Electric energy information acquisition device for remote energy efficiency evaluation
By designing a detachable sliding connection wiring mechanism and long hole electrical energy information acquisition device, the limitations of traditional devices in terms of disassembly, flexibility and information stability are solved, and efficient and flexible power information collection and stable data transmission are achieved, and real-time energy efficiency management is supported.
Patent Information
- Application Number
- CN202421399172.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-06-18
- Publication Date
- 2025-06-20
- Estimated Expiration
- 2034-06-18
AI Technical Summary
Traditional power information collection devices have limitations in disassembly, flexibility and information stability, resulting in difficulty in disassembly, cumbersome operation, unstable information transmission, and affecting the accuracy and reliability of energy efficiency evaluation.
A remote energy efficiency evaluation power information acquisition device is designed, and a wiring mechanism and long hole design with removable sliding connection is designed, combined with a rebound mechanism, acquisition connection piece and signal connection block to ensure the flexibility of the wiring mechanism and the stability of information transmission.
It realizes convenient disassembly and flexible configuration of the wiring mechanism, improves the applicability and operation efficiency of the device; ensures the stability of information transmission, improves the accuracy and reliability of data; and supports real-time energy efficiency management through efficient data processing and transmission capabilities.
Smart Images

Figure CN223006212U_ABST
Abstract
Description
Technical Field
[0001] The utility model belongs to the technical field of power engineering, and specifically relates to an electric energy information acquisition device for remote energy efficiency evaluation. Background Art
[0002] In the field of energy management, electric energy information acquisition devices play a crucial role. However, traditional electric energy information acquisition devices often have limitations in design and function, especially in terms of disassembly, flexibility, and information stability. Specifically, traditional devices usually adopt fixed wiring methods, resulting in difficult disassembly, cumbersome operation, and difficulty in adapting to diverse application scenarios.
[0003] In addition, due to poor contact between wiring and signal connection components or mutual interference between lines, problems such as unstable information transmission and data loss often occur during information transmission, seriously affecting the accuracy and reliability of energy efficiency evaluation. Summary of the Utility Model
[0004] To solve the problems in the background art, the utility model provides an electric energy information acquisition device for remote energy efficiency evaluation.
[0005] To achieve the above object, the utility model adopts the following technical solution: an electric energy information acquisition device for remote energy efficiency evaluation, including a housing, a housing cover, an acquisition module, two resilient mechanisms, a plurality of wiring mechanisms, a plurality of acquisition connection pieces, and a plurality of signal connection blocks;
[0006] The housing is provided with long holes, the plurality of wiring mechanisms are detachably and slidably connected to the long holes, each wiring mechanism is used in cooperation with a corresponding signal connection block, both ends of each signal connection block are provided with resilient mechanisms, each resilient mechanism is fixedly connected to the inner wall of the housing, each signal connection block is used in cooperation with a corresponding acquisition connection piece, each acquisition connection piece is arranged inside the housing and is respectively signal-connected to the acquisition module, and the outer wall of the housing is hinged to the housing cover.
[0007] Compared with the prior art, the beneficial effects of the utility model are as follows:
[0008] 1. Convenient disassembly: The wiring mechanism is detachably and slidably connected to the long hole, enabling the wiring mechanism to be easily removed from or installed in the device. This design greatly simplifies the disassembly process, reduces the operation difficulty, and improves the work efficiency.
[0009] 2. Flexibility and customization: Since the wiring mechanism can be easily disassembled and replaced, users can flexibly select and configure the wiring mechanism according to actual needs to meet the electric energy information acquisition requirements in different scenarios. This flexibility enables the device to adapt to more application scenarios and improves its practicality and applicability.
[0010] 3. Information Stability: When the wiring mechanism is not in contact with the signal connection block, the signal connection block and the acquisition connection piece are in a separated state, avoiding the problem of unstable signal transmission caused by mutual interference of circuits. This design ensures the stability of information during transmission, improving the accuracy and reliability of data.
[0011] 4. Operational Convenience and Safety: The design of the insulating sleeve and the clamping unit simplifies the wire connection process and reduces the operation difficulty. At the same time, the insulating sleeve also protects the wire from external environmental interference, ensuring the safety of user operation.
[0012] 5. Efficient Data Processing and Transmission: The built-in acquisition module can quickly process and analyze information from the power supply, extract valuable energy efficiency data, and send it to an external information terminal through a preset communication interface or wireless transmission method. This efficient data processing and transmission ability enables users to view, store, and evaluate the electricity usage in real time, providing strong support for energy efficiency management.
