Energy-saving environment monitoring device for smart building

By setting the first slot and the first fixed block in the energy-saving environment monitoring device of the smart building, the maintenance and upgrade of the equipment are achieved. Through the design of parasols, the durability and working environment of the equipment are improved, the physical discomfort caused by long-term standing work is solved, and the continuity and efficiency of the monitoring work are improved.

CN222993750UActive Publication Date: 2025-06-17JINAN YONGLIN NETWORK TECHNOLOGY CO LTD
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Patent Information

Application Number
CN202421869033.5
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-08-05
Publication Date
2025-06-17
Estimated Expiration
2034-08-05

AI Technical Summary

Technical Problem

In the energy-saving environment monitoring device of smart buildings, long-term standing work may cause workers to be physically uncomfortable. The lack of seats limits the worker's working posture and range of movement, especially for the elderly, pregnant women or workers with physical disabilities, which affects the continuity and efficiency of monitoring work.

Method used

Design an energy-saving environment monitoring device for smart buildings. By setting up a first groove and a first fixed block, users can easily install and replace components such as hydraulic pumps to improve the maintenance and upgradeability of the equipment, and install parasols, support panels and solar panels on the outer ring of the pillars to provide a comfortable working environment.

Benefits of technology

It improves the maintainability and upgradeability of the equipment, reduces space occupation, and maintains overall stability, reduces wear and failure rates, improves the durability of the equipment, and reduces the operating temperature of the equipment through parasols, improving equipment performance and stability.

✦ Generated by Eureka AI based on patent content.

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    Figure CN222993750U_ABST
Patent Text Reader

Abstract

The utility model discloses an intelligent building-oriented energy-saving environment monitoring device, which comprises a supporting column, a first open groove is formed in the outer ring of the supporting column, a first fixing block is fixedly connected to the interior of the first open groove, a hydraulic pump is fixedly connected to the bottom end of the first fixing block, a hydraulic rod is fixedly connected to the output end of the hydraulic pump, and a second fixing block is fixedly connected to the output end of the hydraulic rod. A fixing column penetrates through the outer ring of the hydraulic rod, the two ends of the fixing column are fixedly connected with the interior of a second open groove, the second open groove is formed in a second fixing block, a fourth fixing block is fixedly connected to the bottom end of the second fixing block, and rotating columns penetrate through the left side and the right side of the fourth fixing block; third fixing blocks are fixedly connected to the two ends of the rotating column correspondingly, and the rear sides of the third fixing blocks are fixedly connected with the interior of the first open groove. And through the arrangement of the first open groove and the first fixing block, the maintainability and upgrading performance of the equipment are improved, the rear side of the third fixing block is fixedly connected with the interior of the first open groove, and the overall stability is kept.
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Description

Technical Field

[0001] The utility model relates to the technical field of building energy-saving environment monitoring, and specifically relates to an energy-saving environment monitoring device for smart buildings. Background Technique

[0002] With the progress of technology and the development of urbanization, smart buildings have gradually become a new trend in the construction industry. Smart buildings utilize advanced information technology to achieve automated and intelligent management of buildings, improve energy utilization efficiency, reduce operating costs. As the global energy crisis and environmental pollution problems become increasingly serious, energy conservation and environmental protection have become the focus of social attention. Smart buildings can integrate energy-saving environment monitoring devices to monitor and adjust energy use in real time, reduce energy waste, and achieve sustainable development. The development of the Internet of Things (IoT) technology provides strong technical support for smart buildings. Through the IoT, various devices and systems in the building can be interconnected to achieve remote monitoring and management. The application of big data technology enables smart buildings to collect and analyze a large amount of environmental data, such as temperature, humidity, air quality, etc., providing data support for the energy-saving optimization of the building.

