Wind-resistant organic nanometer active light-emitting signboard

By designing a support frame, wind-resistant buffer components, and deflection reset components, the structural damage and aesthetic issues of traditional signs in windy environments have been resolved, improving wind resistance and air guiding effect while maintaining overall aesthetics.

CN224020411UActive Publication Date: 2026-03-20XINHAN HIGH-TECH IND (GUANGDONG) CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-03-07
Publication Date
2026-03-20

AI Technical Summary

Technical Problem

Traditional organic nano-active luminescent signs are easily damaged in windy conditions, and the air vent structure affects the appearance and has poor air guiding effect in the absence of wind or weak wind, and cannot be flexibly adjusted.

Method used

The design incorporates a support frame, wind-resistant buffer components, deflection and reset components, and a rotating block. It enhances wind resistance through deflection and reset mechanisms and controls the state of the air vents in the absence of wind or in weak wind. The chamfered design also improves the overall aesthetics.

Benefits of technology

It enhances the wind resistance of the signage, improves its wind-guiding effect, and maintains the overall aesthetic appeal under different wind conditions, while avoiding structural damage and vibration.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model belongs to the technical field of signboards, and particularly relates to a wind-resistant organic nanometer active light-emitting signboard which comprises a supporting frame, an organic nanometer active light-emitting signboard body, a first wind-resistant buffering assembly, a second wind-resistant buffering assembly, a deflection reset assembly and a plurality of rotating blocks. Supporting pins are fixedly installed at the top and the bottom of the organic nanometer active light-emitting signboard body correspondingly, the two supporting pins are located on the same axis, and the ends, away from each other, of the two supporting pins are rotationally installed on the inner wall of the top and the inner wall of the bottom of the supporting frame correspondingly. The signboard is reasonable in design and compact in structure, not only can absorb and disperse impact of wind power on the signboard, reduce shaking amplitude of the signboard and prevent the signboard from being damaged or falling off due to overlarge wind power, but also can ensure that the signboard can be effectively reset in a deflection wind guide state under the action of the wind power when no wind or weak wind exists, so that the service life of the signboard is prolonged. The stability and directivity of the signboard are kept, the wind resistance can be effectively reduced, and the wind resistance of the signboard is improved.
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Description

TECHNICAL FIELD

[0001] The utility model relates to a sign technical field, especially in an organic nano initiative luminous sign of wind resistance. BACKGROUND

[0002] In modern society, various types of signs are widely used in various fields, such as traffic, building, commercial place, etc., and play an important role in indicating, warning and propaganda. Organic nano initiative luminous sign is gradually favored because of its unique light emitting characteristics and the advantages of nanometer materials, which can clearly display information in various environments.

[0003] However, the sign often needs to be installed in the open environment such as outdoor, and inevitably faces various severe weather conditions, among which the strong wind has a particularly significant impact. The traditional organic nano initiative luminous sign usually does not fully consider the wind resistance in design, and when it encounters strong wind, the sign body is easily impacted by strong wind force. On the one hand, the excessive wind force acting on the sign body may cause its structure to be damaged, such as deformation of the supporting structure, rupture of the main body, etc., so that the sign cannot be used normally, seriously affecting its indicating and propaganda functions, and even may cause safety hazards to the surrounding environment and personnel. On the other hand, in the strong wind environment, the sign is difficult to guide and unload the wind force through effective ways, so that it shakes violently in the wind, not only affecting its stability, but also may cause the fixing device to loosen, further aggravating the damage risk.

[0004] In addition, in order to improve the wind resistance effect of the sign, some designs are provided with a wind guide port, but the existing wind guide port is always in an open state when there is no wind or weak wind, which will affect the overall aesthetics of the sign. Moreover, the wind guide effect of the existing wind guide port structure under the action of strong wind needs to be improved, and it cannot flexibly adjust the wind guide area according to the wind force to achieve better wind resistance and wind guide balance.

[0005] Therefore, it has important practical significance to develop an organic nano initiative luminous sign with good wind resistance, and considering the wind guide effect and overall aesthetics.

