Aviation meteorological prediction data acquisition equipment

The docking mechanism design enables convenient installation and disassembly of aviation meteorological data acquisition equipment, solving the cumbersome operation problem caused by bolt fixing in existing technologies and improving portability and flexibility.

CN223768535UActive Publication Date: 2026-01-06SICHUAN HANGKONGTE AVIATION EQUIP CO LTD
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Patent Information

Application Number
CN202520543264.5
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-03-26
Publication Date
2026-01-06
Estimated Expiration
2035-03-26

AI Technical Summary

Technical Problem

The existing portable aviation meteorological data acquisition instrument and its support base are cumbersome to install and disassemble, requiring frequent tightening of bolts, which affects convenience and flexibility.

Method used

The device employs a docking mechanism, including a plug-in component, a guide component, a locking component, a lifting component, and a connecting component. It achieves convenient docking and quick disassembly between the main body of the data acquisition instrument and the docking base through damping shafts and springs, and utilizes the design of guide grooves and positioning cards to achieve automatic adjustment and fixation.

Benefits of technology

It enables quick installation and disassembly of the data acquisition device, making it easy to carry.

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Abstract

The utility model discloses aviation meteorological prediction data acquisition equipment, which relates to the technical field of data acquisition equipment and comprises an acquisition instrument main body, a butt joint base is arranged below the acquisition instrument main body, a plurality of fixing blocks are integrally formed on the outer wall of the butt joint base at equal intervals in the circumferential direction, and supporting legs are arranged on the outer sides of the fixing blocks. Two damping rotating shafts are symmetrically installed on the outer walls of the multiple fixing blocks, the two damping rotating shafts are rotationally connected with the supporting legs, and a butt joint mechanism used for convenient butt joint of the acquisition instrument body and the butt joint base is arranged on the butt joint base. According to the utility model, through the docking mechanism, the angle of the acquisition instrument main body can be automatically adjusted in the docking process of the acquisition instrument main body and the docking base, so that the acquisition instrument main body and the docking base can be conveniently docked and fixed and quickly disassembled and separated, and the acquisition instrument main body can be conveniently carried.
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Description

Technical Field

[0001] This utility model relates to the field of data acquisition equipment technology, specifically an aviation meteorological forecast data acquisition device. Background Technology

[0002] Aviation weather forecasting is a type of weather forecast specifically designed for aviation activities. It covers cloud cover, wind direction, visibility, temperature, weather phenomena, and special weather conditions. Classified by region and effective time period, it is issued by aviation meteorological centers and is crucial for flight safety. Aviation weather forecasting requires data acquisition instruments to collect data to ensure flight safety, optimize flight efficiency, and promote meteorological scientific research and technological development. Data collection can effectively help assess flight conditions, formulate flight plans, monitor weather in real time, and support numerical model prediction and model improvement, thereby improving the accuracy of weather forecasts.

[0003] In order to quickly obtain the latest meteorological data, adapt to various environments, facilitate on-site decision-making, reduce costs, and enhance flexibility, existing data acquisition devices often use portable data acquisition devices for meteorological data collection. However, since existing portable data acquisition devices are usually fixed to the bracket base with bolts, it is necessary to tighten the bolts and nuts before and after meteorological data collection to install or disassemble the portable data acquisition device. Based on this, an aviation meteorological forecast data acquisition device is now provided to facilitate the installation and disassembly of the data acquisition device, which can eliminate the drawbacks of existing devices. Utility Model Content

[0004] The purpose of this invention is to provide an aviation meteorological forecast data acquisition device to solve the problems in the background technology.

[0005] To achieve the above objectives, this utility model provides the following technical solution:

[0006] An aviation meteorological forecast data acquisition device includes a data acquisition instrument body, a docking base is provided below the data acquisition instrument body, a plurality of fixing blocks are integrally formed circumferentially at equal intervals on the outer wall of the docking base, a support leg is provided on the outer side of each of the plurality of fixing blocks, two damping rotating shafts are symmetrically installed on the outer wall of the plurality of fixing blocks, and the two damping rotating shafts are rotatably connected to the support legs, and a docking mechanism is provided on the docking base for convenient docking between the data acquisition instrument body and the docking base.

