Testing device for whole-network carbon data transmission unit of 5G Internet of Things

By designing a test device with a temperature and humidity control module and a simulated network access component, the problems of transmission latency and network adaptability of carbon data transmitters in 5G IoT were solved, enabling comprehensive performance testing of carbon data transmitters and improving the stability and accuracy of data transmission.

CN223978655UActive Publication Date: 2026-03-06GUANGXI GAONONG INTELLIGENT TECH CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-03-05
Publication Date
2026-03-06

AI Technical Summary

Technical Problem

Existing carbon data transmitters suffer from problems such as data transmission delay, packet loss, and bit errors in 5G IoT. Furthermore, the testing devices are limited in function and cannot fully simulate various network environments, resulting in the transmitters being unable to adapt to different network conditions in actual use, thus affecting the real-time performance and accuracy of the data.

Method used

A test device was designed, comprising a temperature and humidity control module, a simulated network access component, and a data acquisition module. It can simulate various network standards and environmental conditions. The temperature and humidity control module maintains the stability inside the test chamber, the simulated network access component simulates different network parameters, and the data acquisition module collects and analyzes transmission data indicators in real time.

Benefits of technology

This technology enables comprehensive performance testing of carbon data transmitters under various network environments, improving the stability and accuracy of data transmission and meeting the needs of product quality testing.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

The utility model relates to the technical field of carbon data transmitter testing, in particular to a testing device for a 5G Internet of Things whole-network carbon data transmitter, which comprises a testing box, a carbon data transmitter body is placed in the testing box, a temperature and humidity adjusting module is mounted in the testing box, and a temperature and humidity sensor is mounted in the testing box. The test box is provided with an analog network access assembly and a data acquisition module which are connected with the carbon data transmitter body, and a signal output line is connected between the data acquisition module and the signal output end of the carbon data transmitter body. A power supply module connected with the humiture adjusting module, the carbon data transmitter body, the data acquisition module and the simulation network access assembly is arranged outside the test box, the test box can simulate a plurality of network types, an operator can set different network signal intensity, bandwidth, delay and other parameters according to needs, and the test box is convenient to use. And the data transmission capability of the carbon data transmitter body in various network environments is detected.
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Description

Technical Field

[0001] This utility model relates to the field of carbon data transmission device testing technology, specifically a testing device for a 5G IoT full-network compatible carbon data transmission device. Background Technology

[0002] With the rapid development of 5G technology and the increasing prevalence of IoT applications, 5G IoT full-network compatible carbon data transmitters play a crucial role in carbon emission monitoring and management. They can accurately and quickly transmit data from various carbon emission monitoring points to data centers, providing strong support for accurate carbon emission statistics and effective control. However, current carbon data transmitters on the market face numerous challenges in practical applications. Transmitters from different manufacturers vary significantly in performance, compatibility, and stability. Due to the complexity of 5G networks and the diversity of IoT devices, transmitters may experience data transmission delays, packet loss, and bit errors, affecting the real-time performance and accuracy of carbon data. Furthermore, the full-network compatibility requirement demands that the transmitter operate stably under multiple network standards, but existing testing methods struggle to comprehensively and realistically simulate various complex network environments. This leads to some transmitters failing to adapt to different network conditions in actual use, resulting in frequent communication failures.

[0003] Furthermore, existing testing devices are limited in function and lack the comprehensive testing capabilities for various performance indicators of carbon data transmitters, failing to meet the growing demands for product quality inspection. Therefore, there is an urgent need for a device capable of comprehensively and efficiently testing the performance of 5G IoT full-network compatible carbon data transmitters. Utility Model Content

[0004] The purpose of this invention is to provide a testing device for a 5G IoT full-network carbon data transmitter, so as to solve the problems mentioned in the background art.

[0005] The technical solution of this utility model is: a testing device for a 5G IoT full-network compatible carbon data transmitter, comprising a test box, a carbon data transmitter body inside the test box, a temperature and humidity control module installed inside the test box, an analog network access component and a data acquisition module connected to the carbon data transmitter body installed on the test box, a signal output line connecting the data acquisition module and the signal output terminal of the carbon data transmitter body, and a power module connected to the temperature and humidity control module, the carbon data transmitter body, the data acquisition module and the analog network access component outside the test box.

[0006] The aforementioned components achieve the following effects: the temperature and humidity control module stabilizes the test environment inside the test chamber; the simulated network access component can simulate various network standards such as 5G, 4G, and 3G; operators can set different parameters such as network signal strength, bandwidth, and latency as needed to test the data transmission capability of the carbon data transmitter under various network environments; the data acquisition module collects and analyzes transmission data indicators in real time and transmits them to the computer; and the power supply module supplies power to each module and simulates different power conditions.

[0007] Preferably, the analog network access component includes a network output terminal and a network interface connected to the carbon data transmitter body, wherein the network interface is connected to the signal input line of the network output terminal.

