Upper beam structure of shutter with built-in hollow glass
By introducing buffering and sound insulation design into the upper beam structure of hollow glass built-in blinds, the problems of noise transmission and structural stability are solved, good sound insulation and noise reduction and impact resistance are achieved, and the service life and safety of hollow glass built-in blinds are improved.
Patent Information
- Application Number
- CN202421664656.9
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-07-15
- Publication Date
- 2025-07-11
- Estimated Expiration
- 2034-07-15
AI Technical Summary
When the upper beam structure of conventional hollow glass built-in blinds is faced with external vibration and noise, it is difficult to effectively eliminate noise and cause sound leakage, affecting the indoor environment.
A upper beam structure with built-in blinds in hollow glass is designed, using a combination of main beam frame and side beam frame, combining buffer blocks and sound insulation blocks, internal and external reinforcement ribs, absorbing and reducing noise transmission through the matching design of buffer cavity and sound insulation cavity.
Effectively absorb and reduce noise transmission, improve structural stability and impact resistance, reduce the risk of structural damage, improve service life and sound insulation and noise reduction effects.
Smart Images

Figure CN223089195U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of built-in louvered insulating glass, in particular to an upper beam structure of a built-in louvered insulating glass. Background Technique
[0002] The built-in louvered insulating glass, namely the built-in louvered insulating glass system, is abbreviated as hollow louvers. It is a new type of energy-saving product that installs louvers inside the insulating glass, integrating the traditional louver curtain with the insulating glass, saving the use space and inconvenience, and realizing the comprehensive performance of heat preservation of the insulating glass and sunshading of the louver curtain. The hollow louvers have the functions of lifting the louvers and flipping the angle by 180 degrees. By manually or electrically controlling the closing device and the lifting device, the operation control of the louvers can be realized. The hollow louvers can realize the lifting and flipping of the louvers, with reasonable structure and simple operation. It has good sunshading performance, improves the heat preservation performance of the insulating glass, improves the indoor light environment, and is widely applicable to energy-saving building doors and windows;
[0003] Among them, the structural system of the window body of the built-in louvered insulating glass includes an upper beam, a lower beam, a left beam and a right beam. These four beams are connected by corner connecting seats to form a structure in the shape of a Chinese character 'kou'. Since the upper, lower, left and right beams are hollow tubular structures, the industry also habitually calls the upper beam the upper cross-frame tube, the lower beam the lower cross-frame tube, the left beam the left longitudinal frame tube, and the right beam the right longitudinal frame tube.
[0004] In the conventional upper beam structure of the built-in louvered insulating glass, a hollow frame tube structure is adopted. Although it has a certain degree of structural lightness, in its own structure during use, it is difficult to effectively assist in reducing the vibration or noise caused by the external environment, and the problem of 'leaking sound' occurs, affecting the indoor environment.
[0005] Therefore, in view of this, research and improvement are carried out on the existing structure and deficiencies, and an upper beam structure of a built-in louvered insulating glass is proposed. Content of the Utility Model
[0006] The purpose of the utility model is to provide an upper beam structure of a built-in louvered insulating glass to solve the problems raised in the above background technique.
[0007] To achieve the above object, the present utility model provides the following technical solutions: An upper beam structure of a built-in blind in a hollow glass, comprising a main beam frame and side beam frames. A combination member is installed at the top of the main beam frame. The side beam frames are connected to the left and right sides of the main beam frame, and a sealing plate is installed at the bottom of the side beam frames. Moreover, a buffer block is inserted on one side of the side beam frame close to the main beam frame, and a sound insulation block is inserted on the side of the side beam frame far from the main beam frame. The side beam frame includes a side frame body, a sealing groove, a buffer cavity, and a sound insulation cavity. A sealing groove is provided at the upper end of the side frame body close to the combination member, a buffer cavity is provided inside the side frame body on the side close to the main beam frame, and a sound insulation cavity is provided inside the side frame body on the side far from the buffer cavity.
[0008] Further, the main beam frame includes a beam body, connection holes, and an internal device cavity. Connection holes are formed on the top surface of the beam body, and an internal device cavity is provided in the center of the beam body.
