SF6 detection system
By designing the SF6 detection system and using PoE switches and wireless communication modules, the power supply and communication of SF6 sensor equipment is integrated, solving the problems of many equipment connection cables and ununified protocols in the existing technology, and improving system compatibility and data security.
Patent Information
- Application Number
- CN202422563075.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-10-22
- Publication Date
- 2025-08-15
- Estimated Expiration
- 2034-10-22
AI Technical Summary
The existing SF6 gas sensor equipment has many connection cables, the protocol cannot be unified, data management cannot be formed, and the number of host connections is limited, and information security and interfaces cannot be directly returned to the server.
A SF6 detection system is designed, including a host, a PoE switch and multiple sensors. The host and the sensor are wired through the network port of the PoE switch. A wireless communication module is provided in the host and a wireless communication module is provided in the sensor. The PoE switch is used to achieve integrated power supply and communication. The host and the sensor are wired and wirelessly connected at the same time, and the server can directly access the sensor.
It realizes the reduction of the number of cables and interfaces in the system, the unification of communication protocols, improves system compatibility, data transmission security and reliability, supports the flexible combination of multiple sensors, and realizes plug-and-play and data secure transmission.
Smart Images

Figure CN223231204U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of power detection, in particular to an SF6 detection system. Background Art
[0002] SF6 is a colorless, odorless, non-toxic, and non-flammable gas. Due to its excellent electrical insulation and arc-extinguishing properties, it is widely used in gas-insulated switchgear (GIS). GIS has many advantages over conventional electrical equipment, but from a long-term operational perspective, there is a hidden danger of SF6 gas leakage due to factors such as the manufacturing process of power equipment, the installation environment, and equipment aging. SF6 gas leakage may cause serious safety problems and environmental impacts. SF6 gas sensors need to be installed in the scene to avoid accidents.
[0003] Traditional SF6 gas sensors generally use analog output. Analog signals will be interfered and attenuated after long-distance transmission, resulting in a large difference between the detection value and the measurement value. Currently, some digital SF6 gas sensors have appeared on the market. Although they use digital transmission, the number of host connections is limited, generally not exceeding 256, and there is no unified information security and interface, and they cannot be directly returned to the server.
[0004] Therefore, it is crucial for those skilled in the art to design an SF6 detection system that has higher interface protocol and functional compatibility and can mount multiple smart sensors. Utility Model Content
[0005] The technical problem to be solved by the embodiments of the present utility model is to provide an SF6 detection system with higher interface protocol and functional compatibility and capable of mounting multiple smart sensors, so as to solve the problems in the prior art of multiple equipment connection cables, ununiform protocols, and inability to form unified data management.
[0006] The utility model discloses an SF6 detection system, which comprises: a host, a PoE switch and a plurality of sensors; the PoE switch comprises a plurality of network ports, the host and the plurality of sensors are respectively connected to different network ports of the PoE switch for wired communication between the host and the plurality of sensors; the host is provided with a first wireless communication module for wireless communication with a server and the plurality of sensors; each of the sensors is provided with a second wireless communication module for wireless communication with the server and the host.
[0007] Optionally, a main control module and a display module are further provided in the host, the main control module is connected to the first wireless communication module, and the display module is connected to the main control module.
[0008] Optionally, the main control module is equipped with the Dianhong IoT operating system.
[0009] Optionally, the PoE switch adopts the IPV6 protocol.
[0010] Optionally, the plurality of sensors include an SF6 sensor, an oxygen sensor, a temperature sensor and a humidity sensor.
[0011] Optionally, the oxygen sensor includes a voltage follower circuit, a sensing module and a conversion circuit, the output end of the voltage follower circuit is connected to the input end of the sensing module, and the input end of the conversion circuit is connected to the output end of the sensing module, so as to convert the current signal into a voltage signal.
[0012] Optionally, the oxygen sensor further includes an amplifier circuit, an input end of the amplifier circuit is connected to the conversion circuit, and an output end of the amplifier circuit is connected to the host for ADC sampling.
