Cloud water resource telemetering station
By designing a support device for the cloud water resource telemetry station, the inconvenience of adjusting the signal acquisition direction and angle of the equipment was solved, realizing convenient cloud water resource acquisition and detection, and improving operational efficiency.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-01-13
- Publication Date
- 2026-04-03
AI Technical Summary
Existing cloud water resource telemetry equipment is inconvenient to operate when adjusting the signal acquisition direction and angle, which affects the detection efficiency.
A cloud water resource telemetry station was designed, including a support device. The support device consists of a base plate, a rotating mechanism, a connecting mechanism, and a supporting mechanism. The direction can be adjusted by the rotating mechanism, the height and angle can be adjusted by the supporting mechanism, and the connecting mechanism provides stable support, which facilitates the storage and deployment of the equipment.
It enables convenient collection of cloud water resources, the support device is easy to store and transport, and the height and angle can be adjusted during use, which improves the convenience of operation and detection efficiency.
Smart Images

Figure CN224079926U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of telemetry technology, and in particular to cloud water resource telemetry stations. Background Technology
[0002] my country faces a severe shortage of freshwater resources, and the growing contradiction between population growth, economic development, and water scarcity is seriously affecting the sustainable and healthy economic and social development of some regions. Artificial rain enhancement and the development of atmospheric cloud water resources are important ways to alleviate water shortages. Detecting and studying the distribution characteristics and evolution patterns of vaporous and liquid water in the atmosphere is of great significance for cloud precipitation physics research and weather modification operations.
[0003] In actual testing, the direction and angle of signal acquisition need to be adjusted according to the location of the cloud cluster being tested. Existing equipment is inconvenient to adjust, so a cloud water resource telemetry station is proposed. Utility Model Content
[0004] To address the technical problems existing in the prior art, this utility model provides a cloud water resource telemetry station.
[0005] This utility model is achieved by the following technical solution: a cloud water resource telemetry station, including a data acquisition terminal, a microwave radiometer and an interactive terminal connected to the data acquisition terminal, a raindrop spectrometer connected to the interactive terminal, and a support device for supporting the microwave radiometer and the raindrop spectrometer;
[0006] The support device includes a base plate, a rotating mechanism for adjusting direction is fixedly connected to the top of the base plate, a connecting mechanism is fixedly connected to the middle position of the bottom of the base plate, a support mechanism that is rotatably connected to the base plate is provided on the outside of the connecting mechanism, and a docking hole located at the bottom of the base plate is opened on one side of the support mechanism.
[0007] The support mechanism includes a rotating rod that is rotatably sleeved with the bottom of the base plate. A deflection rod with an opening at the bottom is hinged to the bottom of the rotating rod. A movable rod is slidably sleeved to the bottom of the deflection rod. A fixed plate is hinged to the bottom of the movable rod. Slide grooves are provided on both sides of the rotating rod along its length. Sliding shafts are slidably connected in both slide grooves. Pull rods are fixedly connected to the ends of the two sliding shafts that are far apart from each other. A connecting rod is fixedly connected between the ends of the two pull rods that are far apart from the sliding shafts. Through holes are provided on the inner sidewall of the slide grooves that are distributed sequentially along its length and communicate with the inside of the deflection rod. A locking rod that is threadedly sleeved with the through hole is movably sleeved on the deflection rod.
[0008] The connecting mechanism includes a top rod fixed to the bottom of the substrate, and an L-shaped suspension rod for connecting the overlapping rods is fixed to the outer side of the bottom of the top rod.
[0009] As a further improvement to the above solution, the fixing plate has a through-hole for mounting, and the mounting hole is fitted with an anchor rod for fixing to the ground. The side of the fixing plate away from the movable rod has an inwardly recessed groove.
[0010] As a further improvement to the above solution, the pull rod and the sliding shaft pass through a through hole that is movably sleeved with the locking rod, and the distance between the two sets of pull rods is greater than the diameter of the suspension rod.