[0006] The information disclosed in this BACKGROUND section is only intended to increase an understanding of the general background of the present utility model and is not intended to be a recognition or any form of suggestion that this information forms prior art that is already known to those of ordinary skill in the art. UTILITY MODEL CONTENT

[0007] The utility model aims at solving the shortcomings mentioned in the above background technology, and provides an organic nano initiative luminous sign of wind resistance.

[0008] The above technical purpose of the utility model is realized through the following technical scheme: an anti-wind organic nano active light-emitting signboard, comprising a supporting frame, an organic nano active light-emitting signboard body, an anti-wind buffer assembly one, an anti-wind buffer assembly two, a deflection reset assembly and a plurality of rotating blocks.

[0009] The top and bottom of the organic nano active light-emitting signboard body are fixedly provided with supporting pins, the two supporting pins are located on the same axis, and the ends of the two supporting pins away from each other are rotatably installed on the top inner wall and the bottom inner wall of the supporting frame, the anti-wind buffer assembly one is arranged at the four corners of the organic nano active light-emitting signboard body and connected with the supporting frame, the anti-wind buffer assembly two is arranged at the two sides of the organic nano active light-emitting signboard body and connected with the two side inner walls of the supporting frame, a plurality of air guide openings are formed in the organic nano active light-emitting signboard body, the plurality of rotating blocks are arranged in the corresponding air guide openings, and the deflection reset assembly is arranged in the plurality of air guide openings and connected with the plurality of rotating blocks.

[0010] Preferably, the anti-wind buffer assembly one comprises four mounting blocks, four guide pins, four springs one, four limiting blocks and four guide grooves, two guide grooves in arc shape and arranged based on the supporting pins as the center are formed in the top inner wall and the bottom inner wall of the supporting frame, the four corners of the organic nano active light-emitting signboard body are fixedly provided with the mounting blocks, the guide pins are slidably installed on the four mounting blocks, the limiting blocks are fixedly installed on the plurality of guide pins, the springs one are fixedly installed on the plurality of mounting blocks and movably sleeved outside the corresponding limiting pins, the plurality of springs one are fixedly connected with the corresponding limiting blocks, and the ends of the plurality of guide pins away from the limiting blocks are slidably installed in the corresponding guide grooves.

[0011] Preferably, the depth of the guide groove is arranged in a mode that the middle is deep and the two ends are low.

[0012] Preferably, the anti-wind buffer assembly two comprises a plurality of springs two, the two sides of the organic nano active light-emitting signboard body are fixedly provided with the plurality of springs two, and the plurality of springs two are fixedly connected with the two side inner walls of the supporting frame.

[0013] Preferably, the deflection reset assembly comprises a plurality of rotating pins and a plurality of torsional springs, the rotating pins are rotatably installed on the plurality of rotating blocks, the torsional springs are movably sleeved outside the rotating pins and fixedly installed on the top side and the bottom side of the plurality of rotating blocks, and the plurality of torsional springs are fixedly connected with the inner walls of the corresponding air guide openings.

[0014] Preferably, the top inner wall and the bottom inner wall of the air guide opening are fixedly provided with damping rotating sleeves, the top side and the bottom side of the rotating block are provided with annular grooves based on the rotating pin as the center, and the two damping rotating sleeves are in sliding contact with the inner walls of the annular grooves.

[0015] Preferably, the edges of the organic nano active light-emitting sign body and the protrusions on the organic nano active light-emitting sign body are provided with chamfers.

