Meteorological perception intelligent tent bin linkage device

Through a weather-sensing intelligent tent linkage device, the opening and closing of horizontal and vertical roller shutters are controlled in real time, solving the problems of coal mine plant equipment being susceptible to corrosion and the harsh working environment for workers, and realizing intelligent and energy-saving management of equipment protection and worker safety.

CN120844757APending Publication Date: 2025-10-28CHINA UNIV OF MINING & TECH
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Patent Information

Application Number
CN202511026751.5
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-07-24
Publication Date
2025-10-28

AI Technical Summary

Technical Problem

In the open spaces between coal mine buildings, equipment is susceptible to erosion from rain and snow, and the working environment for workers is harsh. Existing sunshades affect ventilation and lighting on non-rainy or snowy days, and the protection of equipment and workers is not intelligent enough.

Method used

Design a weather-sensing intelligent tent linkage device that uses weather sensors to detect weather in real time and control the opening and closing of horizontal and vertical roller blinds to achieve automated protection. This includes drive components, photovoltaic power generation, and drainage systems to ensure that equipment and workers are effectively protected under different weather conditions.

Benefits of technology

To prevent equipment corrosion in rainy or snowy weather, reduce production costs, prevent workers from suffering from heatstroke, ensure ventilation and lighting, reduce manual operation, and meet the needs of green development and intelligentization.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention provides a meteorological sensing intelligent tent bin linkage device which comprises a transverse assembly, a vertical assembly, a driving assembly and a meteorological sensing assembly, the transverse assembly comprises a transverse roller shutter, two sliding rails and an auxiliary part, the two sliding rails are transversely fixed to eaves of two warehouses respectively, the transverse roller shutter is located between the two sliding rails, and the transverse roller shutter is located between the two sliding rails; the auxiliary part is located at the left ends of the two sliding rails, the vertical assembly comprises a vertical roller shutter and two sliding grooves, the two sliding grooves are vertically fixed to the walls of the two warehouses respectively, the vertical roller shutter is located between the two sliding grooves, the driving assembly comprises a first motor, a transverse winding drum and a vertical winding drum, the transverse winding drum is connected with the transverse roller shutter, the vertical winding drum is connected with the vertical roller shutter, and the first motor is connected with the transverse winding drum. An output shaft of the first motor is connected with the transverse winding drum and the vertical winding drum, and the weather sensing assembly is used for detecting weather. According to the invention, meteorological data can be collected in real time, the roller shutter is controlled to unfold to block rainwater or shade in rainy and snowy days or sunny days, and the roller shutter is controlled to contract in shady and cool days.
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Description

Technical Field

[0001] This invention belongs to the field of electromechanical equipment for building exterior walls, and provides a weather-sensing intelligent tent linkage device. Background Technology

[0002] In coal mines, various workshops specifically built to meet or fulfill certain needs are ubiquitous, such as comprehensive maintenance warehouses, mine car repair workshops, electrical equipment repair workshops, and warehouses for various equipment and spare parts. These workshops each have distinct functions, operating independently and playing different roles. However, given the limited land utilization and high land costs in coal mines, the open spaces between these adjacent workshops are also utilized. Concrete is laid, drainage ditches are constructed, and these spaces are used to store large quantities of new or under-repair mining equipment, such as conveyor belt frames, conveyor belts, hydraulic pressure supports, and discarded old equipment. This part of the mining equipment has two main characteristics: first, it is made of steel, which is prone to rust when exposed to water; second, it is mostly low-value items and numerous. Under the natural conditions of summer rain and winter snow, the surface steel of this mining equipment will be continuously corroded over time, accelerating the aging process and shortening its expected lifespan, thus continuously increasing the production costs of the coal mine. This situation demands serious attention. In addition, workers frequently perform loading, unloading, and maintenance work in the open areas between the factory buildings. Their working environment is extremely harsh, as sudden downpours can disrupt normal operations, and the intense heat can cause workers to suffer from heatstroke. Currently, rain and sunshades are usually erected between the two factory buildings. However, on non-rainy, non-snowy, and non-hot days, the sunshades can cause poor ventilation and stuffiness in the work area between the two factory buildings, and also affect lighting. Summary of the Invention

[0003] To address the aforementioned technical problems, this invention provides a weather-sensing intelligent tent linkage device that can collect weather data in real time. In rainy, snowy, or sunny weather, it can control the horizontal and vertical roller blinds to unfold to block rain or provide shade, and in cloudy weather, it can control the horizontal and vertical roller blinds to retract.

