Meteorological monitoring frame
By designing a telescopic and angle-adjusted weather monitoring frame, the problem of sensor components being unable to be installed flexibly is solved, the installation efficiency and data accuracy are improved, and maintenance costs are reduced.
Patent Information
- Application Number
- CN202422345968.X
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-09-25
- Publication Date
- 2025-06-17
- Estimated Expiration
- 2034-09-25
AI Technical Summary
The existing meteorological monitoring frame sensing components cannot be installed in different locations according to actual needs, resulting in large data deviations and incorrect measurement results.
A weather monitoring frame is designed, including a foundation, a fixing frame and an extension frame. The extension frame can be retracted freely, and an embedded groove and locking nut are provided at the detection end, allowing the detection bracket and support frame to store and adjust the angle, which facilitates sensor installation and data monitoring.
Improves the efficiency and safety of sensor installation, allows sensors to be detected at different angles, reduces after-sales maintenance costs, and improves the accuracy of measurement data.
Smart Images

Figure CN222992574U_ABST
Abstract
Description
Technical Field
[0001] The utility model belongs to the field of meteorological monitoring, and particularly relates to a meteorological monitoring rack. Background Art
[0002] With the progress of human technology, there are more and more ways for people to predict the weather, and meteorological stations have emerged. In order to facilitate the monitoring of the weather at different locations, monitoring racks are usually set at different locations, and then measuring sensors such as thermometers, hygrometers, anemometers, and precipitation gauges are set on the detection racks, and the environmental parameters at different time periods at this place are measured by various sensors.
[0003] In the existing meteorological monitoring device, various sensor components are fixed on a meteorological monitoring rack at a specific height. Since the height of the meteorological monitoring rack is more than 5 meters, each installation is time-consuming and laborious, and the installation is very inconvenient. Multiple people are required to cooperate when installing the sensor components; to solve the above problems, the existing technology is to weld a climbing ladder on the meteorological monitoring rack. However, in the actual use process, multiple sensor components need to be installed, and multiple climbs are required, resulting in low installation efficiency. At the same time, since the size of the sensor installation platform of the existing meteorological monitoring rack is fixed, in order to make reasonable use of space, different sensor components are usually installed at the specified positions and cannot be selected according to actual needs, which easily causes large deviations in measurement data and large differences between the measurement results and the actual situation.
[0004] To sum up, there is an urgent need for a new meteorological monitoring rack to solve the problem that the sensing components in the existing meteorological monitoring rack cannot be installed at different positions according to actual needs, resulting in large data deviations and incorrect measurement results. Content of the Utility Model
[0005] An embodiment of the utility model provides a meteorological monitoring rack, aiming to solve the problem that the sensing components in the existing meteorological monitoring rack cannot be installed at different positions according to actual needs, resulting in large data deviations and incorrect measurement results.
[0006] The embodiment of the utility model is implemented as follows:
[0007] A meteorological monitoring rack includes:
[0008] A foundation, fixed on the ground;
[0009] A fixing rack, the lower end of which is connected to the foundation, and an extension rack is fixed inside the fixing rack, and the extension rack can freely extend and retract along the fixing rack;
[0010] The extension rack includes a fixed end and a detection end. The fixed end is provided with a fixing nut, and can be fixed at any height of the fixing rack through the fixing nut. The detection end is provided with an embedded groove and an external thread, and a locking nut is fixed on the detection end, and the locking nut can freely rotate along the external thread;
[0011] The detection bracket is arranged in the embedded groove through a rotating shaft. The lower end of the detection bracket is also fixedly connected to the extension bracket through a support bracket. The support bracket and the embedded groove are connected through a slider.
[0012] Furthermore, a connection groove is provided at one end of the detection bracket away from the fixed bracket.
[0013] Furthermore, a slider is provided at one end of the support bracket connected to the embedded groove.
[0014] Furthermore, the width of the support bracket is smaller than the width of the detection bracket.
[0015] Furthermore, the meteorological monitoring bracket further includes a lock catch, and the lock catch is complementary to the connection key groove.
[0016] Furthermore, the lock catch is fixedly connected to the detection element.