[0003] In the actual use process, the need for workers to rest during long working hours has not been considered, lacking attention to the actual user experience. Standing for a long time may cause physical discomfort, affecting the comfort and job satisfaction of workers. When fine operations or long-term monitoring are required, the absence of a seat may limit the working postures and activity ranges of workers. Standing for a long time may cause pressure on the legs, back, and feet of workers, increasing the risk of injury. For the elderly, pregnant women, or workers with physical disabilities, the absence of a seat may make it difficult for them to use the monitoring device. Workers may have to interrupt their work due to the need to rest, affecting the continuity and efficiency of the monitoring work. Content of the Utility Model

[0004] The purpose of the utility model is to provide an energy-saving environment monitoring device for smart buildings. Through the settings of the first slot and the first fixing block, users can easily install and replace components such as hydraulic pumps, improving the maintainability and upgradability of the device. The first fixing block is fixed on the outer circle of the support column, and the hydraulic pump is fixed at the bottom end of the first fixing block. This layered fixing method increases the stability of the entire structure. The hydraulic rod penetrates the fixing column and is connected to the second slot at both ends. The rear side of the third fixing block is fixedly connected to the inside of the first slot, forming a compact structure, reducing space occupation while maintaining overall stability. The fixed connection design of the fixing column and the fixing block reduces moving parts, reduces wear and failure rates, and improves the durability of the device.

[0005] To achieve the above object, a smart building energy-saving environment monitoring device is provided, including: a pillar, with a first slot provided on the outer circle of the pillar. A first fixing block is fixedly connected inside the first slot. The bottom end of the first fixing block is fixedly connected with a hydraulic pump. The output end of the hydraulic pump is fixedly connected with a hydraulic rod. A fixing column passes through the outer circle of the hydraulic rod. The upper surface of the second fixing block is provided with a second slot, and both the left and right sides of the inner wall of the second slot are fixedly connected with the fixing column. The bottom end of the second fixing block is fixedly connected with a fourth fixing block. Rotating columns penetrate through both the left and right sides of the fourth fixing block. Both ends of the rotating column are fixedly connected with a third fixing block, and the rear side of the third fixing block is fixedly connected inside the first slot;

[0006] A sunshade is fixedly connected to the outer circle of the pillar.

[0007] According to the above-mentioned smart building energy-saving environment monitoring device, the top end of the pillar is fixedly connected with a support plate, and the top end of the support plate is fixedly connected with a solar panel.

[0008] According to the above-mentioned smart building energy-saving environment monitoring device, a signal antenna is arranged on one side of the solar panel, and an air particle catcher is fixedly connected to the top end of the support plate.

[0009] According to the above-mentioned smart building energy-saving environment monitoring device, the top end of the support plate is fixedly connected with a first support column, and an anemometer is rotatably connected to the outer circle of the first support column.

[0010] According to the above-mentioned smart building energy-saving environment monitoring device, a display screen is fixedly connected to the outer circle of the pillar, and an energy storage control module is fixedly connected to the rear side of the display screen.

[0011] According to the above-mentioned smart building energy-saving environment monitoring device, the bottom end of the pillar is fixedly connected with a base, and positioning holes penetrate through both the upper and lower ends of the base.

[0012] According to the above-mentioned smart building energy-saving environment monitoring device, the number of the first slots and the hydraulic pumps is two, the number of the first fixing blocks, the second fixing blocks and the third fixing blocks is eight, and the hydraulic pumps cooperate with the first fixing blocks.

[0013] According to the above-mentioned smart building energy-saving environment monitoring device, the display screen cooperates with the anemometer, the air particle catcher and the signal antenna, and the energy storage control module cooperates with the solar panel and the display screen.

