An internet of things communication antenna device with signal enhancement function
By designing adjustable RF connectors and enhancement components, the problem of limited signal coverage of traditional IoT communication antennas in complex environments is solved, achieving precise signal matching and enhancement, and ensuring the stability and quality of data transmission.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- HUASHENG SHILIAN TECHNOLOGY (SHENZHEN) CO LTD
- Filing Date
- 2025-05-09
- Publication Date
- 2026-05-29
AI Technical Summary
Traditional IoT communication antennas are easily blocked by obstacles in complex environments, resulting in limited signal coverage and degraded signal quality, which affects the effective working range of the device and the stability of data transmission.
An IoT communication antenna device with signal enhancement function is designed, comprising a support rod, a connecting rod, a guide frame, a support plate, a support frame, a power management module, a fixing frame, a signal amplifier, and a signal enhancement component. The signal transmission path is precisely adjusted through an adjustable RF connector and an electric push rod, and an electromagnetic shield and a wave-absorbing plate are equipped to reduce interference and enhance signal reception and transmission capabilities.
It achieves precise signal matching and enhancement in complex environments, improves signal reception sensitivity and coverage, ensures the stability and quality of data transmission, reduces signal distortion rate, and provides reliable communication assurance.
Smart Images

Figure CN224304888U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of wireless communication technology, and in particular to an Internet of Things (IoT) communication antenna device with signal enhancement function. Background Technology
[0002] IoT communication antenna devices with signal enhancement capabilities are hardware used to improve the quality of wireless communication between Internet of Things (IoT) devices. These devices primarily address issues such as weak and unstable signals that may occur in complex environments or during long-distance transmission, ensuring that data can be sent and received efficiently and accurately.
[0003] Traditional IoT communication antennas are typically designed with a fixed radiation direction, meaning that the direction of signal transmission and reception is not adjustable. However, in practical applications, when IoT devices are deployed in areas with numerous buildings, terrain undulations, and other obstacles, such as cities or mountainous regions, antennas with a fixed radiation direction struggle to overcome the impact of these physical obstacles on signal transmission. Signals are easily blocked by buildings, mountains, and other terrain features, resulting in limited signal coverage and degraded signal quality. This not only limits the effective working range of IoT devices but may also lead to unstable data transmission or even communication interruptions.
[0004] To address the aforementioned issues, it is necessary to design an IoT communication antenna device with signal enhancement capabilities. Utility Model Content
[0005] To overcome the limitations of fixed-radiation-direction antennas in overcoming physical obstacles that affect signal transmission, such as the ease with which signals are blocked by buildings, mountains, and other terrain features, resulting in limited signal coverage and reduced signal quality, this invention provides an IoT communication antenna device with signal enhancement capabilities.
[0006] The technical implementation scheme of this utility model is as follows: an Internet of Things communication antenna device with signal enhancement function, including support rods, connecting rods, guide frames, support plates, support frames, power management modules, fixing frames, signal amplifiers, and signal enhancement components. There are four support rods, and a support plate is provided between the four support rods. Guide frames are symmetrically connected to the left and right sides of the support plate. A connecting rod is slidably connected inside each guide frame. Each connecting rod is slidably engaged with the corresponding support rod. A support frame is connected to the upper side of the support plate. Power management modules are symmetrically installed at the front and back of the support frame. A fixing frame is connected to the upper side of the support plate. A signal amplifier is installed on the upper side of the fixing frame. A signal enhancement component is provided on the right side of the fixing frame.
[0007] Optionally, the signal enhancement component includes a sliding block, a first mounting bracket, a first sliding sleeve, a first grip, a first electric push rod, a push plate, and a first RF connector. The sliding block is slidably connected to the right side of the mounting bracket, and the first mounting bracket is connected to the right side of the sliding block. The first sliding sleeve is rotatably connected inside the first mounting bracket. The first grip is symmetrically connected to the front and rear of the first sliding sleeve. The first electric push rod is mounted on the right side of the first sliding sleeve. The push plate is connected to the telescopic end of the first electric push rod. The first RF connector is slidably connected inside the first sliding sleeve. The push plate is fixedly connected to the first RF connector.