[0009] Further, the main beam frame further includes internal reinforcing ribs and external reinforcing ribs. Internal reinforcing ribs are provided in the middle of the inner wall of the internal device cavity, and external reinforcing ribs are provided on the outer bottom surface of the beam body.
[0010] Further, the connection holes are symmetrically formed at the front and rear ends of the beam body, and the cross-section of the beam body is arranged in a horizontally inverted "concave" shape structure.
[0011] Further, the combination member includes a shock-absorbing plate, a fixing strip, and fixing bolts. The top of the shock-absorbing plate is connected to the fixing strip, and fixing bolts vertically penetrate through both the front and rear ends of the shock-absorbing plate.
[0012] Further, the shock-absorbing plate and the fixing strip are made of the same material, and the fixing strip is symmetrically installed on the top surface of the shock-absorbing plate on the left and right.
[0013] Further, the main beam frame and the side beam frames are integrally structured, and the main beam frame and the combination member are movably connected.
[0014] Further, the outer surface structure of the buffer block matches the inner surface structure of the buffer cavity, and the outer surface structure of the sound insulation block matches the inner surface structure of the sound insulation cavity.
[0015] The present utility model provides an upper beam structure of a built-in blind in a hollow glass, having the following beneficial effects:
[0016] 1. The utility model provides symmetrically arranged side beam frames on the left and right sides of the main beam frame, wherein the beam body cooperates with the structural connection of the side frame body, and cooperates with the inner reinforcing ribs arranged on the inner wall surface of the inner device cavity, and the outer reinforcing ribs arranged on the outer surface of the bottom of the beam body, so that the overall structure has good structural strength both in the vertical direction and in the horizontal direction, so as to ensure that the structures such as the shutters and glass panels connected thereto can be well supported by the structure, so as to ensure the overall structural stability. In addition, by inserting structurally matching buffer blocks in the buffer cavity and structurally matching sound insulation blocks in the sound insulation cavity, the entire upper beam structure can further effectively absorb and alleviate the noise from the inside to the outside or from the right outside to the inside to the greatest extent, so as to ensure that the indoor sound is avoided from leaking as much as possible, and to ensure that the outdoor environmental noise will not cause unnecessary influence on the indoor personnel, thereby playing a good role of sound insulation and noise reduction. At the same time, the use of the above structure can further ensure that the entire upper beam structure has good impact resistance, and the characteristics of the structure and the material play a role of impact absorption and alleviation, reduce the damage of the overall structure caused by accidental non-acting force, and improve the service life.
[0017] 2. The utility model installs an assembly on the top surface of the main beam frame, wherein the shock-absorbing plate and the fixing strip are made of the same material, so that after the glass structure is inserted into the fixing strip, the shock-absorbing plate and the fixing strip can be used to provide a structural connection with the main beam frame, and the material property of the glass structure that can absorb impact can be used to provide good shock-absorbing and buffering protection for the glass structure, thereby avoiding rigid contact with the main beam frame and reducing the problem of structural breakage when subjected to external forces, thereby ensuring the safety and stability of the entire structure. The connecting holes opened on the front and rear end surfaces of the beam body and the fixing bolts installed on the front and rear end surfaces of the shock-absorbing plate ensure sufficient flexibility between the main beam frame and the assembly, while playing a role of structural support and stability, thereby reducing the inconvenience of subsequent glass structure installation. BRIEF DESCRIPTION OF THE DRAWINGS
[0018] Figure 1 This is a schematic diagram of the main body side view of the upper beam structure of a hollow glass built-in blinds of the utility model;
[0019] Figure 2 This is a schematic diagram of the main beam frame and side beam frame structure of the upper beam structure of a hollow glass built-in blinds of the utility model;
[0020] Figure 3 The utility model is a three-dimensional structural schematic diagram of an assembly of an upper beam structure of a hollow glass with built-in blinds.
[0021] In the figure: 1. Main beam frame; 101. Beam body; 102. Connection hole; 103. Inner device cavity; 104. Inner reinforcing rib; 105. Outer reinforcing rib; 2. Assembly; 201. Shock-absorbing plate; 202. Fixed strip; 203. Fixed bolt; 3. Side beam frame; 301. Side frame body; 302. Sealing groove; 303. Buffer cavity; 304. Sound insulation cavity; 4. Sealing plate; 5. Buffer block; 6. Sound insulation block. Detailed implementation mode
[0022] The following further describes in detail the implementation mode of the present utility model in conjunction with the accompanying drawings and embodiments. The following embodiments are used to illustrate the present utility model, but cannot be used to limit the scope of the present utility model.
