Compression-resistant structure of plane door plate
By linking the guide plate, flow channel, adjusting door panel and telescopic component, and combining the design of magnetic components and elastic components, the problem of deformation and damage of flat door panels under high wind pressure is solved, realizing rapid wind pressure dispersion and automatic adjustment, and improving the door panel's pressure resistance and stability.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- WUXI FEILONG DOOR IND CO LTD
- Filing Date
- 2025-03-14
- Publication Date
- 2026-05-01
AI Technical Summary
Flat door panels are prone to deformation or damage when exposed to high wind pressure. Conventional wavy fixing settings cannot quickly disperse the pressure, leading to damage.
The design employs guide plates and flow channels, combined with the linkage structure of the adjustable door panel and telescopic components. It utilizes the buffering function of magnetic components and elastic elements to disperse wind pressure and automatically adjust the position of the door panel.
It effectively disperses wind pressure, improves the door panel's pressure resistance, reduces the risk of deformation and damage, and enhances the stability and adaptability of the structure.
Smart Images

Figure CN224187436U_ABST
Abstract
Description
A flat door panel compression-resistant structure Technical Field
[0001] This utility model relates to the field of pressure-resistant technology for flat door panels, specifically a pressure-resistant structure for flat door panels. Background Technology
[0002] Flat door panels are prone to deformation or damage when exposed to high wind pressure due to their relatively simple structure and lack of reinforcing ribs or other strengthening structures.
[0003] To prevent door panels from deforming or being damaged, components are usually installed on the door panels to disperse wind pressure. However, this method is relatively conventional, and the wavy design is fixed, so the pressure is not dispersed quickly enough. Under strong wind pressure, it is still easy to be damaged. Based on this, this application provides a flat door panel pressure-resistant structure. Summary of the Invention
[0004] To address the shortcomings of existing technologies, this utility model provides a planar door panel pressure-resistant structure, which solves the problem that in conventional wave-shaped designs, due to their fixed installation, pressure dispersion is not rapid enough, and damage is still likely to occur under strong wind pressure.
[0005] The present invention relates to a flat door panel anti-compression structure, comprising a flat door panel for support, wherein the flat door panel includes a door frame, and one or more guide plates arranged in a linear array are installed on the inner side of the door frame for fixing the door frame.
[0006] One side of the guide plate is flat, and the two sides of the plane are inclined downward at a preset angle.
[0007] The guide plate has one or more guide grooves arranged in a linear array on its plane to disperse the pressure of the wind.
[0008] As a further improvement of this utility model, an inner cavity is provided on the inner side of the door frame, and an adjustable door panel is provided on both sides of the inner cavity on one side of the guide plate, and the adjustable door panel is slidably connected to one side of the guide plate.
[0009] As a further improvement of this utility model, a set of telescopic members is provided on the inner side of the two sets of adjustable door panels, and a positioning rod is provided between each two sets of telescopic members for fixing the adjustable door panels.
[0010] As a further improvement of this utility model, the adjustable door panel includes a plate body, one side of which is fixed to one end of the telescopic member.
[0011] As a further improvement of this utility model, the telescopic component includes a cylindrical body, and a set of magnetic components is provided on the inner side of the cylindrical body. Elastic components are provided on both sides of the magnetic components.
[0012] As a further improvement of this utility model, a telescopic component is provided on the inner side of the cylinder. One end of the telescopic component is connected to the magnetic component, and the other end passes through the cylinder and is fixed on one side of the plate.
[0013] As a further improvement of this utility model, the magnetic component includes two magnetic blocks with identical magnetic poles arranged in a mirror-symmetrical manner, one of which is adapted to one end of the elastic element and the other end is fixed to one end of the telescopic rod.
