A sink glass mounting structure and construction method

By combining the supporting columns and enclosing glass structure with the construction methods of reinforcing crossbars and shaping strips, the problem of uneven inner wall of the water tank was solved, achieving a smooth effect in the wave flow experiment and ensuring the accuracy of the experimental data.

CN119145697BActive Publication Date: 2026-01-06SHANGHAI CONSTRUCTION NO 7 (GROUP) CO LTD
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Patent Information

Application Number
CN202411169518.8
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2024-08-24
Publication Date
2026-01-06
Estimated Expiration
2044-08-24

AI Technical Summary

Technical Problem

In wave-current experiments, the uneven inner wall of the existing water tank causes the experimental data to be affected by bulges, depressions and horizontal and vertical errors, which cannot meet the experimental requirements of smooth and interference-free operation.

Method used

The system employs a combination structure of supporting columns and enclosing glass. The enclosing glass is bonded to the inner wall of the supporting columns using a first adhesive layer. The connection strength is enhanced by reinforcing crossbars and suction cups. Combined with the construction method of shaping strips and diagonal braces, the flatness of the inner wall of the water tank is ensured.

Benefits of technology

This improved the smoothness of the inner wall of the water tank, reduced irregular wave interference in the wave flow experiment, and ensured the accuracy and reliability of the experimental data.

✦ Generated by Eureka AI based on patent content.

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Abstract

This application relates to the field of water tank glass installation technology, and provides a water tank glass installation structure, which includes multiple supporting columns and multiple enclosing glass panels. The supporting columns extend along the height direction of the water tank, and their bottom ends are embedded in the manufacturing surface of the water tank. The multiple supporting columns are arranged at intervals along the circumference of the water tank. The enclosing glass panels are connected to the inner side of the supporting columns, and the multiple enclosing glass panels are arranged circumferentially to form the water tank, which improves the flatness of the inner wall of the water tank, resulting in better performance in wave flow experiments. A construction method for the water tank glass installation structure is also provided, including construction steps such as supporting column construction and enclosing glass panel construction.
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Description

Technical Field

[0001] This application relates to the field of water tank glass installation technology, and in particular to a water tank glass installation structure and construction method. Background Technology

[0002] Common glass pools or glass tanks typically employ two installation methods for the glass walls: one is to directly embed the glass walls into concrete, and the other is to use steel U-shaped clamps for fixing, ensuring the stability of the glass installation.

[0003] However, when the water tank has special usage requirements, such as conducting wave flow experiments, protruding concrete or steel U-shaped grooves can interfere with the water flow, creating irregular waves and significantly affecting the experimental data. Therefore, under such special usage requirements, the inner wall of the water tank must be flat and smooth, without protrusions, depressions, or significant horizontal and vertical errors.

[0004] Therefore, an installation structure and construction method for the glass of the water tank are needed to ensure the flatness of the inner wall of the water tank, so as to achieve good results in the wave flow experiment. Summary of the Invention

[0005] In order to improve the flatness of the inner wall of the water tank and achieve good results in the wave flow test, this application provides a water tank glass installation structure and construction method.

[0006] On the one hand, the water tank glass mounting structure provided in this application adopts the following technical solution:

[0007] A water tank glass mounting structure includes multiple supporting columns and multiple enclosing glass panels. The supporting columns extend along the height direction of the water tank, and the bottom end of each supporting column is embedded in the manufacturing surface of the water tank. The multiple supporting columns are arranged at intervals along the circumference of the water tank. The enclosing glass panels are connected to the inner side of the supporting columns, and the multiple enclosing glass panels are arranged around the circumference of the water tank to form the water tank. A first adhesive layer is provided between the enclosing glass panels and the supporting columns. The first adhesive layer includes a structural adhesive portion and a weather-resistant adhesive portion, and the weather-resistant adhesive portion is arranged circumferentially around the structural adhesive portion.

[0008] By adopting the above technical solution, during the construction of the water tank glass, support columns are first arranged at intervals along the circumference of the water tank. Then, the enclosing glass is bonded to the inner wall of the support columns through the first adhesive layer. This primarily utilizes the support columns to fix the enclosing glass. Since the support columns are connected to the outer surface of the enclosing glass, i.e., the outer wall of the water tank, the flatness of the inner wall of the water tank can be ensured, thus achieving good results in the wave flow test. The structural adhesive portion of the first adhesive layer mainly serves an adhesive function, while the weather-resistant adhesive portion mainly serves a sealing and waterproofing function, ensuring the connection stability between the enclosing glass and the support columns.