[0017] The beneficial effects achieved by the present utility model are as follows:
[0018] By providing a fixed bracket and an extension bracket in the meteorological monitoring bracket in the present utility model, when installing the meteorological detection component, the detection component can be first installed on the extension bracket, and then the extension bracket is raised by a certain height, which is convenient for installing the detection component and increases the installation efficiency and safety during installation; by providing an embedded groove in the extension bracket, the detection bracket and the support bracket can be accommodated in the embedded groove, which is convenient for storage. At the same time, a locking nut is provided outside the extension bracket, which can keep the detection bracket at a certain angle and can adjust any angle with the vertical plane during meteorological monitoring, which is convenient for various detections of the detection component; in this embodiment, the detection components are installed separately. When a certain detection component is damaged, only that certain detection component needs to be replaced, and the whole machine does not need to be replaced, which can reduce the after-sales maintenance cost. Description of the Drawings
[0019] Figure 1 is a schematic structural diagram of the meteorological monitoring bracket provided by the present utility model;
[0020] Figure 2 is a schematic structural diagram of the fixed bracket of the present utility model;
[0021] Figure 3 is a partial enlarged schematic diagram A of the present utility model;
[0022] Figure 4 is a schematic structural diagram of the detection bracket of the present utility model;
[0023] Figure 5 is a partial enlarged schematic diagram B of the present utility model.
[0024] Reference Numerals in the Drawings:
[0025] 100, meteorological monitoring bracket;
[0026] 110. Foundation; 111. Fixed frame; 120. Extension frame; 130. Detection end; 131. Locking nut; 132. Support frame; 133. Detection support; 134. Connection keyway; 135. Lock. Detailed implementation mode
[0027] In order to make the objectives, technical solutions and advantages of the present invention clearer and more understandable, the present invention will be further described in detail below with reference to the accompanying drawings and embodiments. It should be understood that the specific embodiments described herein are only used to explain the present invention and are not used to limit the present invention.
[0028] In the present utility model, a fixed frame and an extension frame are provided inside the meteorological monitoring frame. When installing a meteorological detection component, the detection component can be first installed on the extension frame, and then the extension frame is raised to a certain height, which is convenient for installing the detection component and increases the installation efficiency and safety during installation; by providing an embedded groove inside the extension frame, the detection support and the support frame can be stored in the embedded groove, which is convenient for storage. At the same time, a locking nut is provided outside the extension frame, which can keep the detection support at a certain angle and can adjust any angle with the vertical plane during meteorological monitoring, which is convenient for various detections of the detection component; in this embodiment, the detection components are installed separately. When a certain detection component is damaged, only that detection component needs to be replaced, and the whole machine does not need to be replaced, which can reduce the after-sales maintenance cost.
[0029] Example 1
[0030] Refer to Figures 1 - 3 , in the embodiment of the present utility model, this embodiment provides a meteorological monitoring frame 100, including: a foundation 110, fixed on the ground;
[0031] A fixed frame 111, the lower end of which is connected to the foundation 110, and an extension frame 120 is fixed inside. The extension frame 120 can freely stretch along the fixed frame 111;
[0032] The extension frame 120 includes a fixed end and a detection end 130. The fixed end is provided with a fixed nut, and the extension frame 120 can be fixed at any height with the fixed frame 111 through the fixed nut. The detection end 130 is provided with an embedded groove and an external thread, and a locking nut 131 is fixed on the detection end 130. The locking nut 131 can freely rotate along the external thread;
[0033] The detection support 133 is arranged in the embedded groove through a rotating shaft. The lower end of the detection support 133 is also fixedly connected to the extension frame 120 through a support frame 132. The support frame 132 is connected to the embedded groove through a slider.
[0034] In this embodiment, a meteorological detection rack is used to fix detection sensors and keep the sensors at a certain height from the ground, facilitating the sensors to detect meteorological data such as moisture, rainfall, wind speed, and light intensity in the air. Based on the various data detected by the sensors, appropriate adjustments are made to local plants, personnel deployment, etc. to adapt to the weather, so as to facilitate better production and life.
[0035] Reference Figure 1 , in one embodiment, the foundation 110 is used to fix the support frame 132. The foundation 110 can be a fixed foundation 110, which is fixed on a specific ground in a pouring manner. The foundation 110 can also be a movable foundation 110, specifically movable plates or movable prefabricated parts. Among them, the plates can specifically be steel plates, wooden boards, or other flat devices with a supporting function. The prefabricated parts can be stone piers cast with concrete or metal piers cast with molten metal.