[0004] The technical solution of the present invention includes: The horizontal component includes a horizontal roller blind, two slide rails, and an auxiliary component. The two slide rails are fixed to the eaves of the two warehouses respectively and are arranged horizontally. The horizontal roller blind is located between the two slide rails and slides with the slide rails. The auxiliary component is located at the left end of the two slide rails and is connected to the horizontal roller blind. Pulling the horizontal roller blind will shift it to the left.

[0005] The vertical assembly includes a vertical roller shutter and two tracks, which are fixed to the walls of two warehouses respectively and are vertically arranged. The vertical roller shutter is located between the two tracks and is fitted with the tracks with a clearance.

[0006] The drive assembly is located at the right end of the slide rail and at the upper end of the slide groove. The drive assembly includes a first motor, a horizontal drum and a vertical drum. The horizontal drum and the vertical drum are both connected between the two warehouses. The horizontal drum is connected to the horizontal roller shutter, and the vertical drum is connected to the vertical roller shutter. The output shaft of the first motor is connected to the horizontal drum and the vertical drum respectively.

[0007] A weather sensing component is used to detect weather. The weather sensing component includes a weather detector and a controller. The controller is connected to the weather detector and the first motor, respectively.

[0008] Furthermore, the auxiliary components include a crossbeam, two pulley blocks, and a second motor. The two pulley blocks are located at both ends of the crossbeam and are slidably connected to two slide rails respectively. The second motor is fixed on the crossbeam and connected to the pulley blocks. The second motor is also connected to the controller. The crossbeam is connected to the horizontal roller shutter.

[0009] Furthermore, the auxiliary components also include a first storage battery, which is connected to the second motor.

[0010] Furthermore, it also includes a photovoltaic power generation device, which is connected to the first motor, the second motor, the weather detector, and the controller.

[0011] Furthermore, it also includes a drainage component. The two slide rails have a height difference, and the drainage component is located below the lower slide rail. The drainage component includes a water collection tank and a drain pipe. The water collection tank is located below the slide rail, and the drain pipe is connected to the water collection tank.

[0012] Furthermore, both the horizontal and vertical roller blinds have curved blades.

[0013] Furthermore, a counterweight is provided at the lower end of the vertical roller shutter.

[0014] Furthermore, the widths of the horizontal and vertical drums are the same.

[0015] Furthermore, the rotation ratio between the output shaft of the first motor and the horizontal roller drum and the rotation ratio between the output shaft of the first motor and the vertical roller drum may be the same or different; when the length of the horizontal roller blind is equal to the length of the vertical roller blind, the two rotation ratios are the same; when the length of the horizontal roller blind is greater than the length of the vertical roller blind, the rotation ratio between the output shaft of the first motor and the horizontal roller drum is greater than the rotation ratio between the output shaft of the first motor and the vertical roller drum; when the length of the horizontal roller blind is less than the length of the vertical roller blind, the rotation ratio between the output shaft of the first motor and the horizontal roller drum is less than the rotation ratio between the output shaft of the first motor and the vertical roller drum.

[0016] The technical solution provided by the embodiments of the present invention has the following advantages compared with the prior art: In operation, the weather detector monitors the weather and feeds the results back to the controller. The controller then makes a judgment based on the feedback data. On cloudy days, the controller activates the first motor, which drives the horizontal and vertical rollers to rotate. The horizontal roller blind winds onto the horizontal roller, and the vertical roller blind winds onto the vertical roller, leaving the open space between the two warehouses unobstructed. On rainy, snowy, or sunny days, the controller activates the first motor, which rotates in the opposite direction, driving the horizontal and vertical rollers to rotate. The horizontal roller blind, aided by auxiliary components, detaches from the horizontal roller and is laid along the guide rail between the two warehouses. The vertical roller blind, under gravity, detaches from the vertical roller and is laid along the chute between the two warehouses, providing shade over the open space between them. Compared to existing technologies, this invention prevents rain and snow from corroding equipment and materials, reducing production costs, and avoids heatstroke among employees on sunny days. It also allows for ventilation on cloudy days and prevents the sunshade from causing poor ventilation and stuffiness in the working area between the two workshops on non-rainy, snowy, or hot days, thus avoiding insufficient lighting.

