Communication AC / DC power supply terminal collector
By designing a acquisition device including a non-invasive sensing component and a solid wire mechanism, the problems of high conversion cost and high conversion difficulty of existing power supply terminal collectors are solved, and live operation and data acquisition are realized without cutting the conductors, reducing the conversion cost and difficulty.
Patent Information
- Application Number
- CN202510534672.9
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-27
- Publication Date
- 2025-05-30
- Estimated Expiration
- 2045-04-27
AI Technical Summary
The existing communication AC/DC power terminal collectors have high cost and are difficult to transform, so they cannot perform live operation without cutting the wires.
A collection device including a non-invasive sensing assembly, a mounting frame and a fixed wire mechanism is designed. The size of the mounting cavity is adjusted by a fixed wire screw and a snap ring, and the voltage and current data can be measured without contacting the wire, and the stable fixation of the wire is achieved through a tightening mechanism and a fixing mechanism.
The transformation of the power terminal collector is realized while the power supply is constantly turned on, reducing the difficulty and cost of transformation, and improving the transformation efficiency and applicability.
Smart Images

Figure CN120065053A_ABST
Abstract
Description
Technical Field
[0001] This application relates to the technical field of power terminal collectors, and in particular to a communication AC / DC power terminal collector. Background Art
[0002] With the rapid development of smart power grids, 5G communication base stations, and Internet of Things technologies, AC / DC hybrid power supply systems are increasingly widely used in fields such as industrial control, data centers, and new energy power stations. As a core component of the power monitoring system, the power terminal collector undertakes the key tasks of AC / DC power parameter collection, status monitoring, and data communication.
[0003] In practical applications, power terminal collection systems in different scenarios have different collection requirements. Generally, power terminal collection systems generally only monitor and analyze the total power supply of the power supply (mains input power supply) and the power conversion system (DC side high-frequency switching power supply, AC side UPS and its input and output power supplies, battery bank), that is, only the total power supply of the AC / DC distribution cabinet at the equipment load side is monitored.
[0004] In some scenarios with high requirements for collected data, the power terminal collection system also needs to monitor the branch circuits of the branch distribution cabinets at the next level of the AC / DC distribution cabinet on the load side of communication equipment and the power data of the DC air switches and AC PDUs of the equipment loads in the end cabinets. In this case, in order to meet the data collection requirements, it is necessary to transform the power terminal data collection system.
[0005] Existing power terminal collectors obtain circuit parameters by directly connecting in series or in parallel. When transforming the collection system, it is necessary to re-wire and it is impossible to perform live operations. Therefore, power supply needs to be disconnected during transformation, resulting in high transformation costs and great transformation difficulties. Summary of the Invention
[0006] In view of this, the purpose of this application is to provide a communication AC / DC power terminal collector to solve the problems of high transformation costs and great transformation difficulties of existing communication AC / DC power terminal collectors.
[0007] To achieve the above technical purpose, this application provides a communication AC / DC power terminal collector, including: a collection device;
[0008] The collection device includes: a non-invasive sensing component, a mounting frame, and a wire fixing mechanism;
[0009] The wire fixing mechanism includes: a mounting shell, a clamping ring, and a wire fixing screw;
[0010] The mounting shell is disposed on the mounting frame;
[0011] The clamping ring is movably disposed in the mounting shell in the vertical direction;
[0012] The snap ring and the mounting shell enclose a wire installation cavity for installing a wire;
[0013] The wire fixing screw is threadedly connected to the mounting shell;
[0014] When the wire fixing screw rotates, it can drive the snap ring to move in the vertical direction to adjust the size of the wire installation cavity;
[0015] The non-invasive sensing component is arranged on the mounting bracket and is used for measuring data of the wire without damaging the wire.
[0016] Further, the wire fixing mechanism includes: a first slider, a second slider and a tension spring;
[0017] A limiting groove is provided on the mounting shell;
[0018] The first slider and the second slider are slidably arranged in the limiting groove in the vertical direction;
[0019] Both ends of the tension spring are respectively connected to the first slider and the second slider;
[0020] The second slider and the first slider are distributed vertically;
[0021] The top end of the wire fixing screw is rotatably connected to the first slider;
[0022] The snap ring is connected to the second slider.
