Wind-resistant frame and display screen
Through the detachable connected wind-resistant part design, the problem of inconvenient folding of the wind-resistant frame is solved, and rapid folding and enhanced stability are achieved, which is easy to store and transport.
Patent Information
- Application Number
- CN202422394112.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-09-29
- Publication Date
- 2025-07-22
- Estimated Expiration
- 2034-09-29
AI Technical Summary
The existing wind-resistant frame is designed as an integral structure, which makes it inconvenient to fold and brings difficulties to storage and transportation.
The first and second wind-resistant parts that can be detachably connected are used to switch between the working state and the folded state through rotation and connection, enhance structural strength and stability, and improve disassembly and assembly convenience through limiting parts and connecting structures.
It realizes rapid folding of the wind-resistant frame, which is easy to store and transport, while enhancing structural strength and stability, effectively reducing the volume.
Smart Images

Figure CN223137442U_ABST
Abstract
Description
Technical Field
[0001] This application belongs to the technical field of display devices, and more specifically, relates to a wind-resistant frame and a display screen. Background Art
[0002] With the development of display screens, display screens are designed to be thinner and lighter. To enhance the stability and wind resistance of the display screen, a wind-resistant frame connected to the display screen body is provided on the back of the display screen body. Although the wind-resistant frame can enhance the wind resistance of the display screen, it is usually designed as an integral structure, resulting in it being often inconvenient to fold, bringing certain difficulties to storage and transportation. Summary of the Utility Model
[0003] The purpose of the embodiments of this application is to provide a wind-resistant frame and a display screen, aiming to solve the technical problem that the wind-resistant frame in the related art is not convenient to fold.
[0004] To achieve the above object, according to one aspect of this application, a wind-resistant frame is provided, including a first wind-resistant part and a second wind-resistant part that are detachably connected. Both the first wind-resistant part and the second wind-resistant part are used for pivotal connection to a component to be installed; the wind-resistant frame has a working state and a folded state, and the component to be installed has a reference plane; when the wind-resistant frame is in the working state, the first wind-resistant part and the second wind-resistant part are connected, the first wind-resistant part can have a first included angle with the reference plane, and the second wind-resistant part can have a second included angle with the reference plane; when the wind-resistant frame is in the folded state, the first wind-resistant part is separated from the second wind-resistant part, the first wind-resistant part can be parallel to the reference plane, and the second wind-resistant part can be parallel to the reference plane.
[0005] When the wind-resistant frame of this application needs to be used, first drive the first wind-resistant part to rotate on the component to be installed until the included angle between the first wind-resistant part and the reference plane reaches the first included angle and then stop rotating; then drive the second wind-resistant part to rotate on the component to be installed until the included angle between the second wind-resistant part and the reference plane reaches the second included angle and then stop rotating; subsequently, connect the first wind-resistant part and the second wind-resistant part to enhance the structural strength and stability of the wind-resistant frame. When the wind-resistant frame needs to be folded, first separate the first wind-resistant part and the second wind-resistant part, then drive the first wind-resistant part to rotate on the component to be installed until the first wind-resistant part is parallel to the reference plane and then stop rotating; subsequently, drive the second wind-resistant part to rotate on the component to be installed until the second wind-resistant part is parallel to the reference plane and then stop rotating. The folded wind-resistant frame effectively reduces the volume of the wind-resistant frame. The detachably connected first wind-resistant part and second wind-resistant part not only enhance the structural strength and wind resistance of the component to be installed, but also help the wind-resistant frame of this application to be quickly folded, facilitating subsequent storage and transportation; in addition, the above design also enables the wind-resistant frame of this application to achieve the maximum degree of folding, thereby effectively reducing the volume of the wind-resistant frame.
[0006] Optionally, the first wind-resistant part includes a first wind-resistant body and a first connection structure. The first wind-resistant body is used for pivotally connecting to the component to be installed, and the first connection structure is installed on the first wind-resistant body. The second wind-resistant part includes a second wind-resistant body and a second connection structure. The second wind-resistant body is used for pivotally connecting to the component to be installed, and the second connection structure is installed on the second wind-resistant body. When the wind-resistant frame is in the working state, the first connection structure is connected to the second connection structure. When the wind-resistant frame is in the folded state, the first connection structure is separated from the second connection structure.
[0007] When the wind-resistant frame of the present application needs to be used, first drive the first wind-resistant body to rotate on the component to be installed until the angle between the first wind-resistant body and the reference plane reaches the first angle and then stop rotating. Then drive the second wind-resistant body to rotate on the component to be installed until the angle between the second wind-resistant body and the reference plane reaches the second angle and then stop rotating. Subsequently, connect the first connection structure and the second connection structure to enhance the structural strength and stability of the wind-resistant frame. When the wind-resistant frame needs to be folded, first separate the first connection structure and the second connection structure, and then drive the first wind-resistant body to rotate on the component to be installed until the first wind-resistant body is parallel to the reference plane and then stop rotating. Subsequently, drive the second wind-resistant body to rotate on the component to be installed until the second wind-resistant body is parallel to the reference plane and then stop rotating. The folded wind-resistant frame effectively reduces the volume of the wind-resistant frame.
[0008] Optionally, one of the first connection structure and the second connection structure is a connecting component, and the other is a connecting claw. The connecting claw is provided with a claw groove. The first wind-resistant part and the second wind-resistant part are connected by inserting the connecting component into the claw groove. The first wind-resistant part and the second wind-resistant part are separated by pulling the connecting component out of the claw groove.
[0009] The connecting component and the claw groove used in cooperation in the present application not only help the first wind-resistant body and the second wind-resistant body to achieve detachable connection, thereby helping the first wind-resistant part and the second wind-resistant part to achieve detachable connection, but also effectively improve the convenience and efficiency of the disassembly and assembly operations of the first connection structure and the second connection structure.
[0010] Optionally, a limiting member is installed on the connecting claw, and an installation groove is provided on the groove wall of the claw groove. The limiting member can slide in the installation groove along a direction close to or away from the claw groove to be inserted into the claw groove or pulled out of the claw groove. The sliding direction of the limiting member is the first preset direction. During the process of inserting the connecting component into the claw groove, the limiting member located in the claw groove moves in a direction away from the claw groove. After the connecting component is inserted into the claw groove, the limiting member is located outside the claw groove and applies a thrust to the connecting component.
[0011] As the connecting component in the present application gradually enters the claw groove, the part of the limiting member located in the claw groove will slide into the installation groove under the thrust applied by the connecting component; after the connecting component is completely inserted into the claw groove, the limiting member will be entirely located in the installation groove. At this time, the limiting member will apply a thrust to the connecting component to enhance the stability of the connecting component in the claw groove. When the connecting component in the present application is withdrawn from the claw groove, the part of the limiting member close to the claw groove will be inserted into the claw groove so that the connecting component can be inserted into the claw groove again. The limiting member and the claw groove used in cooperation in the present application not only help to enhance the stability of the connecting component in the claw groove, thereby improving the stability and structural strength of the wind-resistant frame, but also help to make the first connecting structure and the second connecting structure be detachably connected.
