Hydrological monitoring data analysis device with stacking structure

By introducing components such as worm gears and screw rods into the hydrological monitoring data analysis device, the lifting and angle adjustment of the display panel can be realized, which solves the problem of exposure and damage to the display panel during folding and improves the protection effect and service life of the device.

CN223673183UActive Publication Date: 2025-12-16ZHENGZHOU UNIV +2
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Patent Information

Application Number
CN202423051877.1
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-12-11
Publication Date
2025-12-16
Estimated Expiration
2034-12-11

AI Technical Summary

Technical Problem

When existing hydrological monitoring data analysis devices are folded and stored, the display panel structure is exposed on the outside of the support frame, which can easily cause damage and affect its use.

Method used

Using components such as worm gears, threaded screws, worm wheel collars, and geared motors, the display panels are raised, lowered, and angled through belt drive and gear meshing, and protective stacking is achieved using storage boxes.

Benefits of technology

This technology enables the safe stacking of display panels, avoids structural damage, and improves the lifespan of the device and the reliability of data display.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the technical field of hydrological monitoring, in particular to a hydrological monitoring data analysis device with a stacking structure, which comprises a storage box, a threaded lead screw is rotatably connected to the inner bottom wall of the storage box, a worm-wheel shaft collar is coaxially fixed outside the threaded lead screw, a supporting rod is arranged outside the threaded lead screw, and the worm-wheel shaft collar and the supporting rod are coaxially fixed on the inner bottom wall of the storage box. A gear shaft rod is rotationally connected to the inner side of the containing groove plate, and a supporting piece is arranged outside the sliding lead screw. According to the hydrological monitoring data analysis device with the stacking structure, a gear motor drives a first belt pulley, a worm is meshed with a worm wheel shaft ring to drive four threaded lead screws to rotate, two threaded lead screws and the other two threaded lead screws drive supporting rods to deflect in an angle mode, and the lifting and stacking effects of a containing groove plate are achieved; and a rotary wheel is rotated to drive a gear shaft rod through a second belt wheel, a rotary gear is engaged to drive a circular fluted disc, the digital display screen and the mounting frame are controlled to perform angle adjustment, and the digital display screen can be conveniently stacked and stored.
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Description

TECHNICAL FIELD

[0001] The utility model relates to hydrology monitoring technical field, concretely is a hydrology monitoring data analysis device with stacking structure. BACKGROUND

[0002] The hydrology monitoring data analysis device, as the name implies, is a device for displaying and analyzing data obtained by hydrology monitoring, commonly used in the field of hydrology monitoring industry, and needs to monitor various hydrological parameters such as rivers, lakes, reservoir dams, irrigation ditches and groundwater in real time, so as to obtain a large amount of monitoring content such as water quality, water level, flow rate and soil moisture, thereby improving data analysis efficiency.

[0003] Especially in the hydrology experiment for dam breach refuge site selection, due to improper design of spillway or reservoir dam foundation collapse caused by geological disasters in reality, the reservoir storage capacity is overflowing and too large in continuous heavy rainfall weather, which may cause dam breach in severe cases, therefore, in order to avoid the occurrence of dam breach disaster, it is necessary to monitor the structure seepage deformation, foundation slope, stress and strain and water level flow rate and other hydrological data of reservoir dam and make a large number of hydrology simulation test, so as to provide data support for a series of hydrology management measures.

[0004] According to the utility model patent with the Chinese patent publication No. CN220018583U, a hydrology monitoring data analysis device with stacking structure is disclosed, which is composed of a foldable display board and a support frame. The display board is removed to fold and wrap the support frame, forming a square column structure. Then, the column is bound and stored by using a binding structure.

[0005] However, the hydrology monitoring data analysis device with stacking structure uses a foldable display board to wrap the support frame. At this time, the display board is exposed outside the support frame, which may cause damage to the display board structure during folding and storage, affecting the subsequent use of the display board for data display. Therefore, the protection effect of the hydrology monitoring data analysis device with stacking structure needs to be further improved when stacking and storing, so a hydrology monitoring data analysis device with stacking structure is proposed. UTILITY MODEL CONTENT

[0006] In view of the shortcomings of the prior art, the utility model provides a hydrology monitoring data analysis device with stacking structure, which has the advantages of convenient folding and protection, and solves the problem of damage to the display board structure caused by exposing the display board structure outside the support frame in the hydrology monitoring data analysis device with stacking structure in the above background technology.