[0023] Further, a buckle is provided on the second slider;
[0024] A tongue is provided on the snap ring;
[0025] The tongue is snap-connected to the buckle.
[0026] Further, the acquisition device includes: a tensioning mechanism;
[0027] There are two wire fixing mechanisms, and they are movably arranged on both sides of the mounting bracket in the horizontal direction;
[0028] The tensioning mechanism is connected to the two wire fixing mechanisms and is used for driving the two wire fixing mechanisms to move in opposite directions.
[0029] Further, the tensioning mechanism includes a mounting plate, a mounting block, a tensioning screw, a slide rail, an adjusting block and a connecting rod;
[0030] The mounting plate is fixedly installed on the mounting bracket;
[0031] A chute is provided on the mounting plate;
[0032] The mounting block is slidably disposed in the sliding groove;
[0033] The tensioning screw is threadedly connected to the mounting plate and rotatably connected to the mounting block;
[0034] The sliding rail is disposed on the mounting plate, and the length direction of the sliding rail is perpendicular to the length direction of the sliding groove;
[0035] There are two adjusting blocks, which are slidably disposed on the sliding rail;
[0036] There are two connecting rods;
[0037] One ends of the two connecting rods are respectively rotatably connected to the two adjusting blocks;
[0038] The other ends of the two connecting rods are respectively rotatably connected to the mounting block;
[0039] The two adjusting blocks are respectively connected to the two wire fixing mechanisms.
[0040] Further, the acquisition device includes: a fixing mechanism;
[0041] The fixing mechanism includes a fixing frame and a rotating frame,
[0042] The fixing frame is fixedly installed on the first mounting frame;
[0043] One end of the rotating frame is hinged to the first mounting frame, and the other end of the rotating frame is clamped to the fixing frame;
[0044] The non-invasive sensing component is disposed on the rotating frame.
[0045] Further, the two wire fixing mechanisms are respectively disposed on the axial two sides of the rotating axis of the rotating frame;
[0046] The wire passes through the rotating frame;
[0047] The bottom of the rotating frame is a hollow structure to avoid the wire.
[0048] Further, the non-invasive sensing component includes: an open-type Hall current sensor and an open-type Hall voltage sensor.
[0049] Further, it further includes: a terminal device;
[0050] The acquisition device includes: a data transmission component;
[0051] The data transmission component is disposed on the mounting frame;
[0052] The data transmission component is electrically connected to the terminal device and the non-invasive sensing component.
[0053] Further, the terminal device includes a device body and a cooling mechanism;
[0054] The cooling mechanism includes a water tank, a circulation pump, heat conduction fins, a semiconductor refrigeration sheet, heat dissipation fins and a cooling fan;
[0055] The water tank and the circulation pump are arranged on the device body;
[0056] A water sleeve is abutted against the heating element inside the device body;
[0057] Both ends of the circulation pump are respectively connected to one end of the water sleeve and one end of the water tank through a circulation pipe;
[0058] The other end of the water tank is connected to the other end of the water sleeve through a circulation pipe;
[0059] The heat conduction fins are arranged on the water tank;
[0060] The semiconductor refrigeration sheet is arranged on the device body, and one end is connected to the heat conduction fins and the other end is connected to the heat dissipation fins;
[0061] The cooling fan is arranged on the heat dissipation fins.
[0062] From the above technical solutions, it can be seen that the present application provides a communication AC / DC power terminal collector, including: a collection device; the collection device includes: a non-invasive sensing component, a mounting rack and a wire fixing mechanism; the wire fixing mechanism includes: a mounting shell, a clamping ring and a wire fixing screw; the mounting shell is arranged on the mounting rack; the clamping ring is movably arranged on the mounting shell along the vertical direction; the clamping ring and the mounting shell enclose a wire mounting cavity for mounting a wire; the wire fixing screw is threadedly connected to the mounting shell; when the wire fixing screw rotates, it can drive the clamping ring to move along the vertical direction to adjust the size of the wire mounting cavity; the non-invasive sensing component is arranged on the mounting rack and is used for measuring data of the wire without contacting the wire.