[0009] Optionally, the manufacturing surface is provided with a first mounting groove, which is arranged around the circumference of the water tank, and the enclosing glass is inserted into the first mounting groove; the top of the supporting column is connected with multiple supporting horizontal columns, which are arranged end to end along the circumference of the water tank, and the side wall of the supporting horizontal columns is used for the top of the enclosing glass to be connected; a second adhesive layer is provided between the enclosing glass and the supporting horizontal columns.

[0010] By adopting the above technical solution, when installing the enclosed glass, the enclosed glass is first inserted into the first installation groove, and then the enclosed glass is bonded and fixed to the supporting columns and supporting cross columns, thereby improving the installation stability of the enclosed glass.

[0011] Optionally, it also includes a bottom glass, which is located at the bottom of the water tank, and the sidewall of the bottom glass abuts against the inner wall of the enclosing glass.

[0012] By adopting the above technical solution, after the installation of the enclosing glass is completed, ground glass is placed on the bottom wall of the water tank to ensure the flatness of the bottom wall of the water tank and further improve the experimental effect of the wave flow experiment.

[0013] Optionally, it also includes multiple reinforcing horizontal columns, all of which are horizontally arranged and arranged along the circumference of the water tank; the length of each reinforcing horizontal column is greater than the spacing between adjacent supporting columns, and both ends of each reinforcing horizontal column are respectively connected to adjacent supporting columns; suction cups are provided on the surface of each reinforcing horizontal column facing the enclosing glass, and the suction cups are adsorbed onto the enclosing glass.

[0014] By adopting the above technical solution and adding reinforcing horizontal columns and suction cups, the connection strength between the enclosed glass and the supporting columns is further enhanced.

[0015] Optionally, a support frame is provided on the outer wall of the supporting column, and the reinforcing crossbar is slidably connected to the support frame along the thickness direction of the enclosing glass; a first airbag is provided between the reinforcing crossbar and the supporting column, the first airbag is connected to a first connecting pipe, and the end of the first connecting pipe away from the first airbag passes through the surface of the suction cup; a first one-way valve is provided in the inner cavity of the first connecting pipe, the first one-way valve is used to prevent gas in the first airbag from entering between the suction cup and the enclosing glass; the first airbag is also connected to a second connecting pipe, the other end of the second connecting pipe is connected to a second airbag; a second one-way valve is provided in the second connecting pipe, the second one-way valve is used to prevent gas in the second airbag from entering the first airbag.

[0016] By adopting the above technical solution, if the enclosing glass detaches from or tends to detach relative to the supporting column, the enclosing glass will move the reinforcing horizontal column closer to the supporting column via the suction cup. During the movement, the reinforcing horizontal column pressurizes the unique airbag, and the gas in the first airbag enters the second airbag. Under the action of air pressure, the gas between the suction cup and the enclosing glass enters the first airbag, thereby reducing the gas between the suction cup and the enclosing glass and increasing the connection strength between the suction cup and the enclosing glass.

[0017] Optionally, a second adhesive layer is provided between the suction cup and the enclosing glass, and the second adhesive layer is arranged around the central axis of the suction cup.

[0018] By adopting the above technical solution, the space between the suction cup and the surrounding glass is sealed by the second adhesive layer, reducing the risk of external gas entering between the suction cup and the surrounding glass, and further strengthening the connection strength between the suction cup and the surrounding glass.

[0019] On the other hand, this application provides a construction method for a water tank glass structure, used for constructing the aforementioned water tank glass installation structure, comprising the following steps:

[0020] S1: A second mounting groove is opened on the manufacturing surface of the water tank, and the width of the second mounting groove is not less than the sum of the thickness of the enclosing glass and the thickness of the supporting column;

[0021] S2: First, concrete grout is injected into the second mounting groove, and then multiple support columns are inserted at intervals into the concrete grout in the second mounting groove; before the concrete grout solidifies, the support columns are supported by a support assembly; after the concrete grout solidifies, it forms the first mounting groove by defining the support columns and the groove wall of the second mounting groove.

[0022] S3: Determine the first bonding surface between the enclosing glass and the supporting column, and apply structural adhesive to the middle position of the first bonding surface; then insert the enclosing glass into the first mounting groove and make the first bonding surface abut against the supporting column; then seal the edge of the first bonding surface with weather-resistant adhesive.

