Intelligent energy efficiency collection terminal
By adopting a modular design and transmission mechanism protection for the intelligent energy efficiency acquisition terminal, the problem of data loss caused by poor communication network is solved, ensuring the accuracy of data acquisition and protecting the plug, and adapting to the storage needs of various working scenarios.
Patent Information
- Application Number
- CN202310390787.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2023-04-03
- Publication Date
- 2026-02-27
- Estimated Expiration
- 2043-04-03
AI Technical Summary
When the communication network is in poor condition, existing energy efficiency data acquisition terminals are prone to data loss, affecting the accuracy of data acquisition.
The system employs an intelligent energy efficiency data acquisition terminal, which includes a data acquisition module, a communication module, a processing module, and a cache module. It stores data when no real-time feedback information is received and sends data when the network is good. It combines time information to configure priority, prioritizes sending the latest data, deletes outdated data, uses a cache module with configurable storage capacity, and protects the plug through a transmission mechanism.
It reduces data loss, improves the accuracy of data collection, reduces the probability of plug damage, and adapts to the data storage needs of different working scenarios.
Smart Images

Figure CN116405805B_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The present application relates to the field of energy efficiency collection terminals, in particular to an intelligent energy efficiency collection terminal. BACKGROUND
[0002] The power energy efficiency collection terminal is mainly used for measuring AC power comprehensive parameters, and can monitor voltage, current, power, power factor, active power, reactive power and other power parameters in real time, and has current / voltage total harmonic distortion, odd / even harmonic distortion, voltage, current 2-51 harmonic content, harmonic power and other power quality monitoring functions.
[0003] The existing energy efficiency collection terminal collects data in real time and sends the collected data to a data relay device or a data processing device (such as a local computer, a server) in real time.
[0004] In life, affected by various factors, the communication network between the collection terminal and the data relay device or the data processing device is not in good condition in real time. In the case of poor communication network state, data loss may occur. SUMMARY
[0005] In order to improve the accuracy of data collection, the present application provides an intelligent energy efficiency collection terminal.
[0006] The intelligent energy efficiency collection terminal provided by the present application adopts the following technical scheme:
[0007] An intelligent energy efficiency collection terminal, comprising a collection module and a communication module, the collection module is used for data collection and generates real-time data information, and the communication module is used for sending real-time data information; further comprising a processing module and a cache module; the communication module is also used for receiving real-time feedback information;
[0008] In the case that the real-time feedback information cannot be received, the processing module controls the cache module to store the data collected by the collection module to record as cache data information;
[0009] In the case that the real-time feedback information is received, the processing module controls the communication module to send the real-time data information and the cache data information, and the processing module controls the cache module to delete the cache data information that has been sent.
[0010] By adopting the above technical scheme, in the case that the real-time feedback information cannot be received, it is judged that the communication network at this time is in a poor state, and the data collected by the collection module is stored; and in the case that the communication network is in a good state, the real-time data information and the cache data information are sent; so as to reduce the loss of data and improve the accuracy of data collection.
[0011] Preferably, the data collected by the collection module includes time information;
[0012] The processing module configures a priority based on the time information, and the smaller the difference between the time information and the current time, the higher the priority.
[0013] The processing module controls the communication module to send real-time data information and cached data information based on the priority.
[0014] By adopting the above technical solution, the smaller the difference between the time information and the current time, the more the real-time data information or cached data information can reflect the current power quality; and based on the real-time data information or cached data information, the state of the power grid can be accurately determined.
[0015] Preferably, the data collected by the collection module includes time information;
[0016] In the case where the difference between the time information and the current time exceeds a threshold value, the processing module controls the cache module to delete the corresponding cached data information.
[0017] By adopting the above technical solution, in the case where the difference between the time information and the current time exceeds a threshold value, it is determined that the cached data information has little reference value, and the corresponding cached data information is deleted to reduce the storage capacity of the cache module.
[0018] Preferably, the collection module, the processing module and the communication module are all arranged on the mainboard, and the mainboard is provided with a port connected to the processing module, and the port is used for connecting the cache module.