[0017] Other advantages, objectives and features of the present invention will become apparent in part from the following description, and in part from those skilled in the art through study and practice of the invention. Attached Figure Description

[0018] To more clearly illustrate the technical solutions in the embodiments of the present invention or the prior art, the drawings used in the description of the embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are only some embodiments of the present invention. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.

[0019] Figure 1 This is a schematic diagram of the overall structure of the intelligent tent linkage device according to one embodiment of the present invention during use; Figure 2 This is a schematic diagram of the overall structure of the intelligent tent linkage device according to one embodiment of the present invention. Figure 1 ; Figure 3 for Figure 2 Enlarged view of point A in the middle; Figure 4 for Figure 2 Enlarged view at point B in the middle; Figure 5 This is a schematic diagram of the overall structure of the intelligent tent linkage device according to one embodiment of the present invention. Figure 2 ; Figure 6 for Figure 5 Enlarged view at point D; Figure 7 This is a schematic diagram of the overall structure of the intelligent tent linkage device according to one embodiment of the present invention. Figure 3; Figure 8 for Figure 7 Enlarged view at point C; Figure 9 for Figure 7 Enlarged view at point E in the middle; Figure 10 This is a diagram showing the relationships between the components in one embodiment of the present invention.

[0020] Figure label: 1. Warehouse; 2. Horizontal component; 3. Vertical component; 4. Drive component; 5. Horizontal roller shutter; 6. Slide rail; 7. Vertical roller shutter; 8. Slide groove; 9. First motor; 10. Horizontal roller drum; 11. Vertical roller drum; 12. Weather detector; 13. Crossbeam; 14. Pulley block; 15. Second motor; 16. Photovoltaic power generation device; 17. Water collection tank; 18. Drainage pipe. Detailed Implementation

[0021] The following detailed description of a specific embodiment of the present invention is provided in conjunction with the accompanying drawings. However, it should be understood that the scope of protection of the present invention is not limited to the specific embodiment.

[0022] In the description of this invention, it should be understood that the terms "center," "longitudinal," "lateral," "length," "width," "thickness," "upper," "lower," "front," "rear," "left," "right," "vertical," "horizontal," "top," "bottom," "inner," "outer," "axial," "radial," and "circumferential" indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings. They are only for the convenience of describing the technical solution of this invention and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation. Therefore, they should not be construed as limitations on this invention.

[0023] In the description of the embodiments of the present invention, unless otherwise stated, "a plurality of" means two or more.

[0024] like Figures 1 to 10 As shown, the present invention provides a weather-sensing intelligent tent linkage device, comprising: The horizontal component 2 includes a horizontal roller blind 5, two slide rails 6 and an auxiliary component. The two slide rails 6 are fixed on the eaves of the two warehouses 1 respectively, and the slide rails 6 are arranged horizontally. The horizontal roller blind 5 is located between the two slide rails 6, and the horizontal roller blind 5 slides with the slide rails 6. The auxiliary component is located at the left end of the two slide rails 6 and is connected to the horizontal roller blind 5. Pulling the horizontal roller blind 5 will shift it to the left.

[0025] The vertical component 3 includes a vertical roller shutter 7 and two slide rails 8. The two slide rails 8 are fixed to the walls of the two warehouses 1 respectively, and the slide rails 8 are set vertically. The vertical roller shutter 7 is located between the two slide rails 8, and the vertical roller shutter 7 is fitted with the slide rail 6 with a clearance.

[0026] The drive assembly 4 is located at the right end of the slide rail 6 and at the upper end of the slide groove 8. The drive assembly 4 includes a housing, a first motor 9, a horizontal roller 10 and a vertical roller 11. The horizontal roller 10 and the vertical roller 11 are both connected between the two warehouses 1. The horizontal roller 10 is connected to the horizontal roller blind 5, and the vertical roller 11 is connected to the vertical roller blind 7. The output shaft of the first motor 9 is connected to the horizontal roller 10 and the vertical roller 11 respectively. The first motor 9, the horizontal roller 10 and the vertical roller 11 are all located inside the housing.

[0027] A weather sensing component is used to detect weather. The weather sensing component includes a weather detector 12 and a controller. The controller is connected to the weather detector 12 and the first motor 9, respectively.

