Sonde tool device
By designing a lifting rack and power supply transmission components for the sonde, the problem of inability to perform air pressure detection on multiple sondes in the prior art is solved, and the effect of improving the detection efficiency of the sonde and reducing the working intensity of the detector is achieved.
Patent Information
- Application Number
- CN202421617201.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-07-10
- Publication Date
- 2025-05-09
- Estimated Expiration
- 2034-07-10
AI Technical Summary
The existing test tooling structure cannot perform air pressure detection on multiple sondes at the same time, resulting in high working intensity of the inspectors and slow detection speed of the sondes.
A solenoid tooling device is designed, including a lifting frame that can be installed at the same time and a power supply transmission assembly connected to a plurality of solenoids. The power supply transmission assembly includes a connecting socket and a circuit board group for providing power and data transmission for the solenoid.
Through the setting of the lift rack and power supply transmission components, multiple sondes can be detected and calibrated simultaneously, improving detection efficiency and reducing the working intensity of the detectors.
Smart Images

Figure CN222848942U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of sonde, in particular to a sonde tooling device. Background Art
[0002] Air pressure is one of the main factors in high-altitude detection. The accuracy of air pressure measurement will directly affect the quality of high-altitude meteorological detection, and the accuracy of weather forecasts and meteorological support. Stable and reliable operation of meteorological observation equipment is an important guarantee for obtaining stable, continuous and high-quality detection data.
[0003] The hardware structure of the air pressure detection platform is mainly composed of a pressure-temperature combined control box, a pressure control system, an air pressure standard, a collector and a test tooling structure.
[0004] The existing test tooling structure cannot perform air pressure detection on multiple sondes at the same time. Each sonde needs to be disassembled and assembled for air pressure detection, that is, only one sonde can be tested at a time. The sonde that has completed the previous detection needs to be disassembled before the next sonde to be tested can be installed and tested. This is very troublesome. In addition, the sonde is placed in a pressure-temperature combined control box. It takes a certain amount of time to adjust the temperature and pressure (temperature and pressure) each time, which seriously affects the detection efficiency.
[0005] Therefore, how to reduce the workload of inspectors and improve the speed of detecting radiosondes is a technical problem that needs to be solved urgently. Utility Model Content
[0006] The utility model aims to provide a sonde tooling device to solve the technical problem in the background technology that the prior art can only detect a sonde individually but cannot detect multiple sondes at the same time, resulting in high workload for detection personnel and slow detection speed of the sonde.
[0007] In order to achieve the above-mentioned purpose, the utility model proposes a sonde tooling device, which includes a lifting frame on which multiple sondes can be installed at the same time, and a power supply transmission component connected to the multiple sondes; the power supply transmission component includes a connecting socket connected to the sonde, and a circuit board group connected to the connecting socket, and the circuit board group is used to provide power supply and data transmission for the sonde; during testing, multiple sondes are installed on the lifting frame, and then the lifting frame is placed in the air pressure test equipment.
[0008] Optionally, the connection socket and the circuit board assembly are both mounted on a lifting frame.
[0009] Optionally, the lifting frame includes a mounting plate for connecting the socket for installation, a top plate installed on the top of the mounting plate, a bottom plate installed on the bottom of the mounting plate, and a side plate installed on the side of the mounting plate for installing the circuit board group.
[0010] Optionally, the top and bottom of the side panel are connected to the top panel and the bottom panel respectively; a handle is installed on the top panel; and a waterproof coating is applied on the circuit board assembly.
[0011] Optionally, the lifting frame includes a supporting base plate, a fixed plate installed on the supporting base plate, a sonde placement block equidistantly and symmetrically installed on the fixed plate, a placement groove arranged on the sonde placement block, the sonde is placed in the placement groove and connected to a connection socket of a power supply transmission component located outside the air pressure test equipment.
[0012] Optionally, the power transmission assembly further includes a shell, a cover mounted on the shell, the circuit board group is mounted on the bottom of the shell, and the cover is provided with an avoidance slot corresponding to the connection socket.
[0013] Optionally, the shell is provided with line avoidance holes and heat dissipation holes.
[0014] Optionally, the fixing plate is perpendicular to the supporting bottom plate, and the sonde placement block is installed on a plane perpendicular to the fixing plate and the supporting bottom plate.
[0015] Optionally, a handle groove is provided on the top of the fixing plate, mounting holes are provided on the fixing plate at equal intervals, and waist-shaped mounting holes corresponding to the mounting holes are provided on the sonde placement block.
[0016] Optionally, a mounting groove is further provided in the placement groove, and a partition plate is detachably installed in the mounting groove; the fixing plate is located in the middle position of the supporting bottom plate.