[0011] As a further improvement to the above solution, the through hole is threaded with a locking screw for locking the movable rod.
[0012] As a further improvement to the above solution, the cross-section of the movable rod is consistent with the cross-section of the deflection rod and both are regular polygonal structures, and the mating hole is threaded with an assembly screw.
[0013] As a further improvement to the above solution, the rotating mechanism includes two sets of parallel side plates fixed to the top of the substrate. A rotating shaft is rotatably sleeved between the two sets of side plates. A motor is installed at one end of the rotating shaft that extends out of the side plates. Two sets of parallel extension plates are fixedly sleeved on the outer ring of the rotating shaft. A placement plate is fixedly connected to the top of the two sets of extension plates. A circular storage groove with the same axis as the placement plate is opened on the top of the placement plate. A mounting plate is slidably sleeved in the storage groove. A fixing hole is reserved on the top of the mounting plate. A rotating shaft is fixedly connected to the bottom of the mounting plate and rotatably sleeved with the placement plate. A motor is installed at one end of the rotating shaft that extends out of the bottom of the placement plate.
[0014] Compared with the prior art, the beneficial effects of this utility model are as follows:
[0015] This utility model enables the collection of regional cloud water resources. The supporting device adopts a storage design, which can be stored away when not in use for easy transportation and placement. When in use, it can be unfolded and the height of the support can be adjusted, as well as the direction and angle of signal collection, making it easy to operate. Attached Figure Description
[0016] Figure 1 A schematic diagram of the support device provided by this utility model;
[0017] Figure 2 A schematic diagram of the support mechanism provided by this utility model;
[0018] Figure 3 A schematic diagram of the connecting mechanism provided by this utility model.
[0019] Explanation of key symbols:
[0020] 1. Base plate; 2. Connecting mechanism; 3. Supporting mechanism; 4. Docking hole; 5. Rotating mechanism; 21. Top rod; 22. Suspension rod; 31. Rotating rod; 32. Locking rod; 33. Deflecting rod; 34. Slide groove; 35. Sliding shaft; 36. Pull rod; 37. Overlapping rod; 38. Through hole; 39. Movable rod; 310. Fixing plate; 311. Mounting hole; 312. Slot. Detailed Implementation
[0021] The present invention will be further described below with reference to the accompanying drawings and specific embodiments. It should be noted that, without conflict, the various embodiments or technical features described below can be arbitrarily combined to form new embodiments.
[0022] Example 1:
[0023] Please combine Figures 1-3 The cloud water resource telemetry station in this embodiment includes a data acquisition terminal, a microwave radiometer and an interactive terminal connected to the data acquisition terminal, a raindrop spectrometer connected to the interactive terminal, and a support device for supporting the microwave radiometer and the raindrop spectrometer.
[0024] The support device includes a base plate 1. A rotating mechanism 5 for adjusting the direction is fixedly connected to the top of the base plate 1. A connecting mechanism 2 is fixedly connected to the middle position of the bottom of the base plate 1. A support mechanism 3 that is rotatably connected to the base plate 1 is provided on the outside of the connecting mechanism 2. A docking hole 4 located at the bottom of the base plate 1 is opened on one side of the support mechanism 3.
[0025] The support mechanism 3 includes a rotating rod 31 that is rotatably sleeved with the bottom of the base plate 1. The rotating rod 31 adjusts the overall square shape of the support mechanism 3 to achieve support and storage mode adjustment. The bottom of the rotating rod 31 is hinged to a deflection rod 33 with an opening at the bottom. The bottom of the deflection rod 33 is slidably sleeved with a movable rod 39. The height of the support installation is driven according to the extension length of the movable rod 39. The bottom of the movable rod 39 is hinged to a fixed plate 310. Both sides of the rotating rod 31 are provided with sliding grooves 34 arranged along its length direction. Sliding shafts 35 are slidably connected in both sets of sliding grooves 34. Pull rods 36 are fixedly connected to the ends of the two sets of sliding shafts 35 that are far apart from each other. A connecting rod 37 is fixedly connected between the ends of the two sets of pull rods 36 that are far away from the sliding shafts 35. The inner sidewall of the sliding groove 34 is provided with through holes 38 that are distributed sequentially along its length direction and communicate with the inside of the deflection rod 33. The deflection rod 33 is movably sleeved with a locking rod 32 that is threadedly sleeved with the through hole 38.