[0008] Optionally, it also includes a fixing block, a second mounting bracket, a second sliding sleeve, a second handle, a second electric push rod, and a second RF connector. The fixing block is connected to the left side of the fixing bracket, and the second mounting bracket is connected to the left side of the fixing block. The second sliding sleeve is slidably connected inside the second mounting bracket. The second handle is symmetrically connected to the front and rear of the second sliding sleeve. The second RF connector is slidably connected inside the second sliding sleeve. The second electric push rod is installed on the left side of the second sliding sleeve, and the second RF connector is fixedly connected to the telescopic end of the electric push rod.
[0009] Optionally, it also includes protective pads, with protective pads attached to the bottom of each of the four support rods.
[0010] Optionally, it also includes a fan, which is installed on the rear side of the mounting bracket.
[0011] Optionally, it also includes an absorbing plate, which is connected to the upper side of the signal amplifier.
[0012] Optionally, it also includes an electromagnetic shield, which is installed on the left side of the mounting bracket.
[0013] Optionally, multiple grooves are provided at the hand grips of both first grips.
[0014] The beneficial effects of this utility model are as follows: By setting up a first electric push rod, a push plate, and a first RF connector, the first electric push rod drives the push plate and the first RF connector to move along the first sliding sleeve, which can accurately adjust the position of the first RF connector according to actual needs, ensuring that the first RF connector can quickly match the optimal signal transmission path; through the design of the first sliding sleeve and the first grip, the angle of the first RF connector can be adjusted by manually operating the two first grips, so that it can adapt to signal sources in different directions, enhancing the sensitivity and coverage of signal reception; after receiving the optimized signal, the first RF connector will further process the received signal to achieve the signal enhancement effect. Attached Figure Description
[0015] Figure 1 This is a three-dimensional structural diagram of the present invention.
[0016] Figure 2This is a three-dimensional structural diagram of the connecting rod, guide frame, and support plate of this utility model.
[0017] Figure 3 This is a cross-sectional view of the guide frame of this utility model.
[0018] Figure 4 This is a three-dimensional structural diagram of the support frame, power management module, and fixing frame of this utility model.
[0019] Figure 5 This is a three-dimensional structural diagram of the signal amplifier, sliding block, and first mounting bracket of this utility model.
[0020] Figure 6 This is a three-dimensional structural diagram of the first sliding sleeve, first grip, and first electric push rod of this utility model.
[0021] Figure 7 This is a schematic diagram of the three-dimensional structure of the signal amplifier and the fan of this utility model.
[0022] The meanings of the reference numerals in the figure are as follows: 1_Support rod, 101_Protective pad, 2_Connecting rod, 21_Guide frame, 3_Support plate, 4_Support frame, 5_Power management module, 6_Fixed frame, 61_Electromagnetic shield, 7_Signal amplifier, 8_Sliding block, 9_First mounting bracket, 10_First sliding sleeve, 1001_First grip, 11_First electric push rod, 12_Push plate, 13_First RF connector, 14_Fan, 15_Absorbing plate, 16_Fixed block, 17_Second mounting bracket, 18_Second sliding sleeve, 181_Second grip, 19_Second electric push rod, 20_Second RF connector. Detailed Implementation
[0023] The present invention will be further described below with reference to the accompanying drawings and specific embodiments.