[0013] Optionally, the voltage follower circuit includes a first voltage divider resistor, a second voltage divider resistor, a third voltage divider resistor and a comparator, one end of the first voltage divider resistor is connected to the power supply end, the other end of the first voltage divider resistor is respectively connected to one end of the second voltage divider resistor and the negative input end of the comparator, the other end of the second voltage divider resistor is connected to the third voltage divider resistor, and the output end of the comparator is connected to the sensing module to provide a reference signal.
[0014] Optionally, the first wireless communication module and the second wireless communication module are both star flash modules.
[0015] Optionally, the SF6 sensor is an infrared sensor.
[0016] Compared with the prior art, the beneficial effects of the SF6 detection system provided by the embodiment of the present invention are as follows: by designing an SF6 detection system, including a host, a PoE switch and multiple sensors; the PoE switch includes multiple network ports, and the host and multiple sensors are respectively connected to different network ports of the PoE switch for wired communication between the host and the multiple sensors; a first wireless communication module is provided in the host for wireless communication with the server and the multiple sensors; each sensor is provided with a second wireless communication module for wireless communication with the server and the host; by setting up the PoE switch, power supply and data wired transmission between the host and the multiple sensor devices are realized, and power supply and communication are integrated, which not only effectively reduces the number of cables and interfaces in the system, but also realizes the unification of interfaces and communication protocols in the system, making the system more compatible; by setting up the first wireless communication module in the host and setting up the second wireless communication module in the multiple sensors, not only the host and the multiple sensors have wired and wireless connections at the same time, but also the server can access the sensors not only through the host but also directly, realizing a unified interface of the power grid and more secure data. BRIEF DESCRIPTION OF THE DRAWINGS
[0017] The technical solution of the present invention will be further described in detail below with reference to the accompanying drawings and embodiments, in which:
[0018] Figure 1 This is the structural framework of the SF6 detection system provided by the embodiment of the utility model Figure 1 ;
[0019] Figure 2 This is the structural framework of the SF6 detection system provided by the embodiment of the utility model Figure 2 ;
[0020] Figure 3 The circuit of the oxygen sensor provided by the embodiment of the utility model is Figure 1 ;
[0021] Figure 4 The circuit of the oxygen sensor provided by the embodiment of the utility model is Figure 2 . DETAILED DESCRIPTION
[0022] It should be noted that, in the absence of conflict, the embodiments and features of the embodiments in this application can be combined with each other. Now, in conjunction with the accompanying drawings, a detailed description of the preferred embodiments of the present utility model will be given.
[0023] like Figures 1 to 4 As shown, the utility model provides a specific embodiment of an SF6 detection system.
[0024] A SF6 detection system, reference Figure 1The SF6 detection system includes a host 100, a PoE switch 200 and multiple sensors 300; the PoE switch 200 includes multiple network ports 210, and the host 100 and multiple sensors 300 are respectively connected to different network ports 210 of the PoE switch 200 for wired communication between the host 100 and the multiple sensors 300; a first wireless communication module 110 is provided in the host 100 for wireless communication with the server and the multiple sensors 300; each sensor 300 is provided with a second wireless communication module 310 for wireless communication with the server and the host 100.
[0025] Specifically, refer to Figure 1 The PoE switch 200 is a network switch that can provide power to connected devices via an Ethernet cable. It allows power to be transmitted to PoE-enabled devices via a network cable without an additional power line.
[0026] refer to Figure 2 The PoE switch 200 is provided with multiple network ports 210. All of the multiple network ports 210 adopt a unified communication protocol, support the traditional DC24V+RS485 power supply communication connection method, and support flexible combinations of multiple SF6 sensors 301, oxygen sensors 302, humidity sensors 303 and temperature sensors 304. After connecting the host 100 to the network port 210 of the PoE switch 200, a wired (Ethernet) connection can be achieved with multiple sensors 300 through the PoE switch 200.