[0014] Compared with the prior art, the beneficial effects of this utility model are as follows:
[0015] This utility model, through the setting of a guide plate and a guide groove, disperses the pressure under the action of wind pressure. The guide plate, together with the setting of an adjustable door plate, allows the door plate to be adjusted for pressure during use. Through the magnetic component and the setting of an elastic element, the pressure can be buffered, improving the door plate's pressure resistance. When the wind pressure decreases, the elastic element can spring back and fix the plate, meeting the needs of use. Attached Figure Description
[0016] The accompanying drawings, which are included to provide a further understanding of this application and form part of this application, illustrate exemplary embodiments and are used to explain this application, but do not constitute an undue limitation of this application. In the drawings:
[0017] Figure 1 is a schematic diagram of the three-dimensional structure of the planar door panel of this utility model;
[0018] Figure 2 is a front view structural diagram of the planar door panel of this utility model;
[0019] Figure 3 is a schematic diagram of the structure of the present invention with the AA section rotated 90° in Figure 2.
[0020] Figure 4 is a front view schematic diagram of the telescopic structure of the adjustable door panel of this utility model;
[0021] Figure 5 is a schematic cross-sectional view of the telescopic component of this utility model.
[0022] In the picture: 1. Flat door panel;
[0023] 11. Door frame; 12. Adjustable door panel; 13. Guide plate; 14. Flow channel;
[0024] 121. Telescopic component; 122. Plate; 123. Positioning rod; 124. Inner cavity;
[0025] 1211. Cylinder body; 1212. Telescopic rod; 1213. Elastic element; 1214. Magnetic component. Detailed Implementation
[0026] The following illustrations will reveal several embodiments of the present invention. For clarity, many physical details will be described in the following description. However, it should be understood that these physical details should not be used to limit the present invention. That is, in some embodiments of the present invention, these physical details are not essential. Furthermore, for the sake of simplicity, some conventional structures and components will be shown in a simple schematic manner in the illustrations.
[0027] Furthermore, the technical solutions of the various embodiments can be combined with each other, but this must be based on the ability of those skilled in the art to implement them. When the combination of technical solutions is contradictory or cannot be implemented, it should be considered that such combination of technical solutions does not exist and is not within the scope of protection claimed by this utility model.
[0028] Please refer to Figures 1-5. When using the flat door panel 1, due to its relatively simple structure and lack of reinforcing ribs or other strengthening structures, it is prone to deformation or damage when facing high wind pressure.
[0029] To prevent door panels from deforming or being damaged, components are typically installed at the door panel to disperse wind pressure. However, this method is relatively conventional, and the wavy design is fixed, resulting in insufficient pressure dispersion. Under strong wind pressure, damage is still likely to occur. Based on this, this application provides a pressure-resistant structure for a flat door panel 1, including a flat door panel 1 for support. The flat door panel 1 includes a door frame 11, and one or more guide plates 13 arranged in a linear array are installed on the inner side of the door frame 11 for fixing the door frame 11.
[0030] One side of the guide plate 13 is flat, and the two sides of the plane are inclined downward at a preset angle.
[0031] The guide plate 13 has one or more guide grooves 14 arranged in a linear array on its plane to disperse the pressure of the wind pressure.
[0032] The flat door panel 1 consists of a door frame 11 and a door panel, with the door frame 11 used to support the entire door panel structure.
[0033] Multiple guide plates 13 arranged in a linear array are installed on the inner side of the door frame 11. One side of the guide plate 13 is flat and is used to fit tightly against the door frame 11. Both sides of the flat surface are inclined downward at a preset angle to form a flow guide surface. The flow guide surface can effectively guide the air pressure flow direction and reduce the pressure concentration of the air pressure on the door panel.
[0034] The guide plate 13 has one or more guide grooves 14 arranged in a linear array on its plane. The shape of the guide grooves 14 can be V-shaped, U-shaped or trapezoidal to adapt to different wind pressure distributions. Under the action of wind pressure, the pressure is quickly dispersed to avoid pressure concentration that could cause door panel deformation or damage.
[0035] Specific implementation steps:
[0036] The door frame 11 and guide plate 13 are made of high-strength aluminum alloy or stainless steel to ensure the structural strength and durability.