[0036] The foundation 110 is fixed on the ground, and a fixing frame 111 is fixed at the upper end of the foundation 110. The fixing frame 111 is used to fix various sensors and keep the sensors at a certain height from the ground. The fixing frame 111 and the foundation 110 can be connected in a detachable manner, specifically by an inlaying method. The fixing frame 111 is inlaid in the embedding groove reserved at the upper end of the foundation 110. Specifically, the fixing frame 111 and the foundation 110 are fixedly connected by bolts. The end of the fixing frame 111 connected to the foundation 110 is provided with external threads, and nuts are embedded in the foundation 110. The fixing frame 111 and the foundation 110 are connected by threads. In this embodiment, the fixing frame 111 and the foundation 110 can also be connected by other methods.
[0037] In another embodiment, an extension frame 120 is fixed inside the fixing frame 111. The extension frame 120 is used to keep the sensor at a certain height from the ground. The specific height can be 2m, 3m, 4m, or 5m. The specific height can be adjusted according to actual detection requirements. The extension frame 120 can be fixed inside the fixing frame 111 by an inlaying method. It is easy to understand that a cavity complementary to the extension frame 120 is provided inside the fixing frame 111, and the extension frame 120 can move freely along the inside of the fixing frame 111.
[0038] The extension bracket 120 includes a fixed end and a detection end 130. The fixed end is embedded in the fixed bracket 111 for fixing the extension bracket 120. The detection end 130 is exposed outside the fixed bracket 111 for fixing the sensor. The fixed end is provided with a fixing nut, which can be a locking screw. The locking screw is fixed on the extension bracket 120 by threads. The locking screw passes through one end of the fixed end and presses on the fixed bracket 111, and the other end extends outside the extension bracket 120. The extension bracket 120 can be fixed on the fixed bracket 111 through the fixing nut. It should be noted that when the extension bracket 120 needs to be lifted, the fixing nut is moved downward and outward relative to the extension bracket 120, creating a certain gap between the extension bracket 120 and the fixed bracket 111. Then the extension bracket 120 is moved upward. After the extension bracket 120 moves to a certain position, the fixing nut is moved into the extension bracket 120 until it presses on the fixed bracket 111. When the extension bracket 120 needs to be lowered, the fixing nut is moved outward relative to the extension bracket 120, causing the extension bracket 120 to move downward. After the extension bracket 120 moves to a certain position, one end of the fixing nut presses on the fixed bracket 111 again, reducing the extension bracket 120 by a certain height. By providing the fixing nut, the extension bracket 120 can be lifted by a certain height and maintained at a certain height from the ground.
[0039] The detection end 130 is provided with an embedded groove and an external thread. The embedded groove is used to accommodate the detection bracket 133. When the meteorological detection bracket is in the storage state, the detection bracket 133 is accommodated in the embedded groove. The external thread is used to enable the locking nut 131 to move freely up and down, and the detection bracket 133 is fixed by the locking nut 131. The locking nut 131 is fixed on the detection end 130 and can rotate freely along the external thread, thereby realizing free up and down movement along the detection end 130.
[0040] In another embodiment, the detection bracket 133 is used to fix detection devices, such as a wind speed detection component, a wind direction detection component, an air humidity detection component, a light detection component, and a rainfall detection component, etc. The detection bracket 133 is provided in the embedded groove through a rotating shaft. The detection bracket 133 can freely form a certain angle with the vertical plane around the rotating shaft. The width of the detection bracket 133 is smaller than the width of the embedded groove, and the thickness of the detection bracket 133 is smaller than the depth of the embedded groove.
[0041] When the meteorological detection bracket is in the storage state, the detection bracket 133 is accommodated in the embedded groove, and the extension bracket 120 is accommodated in the fixed bracket 111. When the meteorological monitoring bracket 100 is in the monitoring state, the detection bracket 133 is in the open state, and various detection devices such as a wind speed detection component, a wind direction detection component, an air humidity detection component, a light detection component, and a rainfall detection component are installed on the detection bracket 133.