[0023] S4: Seal the inner surface of the enclosing glass with weather-resistant adhesive at the groove wall of the first mounting groove, making the weather-resistant adhesive extend beyond the groove wall of the first mounting groove during sealing.

[0024] S5: After the weather-resistant adhesive has completely solidified, cut off the weather-resistant adhesive that protrudes from the inner surface of the enclosing glass to ensure the flatness of the inner surface of the enclosing glass.

[0025] Optionally, the support assembly includes a first diagonal brace and a second diagonal brace, the first diagonal brace abutting against the inner wall of the support column, and the second diagonal brace abutting against the outer wall of the support column; the first diagonal brace is connected to a shaping strip, the width of the shaping strip being the same as the width of the enclosing glass, the shaping strip being inserted into the first mounting groove, and the shaping strip abutting against the inner wall of the support column.

[0026] By adopting the above technical solution, the first mounting groove is formed by shaping strips, ensuring the flatness and regularity of the groove wall. This facilitates the subsequent installation of the enclosing glass and improves the fit between the enclosing glass and the groove wall of the first mounting groove, further ensuring the flatness of the inner wall of the water tank and improving the experimental effect of the wave flow experiment.

[0027] Optionally, the second diagonal brace includes an inclined support plate, a first horizontal support plate, and a second horizontal support plate; one side of the first horizontal support plate is connected to the inclined support plate, and the other side is used to abut against the enclosing glass; one side of the second horizontal support plate is connected to the inclined support plate, and the other side is used to abut against the enclosing glass; the shaping strip is connected to the lower surface of the second horizontal support plate; a plurality of cylinders are connected to the lower surface of the first horizontal support plate, the plurality of cylinders are arranged at intervals along the length direction of the shaping strip, and a vibrating rod is connected to a plurality of the output ends of the plurality of cylinders; the second horizontal support plate has a plurality of first through holes for the vibrating rod to pass through, and the shaping strip has a plurality of second through holes for the vibrating rod to pass through, the first through holes and the second through holes are interconnected; an elastic sheet is connected to the surface of the shaping strip away from the second horizontal support plate, the elastic sheet is used to isolate the concrete slurry in the second mounting groove from the second through holes.

[0028] By adopting the above technical solution, after the installation of the second diagonal brace is completed, the cylinder of the installed second diagonal brace is started. The cylinder drives the vibrator to move up and down in the first and second through holes. On the one hand, it vibrates the concrete slurry in the second installation groove, and on the other hand, it reduces the amount of concrete slurry penetrating into the water tank by increasing the pressure of the shaping strip on the concrete slurry.

[0029] Optionally, the shaping strip is detachably connected to the second diagonal brace.

[0030] By adopting the above technical solution, it is convenient to replace the shaping strips of different widths according to the different thicknesses of the enclosing glass to be installed, thereby improving the flexibility of the second diagonal brace.

[0031] In summary, this application includes at least one of the following beneficial technical effects:

[0032] 1. By setting multiple supporting columns around the water tank, the enclosing glass is bonded to the inner wall of the supporting columns using the first adhesive layer, thereby improving the flatness of the inner wall of the water tank formed by the enclosing glass and improving the experimental effect of the wave flow experiment.

[0033] 2. By installing reinforcing crossbars and suction cups, the connection between the enclosed glass and the supporting columns is further strengthened;

[0034] 3. By setting a shaping strip on the second diagonal brace, it is easier to form a relatively flat first mounting groove, which facilitates the installation of the enclosing glass on the one hand, and further ensures the flatness of the inner wall of the water tank on the other hand. Attached Figure Description

[0035] Figure 1 This is a schematic diagram of the structure of Embodiment 1 of this application.

[0036] Figure 2 This is a schematic diagram illustrating the installation of the enclosing glass in Embodiment 1.

[0037] Figure 3 This is a structural diagram used to illustrate the first adhesive layer.

[0038] Figure 4 yes Figure 2 Enlarged diagram of part A.

[0039] Figure 5 yes Figure 2 Enlarged diagram in section B.

[0040] Figure 6 Used to display structural diagrams of the supporting components.

[0041] Figure 7 yes Figure 6 Enlarged diagram of section C.

[0042] Figure 8 This is a schematic diagram illustrating the connection relationship between the shaping strip and the second horizontal support plate in Embodiment 1.

[0043] Figure 9 This is a structural schematic diagram used to illustrate Embodiment 2.