[0037] Fix the guide plate 13 to the inside of the door frame 11 to ensure that the guide plate 13 fits tightly against the door frame 11.
[0038] The guide plate 13 is secured using high-strength screws or welding to ensure it does not loosen under wind pressure.
[0039] A flow channel 14 is opened on the plane of the guide plate 13. The shape and size of the flow channel 14 are designed according to the wind pressure distribution and the size of the door panel.
[0040] The spacing and depth of the guide channels 14 should ensure that they can effectively disperse pressure under wind pressure.
[0041] After the door panel is installed, a wind pressure test is conducted to simulate wind pressure environments of different intensities and observe the working effect of the guide plate 13 and the guide channel 14.
[0042] By setting the guide plate 13 and the flow channel 14, the pressure of the wind pressure is effectively dispersed, avoiding pressure concentration that could cause the door panel to deform or be damaged.
[0043] The inclined setting of the guide plate 13 and the linear array layout of the guide channel 14 can quickly disperse wind pressure and improve the pressure resistance of the door panel.
[0044] The fixed installation of the guide plate 13 and the setting of the guide groove 14 ensure the structural stability of the door panel under wind pressure and reduce the risk of deformation and damage.
[0045] The selection of high-strength materials and robust installation methods further enhance the durability and stability of the door panel.
[0046] The tilt angle of the guide plate 13 and the shape of the guide channel 14 can be adjusted according to different wind pressure distributions to adapt to different environments and usage requirements.
[0047] The structure is flexible and can be applied to flat door panels of different sizes and types, improving their pressure resistance and service life.
[0048] The inner side of the door frame 11 is provided with an inner cavity 124, and the two sides of the inner cavity 124 are provided with an adjustable door panel 12 on one side of the guide plate 13. The adjustable door panel 12 is slidably connected to one side of the guide plate 13.
[0049] A set of telescopic members 121 is provided on the inner side of each of the two sets of adjustable door panels 12, and a positioning rod 123 is provided between each two sets of telescopic members 121 for fixing the adjustable door panel 12.
[0050] The adjustable door panel 12 includes a panel 122, one side of which is fixed to one end of the telescopic member 121.
[0051] The inner side of the door frame 11 is provided with an inner cavity 124, which can accommodate other components, such as the adjustable door panel 12 and the telescopic component 121.
[0052] The two sides of the inner cavity 124 are located on one side of the guide plate 13, providing support and sliding space for the adjustment door panel 12.
[0053] The regulating door panel 12 is slidably connected to one side of the guide plate 13, allowing it to move freely under wind pressure.
[0054] The adjustable door panel 12 includes a panel 122, one side of which is fixed to one end of the telescopic member 121 to form a linkage structure.
[0055] A telescopic component 121 is provided on the inner side of the two sets of adjustable door panels 12. The telescopic component 121 can automatically adjust its length according to the wind pressure.
[0056] A positioning rod 123 is provided between every two sets of telescopic components 121 to fix the adjusting door panel 12 and ensure its stability under wind pressure.
[0057] The door frame 11 and the adjustable door panel 12 are made of high-strength aluminum alloy or stainless steel to ensure the structural strength and durability.
[0058] The telescopic component 121 can be a high-strength spring or a hydraulic telescopic rod 1212 to achieve automatic adjustment.
[0059] The adjusting door panel 12 is installed on both sides of the inner cavity 124 of the door frame 11, ensuring that it is slidably connected to one side of the guide plate 13 and can move freely. High-strength slide rails or bearings are used to fix the adjusting door panel 12 to ensure that it can slide smoothly under wind pressure.
[0060] Telescopic components 121 are provided on the inner side of the regulating door panel 12 to ensure that one end of the telescopic component 121 is fixed to the plate body 122 of the regulating door panel 12. A positioning rod 123 is provided between every two sets of telescopic components 121. The positioning rod 123 is fixed by screws or welding to ensure that the regulating door panel 12 remains stable under wind pressure.