[0017] Compared with the prior art, the utility model provides a sonde tooling device, which has the following beneficial effects:
[0018] The sounding tooling device can hold multiple sondes through the setting of the lifting frame, so that multiple sondes can be placed in the pressure-temperature combined control box at the same time, and combined with the setting of the power supply transmission component, power supply and data transmission can be provided to multiple sondes, so that air pressure detection and calibration can be performed on multiple sondes at the same time, and the number of sondes detected each time is increased, thereby improving the detection efficiency of the sondes and reducing the workload of detection personnel. BRIEF DESCRIPTION OF THE DRAWINGS
[0019] Figure 1 It is a schematic diagram of the overall structure of Example 1 of the utility model.
[0020] Figure 2 It is a structural schematic diagram of the lifting frame of Example 2 of the utility model.
[0021] Figure 3 It is a structural schematic diagram of the fixing plate of Example 2 of the utility model.
[0022] Figure 4 It is a structural schematic diagram of a sonde placement block of the utility model.
[0023] Figure 5 It is a structural schematic diagram of the power supply transmission component of Example 2 of the utility model.
[0024] Figure 6 It is a structural schematic diagram of the housing and circuit board assembly of the utility model.
[0025] Figure 7 It is a structural schematic diagram of the sealing cover and the connecting socket of the utility model.
[0026] Figure 8 It is a structural schematic diagram of the utility model cover and the connecting socket from another perspective.
[0027] Markings in the figure: 1. Lifting frame; 11. Mounting plate; 12. Top plate; 13. Bottom plate; 14. Side plate; 15. Handle; 101. Support bottom plate; 102. Fixing plate; 103. Sonde placement block; 104. Placement slot; 105. Handle slot; 106. Mounting hole; 107. Waist-shaped mounting hole; 108. Mounting slot; 109. Partition plate; 2. Power supply transmission component; 21. Connecting socket; 22. Circuit board group; 23. Shell; 231. Line avoidance hole; 232. Heat dissipation hole; 233. Limiting slot; 24. Cover; 241. Limiting plate; 25. Avoidance slot hole. DETAILED DESCRIPTION
[0028] The following is a detailed description in conjunction with the accompanying drawings and specific implementations. In the following description, many specific details are set forth to facilitate a full understanding of the present utility. However, the present utility can be implemented in many other ways different from those described herein, and those skilled in the art can make similar generalizations without violating the connotation of the present utility, so the present utility is not limited by the specific embodiments disclosed below.
[0029] A sonde tooling device of the present application can be used for simultaneous air pressure detection and calibration of multiple sondes, and of course can also be used in other similar application scenarios. A sonde tooling device is described in detail below.
[0030] See attached Figure 1 As shown, a schematic diagram of the structure of a preferred embodiment of a sonde tooling device of the present application is shown. The sonde tooling device includes a lifting frame 1 on which multiple sondes can be installed at the same time, and a power transmission component 2 connected to the multiple sondes; wherein the power transmission component 2 includes a connection socket 21 connected to the sonde, and a circuit board group 22 connected to the connection socket 21, and the circuit board group 22 is used to provide power and data transmission for the sonde.
[0031] The utility model can install the air pressure detection components of multiple sondes on the lifting frame 1 through the setting of the lifting frame 1, and then connect them with the power supply transmission component 2. The power supply transmission component 2 provides power and data transmission for the air pressure detection elements of the multiple sondes. Therefore, each time the detection personnel perform air pressure detection on the sonde, multiple sondes can be detected at the same time, so that each time the temperature and pressure combined control box is adjusted, multiple sondes can be detected at the same time, which reduces the time of adjusting the temperature and pressure combined control box, improves the detection efficiency of the sonde, reduces the working time of the detection personnel, and reduces the labor intensity of the detection personnel.
[0032] It should be noted that the circuit board group 22 in the present application is an existing signal transmission circuit board, which belongs to the prior art and will not be described in detail here. A waterproof coating is applied on the circuit board 22. Due to the low-pressure environment in the temperature and pressure combined control box, water droplets may condense on the circuit board 22, so a waterproof coating needs to be applied for protection.
[0033] See attached Figure 1 As shown, in the present invention, the connecting socket 21 and the circuit board assembly 22 are both installed on the lifting frame 1 .
[0034] The utility model installs both the connection socket 21 and the circuit board group 22 on the lifting frame 1, thereby shortening the distance between the sonde and the circuit board group 22 and reducing the connection line requirements of the sonde.