[0027] By setting up a PoE switch 200 in the system, the host 100 and multiple sensors 300 can be connected to the PoE switch 200. The host 100 can communicate with multiple connected sensors 300 through the PoE switch 200 to obtain different detection data. Communication and power supply between multiple devices can be achieved through the PoE switch 200, which not only effectively reduces the number of cables and interfaces in the system, but also realizes the unification of interfaces and communication protocols in the system, making the system more compatible and realizing plug-and-play of devices.
[0028] Further, refer to Figure 1 A first wireless communication module 110 is provided in the host 100, and a second wireless communication module 310 is provided in each connected sensor 300. The first wireless communication module 110 can be connected to the second wireless communication module 310 to realize a wireless connection between the host 100 and multiple sensors 300, so that there are two communication modes between the host 100 and multiple sensors 300, namely wireless communication and wired (Ethernet) communication, and the two communication modes serve as backup for each other.
[0029] Among them, the host 100 can also be connected to the cloud server through the first wireless communication module 110 to transmit the acquired detection data of the sensor 300 to the cloud server; multiple sensors 300 can also be directly connected to the cloud server through their second wireless communication modules 310 to transmit the detected detection data directly to the cloud server; so that the platform supports multi-channel access, and the sensor 300 can be accessed directly or through the on-site host 100.
[0030] Furthermore, both the first wireless communication module 110 and the second wireless communication module 310 can adopt StarLink wireless communication technology. StarLink wireless communication technology is also called StarLink protocol, which is a wireless communication protocol based on extremely low latency and high reliability. It is designed to meet the extremely high requirements of wireless communications in scenarios such as the Internet of Things, autonomous driving, and industrial automation. By adopting advanced coding, modulation and multiple access technologies, it can achieve efficient and stable data transmission in complex wireless environments.
[0031] Specifically, Star Flash wireless communication technology adopts a short frame structure and fast retransmission mechanism, which greatly reduces the delay of data transmission and can effectively improve the overall performance of the system; moreover, Star Flash wireless communication technology adopts forward error correction, interference suppression and other technical means, which makes it have strong anti-interference ability, and can ensure reliable data transmission even in the case of poor signal quality; Star Flash wireless communication technology also adopts energy-saving transmission mode and power control strategy, while ensuring communication performance, it effectively reduces the energy consumption of equipment and extends battery life; more importantly, Star Flash wireless communication technology supports a variety of physical layer and data link layer parameter configurations, which can be flexibly adjusted according to the needs of different scenarios. At the same time, its modular design makes the protocol easier to expand and maintain.
[0032] Traditional SF6 gas sensors generally use analog output. Analog signals will be interfered and attenuated after long-distance transmission, resulting in a large difference between the detection value and the measurement value. Although the digital SF6 gas sensors currently on the market use digital transmission, the number of host connections is limited, generally not exceeding 256, and there is no unified information security and interface, and they cannot be directly returned to the server.
[0033] In the present invention, an SF6 detection system is designed, which includes a host 100, a PoE switch 200 and a plurality of sensors 300; the PoE switch 200 includes a plurality of network ports 210, and the host 100 and the plurality of sensors 300 are respectively connected to different network ports 210 of the PoE switch 200 for wired communication between the host 100 and the plurality of sensors 300; a first wireless communication module 110 is provided in the host 100 for wireless communication with a server and the plurality of sensors 300; each sensor 300 is provided with a second wireless communication module 310 for wireless communication with the server and the host 100; by setting the PoE switch 200, the SF6 detection system is realized. The power supply and data wired transmission between the host 100 and multiple sensor 300 devices are realized, and power supply and communication are integrated. It not only effectively reduces the number of cables and interfaces in the system, but also realizes the unification of interfaces and communication protocols in the system, making the system more compatible. By setting a first wireless communication module 110 in the host 100 and a second wireless communication module 310 in multiple sensors 300, not only is there a wired and wireless connection between the host 100 and multiple sensors 300, but also the server can not only access the sensor 300 through the host 100, but also directly access the sensor 300, realizing a unified interface of the power grid and making the data more secure.
[0034] In one embodiment, reference Figure 2 The host 100 is further provided with a main control module 120 and a display module 130 . The main control module 120 is connected to the first wireless communication module 110 , and the display module 130 is connected to the main control module 120 .
