Low-power-consumption remote data acquisition and transmission integrated device

By combining a heat dissipation structure with a circulating water cooling structure, the problem of low heat dissipation efficiency in the integrated data acquisition and transmission device was solved, achieving efficient heat dissipation and temperature monitoring, and improving equipment performance and information transmission efficiency.

CN224098008UActive Publication Date: 2026-04-07刘金泉
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-03-12
Publication Date
2026-04-07

AI Technical Summary

Technical Problem

Existing integrated data acquisition and transmission devices rely on ordinary fans for heat dissipation, which has low heat dissipation efficiency, leading to overheating of the equipment and affecting its performance, lifespan, and information transmission efficiency.

Method used

By combining a heat dissipation structure with a circulating water cooling structure, and through an external blower, filter plate, water-cooled radiator, circulating water pipe, water-cooled controller and temperature monitor, efficient heat dissipation and temperature monitoring are achieved.

Benefits of technology

It effectively prevents heat buildup, improves equipment performance and lifespan, and enhances information transmission efficiency.

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Abstract

The utility model relates to the technical field of data acquisition and transmission integrated equipment, in particular to a low-power-consumption remote data acquisition and transmission integrated device. According to the technical scheme, the low-power-consumption remote data acquisition and transmission integrated device comprises an integrated device body, an external air blower, a filter plate, a water cooling radiator, a circulating water pipe, a water cooling controller and a temperature monitor, the external air blower is arranged on one face of the integrated device body, and the filter plate is arranged on one face of the external air blower; compared with a traditional data acquisition and transmission integrated device, heat generated when the transmission integrated device works is dissipated generally depending on heat dissipation of a common fan, the heat dissipation efficiency is low, the device is prone to overheating, the performance and the service life of the device and the information transmission efficiency are affected, and the service life of the device is prolonged. According to the data acquisition and transmission integrated device, the interior of the data acquisition and transmission integrated device can be efficiently cooled, and heat accumulation in the data acquisition and transmission integrated device can be effectively prevented.
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Description

Technical Field

[0001] This utility model relates to the field of integrated data acquisition and transmission equipment, and in particular to a low-power remote data acquisition and transmission integrated device. Background Technology

[0002] An integrated data acquisition and transmission device is a device that integrates data acquisition, processing, and transmission functions. It is mainly used to capture and transform data from various data sources and transmit the processed data to a designated receiving end, such as a computer, database, or cloud platform, via wired or wireless means.

[0003] Existing integrated data acquisition and transmission devices generally rely on ordinary fans to dissipate the heat generated during operation. This method has low heat dissipation efficiency, which can easily lead to overheating of the equipment, affecting its performance, lifespan, and the efficiency of information transmission.

[0004] To address the problem that existing integrated data acquisition and transmission devices have low heat dissipation efficiency, which easily leads to overheating and affects the performance, lifespan, and information transmission efficiency of the device, this integrated data acquisition and transmission device combines a heat dissipation structure with a circulating water cooling structure. This can efficiently dissipate heat inside the integrated data acquisition and transmission device, effectively preventing heat accumulation inside the device and thus preventing overheating. Utility Model Content

[0005] To overcome the problem that existing integrated data acquisition and transmission devices generally rely on ordinary fans to dissipate the heat generated during operation, the heat dissipation efficiency is low, which can easily lead to overheating of the equipment, affecting its performance, lifespan, and the efficiency of information transmission.

[0006] The technical solution of this utility model is as follows: a low-power remote data acquisition and transmission integrated device, including an integrated device body, an external blower, a filter plate, a water-cooled radiator, a circulating water pipe, a water-cooled controller, and a temperature monitor. An external blower is provided on one side of the integrated device body, a filter plate is provided on one side of the external blower, a water-cooled radiator is provided on one side of the filter plate, a circulating water pipe is provided on one side of the water-cooled radiator, multiple sets of circulating water pipes are provided, and the other end of the circulating water pipe is connected to the external blower. A water-cooled controller is provided on one side of the water-cooled radiator, and a temperature monitor is provided on the top surface of the water-cooled radiator.

[0007] Preferably, an external blower is used to blow air into the interior of the integrated device body to dissipate heat. A filter plate is used to prevent dust from being blown into the integrated device body during operation. A water-cooled radiator is used to dissipate heat. Water is circulated through a circulating water pipe to prevent heat accumulation. A water-cooling controller controls the heat dissipation temperature of the water-cooled radiator. A temperature monitor is used to monitor the temperature inside the integrated device body.

[0008] As a preferred embodiment, an installation platform is provided on the other side of the integrated device body, and a control knob is provided on one side of the installation platform, with multiple sets of control knobs.