[0042] The lower end of the detection bracket 133 is also fixedly connected to the extension bracket 120 through the support bracket 132. The support bracket 132 is used to support the detection bracket 133. One end of the detection bracket 133 away from the extension bracket 120 is provided with a cavity. The support bracket 132 can be embedded in the cavity. When the meteorological monitoring frame 100 is in the monitoring state, the detection bracket 133 opens, and the support bracket 132 supports the detection bracket 133. The locking nut 131 is arranged at the detection end 130 at the lower end of the support bracket 132. When the support bracket 132 supports the detection bracket 133 to form a certain angle with the vertical plane, the upper end of the locking nut 131 presses the lower end of the support bracket 132, so that the detection bracket 133 is fixed at a certain angle with the vertical plane; when the meteorological monitoring frame 100 is in the storage state, the support bracket 132 is embedded in the detection bracket 133, the detection bracket 133 is embedded in the inner embedding groove, and the locking nut 131 is fixed outside the support bracket 132. When the meteorological monitoring frame 100 is stored, the locking nut 131 plays a role in fixing the detection bracket 133, which can prevent the detection bracket 133 from opening during movement, and thus can avoid the problem that the detection bracket 133 is stuck in the fixing bracket 111.
[0043] In another embodiment, the support bracket 132 and the detection are connected by a rotating shaft. The support bracket 132 can rotate freely around the rotating shaft. The support bracket 132 and the inner embedding groove are connected by a slider. The support bracket 132 can slide up and down freely in the inner embedding groove. When the meteorological monitoring frame changes from the storage state to the open state, the detection bracket 133 moves away from the inner embedding groove, and the lower end of the support bracket 132 slides down along the inner embedding groove. When the detection bracket 133 opens a certain angle, the locking nut 131 is made to press against the lower end of the support bracket 132, so that the detection bracket 133 maintains a certain angle; when the meteorological monitoring frame 100 changes from the open state to the storage state, the detection bracket 133 is folded, and the lower end of the support bracket 132 slides up along the inner embedding groove. When the detection bracket 133 and the support bracket 132 are completely stored in the inner embedding groove, the locking nut 131 is rotated to the outside of the support bracket 132 to complete the storage of the meteorological monitoring frame 100.
[0044] By providing a fixing bracket 111 and an extension bracket 120 in the meteorological monitoring frame 100, when installing the meteorological detection component, the detection component can be first installed on the extension bracket 120, and then the extension bracket 120 is raised by a certain height, which is convenient for installing the detection component and increases the installation efficiency and safety during installation; by providing an inner embedding groove in the extension bracket 120, the detection bracket 133 and the support bracket 132 can be stored in the inner embedding groove, which is convenient for storage. At the same time, a locking nut 131 is provided outside the extension bracket 120, which can keep the detection bracket 133 at a certain angle and can adjust any angle with the vertical plane during meteorological monitoring, which is convenient for various detections of the detection component; in this embodiment, the detection components are installed separately. When a certain detection component is damaged, only that certain detection component needs to be replaced, and the whole machine does not need to be replaced, which can reduce the after-sales maintenance cost.
[0045] Example 2
[0046] In the embodiment of the present utility model, a connection groove is provided at one end of the detection bracket 133 away from the fixed bracket 111.
[0047] In this embodiment, a connection groove is provided at one end of the detection bracket 133 away from the fixed bracket 111. The width of the connection key groove 134 is not less than the width of the support bracket 132. It should be noted that the connection key groove 134 is used to inlay the support bracket 132. When the meteorological monitoring frame 100 is in the storage state, the support bracket 132 is fixed in the connection key groove 134.
[0048] By providing a connection groove at one end of the detection bracket 133 away from the fixed bracket 111, when the meteorological monitoring frame 100 is in the storage state, the support bracket 132 can be inlaid in the connection key groove 134, which is convenient for the storage of the meteorological monitoring frame 100.
[0049] Example 3
[0050] In the embodiment of the present utility model, a slider is provided at one end of the support bracket 132 connected to the inner embedding groove.
[0051] In this embodiment, a slider is provided at one end of the support bracket 132 connected to the inner embedding groove. It should be noted that the support bracket 132 is inlaid in the inner embedding groove through the slider. At the same time, the slider can freely slide along the inner embedding groove in the inner embedding groove, and the support bracket 132 is connected to the slider through a rotating shaft.