[0063] In this solution, the non-invasive sensing component can collect data such as voltage and current of the wire without contacting the wire; during transformation, power-off operation can be achieved without cutting the wire, reducing the transformation difficulty and cost; the wire fixing mechanism can fix wires with different wire diameters through the clamping ring to adapt to the size requirements of different wires, reducing the wiring difficulty and improving the applicability. Description of the Drawings
[0064] To more clearly illustrate the technical solutions in the embodiments of the present application or the prior art, the following will briefly introduce the accompanying drawings required in the description of the embodiments or the prior art. Obviously, the accompanying drawings in the following description are only some embodiments of the present application. For those of ordinary skill in the art, without creative efforts, other accompanying drawings can also be obtained based on these drawings.
[0065] Figure 1 Schematic diagram of the overall structure of a communication AC / DC power terminal collector provided by an embodiment of the present application;
[0066] Figure 2 Schematic diagram of the acquisition device of a communication AC / DC power terminal collector provided by an embodiment of the present application;
[0067] Figure 3 Schematic diagram of the wire fixing mechanism of a communication AC / DC power terminal collector provided by an embodiment of the present application;
[0068] Figure 4 Schematic diagram of the bottom of the acquisition device of a communication AC / DC power terminal collector provided by an embodiment of the present application;
[0069] Figure 5 Schematic diagram of the fixing mechanism of a communication AC / DC power terminal collector provided by an embodiment of the present application;
[0070] Figure 6 Exploded view of the fixing mechanism of a communication AC / DC power terminal collector provided by an embodiment of the present application;
[0071] Figure 7 Schematic diagram of the terminal device of a communication AC / DC power terminal collector provided by an embodiment of the present application;
[0072] Figure 8 Schematic diagram of the cooling mechanism of a communication AC / DC power terminal collector provided by an embodiment of the present application;
[0073] In the figure:
[0074] 1. Terminal device; 11. Equipment main body; 12. Cooling mechanism; 1201. Water tank; 1202. Circulation pipe; 1203. Circulation pump; 1204. Heat conduction fins; 1205. Semiconductor refrigeration sheet; 1206. Heat dissipation fins; 1207. Heat dissipation fan; 13. Handle;
[0075] 2. Acquisition device; 21. Mounting frame; 22. Open-type Hall current sensor; 23. Open-type Hall voltage sensor;
[0076] 24. Tensioning mechanism; 2401. Mounting plate; 2402. Mounting block; 2403. Tensioning screw; 2404. Slide rail; 2405. Adjusting block; 2406. Connecting rod; 2407. Chute;
[0077] 25. Wire fixing mechanism; 2501. Mounting shell; 2502. Snap ring; 2503. Limit groove; 2504. First slider; 2505. Tension spring; 2506. Second slider; 2507. Buckle; 2508. Latching tongue; 2509. Wire fixing screw; 2510. Hex nut; 2511. Rubber pad;
[0078] 26. Fixing mechanism; 2601. Fixing frame; 2602. Rotating frame; 2603. Cardboard; 2604. Block; 2605. Paddle; 2606. Indicator arrow;
[0079] 27. Data transmission component; 28. Wireless transmission module; 29. Connection port; 210. Infrared temperature sensor. Detailed implementation manners
[0080] The technical solutions of the embodiments of the present application will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are part of the embodiments of the present application, rather than all of the embodiments. All other embodiments obtained by those of ordinary skill in the art based on the embodiments in this specification without creative efforts shall fall within the scope of protection of the present application.
[0081] In the description of the embodiments of the present application, it should be noted that the orientation or positional relationship indicated by the terms "center", "upper", "lower", "left", "right", "vertical", "horizontal", "inner", "outer", etc. is based on the orientation or positional relationship shown in the drawings, and is only for the convenience of describing the embodiments of the present application and simplifying the description, rather than indicating or implying that the device or element referred to must have a specific orientation, be constructed and operated in a specific orientation, and therefore should not be construed as a limitation to the embodiments of the present application. In addition, the terms "first", "second", and "third" are only used for descriptive purposes and should not be construed as indicating or implying relative importance.