[0012] Optionally, a reset member is provided in the installation groove, the limiting member has a first limiting surface, and the reset member is located between the first limiting surface and the bottom of the installation groove; during the process of inserting the connecting component into the claw groove, the reset member switches from the natural state to the compressed state; after the connecting component is inserted into the claw groove, the reset member is in the compressed state and applies a thrust towards the claw groove to the limiting member; and / or, an operating head is installed on the limiting member, a guiding hole is provided on the surface of the connecting claw, the guiding hole is arranged along a first preset direction and communicates with the installation groove, the operating head is located in the guiding hole and can slide in the guiding hole along the first preset direction to drive the limiting member to slide in the installation groove; and / or, the number of the first wind-resistant bodies is two, the number of the second wind-resistant bodies is one, the second wind-resistant body is located between the two first wind-resistant bodies, and the two first wind-resistant bodies and the second wind-resistant body are arranged at intervals; when the wind-resistant frame is in the working state, there is a third included angle between the second wind-resistant body and the first wind-resistant body, and the sum of the first included angle, the second included angle and the third included angle is 180°.
[0013] As the connecting component in the present application gradually enters the claw groove, the partial structure of the limiting member located in the claw groove will slide into the installation groove under the thrust applied by the connecting component. At the same time, the reset member will also switch from the natural state to the compressed state; when the connecting component is completely inserted into the claw groove, the limiting member will be entirely located in the installation groove, and at the same time, the reset member is in the compressed state. At this time, the limiting member will apply a thrust to the connecting component under the reset elastic force applied by the reset member to enhance the stability of the connecting component in the claw groove. When the connecting component in the present application needs to be withdrawn from the claw groove, the partial structure of the limiting member close to the claw groove will be inserted into the claw groove under the reset thrust applied by the reset member, so that the connecting component can be inserted into the claw groove again. The reset member in the present application not only helps to push the limiting member into the claw groove, but also helps to retract the limiting member from the claw groove back into the installation groove. The operating head and the guiding hole used in cooperation in the present application help to drive the limiting member to slide in the installation groove, which not only helps to insert the connecting component into the claw groove, but also helps to withdraw the connecting component from the claw groove. The design that the sum of the first included angle, the second included angle and the third included angle is 180° further enhances the stability, structural strength and wind resistance of the wind-resistant frame in the working state.
[0014] Optionally, the wind-resistant frame further includes a first connecting portion. The first connecting portion includes a first connecting member and a second connecting member that are detachably connected. One of the first connecting member and the second connecting member is used for being installed on the component to be installed, and the other is installed on the first wind-resistant portion; when the wind-resistant frame is in the working state, the first connecting member and the second connecting member are separated; when the wind-resistant frame is in the folded state, the first connecting member and the second connecting member are connected.
[0015] When the wind-resistant frame of the present application needs to be used, first separate the first connecting member and the second connecting member, then drive the first wind-resistant part to rotate on the component to be installed until the angle between the first wind-resistant part and the reference plane reaches the first angle and then stop rotating; next, drive the second wind-resistant part to rotate on the component to be installed until the angle between the second wind-resistant part and the reference plane reaches the second angle and then stop rotating; subsequently, connect the first wind-resistant part and the second wind-resistant part to enhance the structural strength and stability of the wind-resistant frame. When the wind-resistant frame needs to be folded, first separate the first wind-resistant part and the second wind-resistant part, then drive the first wind-resistant part to rotate on the component to be installed until the first wind-resistant part is parallel to the reference plane and then stop rotating, and connect the first connecting member and the second connecting member to prevent the first wind-resistant part from shaking and ensure the stability of the first wind-resistant part during transportation; subsequently, drive the second wind-resistant part to rotate on the component to be installed until the second wind-resistant part is parallel to the reference plane and then stop rotating. The folded wind-resistant frame effectively reduces the volume of the wind-resistant frame. The first connecting member and the second connecting member used in combination in the present application can not only connect the first wind-resistant part to the component to be installed to prevent the first wind-resistant part from shaking randomly, but also enable the first wind-resistant part to rotate on the component to be installed.
[0016] Optionally, the first connecting member includes a first mounting body and a first connecting body. Among them, the first mounting body is used to be mounted on the component to be installed, the second connecting member is mounted on the first wind-resistant part, a first connecting groove is provided on the first mounting body, and the second connecting member can be inserted into or withdrawn from the first connecting groove; the first connecting body is slidably mounted on the first mounting body, a second connecting groove is provided on the second connecting member, the first connecting body can block the second connecting member from disengaging from the first connecting groove by being inserted into the second connecting groove, and can withdraw the second connecting member from the second connecting groove by being withdrawn from the second connecting groove; when the first connecting member and the second connecting member are connected, the second connecting member is inserted into the first connecting groove, and the first connecting body is inserted into the second connecting groove; when the first connecting member and the second connecting member are separated, the second connecting member is outside the first connecting groove, and the first connecting body is outside the second connecting groove.
[0017] The first mounting body, the first connecting body, the second connecting member, the first connecting groove and the second connecting groove used in combination in the present application not only help to achieve a firm and convenient connection between the first connecting member and the second connecting member, but also help to achieve a convenient separation between the first connecting member and the second connecting member.
[0018] Optionally, a sliding groove is provided on the surface of the first mounting body. The first connecting body is located in the sliding groove and can slide in the sliding groove in a direction close to or away from the first connecting groove. The first connecting body has a second limiting surface, and a reset body is provided between the second limiting surface and the bottom of the sliding groove. During the process of inserting the second connecting member into the first connecting groove, the first connecting body located in the first connecting groove moves in a direction away from the first connecting groove, and the reset body switches from the natural state to the compressed state. After the second connecting groove is aligned with the sliding groove, the first connecting body is inserted into the second connecting groove under the push of the reset body; and / or, the first connecting body includes a connecting body and an operating cap. The connecting body can be inserted into or withdrawn from the second connecting groove. The operating cap is located on one side of the first mounting body and is connected to the connecting body to drive the connecting body to move.
[0019] The provided reset body not only helps to strengthen the stability of the first connecting body in the second connecting groove, thereby strengthening the connection strength between the first connecting member and the second connecting member, but also facilitates the extraction of the second connecting member from the first connecting groove. The connecting body and the operating cap used in cooperation in this application help to drive the connecting body to slide in the sliding groove, which not only helps to insert the connecting body into the second connecting groove, but also helps to withdraw the connecting body from the second connecting groove.
[0020] Optionally, the wind-resistant frame further includes a second connecting portion. The second connecting portion includes a third connecting member and a fourth connecting member that are detachably connected. One of the third connecting member and the fourth connecting member is used for installation on the component to be installed, and the other is installed on the second wind-resistant portion. When the wind-resistant frame is in the working state, the third connecting member and the fourth connecting member are separated. When the wind-resistant frame is in the folded state, the third connecting member and the fourth connecting member are connected.
[0021] The third connecting member and the fourth connecting member used in cooperation in this application can not only connect the second wind-resistant portion to the component to be installed, thereby preventing the second wind-resistant portion from shaking randomly, but also enable the second wind-resistant portion to rotate on the component to be installed.
[0022] According to another aspect of the present application, a display screen is provided, which includes a screen body and the above-mentioned wind-resistant frame. The first wind-resistant portion and the second wind-resistant portion are both pivotally connected to the screen body, and the screen body is formed as the component to be installed.