[0028] In use, the weather detector 12 detects the weather and feeds the results back to the controller. The controller makes a judgment based on the feedback data. When it is cloudy, the controller controls the first motor 9 to work. The first motor 9 drives the horizontal roller 10 and the vertical roller 11 to rotate. The horizontal roller blind 5 is wound on the horizontal roller 10, and the vertical roller blind 7 is wound on the vertical roller 11, so that the open space between the two warehouses 1 is unobstructed. When it is rainy, snowy, or sunny, the controller controls the first motor 9 to work. The first motor 9 rotates in the opposite direction, driving the horizontal roller 10 and the vertical roller 11 to rotate. The horizontal roller blind 5 leaves the horizontal roller 10 under the action of the auxiliary parts and is laid between the two warehouses 1 along the slide rail 6. The vertical roller blind 7 leaves the vertical roller 11 under the action of gravity and is laid between the two warehouses 1 along the slide groove 8, so that the open space between the two warehouses 1 is covered. Compared with existing technologies, this invention can prevent rain and snow from corroding equipment and materials, reduce production costs, prevent employees from suffering heatstroke from sun exposure on sunny days, open for ventilation on shady days, and prevent the sunshade from causing poor ventilation and stuffiness in the working area between two factory buildings and affecting lighting on non-rainy, snowy, and hot days.

[0029] Specifically: Steel equipment stored in the open areas of coal mine buildings is susceptible to rainwater corrosion, and manual loading, unloading, and maintenance are greatly affected by weather. The horizontal component 2 is fixed to the eaves of warehouse 1 via two sliding rails 6, providing a stable sliding track for the horizontal roller shutter 5. This allows the horizontal roller shutter 5 to move flexibly along the horizontal span of the building, covering the entire open area between the two warehouses 1. The sliding cooperation design of the horizontal roller shutter 5 and the sliding rails 6 allows for rapid unfolding when needed, forming a top shielding structure that effectively blocks rainwater and snow from directly falling on the equipment surface, preventing steel from rusting due to long-term dampness, thereby extending the expected lifespan of the equipment and reducing the replacement and maintenance costs of coal mine equipment.

[0030] Specifically: When coal mine equipment is stored in the open, in addition to the top being affected by rainwater, the sides are also susceptible to damage from slanting rain and snow. Furthermore, workers lack vertical protection during loading, unloading, and maintenance. The vertical component 3, by incorporating vertical grooves 8 into the walls of warehouse 1, allows the vertical roller shutter 7 to slide vertically along the wall, forming a three-dimensional protective system with the horizontal roller shutter 5. The vertical roller shutter 7, located between the two grooves 8 and with a clearance fit to the slide rail 6, ensures stable vertical movement of the horizontal roller shutter 5 without affecting its sliding trajectory. The combination of these two components creates a closed or semi-closed space around the open area. For example, during sudden downpours, the vertical roller shutter 7 lowers to prevent rainwater from splashing in from the sides, avoiding corrosion of the steel on the sides of the equipment; in hot weather, the vertical roller shutter 7 can block direct sunlight, reducing the surface temperature of the equipment and minimizing the risk of workers being exposed to prolonged sunlight. In addition, the installation of the vertical roller shutter 7 does not occupy ground space, does not affect the loading, unloading and transportation of large equipment, and can be flexibly adjusted in height according to operational needs. While protecting the equipment, it creates a more comfortable working environment for workers, reduces work interruptions caused by severe weather, and improves the continuity and safety of coal mine production.

[0031] Specifically, the drive assembly 4 synchronously drives the horizontal roller 10 and the vertical roller 11 via the first motor 9, realizing the automated opening and closing of the horizontal roller shutter 5 and the vertical roller shutter 7, solving the problems of low efficiency and slow response of traditional manual operation. The first motor 9, as the power core, has its output shaft connected to the two rollers and can be quickly started according to controller commands, ensuring timely opening or closing of the horizontal roller shutter 5 and the vertical roller shutter 7 in case of weather changes (such as rain or wind). Both the horizontal roller 10 and the vertical roller 11 are connected between the two warehouses 1, allowing the horizontal roller shutter 5 to span large open spaces with a wide coverage area. The roller structure also reduces the space occupied when storing the horizontal roller shutter 5, keeping the factory area tidy. Furthermore, the automated design of the drive assembly 4 reduces manual intervention, especially at night or during unattended periods, still enabling intelligent control through weather sensors, providing 24-hour equipment safety protection. This aligns with the trend of intelligent development in coal mines, reducing labor costs while improving the reliability and timeliness of equipment protection.