[0082] In the description of the embodiments of the present application, it should be noted that unless otherwise clearly specified and limited, the terms "mount", "connect", and "couple" should be understood in a broad sense. For example, it can be a fixed connection, a replaceable connection, or an integral connection, it can be a mechanical connection, an electrical connection, it can be directly connected, or indirectly connected through an intermediate medium, and it can be the internal communication of two elements. For those of ordinary skill in the art, the specific meanings of the above terms in the embodiments of the present application can be understood according to specific situations.
[0083] Please refer to Figures 1 to 3, in the embodiments of the present application, a communication AC / DC power terminal collector is provided, including: a collection device 2; the collection device 2 includes: a non-invasive sensing component, a mounting bracket 21, and a wire fixing mechanism 25; the wire fixing mechanism 25 includes: a mounting shell 2501, a clamping ring 2502, and a wire fixing screw 2509; the mounting shell 2501 is arranged on the mounting bracket 21; the clamping ring 2502 is arranged on the mounting shell 2501 so as to be movable in the vertical direction; the clamping ring 2502 and the mounting shell 2501 enclose a wire installation cavity for installing a wire; the wire fixing screw 2509 is threadedly connected to the mounting shell 2501; when the wire fixing screw 2509 rotates, it can drive the clamping ring 2502 to move in the vertical direction to adjust the size of the wire installation cavity; the non-invasive sensing component is arranged on the mounting bracket 21 and is used for measuring data of the wire without damaging the wire.
[0084] In this solution, the non-invasive sensing component can collect data such as current and voltage of the wire without damaging the wire. Specifically, the non-invasive sensing component can be set to contact the wire without damaging the outside of the wire; after adopting this solution, during transformation and maintenance, the disassembled components do not involve the wire, so that the transformation and maintenance operations can be realized without power interruption. Specifically, during transformation and maintenance, removing the collection device 2 can not affect the operation of the wire itself, thereby reducing the workload of transformation and eliminating the need for power interruption.
[0085] Moreover, during actual application, when the installation position of the collection device 2 is changed due to reasons such as collection objects and collection data requirements, the wire diameters of the wires at different positions are not equal. In this solution, the wire fixing mechanism 25 can fix wires with different diameters through a wire installation cavity with adjustable size, thereby reducing the wiring difficulty, reducing the transformation cost, and improving the transformation efficiency. Specifically, when the wire fixing screw 2509 rotates, it can drive the clamping ring 2502 to move in the vertical direction, thereby realizing the adjustment of the size of the wire installation cavity.
[0086] In a more specific embodiment, the wire fixing mechanism 25 includes: a first slider 2504, a second slider 2506, and a tension spring 2505; a limiting groove 2503 is provided on the upper part of the mounting shell 2501; the first slider 2504 and the second slider 2506 are arranged in the limiting groove 2503 so as to be slidable in the vertical direction; the tension spring 2505 is located between the first slider 2504 and the second slider 2506, and the two ends are respectively connected to the first slider 2504 and the second slider 2506; the second slider 2506 and the first slider 2504 are distributed vertically; the top end of the wire fixing screw 2509 is rotatably connected to the first slider 2504; the clamping ring 2502 is connected to the second slider 2506.
[0087] In this embodiment, when the wire-fixing screw 2509 rotates, it can move up and down along the mounting shell 2501 and drive the first slider 2504 to move up and down; when the first slider 2504 moves up and down, it drives the second slider 2506 to move up and down through the tension spring 2505, so as to adjust the size of the wire-loading cavity. Among them, pulling the snap ring 2502 downward through the tension spring 2505 can play a buffering role for the wire below the snap ring 2502, and avoid damaging the wire due to the snap ring 2502 being installed too tightly.
[0088] As an implementation manner, a plurality of limiting grooves 2503 can be provided on the mounting shell 2501, and the first slider 2504 and the second slider 2506 are simultaneously placed in the plurality of limiting grooves 2503 to ensure the stability of their sliding.