[0007] To achieve the above object, the utility model provides following technical scheme: a hydrological monitoring data analysis device with folding structure, including the storage box, the inside of storage box is provided with folding placement structure;

[0008] The folding placement structure includes a worm that is rotationally connected to the inner bottom wall of the storage box, a threaded lead screw that is rotationally connected to the inner bottom wall of the storage box, a worm gear shaft ring that is coaxially fixed to the outside of the threaded lead screw, a containing groove plate that is slidingly connected to the inner side of the storage box, a support rod that is provided on the outside of the threaded lead screw, a pinion shaft rod that is rotationally connected to the inner side of the containing groove plate, a sliding lead screw that is fixedly connected to the inside of the containing groove plate, and a support member that is provided on the outside of the sliding lead screw.

[0009] Further, the number of worms is two, the front ends of the two worms are coaxially fixed with first belt pulleys, a speed reducer motor is fixedly installed on the front bottom of the storage box, the output end of the speed reducer motor is fixedly connected with the front end of one of the first belt pulleys, the number of worm gear shaft rings is four, and the bottoms of two worm gear shaft rings and the other two worm gear shaft rings are engaged with the outer sides of the two worms.

[0010] Further, the number of threaded lead screws is four, the threaded coil layers of two threaded lead screws and the other two threaded lead screws are symmetrical structures, a hinged block is threadedly connected to the outside of each threaded lead screw, and the number of support rods is four, the bottoms of the four support rods are respectively hinged to the tops of the four hinged blocks.

[0011] Further, vertical sliding groove structures are formed in the inner left wall and the inner right wall of the storage box, a bearing seat is fixedly installed on the top front side of the containing groove plate, an installation frame is rotationally connected to the inner side of the bearing seat, a digital display screen is fixedly installed on the inner side of the installation frame, and two number of round toothed discs are rotationally connected to the outside of the containing groove plate and close to the bearing seat.

[0012] Further, the pinion shaft rod includes a connecting rod located on the inner side of the containing groove plate, a spiral gear is fixedly connected to the left and right ends of the connecting rod, the two spiral gears are respectively engaged with the outer sides of the two round toothed discs, a rotating wheel is rotationally connected to the right side of the containing groove plate, a second belt pulley is fixedly connected to the outside of the rear end of the rotating wheel and the outside of the connecting rod, and the two second belt pulleys are drivingly connected through a belt.

[0013] Further, the support member includes a sliding table that is slidingly connected to the outside of the sliding lead screw, a first arm rod is rotationally connected to the top of the sliding table, a second arm rod is rotationally connected to the top inner side of the first arm rod, and a storage groove that is adapted to the second arm rod is formed in the inner side of the first arm rod.

[0014] Further, the outer side of the first arm lever close to the second arm lever is rotationally connected with two limiting gears, the bottom left side and the bottom right side of the second arm lever are coaxially fixed with the one side of the two limiting gears respectively, the outer side of the first arm lever is movably connected with a limiting gear ring, and the inner side of the limiting gear ring is provided with an inner tooth layer matched with the limiting gear.

[0015] Advantages

[0016] Compared with the prior art, the technical scheme has the following advantages:

[0017] 1. The hydrological monitoring data analysis device with a stacking structure is driven by the reduction motor to drive the first belt pulley, and the two first belt pulleys synchronously drive the two worms, and the four threaded leadscrews are driven to rotate by the worm meshing worm shaft ring, wherein the two threaded leadscrews and the other two threaded leadscrews drive the support rods to deflect, realize the lifting and stacking effect of the containing groove plates, and the storage box is used for storage protection.

[0018] 2. The hydrological monitoring data analysis device with a stacking structure is driven by the second belt pulley to drive the gear shaft rod, and the circular gear is driven by the pinion gear to control the angle adjustment of the digital display screen and the mounting frame, so that the stacking and storage of the digital display screen are facilitated. BRIEF DESCRIPTION OF DRAWINGS

[0019] Figure 1 It is a three-dimensional schematic view of the storage box structure of the utility model;

[0020] Figure 2 It is a three-dimensional schematic view of the storage box structure of the utility model; Figure 1 It is a top view of the perspective view;

[0021] Figure 3 It is a three-dimensional schematic view of the storage box structure of the utility model; Figure 2 It is a schematic view of the inner bottom wall structure of the storage box in the perspective view;

[0022] Figure 4 It is a schematic view of the containing groove plate structure in the perspective view; Figure 3 It is a schematic view of the containing groove plate structure in the perspective view;

[0023] Figure 5 It is a schematic view of the containing groove plate structure in the perspective view; Figure 4 It is a schematic view of the containing groove plate structure in the perspective view;

[0024] Figure 6 It is a schematic view of the containing groove plate structure in the perspective view; Figure 5 It is a schematic view of the containing groove plate structure in the perspective view;