[0023] The first wind-resistant portion and the second wind-resistant portion that are detachably connected not only enhance the structural strength and wind resistance of the screen body, but also help the wind-resistant frame of the present application to be quickly folded, facilitating subsequent storage and transportation. In addition, the above design also enables the wind-resistant frame of the present application to be folded to the greatest extent, thereby effectively reducing the volume of the wind-resistant frame.
[0024] The beneficial effects of the wind-resistant frame provided by this application are as follows: When the wind-resistant frame of this application is needed, first drive the first wind-resistant part to rotate on the component to be installed until the angle between the first wind-resistant part and the reference plane reaches the first angle and then stop rotating; then drive the second wind-resistant part to rotate on the component to be installed until the angle between the second wind-resistant part and the reference plane reaches the second angle and then stop rotating; subsequently, connect the first wind-resistant part and the second wind-resistant part to enhance the structural strength and stability of the wind-resistant frame. When it is necessary to fold the wind-resistant frame, first separate the first wind-resistant part and the second wind-resistant part, and then drive the first wind-resistant part to rotate on the component to be installed until the first wind-resistant part is parallel to the reference plane and then stop rotating; subsequently, drive the second wind-resistant part to rotate on the component to be installed until the second wind-resistant part is parallel to the reference plane and then stop rotating. The folded wind-resistant frame effectively reduces the volume of the wind-resistant frame. The first wind-resistant part and the second wind-resistant part that are detachably connected not only enhance the structural strength and wind resistance of the component to be installed, but also help the wind-resistant frame of this application to be quickly folded, facilitating subsequent storage and transportation; in addition, the above design also enables the wind-resistant frame of this application to be folded to the greatest extent, thereby effectively reducing the volume of the wind-resistant frame. BRIEF DESCRIPTION OF THE DRAWINGS
[0025] In order to more clearly illustrate the technical solutions in the embodiments of this application, the following will briefly introduce the drawings required for use in the embodiments or the description of the prior art. Obviously, the following drawings are only some embodiments of this application. For those of ordinary skill in the art, without creative efforts, other drawings can also be obtained based on these drawings.
[0026] Figure 1 It is a schematic structural diagram of the display screen provided by the embodiment of this application from the first perspective;
[0027] Figure 2 It is a schematic structural diagram of the display screen provided by the embodiment of this application from the second perspective;
[0028] Figure 3 It is a schematic structural diagram of the display screen provided by the embodiment of this application from the third perspective;
[0029] Figure 4 It is a schematic structural diagram of the wind-resistant frame provided by the embodiment of this application;
[0030] Figure 5 For Figure 1 the enlarged schematic diagram at position A in
[0031] Figure 6 It is a schematic top cross-sectional view of the second wind-resistant part provided by the embodiment of this application;
[0032] Figure 7 For Figure 6Enlarged schematic view at position C in [the figure];
[0033] Figure 8 is Figure 3 Enlarged schematic view at position B in [the figure];
[0034] Figure 9 Schematic structural view of the first wind-resistant part provided by the embodiment of the present application;
[0035] Figure 10 is Figure 9 Cross-sectional view taken along A-A in [the figure]. Detailed implementation manners
[0036] In order to make the technical problems, technical solutions and beneficial effects to be solved by the present application clearer and more understandable, the present application will be further described in detail below with reference to the accompanying drawings and embodiments. It should be understood that the specific embodiments described herein are only used to explain the present application and are not used to limit the present application.
[0037] It should be noted that when an element is referred to as being "fixed to" or "disposed on" another element, it can be directly on the other element or indirectly on the other element. When an element is referred to as being "connected to" another element, it can be directly connected to the other element or indirectly connected to the other element. Without conflict, the embodiments in the present application and the features in the embodiments can be combined with each other. The present application will be described in detail below with reference to the drawings and in conjunction with the embodiments.
[0038] It should be understood that the orientation or positional relationship indicated by the terms "length", "width", "upper", "lower", "front", "rear", "left", "right", "vertical", "horizontal", "top", "bottom", "inner", "outer", etc. is based on the orientation or positional relationship shown in the accompanying drawings, and is only for the convenience of describing the present application and simplifying the description, rather than indicating or implying that the device or element referred to must have a specific orientation, be constructed and operated in a specific orientation, and therefore should not be construed as a limitation to the present application.
[0039] In addition, the terms "first" and "second" are only used for descriptive purposes and cannot be construed as indicating or implying relative importance or implicitly indicating the number of the indicated technical features. Thus, the features defined with "first" and "second" may explicitly or implicitly include one or more of such features. In the description of the present application, "a plurality of" means two or more unless otherwise specifically defined.
[0040] As described in the background art, with the development of display screens, display screens are designed to be thinner and lighter. To enhance the stability and wind resistance of the display screen, a wind resistance frame connected to the display screen body is provided on the back of the display screen body. Although the wind resistance frame can enhance the wind resistance of the display screen, it is usually designed as an integral structure, resulting in it being often inconvenient to fold, which brings certain difficulties to storage and transportation.
[0041] Referring to Figures 1 to 4 , to solve the above problems, according to one aspect of the present application, embodiments of the present application provide a wind resistance frame, which includes a first wind resistance part 100 and a second wind resistance part 200 that are detachably connected. Both the first wind resistance part 100 and the second wind resistance part 200 are used for pivotally connecting to a component 500 to be installed; the wind resistance frame has a working state and a folded state, and the component 500 to be installed has a reference surface 510; when the wind resistance frame is in the working state, the first wind resistance part 100 and the second wind resistance part 200 are connected, the first wind resistance part 100 can have a first included angle with the reference surface 510, and the second wind resistance part 200 can have a second included angle with the reference surface 510; when the wind resistance frame is in the folded state, the first wind resistance part 100 is separated from the second wind resistance part 200, the first wind resistance part 100 can be parallel to the reference surface 510, and the second wind resistance part 200 can be parallel to the reference surface 510.
[0042] In this embodiment, the component 500 to be installed is the screen body on the display screen, the reference surface 510 is a plane, the first wind resistance part 100 can be pivotally connected to the component 500 to be installed by using a hinge or a pivot, and the second wind resistance part 200 can be pivotally connected to the component 500 to be installed by using a hinge or a pivot. The first wind resistance part 100 and the second wind resistance part 200 can be detachably connected by using a clamping method, a plugging method or a magnetic attraction method. When the wind resistance frame is in the working state, the first wind resistance part 100 has a first included angle with the reference surface 510, and the second wind resistance part 200 has a second included angle with the reference surface 510; when the wind resistance frame is in the folded state, the first wind resistance part 100 is parallel to the reference surface 510, and the second wind resistance part 200 is parallel to the reference surface 510. Figure 1 The wind resistance frame in Figure 2 The wind resistance frame in Figure 3 The wind resistance frame in Figure 4 The wind resistance frame in
[0043] When the wind-resistant frame of the present application needs to be used, first drive the first wind-resistant part 100 to rotate on the component 500 to be installed until the angle between the first wind-resistant part 100 and the reference plane 510 reaches the first angle and then stop rotating; then drive the second wind-resistant part 200 to rotate on the component 500 to be installed until the angle between the second wind-resistant part 200 and the reference plane 510 reaches the second angle and then stop rotating; subsequently, connect the first wind-resistant part 100 and the second wind-resistant part 200 to enhance the structural strength and stability of the wind-resistant frame. When the wind-resistant frame needs to be folded, first separate the first wind-resistant part 100 and the second wind-resistant part 200, and then drive the first wind-resistant part 100 to rotate on the component 500 to be installed until the first wind-resistant part 100 is parallel to the reference plane 510 and then stop rotating; subsequently, drive the second wind-resistant part 200 to rotate on the component 500 to be installed until the second wind-resistant part 200 is parallel to the reference plane 510 and then stop rotating. The folded wind-resistant frame effectively reduces the volume of the wind-resistant frame. The first wind-resistant part 100 and the second wind-resistant part 200 that are detachably connected not only enhance the structural strength and wind resistance of the component 500 to be installed, but also help the wind-resistant frame of the present application to be quickly folded, facilitating subsequent storage and transportation; in addition, the above design also enables the wind-resistant frame of the present application to be folded to the greatest extent, thereby effectively reducing the volume of the wind-resistant frame.