[0026] The connecting mechanism 2 includes a top rod 21 fixed to the bottom of the base plate 1. An L-shaped suspension rod 22 for connecting the overlapping rod 37 is fixed to the outer side of the bottom of the top rod 21. The overlapping rod 37 at one end of the pull rod 36 is connected to the suspension rod 22. The other end of the pull rod 36 is fixed to the through hole 38 by the locking rod 32. The movable rod 39 is fixed to the deflection rod 33 by the locking screw, so as to realize the fixed operation of the pull rod 36 with the support mechanism 3, the deflection rod 33 and the movable rod 39, and the unfolding and fixing operation of the complete support device.
[0027] The fixing plate 310 has a through mounting hole 311, and the mounting hole 311 is fitted with an anchor rod for fixing to the ground. The fixing plate 310 has an inwardly recessed groove 312 on the side away from the movable rod 39.
[0028] The pull rod 36 and the sliding shaft 35 pass through a through hole 1 that is movably sleeved with the locking rod 32, and the distance between the two sets of pull rods 36 is greater than the diameter of the suspension rod 22.
[0029] The insertion hole 38 is threaded with a locking screw for locking the movable rod 39; the cross-section of the movable rod 39 is the same as the cross-section of the deflection rod 33 and both are regular polygonal structures, and the mating hole 4 is threaded with an assembly screw.
[0030] Example 2:
[0031] The rotating mechanism 5 includes two sets of parallel side plates fixed to the top of the base plate 1. A rotating shaft 1 is rotatably sleeved between the two sets of side plates. A motor 1 is installed at one end of the rotating shaft 1 that extends out of the side plates. Two sets of parallel extension plates are fixedly sleeved on the outer ring of the rotating shaft 1. A placement plate is fixedly connected to the top of the two sets of extension plates. A circular storage groove with the same structure as the placement plate is opened on the top of the placement plate. A mounting plate is slidably sleeved in the storage groove. A fixing hole is reserved on the top of the mounting plate. A rotating shaft 2 that is rotatably sleeved with the placement plate is fixedly connected to the bottom of the mounting plate. A motor 2 is installed at one end of the rotating shaft 2 that extends out of the bottom of the placement plate. The positions of the placement plate and the mounting plate are adjusted by using motor 1 and motor 2 to achieve adjustment in different directions and angles.
[0032] Example 3:
[0033] A control box is provided on the top of the substrate 1. Controller 1 is provided inside the control box. The control box is equipped with a power interface, a data interface and a switch. Controller 1 is connected to the power interface, the data interface, the switch, motor 1 and motor 2.
[0034] The interactive terminal includes a wireless transceiver device 1 electrically connected to the acquisition terminal and a wireless transceiver device 2 electrically connected to the raindrop spectrometer. The wireless transceiver device 2 and the wireless transceiver device 1 are connected by a signal.
[0035] The second wireless transceiver is connected to the first controller on the base plate 1 on which the raindrop spectrometer is installed;
[0036] The data acquisition terminal includes a data acquisition controller and a display screen connected to the data acquisition controller. The data acquisition controller is connected to a wireless transceiver and a controller on a substrate 1 on which a microwave radiometer is installed.
[0037] Both the controller and the acquisition controller use ARM microcontrollers. The raindrop spectrometer is model TH-YD1, and the microwave radiometer is model TK001. Five groups are used, with four groups arranged in an array with the remaining group as the center. The microwave radiometer is set on one side of the raindrop spectrometer at the center position.
