An internet of things data processing terminal
By using a mounting mechanism with grooves, transverse grooves, limiting holes, and wiring mechanisms in the IoT data processing terminal, the problem of integrated installation of hardware equipment is solved, and stable wiring and normal equipment operation are achieved.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- YUANQI SENYU (ZHEJIANG) NETWORK TECHNOLOGY CO LTD
- Filing Date
- 2025-08-21
- Publication Date
- 2026-07-21
Smart Images

Figure CN224538490U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of Internet of Things (IoT) component technology, and in particular to an IoT data processing terminal. Background Technology
[0002] The Internet of Things (IoT) refers to a network of physical devices and objects connected and communicating via the Internet. It is a system composed of sensors, software, and communication devices. Through information sensing devices and according to agreed protocols, any object is connected to the network. Objects exchange and communicate information through information transmission media to achieve functions such as intelligent identification, positioning, tracking, and monitoring. In the configuration of an IoT system, the data terminal processing module is an important component.
[0003] Existing IoT system data processing terminals have the following drawbacks: IoT systems typically use various sensors and monitors at the data acquisition terminals to monitor equipment operation. The collected data needs to be sent to the data processing terminal for centralized processing. The data processing terminal usually consists of modules such as a controller module, development board, power supply module, data storage module, and communication module. Especially in applications such as factory IoT and warehouse IoT, the large number of acquisition terminals necessitates even more hardware for the data processing terminal. There is a lack of a device that can be integrated, installed, and conveniently used for centralized data processing. Therefore, we propose an IoT data processing terminal. Utility Model Content
[0004] The main objective of this invention is to provide an Internet of Things (IoT) data processing terminal. Through the internal mounting mechanism of the rack, various hardware devices in the IoT data processing terminal can be integrated and installed in an orderly and stable manner, facilitating wiring, debugging, and operation, and effectively solving the problems in the background technology.
[0005] To achieve the above objectives, the technical solution adopted by this utility model is as follows:
[0006] An Internet of Things (IoT) data processing terminal includes a rack, and the rack contains an installation mechanism for mounting IoT data processing terminal hardware devices, comprising:
[0007] Slides: Vertically symmetrically opened on both sides of the inner wall of the rack and equally spaced inside the rack, the rack is vertically slidably connected to a perforated plate for installing IoT terminal processing hardware through the slides, and both ends of the perforated plate are provided with sliders that insert into the slides.
[0008] Horizontal groove: It is opened horizontally inside the slider and faces the inner wall of the frame. A spring is installed inside it and a clamp rod that fixes the height of the perforated plate is movably connected to the spring.
[0009] Limiting holes: horizontally opened at the top and middle of the slide groove and corresponding to the position of the locking rod. The end of the locking rod facing the limiting hole is welded with an arc-shaped end that can be inserted into the limiting hole.
[0010] Furthermore, it also includes a wiring mechanism. The frame is internally equipped with a wiring mechanism, which includes a wire hole, wire clamps A and B, and wiring grooves. A wire hole is provided at the top of the inner wall of the frame, and wire clamps A are installed near the wire hole. Wire clamps B are installed at the bottom of each slider. Wiring grooves are vertically provided on the inner wall of the frame next to the limiting holes. When the hardware is installed and wiring is being performed, the wire is passed through the wire hole into the frame, and then through the wiring grooves and the hardware on the perforated plate surface. The connection is made so that the wires near the slider are fixed by wire clamp B, and a certain length of wire is reserved inside the frame so that the wires are curved inside the frame. At the same time, the wires near the wire hole are fixed by wire clamp A to complete the wiring. Since the wires have extra bending length inside the frame, when the height of the perforated plate is adjusted, the reserved part of the wires inside the frame will be stretched, so as not to pull the connection end of the wires, and will not affect the stability of communication and power supply, and can maintain the normal operation of various hardware devices.
[0011] Furthermore, the perforated plate has spaced mounting holes inside, and the terminal processing module and the integrated control module are detachably connected to the perforated plate through the mounting holes and fasteners; the terminal processing module and the integrated control module are installed on the surface of the perforated plate through the fasteners and mounting holes, while the integrated control module is located on the outermost surface of the perforated plate for easy operation and adjustment.
[0012] Furthermore, a groove is horizontally formed at the bottom of one side of the perforated plate surface; the groove structure facilitates the adjustment of the height of the perforated plate.
[0013] Furthermore, both sides of the top of the rack are fitted with clip covers; after the wiring is completed, the clip covers are inserted into the top of the rack to close the top of the rack. When it is necessary to tidy up the wiring or install the equipment, the clip covers can be removed for operation.