[0044] Referring to Figures 1 to 4 , in an embodiment, the first wind-resistant part 100 includes a first wind-resistant body 110 and a first connection structure. Among them, the first wind-resistant body 110 is used for pivotal connection on the component 500 to be installed, and the first connection structure is installed on the first wind-resistant body 110; the second wind-resistant part 200 includes a second wind-resistant body 210 and a second connection structure. Among them, the second wind-resistant body 210 is used for pivotal connection on the component 500 to be installed, and the second connection structure is installed on the second wind-resistant body 210. When the wind-resistant frame is in the working state, the first connection structure is connected to the second connection structure; when the wind-resistant frame is in the folded state, the first connection structure is separated from the second connection structure.
[0045] In this embodiment, the first wind-resistant body 110 is a wind-resistant strip and can be pivotally connected to the component to be installed 500 by a hinge or a pivot; the first connection structure is fixedly installed on the first wind-resistant body 110 by connection screws or a welding process. The second wind-resistant body 210 is a wind-resistant strip and can be pivotally connected to the component to be installed 500 by a hinge or a pivot; the second connection structure is fixedly installed on the second wind-resistant body 210 by connection screws or a welding process. When the wind-resistant frame is in the working state, the first wind-resistant body 110 can have a first included angle with the reference plane 510, and the second wind-resistant body 210 can have a second included angle with the reference plane 510; when the wind-resistant frame is in the folded state, the first wind-resistant body 110 can be parallel to the reference plane 510, and the second wind-resistant body 210 can be parallel to the reference plane 510. The first connection structure and the second connection structure can be detachably connected by a clamping method, an inserting method or a magnetic attraction method, so that the first wind-resistant part 100 and the second wind-resistant part 200 are detachably connected.
[0046] When the wind-resistant frame of the present application needs to be used, first drive the first wind-resistant body 110 to rotate on the component to be installed 500 until the included angle between the first wind-resistant body 110 and the reference plane 510 reaches the first included angle and then stop rotating; then drive the second wind-resistant body 210 to rotate on the component to be installed 500 until the included angle between the second wind-resistant body 210 and the reference plane 510 reaches the second included angle and then stop rotating; then connect the first connection structure and the second connection structure to enhance the structural strength and stability of the wind-resistant frame. When it is necessary to fold the wind-resistant frame, first separate the first connection structure and the second connection structure, and then drive the first wind-resistant body 110 to rotate on the component to be installed 500 until the first wind-resistant body 110 is parallel to the reference plane 510 and then stop rotating; then drive the second wind-resistant body 210 to rotate on the component to be installed 500 until the second wind-resistant body 210 is parallel to the reference plane 510 and then stop rotating. The folded wind-resistant frame effectively reduces the volume of the wind-resistant frame.
[0047] Refer to Figures 1 to 7 , in an embodiment, one of the first connection structure and the second connection structure is a connection component 120, and the other is a connection claw 220. A claw groove 221 is provided on the connection claw 220; the first wind-resistant part 100 and the second wind-resistant part 200 are connected by inserting the connection component 120 into the claw groove 221; the first wind-resistant part 100 and the second wind-resistant part 200 are separated by pulling the connection component 120 out of the claw groove 221.
[0048] In this embodiment, the connecting member 120 is a connecting rod or a connecting strip. The connecting member 120 is fixedly installed on the first wind-resistant body 110, and the connecting member 120 is formed into a first connection structure; the connecting claw 220 is fixedly installed on the second wind-resistant body 210, and the connecting claw 220 is formed into a second connection structure. After the connecting member 120 is inserted into the claw groove 221, the connecting member 120 and the claw groove 221 are in interference fit so that the first wind-resistant part 100 and the second wind-resistant part 200 are firmly connected; the claw groove 221 has an installation opening, and the connecting member 120 is inserted into the claw groove 221 through the installation opening or withdrawn from the claw groove 221; the shape of the claw groove 221 is a semi-circular groove. This design not only facilitates the direct insertion of the connecting member 120 into the claw groove 221 during movement, but also facilitates the withdrawal of the connecting member 120 from the claw groove 221.
[0049] In this application, the connecting member 120 and the claw groove 221 used in cooperation not only help to detachably connect the first wind-resistant body 110 and the second wind-resistant body 210, thereby helping to detachably connect the first wind-resistant part 100 and the second wind-resistant part 200, but also effectively improve the convenience and efficiency of the disassembly and assembly operations of the first connection structure and the second connection structure. In other embodiments, the connecting claw 220 can also be fixedly installed on the first wind-resistant body 110, and the connecting claw 220 is formed into a first connection structure; the connecting member 120 is fixedly installed on the second wind-resistant body 210, and the connecting member 120 is formed into a second connection structure.
[0050] Referring to Figures 4 to 7 , in one embodiment, a limiting member 230 is installed on the connecting claw 220, and an installation groove 222 is provided on the groove wall of the claw groove 221. The limiting member 230 can slide in the installation groove 222 along a direction close to or away from the claw groove 221 to be inserted into the claw groove 221 or withdrawn from the claw groove 221; the sliding direction of the limiting member 230 is the first preset direction; during the process of inserting the connecting member 120 into the claw groove 221, the limiting member 230 located in the claw groove 221 moves in a direction away from the claw groove 221; after the connecting member 120 is inserted into the claw groove 221, the limiting member 230 is located outside the claw groove 221 and exerts a thrust on the connecting member 120.
[0051] In this embodiment, the limiting member 230 can be an object such as a spring or silica gel that can undergo elastic deformation. The length direction of the limiting member 230 is parallel to the first preset direction, and the extending direction of the installation groove 222 is parallel to the first preset direction. After the connecting member 120 is completely inserted into the claw groove 221, the limiting member 230 is entirely located in the installation groove 222; when the connecting member 120 is outside the claw groove 221, a part of the structure of the limiting member 230 can be inserted into the claw groove 221.