[0024] Example: An IoT communication antenna device with signal enhancement function, such as... Figures 1-7As shown, the system includes support rods 1, protective pads 101, connecting rods 2, guide frames 21, support plates 3, support frames 4, power management modules 5, fixing frames 6, electromagnetic shields 61, signal amplifiers 7, fans 14, wave-absorbing plates 15, fixing blocks 16, second mounting brackets 17, second sliding sleeves 18, second grips 181, second electric push rods 19, second RF connectors 20, and signal enhancement components. There are four support rods 1, each with a protective pad 101 connected to its bottom. A support plate 3 is positioned between the four support rods 1. Guide frames 21 are symmetrically connected to the left and right sides of the support plate 3. Each guide frame 21 has a connecting rod 2 slidably connected inside, and each connecting rod 2 slidably engages with the corresponding support rod 1. A support frame 4 is connected to the upper side of the support plate 3. Power management modules 5 are symmetrically installed at the front and rear of the support frame 4. A fixing frame 6 is connected to the upper side of the support plate 3. An electromagnetic shield 61 is installed on the left side of the fixing frame 6. The shield 61 can shield external electromagnetic interference, protect the internal signal processing equipment from external interference, and improve communication quality. A signal amplifier 7 is installed on the upper side of the fixing frame 6. The signal amplifier 7 can capture weak signals and perform preliminary amplification processing, providing basic support for subsequent signal optimization and transmission. A fan 14 is installed at the rear of the fixing frame 6. The fan 14 can dissipate heat from the signal amplifier. An absorbing plate 15 is connected to the upper side of the signal amplifier 7. The absorbing plate 15 can absorb excess reflected signals, reduce signal interference, and further improve the purity and quality of signal reception. The left side of the fixing frame 6... A fixing block 16 is connected, and a second mounting bracket 17 is connected to the left side of the fixing block 16. A second sliding sleeve 18 is slidably connected inside the second mounting bracket 17, and the second sliding sleeve 18 can provide a sliding track for the second RF connector 20. A second grip 181 is symmetrically connected to the front and rear of the second sliding sleeve 18, and the second RF connector 20 is slidably connected inside the second sliding sleeve 18. A second electric push rod 19 is installed on the left side of the second sliding sleeve 18, and the second RF connector 20 is fixedly connected to the telescopic end of the electric push rod. A signal enhancement component is provided on the right side of the fixing bracket 6. The signal enhancement component includes a sliding block 8, a first mounting bracket 9, a first sliding sleeve 10, a first grip 1001, a first electric push rod 11, a push plate 12, and a first RF connector 13. The right side of the fixing bracket 6 slides... A sliding block 8 is dynamically connected, and a first mounting bracket 9 is connected to the right side of the sliding block 8. A first sliding sleeve 10 is rotatably connected inside the first mounting bracket 9. The first sliding sleeve 10 can provide a sliding track for the first RF connector 13. A first grip 1001 is symmetrically connected to the front and rear of the first sliding sleeve 10. Multiple grooves are provided at the hand grips of both first grips 1001. A first electric push rod 11 is installed on the right side of the first sliding sleeve 10. A push plate 12 is connected to the telescopic end of the first electric push rod 11. The first RF connector 13 is slidably connected inside the first sliding sleeve 10. The push plate 12 is fixedly connected to the first RF connector 13. The first RF connector 13 can receive and optimize signals to ensure the strength and stability of the output signal and provide a reliable guarantee for subsequent data transmission.
[0025] When this device is needed, firstly, the operator places the device in a designated outdoor location. Then, the operator activates the signal amplifier 7, which begins to capture weak signals from surrounding IoT devices or base stations. During this process, the absorbing plate 15 effectively reduces noise interference in the surrounding environment, ensuring the purity of the received signal. Subsequently, the first electric push rod 11 is activated. The telescopic end of the first electric push rod 11 drives the push plate 12 and the first RF connector 13 to move outward along the first sliding sleeve 10. Once the first RF connector 13 reaches the optimal position, the first electric push rod 11 is closed. Simultaneously, the second electric push rod 19 is activated. The telescopic end of the second electric push rod 19 drives the second RF connector 20 to move outward along the second sliding sleeve 18 until the second RF connector 20 moves to a suitable position. Then, the second electric push rod 19 is closed. This process achieves precise adjustment of the positions of the first RF connector 13 and the second RF connector 20 to match the optimal signal transmission path. Afterward, by operating the two first grips 1001 and the two second grips 181, the position of the first RF connector 13 and the second RF connector 20 can be manually adjusted. The angles of the sliding sleeve 10 and the second sliding sleeve 18 allow the first RF connector 13 and the second RF connector 20 to be aligned with different signal source directions, further improving signal reception sensitivity. After the signal undergoes preliminary amplification, it is transmitted by the signal amplifier 7 to the first RF connector 13 and the second RF connector 20 for further optimization, ensuring the strength and stability of the output signal and providing reliable protection for subsequent data transmission. Then, the electromagnetic shield 61 effectively shields external electromagnetic interference, while the absorbing plate 15 absorbs excess reflected signals, thereby reducing signal distortion and improving communication quality. Subsequently, the fan 14 is started, and the airflow generated by the fan 14 blows directly onto the signal amplifier 7, helping to dissipate internal heat and maintain the equipment operating at a suitable working temperature. At the same time, the power management module 5 provides stable and reliable power support for the entire system (including the signal amplifier 7, the first RF connector 13, the second RF connector 20, the first electric push rod 11, the second electric push rod 19, the electromagnetic shield 61, and the fan 14), ensuring the continuous and efficient operation of the system.