[0016] The utility model discloses the beneficial effect is:

[0017] Through setting up support frame, organic nano active light-emitting sign body, wind resistance buffer assembly no. 1, wind resistance buffer assembly no. 2, deflection reset component and multiple rotating blocks cooperate, when the strong wind blows to the organic nano active light-emitting sign body, wind resistance buffer assembly no. 1 can make it based on the deflection of support pin as the center when the strong wind blows the organic nano active light-emitting sign body, can limit the angle range of its deflection simultaneously, wind resistance buffer assembly no. 2 can control the organic nano active light-emitting sign body to reset when there is no wind or weak wind under the condition that the organic nano active light-emitting sign body is deflected based on the support pin as the center without affecting the strong wind acting on the organic nano active light-emitting sign body, deflection reset component can control the rotating block to deflect in the air inlet when the strong wind blows to the organic nano active light-emitting sign body, and can control the rotating block to reset when there is no wind or weak wind, can improve the wind guiding effect of air inlet, and can avoid the air inlet being always in the open state and affecting the overall appearance when there is no wind or weak wind, so that the organic nano active light-emitting sign has good wind resistance. BRIEF DESCRIPTION OF DRAWINGS

[0018] In order to more clearly illustrate the technical scheme in the embodiment of the utility model, the following will be needed to use the drawing in the embodiment description briefly introduced, obviously, the following description in the drawing is only some embodiments of the utility model, for those skilled in the art, under the premise of not paying the creative labor, can also obtain other drawings according to these drawings.

[0019] Figure 1 It is a three-dimensional structure schematic diagram of the wind-resistant organic nano active light-emitting sign proposed in the utility model;

[0020] Figure 2 It is a partial three-dimensional structure schematic diagram of the utility model;

[0021] Figure 3 It is Figure 2 Structure schematic diagram of part A;

[0022] Figure 4 It is a structure schematic diagram of support frame and guide groove part proposed in the utility model;

[0023] Figure 5 It is a structure schematic diagram of rotating block, rotating pin, torsion spring and damping rotating sleeve part proposed in the utility model.

[0024] In the figure: 1, support frame; 2, organic nano active light-emitting sign body; 21, support pin; 3, air guide opening; 31, rotating block; 32, rotating pin; 33, torsional spring; 34, damping rotating sleeve; 4, mounting block; 41, guide pin; 42, limiting block; 43, spring one; 44, guide groove; 5, spring two. DETAILED DESCRIPTION

[0025] The technical scheme of the present application will be described clearly and completely in combination with specific embodiments. Obviously, the described embodiments are only part of the embodiments of the present application, rather than all the embodiments. Based on the embodiments of the present application, all other embodiments obtained by those skilled in the art without creative labor fall within the scope of protection of the present application.

[0026] REFERENCE Figures 1-5 The anti-wind organic nano active light-emitting sign comprises a support frame 1, an organic nano active light-emitting sign body 2 and a plurality of rotating blocks 31. The top and bottom of the organic nano active light-emitting sign body 2 are fixedly installed with support pins 21. The two support pins 21 are located on the same axis and are rotatably installed at the top inner wall and the bottom inner wall of the support frame 1 at the ends away from each other. The organic nano active light-emitting sign body 2 can realize wind guiding and force unloading by deflection when affected by strong wind, avoiding the case that the organic nano active light-emitting sign body 2 is damaged due to the excessive effect of strong wind.

[0027] The top inner wall and the bottom inner wall of the support frame 1 are both provided with two guide grooves 44 arranged in an arc shape with the support pins 21 as the center. The four corners of the organic nano active light-emitting sign body 2 are fixedly installed with mounting blocks 4. The mounting blocks 4 are all slidably installed with guide pins 41. The guide pins 41 are all fixedly installed with limiting blocks 42. The mounting blocks 4 are all fixedly installed with spring ones 43 movably sleeved outside the corresponding limiting pins. The spring ones 43 are respectively fixedly connected with the corresponding limiting blocks 42. The ends of the guide pins 41 away from the limiting blocks 42 are slidably installed in the corresponding guide grooves 44. When the organic nano active light-emitting sign body 2 is blown by strong wind, it can be deflected based on the support pins 21 as the center, and the angle range of deflection can be limited, thereby effectively improving the wind resistance of the organic nano active light-emitting sign body 2. In order to control the reset of the organic nano active light-emitting sign body 2 under the cooperation of the spring ones 43, the guide pins 41 and the limiting blocks 42, the depth of the guide grooves 44 is set in a manner that the middle is deep and the two ends are low.