[0052] As the connecting member 120 in the present application gradually enters the claw groove 221, a part of the structure of the limiting member 230 located in the claw groove 221 will slide into the installation groove 222 under the action of the thrust applied by the connecting member 120; when the connecting member 120 is completely inserted into the claw groove 221, the limiting member 230 will be entirely located in the installation groove 222. At this time, the limiting member 230 will apply a thrust to the connecting member 120 to enhance the stability of the connecting member 120 in the claw groove 221. When the connecting member 120 in the present application is withdrawn from the claw groove 221, a part of the structure of the limiting member 230 close to the claw groove 221 will insert into the claw groove 221 to facilitate the re-insertion of the connecting member 120 into the claw groove 221. The limiting member 230 and the claw groove 221 used in cooperation in the present application not only help to enhance the stability of the connecting member 120 in the claw groove 221, thereby improving the stability and structural strength of the wind-resistant frame, but also help to make the first connection structure and the second connection structure achieve detachable connection. In addition, in order to facilitate the movement of the limiting member 230 away from the claw groove 221 under the push of the connecting member 120, a guiding inclined surface is provided on the end surface of the limiting member 230 close to the claw groove 221, and the guiding inclined surface faces the installation opening.
[0053] Referring to Figures 4 to 7 , in an embodiment, a reset member 240 is provided in the installation groove 222. The limiting member 230 has a first limiting surface, and the reset member 240 is located between the first limiting surface and the bottom of the installation groove 222; during the process of inserting the connecting member 120 into the claw groove 221, the reset member 240 switches from the natural state to the compressed state; after the connecting member 120 is inserted into the claw groove 221, the reset member 240 is in the compressed state and applies a thrust to the limiting member 230 towards the claw groove 221.
[0054] In this embodiment, the reset member 240 is a reset spring, and a limiting groove is provided on the surface of the limiting member 230 close to the bottom of the installation groove 222; a part of the structure of the reset spring is located in the limiting groove and contacts the bottom of the limiting groove; another part of the structure of the reset spring is located between the limiting member 230 and the bottom of the installation groove 222 and contacts the bottom of the installation groove 222, and the bottom of the limiting groove forms the first limiting surface.
[0055] As the connecting member 120 in the present application gradually enters the claw groove 221, a part of the structure of the limiting member 230 located in the claw groove 221 will slide into the installation groove 222 under the action of the thrust applied by the connecting member 120. At the same time, the reset member 240 will also switch from the natural state to the compressed state. After the connecting member 120 is completely inserted into the claw groove 221, the limiting member 230 will be entirely located in the installation groove 222, and at the same time, the reset member 240 is in the compressed state. At this time, the limiting member 230 will apply a thrust to the connecting member 120 under the action of the reset elastic force applied by the reset member 240 to enhance the stability of the connecting member 120 in the claw groove 221. When the connecting member 120 in the present application needs to be withdrawn from the claw groove 221, a part of the structure of the limiting member 230 close to the claw groove 221 will be inserted into the claw groove 221 under the action of the reset thrust applied by the reset member 240, so that the connecting member 120 can be inserted into the claw groove 221 again. The reset member 240 in the present application not only helps to push the limiting member 230 into the claw groove 221, but also helps the limiting member 230 to retract from the claw groove 221 into the installation groove 222.
[0056] In addition, an installation member 250 is provided in the installation groove 222. The installation member 250 is fixedly installed in the installation groove 222. The end surface of the installation member 250 close to the bottom of the installation groove 222 contacts the bottom of the installation groove 222. An installation through hole is provided on the installation member 250. The installation through hole is arranged along a first preset direction. A part of the structure of the limiting member 230 is located in the installation through hole and can slide in the installation through hole along the first preset direction. The provided installation member 250 plays a role in installing and supporting the limiting member 230.
[0057] Refer to Figures 4 to 7 , in an implementation manner, an operation head 260 is installed on the limiting member 230. A guiding hole 223 is provided on the surface of the connecting claw 220. The guiding hole 223 is arranged along the first preset direction and communicates with the installation groove 222. The operation head 260 is located in the guiding hole 223 and can slide in the guiding hole 223 along the first preset direction to drive the limiting member 230 to slide in the installation groove 222.
[0058] In this implementation manner, a part of the structure of the operation head 260 is located in the guiding hole 223, and another part of the structure of the operation head 260 is located on one side of the connecting claw 220, so as to facilitate the operator to drive the operation head 260 to slide in the guiding hole 223. The operation head 260 is fixedly connected to the limiting member 230 by a connecting screw to enhance the connection strength between the operation head 260 and the limiting member 230. The operation head 260 and the guiding hole 223 used in cooperation in the present application help to drive the limiting member 230 to slide in the installation groove 222, which not only helps the connecting member 120 to be inserted into the claw groove 221, but also helps the connecting member 120 to be withdrawn from the claw groove 221.
[0059] In addition, during the process of inserting the connecting component 120 into the claw groove 221, the operating head 260 slides in a direction away from the claw groove 221; after the connecting component 120 is inserted into the claw groove 221, the operating head 260 contacts the hole wall of the guiding hole 223 that is away from the claw groove 221; after the connecting component 120 is withdrawn from the claw groove 221, the operating head 260 can contact the hole wall of the guiding hole 223 that is close to the claw groove 221. The provided guiding hole 223 not only plays a guiding role but also a limiting role.
[0060] Refer to Figures 1 to 4 , in one embodiment, the number of the first wind-resistant bodies 110 is two, the number of the second wind-resistant bodies 210 is one, the second wind-resistant body 210 is located between the two first wind-resistant bodies 110, and the two first wind-resistant bodies 110 and the second wind-resistant body 210 are arranged at intervals; when the wind-resistant frame is in the working state, there is a third included angle between the second wind-resistant body 210 and the first wind-resistant body 110, and the sum of the first included angle, the second included angle, and the third included angle is 180°.
[0061] The above design further enhances the stability, structural strength, and wind resistance of the wind-resistant frame in the working state. In addition, in other embodiments, the number of the first wind-resistant bodies 110 can be one, the number of the second wind-resistant bodies 210 is two, and the first wind-resistant body 110 is located between the two second wind-resistant bodies 210; of course, in another embodiment, the number of the first wind-resistant bodies 110 can also be two or more, and the number of the second wind-resistant bodies 210 can also be two or more.
[0062] Refer to Figure 1 , Figure 3 and Figures 8 to 10 , in one embodiment, the wind-resistant frame further includes a first connecting portion 300, the first connecting portion 300 includes a first connecting member 310 and a second connecting member 320 that are detachably connected, one of the first connecting member 310 and the second connecting member 320 is used for being installed on the component 500 to be installed, and the other is installed on the first wind-resistant portion 100; when the wind-resistant frame is in the working state, the first connecting member 310 and the second connecting member 320 are separated; when the wind-resistant frame is in the folded state, the first connecting member 310 and the second connecting member 320 are connected.
[0063] In this embodiment, the first connecting member 310 and the second connecting member 320 can be detachably connected by means of snap connection, plug connection or magnetic attraction; one of the first connecting member 310 and the second connecting member 320 is installed on the component 500 to be installed, and the other is installed on the first wind-resistant body 110. In addition, the number of the first connecting portions 300 is the same as the number of the first wind-resistant bodies 110, and a plurality of first connecting portions 300 are respectively arranged in one-to-one correspondence with a plurality of first wind-resistant bodies 110.