[0007] Based on the above technical solutions, this utility model also provides the following optional technical solutions:

[0008] In one alternative embodiment, the docking mechanism includes:

[0009] A plug-in assembly mounted on the docking base;

[0010] The plug-in assembly includes:

[0011] A fixed base plate is set on the upper surface of the docking base. The fixed base plate is fixedly connected to the main body of the data acquisition instrument by bolts. A docking block is fixedly connected to the bottom end of the fixed base plate. The docking block penetrates into the interior of the docking base. The outer wall of the bottom end of the docking block is hemispherical.

[0012] The docking base is equipped with a guide component.

[0013] In one alternative embodiment, the guiding component includes:

[0014] Multiple guide grooves are circumferentially and equidistantly formed at the top of the docking base. The two ends of the multiple guide grooves are interconnected. The inner wall of one end of the multiple guide grooves is higher than the inner wall of the other end. Multiple guide sliders are circumferentially and equidistantly fixed to the bottom end of the fixed base plate. The outer wall of the bottom end of the multiple guide sliders is hemispherical. The multiple guide sliders are located outside the docking block. The multiple guide sliders pass through the interior of the multiple guide grooves respectively. The multiple guide sliders are slidably connected to the multiple guide grooves respectively.

[0015] The docking base is equipped with a locking component.

[0016] In one alternative embodiment, the engagement assembly includes:

[0017] Multiple positioning plates are circumferentially and equidistantly arranged inside the docking base. The outer wall of the multiple positioning plates near the docking base is beveled. The multiple positioning plates penetrate the docking base into the interior of the docking block. Positioning slots are provided at the docking block and the multiple positioning plates. The multiple positioning plates are slidably connected to the docking base.

[0018] The positioning card plate is equipped with a moving component.

[0019] In one alternative embodiment, the moving component includes:

[0020] A connecting slide plate is fixedly connected to the bottom end of the positioning plate. The connecting slide plate is slidably connected to the docking base. Two movable sliders are symmetrically fixedly connected to the outer wall of the connecting slide plate.

[0021] The connecting slide is equipped with a lifting component.

[0022] In one alternative embodiment, the lifting assembly includes:

[0023] A fixed pull plate is set below the connecting slide plate. Two lifting guide plates are symmetrically fixedly connected to the top of the fixed pull plate. The two lifting guide plates are respectively sleeved on the outer wall of the two movable sliders. A guide groove for the movable sliders to slide is opened at the position where the lifting guide plate connects with the movable slider. The lifting guide plate and the fixed pull plate are slidably connected to the docking base.

[0024] The docking base is equipped with a connecting component.

[0025] In one alternative embodiment, the connection component includes:

[0026] A lifting plate is set below the docking base. A handle is installed at the bottom of the lifting plate. Multiple connecting rods are fixedly connected to the top of the lifting plate at equal intervals around the circumference. The multiple connecting rods all penetrate into the interior of the docking base and are slidably connected to the docking base. The multiple connecting rods are respectively located below multiple positioning plates. The connecting rods are fixedly connected to the fixed plate.

[0027] A reset component is provided on the connecting rod.

[0028] In one alternative: the reset component is a spring sleeved on the outer wall of the connecting rod, one end of the spring is in contact with the outer wall of the fixed pull plate, and the other end of the spring is in contact with the inner wall of the docking base.

[0029] Compared with the prior art, the beneficial effects of this utility model are as follows:

[0030] This utility model, through its docking mechanism, can automatically adjust the angle of the data acquisition device body during the docking process with the docking base, so as to facilitate convenient docking and fixing and quick disassembly and separation of the data acquisition device body and the docking base, thereby making it easier to carry the data acquisition device body. Attached Figure Description

[0031] Figure 1 This is a schematic diagram of the structure of this utility model.

[0032] Figure 2 This is a schematic diagram of the internal structure of the docking base of this utility model.

[0033] Figure 3 This is an exploded structural diagram of the docking mechanism of this utility model.

[0034] Figure 4 For the present utility model Figure 2 A magnified schematic diagram of the structure at point A in the diagram.

[0035] Figure label annotations: 1. Main body of the data acquisition instrument; 201. Fixed base plate; 202. Docking block; 203. Positioning plate; 204. Lifting pull plate; 205. Lifting guide plate; 206. Guide slide; 207. Guide slider; 208. Moving slider; 209. Fixed pull plate; 2010. Spring; 2011. Connecting rod; 2012. Connecting slide plate; 3. Docking base; 4. Support leg; 5. Fixed block; 6. Damping shaft. Detailed Implementation

[0036] To make the objectives, technical solutions, and advantages of this utility model clearer, the present utility model will be further described in detail below with reference to the accompanying drawings and embodiments.