[0009] Preferably, the bottom surface of the integrated device body is provided with a support bracket, and the bottom surface of the support bracket is provided with an anti-slip pad.

[0010] Preferably, a first mounting groove is provided on one side of the integrated device body, and a connection port is provided inside the first mounting groove, with multiple sets of connection ports.

[0011] Preferably, the integrated device has a second mounting slot on both sides, and an air plate is installed inside the second mounting slot.

[0012] Preferably, the integrated device has limit slots on both sides, a rotating base is installed inside the limit slots, and an AC antenna is installed on one side of the rotating base.

[0013] Preferably, the top surface of the integrated device body is provided with an installation block, and there are two sets of installation blocks. One side of the installation block is provided with a support block, the top of the support block is provided with a solar power supply panel, and the other side of the installation block is provided with a rotating motor.

[0014] The beneficial effects of this utility model are:

[0015] The integrated device is cooled by blowing air through an external blower. A filter plate prevents dust from being blown into the device during operation. A water-cooled radiator dissipates heat, and a circulating water pipe circulates water to prevent heat buildup. A water-cooling controller controls the radiator's cooling temperature, and a temperature monitor tracks the internal temperature of the integrated device. Attached Figure Description

[0016] Figure 1 The diagram shown is a first three-dimensional structural schematic of the low-power remote data acquisition and transmission integrated device of this utility model.

[0017] Figure 2 The diagram shown is a second three-dimensional structural schematic of the low-power remote data acquisition and transmission integrated device of this utility model.

[0018] Figure 3 The diagram shown is a side-view perspective of the integrated low-power remote data acquisition and transmission device of this utility model.

[0019] Figure 4 The diagram shown is a three-dimensional representation of the internal structure of the low-power remote data acquisition and transmission integrated device of this utility model.

[0020] Explanation of reference numerals in the attached drawings: 1. Main body of the integrated device; 201. Mounting platform; 202. Control knob; 301. Support bracket; 302. Anti-slip pad; 401. External blower; 402. Filter plate; 403. Water-cooled radiator; 404. Circulating water pipe; 405. Water-cooled controller; 406. Temperature monitor; 501. First mounting slot; 502. Connection port; 601. Second mounting slot; 602. Air plate; 701. Limiting slot; 702. Rotating base; 703. AC antenna; 801. Mounting block; 802. Support block; 803. Rotating motor; 804. Solar power supply panel. Detailed Implementation

[0021] The present invention will be further described below with reference to the accompanying drawings and embodiments.

[0022] Please see Figure 3 This utility model provides an embodiment of a low-power remote data acquisition and transmission integrated device, including an integrated device body 1, an external blower 401, a filter plate 402, a water-cooled radiator 403, a circulating water pipe 404, a water-cooling controller 405, and a temperature monitor 406. The external blower 401 is provided on one side of the integrated device body 1, the filter plate 402 is provided on one side of the external blower 401, the water-cooled radiator 403 is provided on one side of the filter plate 402, the circulating water pipe 404 is provided on one side of the water-cooled radiator 403, multiple sets of the circulating water pipe 404 are provided, and the other end of the circulating water pipe 404 is connected to the external blower 401. The water-cooling controller 405 is provided on one side of the water-cooled radiator 403, and the temperature monitor 406 is provided on the top surface of the water-cooled radiator 403.

[0023] Please see Figures 1-2 In this embodiment, a mounting platform 201 is provided on the other side of the integrated device body 1, and a control knob 202 is provided on one side of the mounting platform 201. Multiple sets of control knobs 202 are provided. In use, the control knobs 202 are installed on the mounting platform 201 and the integrated device body 1 is operated by the control knobs 202. A support bracket 301 is provided on the bottom surface of the integrated device body 1, and an anti-slip pad 302 is provided on the bottom surface of the support bracket 301. In use, the support bracket 301 supports the integrated device body 1, and the anti-slip pad 302 prevents the integrated device body 1 from sliding during operation.