[0028] A plurality of spring twos 5 are fixedly installed on both sides of the organic nano active light-emitting sign body 2, and are fixedly connected with the inner walls of both sides of the support frame 1, so that the organic nano active light-emitting sign body 2 can be reset under no wind or weak wind when it is deflected based on the support pin 21 as the center under the action of strong wind on the organic nano active light-emitting sign body 2, thereby further improving the wind resistance effect of the organic nano active light-emitting sign body 2.

[0029] A plurality of air guide openings 3 are formed in the organic nano active light-emitting sign body 2, and the plurality of air guide openings 3 are provided to improve the wind passing effect of the organic nano active light-emitting sign body 2. A plurality of rotating blocks 31 are arranged in the corresponding air guide openings 3, a rotating pin 32 is rotatably installed on each of the plurality of rotating blocks 31, a torsional spring 33 is fixedly installed on the top side and the bottom side of each of the plurality of rotating blocks 31 and sleeved on the outside of the rotating pin 32, the plurality of torsional springs 33 are fixedly connected with the inner walls of the corresponding air guide openings 3, so that the rotating blocks 31 can be deflected in the air guide openings 3 when strong wind blows on the organic nano active light-emitting sign body 2, and the rotating blocks 31 can be reset under no wind or weak wind, which can improve the wind guiding effect of the air guide openings 3 and avoid affecting the overall appearance when the air guide openings 3 are always in an open state under no wind or weak wind. In order to avoid the reciprocating vibration phenomenon of the rotating blocks 31 under the action of the reaction force of the torsional spring 33 during deflection by wind, the torsional spring 33 can also provide shielding and protection effect, a damping rotating sleeve 34 is fixedly installed on the top inner wall and the bottom inner wall of the air guide opening 3, and an annular groove is formed in the top side and the bottom side of the rotating block 31 based on the rotating pin 32 as the center, and the two damping rotating sleeves 34 are in sliding contact with the inner walls of the annular grooves.

[0030] In the embodiment, in order to avoid the wind force concentrated on the organic nano active light-emitting sign body 2 and improve the wind guiding effect to some extent, the edges of the organic nano active light-emitting sign body 2 and the protrusions on the organic nano active light-emitting sign body 2 are provided with chamfers.

[0031] The circuits, electronic components and module mechanisms involved in the present application can be realized by those skilled in the art without further description, and the content protected by the present application does not involve the improvement of software, circuits and methods.

[0032] Working principle: in use, first of all, the device is installed in the required position, when the strong wind blows to the organic nano active light-emitting sign body 2, the wind will act on the rotating block 31 in the air guide 3, at this time, the rotating block 31 will be deflected based on the rotating pin 32 under the action of the wind, and the torsional spring 33 is deformed to generate a counterforce, the air guide area of the air guide 3 increases, the air guide effect is improved, at the same time, the wind directly acts on the organic nano active light-emitting sign body 2, so that it is deflected based on the supporting pin 21, at this time, the organic nano active light-emitting sign body 2 will stretch the plurality of spring two 5, and the mounting block 4 will drive the guide pin 41 to slide in the guide groove 44, since the guide groove 44 is arranged in the middle deep and the both sides shallow way, the limiting block 42 and the guide pin 41 will also move in the vertical direction, and the stretching effect of the spring one 43 is realized with the increase of the deflection angle, at the same time, when the strong wind disappears or weakens, the limiting block 42 and the organic nano active light-emitting sign body 2 will be reset under the counterforce of the spring one 43 and the spring two 5, at this time, the rotating block 31 will also be reset based on the rotating pin 32 under the counterforce of the torsional spring 33, the air guide area of the air guide 3 recovers, which avoids the case that the air guide 3 is always in the open state under no wind or weak wind and affects the overall appearance, and the setting of the damping rotating sleeve 34 can avoid the vibration phenomenon of the rotating block 31 caused by the counterforce of the torsional spring 33, and the friction force between the guide pin 41 and the guide groove 44 and the force from the spring one 43 cooperate to avoid the vibration phenomenon of the organic nano active light-emitting sign body 2.