[0035] See attached Figure 1 As shown, in the utility model, the lifting frame 1 includes a mounting plate 11 for connecting a socket 21 for installation, a top plate 12 installed on the top of the mounting plate 11, a bottom plate 13 installed on the bottom of the mounting plate 11, and a side plate 14 installed on the side of the mounting plate 11 for installing a circuit board group 22; wherein the top and bottom of the side plate 14 are respectively connected to the top plate 12 and the bottom plate 13; and a handle 15 is installed on the top plate 12.
[0036] The utility model is used to provide a mounting position for a connecting socket 21 through the setting of a mounting plate 11; provides a mounting position for a circuit board group 22 through the setting of a side plate 14; and limits the length of the mounting plate 11 through the setting of a top plate 12 and a bottom plate 13, thereby ensuring that the connecting sockets 21 are all located between the top plate 12 and the bottom plate 13, wherein the top plate 12 provides a mounting position for a handle 15, and the handle 15 facilitates the inspection personnel to take the entire lifting frame 1, so that the inspection personnel can take out the lifting frame 1 equipped with a sounding instrument from the temperature-pressure combined control box or put it into the temperature-pressure combined control box.
[0037] See attached Figure 1 As shown, the use process of the utility model is as follows:
[0038] The first step is to dismantle the air pressure sensor modules on multiple radiosondes;
[0039] The second step is to install the disassembled air pressure sensor module on the connecting socket 21;
[0040] In the third step, the inspector connects the circuit board group 22 to an external device for reading sensor data through a connecting line. It should be noted that the device for reading sensor data is the same as the existing device for reading sensor data, which is a prior art and will not be described in detail here.
[0041] In the fourth step, the monitoring personnel use the handle 15 to place the lifting frame 1 equipped with the air pressure sensor modules of multiple sounding instruments into the temperature and pressure combined control box for testing. After the test is completed, the lifting frame 15 is taken out by the handle 15 and the first step is repeated.
[0042] Example 2
[0043] See attached Figure 2 — Figure 8 As shown, the difference between this embodiment and embodiment 1 is that, in this embodiment, the lifting frame 1 includes a supporting base plate 101, a fixing plate 102 installed at the middle position of the supporting base plate 101, a sonde placement block 103 equidistantly and symmetrically installed on the fixing plate 102, and a placement groove 104 arranged on the sonde placement block 103. The sonde is placed in the placement groove 104 and connected to the connection socket 21 of the power supply transmission component 2 located outside the air pressure test equipment.
[0044] This embodiment increases the contact area in the temperature-pressure combined control box by setting the support bottom plate 101, thereby improving the stability of the entire lifting frame 1 during the detection process; provides an installation position for the sonde placement block 103 by setting the fixed plate 102, and symmetrically installs the sonde placement block 103 about the fixed plate 102, ensuring the counterweights at both ends of the fixed plate 102, preventing one end from being overweight, and ensuring the stability of the entire lifting frame 1 in the temperature-pressure combined control box; provides an installation position for the sonde by setting the placement slot 104. Compared with Example 1, at the same height, this embodiment performs more tests each time than the embodiment, and is symmetrically installed on the fixed plate 102. Compared with Example 1, it is more stable during the entire detection process.
[0045] It should be specifically noted that an installation groove 108 is further provided in the placement groove 104, and a partition plate 109 is detachably installed in the installation groove 108. Through the arrangement of the partition plate 109 in this embodiment, the installation quantity of the radiosonde is further increased, and the detection efficiency of the radiosonde is further improved; the fixed plate 102 is provided with a group of waist-shaped communication holes at equal intervals for communicating the radiosonde placement blocks 103 on both sides of the fixed plate 102, ensuring that the radiosondes on the radiosonde placement blocks 103 on both sides are in the same air pressure environment, so that the air pressure detection of multiple radiosondes can be carried out simultaneously.
[0046] Refer to the appendix Figure 5 — Figure 8 As shown in the figure, the difference between this embodiment and Embodiment 1 is that the power supply and transmission component 2 further includes a housing 23 and a cover 24 installed on the housing 23. The circuit board group 22 is installed at the bottom of the housing 23, and an avoidance slot hole 25 corresponding to the connection socket 21 is provided on the cover 24.
[0047] The difference between this embodiment and Embodiment 1 is that the power supply and transmission component 2 for providing power supply and signal transmission does not need to enter the temperature and pressure combined control box, but is placed outside. In this embodiment, the radiosonde is connected and matched with the connection socket 21 through an aviation plug for power transmission and data transmission of the radiosonde; in this embodiment, the circuit board group 22 is protected by the housing 23 and the cover 24, and the avoidance slot hole 25 ensures that the radiosonde can be connected to the connection socket 21.