[0037] In one embodiment, such as Figures 1-4 As shown, an aviation meteorological forecast data acquisition device includes an acquisition instrument body 1. A docking base 3 is provided below the acquisition instrument body 1. Multiple fixing blocks 5 are integrally formed circumferentially at equal intervals on the outer wall of the docking base 3. Support legs 4 are provided on the outer side of each of the multiple fixing blocks 5. Two damping rotating shafts 6 are symmetrically installed on the outer wall of the multiple fixing blocks 5. Both damping rotating shafts 6 are rotatably connected to the support legs 4. A docking mechanism is provided on the docking base 3 for convenient docking between the acquisition instrument body 1 and the docking base 3.

[0038] The docking mechanism includes: a plug-in component disposed on the docking base 3;

[0039] The plug-in assembly includes: a fixed base plate 201 disposed on the upper surface of the docking base 3, the fixed base plate 201 being fixedly connected to the main body 1 of the data acquisition instrument by bolts, a docking plug 202 being fixedly connected to the bottom end of the fixed base plate 201, the docking plug 202 penetrating into the interior of the docking base 3, and the outer wall of the bottom end of the docking plug 202 being hemispherical.

[0040] A guide component is provided on the docking base 3;

[0041] In this embodiment, when in use, the main body 1 of the data acquisition device is placed above the docking base 3. At this time, the fixed base plate 201, driven by the main body 1 of the data acquisition device, pushes the docking plug 202 into the interior of the docking base 3.

[0042] During this process, the docking mechanism can drive the main body 1 of the data acquisition instrument and the docking block 202 to rotate during the docking of the fixed base plate 201 and the docking base 3, thereby automatically adjusting the angle of the docking block 202;

[0043] When the fixed base plate 201 comes into contact with the upper surface of the docking base 3, the docking block 202 can be easily inserted and fixed through the docking mechanism.

[0044] When it is necessary to separate the main body 1 of the data acquisition device from the docking base 3 after use, the above operation is reversed to facilitate the easy disassembly of the main body 1 of the data acquisition device, thereby making it easier to carry the main body 1 of the data acquisition device.

[0045] In one embodiment, such as Figures 2-3 As shown, the guide assembly includes: multiple guide grooves 206 circumferentially and equidistantly opened at the top of the docking base 3, the two ends of the multiple guide grooves 206 are interconnected, the inner wall of one end of the multiple guide grooves 206 is higher than the inner wall of the other end, multiple guide sliders 207 are circumferentially and equidistantly fixedly connected to the bottom end of the fixed base plate 201, the outer wall of the bottom end of the multiple guide sliders 207 is hemispherical, the multiple guide sliders 207 are all located on the outside of the docking block 202, the multiple guide sliders 207 respectively penetrate into the interior of the multiple guide grooves 206, the multiple guide sliders 207 are slidably connected to the multiple guide grooves 206 respectively, through the mutual cooperation of the guide grooves 206 and the guide sliders 207, the fixed base plate 201 can drive the acquisition instrument body 1 and the docking block 202 to rotate automatically during the docking process with the docking base 3, thereby facilitating the convenient locking and fixing of the docking block 202;

[0046] The docking base 3 is equipped with a locking component;

[0047] In one embodiment, such as Figures 2-4 As shown, the engaging assembly includes: multiple positioning plates 203 circumferentially and equidistantly arranged inside the docking base 3; the outer wall of the multiple positioning plates 203 near the docking base 3 is inclined; the multiple positioning plates 203 penetrate the docking base 3 to the interior of the docking block 202; positioning slots are provided at the joint positions of the docking block 202 and the multiple positioning plates 203; and the multiple positioning plates 203 are slidably connected to the docking base 3.

[0048] The positioning plate 203 is equipped with a moving component;

[0049] The moving component includes: a connecting slide plate 2012 fixedly connected to the bottom of the positioning plate 203, the connecting slide plate 2012 being slidably connected to the docking base 3, and two movable sliders 208 being symmetrically fixedly connected to the outer wall of the connecting slide plate 2012;

[0050] The connecting skateboard 2012 is equipped with a lifting component;

[0051] The lifting assembly includes: a fixed pull plate 209 disposed below the connecting slide plate 2012, two lifting guide plates 205 symmetrically fixedly connected to the top of the fixed pull plate 209, the two lifting guide plates 205 respectively sleeved on the outer wall of the two movable sliders 208, and a guide groove for the movable sliders 208 to slide at the contact position between the lifting guide plate 205 and the movable sliders 208. The lifting guide plate 205 and the fixed pull plate 209 are slidably connected to the docking base 3. Through the cooperation of the locking assembly, the moving assembly and the lifting assembly, the positioning locking plate 203 can be driven by lifting to lock and fix the docking plug 202, or to release the locking and fixing of the docking plug 202.