[0033] The above describes in detail the wind-resistant organic nano active light-emitting sign provided by the utility model. The principles and implementation modes of the utility model are described in the embodiments, and the above embodiment is only used to help understand the method and core idea of the utility model. It should be pointed out that, for ordinary skilled persons in the technical field, without departing from the principles of the utility model, the utility model can be improved and modified in many ways, and these improvements and modifications also fall within the protection scope of the utility model claims.

Claims

1. A wind-resistant organic nano-active luminescent sign, characterized in that, It includes a support frame (1), an organic nano-active light-emitting sign body (2), a wind-resistant buffer component one, a wind-resistant buffer component two, a deflection and reset component, and multiple rotating blocks (31); The organic nano-active luminescent sign body (2) is fixedly installed with support pins (21) at the top and bottom. The two support pins (21) are located on the same axis, and the ends of the two support pins (21) that are far apart from each other are respectively rotatably installed on the top inner wall and bottom inner wall of the support frame (1). The first wind-resistant buffer component is set at the four corners of the organic nano-active luminescent sign body (2) and connected to the support frame (1). The second wind-resistant buffer component is set on both sides of the organic nano-active luminescent sign body (2) and connected to the inner walls of both sides of the support frame (1). The organic nano-active luminescent sign body (2) is provided with multiple air guides (3), and multiple rotating blocks (31) are respectively set in the corresponding air guides (3). The deflection and reset component is set in multiple guide ports and connected to multiple rotating blocks (31).

2. The wind-resistant organic nano-active luminescent sign according to claim 1, characterized in that: The wind-resistant buffer assembly includes four mounting blocks (4), four guide pins (41), four springs (43), four limiting blocks (42), and four guide grooves (44). Two guide grooves (44) are provided on the top inner wall and bottom inner wall of the support frame (1) in an arc shape centered on the support pin (21). Mounting blocks (4) are fixedly installed at the four corners of the organic nano-active light-emitting sign body (2). Guide pins (41) are slidably installed on the four mounting blocks (4). Limiting blocks (42) are fixedly installed on the multiple guide pins (41). Springs (43) are movably sleeved on the outside of the corresponding limiting pins on the multiple mounting blocks (4). The multiple springs (43) are fixedly connected to the corresponding limiting blocks (42). The ends of the multiple guide pins (41) away from the limiting blocks (42) are slidably installed in the corresponding guide grooves (44).

3. The wind-resistant organic nano-active luminescent sign according to claim 2, characterized in that: The depth of the guide groove (44) is set in a manner that is deep in the middle and low at both ends.

4. The wind-resistant organic nano-active luminescent sign according to claim 1, characterized in that: The wind-resistant buffer component 2 includes multiple springs 2 (5). Multiple springs 2 (5) are fixedly installed on both sides of the organic nano active light luminescent sign body (2). The multiple springs 2 (5) are respectively fixedly connected to the inner walls of both sides of the support frame (1).

5. The wind-resistant organic nano-active luminescent sign according to claim 1, characterized in that: The deflection reset assembly includes multiple rotating pins (32) and multiple torsion springs (33). Rotating pins (32) are rotatably mounted on multiple rotating blocks (31). Torsion springs (33) are fixedly mounted on the top and bottom sides of multiple rotating blocks (31) and are movably sleeved on the outside of the rotating pins (32). Multiple torsion springs (33) are respectively fixedly connected to the inner wall of the corresponding air guide (3).

6. The wind-resistant organic nano-active luminescent sign according to claim 5, characterized in that: Damping sleeves (34) are fixedly installed on the top inner wall and bottom inner wall of the air guide (3). The top and bottom sides of the rotating block (31) are provided with annular grooves centered on the rotating pin (32). Both damping sleeves (34) slide in contact with the inner wall of the annular groove.

7. The wind-resistant organic nano-active luminescent sign according to claim 1, characterized in that: The edges of the organic nano-active light-emitting sign body (2) and the protrusions on the organic nano-active light-emitting sign body (2) are all chamfered.