[0048] It should be specifically noted that the cover 24 is arranged in a U shape, a limiting slot 233 is provided at the top of the housing 23, and a limiting plate 241 corresponding to the limiting slot 233 is provided on the cover 24. The limiting plate 241 can limit the installation position of the connection socket 21, and limit the position of the cover 24 when the cover 24 is connected to the housing 23, ensuring the accuracy of the installation position and facilitating the installation of the cover 24 on the housing 23.
[0049] Refer to the appendix Figure 2 — Figure 4 As shown in the figure, in this embodiment, the fixed plate 102 is perpendicular to the support bottom plate 101, and the radiosonde placement block 103 is installed on the plane where the fixed plate 102 is perpendicular to the support bottom plate 101; a handle groove 105 is provided at the top of the fixed plate 102, a group of installation holes 106 are provided on the fixed plate 102 at equal intervals, and waist-shaped installation holes 107 corresponding to the installation holes 106 are provided on the radiosonde placement block 103.
[0050] The present embodiment provides a handle groove 105 to facilitate inspection personnel to take the lifting frame 1, and the handle groove 105 is compared with the handle 15 in Example 1. The handle groove 105 and the fixing plate 102 are integrally formed and more secure; the installation hole 106 is provided so that the position of the sonde placement block 103 on the fixing plate 102 can be adjusted according to the size of the sonde; the waist-shaped installation hole 107 is provided so that the installation of the sonde placement block 103 can be fine-tuned to prevent the situation where the sonde placement block 103 cannot be installed due to different adjacent hole distances.
[0051] The above embodiments are intended to illustrate the present application, not to limit the present application. Any solution that is a simple transformation of the present application falls within the protection scope of the present application.
Claims
1. A sonde tooling device, characterized in that: It comprises a lifting frame (1) capable of simultaneously mounting a plurality of sondes, and a power supply transmission component (2) connected to the plurality of sondes; The power transmission component (2) comprises a connection socket (21) connected to the sonde, and a circuit board group (22) connected to the connection socket (21), wherein the circuit board group (22) is used to provide power and data transmission for the sonde; During testing, a plurality of sondes are mounted on a lifting frame (1), and the lifting frame (1) is then placed in an air pressure test device.
2. The sonde tooling device according to claim 1, characterized in that: The connection socket (21) and the circuit board group (22) are both mounted on the lifting frame (1).
3. The sonde tooling device according to claim 1, characterized in that: The lifting frame (1) comprises a mounting plate (11) for connecting a socket (21) for installation, a top plate (12) mounted on the top of the mounting plate (11), a bottom plate (13) mounted on the bottom of the mounting plate (11), and a side plate (14) mounted on the side of the mounting plate (11) for mounting a circuit board group (22).
4. The sonde tooling device according to claim 3, characterized in that: The top and bottom of the side panel (14) are connected to the top panel (12) and the bottom panel (13) respectively; a handle (15) is installed on the top panel (12); and a waterproof coating is applied on the circuit board group (22).
5. The sonde tooling device according to claim 1, characterized in that: The lifting frame (1) comprises a supporting base plate (101), a fixing plate (102) mounted on the supporting base plate (101), sonde placement blocks (103) symmetrically mounted on the fixing plate (102) at equal intervals, and placement grooves (104) arranged on the sonde placement blocks (103); the sonde is placed in the placement groove (104) and connected to a connection socket (21) of a power supply transmission component (2) located outside the air pressure test equipment.
6. The sonde tooling device according to claim 5, characterized in that: The power transmission assembly (2) further comprises a housing (23), a cover (24) mounted on the housing (23), the circuit board group (22) being mounted on the bottom of the housing (23), and an avoidance slot (25) corresponding to the connection socket (21) being provided on the cover (24).
7. The sonde tooling device according to claim 6, characterized in that: The housing (23) is provided with a line avoidance hole (231) and a heat dissipation hole (232).
8. The sonde tooling device according to claim 5, characterized in that: The fixing plate (102) is perpendicular to the supporting bottom plate (101), and the sonde placement block (103) is installed on a plane perpendicular to the fixing plate (102) and the supporting bottom plate (101).
9. The sonde tooling device according to claim 8, characterized in that: A handle groove (105) is provided on the top of the fixing plate (102), mounting holes (106) are provided on the fixing plate (102) at equal intervals, and waist-shaped mounting holes (107) corresponding to the mounting holes (106) are provided on the sonde placement block (103).
10. The sonde tooling device according to claim 5, characterized in that: The placement groove (104) is further provided with a mounting groove (108), and a partition plate (109) is detachably mounted in the mounting groove (108); the fixing plate (102) is located at the middle position of the supporting bottom plate (101).