[0089] As an implementation manner, the way that the top end of the wire-fixing screw 2509 is rotatably connected to the first slider 2504 can be, for example, to provide a bearing at the bottom of the first slider 2504, and the top end of the wire-fixing screw 2509 is sleeved into the bearing.
[0090] As an implementation manner, the way that the snap ring 2502 is connected to the second slider 2506 can be, for example, to provide a tongue 2508 on the snap ring 2502 and a buckle 2507 on the second slider 2506; the tongue 2508 is detachably snapped into the buckle 2507 and is snap-connected to the buckle 2507.
[0091] As an implementation manner, a spiral cap 2510 can be provided at the bottom of the wire-fixing screw 2509 to facilitate the staff to rotate the wire-fixing screw 2509.
[0092] As an implementation manner, rubber pads 2511 are fixedly installed on the top of the mounting shell 2501 and the inner wall of the snap ring 2502, and the friction between the mounting shell 2501 and the snap ring 2502 and the wire is increased through the rubber pads 2511.
[0093] As an implementation manner, an infrared temperature sensor 210 is fixedly installed on the top of the first mounting bracket 21 to monitor the temperature of the current-carrying wire in real time through the infrared temperature sensor 210; when the wire temperature is abnormal, commands such as power-off or load reduction are sent to the power supply system through the following terminal device 1 to avoid fires or other dangers.
[0094] In a more specific embodiment, the acquisition device 2 includes: a tensioning mechanism 24; there are two wire-fixing mechanisms 25, and they are movably arranged on both sides of the mounting bracket 21 along the horizontal direction; the tensioning mechanism 24 is connected to the two wire-fixing mechanisms 25 and is used to drive the two wire-fixing mechanisms 25 to move in opposite directions.
[0095] The tensioning mechanism 24 can be, for example, two cylinders respectively connecting two wire fixing mechanisms 25; the two cylinders can respectively push and pull the two wire fixing mechanisms 25 to move in opposite directions to realize tensioning the wire between the two wire fixing mechanisms 25.
[0096] In a more specific embodiment, please refer to Figures 1 to 4 , the tensioning mechanism 24 includes a mounting plate 2401, a mounting block 2402, a tensioning screw 2403, a slide rail 2404, an adjustment block 2405 and a connecting rod 2406; the mounting plate 2401 is fixedly installed on the mounting frame 21; a chute 2407 is provided on the mounting plate 2401; the mounting block 2402 is slidably disposed in the chute 2407; the tensioning screw 2403 is threadedly connected to the mounting plate 2401 and is rotatably connected to the mounting block 2402; the slide rail 2404 is disposed on the mounting plate 2401, and the length direction of the slide rail 2404 is perpendicular to the length direction of the chute 2407; there are two adjustment blocks 2405, and they are slidably disposed on the slide rail 2404; there are two connecting rods 2406; one ends of the two connecting rods 2406 are respectively rotatably connected to the two adjustment blocks 2405; the other ends of the two connecting rods 2406 are respectively rotatably connected to the mounting block 2402; the two adjustment blocks 2405 are respectively connected to the two wire fixing mechanisms 25.
[0097] As an implementation manner, the mounting plate 2401 can be disposed at the bottom of the mounting frame 21. The tensioning screw 2403 extends to the outside of the mounting plate 2401 for the convenience of the staff to turn.
[0098] As an implementation manner, the tensioning screw 2403 is rotatably connected to the mounting block 2402 through a bearing.
[0099] Through the cooperation among the mounting plate 2401, the mounting block 2402, the tensioning screw 2403, the slide rail 2404, the adjustment block 2405, the connecting rod 2406 and the chute 2407, when the staff rotates the tensioning screw 2403, the distance between the two groups of adjustment blocks 2405 can be changed, and then the distance between the two groups of wire fixing mechanisms 25 can be changed. Finally, the wire between the two groups of wire fixing mechanisms 25 can be straightened to prevent the acquisition device 2 from loosening on the outer wall of the wire.