[0014] Compared with the prior art, the beneficial effects of the present utility model are:

[0015] 1. The present utility model is provided with a first slot, a first fixing block, a hydraulic pump, a hydraulic rod, a fixing column, a second slot, a second fixing block, a fourth fixing block, a rotating column and a third fixing block. Through the arrangement of the first slot and the first fixing block, users can easily install and replace components such as the hydraulic pump, improving the maintainability and upgradability of the device. The first fixing block is fixed on the outer circle of the support column, and the hydraulic pump is fixed at the bottom end of the first fixing block. This layered fixing method increases the stability of the entire structure. The hydraulic rod passes through the fixing column and is connected to the second slot at both ends. The rear side of the third fixing block is fixedly connected to the inside of the first slot, forming a compact structure, reducing space occupation while maintaining overall stability. The fixed connection design of the fixing column and the fixing block reduces moving parts, reduces wear and failure rates, and improves the durability of the device.

[0016] 2. The present utility model is provided with a sunshade. The sunshade can block ultraviolet rays, protect the device from direct sunlight, and extend the service life of the device. Shading can reduce the time the device is exposed to strong sunlight, lower the working temperature of the device, improve the performance and stability of the device, and indirectly achieve an energy-saving effect by reducing the energy consumption required for the device to be cooled additionally due to overheating.

[0017] Additional aspects and advantages of the present utility model will be given in part in the following description, become apparent in part from the following description, or be learned through the practice of the present utility model. Description of the Drawings

[0018] The present utility model will be further described below in conjunction with the drawings and embodiments;

[0019] Figure 1 Is a three-dimensional view of a device for environmental monitoring of energy conservation in smart buildings according to the present utility model;

[0020] Figure 2 Is a front view of a device for environmental monitoring of energy conservation in smart buildings according to the present utility model;

[0021] Figure 3 Is a sectional three-dimensional view of a device for environmental monitoring of energy conservation in smart buildings according to the present utility model;

[0022] Figure 4 For the present utility model Figure 3 Enlarged view of the structure at A in;

[0023] Figure 5 For the present utility model Figure 3 Enlarged view of the structure at B in.

[0024] In the figure: 1. Support pillar; 2. Display screen; 3. Energy storage control module; 4. Solar panel; 5. Support plate; 6. Signal antenna; 7. Air particle catcher; 8. First support pillar; 9. Anemometer; 10. Base; 11. Positioning hole; 12. First slot; 13. First fixing block; 14. Hydraulic pump; 15. Hydraulic rod; 16. Second fixing block; 17. Second slot; 18. Fixed column; 19. Third fixing block; 20. Fourth fixing block; 21. Sunshade. Detailed implementation

[0025] Next, the technical solutions in the embodiments of the present invention will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. Based on the embodiments in the present invention, all other embodiments obtained by those of ordinary skill in the art without creative efforts shall fall within the protection scope of the present invention.

[0026] Please refer to Figures 1-5 , the present invention provides a technical solution: an environmental monitoring device for intelligent building energy conservation, including: a support pillar 1, with a first slot 12 provided on the outer ring of the support pillar 1 to provide a fixed connection point for installing other components. The first fixing block 13 is fixedly connected inside the first slot 12, serving as a fixed platform for connecting the hydraulic pump and other components. The bottom end of the first fixing block 13 is fixedly connected to the hydraulic pump 14, which is used to provide power to drive the hydraulic rod 15. The output end of the hydraulic pump 14 is fixedly connected to the hydraulic rod 15 to achieve mechanical movement, which may be used to adjust the angle or position of the device. The outer ring of the hydraulic rod 15 penetrates through the fixed column 18 to connect the hydraulic rod and the fixed column, forming a mechanical transmission structure. Both ends of the fixed column 18 are fixedly connected inside the second slot 17. The fixed column 18 serves as a connection point, and the second slot 17 provides a fixed position. The second slot 17 is provided on the upper surface of the second fixing block 16. The second fixing block 16 provides additional support and fixed points, and both the left and right sides of the inner wall of the second slot 17 are fixedly connected to the fixed column 18. The fixed column 18 serves as a connection point, and the second slot 17 provides a fixed position. The bottom end of the second fixing block 16 is fixedly connected to the fourth fixing block 20 to increase the structural stability, which may be used to support other components. Both the left and right sides of the fourth fixing block 20 penetrate through the rotating column, allowing the rotating column to perform rotational movement, which may be used to adjust the direction of the device. Both ends of the rotating column are fixedly connected to the third fixing block 19. The third fixing block 19 serves as the fixed end of the rotating column to provide stability. The rear side of the third fixing block 19 is fixedly connected to the inside of the first slot 12 to form a stable mechanical connection to ensure the stability of the overall structure. The sunshade 21 is fixedly connected to the outer ring of the support pillar 1 to provide a sunshade function to protect the device from direct sunlight.