[0061] By adjusting the length of the telescopic component 121 and the position of the positioning rod 123, the linkage structure is optimized so that it can automatically adjust under wind pressure and disperse the pressure. By adjusting the linkage structure between the door panel 12 and the telescopic component 121, the position of the door panel 12 can be automatically adjusted according to the wind pressure, effectively dispersing the wind pressure and avoiding pressure concentration that could cause the door panel to deform or be damaged. The positioning rod 123 ensures that the door panel 12 remains stable under wind pressure, further improving the door panel's pressure resistance.
[0062] The automatic adjustment function of the telescopic component 121 enables the door panel to automatically adapt to the wind pressure, improving the adaptability and flexibility of the structure.
[0063] When the wind pressure decreases, the telescopic component 121 can automatically retract, allowing the adjusting door panel 12 to return to its initial position and ensuring the normal use of the door panel.
[0064] Adjusting the sliding connection between the door panel 12 and the guide plate 13, as well as the fixed installation of the telescopic component 121 and the positioning rod 123, ensures the structural stability of the door panel under wind pressure and reduces the risk of deformation and damage.
[0065] The telescopic component 121 includes a cylindrical body 1211, and a set of magnetic components 1214 is provided on the inner side of the cylindrical body 1211. The magnetic components 1214 are provided with elastic components 1213 on both sides.
[0066] A telescopic component 121 is provided on the inner side of the cylinder 1211. One end of the telescopic component 121 is connected to the magnetic component 1214, and the other end passes through the cylinder 1211 and is fixed to one side of the plate 122.
[0067] The magnetic component 1214 includes two magnetic blocks with identical magnetic poles arranged in a mirror-symmetrical manner. One of the magnetic blocks is adapted to one end of the elastic member 1213, and the other end is fixed to one end of the telescopic rod 1212.
[0068] The telescopic component 121 includes a cylindrical body 1211, and a set of magnetic components 1214 are provided on the inner side of the cylindrical body 1211.
[0069] Both sides of the magnetic component 1214 are provided with elastic elements 1213 to provide buffering and rebound functions when the wind pressure changes.
[0070] An extension member 121 is provided on the inner side of the cylinder 1211, and one end of the extension member 121 is connected to the magnetic component 1214.
[0071] The other end of the telescopic component 121 passes through the cylinder 1211 and is fixed to one side of the plate 122 of the regulating door panel 12, forming a linkage structure.
[0072] The magnetic component 1214 includes two magnetic blocks with identical magnetic poles arranged in a mirror-symmetrical configuration.
[0073] One of the magnetic blocks is adapted to one end of the elastic element 1213, and the other end is fixed to one end of the telescopic rod 1212.
[0074] The magnetic component 1214 can be a high-strength magnet or an electromagnet, and the elastic component 1213 can be a high-elasticity spring or a rubber material.
[0075] Install the telescopic component 121 inside the cylinder 1211, ensuring that it is firmly connected to the magnetic component 1214 and the plate 122 of the adjusting door 12. Use high-strength screws or welding to fix the telescopic component 121, ensuring that it will not loosen under wind pressure.
[0076] A magnetic component 1214 is provided on the inner side of the cylinder 1211 to ensure that the two magnetic blocks are arranged in a mirror symmetrical manner with the same magnetic poles. One of the magnetic blocks is adapted to one end of the elastic element 1213, and the other end is fixed to one end of the telescopic rod 1212 to form a linkage structure.
[0077] Elastic elements 1213 are provided on both sides of the magnetic component 1214 to ensure that it can provide buffering and rebound functions when the wind pressure changes.
[0078] The selection of elastic element 1213 should be optimized according to the range and frequency of wind pressure changes in order to achieve the best buffering effect.