[0014] Compared with the prior art, this utility model has the following advantages: A sliding groove is provided at intervals inside the frame, and a perforated plate is installed through the sliding groove. Mounting holes are provided at intervals on the surface of the perforated plate, allowing the installation of various commonly used terminal processing modules and integrated control modules using fasteners. Different hardware devices can be installed on each layer of the perforated plate. In the unused state, the perforated plate supporting the hardware is located at the top of the frame, and the arc-shaped end of the locking rod is inserted into the limiting hole. When data control and hardware installation adjustments are required, the perforated plate can be pulled down along the sliding groove, causing the locking rod to be squeezed and the spring to be compressed, thus adjusting the height of the perforated plate. After the height is lowered to the bottom of the frame, the end of the locking rod is precisely inserted into the corresponding limiting hole, fixing the height of the perforated plate. This multi-layer adjustable perforated plate structure enables the installation of various IoT data processing terminals. The integrated installation of hardware facilitates wiring, debugging, and operation. The height and position of each layer of perforated board can be flexibly adjusted to meet the needs of different installation and working conditions. When the hardware is installed and wiring is being done, the cable is passed through the cable hole into the rack, then through the cable tray to connect with the hardware on the surface of the perforated board. At the same time, the cable near the slider is fixed by the cable clamp B. A certain length of cable is reserved inside the rack, so that the cable is curved inside the rack. The cable near the cable hole is held and fixed by the cable clamp A to complete the wiring. Because the cable has extra bending length inside the rack, when the height of the perforated board is adjusted, the reserved part of the cable inside the rack will be stretched, thus preventing the cable connection from being pulled and ensuring the stability of communication and power supply, maintaining the normal operation of each hardware device. Attached Figure Description
[0015] Figure 1 This is a schematic diagram of the overall structure of an Internet of Things (IoT) data processing terminal according to this utility model.
[0016] Figure 2 This is a schematic diagram of the rack structure of an Internet of Things (IoT) data processing terminal according to this utility model.
[0017] Figure 3 This is a schematic diagram of the connection between the slider and the groove in an Internet of Things (IoT) data processing terminal according to this utility model.
[0018] Figure 4 This is a schematic diagram of the internal structure of the rack of an Internet of Things (IoT) data processing terminal according to this utility model.
[0019] In the diagram: 1. Frame; 2. Mounting mechanism; 201. Slide groove; 202. Perforated plate; 203. Mounting hole; 204. Terminal processing module; 205. Integrated control module; 206. Slider; 207. Horizontal groove; 208. Spring; 209. Locking rod; 210. Arc-shaped end; 211. Limiting hole; 212. Groove; 3. Cable routing mechanism; 301. Cover; 302. Cable hole; 303. Cable clamp A; 304. Cable clamp B; 305. Cable routing groove. Detailed Implementation
[0020] To make the technical means, creative features, objectives and effects of this utility model easier to understand, the present utility model will be further described below in conjunction with specific embodiments.
[0021] like Figure 1-4 As shown, an Internet of Things (IoT) data processing terminal includes a rack 1, and the rack 1 has an installation mechanism 2 for mounting IoT data processing terminal hardware devices, including:
[0022] Slide 201: It is symmetrically opened on both sides of the inner wall of the frame 1 in the vertical direction and is equally spaced inside the frame 1. The frame 1 is slidably connected to the perforated plate 202 for installing IoT terminal processing hardware through the slide 201 in the vertical direction, and both ends of the perforated plate 202 are provided with sliders 206 that are inserted into the slide 201.
[0023] Horizontal groove 207: It is horizontally opened inside the slider 206 facing the inner wall of the frame 1. A spring 208 is installed inside it and a locking rod 209 that fixes the height position of the perforated plate 202 is movably connected to the spring 208.
[0024] Limiting hole 211: It is horizontally opened at the top and middle part of the slide groove 201 and corresponds to the position of the locking rod 209. The end of the locking rod 209 facing the limiting hole 211 is welded with an arc-shaped end 210 that is inserted into the limiting hole 211.
[0025] The system also includes a wiring mechanism 3. The wiring mechanism 3 is installed inside the frame 1. The wiring mechanism 3 includes a wire hole 302, wire clamps A and B 304, and a wiring groove 305. A wire hole 302 is provided at the top of the inner wall of the frame 1, and wire clamps A are installed near the wire hole 302. Wire clamps B 304 are installed at the bottom of each slider 206. Wiring grooves 305 are vertically provided on the inner wall of the frame 1 next to the limiting hole 211. When the hardware is installed and wiring is being performed, the wire is passed through the wire hole 302 into the frame 1, and then through the wiring groove 305. The hardware devices on the surface of the perforated plate 202 are connected, and the wiring near the slider 206 is fixed by the wire clamp B304. Then, a certain length of wire is reserved inside the frame 1, so that the wire is curved inside the frame 1. At the same time, the wire near the wire hole 302 is held and fixed by the wire clamp A to complete the wiring. Since the wire has extra bending length inside the frame 1, when the height of the perforated plate 202 is adjusted, the reserved part of the wire inside the frame 1 will be stretched, thus preventing the connection end of the wire from being pulled. This will not affect the stability of communication and power supply, and can maintain the normal operation of each hardware device.
[0026] The perforated plate 202 has mounting holes 203 spaced apart inside. The terminal processing module 204 and the integrated control module 205 are detachably connected to the perforated plate 202 through the mounting holes 203 and fasteners. The bottom of one side of the perforated plate 202 has horizontal grooves 212. The terminal processing module 204 and the integrated control module 205 are installed on the surface of the perforated plate 202 through the fasteners and mounting holes 203. At the same time, the integrated control module 205 is located on the outermost surface of the perforated plate 202 for easy operation and adjustment. The grooves 212 structure makes it easy to pull and adjust the height of the perforated plate 202.