[0026] Although embodiments of the present invention have been shown and described, it will be understood by those skilled in the art that variations may 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. An IoT communication antenna device with signal enhancement function, characterized in that, It includes support rods (1), connecting rods (2), guide frames (21), support plates (3), support frames (4), power management modules (5), fixing frames (6), signal amplifiers (7), and signal enhancement components. There are four support rods (1), and a support plate (3) is provided between the four support rods (1). Guide frames (21) are fixedly connected to the left and right sides of the support plate (3). A connecting rod (2) is slidably connected inside each guide frame (21). Each connecting rod (2) is slidably engaged with the corresponding support rod (1). A support frame (4) is fixedly connected to the upper side of the support plate (3). A power management module (5) is installed symmetrically at the front and back of the support frame (4). A fixing frame (6) is fixedly connected to the upper side of the support plate (3). A signal amplifier (7) is installed on the upper side of the fixing frame (6). A signal enhancement component is provided on the right side of the fixing frame (6).
2. The IoT communication antenna device with signal enhancement function according to claim 1, characterized in that, The signal enhancement component includes a sliding block (8), a first mounting bracket (9), a first sliding sleeve (10), a first grip (1001), a first electric push rod (11), a push plate (12), and a first radio frequency connector (13). The right side of the fixed bracket (6) is slidably connected to the sliding block (8). The right side of the sliding block (8) is equipped with the first mounting bracket (9). The first sliding sleeve (10) is rotatably connected inside the first mounting bracket (9). The first grip (1001) is symmetrically fixedly connected to the front and rear of the first sliding sleeve (10). The right side of the first sliding sleeve (10) is equipped with the first electric push rod (11). The telescopic end of the first electric push rod (11) is connected to the push plate (12). The first radio frequency connector (13) is slidably connected inside the first sliding sleeve (10). The push plate (12) is fixedly connected to the first radio frequency connector (13).
3. The IoT communication antenna device with signal enhancement function according to claim 2, characterized in that, It also includes a fixing block (16), a second mounting bracket (17), a second sliding sleeve (18), a second grip (181), a second electric push rod (19), and a second radio frequency connector (20). The fixing block (16) is fixedly connected to the left side of the fixing bracket (6). The second mounting bracket (17) is installed on the left side of the fixing block (16). The second sliding sleeve (18) is slidably connected inside the second mounting bracket (17). The second grip (181) is fixedly connected symmetrically to the front and back of the second sliding sleeve (18). The second radio frequency connector (20) is slidably connected inside the second sliding sleeve (18). The second electric push rod (19) is installed on the left side of the second sliding sleeve (18). The second radio frequency connector (20) is fixedly connected to the telescopic end of the electric push rod.
4. The IoT communication antenna device with signal enhancement function according to claim 3, characterized in that, It also includes protective pads (101), and the bottom of each of the four support rods (1) is provided with protective pads (101).
5. The IoT communication antenna device with signal enhancement function according to claim 4, characterized in that, It also includes a fan (14), and the fan (14) is installed on the rear side of the mounting bracket (6).
6. The IoT communication antenna device with signal enhancement function according to claim 5, characterized in that, It also includes a wave-absorbing plate (15), and the signal amplifier (7) is connected to the upper side of the wave-absorbing plate (15).
7. The IoT communication antenna device with signal enhancement function according to claim 6, characterized in that, It also includes an electromagnetic shield (61), which is installed on the left side of the mounting bracket (6).
8. The IoT communication antenna device with signal enhancement function according to claim 7, characterized in that, The two first grips (1001) each have multiple grooves at their hand positions.