[0027] The top end of the support column 1 is fixedly connected with a support plate 5, which serves as an installation platform for the solar panel and other components. The top end of the support plate 5 is fixedly connected with a solar panel 4 to collect solar energy and provide energy for the device. One side of the solar panel 4 is provided with a signal antenna 6 to receive and send signals for data transmission and communication. The top end of the support plate 5 is fixedly connected with an air particle catcher 7 to monitor and capture particulate matter in the air for environmental monitoring. The top end of the support plate 5 is fixedly connected with a first support column 8 to provide an additional support point, which may be used to install other sensors or devices. The outer ring of the first support column 8 is rotatably connected with an anemometer 9 to measure the wind speed and direction and provide data for environmental monitoring. The outer ring of the support column 1 is fixedly connected with a display screen 2 to display the device status and monitoring data for easy viewing by the user. The rear side of the display screen 2 is fixedly connected with an energy storage control module 3 to control and regulate energy storage to ensure the stable operation of the device. The bottom end of the support column 1 is fixedly connected with a base 10 to provide basic support for the device and ensure stability. Positioning holes 11 penetrate through both the upper and lower ends of the base 10 to fix the device and ensure its stability at a specific position. The number of the first slots 12 and the hydraulic pumps 14 is two to ensure that the device has sufficient power sources and connection points. The number of the first fixing blocks 13, the second fixing blocks 16 and the third fixing blocks 19 is eight to provide multiple fixing points, increasing the structural stability and adjustability. The hydraulic pump 14 and the first fixing block 13 cooperate to form a power transmission system to drive the movement of the device. The display screen 2 cooperates with the anemometer 9, the air particle catcher 7 and the signal antenna 6 to integrate multiple monitoring functions and provide comprehensive environmental data. The energy storage control module 3 cooperates with the solar panel 4 and the display screen 2 to manage the energy supply and ensure the continuous operation of the device.

[0028] Working principle: First, the first fixing block 13 is installed in the first slot 12 on the outer ring of the support column 1 to ensure its fixation. The hydraulic pump 14 is installed at the bottom end of the first fixing block 13. The hydraulic pump 14 is connected to the first fixing block 13 by means of bolts or welding. The output end of the hydraulic pump 14 is connected to the hydraulic rod 15 to ensure the smooth flow of hydraulic oil and provide power for the equipment. The hydraulic rod 15 passes through the fixing column 18. The two ends of the fixing column 18 are respectively inserted into the second slots 17 of the second fixing block 16 to form a stable support structure. The second fixing block 16 is installed on the support column 1 to provide an additional support point, which may be used to install other components. The fourth fixing block 20 is installed at the bottom end of the second fixing block 16 to increase the structural stability. Rotating columns are installed on the left and right sides of the fourth fixing block 20. The two ends of the rotating columns are respectively fixedly connected to the third fixing block 19, allowing the equipment to be adjusted by a certain angle of rotation. The sunshade 21 is installed on the outer ring of the support column 1 to provide sunshade protection for the equipment. The support plate 5 is installed at the top end of the support column 1. The support plate 5 serves as an installation platform for the solar panel 4 and other components. The solar panel 4 is installed at the top end of the support plate 5. The solar panel 4 provides clean energy for the equipment. A signal antenna 6 is installed on one side of the solar panel 4 for data transmission and communication. The air particle catcher 7 is installed at the top end of the support plate 5 to monitor air quality. The first support column 8 is installed at the top end of the support plate 5. The anemometer 9 is rotatably connected to the outer ring of the first support column 8 for measuring wind speed and direction. The display screen 2 is installed on the outer ring of the support column 1 to display the equipment status and monitoring data. The energy storage control module 3 is installed at the rear side of the display screen 2 to control the energy supply and equipment operation. The display screen 2 cooperates with the anemometer 9, the air particle catcher 7 and the signal antenna 6 to integrate various monitoring functions and provide comprehensive environmental data. The energy storage control module 3 cooperates with the solar panel 4 and the display screen 2 to manage the energy supply and ensure the continuous operation of the equipment. The base 10 is installed at the bottom end of the support column 1. The base 10 provides the basic support for the equipment. The equipment is fixed at a specific position by using the positioning holes 11 of the base 10 to ensure stability.