[0044] Figure 10 This is a schematic diagram illustrating the connection relationship between the first airbag and the second airbag in Embodiment 2.

[0045] Figure 11 This is a schematic diagram showing the installation position of the bottom glass in Embodiment 2.

[0046] Explanation of reference numerals in the attached drawings: 1. Support column; 11. Support frame; 2. Enclosing glass; 3. First adhesive layer; 31. Structural adhesive; 32. Weather-resistant adhesive; 4. Second mounting groove; 41. Concrete grout; 42. First mounting groove; 5. Supporting horizontal column; 6. Support assembly; 61. First diagonal brace; 62. Second diagonal brace; 621. Diagonal support plate; 622. First horizontal support plate; 623. Second horizontal support plate; 624. First magnet; 625. First through hole; 63. Shaping strip; 631. Second magnet; 632. Second through hole; 633. Elastic sheet; 64. Cylinder; 641. Vibrating rod; 7. Reinforcing crossbar; 71. Suction cup; 72. Air tube; 73. First airbag; 731. First connecting pipe; 732. First one-way valve; 733. Second connecting pipe; 734. Second airbag; 735. Second one-way valve; 736. Second adhesive layer; 8. Bottom glass. Detailed Implementation

[0047] The following is in conjunction with the appendix Figure 1-11 This application will be described in further detail.

[0048] This application discloses a water tank glass installation structure and construction method.

[0049] Example 1

[0050] This embodiment discloses a glass installation structure and construction method for a water tank.

[0051] Reference Figure 1 , Figure 2 and Figure 3 A water tank glass mounting structure includes multiple supporting columns 1 and multiple enclosing glass panels 2. The supporting columns 1 extend along the height direction of the water tank, and the bottom end of the supporting column 1 is embedded in the manufacturing surface of the water tank (in this embodiment, the manufacturing surface of the water tank is the ground. In other embodiments, the manufacturing surface of the water tank can also be a roof or other horizontal surface). The multiple supporting columns 1 are arranged at intervals along the circumference of the water tank. The enclosing glass panels 2 are connected to the inner side of the supporting columns 1, and the multiple enclosing glass panels 2 are arranged around the circumference of the water tank to form the water tank. A first adhesive layer 3 is provided between the enclosing glass panels 2 and the supporting columns 1. The first adhesive layer 3 includes a structural adhesive portion 31 and a weather-resistant adhesive portion 32, and the weather-resistant adhesive portion 32 is arranged around the circumference of the structural adhesive portion 31.

[0052] During the construction of the water tank glass, support columns 1 are first arranged at intervals along the circumference of the water tank. Then, the enclosing glass 2 is bonded to the inner wall of the support columns 1. Thus, the support columns 1 are mainly used to fix the enclosing glass 2. Since the support columns 1 are connected to the outer surface of the enclosing glass 2, that is, the outer wall of the water tank, the flatness of the inner wall of the water tank can be ensured, thereby achieving good results in the wave flow experiment.

[0053] In this embodiment, the supporting column 1 is an I-beam.

[0054] Reference Figure 2 and Figure 4 Specifically, the manufacturing surface of the water tank has a second mounting groove 4, which is arranged around the circumference of the water tank. The width of the second mounting groove 4 is not less than the sum of the thickness of the enclosing glass 2 and the thickness of the supporting column 1. The enclosing glass 2 and the supporting column 1 are inserted into the second mounting groove 4. When installing the enclosing glass 2 and the supporting column 1, concrete grout 41 is first poured into the second mounting groove 4. Then, multiple supporting columns 1 are inserted into the concrete grout 41. After the concrete grout 41 solidifies, the solidified concrete, the wall of the second mounting groove 4, and the supporting column 1 define a first mounting groove 42 for inserting the enclosing glass 2, so as to further ensure the installation stability of the enclosing glass 2.

[0055] Reference Figure 5 Furthermore, the top of the supporting column 1 is connected to multiple supporting horizontal columns 5, which are arranged end-to-end along the circumference of the water tank. The side walls of the supporting horizontal columns 5 are used for the top connection of the enclosing glass 2. A third adhesive layer (not shown in the figure) is provided between the enclosing glass 2 and the supporting horizontal columns 5, and the enclosing glass 2 and the supporting horizontal columns 5 are bonded and fixed together by the third adhesive layer. In this embodiment, the supporting horizontal column 5 is an angle steel, and one flange of the supporting horizontal column 5 is connected to the upper side wall of the enclosing glass 2.