[0064] When the wind-resistant frame of the present application needs to be used, first separate the first connecting member 310 and the second connecting member 320, and then drive the first wind-resistant portion 100 to rotate on the component 500 to be installed until the angle between the first wind-resistant portion 100 and the reference surface 510 reaches the first angle and then stop rotating; then drive the second wind-resistant portion 200 to rotate on the component 500 to be installed until the angle between the second wind-resistant portion 200 and the reference surface 510 reaches the second angle and then stop rotating; subsequently, connect the first wind-resistant portion 100 and the second wind-resistant portion 200 to enhance the structural strength and stability of the wind-resistant frame. When the wind-resistant frame needs to be folded, first separate the first wind-resistant portion 100 and the second wind-resistant portion 200, and then drive the first wind-resistant portion 100 to rotate on the component 500 to be installed until the first wind-resistant portion 100 is parallel to the reference surface 510 and then stop rotating, and connect the first connecting member 310 and the second connecting member 320, so as to prevent the first wind-resistant portion 100 from shaking and ensure the stability of the first wind-resistant portion 100 during transportation; subsequently, drive the second wind-resistant portion 200 to rotate on the component 500 to be installed until the second wind-resistant portion 200 is parallel to the reference surface 510 and then stop rotating, and the folded wind-resistant frame effectively reduces the volume of the wind-resistant frame. The first connecting member 310 and the second connecting member 320 used in cooperation in the present application can not only connect the first wind-resistant portion 100 with the component 500 to be installed, thereby preventing the first wind-resistant portion 100 from shaking randomly, but also enable the first wind-resistant portion 100 to rotate on the component 500 to be installed.
[0065] Refer to Figures 8 to 10, in one embodiment, the first connecting member 310 includes a first mounting body 311 and a first connecting body 312. Among them, the first mounting body 311 is used for mounting on the component 500 to be mounted, the second connecting member 320 is mounted on the first wind-resistant portion 100, a first connecting groove 311a is provided on the first mounting body 311, and the second connecting member 320 can be inserted into the first connecting groove 311a or withdrawn from the first connecting groove 311a; the first connecting body 312 is slidably mounted on the first mounting body 311, a second connecting groove 321 is provided on the second connecting member 320, and the first connecting body 312 can prevent the second connecting member 320 from disengaging from the first connecting groove 311a by being inserted into the second connecting groove 321, and can withdraw the second connecting member 320 from the second connecting groove 321 by being withdrawn outside the second connecting groove 321.
[0066] When the first connecting member 310 and the second connecting member 320 are connected, the second connecting member 320 is inserted into the first connecting groove 311a, and the first connecting body 312 is inserted into the second connecting groove 321; when the first connecting member 310 and the second connecting member 320 are separated, the second connecting member 320 is located outside the first connecting groove 311a, and the first connecting body 312 is located outside the second connecting groove 321.
[0067] In this embodiment, the first mounting body 311 can be a mounting block and can be fixedly mounted on the component 500 to be mounted by using connection screws or welding processes. The first connecting groove 311a is provided on the surface of the first mounting body 311 close to the second connecting member 320; the second connecting member 320 can be a connecting block and can be fixedly mounted on the first wind-resistant body 110 by using connection screws or welding processes. The second connecting groove 321 can be provided on the surface of the second connecting member 320 except for the surface where the orthographic projection plane is located at the bottom of the first connecting groove 311a; the first connecting body 312 can be a connecting pin, and there is an included angle between the sliding direction of the first connecting body 312 and the extending direction of the first connecting groove 311a, so that the first connecting body 312 can prevent the second connecting member 320 from disengaging from the first connecting groove 311a by being inserted into the second connecting groove 321, and can withdraw the second connecting member 320 from the second connecting groove 321 by being withdrawn outside the second connecting groove 321.
[0068] When the first connecting member 310 and the second connecting member 320 in this application are connected, first, the first wind-resistant body 110 is pushed to rotate towards the direction of the first connecting groove 311a until the second connecting member 320 is inserted into the first connecting groove 311a and then the pushing stops. Then, the first connecting body 312 is inserted into the second connecting groove 321. At this time, the second connecting member 320 will be installed in the first connecting groove 311a under the blocking action of the first connecting body 312, and the second connecting member 320 will also be connected to the first connecting member 310. When it is necessary to separate the first connecting member 310 and the second connecting member 320, first, the first connecting body 312 is pulled out from the second connecting groove 321, and then the first wind-resistant body 110 is driven to rotate in a direction away from the first connecting member 310 until the second connecting member 320 is pulled out from the first connecting groove 311a and then the rotation stops. The first mounting body 311, the first connecting body 312, the second connecting member 320, the first connecting groove 311a and the second connecting groove 321 used in cooperation in this application not only help to realize a firm and convenient connection between the first connecting member 310 and the second connecting member 320, but also help to realize a convenient separation between the first connecting member 310 and the second connecting member 320.
[0069] Referring to Figures 8 to 10 , in an embodiment, a sliding groove is provided on the surface of the first mounting body 311. The first connecting body 312 is located in the sliding groove and can slide in the sliding groove in a direction close to or away from the first connecting groove 311a; the first connecting body 312 has a second limiting surface, and a reset body 313 is provided between the second limiting surface and the bottom of the sliding groove; during the process of inserting the second connecting member 320 into the first connecting groove 311a, the first connecting body 312 located in the first connecting groove 311a moves in a direction away from the first connecting groove 311a, and the reset body 313 switches from the natural state to the compressed state; after the second connecting groove 321 is aligned with the sliding groove, the first connecting body 312 is inserted into the second connecting groove 321 under the pushing of the reset body 313.
[0070] In this embodiment, the moving direction of the first connecting body 312 forms a second preset direction. The length direction of the first connecting member 310 is parallel to the second preset direction. The extending direction of the sliding groove is parallel to the second preset direction and is parallel to the extending direction of the second connecting groove 321. The extending direction of the sliding groove is also perpendicular to the extending direction of the first connecting groove 311a. When the first connecting member 310 and the second connecting member 320 are connected, a part of the structure of the second connecting member 320 is located in the first connecting groove 311a, and a part of the structure of the first connecting body 312 is located in the second connecting groove 321.
[0071] After the second connecting member 320 is pulled out of the first connecting groove 311a, the first connecting body 312 can be inserted into the first connecting groove 311a; the first connecting body 312 includes a first part and a second part, the diameter of the first part is larger than that of the second part, the second part is located on the side of the first part away from the first connecting groove 311a and is fixedly connected to the first part; the sliding groove is a stepped groove, the sliding groove includes a first groove section and a second groove section, the groove diameter of the first groove section is larger than that of the second groove section, the first groove section communicates with the first connecting groove 311a, the second groove section is located on the side of the first groove section away from the first connecting groove 311a and communicates with the first groove section and penetrates through the surface of the first mounting body 311. The reset body 313 is a reset spring, the reset spring is located between the surface of the first part close to the second part and the bottom of the first groove section and is sleeved on the second part, and the surface of the first part close to the second part is formed as a second limiting surface.