[0035] Specifically, refer to Figure 2 The main control module 120 is equipped with the Dianhong IoT operating system, namely the Southern Power Grid's "Dianhong OS" operating system, which has the characteristics of the Internet of Everything and can realize functions similar to the interconnection of mobile phones, tablet computers, smart terminals and other devices. Through the interconnection of the Hongmeng system, unified management and interactive collaboration are realized, making information transmission and processing clearer and more efficient. In this embodiment, by being equipped with the Dianhong IoT operating system, the system's data security, business processing, data processing and protocol unification requirements are met.
[0036] Furthermore, the display module 130 uses a 3.5-inch IPS true color display screen, which can display the real-time values of SF6, oxygen, temperature and humidity, support on-site operation and maintenance, and facilitate maintenance; at the same time, when the SF6 content exceeds the standard, it can also provide an early warning, allowing operation and maintenance personnel to quickly leave the danger zone.
[0037] In one embodiment, the PoE switch 200 uses the IPv6 protocol.
[0038] Specifically, PoE is applied to the power intelligent SF6 sensor 301, and power supply and two-way communication can be achieved through only one network cable, which makes wiring simple. The PoE switch 200 adopts the IPV6 protocol. The IPv6 protocol is an Internet protocol. The IPv6 protocol uses a unique IPV6 communication address. There is no limit on the number of connections. It is plug-and-play and can provide more IP addresses to support the growing number of Internet devices. In addition, the header of the IPv6 communication protocol is concise, which improves the efficiency of the system in processing data packets. The IPv6 communication protocol also introduces the SLAAC mechanism, which allows devices to automatically configure their own IP addresses according to the network prefix, simplifying address management; the IPv6 communication protocol also provides end-to-end encryption and authentication functions, which enhances the security of communication. At the same time, more devices can be connected. The number of connected devices in the same substation is no longer limited by the connection address, further realizing the interconnection of all things.
[0039] In one embodiment, the SF6 sensor 301 is an infrared sensor 300 .
[0040] Specifically, the SF6 sensor 301 can be a highly sensitive SF6 infrared sensor 300. The SF6 infrared sensor 300 is used to detect and measure the concentration of SF6 gas. The SF6 infrared sensor 300 uses infrared technology to detect the concentration of SF6 gas in the ambient air. When SF6 gas passes through the SF6 infrared sensor 300, the infrared rays interact with the SF6 molecules in the gas, producing specific absorption characteristics. The SF6 infrared sensor 300 determines the concentration of SF6 gas in the ambient air by measuring changes in the absorption characteristics.
[0041] In one embodiment, reference Figure 3 and Figure 4 The oxygen sensor 302 includes a voltage follower circuit 3021, a sensing module 3022 and a conversion circuit 3023. The sensing module 3022 is used to detect the current signal. The output end of the voltage follower circuit 3021 is connected to the input end of the sensing module 3022 to provide a reference voltage source. The input end of the conversion circuit 3023 is connected to the output end of the sensing module 3022 to convert the current signal into a voltage signal. The host 100 is connected to the output end of the signal processing module for ADC sampling.
[0042] Specifically, refer to Figure 3 and Figure 4The sensor module 3022 uses a 0.25% high-precision oxygen sensor 302. The sensor module 3022 includes a positive power supply terminal HS+ and a negative power supply terminal HS- for connecting to the heating power supply of the sensor 300, as well as a reference source input terminal Sen+ and a signal output terminal Sen-; the voltage follower circuit 3021 includes a first voltage divider resistor R1, a second voltage divider resistor R2, a third voltage divider resistor R3 and a comparator U1. One end of the first voltage divider resistor R1 inputs a 3V voltage, the other end of the first voltage divider resistor R1 is respectively connected to one end of the second voltage divider resistor R2 and the negative input terminal of the comparator U1, the other end of the second voltage divider resistor R2 is connected to one end of the third voltage divider resistor R3, and the other end of the third voltage divider resistor R3 is grounded. The output end of the comparator U1 is connected to the reference source input end of the sensor module 3022 to provide a reference signal.