[0052] The docking base 3 is equipped with a connecting component;

[0053] In one embodiment, such as Figures 2-4 As shown, the connecting assembly includes: a lifting plate 204 disposed below the docking base 3, a handle installed at the bottom end of the lifting plate 204, and multiple connecting rods 2011 fixedly connected circumferentially at equal intervals at the top end of the lifting plate 204. The multiple connecting rods 2011 all penetrate into the interior of the docking base 3 and are slidably connected to the docking base 3. The multiple connecting rods 2011 are respectively located below multiple positioning plates 203, and the connecting rods 2011 are fixedly connected to the fixed plate 209.

[0054] A reset assembly is provided on the connecting rod 2011;

[0055] The reset component is a spring 2010 sleeved on the outer wall of the connecting rod 2011. One end of the spring 2010 contacts the outer wall of the fixed pull plate 209, and the other end of the spring 2010 contacts the inner wall of the docking base 3. Through the cooperation of the connecting component and the reset component, the fixed pull plate 209 can be automatically reset.

[0056] The above embodiment discloses an aviation meteorological forecast data acquisition device, wherein, in use, the acquisition instrument body 1 is placed above the docking base 3, and at this time, the fixed base plate 201, driven by the acquisition instrument body 1, pushes the docking plug 202 to be inserted into the interior of the docking base 3;

[0057] During this process, when the positioning plate 203 contacts the outer wall of the docking block 202, the positioning plate 203, under the pressure of the outer wall of the docking block 202, drives the movable slider 208 to slide along the inner wall of the docking base 3 through the connecting slide plate 2012. At the same time, the lifting guide plate 205, under the pressure of the outer wall of the movable slider 208 through the guide groove, pushes the fixed pull plate 209 down along the inner wall of the docking base 3. At this time, the lifting pull plate 204, under the push of the fixed pull plate 209 through the connecting rod 2011, separates from the lower surface of the docking base 3. At the same time, the fixed pull plate 209 retracts through the movable compression spring 2010.

[0058] When the guide slider 207 contacts the inner wall of the guide groove 206, the guide slider 207 slides along the inner wall of the guide groove 206 under the push of the fixed base plate 201. At the same time, the fixed base plate 201 drives the main body 1 of the data acquisition instrument and the docking block 202 to rotate under the drive of multiple guide sliders 207, so that the angle of the docking block 202 can be automatically adjusted.

[0059] When the fixed base plate 201 contacts the upper surface of the docking base 3, the positioning slot moves to the end of the positioning plate 203 under the drive of the docking block 202. At this time, the spring 2010 rebounds and the positioning plate 203 is inserted into the interior of the positioning slot, so that the docking block 202 can be easily inserted and fixed.

[0060] When it is necessary to separate the main body 1 of the data acquisition device from the docking base 3 after use, pull the handle to drive the lifting plate 204 to separate from the docking base 3. This allows the above operation to be reversed, so as to facilitate the disassembly of the main body 1 of the data acquisition device and make it easier to carry the main body 1 of the data acquisition device.

[0061] The above description is merely a specific embodiment of this application, but the scope of protection of this application is not limited thereto. Any variations or substitutions that can be easily conceived by those skilled in the art within the technical scope disclosed in this application should be included within the scope of protection of this application. Therefore, the scope of protection of this application should be determined by the scope of the claims.