[0056] Reference Figure 3 The specific structures of the first adhesive layer 3 and the second adhesive layer 736 are as follows: taking the first adhesive layer 3 as an example, the second adhesive layer 736 is similar. The connection surface between the enclosing glass 2 and the supporting column 1 is defined as the first connection surface. The first adhesive layer 3 includes a structural adhesive part 31 and a weather-resistant adhesive part 32. The structural adhesive part 31 is located in the middle of the first connection surface and plays the main connecting role. The weather-resistant adhesive part 32 is arranged around the circumference of the structural adhesive part 31 and is used to seal the edges of the first connection surface, thereby sealing and waterproofing to ensure the bonding reliability of the structural adhesive part 31.

[0057] Understandably, adjacent enclosing glass panes 2 are also bonded and fixed to each other using a structure similar to the first adhesive layer 3. In this embodiment, the two sides of the supporting column 1 are respectively connected to two adjacent enclosing glass panes 2 to enhance the waterproof performance between adjacent enclosing glass panes 2.

[0058] This embodiment also provides a construction method for a water tank glass installation structure, used to install the above-mentioned water tank glass installation structure, including the following steps:

[0059] S1: A second mounting groove 4 is opened on the manufacturing surface of the water tank. The width of the second mounting groove 4 is slightly greater than the sum of the thickness of the enclosing glass 2 and the thickness of the supporting column 1.

[0060] S2: First, inject concrete grout 41 into the second mounting groove 4, then insert multiple support columns 1 at intervals into the concrete grout 41 of the second mounting groove 4. Before the concrete grout 41 solidifies, use the support assembly 6 to support the support columns 1. At the same time, place three positioning steel wires (upper, middle, and lower) with the central axis of the water tank as a reference to adjust the flatness and verticality. After the concrete grout 41 solidifies, it forms the first mounting groove 42 with the support columns 1 and the groove wall of the second mounting groove 4. Then, fix the support crossbar 5 to the upper end of the support column 1.

[0061] S3: By measurement, confirm the first bonding surface between the enclosing glass 2 and the supporting column 1, and apply a certain amount of structural adhesive to the middle of the first bonding surface. Then, insert the enclosing glass 2 into the first mounting groove 42, and make the first bonding surface abut against the supporting column 1. Use structural adhesive to bond and fix the enclosing glass 2 and the supporting column 1, and squeeze out any excess structural adhesive. After the bonding is stable, use a long-nozzle caulking gun to replenish the internal structural adhesive, and finally use weather-resistant adhesive to seal the edges of the first bonding surface.

[0062] S4: Use weather-resistant adhesive to seal the inner surface of the enclosing glass 2 and the groove wall of the first mounting groove 42, so that the weather-resistant adhesive extends beyond the groove wall of the first mounting groove 42 during sealing.

[0063] S5: After the weather-resistant adhesive has completely solidified, cut off any excess or protrusion of the weather-resistant adhesive that extends beyond the inner surface of the enclosing glass 2 to ensure the flatness of the inner surface of the enclosing glass 2, thereby ensuring the flatness of the inner wall of the water tank.

[0064] Reference Figure 6 and Figure 7 The support component 6 includes a first diagonal brace 61 and a second diagonal brace 62. The first diagonal brace 61 abuts against the inner wall of the support column 1, and the second diagonal brace 62 abuts against the outer wall of the support column 1. A shaping strip 63 is detachably connected to the first diagonal brace 61. The shaping strip 63 extends along the length of the first mounting groove 42, and its width is the same as the thickness of the enclosing glass 2. The shaping strip 63 is inserted into the first mounting groove 42 and abuts against the inner wall of the support column 1. This shaping strip 63 forms the first mounting groove 42, ensuring the flatness and regularity of the groove wall. This facilitates the subsequent installation of the enclosing glass 2 and improves the fit between the enclosing glass 2 and the groove wall of the first mounting groove 42, further ensuring the flatness of the inner wall of the water tank and improving the experimental results of the wave current experiment.

[0065] The specific structure of the second diagonal brace 62 is as follows: The second diagonal brace 62 includes an inclined support plate 621, a first horizontal support plate 622, and a second horizontal support plate 623. One side of the first horizontal support plate 622 is connected to the middle position of the inclined support plate 621, and the other side is used to abut against the enclosing glass 2. The second horizontal support plate 623 is located below the first horizontal support plate 622, and one side of the second horizontal support plate 623 is connected to the bottom of the inclined support plate 621, and the other side is used to abut against the enclosing glass 2. A shaping strip 63 is connected to the lower surface of the second horizontal support plate 623.