[0079] By adjusting the magnetic force of the magnetic component 1214 and the elastic coefficient of the elastic element 1213, the linkage structure is optimized so that it can automatically adjust and disperse pressure under wind pressure. Wind pressure tests are conducted to simulate wind pressure environments of different intensities. The working effects of the telescopic component 121, the magnetic component 1214, and the elastic element 1213 are observed. Adjustments are made based on the test results to achieve the best pressure resistance effect.
[0080] Through the coordinated design of the telescopic component 121, the magnetic component 1214 and the elastic component 1213, the position of the door panel 12 can be automatically adjusted according to the wind pressure, effectively dispersing the wind pressure and avoiding pressure concentration that could cause the door panel to deform or be damaged.
[0081] The magnetic block of the magnetic component 1214 and the elastic element 1213 work together to provide buffering and rebound functions when the wind pressure changes, further improving the door panel's pressure resistance.
[0082] The automatic adjustment function of the telescopic component 121 enables the door panel to automatically adapt to the wind pressure, improving the adaptability and flexibility of the structure.
[0083] When the wind pressure decreases, the elastic element 1213 can automatically rebound, allowing the adjusting door panel 12 to return to its initial position, ensuring the normal use of the door panel.
[0084] The linkage design of the magnetic block of the magnetic component 1214 and the elastic element 1213 ensures that the door panel remains stable under wind pressure, reducing the risk of deformation and damage. The selection of high-strength materials and the robust installation method further enhance the durability and stability of the door panel.
[0085] The two sets of magnetic blocks utilize the principle of like poles repulsion, which can meet the expansion and contraction requirements of the telescopic component 121 when resisting wind pressure, thereby meeting the need to adjust the rebound of the door panel 12.
[0086] The above description is merely an embodiment of this utility model and is not intended to limit the scope of this utility model. Various modifications and variations can be made to this utility model by those skilled in the art. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principle of this utility model should be included within the scope of the claims of this utility model.
Claims
1. A planar door panel compression-resistant structure, comprising a planar door panel (1) for support, the planar door panel (1) including a door frame (11), wherein one or more guide plates (13) arranged in a linear array are installed on the inner side of the door frame (11) for fixing the door frame (11); characterized in that: One side of the guide plate (13) is flat, and the two sides of the plane are inclined downward at a preset angle; the plane of the guide plate (13) is provided with one or more guide grooves (14) arranged in a linear array to disperse the pressure of the wind pressure.
2. The planar door panel compression-resistant structure according to claim 1, characterized in that: The inner side of the door frame (11) is provided with an inner cavity (124), and the two sides of the inner cavity (124) are provided with an adjustable door panel (12) on one side of the guide plate (13). The adjustable door panel (12) is slidably connected to one side of the guide plate (13).
3. The planar door panel compression-resistant structure according to claim 2, characterized in that: A set of telescopic members (121) is provided on the inner side of each of the two sets of adjustable door panels (12), and a positioning rod (123) is provided between each two sets of telescopic members (121) for fixing the adjustable door panel (12).
4. The planar door panel compression-resistant structure according to claim 2, characterized in that: The adjustable door panel (12) includes a panel (122), one side of which is fixed to one end of the telescopic member (121).
5. The planar door panel compression-resistant structure according to claim 3, characterized in that: The telescopic component (121) includes a cylindrical body (1211), and a set of magnetic components (1214) is provided on the inner side of the cylindrical body (1211). The magnetic components (1214) have elastic elements (1213) on both sides.
6. The planar door panel compression-resistant structure according to claim 5, characterized in that: The inner side of the cylinder (1211) is provided with a telescopic component (121). One end of the telescopic component (121) is connected to the magnetic component (1214), and the other end passes through the cylinder (1211) and is fixed to one side of the plate (122).
7. The planar door panel compression-resistant structure according to claim 5, characterized in that: The magnetic component (1214) includes two magnetic blocks with identical magnetic poles arranged in a mirror-symmetrical manner. One of the magnetic blocks is adapted to one end of the elastic element (1213), and the other end is fixed to one end of the telescopic rod (1212).