[0038] The acquisition controller sends acquisition commands to the raindrop spectrometer using wireless transceiver device 2 and wireless transceiver device 1. The signals acquired by the raindrop spectrometer are transmitted to the acquisition controller via wireless transceiver device 2 and wireless transceiver device 1. At the same time, the acquisition controller sends signal acquisition commands to the microwave radiometer.
[0039] This utility model enables the collection of regional cloud water resources. The supporting device adopts a storage design, which can be stored away when not in use for easy transportation and placement. When in use, it can be unfolded and the height of the support can be adjusted, as well as the direction and angle of signal collection, making it easy to operate.
[0040] The above embodiments are merely preferred embodiments of this utility model and should not be construed as limiting the scope of protection of this utility model. Any non-substantial changes and substitutions made by those skilled in the art based on this utility model shall fall within the scope of protection claimed by this utility model.
Claims
1. A cloud water resource telemetric station, characterized in that The application relates to a raindrop spectrum acquisition device, which comprises a collection terminal, a microwave radiometer connected with the collection terminal, an interactive terminal connected with the microwave radiometer, a raindrop spectrum instrument connected with the interactive terminal and a supporting device for bearing the microwave radiometer and the raindrop spectrum instrument. The supporting device comprises a base plate, a rotating mechanism for adjusting direction fixed to the top of the base plate, an adapter mechanism fixed to the middle of the bottom of the base plate, a supporting mechanism provided outside the adapter mechanism and rotationally connected with the base plate, and a butt joint hole provided in the bottom of the base plate on one side of the supporting mechanism. The supporting mechanism comprises a rotating rod rotationally sleeved with the bottom of the base plate, a deflection rod with an opening provided in the bottom and hinged to the bottom of the rotating rod, a movable rod slidingly sleeved with the bottom of the deflection rod, a fixed plate hinged to the bottom of the movable rod, sliding grooves provided along the length direction of the rotating rod on both sides of the rotating rod, sliding shafts slidingly connected in the two groups of sliding grooves, pull rods fixed to the ends of the two groups of sliding shafts away from each other, a lap joint rod fixed between the ends of the two groups of pull rods away from the sliding shafts, penetrating holes provided in the inner side wall of the sliding groove along the length direction and in sequence and in communication with the inside of the deflection rod, and a locking rod threadedly sleeved with the penetrating hole and movably sleeved with the deflection rod. The adapter mechanism comprises a top rod fixed to the bottom of the base plate, and an L-shaped suspension rod fixed to the outside of the bottom of the top rod and used for butt joint of the lap joint rod. The rotating mechanism comprises two groups of parallel side plates fixed to the top of the base plate, a rotating shaft one rotationally sleeved between the two groups of side plates, a motor one mounted on the end of the rotating shaft one extending out of the side plate, two groups of parallel extension plates fixedly sleeved with the outer circle of the rotating shaft one, a placement disc fixed to the top of the two groups of extension plates, a receiving groove of circular structure coaxially provided in the top of the placement disc, an installation disc slidingly sleeved with the receiving groove, a fixing hole reserved in the top of the installation disc, a rotating shaft two rotationally sleeved with the placement disc and fixed to the bottom of the installation disc, and a motor two mounted on the end of the rotating shaft two extending out of the bottom of the placement disc.
2. The cloud water resource telemetry station of claim 1, wherein, The fixed plate penetrates an installation hole sleeved with an anchor rod used for being fixed to the ground, and a clamping groove recessed inward is provided on the side of the fixed plate away from the movable rod.
3. The cloud water resource telemetry station of claim 1, wherein, The pull rod and the sliding shaft penetrate a through hole one movably sleeved with the locking rod, and the distance between the two groups of pull rods is greater than the diameter of the suspension rod.
4. The cloud water resource telemetry station of claim 1, wherein, The penetrating hole is threadedly sleeved with a locking screw rod used for locking the movable rod.
5. The cloud water resource telemetry station of claim 1, wherein, The cross section of the movable rod is consistent with the cross section of the deflection rod and is a regular polygon structure, and the butt joint hole is threadedly sleeved with an assembly screw rod.