[0066] Reference Figure 8 A first magnet 624 is embedded in the side of the second horizontal support plate 623 near the enclosing glass 2, and a second magnet 631 is embedded inside the shaping strip 63. Thus, the shaping strip 63 and the second horizontal support plate 623 are detachably connected through the magnetic attraction between the first magnet 624 and the second magnet 631, thereby realizing the detachable connection between the shaping strip 63 and the second diagonal brace 62. This allows for the replacement of shaping strips 63 of different widths according to the different thicknesses of the enclosing glass 2 to be installed, improving the flexibility of the second diagonal brace 62 in use.

[0067] Reference Figure 6 and Figure 7 Furthermore, a plurality of cylinders 64 are connected to the lower surface of the first horizontal support plate 622. The output shaft of the cylinder 64 extends along the height direction of the second diagonal brace 62, and the plurality of second cylinders 64 are arranged at intervals along the length direction of the shaping strip 63.

[0068] The output end of the second cylinder 64 is threadedly connected to a vibrating rod 641. The second horizontal support plate 623 has multiple first passages for the vibrating rod 641 to pass through. Multiple first passage holes 625 are arranged at intervals along the length of the shaping strip 63 and correspond one-to-one with multiple vibrating rods 641.

[0069] The shaping strip 63 has multiple second through holes 632 for the vibrator 641 to pass through. The multiple second through holes 632 are arranged at intervals along the length of the shaping strip 63. The multiple second through holes 632 are connected to and coaxially arranged with the multiple first through holes 625.

[0070] An elastic sheet 633 is bonded and fixed to the surface of the shaping strip 63 away from the second horizontal support plate 623. The elastic sheet 633 isolates the shaping strip 63 from the concrete slurry 41 in the second mounting groove 4.

[0071] After inserting the support column 1 into the concrete grout 41 of the second mounting groove 4, the first diagonal brace 61 is supported on the outer wall of the support column 1, and the number of the first diagonal brace 61 corresponds to the number of support columns 1. Then, an appropriate number of second diagonal braces 62 are selected to support the inner wall of the support column 1. When constructing the second diagonal brace 62, care should be taken to ensure that the shaping strips 63 of adjacent second diagonal braces 62 abut against each other.

[0072] After the installation of the second diagonal brace 62 is completed, the cylinder 64 of the installed second diagonal brace 62 is started. The cylinder 64 drives the vibrator 641 to move up and down in the first through hole 625 and the second through hole 632. On the one hand, it vibrates the concrete slurry 41 in the second installation groove 4. On the other hand, it reduces the amount of concrete slurry 41 seeping into the water tank by increasing the pressure of the shaping strip 63 on the concrete slurry 41.

[0073] Example 2

[0074] This embodiment discloses a glass mounting structure for a water tank.

[0075] Reference Figure 9 The difference between this embodiment and the water tank glass installation structure in Embodiment 1 is that the water tank glass installation structure further includes multiple reinforcing horizontal columns 7, which are all horizontally arranged and spaced apart along the circumference of the water tank.

[0076] The length of the reinforcing horizontal column 7 is greater than the distance between two adjacent supporting columns 1, and both ends of the reinforcing horizontal column 7 are connected to the adjacent supporting columns 1. The surface of the reinforcing horizontal column 7 facing the enclosing glass 2 is connected to a suction cup 71, which adheres to the enclosing glass 2, thereby enhancing the installation stability of the enclosing glass 2 through the adhesion of the suction cup 71.

[0077] In this embodiment, the suction cup 71 and the reinforcing crossbar 7 are connected to each other via an air pipe 72, the end of the air pipe 72 penetrating the surface of the suction cup 71 facing the enclosing glass 2. In other embodiments, the suction cup 71 and the reinforcing crossbar 7 can also be connected via a solid rod.

[0078] Furthermore, a support frame 11 is fixedly connected to the outer wall of the support column 1, and the reinforcing crossbar is slidably connected to the support frame 11 along the thickness direction of the enclosing glass 2. A first airbag 73 is provided between the reinforcing crossbar and the support column 1, and the two opposing surfaces of the first airbag 73 are respectively used for the reinforcing crossbar and the support column 1 to abut against each other.