[0032] Specifically, the weather sensor component is the core of the entire system's intelligence. Weather detector 12 monitors weather parameters (such as rainfall, sunlight, temperature, and wind speed) in real time. The controller converts the detected signals into control commands for the drive component 4, achieving closed-loop automatic control of "detection-response-protection." For example, when weather detector 12 detects rainfall, the controller immediately starts the first motor 9, driving the horizontal and vertical roller blinds 7 to quickly unfold, forming a complete sheltered space in a short time to prevent rainwater from contacting the equipment. When excessive sunlight is detected, the horizontal roller blind 5 automatically unfolds to provide shade, preventing the equipment from aging prematurely due to sun exposure and reducing the risk of heatstroke for workers. No manual weather assessment is required, eliminating protection delays caused by human error. Especially in the event of sudden severe weather (such as short-term heavy rainfall), it can respond quickly and minimize equipment damage. In addition, the linkage between the controller, motor, and auxiliary components allows the system to adjust its protection strategy according to different weather conditions (such as deploying only the top horizontal roller shutter 5 for sun protection, or deploying the vertical roller shutter 7 simultaneously for wind and rain protection), thereby optimizing resource allocation. This not only improves the protective effect of the equipment but also reduces energy consumption, which aligns with the concept of green development and provides technical support for creating an intelligent and energy-saving plant environment in coal mines.

[0033] In the embodiment provided by the present invention, the auxiliary components include a crossbeam 13, two pulley groups 14 and a second motor 15. The two pulley groups 14 are located at both ends of the crossbeam 13 and are slidably connected to two slide rails 6 respectively. The second motor 15 is fixed on the crossbeam 13 and is connected to the pulley groups 14. The second motor 15 is connected to the controller. The crossbeam 13 is connected to the horizontal roller shutter 5.

[0034] Specifically: the sliding engagement of the pulley block 14 on the slide rail 6 can reduce the moving resistance of the horizontal roller shutter 5. The second motor 15 drives the pulley block 14 to move the crossbeam 13, making the opening and closing of the horizontal roller shutter 5 more stable and faster. The moving distance can be precisely controlled by the controller to meet the partial shading needs in different working scenarios (such as only covering part of the equipment).

[0035] The auxiliary component connects to and pulls the horizontal roller shutter 5, reducing manual labor intensity, especially in inclement weather where manual operation is unnecessary, avoiding interference from heavy rain, direct sunlight, and other environmental factors. For example, when the auxiliary component is motor-driven, the opening and closing of the horizontal roller shutter 5 can be remotely or automatically controlled via a controller, improving work efficiency while ensuring the equipment is protected under all weather conditions, meeting the dual needs of cost reduction, efficiency improvement, and safe production in coal mines.

[0036] It should be noted that the pulley block 14 includes at least two pulleys to ensure the stability and synchronization of both sides of the crossbeam during sliding.

[0037] In the embodiments provided by the present invention, the auxiliary component further includes a first storage battery, which is connected to the second motor 15.

[0038] The addition of the first battery solves the power problem during power outages or mine grid failures, ensuring that the auxiliary components can still be powered by the first battery to drive the horizontal roller shutter 5 in the event of a sudden power outage, preventing the equipment from being exposed to severe weather due to power interruption. For example, during a power outage at night in winter, the first battery can support the operation of the second motor 15 for several hours, ensuring that the horizontal roller shutter 5 remains closed during snowfall, continuously protecting the equipment. The multiple design schemes of the auxiliary components not only improve the system's environmental adaptability but also enhance its reliability, providing multiple layers of protection for equipment under complex working conditions in coal mines.

[0039] In the embodiments provided by the present invention, a photovoltaic power generation device 16 is also included, which is connected to the first motor 9, the second motor 15, the weather detector 12 and the controller respectively.

[0040] Specifically, the photovoltaic power generation device 16 converts solar energy into electrical energy through solar panels, powering the first motor 9, the second motor 15, the weather detector 12, and the controller, forming an independent energy supply system. Coal mine areas typically have open spaces, and facilities such as photovoltaic parking sheds are already in use within the industrial park. The photovoltaic power generation device 16, combined with existing facilities, further utilizes rooftops and open spaces to install solar panels, achieving energy self-sufficiency. As a clean and renewable energy source, solar energy reduces the coal mine's dependence on the traditional power grid, lowering energy costs, especially in high-electricity-price or remote mining areas, where long-term operation can save significant amounts of electricity. Simultaneously, the photovoltaic power generation device 16 operates without pollutant emissions, aligning with the company's green development philosophy, enhancing its environmental image, and contributing to becoming a benchmark enterprise. Furthermore, the integration of the photovoltaic system with the equipment protection system allows the entire device to operate stably even without an external power source, enhancing the system's independence and anti-interference capabilities. Even in remote mining areas or temporary work sites, solar energy can continuously protect the equipment, achieving a win-win situation for both economic and environmental benefits.