[0072] As the second connecting member 320 in the present application gradually enters the first connecting groove 311a, a partial structure of the first connecting body 312 located in the first connecting groove 311a will slide into the sliding groove under the thrust applied by the second connecting member 320, and at the same time, the reset body 313 will also switch from the natural state to the compressed state; during the process of inserting the second connecting member 320 into the first connecting groove 311a, the first connecting body 312 will be entirely located in the sliding groove, and the reset body 313 is in the compressed state. At this time, the first connecting body 312 will apply a thrust to the second connecting member 320 under the reset elastic force applied by the reset body 313; when the second connecting groove 321 is aligned with the sliding groove, the pushing of the second connecting member 320 is stopped, and the first connecting body 312 will be inserted into the second connecting groove 321 under the reset elastic force applied by the reset body 313. At this time, the second connecting member 320 will be stably installed in the first connecting groove 311a. When the second connecting member 320 in the present application needs to be pulled out of the first connecting groove 311a, first drive the first connecting body 312 to be pulled out of the second connecting groove 321, and then drive the second connecting member 320 to be pulled out of the first connecting groove 311a. The provided reset body 313 not only helps to strengthen the stability of the first connecting body 312 in the second connecting groove 321, thereby strengthening the connection strength between the first connecting member 310 and the second connecting member 320, but also facilitates the pulling out of the second connecting member 320 from the first connecting groove 311a.
[0073] In addition, to facilitate the sliding of the first connecting body 312 in the sliding groove under the push of the second connecting member 320, a guiding inclined surface is provided on the end surface of the first connecting body 312 close to the first connecting groove 311a, and the guiding inclined surface is arranged facing the notch of the first connecting groove 311a; at the same time, to facilitate the smooth pushing of the second connecting member 320 to move the first connecting body 312, a guiding inclined surface is provided on the end surface of the second connecting member 320 close to the first connecting groove 311a, and the guiding inclined surface is arranged in the direction away from the sliding groove.
[0074] Refer to Figures 8 to 10 Figures 8 to 10 , in one embodiment, the first connector 312 includes a connection body 312a and an operation cap 312b. The connection body 312a can be inserted into or withdrawn from the second connection groove 321. The operation cap 312b is located on one side of the first mounting body 311 and is connected to the connection body 312a to drive the connection body 312a to move.
[0075] In this embodiment, the connection body 312a can prevent the second connector 320 from detaching from the first connection groove 311a by being inserted into the second connection groove 321, and can withdraw the second connector 320 from the second connection groove 321 by being withdrawn outside the second connection groove 321. The operation cap 312b is connected to the connection body 312a by a connection screw to enhance the connection strength between the operation cap 312b and the connection body 312a. The connection body 312a and the operation cap 312b used in cooperation in this application help drive the connection body 312a to slide in the chute, which not only helps insert the connection body 312a into the second connection groove 321, but also helps withdraw the connection body 312a from the second connection groove 321.
[0076] Refer to Figure 2 、 Figure 4 、 Figure 5 and Figure 7 Figure 7 , in one embodiment, the wind-resistant frame further includes a second connection portion 400. The second connection portion 400 includes a third connector 410 and a fourth connector 420 that are detachably connected. One of the third connector 410 and the fourth connector 420 is used to be installed on the component to be installed 500, and the other is installed on the second wind-resistant portion 200. When the wind-resistant frame is in the working state, the third connector 410 and the fourth connector 420 are separated. When the wind-resistant frame is in the folded state, the third connector 410 and the fourth connector 420 are connected.
[0077] In this embodiment, the third connector 410 and the fourth connector 420 can be detachably connected by a clamping method, a plugging method or a magnetic attraction method. One of the third connector 410 and the fourth connector 420 is installed on the component to be installed 500, and the other is installed on the second wind-resistant body 210.
[0078] When the wind-resistant frame of the present application needs to be used, first separate the first connecting member 310 and the second connecting member 320, and then drive the first wind-resistant part 100 to rotate on the component 500 to be installed until the angle between the first wind-resistant part 100 and the reference surface 510 reaches the first angle and then stop rotating; then separate the third connecting member 410 and the fourth connecting member 420, and then drive the second wind-resistant part 200 to rotate on the component 500 to be installed until the angle between the second wind-resistant part 200 and the reference surface 510 reaches the second angle and then stop rotating; finally, connect the first wind-resistant part 100 and the second wind-resistant part 200 to enhance the structural strength and stability of the wind-resistant frame. When the wind-resistant frame needs to be folded, first separate the first wind-resistant part 100 and the second wind-resistant part 200, and then drive the first wind-resistant part 100 to rotate on the component 500 to be installed until the first wind-resistant part 100 is parallel to the reference surface 510 and then stop rotating, and connect the first connecting member 310 and the second connecting member 320, so as to prevent the first wind-resistant part 100 from shaking and ensure the stability of the first wind-resistant part 100 during transportation; then drive the second wind-resistant part 200 to rotate on the component 500 to be installed until the second wind-resistant part 200 is parallel to the reference surface 510 and then stop rotating, and connect the third connecting member 410 and the fourth connecting member 420, so as to prevent the second wind-resistant part 200 from shaking and ensure the stability of the second wind-resistant part 200 during transportation. The third connecting member 410 and the fourth connecting member 420 used in cooperation in the present application can not only connect the second wind-resistant part 200 to the component 500 to be installed, thereby preventing the second wind-resistant part 200 from shaking randomly, but also enable the second wind-resistant part 200 to rotate on the component 500 to be installed.
[0079] Referring to Figure 7 , in an embodiment, the third connecting member 410 is used to be installed on the component 500 to be installed, and the structure of the third connecting member 410 is the same as that of the first connecting member 310; the fourth connecting member 420 is installed on the second wind-resistant part 200, and the structure of the fourth connecting member 420 is the same as that of the second connecting member 320. The above design ensures that the third connecting member 410 and the fourth connecting member 420 can be detachably connected while reducing the manufacturing difficulty and cost of the wind-resistant frame.
[0080] Referring to Figures 1 to 10 , according to another aspect of the present application, an embodiment of the present application further provides a display screen, which includes a screen body and the above-mentioned wind-resistant frame. Among them, both the first wind-resistant part 100 and the second wind-resistant part 200 are pivotally connected to the screen body, and the screen body forms the component 500 to be installed.
[0081] In the embodiment of the present application, the display screen is an LED display screen. The English name of LED is Light Emitting Diode, and the Chinese name is light emitting diode; the first wind-resistant part 100 can be pivotally connected to the reference surface 510 of the screen body by means of a hinge or a pivot, and the second wind-resistant part 200 can be pivotally connected to the reference surface 510 of the screen body by means of a hinge or a pivot; the first wind-resistant part 100 and the second wind-resistant part 200 can be detachably connected by means of snap connection, plug connection or magnetic attraction connection.
[0082] In summary, implementing the wind-resistant frame and the display screen provided in this embodiment has at least the following beneficial technical effects: When the wind-resistant frame of the present application needs to be used, first drive the first wind-resistant part 100 to rotate on the component 500 to be installed until the angle between the first wind-resistant part 100 and the reference surface 510 reaches the first angle and then stop rotating; then drive the second wind-resistant part 200 to rotate on the component 500 to be installed until the angle between the second wind-resistant part 200 and the reference surface 510 reaches the second angle and then stop rotating; subsequently, connect the first wind-resistant part 100 and the second wind-resistant part 200 to enhance the structural strength and stability of the wind-resistant frame. When the wind-resistant frame needs to be folded, first separate the first wind-resistant part 100 and the second wind-resistant part 200, and then drive the first wind-resistant part 100 to rotate on the component 500 to be installed until the first wind-resistant part 100 is parallel to the reference surface 510 and then stop rotating; subsequently, drive the second wind-resistant part 200 to rotate on the component 500 to be installed until the second wind-resistant part 200 is parallel to the reference surface 510 and then stop rotating. The folded wind-resistant frame effectively reduces the volume of the wind-resistant frame. The detachably connected first wind-resistant part 100 and second wind-resistant part 200 not only enhance the structural strength and wind resistance of the component 500 to be installed, but also help the wind-resistant frame of the present application to be quickly folded, facilitating subsequent storage and transportation; in addition, the above design also enables the wind-resistant frame of the present application to be folded to the greatest extent, thereby effectively reducing the volume of the wind-resistant frame.