[0013] In summary, the remote energy efficiency evaluation power information acquisition device of the present utility model, by adopting a detachable sliding connection wiring mechanism and a long hole design, not only improves the convenience and flexibility of the device, but also ensures the stability of information transmission, enhances the safety of operation, and improves the efficiency of data processing. This device has broad application prospects and market demand in the field of energy management. Description of the Drawings
[0014] Figure 1 is the front view of the present utility model;
[0015] Figure 2 is a schematic diagram of the connection relationship of the wiring mechanism, signal connection block, and acquisition connection piece of the present utility model;
[0016] Figure 3 is Figure 2 a partial enlarged schematic diagram of part A of
[0017] Figure 4 is the schematic diagram of the tightening unit of the present utility model. Detailed Embodiment
[0018] Next, the technical solutions in the embodiments of the present utility model will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present utility model. Obviously, the described embodiments are only a part of the embodiments of the utility model, rather than all of the embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative efforts shall fall within the protection scope of the present utility model.
[0019] This embodiment describes a power consumption information acquisition device for remote energy efficiency assessment, including a housing 1, a housing cover 12, an acquisition module, two resilient mechanisms, a plurality of wiring mechanisms, a plurality of acquisition connection pieces 11, and a plurality of signal connection blocks 7;
[0020] A long hole 13 is provided on the housing 1, and the plurality of wiring mechanisms are detachably and slidably connected to the long hole 13. Each wiring mechanism is used in cooperation with a corresponding signal connection block 7. Resilient mechanisms are provided at both ends of each signal connection block 7, and each resilient mechanism is fixedly connected to the inner wall of the housing 1. Each signal connection block 7 is used in cooperation with a corresponding acquisition connection piece 11. Each acquisition connection piece 11 is arranged inside the housing 1 and is respectively signal-connected to the acquisition module. The outer wall of the housing 1 is hinged to the housing cover 12.
[0021] Each wiring mechanism includes an insulating sleeve 2, a conductive sheet 5, an electromagnetic induction block 10, two tightening units, and two clamping units;
[0022] The insulating sleeve 2 is detachably and slidably connected to the long hole 13 on the housing 1. The insulating sleeve 2 is fixedly connected to the electromagnetic induction block 10. The electromagnetic induction block 10 is arranged in the long hole 13 and is used in cooperation with the signal connection block 7. Tightening units are provided at both the upper and lower ends of the insulating sleeve 2. Two clamping units are provided inside the insulating sleeve 2. Each clamping unit includes two clamping plates 6 and two torsion springs. One end of each clamping plate 6 is connected to the inner wall of the insulating sleeve 2 through a torsion spring. The two clamping plates 6 are symmetrically arranged. A conductive sheet 5 is provided between the two clamping units, and the conductive sheet 5 is fixed inside the insulating sleeve 2.
[0023] Each tightening unit includes a fastening cap 3 and a plurality of arc-shaped pieces 4;
[0024] The plurality of arc-shaped pieces 4 are evenly arranged at one end of the insulating sleeve 2. External threads matching the fastening cap 3 are provided on the outer walls of the plurality of arc-shaped pieces 4, and the fastening cap 3 is threadedly connected to the plurality of arc-shaped pieces 4.
[0025] Each resilient mechanism includes a fixed rod 8 and a spring 9;
[0026] One end of the fixed rod 8 is fixedly connected to the inner wall of the housing 1. The spring 9 is sleeved on the fixed rod 8 with a limit, and the spring 9 is fixedly connected to the signal connection block 7.