[0008] The aforementioned components achieve the following effects: the network output end connects to the carbon data transmitter body via a network interface, enabling it to simulate various network standards such as 5G, 4G, and 3G. Operators can set different parameters such as network signal strength, bandwidth, and latency as needed to test the data transmission capability of the carbon data transmitter body under various network environments.

[0009] Preferably, the temperature and humidity control module includes a temperature control component and a humidity control component installed inside the test chamber.

[0010] The aforementioned components achieve the following effect: by utilizing heating, cooling, humidifying, and dehumidifying elements and temperature and humidity sensors, the temperature and humidity inside the test chamber can be kept stable under the coordination of the controller.

[0011] Preferably, a bracket is fixed to the bottom of the test chamber, and the carbon data transmitter body is placed on the bracket.

[0012] The aforementioned components achieve the following effect: the bracket facilitates the placement and operation of the carbon data transmitter body.

[0013] Preferably, the test chamber has a flip-up cover on top, a transparent window on the outside, and an electromagnetic shielding layer inside.

[0014] The aforementioned components achieve the following effects: the flip-up cover facilitates the handling of the carbon data transmitter, and the electromagnetic shielding layer reduces external electromagnetic interference, ensuring the stability of the testing environment.

[0015] This utility model provides an improved testing device for a 5G IoT full-network compatible carbon data transmitter, which has the following improvements and advantages compared with the prior art:

[0016] This utility model uses a temperature and humidity control module to stabilize the test environment inside the test chamber. The simulated network access component can simulate various network standards such as 5G, 4G, and 3G. Operators can set different parameters such as network signal strength, bandwidth, and latency as needed to test the data transmission capability of the carbon data transmitter in various network environments. Attached Figure Description

[0017] The present invention will be further explained below with reference to the accompanying drawings and embodiments:

[0018] Figure 1 This is a first-view three-dimensional structural diagram of the present invention;

[0019] Figure 2 This is a second-view three-dimensional structural diagram of the present invention.

[0020] Explanation of reference numerals in the attached figures:

[0021] 1. Test chamber; 2. Cover plate; 3. Transparent window; 4. Bracket; 5. Carbon data transmitter body; 6. Analog network access component; 61. Network output terminal; 62. Signal input line; 63. Network interface; 7. Signal output line; 8. Data acquisition module; 9. Temperature control component; 10. Power supply module; 11. Humidity control component. Detailed Implementation

[0022] The present invention will now be described in detail, and the technical solutions in the embodiments of the present invention will be clearly and completely described. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the protection scope of the present invention.

[0023] This utility model provides an improved testing device for a 5G IoT full-network compatible carbon data transmitter. The technical solution of this utility model is as follows:

[0024] In embodiments of this utility model, such as Figures 1-2As shown, a testing device for a 5G IoT full-network compatible carbon data transmitter includes a test chamber 1. The test chamber 1 has a flip-up cover 2 on top and a transparent window 3 on the outside. An electromagnetic shielding layer is installed inside the test chamber 1 to reduce external electromagnetic interference and ensure the stability of the testing environment. The carbon data transmitter body 5 is placed inside the test chamber 1, and a bracket 4 is fixed to the bottom of the test chamber 1, on which the carbon data transmitter body 5 is placed. A temperature and humidity control module is installed inside the test chamber 1. An analog network access component 6 and a data acquisition module 8, connected to the carbon data transmitter body 5, are installed on the test chamber 1. A signal output line 7 connects the data acquisition module 8 to the signal output terminal of the carbon data transmitter body 5. A power module 10, connected to the temperature and humidity control module, the carbon data transmitter body 5, the data acquisition module 8, and the analog network access component 6, is located outside the test chamber 1. The power module 10 is connected to the carbon data transmitter body 5 to test the stability of the carbon data transmitter body 5 under different power conditions.

[0025] In this embodiment of the invention, the simulated network access component 6 includes a network output terminal 61 and a network interface 63 connected to the carbon data transmitter body 5. The network interface 63 is connected to the signal input line 62 of the network output terminal 61. The network output terminal 61 includes a core processing chip (Intel's IXP series chip), multiple communication interface circuits (such as Ethernet interface, 5G communication module interface, 4G communication module interface, 3G communication module interface, etc.), a storage module, and a power management circuit. The network output terminal 61 is connected to the carbon data transmitter body 5 through the network interface 63, and can simulate multiple network standards such as 5G, 4G, and 3G. Operators can set different parameters such as network signal strength, bandwidth, and delay as needed to test the data transmission capability of the carbon data transmitter body 5 in various network environments.

[0026] In this embodiment of the invention, the temperature and humidity control module includes a temperature control component 9 and a humidity control component 11 installed inside the test chamber 1, as well as a controller. The temperature control component 9 includes a heating element, a cooling element, and a temperature sensor. The heating element is a ceramic heating plate, which has advantages such as fast heating speed, high heating efficiency, and long service life. Electrical energy is converted into heat energy through electric heating to provide heat to the test chamber 1. The heating plate is installed on the inner wall of the test chamber 1 and is tightly attached to the chamber body through a thermally conductive material to ensure that heat can be evenly transferred to the interior space. The cooling element is a semiconductor cooling chip, which utilizes the Peltier effect to cool one end and heat the other end when energized. The cold side of the cooling chip is installed inside the test chamber 1, while the hot side is installed outside the chamber, and it is equipped with heat dissipation fins and a cooling fan to quickly dissipate the generated heat. By controlling the current of the cooling chip, the cooling capacity can be precisely adjusted, achieving precise control of the temperature inside the chamber.