[0029] The above has described the embodiments of the present invention in detail with reference to the accompanying drawings. However, the present invention is not limited to the above embodiments. Within the knowledge scope of those of ordinary skill in the art to which the present invention pertains, various changes can be made without departing from the purpose of the present invention.

Claims

1. A smart building energy-saving environment monitoring device, comprising: The support (1) is characterized in that: the outer ring of the support (1) is provided with a first slot (12), the first slot (12) is fixedly connected to the inside of the first fixed block (13), the bottom end of the first fixed block (13) is fixedly connected to a hydraulic pump (14), the output end of the hydraulic pump (14) is fixedly connected to a hydraulic rod (15), the outer ring of the hydraulic rod (15) is penetrated by a fixed column (18), the upper surface of the second fixed block (16) is provided with a second slot (17), and the left and right sides of the inner wall of the second slot (17) are fixedly connected to the fixed column (18), the bottom end of the second fixed block (16) is fixedly connected to a fourth fixed block (20), the left and right sides of the fourth fixed block (20) are penetrated by a rotating column, the two ends of the rotating column are fixedly connected to a third fixed block (19), and the rear side of the third fixed block (19) is fixedly connected to the inside of the first slot (12); The outer ring of the support (1) is fixedly connected with a sunshade umbrella (21).

2. The energy-saving environment monitoring device for smart buildings according to claim 1, characterized in that: The top end of the support column (1) is fixedly connected to a support plate (5), and the top end of the support plate (5) is fixedly connected to a solar panel (4).

3. The energy-saving environment monitoring device for smart buildings according to claim 2, characterized in that: A signal antenna (6) is provided on one side of the solar panel (4), and an air particle catcher (7) is fixedly connected to the top of the support plate (5).

4. The energy-saving environment monitoring device for smart buildings according to claim 2, characterized in that: The top end of the support plate (5) is fixedly connected to a first support column (8), and the outer ring of the first support column (8) is rotatably connected to a wind meter (9).

5. The energy-saving environment monitoring device for smart buildings according to claim 1, characterized in that: The outer ring of the support (1) is fixedly connected to a display screen (2), and the rear side of the display screen (2) is fixedly connected to an energy storage control module (3).

6. The energy-saving environment monitoring device for smart buildings according to claim 1, characterized in that: The bottom end of the support (1) is fixedly connected to a base (10), and positioning holes (11) are penetrated at both the upper and lower ends of the base (10).

7. The energy-saving environment monitoring device for smart buildings according to claim 1, characterized in that: The number of the first slot (12) and the hydraulic pump (14) is two, the number of the first fixing block (13), the second fixing block (16) and the third fixing block (19) is eight, and the hydraulic pump (14) and the first fixing block (13) are matched.

8. The energy-saving environment monitoring device for smart buildings according to claim 5, characterized in that: The display screen (2) cooperates with the anemometer (9), the air particle catcher (7) and the signal antenna (6), and the energy storage control module (3) cooperates with the solar panel (4) and the display screen (2).