides inside the mounting groove (6).
2. The IoT edge computing data storage and forwarding device according to claim 1, characterized in that: It also includes a control switch group (2), a battery (3) and a power management module (4). The control switch group (2) is located at the front end of the housing (1), the batteries (3) are located on the rear side of the bottom wall of the housing (1), and the power management module (4) is located on the left side of the bottom wall of the housing (1). Both sets of batteries (3) are located on the rear side of the power management module (4). The output terminals of the batteries (3) are electrically connected to the input terminals of the control switch group (2), the input terminal of the power management module (4) is electrically connected to the output terminal of the control switch group (2), the input terminal of the data processing module (10) is electrically connected to the output terminal of the power management module (4), and the hard disk (11) is bidirectionally electrically connected to the data processing module (10).
3. The IoT edge computing data storage and forwarding device according to claim 1, characterized in that: The assembly / disassembly mechanism (8) further includes an installation rod (81), a connecting plate (82), and a push plate (83). The installation rods (81) are respectively located on the left and right sides inside the cavity (7). The right ends of two longitudinally adjacent installation rods (81) are slidably connected to the sliding holes opened on the front and rear sides of the left end of a connecting plate (82). Push plates (83) are slidably connected in the clearance grooves opened in the middle of the left and right walls of the mounting groove (6). The opposite outer ends of the two push plates (83) are respectively fixedly connected to the opposite inner ends of two laterally adjacent connecting plates (82). Push plates (83) are provided on the opposite inner ends of the two push plates (83). The upper end of the connecting plate (82) is provided with a drive groove. The lower ends of the drive rods (87) are respectively located inside the vertically adjacent drive grooves.
4. The IoT edge computing data storage and forwarding device according to claim 2, characterized in that: The assembly / disassembly mechanism (8) further includes a slider (88) and an adjusting rod (89). The slider (88) is slidably connected to a groove provided in the middle of the bottom wall of the cavity (7). An adjusting rod (89) is provided in the middle of the upper end of the slider (88). An adjusting groove is provided on the right side of the upper end of the adjusting plate (86). The upper end of the adjusting rod (89) is located inside the adjusting groove.
5. The IoT edge computing data storage and forwarding device according to claim 4, characterized in that: An electric push rod (9) is provided on the right side of the front wall of the cavity (7). The rear end of the telescopic end of the electric push rod (9) is fixedly connected to the front end of the slider (88). The input end of the electric push rod (9) is electrically connected to the output end of the control switch group (2).
6. The IoT edge computing data storage and forwarding device according to claim 1, characterized in that: Shock-absorbing pad one (12) is provided on the right side of the bottom wall of the outer shell (1). The upper end of the shock-absorbing pad one (12) is fixedly connected to the lower end of the motherboard (5). Shock-absorbing pad two (13) is provided on the rear side of the upper end of the motherboard (5). The upper end of the shock-absorbing pad two (13) is fixedly connected to the lower end of the hard disk (11).
7. The IoT edge computing data storage and forwarding device according to claim 1, characterized in that: Data interfaces (14) are respectively provided on the right side of the front end of the outer shell (1), and the data interfaces (14) are bidirectionally electrically connected to the data processing module (10).