[0019] By adopting the above technical solution, corresponding to the intelligent energy efficiency collection terminal in different working scenarios, the real-time collected data may be different, and thus cache modules with different storage capacities can be configured (such as SD cards, USB flash disks, etc.).
[0020] Preferably, the plug is connected to the processing module, and the port is further used for connecting the plug of another intelligent energy efficiency collection terminal.
[0021] By adopting the above technical solution, in the case where the plugs of multiple intelligent energy efficiency collection terminals are connected to each other, one cache module can be shared.
[0022] Preferably, the mainboard is connected in the shell, and the shell is provided with a socket and a clearance, the port is located at the socket, and one end of the plug is used to extend out of the clearance.
[0023] By adopting the technical scheme, the plug is slid to be located in the shell, so as to reduce the probability of damage of the plug.
[0024] Preferably, the drive block is slidably connected to the shell, and the sliding direction of the drive block is parallel to the sliding direction of the plug; the shell is provided with a through opening, one end of the drive block is used to extend out of the through opening, and the other end of the drive block is used to touch the outer surface of the shell of another intelligent energy efficiency collection terminal; the transmission mechanism is arranged between the drive block and the plug, and the transmission mechanism makes the sliding directions of the drive block and the plug opposite.
[0025] By adopting the technical scheme, when the two intelligent energy efficiency collection terminals are connected to each other, the drive block of one intelligent energy efficiency collection terminal touches the outer surface of the shell of another intelligent energy efficiency collection terminal, and the two intelligent energy efficiency collection terminals continue to approach each other, so that the drive block slides into the shell, and then the plug slides out of the shell through the transmission mechanism, and the plug is connected to the port of another intelligent energy efficiency collection terminal.
[0026] Preferably, the transmission mechanism comprises a drive rack, a gear and a driven rack, the drive rack is connected to the drive block, the driven rack is connected to the plug, and the gear engages the drive rack and the driven rack.
[0027] By adopting the technical scheme, the transmission mechanism makes the sliding directions of the drive block and the plug opposite.
[0028] Preferably, the transmission mechanism further comprises a sliding block and a magnetic block, the sliding block is slidably connected to the drive block, and the sliding direction of the sliding block is parallel to the sliding direction of the drive block, and the gear is rotatably connected to the sliding block; the magnetic block is used to attract the sliding block of another intelligent energy efficiency collection terminal.
[0029] One end of the drive block is flush with the outer surface of the shell, and one end of the plug is flush with the outer surface of the shell when the sliding block is close to the other end of the drive block.
[0030] By adopting the technical scheme, when the intelligent energy efficiency collection terminal touches other objects and causes the drive block to slide into the shell, the plug is still located in the shell.
[0031] Only when the intelligent energy efficiency collection terminal is connected to another intelligent energy efficiency collection terminal, the magnetic block of another intelligent energy efficiency collection terminal attracts the sliding block, the sliding block is away from the other end of the drive block, and then the plug extends out of the shell and is connected to the port of another intelligent energy efficiency collection terminal.
[0032] Preferably, the transmission mechanism further comprises a spring connected between the driving block and the sliding block, the spring causing the sliding block to have a tendency to be close to the other end of the driving block.
[0033] By adopting the above technical solution, in the case that the current intelligent energy efficiency collection terminal is not connected with another intelligent energy efficiency collection terminal, the spring causes the sliding block to always be close to the other end of the driving block, and further causes one end of the plug to always not extend out of the shell, thereby reducing the probability of damage of the plug.
[0034] In summary, the present application has at least one of the following beneficial technical effects:
[0035] 1. In the case that real-time feedback information is not received, it is judged that the communication network at this time is in a poor state, and the data collected by the storage collection module is stored; and in the case that the communication network is in a good state, real-time data information and buffered data information are sent; so as to reduce the loss of data and improve the accuracy of data collection;
[0036] 2. Corresponding to intelligent energy efficiency collection terminals in different working scenarios, the real-time collected data may be different, and further, the buffered module with different storage capacities can be configured;
[0037] 3. In the case that the plug (single intelligent energy efficiency collection terminal working independently) is not used, the plug is located in the shell, thereby reducing the probability of damage of the plug. BRIEF DESCRIPTION OF DRAWINGS
[0038] Figure 1 is a structural diagram of an intelligent energy efficiency collection terminal.