[0083] The above is only a preferred embodiment of the present application and is not intended to limit the present application. Any modifications, equivalent replacements, and improvements made within the spirit and principle of the present application shall be included in the protection scope of the present application.
Claims
1. An anti-wind frame, characterized in that, It includes a first wind-resistant part and a second wind-resistant part that are detachably connected, and both the first wind-resistant part and the second wind-resistant part are used for pivotally connecting to a component to be installed; The wind-resistant frame has a working state and a folded state, and the component to be installed has a reference surface; when the wind-resistant frame is in the working state, the first wind-resistant part and the second wind-resistant part are connected, the first wind-resistant part can have a first included angle with the reference surface, and the second wind-resistant part can have a second included angle with the reference surface; when the wind-resistant frame is in the folded state, the first wind-resistant part is separated from the second wind-resistant part, the first wind-resistant part can be parallel to the reference surface, and the second wind-resistant part can be parallel to the reference surface.
2. The wind-resistant frame according to claim 1, characterized in that, The first wind-resistant part includes a first wind-resistant body and a first connection structure. Among them, the first wind-resistant body is used for pivotally connecting to the component to be installed, and the first connection structure is installed on the first wind-resistant body; The second wind-resistant part includes a second wind-resistant body and a second connection structure. Among them, the second wind-resistant body is used for pivotally connecting to the component to be installed, and the second connection structure is installed on the second wind-resistant body; When the wind-resistant frame is in the working state, the first connection structure is connected to the second connection structure; when the wind-resistant frame is in the folded state, the first connection structure is separated from the second connection structure.
3. The wind-resistant frame according to claim 2, characterized in that, One of the first connection structure and the second connection structure is a connecting component, and the other is a connecting claw, and a claw groove is provided on the connecting claw; The first wind-resistant part and the second wind-resistant part are connected by inserting the connecting component into the claw groove; the first wind-resistant part and the second wind-resistant part are separated by pulling the connecting component out of the claw groove.
4. The wind-resistant frame according to claim 3, characterized in that, A limiting member is installed on the connecting claw, and an installation groove is provided on the groove wall of the claw groove. The limiting member can slide in the installation groove along a direction close to or away from the claw groove to insert into or withdraw from the claw groove; the sliding direction of the limiting member is a first preset direction; During the process of inserting the connecting component into the claw groove, the limiting member located in the claw groove moves in a direction away from the claw groove; after the connecting component is inserted into the claw groove, the limiting member is located outside the claw groove and applies a thrust to the connecting component.
5. The wind-resistant frame according to claim 4, characterized in that, A reset member is provided in the installation groove, and the limiting member has a first limiting surface. The reset member is located between the first limiting surface and the bottom of the installation groove; During the process of inserting the connecting component into the claw groove, the reset member switches from the natural state to the compressed state; After the connecting component is inserted into the claw groove, the reset member is in the compressed state and applies a thrust towards the claw groove to the limiting member; and / or, An operation head is installed on the limiting member, and a guiding hole is provided on the surface of the connecting claw. The guiding hole is arranged along the first preset direction and communicates with the installation groove. The operation head is located in the guiding hole and can slide in the guiding hole along the first preset direction to drive the limiting member to slide in the installation groove; and / or, The number of the first wind-resistant bodies is two, the number of the second wind-resistant body is one, the second wind-resistant body is located between the two first wind-resistant bodies, and the two first wind-resistant bodies and the second wind-resistant body are arranged at intervals; When the wind-resistant frame is in the working state, there is a third included angle between the second wind-resistant body and the first wind-resistant body, and the sum of the first included angle, the second included angle and the third included angle is 180°.
6. The wind-resistant frame according to claim 1, characterized in that, The wind-resistant frame further includes a first connecting portion, and the first connecting portion includes a first connecting member and a second connecting member that are detachably connected. One of the first connecting member and the second connecting member is used for being installed on the to-be-installed component, and the other is installed on the first wind-resistant portion; When the wind-resistant frame is in the working state, the first connecting member and the second connecting member are separated; when the wind-resistant frame is in the folded state, the first connecting member and the second connecting member are connected.
7. The wind-resistant frame according to claim 6, characterized in that, The first connecting member includes a first mounting body and a first connecting body. Among them, the first mounting body is used for being installed on the to-be-installed component, the second connecting member is installed on the first wind-resistant portion, a first connecting groove is provided on the first mounting body, and the second connecting member can be inserted into or withdrawn from the first connecting groove; the first connecting body is slidably mounted on the first mounting body, a second connecting groove is provided on the second connecting member, and the first connecting body can block the second connecting member from disengaging from the first connecting groove by being inserted into the second connecting groove, and can make the second connecting member be withdrawn from the second connecting groove by being withdrawn out of the second connecting groove; When the first connecting member and the second connecting member are connected, the second connecting member is inserted into the first connecting groove, and the first connecting body is inserted into the second connecting groove; when the first connecting member and the second connecting member are separated, the second connecting member is located outside the first connecting groove, and the first connecting body is located outside the second connecting groove.
8. The wind-resistant frame according to claim 7, characterized in that, A sliding groove is provided on the surface of the first mounting body, and the first connecting body is located in the sliding groove and can slide in the sliding groove along a direction close to or away from the first connecting groove; The first connecting body has a second limiting surface, and a reset body is provided between the second limiting surface and the bottom of the sliding groove; during the process of inserting the second connecting member into the first connecting groove, the first connecting body located in the first connecting groove moves in a direction away from the first connecting groove, and the reset body is switched from the natural state to the compressed state; After the second connecting groove is aligned with the sliding groove, the first connecting body is inserted into the second connecting groove under the push of the reset body; and / or The first connecting body includes a connecting body and an operating cap. The connecting body can be inserted into or withdrawn from the second connecting groove, and the operating cap is located on one side of the first mounting body and is connected to the connecting body to drive the connecting body to move.
9. The wind-resistant frame according to any one of claims 1 to 8, characterized in that, The wind resistance frame further includes a second connecting portion, the second connecting portion includes a third connecting member and a fourth connecting member that are detachably connected, and one of the third connecting member and the fourth connecting member is used for being installed on the to-be-installed component, and the other is installed on the second wind resistance portion; When the wind resistance frame is in the working state, the third connecting member and the fourth connecting member are separated; when the wind resistance frame is in the folded state, the third connecting member and the fourth connecting member are connected.
10. A display screen, characterized in that, It includes a screen body and the wind resistance frame according to any one of claims 1 to 9, the first wind resistance portion and the second wind resistance portion are both pivotally connected to the screen body, and the screen body is formed as the to-be-installed component.