[0025] In the figure: 1, storage box; 2, folding placement structure; 201, worm; 202, threaded screw; 203, worm gear collar; 204, accommodating groove plate; 205, support rod; 206, pinion shaft; 2061, connecting rod; 2062, spiral gear; 207, sliding screw; 208, support; 2081, sliding table; 2082, first arm rod; 2083, second arm rod; 2084, limit gear; 2085, limit gear ring; 3, first pulley; 4, speed reducer motor; 5, hinged block; 6, bearing seat; 7, digital screen; 8, round tooth disc; 9, second pulley. DETAILED DESCRIPTION

[0026] The technical solutions in the embodiments of the utility model will be clearly and completely described below with reference to the drawings in the embodiments of the utility model. Obviously, the described embodiments are only part of the embodiments of the utility model, rather than all the embodiments. Based on the embodiments in the utility model, all other embodiments obtained by those skilled in the art without creative labor fall within the scope of protection of the utility model.

[0027] Please refer to Figures 1-6 A hydrological monitoring data analysis device with a folding placement structure, comprising a storage box 1, the inner side of the storage box 1 is provided with a folding placement structure 2, the front end of two worms 201 is coaxially fixed with a first pulley 3, the front bottom of the storage box 1 is fixedly installed with a speed reducer motor 4, the outside of each threaded screw 202 is threadedly connected with a hinged block 5, the top front side of the accommodating groove plate 204 is fixedly installed with a bearing seat 6, the inner side of the mounting frame is fixedly installed with a digital screen 7, the outside of the accommodating groove plate 204 and close to the bearing seat 6 is rotatably connected with two round tooth discs 8, the rear end of the runner and the outside of the connecting rod 2061 are fixedly connected with a second pulley 9.

[0028] The folding placement structure 2 comprises a worm 201 rotatably connected with the inner bottom wall of the storage box 1, the inner bottom wall of the storage box 1 is rotatably connected with a threaded screw 202, the outside of the threaded screw 202 is coaxially fixed with a worm gear collar 203, the inner side of the storage box 1 is slidably connected with an accommodating groove plate 204, the outside of the threaded screw 202 is provided with a support rod 205, the inner side of the accommodating groove plate 204 is rotatably connected with a pinion shaft 206, the inside of the accommodating groove plate 204 is fixedly connected with a sliding screw 207, and the outside of the sliding screw 207 is provided with a support 208.

[0029] According to Figure 2 and Figure 3 As shown, the speed reducer motor 4 is started to drive one of the first pulleys 3, the two first pulleys 3 are connected by a belt drive, and the two first pulleys 3 are synchronously driven by the two worms 201, and the two worms 201 are engaged to drive two worm gear collars 203 and the other two worm gear collars 203.

[0030] According to Figure 2 and Figure 3 , two worm shaft rings 203 and the other two worm shaft rings 203 respectively drive two threaded lead screws 202 and the other two threaded lead screws 202, and the articulated blocks 5 on the two threaded lead screws 202 and the other two threaded lead screws 202 move towards or away from each other, at which time the support rod 205 drives the containing groove plate 204 to lift and stack.

[0031] According to Figure 4 , Figure 5 and Figure 6 , rotating the rotary wheel drives the pinion shaft 206 through the second pulley 9, engages the circular gear 8 through the pinion gear 2062, controls the angle adjustment of the digital screen 7 and the mounting frame, and facilitates the stacking of the digital screen 7.

[0032] At this time, as the angle of the digital screen 7 rises, the first arm 2082 and the second arm 2083 change the opening angle, and the limiting tooth ring 2085 is engaged with the limiting tooth ring 2085, thereby controlling the opening angle of the first arm 2082 and the second arm 2083. The angle of the digital screen 7 and the mounting frame is limited.

[0033] In summary, the hydrological monitoring data analysis device with a stacking structure, through the reduction motor 4 driving the first pulley 3, two first pulleys 3 synchronously driving two worms 201, through the worm 201 engaging the worm shaft ring 203 driving four threaded lead screws 202 rotating, two threaded lead screws 202 and the other two threaded lead screws 202 respectively driving the support rod 205 angle deflection, realizing the containing groove plate 204 lifting and stacking effect, using the storage box 1 for storage protection, rotating the rotary wheel drives the pinion shaft 206 through the second pulley 9, engages the circular gear 8 through the pinion gear 2062, controls the angle adjustment of the digital screen 7 and the mounting frame, and facilitates the stacking of the digital screen 7. The display board structure is exposed outside the support frame, which is easy to cause damage to the display board structure and affect use.

[0034] It is to be understood that the terminology used herein is for the purpose of describing particular embodiments only and is not intended to be limiting; it is not intended to exclude myriad other embodiments of the present application that other inventors can develop based on the same general inventive concepts embodied by the described embodiments. That is, although the present application is described in terms of particular embodiments and implementations, it is to be understood that the terminology used is for the purpose of descriptive clarity and that it is intended to be limited only by the words recited in the appended claims. The scope of the present application shall be limited only by the claims.