[0027] When using the present utility model, first, the user opens the cover 12 located at the top of the housing 1 to access and operate the internal components. According to the requirements of the actual application scenario, the user selects and prepares the corresponding number of wiring mechanisms, which will be installed and configured as needed to meet the diverse requirements of power information collection. The user slides each wiring mechanism through the long hole 13 on the housing 1. The design of the long hole 13 allows the wiring mechanism to be flexibly adjusted and positioned within the housing. When the electromagnetic induction block 10 of the wiring mechanism contacts the signal connection block 7, the signal connection block 7 will receive a thrust from the electromagnetic induction block 10 and thus move inward until it makes physical contact with the corresponding acquisition connection piece 11. This design ensures the continuity and stability of signal transmission. The user inserts the wiring of the device from the upper end of the insulating sleeve 2. The design of the insulating sleeve 2 not only protects the wire from external environmental interference but also ensures the safety of user operation. As the wire is inserted, the clamping unit inside the wiring mechanism will automatically clamp the wire through the elastic force of the torsion spring to achieve stable connection of the wire. To further enhance the firmness of the connection, the user can rotate the fastening cap 3 at the upper end of the insulating sleeve 2. When the fastening cap 3 rotates, the fastening mechanism threadedly connected to multiple arc-shaped pieces 4 made of elastic material will tighten inward, thereby firmly fixing the wire. Similarly, the user inserts the external power supply wire from the lower end of the insulating sleeve 2 and achieves stable and reliable connection through the corresponding clamping unit. Then, the user rotates the fastening cap 3 at the lower end of the insulating sleeve 2 again to ensure that the external power supply wire is firmly fixed. When the entire device is wired and powered on, the electromagnetic induction block 10 starts to sense and collect power information, and this information is quickly transmitted to the corresponding acquisition connection piece 11 through the signal connection block 7. The acquisition connection piece 11, as the "transfer station" of the information, further transmits the received power information to the built-in acquisition module. The acquisition module processes and analyzes this information, extracts valuable energy efficiency data. Finally, the acquisition module sends the processed information to an external information terminal (such as a computer, mobile phone, or dedicated display) through a preset communication interface or wireless transmission method. The user can view, store, and evaluate the power usage situation in real time through these information terminals, thereby making more informed energy efficiency management decisions.
[0028] For those skilled in the art, it is obvious that the present utility model is not limited to the details of the above-described exemplary embodiments, and without departing from the spirit or basic characteristics of the present utility model, the present utility model can be implemented in other forms of devices. Therefore, from any point of view, the embodiments should be regarded as exemplary and non-restrictive. The scope of the present utility model is defined by the appended claims rather than the above description. Therefore, all changes falling within the meaning and scope of the equivalent conditions of the claims are intended to be included in the present utility model. Any reference signs in the claims should not be regarded as limiting the claims involved.
Claims
1. A power information collection device for remote energy efficiency evaluation, characterized in that: A housing (1), a housing cover (12), a collection module, two rebound mechanisms, a plurality of wiring mechanisms, a plurality of collection connecting pieces (11) and a plurality of signal connecting blocks (7); The shell (1) is provided with a long hole (13), the multiple wiring mechanisms are detachably and slidably connected to the long hole (13), each wiring mechanism is used in conjunction with a corresponding signal connection block (7), each signal connection block (7) is provided with a rebound mechanism at both ends, each rebound mechanism is fixedly connected to the inner wall of the shell (1), each signal connection block (7) is used in conjunction with a corresponding collection connection piece (11), each collection connection piece (11) is arranged in the shell (1) and is respectively connected to the collection module signal, and the outer wall of the shell (1) is hinged to the shell cover (12).
2. According to claim 1, a power information collection device for remote energy efficiency evaluation is characterized in that: Each of the wiring mechanisms comprises an insulating sleeve (2), a conductive sheet (5), an electromagnetic induction block (10), two tightening units and two clamping units; The insulating sleeve (2) is detachably and slidably connected to the long hole (13) on the shell (1); the insulating sleeve (2) is fixedly connected to the electromagnetic induction block (10); the electromagnetic induction block (10) is arranged in the long hole (13) and is used in conjunction with the signal connection block (7); tightening units are arranged at both upper and lower ends of the insulating sleeve (2); two clamping units are arranged in the insulating sleeve (2); each of the clamping units includes two clamping plates (6) and two torsion springs; one end of each clamping plate (6) is connected to the inner wall of the insulating sleeve (2) via a torsion spring; the two clamping plates (6) are symmetrically arranged; a conductive sheet (5) is arranged between the two clamping units; the conductive sheet (5) is fixed in the insulating sleeve (2).
3. The electric energy information collection device for remote energy efficiency evaluation according to claim 2, characterized in that: Each of the tightening units comprises a tightening cap (3) and a plurality of arc-shaped pieces (4); The plurality of arc-shaped pieces (4) are evenly distributed at one end of the insulating sleeve (2); the outer walls of the plurality of arc-shaped pieces (4) are each provided with an external thread matching the fastening cap (3); and the fastening cap (3) is threadedly connected to the plurality of arc-shaped pieces (4).
4. The electric energy information collection device for remote energy efficiency evaluation according to claim 1, characterized in that: Each of the rebound mechanisms comprises a fixing rod (8) and a spring (9); One end of the fixing rod (8) is fixedly connected to the inner wall of the housing (1); the spring (9) is limitedly sleeved on the fixing rod (8); and the spring (9) is fixedly connected to the signal connection block (7).