[0024] Please see Figures 3-4 In this embodiment, a first mounting groove 501 is provided on one side of the integrated device body 1. Multiple sets of connection ports 502 are provided inside the first mounting groove 501. During use, the connection ports 502 are installed through the first mounting groove 501, facilitating connection of the integrated device body 1 to other communication devices. Second mounting grooves 601 are provided on both sides of the integrated device body 1. Air plates 602 are provided inside the second mounting grooves 601. During use, the air plates 602 are installed through the second mounting grooves 601, facilitating air circulation inside the integrated device body 1. Limiting grooves 701 are provided on both sides of the integrated device body 1. Rotating bases 702 are provided inside the limiting grooves 701, and a cross-shaped groove is provided on one side of the rotating base 702. The AC antenna 703 is installed on the rotating base 702 via the limiting groove 701 during use. The rotating base 702 facilitates the adjustment of the orientation angle of the AC antenna 703, allowing the integrated device body 1 to receive signals. The top surface of the integrated device body 1 is provided with a mounting block 801, of which two sets are provided. One side of the mounting block 801 has a support block 802, and the top of the support block 802 is equipped with a solar power panel 804. The other side of the mounting block 801 has a rotating motor 803. During use, the rotating motor 803 is installed via the mounting block 801, which drives the support block 802 to rotate. The solar power panel 804 is then installed via the support block 802, allowing the solar power panel 804 to absorb solar energy.

[0025] During operation, the control knob 202 is installed on the mounting platform 201, the integrated device body 1 is operated by the control knob 202, the integrated device body 1 is supported by the support bracket 301, and the anti-slip pad 302 prevents the integrated device body 1 from sliding during operation.

[0026] Meanwhile, the external blower 401 blows air to cool the interior of the integrated device body 1, the filter plate 402 prevents dust from being blown into the integrated device body 1 during operation, the water-cooled radiator 403 dissipates heat, the circulating water pipe 404 circulates water to prevent heat accumulation, the water-cooled controller 405 controls the heat dissipation temperature of the water-cooled radiator 403, the temperature monitor 406 monitors the temperature inside the integrated device body 1, and the air plate 602 is installed through the second mounting slot 601 to facilitate air circulation inside the integrated device body 1.

[0027] When the integrated device body 1 is working, the rotating base 702 is installed through the limiting groove 701. The rotating base 702 facilitates the adjustment of the orientation angle of the AC antenna 703. The AC antenna 703 facilitates the integrated device body 1 to receive signals. The rotating motor 803 is installed through the mounting block 801. The rotating motor 803 drives the support block 802 to rotate. The solar power panel 804 is installed through the support block 802. The solar power panel 804 absorbs solar energy.

[0028] The embodiments of the present invention have been described in detail above with reference to the accompanying drawings. However, the present invention is not limited to the above embodiments. Within the scope of knowledge possessed by those skilled in the art, various changes can be made without departing from the spirit of the present invention.

Claims

1. A low-power remote data acquisition and transmission integrated device, comprising an integrated device body (1), characterized in that: It also includes an external blower (401), a filter plate (402), a water-cooled radiator (403), a circulating water pipe (404), a water-cooled controller (405), and a temperature monitor (406). An external blower (401) is provided on one side of the integrated device body (1), a filter plate (402) is provided on one side of the external blower (401), a water-cooled radiator (403) is provided on one side of the filter plate (402), a circulating water pipe (404) is provided on one side of the water-cooled radiator (403), and multiple sets of circulating water pipes (404) are provided. The other end of the circulating water pipe (404) is connected to the external blower (401). A water-cooled controller (405) is provided on one side of the water-cooled radiator (403), and a temperature monitor (406) is provided on the top surface of the water-cooled radiator (403).

2. The low-power remote data acquisition and transmission integrated device according to claim 1, characterized in that: An installation platform (201) is provided on the other side of the main body (1) of the integrated device. A control knob (202) is provided on one side of the installation platform (201). Multiple sets of control knobs (202) are provided.

3. The low-power remote data acquisition and transmission integrated device according to claim 1, characterized in that: The bottom surface of the integrated device body (1) is provided with a support bracket (301), and the bottom surface of the support bracket (301) is provided with an anti-slip pad (302).

4. The low-power remote data acquisition and transmission integrated device according to claim 1, characterized in that: The main body (1) of the integrated device has a first mounting groove (501) on one side, and the first mounting groove (501) has a connection port (502) inside, and the connection port (502) has multiple sets.

5. The low-power remote data acquisition and transmission integrated device according to claim 1, characterized in that: The main body (1) of the integrated device has a second mounting groove (601) on both sides, and an air plate (602) is installed inside the second mounting groove (601).

6. The low-power remote data acquisition and transmission integrated device according to claim 1, characterized in that: The integrated device body (1) has limit slots (701) on both sides. A rotating base (702) is installed inside the limit slot (701), and an AC antenna (703) is installed on one side of the rotating base (702).

7. The low-power remote data acquisition and transmission integrated device according to claim 1, characterized in that: The top surface of the integrated device body (1) is provided with an installation block (801). There are two sets of installation blocks (801). A support block (802) is provided on one side of the installation block (801). A solar power supply panel (804) is provided on the top of the support block (802). A rotating motor (803) is provided on the other side of the installation block (801).