[0041] The photovoltaic power generation device 16 includes solar panels, a second battery, and an inverter. The solar panels convert sunlight into electrical energy, which is stored in the second battery. Each power-consuming terminal is connected to the second battery via the inverter. Under the control of the controller, the electrical energy is delivered to each power-consuming terminal.

[0042] Furthermore, the photovoltaic power generation device 16 is located on the housing, and the housing is provided with a charging interface connected to the second battery. When the auxiliary component moves away from the photovoltaic power generation device 16, the first battery is separated from the charging interface. When the auxiliary component moves towards the photovoltaic power generation device 16 to the charging interface position, the first battery is connected to the charging interface, thereby charging the first battery.

[0043] In the embodiments provided by the present invention, a drainage component is also included. The two slide rails 6 have a height difference. The drainage component is located below the lower slide rail 6. The drainage component includes a water collection tank 17 and a drain pipe 18. The water collection tank 17 is located below the slide rail 6, and the drain pipe 18 is connected to the water collection tank 17.

[0044] Specifically: In coal mine areas, concrete is laid in open spaces, and drainage ditches are installed. However, traditional drainage systems are prone to water accumulation due to blockages or improper slope design, especially during heavy rain. This water can submerge the bottom of equipment, exacerbating corrosion. The drainage system addresses this by using a sliding rail 6 with a height difference, allowing rainwater to flow naturally to the lower rail. The water collection trough 17 below quickly collects the rainwater, which is then discharged into the main drainage system of the mine through the drainage pipe 18. This prevents water from accumulating under the horizontal roller shutter 5 or in the equipment storage area. The height difference design of the sliding rail 6 conforms to fluid mechanics principles, guiding rainwater flow in an orderly manner, reducing rainwater accumulation on the surface of the horizontal roller shutter 5, lowering the water pressure on the horizontal roller shutter 5, and extending its service life. The combination of the water collection trough 17 and the drainage pipe 18 is simple and practical, allowing for regular cleaning and maintenance to prevent blockages and ensure smooth drainage. For example, during continuous rainfall, the drainage system can promptly drain rainwater, keeping the bottom of the equipment dry, preventing steel parts from rusting due to prolonged soaking, and preventing workers from slipping on wet surfaces, thus improving the working environment. In addition, the drainage components, together with the horizontal and vertical roller shutters 7, form a dual protection of "blocking and drainage", which blocks rainwater from contacting the equipment at the source, further improving the equipment protection effect and reducing maintenance costs and downtime losses caused by equipment corrosion in coal mines.

[0045] In the embodiments provided by the present invention, the blades of both the horizontal roller blind 5 and the vertical roller blind 7 are arc-shaped structures.

[0046] The curved blade design of both the horizontal roller blind 5 and the vertical roller blind 7 offers both functional and structural advantages. From a structural mechanics perspective, the curved surface of the blades can disperse external pressure (such as snow accumulation and strong winds), enhancing the deformation resistance of the horizontal roller blind 5. Compared to flat blades, the curved structure can withstand greater loads, reducing the risk of blades denting or breaking due to external forces and extending the service life of the horizontal roller blind 5. In terms of protection, the convex direction of the curved blades guides rainwater to slide quickly down the curved surface, preventing rainwater from accumulating on the blade surface or seeping into gaps. Especially in slanted rain, the curved structure effectively blocks rainwater splashing, improving the sealing performance of the shading. Furthermore, the streamlined design of the curved blades reduces wind resistance, minimizing the impact of strong winds on the horizontal roller blind 5, maintaining stability in windy weather, and preventing the horizontal roller blind 5 from falling off or the track 6 from being damaged due to violent shaking. For example, during summer rainstorms, the curved structure accelerates rainwater drainage, preventing water accumulation and weight gain on the blades, ensuring smooth opening and closing of the horizontal roller blind 5. The design details of the curved blades, starting with micro-structural optimization, significantly improve the durability and protective performance of the horizontal roller blind 5, reflecting the meticulous consideration of the technical solution in actual working conditions.

[0047] In the embodiments provided by the present invention, a counterweight is provided at the lower end of the vertical roller blind 7.