[0027] The top two sides of the frame 1 are fitted with cover 301. After the wiring is completed, the cover 301 is inserted into the top of the frame 1 to close the top of the frame 1. When it is necessary to tidy up the wiring or install the equipment, the cover 301 can be removed to operate.
[0028] It should be noted that this utility model is an Internet of Things (IoT) data processing terminal. In use, a sliding groove 201 is provided at intervals inside the frame 1, and a perforated plate 202 is installed through the sliding groove 201. Mounting holes 203 are provided at intervals on the surface of the perforated plate 202, allowing fasteners to be used to install various commonly used terminal processing modules 204 and integrated control modules 205 onto the surface of the perforated plate 202. Different hardware devices can be installed on each layer of the perforated plate 202. In the unused state, the hardware supported by the perforated plate 202 is located within the frame 1. At the top position, the arc-shaped end 210 of the clamping rod 209 engages with the limiting hole 211. When data control and hardware installation adjustments are required, the perforated plate 202 can be pulled down along the slide groove 201, causing the clamping rod 209 to be squeezed. After the spring 208 is compressed, the height of the perforated plate 202 can be adjusted. After its height is lowered to the bottom of the frame 1, the end of the clamping rod 209 engages with the corresponding limiting hole 211, thus fixing the height of the perforated plate 202. A multi-layer adjustable perforated plate is used. The perforated plate 202 structure enables the integrated installation of various IoT data processing terminal hardware devices, facilitating wiring, debugging, and operation. The height of each layer of perforated plates 202 can be flexibly adjusted to meet different installation and operating requirements. When the hardware devices are installed and wiring is being done, the wires are passed through the through holes 302 into the rack 1, then through the wiring channels 305 to connect with the hardware devices on the surface of the perforated plate 202. Simultaneously, the wires near the slider 206 are fixed by the wire clamp B304. A certain length of wire is reserved inside the rack 1, making the wires curved inside the rack 1. The wires near the through holes 302 are held and fixed by the wire clamp A to complete the wiring. Because the wires have extra bending length inside the rack 1, when the height of the perforated plate 202 is adjusted, the reserved portion of the wires inside the rack 1 will be stretched, thus preventing the connection ends of the wires from being pulled and ensuring the stability of communication and power supply, maintaining the normal operation of each hardware device.
[0029] The foregoing has shown and described the basic principles, main features, and advantages of this utility model. Those skilled in the art should understand that this utility model is not limited to the above embodiments. The embodiments and descriptions in the specification are merely illustrative of the principles of this utility model. Various changes and modifications can be made to this utility model without departing from its spirit and scope, and all such changes and modifications fall within the scope of the claims. The scope of protection of this utility model is defined by the appended claims and their equivalents.
Claims
1. An Internet of Things (IoT) data processing terminal, comprising a rack (1), characterized in that, The rack (1) is internally equipped with an installation mechanism (2) for mounting IoT data processing terminal hardware devices, including: Slide (201): It is symmetrically opened on both sides of the inner wall of the frame (1) in the vertical direction and is equally spaced inside the frame (1). The frame (1) is slidably connected to the perforated plate (202) for installing IoT terminal processing hardware through the slide (201) in the vertical direction. Both ends of the perforated plate (202) are provided with sliders (206) that are inserted into the slide (201). Horizontal groove (207): It is horizontally opened inside the slider (206) facing the inner wall of the frame (1). A spring (208) is installed inside it and a locking rod (209) that fixes the height position of the perforated plate (202) is movably connected through the spring (208). Limiting hole (211): It is horizontally opened at the top and middle part inside the slide groove (201) and corresponds to the position of the clamping rod (209). The clamping rod (209) has an arc-shaped end (210) that is inserted into the limiting hole (211) welded to the end facing the limiting hole (211).
2. The Internet of Things (IoT) data processing terminal according to claim 1, characterized in that: It also includes a wiring mechanism (3). The wiring mechanism (3) is provided inside the frame (1). The wiring mechanism (3) includes a wire hole (302), wire clamp A, wire clamp B (304) and wiring groove (305). The top of the inner wall of the frame (1) is provided with a wire hole (302) and a wire clamp A is installed on the inner wall of the frame (1) near the wire hole (302). Wire clamps B (304) are installed on the bottom of the slider (206). The inner wall of the frame (1) is provided with a vertical wiring groove (305) on the side of the limiting hole (211).
3. The Internet of Things (IoT) data processing terminal according to claim 1, characterized in that: The perforated plate (202) has mounting holes (203) spaced apart inside. The perforated plate (202) is detachably connected to the terminal processing module (204) and the integrated control module (205) through the mounting holes (203) and fasteners.
4. The Internet of Things data processing terminal according to claim 1, characterized in that: The perforated plate (202) has a groove (212) horizontally opened at the bottom position on one side of its surface.
5. The Internet of Things (IoT) data processing terminal according to claim 2, characterized in that: Both sides of the top of the frame (1) are fitted with cover (301).