[0100] It should be noted that in this embodiment, the two adjustment blocks 2405 are respectively disposed on both sides of the mounting block 2402 to ensure that when the mounting block 2402 slides, the two adjustment blocks 2405 move in opposite directions.
[0101] In an embodiment, please refer to Figures 2 to 6The collection device 2 includes: a fixing mechanism 26; the fixing mechanism 26 includes a fixing frame 2601 and a rotating frame 2602, the fixing frame 2601 is fixedly mounted on the first mounting frame 21; one end of the rotating frame 2602 is hinged to the first mounting frame 21, and the other end of the rotating frame 2602 is clamped to the fixing frame 2601; the non-invasive sensing component is arranged on the rotating frame 2602.
[0102] Through the rotating frame 2602, during the modification, the staff can release the clamping connection between the rotating frame 2602 and the fixed frame 2601, and then drive the rotating frame 2602 to rotate, so as to separate the non-invasive sensor component from the wire.
[0103] As an implementation manner, the rotating frame 2602 is frame-shaped, and the non-invasive sensor component is disposed on the inner side of the rotating frame 2602 .
[0104] As an implementation method, a clamping block 2604 is provided on the rotating frame 2602; a clamping plate 2603 is provided on the fixed frame 2601; and the clamping plate 2603 can be clamped with the clamping block 2604. In addition, a paddle 2605 can be provided on the clamping block 2604, so that the staff can paddle the clamping block 2604 to release the clamping block 2604 and the clamping plate 2603.
[0105] As an implementation manner, an indicator arrow 2606 is fixedly installed on the top of the rotating frame 2602, and the indicator arrow 2606 indicates the direction of the wire current to prevent equipment installation errors.
[0106] In one embodiment, the rotation direction of the rotating frame 2602 can be located in the vertical plane. Two wire fixing mechanisms 25 are respectively arranged on both sides of the axial direction of the rotating axis of the rotating frame 2602; the wire passes through the rotating frame 2602; the bottom of the rotating frame 2602 is a hollow structure to avoid the wire, specifically to avoid the wire during rotation.
[0107] In this embodiment, when the rotating frame 2602 is connected to the fixed frame 2601, the wire can be arranged below the above-mentioned indication arrow 2606. The non-invasive sensor component can be arranged on the side of the wire. In the case where the non-invasive sensor component includes multiple components, the non-invasive sensor components can be respectively arranged on both sides of the wire.
[0108] Based on any of the above embodiments, the non-intrusive sensing component includes: an open-type Hall current sensor 22 and an open-type Hall voltage sensor 23 .
[0109] The movable ends of the open-type Hall current sensor 22 and the open-type Hall voltage sensor 23 can be rotated synchronously by the rotating frame 2602; a quick opening and closing mechanism is formed by the cooperation among the rotating frame 2602, the clamping block 2604 and the clamping plate 2603, so that the device can quickly open and close the open-type Hall current sensor 22 and the open-type Hall voltage sensor 23, reducing the installation difficulty.
[0110] In one embodiment, please refer to Figures 1 to 8 , the collector further includes: a terminal device 1; the acquisition device 2 includes: a data transmission component 27; the data transmission component 27 is arranged on the mounting rack 21; the data transmission component 27 is electrically connected to the terminal device 1 and the non-invasive sensing component.
[0111] As an implementation manner, a wireless transmission module 28 can be fixedly installed on one side of the data transmission component 27, and a connection port 29 can be fixedly installed on the other side of the data transmission component 27. The data transmission component 27 can transmit the acquisition data to the terminal device 1 by wire connection through the connection port 29 or by wireless network through the wireless transmission module 28, providing multiple options for personnel.
[0112] In this embodiment, the acquisition data can be transmitted to the terminal device 1 through the data transmission component 27 for analysis and storage.