[0048] Specifically, the counterweight at the lower end of the vertical roller blind 7 ensures the horizontal roller blind 5 remains vertically stable when hanging down, preventing it from swaying or shifting due to wind, equipment loading / unloading collisions, etc., thus forming a tight vertical barrier. The weight of the counterweight is rationally designed to overcome the friction of the slide rail 8, allowing the horizontal roller blind 5 to hang naturally, without placing an excessive load on the drive assembly 4. For example, in windy weather, the counterweight can counteract the effect of lateral wind on the horizontal roller blind 5, preventing it from being blown up or tilted, and ensuring that rainwater and dust cannot enter from the bottom of the horizontal roller blind 5. When workers are loading or unloading equipment, even if they collide with the horizontal roller blind 5, the stabilizing effect of the counterweight can reduce the swaying of the horizontal roller blind 5, avoiding interference or safety hazards to the workers. In addition, the counterweight ensures that the vertical roller blind 7 is evenly wound on the drum when retracted, preventing wrinkles or jamming of the horizontal roller blind 5 due to uneven force, and improving the smoothness of system operation. As a simple yet effective auxiliary component, the counterweight solves the key problem of vertical stability of the vertical roller shutter 7, ensuring that it can reliably play a protective role under various working conditions. Together with the horizontal roller shutter 5, it forms a complete three-dimensional protective space, providing all-round protection for equipment and workers.

[0049] In the embodiments provided by the present invention, the widths of the horizontal roller 10 and the vertical roller 11 are the same. The rotation ratio between the output shaft of the first motor 9 and the horizontal roller 10 and the rotation ratio between the output shaft of the first motor 9 and the vertical roller 11 may be the same or different; when the length of the horizontal roller blind 5 is equal to the length of the vertical roller blind 7, the two rotation ratios are the same; when the length of the horizontal roller blind 5 is greater than the length of the vertical roller blind 7, the rotation ratio between the output shaft of the first motor 9 and the horizontal roller 10 is greater than the rotation ratio between the output shaft of the first motor 9 and the vertical roller 11; when the length of the horizontal roller blind 5 is less than the length of the vertical roller blind 7, the rotation ratio between the output shaft of the first motor 9 and the horizontal roller 10 is less than the rotation ratio between the output shaft of the first motor 9 and the vertical roller 11.

[0050] Specifically, the design of the horizontal roller 10 and vertical roller 11 having the same width simplifies the mechanical structure of the drive assembly 4, facilitates manufacturing and subsequent maintenance, and reduces parts procurement and inventory costs. Simultaneously, rollers of the same size, combined with different rotation ratios, can flexibly adapt to horizontal and vertical roller blinds 7 of varying lengths, ensuring synchronous operation under motor drive. The differentiated rotation ratio design (adjusted according to the length of the horizontal roller blind 5) is the core of system coordination: when the horizontal roller blind 5 and vertical roller blind 7 are of the same length, the same rotation ratio ensures that they unfold or retract synchronously, avoiding misalignment of the horizontal roller blind 5 due to speed differences; when the horizontal roller blind 5 is longer, increasing the rotation ratio between the motor output shaft and the horizontal roller 10 accelerates the unfolding and retraction speed of the horizontal roller blind 5, allowing it to complete its action in the same time as the shorter vertical roller blind 7, and vice versa. This precise transmission design ensures that regardless of the span and height of the open space, the horizontal roller blind 5 system can work efficiently to form a complete shielding space, avoiding protective gaps caused by lag in the movement of the horizontal roller blind 5 in one direction. For example, in a long and narrow open space, the length of the horizontal roller shutter 5 is greater than that of the vertical roller shutter 7. By increasing the rotation ratio of the horizontal roller 10, both can reach the designated position simultaneously, ensuring that top and side protection are completed synchronously and improving system response efficiency. The combination of adjustable rotation ratio and standardized roller size ensures both the versatility of the system and adaptability to individual working conditions, reflecting the balance between practicality and flexibility in the technical solution.

[0051] It should be noted that, in this document, the terms "comprising," "including," or any other variations thereof are intended to cover non-exclusive inclusion, such that a process, method, article, or apparatus that comprises a list of elements includes not only those elements but also other elements not expressly listed, or elements inherent to such a process, method, article, or apparatus. Without further limitation, an element defined by the phrase "comprising one..." does not exclude the presence of other identical elements in the process, method, article, or apparatus that includes that element.