Claims

1. An aviation meteorological prediction data acquisition device, comprising an acquisition instrument main body (1), a docking base (3) is arranged below the acquisition instrument main body (1), a plurality of fixing blocks (5) are integrally formed on the outer wall of the docking base (3) at equal intervals in the circumference direction, a supporting leg (4) is arranged on the outer side of each of the plurality of fixing blocks (5), two damping rotating shafts (6) are symmetrically installed on the outer wall of each of the plurality of fixing blocks (5), and each of the two damping rotating shafts (6) is rotationally connected with the supporting leg (4), characterized in that, The docking base (3) is provided with a docking mechanism for convenient docking of the acquisition instrument main body (1) and the docking base (3); The docking mechanism comprises a plug-in assembly arranged on the docking base (3); The plug-in assembly comprises a fixed bottom plate (201) arranged on the upper surface of the docking base (3), the fixed bottom plate (201) is fixedly connected with the acquisition instrument main body (1) through bolts, the bottom end of the fixed bottom plate (201) is fixedly connected with a docking plug-in block (202), the docking plug-in block (202) penetrates into the inside of the docking base (3), and the bottom end outer wall of the docking plug-in block (202) is in a semispherical shape; The docking base (3) is provided with a guide assembly.

2. The airborne weather forecast data collection device of claim 1, wherein, The guide assembly comprises a plurality of guide sliding grooves (206) circumferentially and equidistantly arranged at the top end of the docking base (3), the two end portions of the plurality of guide sliding grooves (206) are mutually penetrated, the inner wall of one end of the plurality of guide sliding grooves (206) is higher than that of the other end, the bottom end of the fixed bottom plate (201) is circumferentially and equidistantly fixedly connected with a plurality of guide sliding blocks (207), the bottom end outer wall of the plurality of guide sliding blocks (207) is in a semispherical shape, the plurality of guide sliding blocks (207) are located outside the docking plug-in block (202), the plurality of guide sliding blocks (207) respectively penetrate into the inside of the plurality of guide sliding grooves (206), and the plurality of guide sliding blocks (207) are respectively and slidably connected with the plurality of guide sliding grooves (206); The docking base (3) is provided with a clamping assembly.

3. An airborne weather forecast data collection device according to claim 2, wherein, The clamping assembly comprises a plurality of positioning clamping plates (203) circumferentially and equidistantly arranged in the inside of the docking base (3), the outer wall of one end of the plurality of positioning clamping plates (203) close to the docking base (3) is in an inclined surface shape, the plurality of positioning clamping plates (203) penetrate the docking base (3) to the inside of the docking plug-in block (202), positioning insertion grooves are arranged at the joint positions of the docking plug-in block (202) and the plurality of positioning clamping plates (203), and the plurality of positioning clamping plates (203) are slidably connected with the docking base (3); The positioning clamping plate (203) is provided with a moving assembly.

4. An airborne meteorological prediction data collection apparatus according to claim 3, wherein, The moving assembly comprises a connecting sliding plate (2012) fixedly connected at the bottom end of the positioning clamping plate (203), the connecting sliding plate (2012) is slidably connected with the docking base (3), and the outer wall of the connecting sliding plate (2012) is fixedly connected with two moving sliding blocks (208) in symmetry; The connecting sliding plate (2012) is provided with a lifting assembly.

5. An airborne meteorological prediction data collection apparatus according to claim 4, wherein, The lifting assembly comprises a fixed pull plate (209) arranged below the connecting sliding plate (2012), two lifting guide plates (205) are fixedly connected at the top end of the fixed pull plate (209) in symmetry, the two lifting guide plates (205) are respectively sleeved on the outer walls of the two moving sliding blocks (208), a guide inclined slot for the sliding of the moving sliding block (208) is arranged at the joint position of the lifting guide plate (205) and the moving sliding block (208), and the lifting guide plate (205) and the fixed pull plate (209) are slidably connected with the docking base (3); The docking base (3) is provided with a connecting assembly.

6. An airborne meteorological prediction data collection apparatus according to claim 5, wherein, The connecting assembly comprises a lifting pull plate (204) arranged below the docking base (3), the bottom end of the lifting pull plate (204) is provided with a handle, the top end of the lifting pull plate (204) is fixedly connected with a plurality of connecting rods (2011) at equal intervals in the circumferential direction, the plurality of connecting rods (2011) all penetrate into the inside of the docking base (3), the plurality of connecting rods (2011) are all in sliding connection with the docking base (3), and the plurality of connecting rods (2011) are respectively located below a plurality of positioning clamping plates (203); the connecting rod (2011) is in fixed connection with a fixed pull plate (209). A reset assembly is arranged on the connecting rod (2011).

7. An airborne meteorological prediction data collection device according to claim 6, wherein, The reset assembly is a spring (2010) sleeved on the outer wall of the connecting rod (2011), one end of the spring (2010) is in contact with the outer wall of the fixed pull plate (209), and the other end of the spring (2010) is in contact with the inner wall of the docking base (3).