[0039] Figure 2 is a structural block diagram of the structure of an intelligent energy efficiency collection terminal.
[0040] Figure 3 is a structural diagram of an intelligent energy efficiency collection terminal, used to show a driving block.
[0041] Figure 4 is a sectional view of an intelligent energy efficiency collection terminal.
[0042] Figure 5 is a structural diagram of a driving block, a transmission mechanism and a plug.
[0043] Figure 6 is Figure 4 is an enlarged view of A in
[0044] Figure 7 is an installation diagram of an intelligent energy efficiency collection terminal.
[0045] Explanation of reference signs: 1, shell; 11, socket; 12, avoiding port; 13, through port; 14, clamping groove; 21, acquisition module; 22, communication module; 23, processing module; 24, port; 25, cache module; 26, plug; 3, driving block; 31, sliding groove; 4, transmission mechanism; 41, driving rack; 42, gear; 43, driven rack; 44, sliding block; 45, magnetic block; 46, spring; 47, support block; 5, reset elasticity. DETAILED DESCRIPTION
[0046] The following will be described in detail below with reference to the accompanying drawings Figures 1-6 The application is further described in detail.
[0047] Reference Figure 1 and Figure 2 The embodiment of the application discloses an intelligent energy efficiency acquisition terminal, which comprises a shell 1 and a mainboard. The mainboard is arranged in the shell 1, and the mainboard is provided with an acquisition module 21 and a communication module 22.
[0048] The acquisition module 21 is used for data acquisition and generates real-time data information; and the data acquired by the acquisition module 21 comprises time information.
[0049] The communication module 22 is used for sending the real-time data information to a data relay device or a data processing device (such as a local computer, a server). The communication module 22 is also used for receiving real-time feedback information from the data relay device or the data processing device.
[0050] The mainboard is also provided with a processing module 23 and a port 24, and the port 24 is connected with the processing module 23. The shell 1 is provided with a socket 11, and the port 24 is located at the socket 11.
[0051] The intelligent energy efficiency acquisition terminal further comprises a cache module 25. The cache module 25 can be an SD card, a U disk or the like. The cache module 25 is connected with the processing module 23 through the port 24.
[0052] The processing module 23 is configured with a priority based on the time information. The smaller the difference between the time information and the current time, the higher the priority.
[0053] In the case that the real-time feedback information cannot be received, the processing module 23 controls the cache module 25 to store the data acquired by the acquisition module 21 to record as cache data information.
[0054] In the case that the real-time feedback information is received, the processing module 23 controls the communication module 22 to send the real-time data information and the cache data information based on the priority, and the processing module 23 controls the cache module 25 to delete the cache data information which has been sent.
[0055] Meanwhile, in the case that the difference between the time information and the current time exceeds a threshold value, the processing module 23 controls the cache module 25 to delete the corresponding cache data information.
[0056] With reference to Figure 2 and Figure 3 , the intelligent energy efficiency collection terminal further comprises a plug 26. The plug 26 is connected to the processing module 23 for communication. Meanwhile, the plug 26 is slidingly connected to the shell 1. The shell 1 is provided with an avoiding opening 12, and one end of the plug 26 is used to extend out of the avoiding opening 12. The port 24 is also used for connecting the plug 26 of another intelligent energy efficiency collection terminal.
[0057] In one embodiment, the socket 11 and the avoiding opening 12 are respectively located at two ends of the shell 1.
[0058] With reference to Figure 4 and Figure 5 , the intelligent energy efficiency collection terminal further comprises a driving block 3 and a transmission mechanism 4.