[0023] As Figures 1 to 3 shown, an upper beam structure of a built-in blind for insulating glass includes a main beam frame 1 and a side beam frame 3. A combination 2 is installed at the top of the main beam frame 1. The side beam frame 3 is connected to the left and right sides of the main beam frame 1. A sealing plate 4 is installed at the bottom of the side beam frame 3. A buffer block 5 is inserted on the side of the inner part of the side beam frame 3 close to the main beam frame 1, and a sound insulation block 6 is inserted on the side of the inner part of the side beam frame 3 far from the main beam frame 1. The side beam frame 3 includes a side frame body 301, a sealing groove 302, a buffer cavity 303, and a sound insulation cavity 304. A sealing groove 302 is provided at the upper end of the side frame body 301 close to the combination 2. A buffer cavity 303 is provided on the side of the inner part of the side frame body 301 close to the main beam frame 1, and a sound insulation cavity 304 is provided on the side of the inner part of the side frame body 301 far from the buffer cavity 303. The outer surface structure of the buffer block 5 matches the inner surface structure of the buffer cavity 303, and the outer surface structure of the sound insulation block 6 matches the inner surface structure of the sound insulation cavity 304. Among them, the beam body 101 is connected with the structure of the side frame body 301, and at the same time, in cooperation with the inner reinforcing rib 104 provided on the inner wall surface of the inner device cavity 103 and the outer reinforcing rib 105 provided on the outer surface of the bottom of the beam body 101, the overall structure has good structural strength both in the vertical direction and the horizontal direction. In addition, by inserting a buffer block 5 with a matching structure into the buffer cavity 303 respectively and inserting a sound insulation block 6 with a matching structure into the sound insulation cavity 304, the entire upper beam structure can further effectively absorb and relieve the noise from inside to outside or from outside to inside to the greatest extent.
[0024] As Figures 1 to 3As shown in the figure, the main beam frame 1 includes a beam body 101, connection holes 102, and an internal device cavity 103. Connection holes 102 are provided on the top surface of the beam body 101, and an internal device cavity 103 is provided in the center of the beam body 101. The main beam frame 1 further includes internal reinforcing ribs 104 and external reinforcing ribs 105. The internal reinforcing ribs 104 are provided in the middle of the inner wall of the internal device cavity 103, and the external reinforcing ribs 105 are provided on the bottom side surface of the beam body 101. The connection holes 102 are symmetrically provided at the front and rear ends of the beam body 101, and the cross-section of the beam body 101 is arranged in a horizontally inverted "concave" shape. The assembly 2 includes a shock-absorbing plate 201, a fixing strip 202, and fixing bolts 203. The fixing strip 202 is connected to the top of the shock-absorbing plate 201, and the fixing bolts 203 vertically penetrate through the front and rear ends of the shock-absorbing plate 201. The shock-absorbing plate 201 and the fixing strip 202 are made of the same material, and the fixing strip 202 is symmetrically installed on the top surface of the shock-absorbing plate 201. The main beam frame 1 and the side beam frame 3 are integrally structured, and the main beam frame 1 and the assembly 2 are movably connected. Among them, both the shock-absorbing plate 201 and the fixing strip 202 are made of the same material. While providing a structural connection with the main beam frame 1 using the shock-absorbing plate 201 and the fixing strip 202, the material characteristics of being able to absorb impacts can be utilized to provide good shock-absorbing and buffering protection for the glass structure.