[0079] Reference Figure 9 and Figure 10The first airbag 73 is connected to a first connecting tube 731. The end of the first connecting tube 731 away from the first airbag 73 is connected to the air tube 72. A first one-way valve 732 is installed in the lumen of the first connecting tube 731. The first one-way valve 732 is used to prevent the gas in the first airbag 73 from entering between the suction cup 71 and the enclosing glass 2.

[0080] The first airbag 73 is also connected to a second connecting pipe 733, the other end of which is connected to a second airbag 734. The inner cavities of the first airbag 73 and the second airbag 734 are interconnected through the lumen of the second connecting pipe 733. A second one-way valve 735 is installed in the second connecting pipe 733, which is used to prevent gas in the second airbag 734 from entering the first airbag 73.

[0081] If the enclosing glass 2 falls off or tends to fall off relative to the supporting column 1, the enclosing glass 2 will move the reinforcing horizontal column 7 closer to the supporting column 1 via the suction cup 71. During the movement, the reinforcing horizontal column 7 pressurizes the strange airbag, and the gas in the first airbag 73 enters the second airbag 734. Under the action of air pressure, the gas between the suction cup 71 and the enclosing glass 2 enters the first airbag 73, thereby reducing the gas between the suction cup 71 and the enclosing glass 2 and increasing the connection strength between the suction cup 71 and the enclosing glass 2.

[0082] In this embodiment, the support frame 11 is inclined, so that the reinforcing crossbar always tends to move closer to the enclosing glass 2, further ensuring the connection stability between the suction cup 71 and the enclosing glass 2.

[0083] Furthermore, a second adhesive layer 736 is provided between the suction cup 71 and the surrounding glass 2. The suction cup 71 and the surrounding glass 2 are bonded and fixed by the second adhesive layer 736. The second adhesive layer 736 is arranged around the central axis of the suction cup 71, thereby forming a seal between the suction cup 71 and the surrounding glass 2, reducing the risk of external gas entering between the suction cup 71 and the surrounding glass 2, and further strengthening the connection strength between the suction cup 71 and the surrounding glass 2.

[0084] Reference Figure 11 Furthermore, it also includes a bottom glass 8, which is located at the bottom of the water tank, with its sidewalls abutting against the inner wall of the enclosing glass 2. After the enclosing glass 2 is installed, a ground glass is placed on the bottom wall of the water tank to ensure the flatness of the bottom wall and further improve the experimental effect of the wave current experiment.

[0085] The above are all preferred embodiments of this application, and are not intended to limit the scope of protection of this application. Therefore, all equivalent changes made in accordance with the structure, shape and principle of this application should be covered within the scope of protection of this application.

Claims

1. A sink glass mounting structure, characterized by: The application relates to a water tank, which comprises a plurality of support columns (1) and a plurality of surrounding glasses (2); the support columns (1) are arranged along the height direction of the water tank and are embedded into the manufacturing surface of the water tank; the support columns (1) are arranged along the circumferential direction of the water tank; the surrounding glasses (2) are connected to the inner side of the support columns (1) and surround the water tank along the circumferential direction of the water tank; a first adhesive layer (3) is arranged between the surrounding glasses (2) and the support columns (1); the first adhesive layer (3) comprises a structural adhesive part (31) and a weather-resistant adhesive part (32); the weather-resistant adhesive part (32) is arranged along the circumferential direction of the structural adhesive part (31); a plurality of reinforcing horizontal columns (7) are arranged along the circumferential direction of the water tank; the length of the reinforcing horizontal columns (7) is greater than the distance between adjacent support columns (1); the two ends of the reinforcing horizontal columns (7) are connected to the adjacent support columns (1); the surface of the reinforcing horizontal columns (7) facing the surrounding glasses (2) is provided with suction cups (71) which are adsorbed to the surrounding glasses (2); the outer wall of the support columns (1) is provided with a support frame (11); the reinforcing horizontal columns (7) are connected to the support frame (11) along the thickness direction of the surrounding glasses (2); a first air bag (73) is arranged between the reinforcing horizontal columns (7) and the support columns (1); the first air bag (73) is connected with a first communication pipe (731); the pipe cavity of the first communication pipe (731) is connected with the surface of the suction cup (71); a first one-way valve (732) is arranged in the inner cavity of the first communication pipe (731); the first one-way valve (732) is used for preventing the gas in the first air bag (73) from entering the space between the suction cup (71) and the surrounding glass (2); the first air bag (73) is also connected with a second communication pipe (733); the other end of the second communication pipe (733) is connected with a second air bag (734); a second one-way valve (735) is arranged in the second communication pipe (733); the second one-way valve (735) is used for preventing the gas in the second air bag (734) from entering the first air bag (73).