[0035] While the embodiments of the present application have been shown and described with respect to particular embodiments thereof, it will be understood by those skilled in the art that various changes in form and details can be made therein without departing from the spirit and scope of the application. Therefore, the scope of the application should not be limited by the embodiments, but should be defined only in accordance with the following claims and their equivalents.

Claims

1. A hydrological monitoring data analysis device with a stacked structure, comprising a storage box (1), characterized in that: The inner side of the storage box (1) is provided with a folding placement structure (2); The folding placement structure (2) comprises a worm (201) rotationally connected with the inner bottom wall of the storage box (1), the inner bottom wall of the storage box (1) is rotationally connected with a threaded lead screw (202), the outer portion of the threaded lead screw (202) is coaxially fixed with a worm gear collar (203), the inner side of the storage box (1) is slidingly connected with an accommodating groove plate (204), the outer portion of the threaded lead screw (202) is provided with a support rod (205), the inner side of the accommodating groove plate (204) is rotationally connected with a pinion shaft (206), the inner portion of the accommodating groove plate (204) is fixedly connected with a sliding lead screw (207), and the outer portion of the sliding lead screw (207) is provided with a support (208). 2.The hydrological monitoring data analysis device with a stacked structure according to claim 1, characterized in that: The number of the worms (201) is two, the front ends of the two worms (201) are coaxially fixed with first belt pulleys (3), the front face bottom of the storage box (1) is fixedly installed with a speed reducer motor (4), the output end of the speed reducer motor (4) is fixedly connected with the front end of one of the first belt pulleys (3), and the number of the worm gear collars (203) is four, wherein the bottoms of two worm gear collars (203) and the bottoms of the other two worm gear collars (203) are respectively engaged with the outer sides of the two worms (201). 3.The hydrological monitoring data analysis device with a stacked structure according to claim 1, characterized in that: The number of the threaded lead screws (202) is four, wherein the threaded coil layers of two threaded lead screws (202) and the threaded coil layers of the other two threaded lead screws (202) are symmetrical structures, the outer portions of the threaded lead screws (202) are all threadedly connected with hinged blocks (5), and the number of the support rods (205) is four, the bottoms of the four support rods (205) are respectively hingedly connected with the tops of the four hinged blocks (5).

4. The hydrological monitoring data analysis device with a stacked structure according to claim 1, characterized in that: The inner left wall and the inner right wall of the storage box (1) are both provided with vertical sliding groove structures, the top front side of the accommodating groove plate (204) is fixedly installed with a bearing seat (6), the inner side of the bearing seat (6) is rotationally connected with a mounting frame, the inner side of the mounting frame is fixedly installed with a digital display screen (7), and the outer portion of the accommodating groove plate (204) and the side close to the bearing seat (6) are rotationally connected with two circular toothed discs (8).

5. The hydrological monitoring data analysis device with a stacking structure according to claim 4, characterized in that: The pinion shaft (206) comprises a connecting rod (2061) located on the inner side of the accommodating groove plate (204), the left and right ends of the connecting rod (2061) are both fixedly connected with spiral gears (2062), the outer sides of the two spiral gears (2062) are respectively engaged with the outer sides of the two circular toothed discs (8), the right side of the accommodating groove plate (204) is rotationally connected with a rotating wheel, the rear end of the rotating wheel and the outer portion of the connecting rod (2061) are both fixedly connected with second belt pulleys (9), and the two second belt pulleys (9) are drivingly connected through a belt. 6.The hydrological monitoring data analysis device with a stacked structure of claim 1, wherein: The support (208) comprises a sliding table (2081) slidably connected with the outside of the sliding lead screw (207), the top of the sliding table (2081) is rotationally connected with a first arm rod (2082), the top inside of the first arm rod (2082) is rotationally connected with a second arm rod (2083), and the inside of the first arm rod (2082) is provided with a receiving groove matched with the second arm rod (2083).

7. The hydrological monitoring data analysis device with a stacked structure according to claim 6, characterized in that: The outside of the first arm rod (2082) and close to one side of the second arm rod (2083) are rotationally connected with two limiting gear wheels (2084), the bottom left side and the bottom right side of the second arm rod (2083) are coaxially fixed with one side of the two limiting gear wheels (2084) respectively, the outside of the first arm rod (2082) is movably connected with a limiting gear ring (2085), and the inside of the limiting gear ring (2085) is provided with an inner tooth layer matched with the limiting gear wheel (2084).

Citation Information

Patent Citations

  • Hydrological monitoring data analysis device with stacking structure

    CN220018583U