[0025] In summary, as Figures 1 to 3 shown in the figure, for the upper beam structure of the insulating glass with built-in blinds, during use, first, the side surface of the beam body 101 with the connection holes 102 is abutted against the side surface of the shock-absorbing plate 201 away from the fixing strip 202, and the fixing bolts 203 at the front and rear ends of the shock-absorbing plate 201 are screwed into the inside of the connection holes 102 and fixed tightly, so that the main beam frame 1 and the assembly 2 are fixedly connected to each other;
[0026] Then, use the sealing plate 4 and insert it horizontally along the bottom of the buffer cavity 303 on one side inside the side frame body 301, so that the sealing plate 4 is installed on the bottom surface of the side frame body 301. Then, insert the buffer block 5 and the sound insulation block 6 horizontally into the buffer cavity 303 and the sound insulation cavity 304 respectively, so as to realize the cooperation between the various structures and produce the effect of sound insulation and noise reduction, providing a good environment for the interior. The beam body 101 and the side frame body 301, together with the internal reinforcing ribs 104 and the external reinforcing ribs 105, ensure that the entire upper beam structure has sufficient structural strength during use to guarantee the stability and protection of the overall structure of the insulating glass with built-in blinds.
[0027] The embodiments of the present utility model are given for purposes of illustration and description, and are not exhaustive or limit the present utility model to the disclosed forms. Many modifications and variations are obvious to those of ordinary skill in the art. The embodiments are chosen and described in order to better illustrate the principles and practical applications of the present utility model, and enable those of ordinary skill in the art to understand the present utility model and design various embodiments with various modifications suitable for specific purposes.
Claims
1. The upper beam structure of a built-in blind for insulating glass, comprising a main beam frame (1) and side beam frames (3), is characterized in that: A component (2) is installed on the top of the main beam frame (1). The side beam frames (3) are connected to the left and right sides of the main beam frame (1), and a sealing plate (4) is installed at the bottom of the side beam frames (3). Moreover, a buffer block (5) is inserted on the side of the inner part of the side beam frame (3) close to the main beam frame (1), and a sound insulation block (6) is inserted on the side of the inner part of the side beam frame (3) far from the main beam frame (1). The side beam frame (3) includes a side frame body (301), a sealing groove (302), a buffer cavity (303), and a sound insulation cavity (304). A sealing groove (302) is arranged at the upper end of the side frame body (301) close to the component (2), a buffer cavity (303) is arranged on the side of the inner part of the side frame body (301) close to the main beam frame (1), and a sound insulation cavity (304) is arranged on the side of the inner part of the side frame body (301) far from the buffer cavity (303).
2. The upper beam structure of a built-in blind for insulating glass according to claim 1, characterized in that, The main beam frame (1) includes a beam body (101), connecting holes (102), and an inner device cavity (103). Connecting holes (102) are formed on the top surface of the beam body (101), and an inner device cavity (103) is arranged at the center of the inside of the beam body (101).
3. The upper beam structure of a built-in louver in insulating glass according to claim 2, characterized in that, The main beam frame (1) further includes inner reinforcing ribs (104) and outer reinforcing ribs (105). Inner reinforcing ribs (104) are arranged in the middle of the inner wall of the inner device cavity (103), and outer reinforcing ribs (105) are arranged on the outer bottom surface of the beam body (101).
4. The upper beam structure of a built-in blind for insulating glass according to claim 2, characterized in that, The connecting holes (102) are symmetrically formed at the front and rear ends of the beam body (101), and the cross-section of the beam body (101) is arranged in a horizontally inverted "concave" shape structure.
5. The upper beam structure of a built-in louver for insulating glass according to claim 1, characterized in that, The component (2) includes a shock-absorbing plate (201), fixing strips (202), and fixing bolts (203). A fixing strip (202) is connected to the top of the shock-absorbing plate (201), and fixing bolts (203) vertically penetrate through the front and rear ends of the shock-absorbing plate (201).
6. The upper beam structure of a built-in blind for insulating glass according to claim 5, characterized in that, The shock-absorbing plate (201) and the fixing strips (202) are made of the same material, and the fixing strips (202) are symmetrically installed on the top surface of the shock-absorbing plate (201) left and right.
7. The upper beam structure of a built-in louver for insulating glass according to claim 1, characterized in that, The main beam frame (1) and the side beam frames (3) are integrally structured, and the main beam frame (1) and the component (2) are movably connected.
8. The upper beam structure of a built-in blind in insulating glass according to claim 1, characterized in that, The outer surface structure of the buffer block (5) matches the inner surface structure of the buffer cavity (303), and the outer surface structure of the sound insulation block (6) matches the inner surface structure of the sound insulation cavity (304).