[0052] Although embodiments of the present invention have been disclosed above, they are not limited to the applications listed in the specification and embodiments. It can be applied to various fields suitable for the present invention. Other modifications can be readily implemented by those skilled in the art. Therefore, without departing from the general concept defined by the claims and their equivalents, the present invention is not limited to the specific details and examples shown and described herein.

Claims

1. A weather-sensing intelligent tent linkage device, characterized in that, include: The horizontal component (2) includes a horizontal roller blind (5), two slide rails (6) and an auxiliary component. The two slide rails (6) are respectively fixed horizontally on the eaves of the two warehouses (1). The horizontal roller blind (5) is located between the two slide rails (6) and the horizontal roller blind (5) is slidably engaged with the slide rails (6). The auxiliary component is located at the left end of the two slide rails (6) and is connected to the horizontal roller blind (5). Pulling the horizontal roller blind (5) to move it to the left. The vertical assembly (3) includes a vertical roller shutter (7) and two slide rails (8), the two slide rails (8) are respectively vertically fixed on the walls of the two warehouses (1), the vertical roller shutter (7) is located between the two slide rails (8), and the vertical roller shutter (7) is in clearance fit with the slide rail (6); The drive assembly (4) is located at the right end of the slide rail (6) and at the upper end of the slide groove (8). The drive assembly (4) includes a first motor (9), a horizontal roller (10) and a vertical roller (11). The horizontal roller (10) and the vertical roller (11) are connected between the two warehouses (1). The horizontal roller (10) is connected to the horizontal roller blind (5), and the vertical roller (11) is connected to the vertical roller blind (7). The output shaft of the first motor (9) is connected to the horizontal roller (10) and the vertical roller (11) respectively. A weather sensing component for detecting weather, the weather sensing component includes a weather detector (12) and a controller, the controller being connected to the weather detector (12) and a first motor (9) respectively.

2. The intelligent tent linkage device for weather sensing as described in claim 1, characterized in that, The auxiliary components include a crossbeam (13), two pulley sets (14) and a second motor (15). The two pulley sets (14) are located at both ends of the crossbeam (13) and are slidably connected to two slide rails (6) respectively. The second motor (15) is fixed on the crossbeam (13) and is connected to the pulley sets (14). The second motor (15) is connected to the controller. The crossbeam (13) is connected to the horizontal roller shutter (5).

3. The intelligent tent linkage device for weather sensing as described in claim 2, characterized in that, The auxiliary component also includes a first storage battery, which is connected to the second motor (15).

4. The intelligent tent linkage device for weather sensing as described in claim 2, characterized in that, It also includes a photovoltaic power generation device (16), which is connected to a first motor (9), a second motor (15), a weather detector (12) and a controller.

5. The intelligent tent linkage device for weather sensing as described in claim 1, characterized in that, It also includes a drainage assembly, and the two slide rails (6) have a height difference; The drainage components are located below the lower slide rail (6). The drainage components include a water collection tank (17) and a drain pipe (18). The water collection tank (17) is located below the slide rail (6), and the drain pipe (18) is connected to the water collection tank (17).

6. The intelligent tent linkage device for weather sensing as described in claim 5, characterized in that, The blades of both the horizontal roller blind (5) and the vertical roller blind (7) are arc-shaped.

7. The intelligent tent linkage device for weather sensing as described in claim 1, characterized in that, The lower end of the vertical roller shutter (7) is provided with a counterweight.

8. The intelligent tent linkage device for weather sensing as described in claim 1, characterized in that, The horizontal roll (10) and the vertical roll (11) have the same width.

9. The intelligent tent linkage device for weather sensing as described in claim 8, characterized in that, The rotation ratio of the output shaft of the first motor (9) to the horizontal drum (10) and the rotation ratio of the output shaft of the first motor (9) to the vertical drum (11) are the same or different; When the length of the horizontal roller blind (5) is equal to the length of the vertical roller blind (7), the two rotation ratios are the same; When the length of the horizontal roller blind (5) is greater than the length of the vertical roller blind (7), the rotation ratio of the output shaft of the first motor (9) to the horizontal roller (10) is greater than the rotation ratio of the output shaft of the first motor (9) to the vertical roller (11). When the length of the horizontal roller blind (5) is less than the length of the vertical roller blind (7), the rotation ratio of the output shaft of the first motor (9) to the horizontal roller (10) is less than the rotation ratio of the output shaft of the first motor (9) to the vertical roller (11).