[0059] The driving block 3 is slidingly connected to the shell 1, and the sliding direction of the driving block 3 is parallel to the sliding direction of the plug 26. The shell 1 is provided with a through opening 13, and one end (A end) of the driving block 3 is used to extend out of the through opening 13, and the one end (A end) of the driving block 3 is used to touch the outer surface of the shell 1 of another intelligent energy efficiency collection terminal.
[0060] The transmission mechanism 4 is arranged between the driving block 3 and the plug 26, and the transmission mechanism 4 makes the sliding directions of the driving block 3 and the plug 26 opposite.
[0061] The transmission mechanism 4 comprises a driving rack 41, a gear 42 and a driven rack 43. The driving rack 41 is fixedly connected to the driving block 3. The driven rack 43 is fixedly connected to the plug 26. The gear 42 engages the driving rack 41 and the driven rack 43, and the gear 42 is located between the driving rack 41 and the driven rack 43.
[0062] With reference to Figure 5 and Figure 6 , the transmission mechanism 4 further comprises a sliding block 44, a magnetic block 45, a spring 46 and a supporting block 47.
[0063] The sliding block 44 is slidingly connected to the driving block 3, and the sliding direction of the sliding block 44 is parallel to the sliding direction of the driving block 3. The gear 42 is rotationally connected to the sliding block 44.
[0064] In one embodiment, the driving block 3 is provided with a sliding groove 31, one end of the sliding block 44 is slidingly embedded in the sliding groove 31, and the other end of the sliding block 44 extends out of the sliding groove 31; the gear 42 is rotationally connected to the other end of the sliding block 44.
[0065] The magnetic block 45 is used to attract the sliding block 44 of another intelligent energy efficiency collection terminal.
[0066] In one embodiment, the magnetic block 45 is a magnet, and the sliding block 44 is made of iron, cobalt, or nickel.
[0067] The spring 46 is connected between the driving block 3 and the sliding block 44, and the spring 46 causes the sliding block 44 to have a tendency to approach the other end (end B) of the driving block 3.
[0068] In one embodiment, the spring 46 is located in the sliding groove 31, and the spring 46 is located on the side of the sliding block 44 that is away from the driving block 3 and that is used to extend out of the end of the shell 1; one end of the spring 46 abuts against the groove wall of the sliding groove 31, and the other end of the spring 46 abuts against the sliding block 44.
[0069] The support block 47 is fixedly connected to the shell 1, and the support block 47 is used to abut against the end of the sliding block 44 that is away from the spring 46.
[0070] The end of the driving block 3 is flush with the outer surface of the shell 1, and in the case where the sliding block 44 approaches the other end (the end abutting against the groove wall of the sliding groove 31) of the driving block 3, the end of the plug 26 is flush with the outer surface of the shell 1.
[0071] The intelligent energy efficiency collection terminal further includes a reset spring 5, which is arranged between the shell 1 and the driving block 3, and causes the driving block 3 to have a tendency to extend out of the shell 1. The reset spring 5 can be made of an elastic metal sheet.
[0072] In the case where only the spring 46 and the reset spring 5 act (i.e., the magnetic block 45 does not act on the sliding block 44), the spring 46 causes the sliding block 44 to abut against the support block 47.
[0073] Referring to Figure 7 The shell 1 is further provided with a clamping groove 14. The extension direction of the clamping groove 14 is parallel to the distribution direction of the plug hole 11 and the avoiding hole 12; and the clamping groove 14 penetrates through the shell. The clamping groove 14 can be a dovetail groove or a T-shaped groove.
[0074] When the intelligent energy efficiency collection terminal is installed, the installation site is provided with a sliding rail, and the clamping groove 14 is sleeved onto the sliding rail.
[0075] The implementation principle of the intelligent energy efficiency collection terminal according to the embodiment of the present application is as follows: in the case where real-time feedback information cannot be received, it is determined that the communication network at this time is in a poor state, and the data collected by the storage collection module 21 is stored; and in the case where the communication network is in a good state, real-time data information and buffered data information are sent; so as to reduce the loss of data and improve the accuracy of data collection.