[0043] Further, refer to Figure 3 and Figure 4 The input end of the conversion circuit 3023 is connected to the signal output end of the sensor module 3022 to convert the current signal output by the sensor module 3022 into a voltage signal, thereby facilitating direct ADC sampling by the host 100; the conversion circuit 3023 includes a first amplifier U2, which converts the current signal into a voltage signal, amplifies the converted voltage signal and outputs it.
[0044] In one embodiment, reference Figure 3 and Figure 4 The oxygen sensor 302 further includes an amplifier circuit 3024 , an input end of the amplifier circuit 3024 is connected to an output end of the conversion circuit 3023 , and an output end of the amplifier circuit 3024 is connected to the host 100 for amplifying the voltage signal.
[0045] Specifically, refer to Figure 3 and Figure 4 The amplification circuit 3024 includes a second amplifier U3, and the negative input terminal of the second amplifier U3 is connected to the output terminal of the conversion circuit 3023 for secondary amplification of the voltage signal and impedance matching before ADC. The amplification circuit 3024 also includes a filtering subcircuit, and the filtering subcircuit includes a filter resistor R4 and a filter capacitor C1. One end of the filter resistor R4 is connected to the second amplifier U3, and the other end of the filter resistor R4 is respectively connected to the host 100 and one end of the filter capacitor C1, and the other end of the filter capacitor C1 is grounded.
[0046] It should be understood that the above embodiments are only used to illustrate the technical solutions of the present invention, rather than to limit it. Those skilled in the art may modify the technical solutions described in the above embodiments, or replace some of the technical features therein with equivalents; and all these modifications and replacements should fall within the scope of protection of the claims attached to the present invention.
Claims
1. An SF6 detection system, characterized in that: include: A host, a PoE switch and multiple sensors; the PoE switch includes multiple network ports, and the host and multiple sensors are respectively connected to different network ports of the PoE switch for wired communication between the host and the multiple sensors; the host is provided with a first wireless communication module for wireless communication with a server and the multiple sensors; each of the sensors is provided with a second wireless communication module for wireless communication with the server and the host.
2. The SF6 detection system according to claim 1, characterized in that: The host is further provided with a main control module and a display module. The main control module is connected to the first wireless communication module, and the display module is connected to the main control module.
3. The SF6 detection system according to claim 2, characterized in that: The main control module is equipped with the Dianhong IoT operating system.
4. The SF6 detection system according to claim 1, characterized in that: The PoE switch adopts the IPV6 protocol.
5. The SF6 detection system according to claim 1, characterized in that: The plurality of sensors include an SF6 sensor, an oxygen sensor, a temperature sensor, and a humidity sensor.
6. The SF6 detection system according to claim 5, characterized in that: The oxygen sensor includes a voltage follower circuit, a sensing module and a conversion circuit. The output end of the voltage follower circuit is connected to the input end of the sensing module, and the input end of the conversion circuit is connected to the output end of the sensing module, so as to convert the current signal into a voltage signal.
7. The SF6 detection system according to claim 6, characterized in that: The oxygen sensor further includes an amplifier circuit, an input end of the amplifier circuit is connected to the conversion circuit, and an output end of the amplifier circuit is connected to the host for ADC sampling.
8. The SF6 detection system according to claim 6, characterized in that: The voltage follower circuit includes a first voltage divider resistor, a second voltage divider resistor, a third voltage divider resistor and a comparator. One end of the first voltage divider resistor is connected to the power supply end, the other end of the first voltage divider resistor is respectively connected to one end of the second voltage divider resistor and the negative input end of the comparator, the other end of the second voltage divider resistor is connected to the third voltage divider resistor, and the output end of the comparator is connected to the sensor module to provide a reference signal.
9. The SF6 detection system according to claim 1, characterized in that: The first wireless communication module and the second wireless communication module are both star flash modules.
10. The SF6 detection system according to claim 5, characterized in that: The SF6 sensor is an infrared sensor.