[0052] By providing a slider in the inner embedding groove, the support bracket 132 can form different angles with the axis of the extension bracket 120, and then different angles of the support detection bracket 133 can be realized, which is convenient for meeting the detection requirements in different environments.
[0053] Example 4
[0054] See Figure 3 , in the embodiment of the present utility model, the width of the support bracket 132 is smaller than the width of the detection bracket 133.
[0055] In this embodiment, the width of the support bracket 132 is smaller than the width of the detection bracket 133. It is easy to understand that when the meteorological monitoring frame 100 is stored, the support bracket 132 is inlaid in the connection key groove 134 of the detection bracket 133. The width of the support bracket 132 is smaller than the width of the detection bracket 133. Specifically, the width of the support bracket 132 is smaller than the width of the connection key groove 134, which can make the support bracket 132 inlaid in the detection bracket 133, facilitating storage.
[0056] Example 5
[0057] See Figures 4 - 5, in the embodiment of the present utility model, the meteorological monitoring rack 100 further includes a lock catch 135, and the lock catch 135 is complementary to the connection key slot 134.
[0058] In this embodiment, the meteorological monitoring rack 100 further includes a lock catch 135, and the lock catch 135 is used to connect with the connection key slot 134 of the meteorological monitoring rack 100. Among them, the lock catch 135 is fixedly connected to the detection component, and the connection key slot 134 is arranged at the end of the detection bracket 133. The detection component is fixed at the end of the detection bracket 133 through the lock catch 135 and the connection key slot 134.
[0059] By providing a detachable lock catch 135, the detection component can be freely detached from the meteorological monitoring rack 100, increasing the flexibility of the meteorological monitoring rack 100. At the same time, when a certain detection component is damaged, only the damaged detection component needs to be replaced, instead of replacing the whole machine, which can reduce the after-sales maintenance cost.
[0060] Example 6
[0061] See Figure 5 , in the embodiment of the present utility model, the lock catch 135 is fixedly connected to the detection element.
[0062] It is easy to understand that the lock catch 135 and the detection element are fixedly connected, and the connection method between the two can be screw connection, adhesive connection, or snap connection. The specific connection method can be selected according to different meteorological conditions in different locations.
[0063] In the description of this specification, the description with reference to terms such as "some embodiments", "schematic embodiments", "examples", "specific examples", or "some examples" means that the specific features, structures, materials, or characteristics described in connection with the embodiments or examples are included in at least one embodiment or example of the present utility model. In this specification, the schematic representations of the above terms do not necessarily refer to the same embodiments or examples. Moreover, the specific features, structures, materials, or characteristics described can be combined in a suitable manner in any one or more embodiments or examples.
[0064] In addition, the above are only the preferred embodiments of the present utility model and are not intended to limit the present utility model. Any modifications, equivalent replacements, and improvements made within the spirit and principle of the present utility model shall be included in the protection scope of the present utility model.
Claims
1. A meteorological monitoring rack, characterized in that: include: foundation, fixed to the ground; The fixed frame has a lower end connected to the foundation and an extension frame fixed inside, and the extension frame can be freely extended and retracted along the fixed frame; The extension frame includes a fixed end and a detection end. The fixed end is provided with a fixing nut, which can be fixed to the fixed frame at any height through the fixing nut. The detection end is provided with an embedded groove and an external thread. The detection end is fixed with a locking nut, and the locking nut can rotate freely along the external thread. The detection bracket is arranged in the embedded groove through a rotating shaft. The lower end of the detection bracket is also fixedly connected with the extension frame through a supporting frame, and the supporting frame and the embedded groove are connected through a sliding block.
2. The meteorological monitoring rack according to claim 1, characterized in that: A connecting groove is provided at one end of the detection bracket away from the fixing bracket.
3. The meteorological monitoring rack according to claim 2, characterized in that: A sliding block is provided at one end of the support frame connected to the embedded groove.
4. The meteorological monitoring rack according to claim 2, characterized in that: The width of the support frame is smaller than the width of the detection frame.
5. The meteorological monitoring rack according to claim 1, characterized in that: The meteorological monitoring frame also includes a lock buckle, which is complementary to the connecting key slot.
6. The meteorological monitoring rack according to claim 5, characterized in that: The lock buckle is fixedly connected to the detection element.