[0027] The humidity control component 11 includes a humidifying element, a dehumidifying element, and a humidity sensor. The humidifying element is an ultrasonic humidifier, which works by atomizing water into tiny particles through high-frequency oscillation and releasing the mist into the test chamber 1, thereby increasing the humidity inside the chamber. The humidifier's water tank is located outside the test chamber 1 and is connected to a spray head installed at the top of the test chamber 1 via a pipe. The spray head can evenly spray water mist into the space inside the test chamber 1, ensuring uniform humidity distribution. The dehumidifying element is a condenser dehumidifier, which uses the principle of refrigeration to condense humid air into water droplets on the surface of the cooling pipe, thus achieving dehumidification. The dehumidifier's condenser pipe is installed inside the test chamber 1 and connected to the refrigeration system. When the humidity inside the chamber exceeds the set value, the dehumidifier activates, expelling excess moisture outside the chamber.

[0028] The working principle of the test device for a 5G IoT full-network compatible carbon data transmitter provided by this utility model is as follows: Through a core processing chip, multiple communication interface circuits, a storage module, and a power management circuit, operation is guaranteed at the hardware level. Different network environments are simulated using functional modules such as network protocol, signal, bandwidth, and latency simulation. The temperature and humidity control module, using heating, cooling, humidification, and dehumidification elements and temperature and humidity sensors, maintains stable temperature and humidity inside the test chamber 1 under the coordination of the controller. During testing, the carbon data transmitter 5 is placed on the bracket 4 of the test chamber 1. The simulated network access component 6 simulates various network environments, enabling the carbon data transmitter 5 to transmit data. The data acquisition module 8 collects and analyzes the transmitted data indicators in real time and sends them to the computer. The power module 10 supplies power to each module and simulates different power conditions. All modules work closely together to comprehensively test the performance of the carbon data transmitter under different network and environmental conditions.

[0029] Although embodiments of the present invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the present invention, the scope of which is defined by the appended claims and their equivalents.

Claims

1. A testing device for a 5G IoT all-net carbon data transmitter, comprising a test box (1), a carbon data transmitter body (5) is placed in the test box (1), characterized in that: The test box (1) is internally provided with a temperature and humidity adjusting module, and externally provided with an analog network access assembly (6) connected with the carbon data transmitter body (5) and a data acquisition module (8), a signal output line (7) connected between the data acquisition module (8) and the signal output end of the carbon data transmitter body (5), and a power module (10) connected with the temperature and humidity adjusting module, the carbon data transmitter body (5), the data acquisition module (8) and the analog network access assembly (6).

2. The testing device for the 5G IoT C-V2X carbon data transmitter according to claim 1, characterized in that: The analog network access assembly (6) comprises a network output end (61) and a network interface (63) connected with the carbon data transmitter body (5), and the network interface (63) is connected with a signal input line (62) connected with the network output end (61).

3. The testing device for the 5G IoT C-V2X carbon data transmitter according to claim 1, wherein: The temperature and humidity adjusting module comprises a temperature adjusting assembly (9) and a humidity adjusting assembly (11) installed in the test box (1).

4. The testing device for the 5G IoT C-V2X carbon data transmitter according to claim 1, characterized in that: The test box (1) is fixedly provided with a bracket (4) at the bottom, and the carbon data transmitter body (5) is placed on the bracket (4).

5. The testing device for the 5G IoT-Carbon data transmitter according to claim 1, wherein: The test box (1) is provided with a reversible cover plate (2) at the top, a transparent window (3) is arranged on the outer side of the test box (1), and an electromagnetic shielding layer is arranged in the test box (1). The test box (1) is internally provided with a temperature and humidity adjusting module, and externally provided with an analog network access assembly (6) connected with the carbon data transmitter body (5) and a data acquisition module (8), a signal output line (7) connected between the data acquisition module (8) and the signal output end of the carbon data transmitter body (5), and a power module (10) connected with the temperature and humidity adjusting module, the carbon data transmitter body (5), the data acquisition module (8) and the analog network access assembly (6). The analog network access assembly (6) comprises a network output end (61) and a network interface (63) connected with the carbon data transmitter body (5), and the network interface (63) is connected with a signal input line (62) connected with the network output end (61). The temperature and humidity adjusting module comprises a temperature adjusting assembly (9) and a humidity adjusting assembly (11) installed in the test box (1). The test box (1) is fixedly provided with a bracket (4) at the bottom, and the carbon data transmitter body (5) is placed on the bracket (4). The test box (1) is provided with a reversible cover plate (2) at the top, a transparent window (3) is arranged on the outer side of the test box (1), and an electromagnetic shielding layer is arranged in the test box (1).