[0076] In the case where the plugs 26 and the ports 24 of a plurality of intelligent energy efficiency collection terminals are connected to each other, one buffered module 25 can be shared. Moreover, the data collected in real time by the intelligent energy efficiency collection terminals in different working scenarios can be different, and thus the buffered modules 25 with different storage capacities can be configured.
[0077] The above are all preferred embodiments of the present application, and are not intended to limit the protection scope of the present application, and thus: any equivalent changes made according to the structure, shape, principle of the present application should be covered within the protection scope of the present application.
Claims
1. An intelligent energy efficiency data acquisition terminal, comprising a data acquisition module (21) and a communication module (22), wherein the data acquisition module (21) is used to acquire data and generate real-time data information, and the communication module (22) is used to send real-time data information; characterized in that: It also includes a processing module (23) and a cache module (25); the communication module (22) is also used to receive real-time feedback information; In the absence of real-time feedback information, the processing module (23) controls the cache module (25) to store the data collected by the acquisition module (21) as cached data information; Upon receiving real-time feedback information, the processing module (23) controls the communication module (22) to send real-time data information and cached data information, and the processing module (23) controls the cache module (25) to delete the sent cached data information; It also includes a motherboard, on which the acquisition module (21), processing module (23) and communication module (22) are all located. The motherboard has a port (24), which is connected to the processing module (23) and is used for the cache module (25) to connect. It also includes a plug (26) that connects to the processing module (23), and the port (24) is also used for connecting to the plug (26) of another smart energy efficiency acquisition terminal; It also includes a housing (1), the motherboard is connected inside the housing (1), the housing (1) is provided with a socket (11) and a clearance opening (12), the port (24) is located at the socket (11), the plug (26) is slidably connected to the housing (1), and one end of the plug (26) is used to extend out of the clearance opening (12). It also includes a drive block (3) and a transmission mechanism (4). The drive block (3) is slidably connected to the housing (1), and the sliding direction of the drive block (3) is parallel to the sliding direction of the plug (26). The housing (1) is provided with a through-hole (13). One end of the drive block (3) is used to extend out of the through-hole (13), and one end of the drive block (3) is used to touch the outer surface of the housing (1) of another smart energy efficiency acquisition terminal. The transmission mechanism (4) is located between the drive block (3) and the plug (26), and the transmission mechanism (4) makes the sliding directions of the drive block (3) and the plug (26) opposite. The transmission mechanism (4) includes a drive rack (41), a gear (42) and a driven rack (43). The drive rack (41) is connected to the drive block (3), and the driven rack (43) is connected to the plug (26). The gear (42) meshes with the drive rack (41) and the driven rack (43). The transmission mechanism (4) further includes a slider (44) and a magnetic block (45). The slider (44) is slidably connected to the drive block (3), and the sliding direction of the slider (44) is parallel to the sliding direction of the drive block (3). The gear (42) is rotatably connected to the slider (44). The magnetic block (45) is used to attract the slider (44) of another smart energy efficiency acquisition terminal. When one end of the drive block (3) is flush with the outer surface of the housing (1) and the slider (44) is close to the other end of the drive block (3), one end of the plug (26) is flush with the outer surface of the housing (1).
2. The intelligent energy efficiency data acquisition terminal according to claim 1, characterized in that: The data collected by the acquisition module (21) includes time information; The processing module (23) configures the priority based on the time information. The smaller the difference between the time information and the current time, the higher the priority. The processing module (23) controls the communication module (22) to send real-time data information and cached data information based on priority.
3. The intelligent energy efficiency data acquisition terminal according to claim 1, characterized in that: The data collected by the acquisition module (21) includes time information; If the difference between the time information and the current time exceeds a threshold, the processing module (23) controls the cache module (25) to delete the corresponding cached data information.
4. The intelligent energy efficiency acquisition terminal according to claim 1, characterized in that: The transmission mechanism (4) also includes a spring (46) connected between the drive block (3) and the slider (44), the spring (46) causing the slider (44) to tend to move closer to the other end of the drive block (3).
Citation Information
Patent Citations
Data processing method and device and storage medium
CN110535965A
Broken line caching method based on different acquisition scenes
CN112380260A