[0113] In one embodiment, the terminal device 1 includes a device main body 11 and a cooling mechanism 12; the cooling mechanism 12 includes a water tank 1201, a circulation pump 1203, heat conduction fins 1204, a semiconductor refrigeration sheet 1205, heat dissipation fins 1206 and a cooling fan 1207; the water tank 1201 and the circulation pump 1203 are arranged on the device main body 11; a water sleeve is abutted against the heating element inside the device main body 11; both ends of the circulation pump 1203 are respectively connected to one end of the water sleeve and one end of the water tank 1201 through a circulation pipe 1202; the other end of the water tank 1201 is connected to the other end of the water sleeve through a circulation pipe 1202; the heat conduction fins 1204 are arranged on the water tank 1201; the semiconductor refrigeration sheet 1205 is arranged on the device main body 11, and one end is connected to the heat conduction fins 1204 and the other end is connected to the heat dissipation fins 1206; the cooling fan 1207 is arranged on the heat dissipation fins 1206.
[0114] The semiconductor refrigeration sheet 1205 can refrigerate the heat conduction fins 1204 and dissipate the heat through the heat dissipation fins 1206. Among them, the refrigeration method of the semiconductor refrigeration sheet 1205 is the prior art, so it will not be elaborated in this embodiment.
[0115] The heat dissipation fins 1206 are arranged at the air inlet end of the cooling fan 1207, so that the cooling fan 1207 can extract the heat generated by the heat dissipation fins 1206.
[0116] The circulating pump 1203 drives the coolant to circulate inside the water jacket, the circulation pipe 1202, and the water tank 1201. The cooperation between the semiconductor refrigeration sheet 1205 and the heat conduction fins 1204 cools the coolant inside the water tank 1201. The cooperation between the heat dissipation fins 1206 and the cooling fan 1207 dissipates the heat of the heating surface of the semiconductor refrigeration sheet 1205. In summary, during the cooling process of this device, there is no need for air to enter the interior of the device main body 11. There are fewer openings on the outer wall of the device main body 11, and it is difficult for external dust and moisture to enter the interior of the device main body 11. Reducing dust accumulation can keep the interior of the device clean, ensure the normal operation of electronic components, and extend the service life of the device.
[0117] Handles 13 are fixedly installed on both the left and right sides of the device main body 11. It is convenient for personnel to displace this device through the handles 13.
[0118] The above is the preferred embodiment of this application and is not used to limit the present invention. Although this application has been described in detail with reference to the examples, for those skilled in the art, they can still modify the technical solutions recorded in the foregoing examples, or perform equivalent replacements for some of the technical features. However, any modifications, equivalent replacements, improvements, etc. made within the spirit and principle of this application shall be included within the protection scope of this application.
Claims
1. A communication AC / DC power terminal collector, characterized in that: include: Collection device (2); The acquisition device (2) comprises: a non-invasive sensor component, a mounting frame (21) and a wire fixing mechanism (25); The wire fixing mechanism (25) comprises: a mounting shell (2501), a clamping ring (2502) and a wire fixing screw (2509); The mounting shell (2501) is arranged on the mounting frame (21); The clamping ring (2502) is movably arranged on the mounting shell (2501) along the vertical direction; The clamping ring (2502) and the mounting shell (2501) form a wire installation cavity for installing a wire; The fixing screw rod (2509) is threadedly connected to the mounting shell (2501); The wire fixing screw (2509) can drive the clamping ring (2502) to move in a vertical direction when rotating, so as to adjust the size of the wire loading cavity; The non-intrusive sensor component is arranged on the mounting frame (21) and is used to measure data of the conductor without damaging the conductor.
2. The communication AC / DC power terminal collector according to claim 1, characterized in that: The wire fixing mechanism (25) comprises: a first slider (2504), a second slider (2506) and a tension spring (2505); The mounting shell (2501) is provided with a limiting groove (2503); The first sliding block (2504) and the second sliding block (2506) are slidably arranged in the limiting groove (2503) along the vertical direction; Two ends of the tension spring (2505) are respectively connected to the first slider (2504) and the second slider (2506); The second sliding block (2506) and the first sliding block (2504) are arranged vertically; The top end of the wire fixing screw (2509) is rotatably connected to the first sliding block (2504); The retaining ring (2502) is connected to the second sliding block (2506).