2. The sink glass mounting structure according to claim 1, characterized by: The manufacturing surface is provided with a first mounting groove (42) which is arranged along the circumferential direction of the water tank; the surrounding glass (2) is inserted into the first mounting groove (42); the top of the support column (1) is connected with a plurality of support horizontal columns (5); the support horizontal columns (5) are arranged along the circumferential direction of the water tank; the side wall of the support horizontal column (5) is used for connecting the top of the surrounding glass (2); a second adhesive layer (736) is arranged between the surrounding glass (2) and the support horizontal column (5).

3. The sink glass mounting structure according to claim 2, characterized by: Further comprising a bottom surface glass (8) located at the bottom of the sink, a side wall of the bottom surface glass (8) abutting the inner wall of the enclosing glass (2).

4. The sink glass mounting structure according to claim 1, characterized by: A second adhesive layer (736) is arranged between the suction cup (71) and the enclosing glass (2), and the second adhesive layer (736) is arranged around the central axis of the suction cup (71).

5. A method of installing a sink glass mounting structure according to any one of claims 2 to 4, characterized by: The method comprises the following steps: S1: A second mounting groove (4) is opened on the manufacturing surface of the sink, and the width of the second mounting groove (4) is not less than the sum of the thickness of the enclosing glass (2) and the thickness of the support column (1); S2: First, concrete slurry (41) is injected into the second mounting groove (4), and then a plurality of support columns (1) are inserted into the concrete slurry (41) in the second mounting groove (4); before the concrete slurry (41) solidifies, the support assembly (6) is used to support the support column (1); after the concrete slurry (41) solidifies, the first mounting groove (42) is defined together with the support column (1) and the groove wall of the second mounting groove (4); S3: Determine the first adhesive surface of the enclosing glass (2) and the support column (1), and apply structural glue at the middle position of the first adhesive surface; then insert the enclosing glass (2) into the first mounting groove (42) and make the first adhesive surface abut the support column (1); then edge seal the first adhesive surface with weather-resistant glue; S4: The inner surface of the enclosing glass (2) and the groove wall of the first mounting groove (42) are also edge sealed with weather-resistant glue, and the weather-resistant glue exceeds the groove wall of the first mounting groove (42) during edge sealing; S5: After the weather-resistant glue completely solidifies, the weather-resistant glue protruding from the inner surface of the enclosing glass (2) is cut off to ensure the flatness of the inner surface of the enclosing glass (2).

6. The method of claim 5, wherein: The support assembly (6) comprises a first inclined strut (61) and a second inclined strut (62), the first inclined strut (61) abutting the inner wall of the support column (1), and the second inclined strut (62) abutting the outer wall of the support column (1); the first inclined strut (61) is connected with a shaping strip (63), the width of the shaping strip (63) is the same as the width of the enclosing glass (2), the shaping strip (63) is inserted into the first mounting groove (42), and the shaping strip (63) abuts the inner wall of the support column (1).

7. The method of claim 6, wherein: The second inclined support (62) comprises an inclined support plate (621), a first horizontal support plate (622) and a second horizontal support plate (623); one side of the first horizontal support plate (622) is connected to the inclined support plate (621), and the other side is used for abutting against the surrounding glass (2); one side of the second horizontal support plate (623) is connected to the inclined support plate (621), and the other side is used for abutting against the surrounding glass (2); the profiled bar (63) is connected to the lower surface of the second horizontal support plate (623); the lower surface of the first horizontal support plate (622) is connected with a plurality of air cylinders (64), the plurality of air cylinders (64) are arranged at intervals along the length direction of the profiled bar (63), a plurality of output ends of the plurality of air cylinders (64) are all connected with vibrating rods (641); the second horizontal support plate (623) is provided with a plurality of first through holes (625) for the vibrating rods (641) to pass through, the profiled bar (63) is provided with a plurality of second through holes (632) for the vibrating rods (641) to pass through, and the first through holes (625) and the second through holes (632) are in communication with each other; the surface of the profiled bar (63) away from the second horizontal support plate (623) is connected with an elastic sheet (633), and the elastic sheet (633) is used for isolating the concrete slurry (41) in the second installation groove (4) from the second through holes (632).

8. The method of claim 7, wherein: The profiled bar (63) and the second inclined support (62) are detachably connected.

Citation Information

Patent Citations

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