3. The communication AC / DC power terminal collector according to claim 2, characterized in that: The second sliding block (2506) is provided with a buckle (2507); The snap ring (2502) is provided with a snap tongue (2508); The latch tongue (2508) is latched with the buckle (2507).
4. The communication AC / DC power terminal collector according to claim 1, characterized in that: The collecting device (2) comprises: a tensioning mechanism (24); The line fixing mechanisms (25) include two and are movably arranged on both sides of the mounting frame (21) in a horizontal direction; The tensioning mechanism (24) is connected to the two line fixing mechanisms (25) and is used to drive the two line fixing mechanisms (25) to move in opposite directions.
5. The communication AC / DC power terminal collector according to claim 4, characterized in that: The tensioning mechanism (24) comprises a mounting plate (2401), a mounting block (2402), a tensioning screw (2403), a slide rail (2404), an adjustment block (2405) and a connecting rod (2406); The mounting plate (2401) is fixedly mounted on the mounting frame (21); The mounting plate (2401) is provided with a slide groove (2407); The mounting block (2402) can be slidably disposed in the slide groove (2407); The tightening screw (2403) is threadedly connected to the mounting plate (2401) and is rotatably connected to the mounting block (2402); The slide rail (2404) is arranged on the mounting plate (2401), and the length direction of the slide rail (2404) is perpendicular to the length direction of the slide groove (2407); The adjustment blocks (2405) include two and are slidably arranged on the slide rail (2404); The connecting rod (2406) includes two; One end of the two connecting rods (2406) is rotatably connected to the two adjusting blocks (2405); The other ends of the two connecting rods (2406) are respectively rotatably connected to the mounting blocks (2402); The two adjustment blocks (2405) are respectively connected to the two line fixing mechanisms (25).
6. The communication AC / DC power terminal collector according to claim 4, characterized in that: The collection device (2) comprises: a fixing mechanism (26); The fixing mechanism (26) comprises a fixing frame (2601) and a rotating frame (2602). The fixing frame (2601) is fixedly mounted on the first mounting frame (21); One end of the rotating frame (2602) is hinged to the first mounting frame (21), and the other end of the rotating frame (2602) is clamped to the fixed frame (2601); The non-invasive sensor component is disposed on the rotating frame (2602).
7. The communication AC / DC power terminal collector according to claim 6, characterized in that: The two wire fixing mechanisms (25) are respectively arranged on two axial sides of the rotating shaft of the rotating frame (2602); The wire passes through the rotating frame (2602); The bottom of the rotating frame (2602) is a hollow structure to avoid the wires.
8. The communication AC / DC power terminal collector according to claim 1, characterized in that: The non-intrusive sensing component comprises an open-type Hall current sensor (22) and an open-type Hall voltage sensor (23).
9. The communication AC / DC power terminal collector according to any one of claims 1 to 8, characterized in that: Also includes: Terminal device (1); The acquisition device (2) comprises: a data transmission component (27); The data transmission component (27) is arranged on the mounting frame (21); The data transmission component (27) electrically connects the terminal device (1) and the non-invasive sensing component.
10. The communication AC / DC power terminal collector according to claim 9, characterized in that: The terminal device (1) comprises a device body (11) and a cooling mechanism (12); The cooling mechanism (12) comprises a water tank (1201), a circulation pump (1203), heat-conducting fins (1204), a semiconductor cooling sheet (1205), heat-dissipating fins (1206) and a heat-dissipating fan (1207); The water tank (1201) and the circulation pump (1203) are arranged on the equipment body (11); A water jacket is disposed in contact with the heating element inside the device body (11); Two ends of the circulation pump (1203) are respectively connected to one end of the water jacket and one end of the water tank (1201) through a circulation pipe (1202); The other end of the water tank (1201) is connected to the other end of the water jacket via a circulation pipe (1202); The heat conducting fins (1204) are arranged on the water tank (1201); The semiconductor cooling sheet (1205) is arranged on the device body (11), and one end is connected to the heat conducting fin (1204), and the other end is connected to the heat dissipating fin (1206); The heat dissipation fan (1207) is arranged on the heat dissipation fins (1206).
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