Glass horizontal operation device
By designing a glass horizontal working device with a hanger and platform, the transfer risk of photovoltaic laminated glass caused by the negative pressure suction plate method of suction cups is solved, and the planar support and safe transportation of semi-finished glass is achieved, and the production efficiency and product quality are improved.
Patent Information
- Application Number
- CN202422404008.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-09-30
- Publication Date
- 2025-08-05
- Estimated Expiration
- 2034-09-30
AI Technical Summary
The existing suction cup negative pressure suction plate method has the risk of glass falling and local deformation during the semi-finished product transportation of photovoltaic laminated glass, resulting in quality problems such as rupture, and is not suitable for the production and transportation of photovoltaic laminated glass.
A glass horizontal working device is designed, including a hanger and a platform. A plurality of detachable connected first support rods are hung under the hanger. The top of the platform is spaced with a concave area. When the hanger cooperates with the platform, the support rod is located in the concave area. The semi-finished glass is lifted and moved horizontally to avoid interference from the support rods and ensure that the glass is supported on the same plane.
It realizes horizontal support for semi-finished glass during multiple transfers, avoids the risks of deformation and cracking, improves production efficiency and product quality, and simplifies the operation process.
Smart Images

Figure CN223188784U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of glass production, in particular to a glass horizontal operation device. Background Art
[0002] Photovoltaic laminated glass is a building material that combines photovoltaic power generation technology with the characteristics of laminated glass. It achieves the collection and conversion of solar energy by sandwiching solar cells (usually thin film or crystalline silicon materials) between two sheets of glass while maintaining the safety and aesthetics of glass.
[0003] The existing production mode of laminated rolled glass is to horizontally combine the sheets, then use a horizontal turning table to stand up the semi-finished glass, and then use a lifting clamp to place the glass on the A-type vehicle; the production of laminated vacuum glass is to place it horizontally without rolling and directly vacuum it, and then manually transport it to the A-type vehicle; the above two production modes are not suitable for the production of photovoltaic laminated glass. The production of photovoltaic laminated glass requires horizontal combining and rolling, and then the semi-finished glass is transferred to the working platform, then wrapped in a vacuum bag, and coated. Then the coated semi-finished glass is transferred to the autoclave trolley for vacuum operation.
[0004] However, in the process of transporting semi-finished products of photovoltaic laminated glass, the suction cup negative pressure suction method is currently mostly used. However, the disadvantage of this method is that the horizontal suction operation is carried out after pre-pressing. Since the pressure of the multi-layer glass roller is not enough to support the weight of the glass, there is a risk of glass falling. At the same time, the glass has obvious local deformation during the suction process, which can easily cause quality risks such as laminated glass breakage. Therefore, the current suction cup negative pressure suction method is not suitable for the production and transportation of semi-finished products of photovoltaic laminated glass. Utility Model Content
[0005] The purpose of the utility model is to provide a glass horizontal operation device to address the problem that the current suction cup negative pressure suction method in the background technology is not suitable for the production and transportation of semi-finished products of photovoltaic laminated glass.
[0006] The utility model provides a glass horizontal operation device, comprising a hanger, a plurality of first support rods located in the same horizontal plane are suspended below the hanger, and the first support rods are detachably connected to the hanger;
[0007] The platform further comprises a frame, wherein second support rods are spaced apart on the top of the frame, and recessed areas are formed between adjacent second support rods;
[0008] The hanger and the platform are configured such that when the hanger is engaged with the platform, the first support rod is located in the recessed area.
[0009] The glass horizontal operation device described in the present application includes a hanger, and multiple first support rods located in the same horizontal plane are suspended below the hanger. The first support rod is detachably connected to the hanger. When the semi-finished glass is transferred from the processing equipment to the unloading table, the hanger is lowered above the semi-finished glass, and then the first support rod is passed through the bottom of the semi-finished glass, and then the first support rod is hung on the hanger, so as to facilitate the lifting of the glass by the hanger. Since multiple first support rods are located in the same horizontal plane, the semi-finished glass can be placed horizontally on the first support rod, ensuring that the semi-finished glass is in the same plane, thereby providing planar support for the semi-finished glass, and then moving the hanger to horizontally lift and transport the semi-finished glass, avoiding the risk of deformation and breakage of the semi-finished glass caused by the traditional suction cup negative pressure suction method. Furthermore, it also includes a platform, which includes a frame, and second support rods are arranged at intervals on the top of the frame. There is a concave area between adjacent second support rods. The second support rod is used to support the semi-finished glass, and the semi-finished glass is transported to the platform by the hanger. When the glass is lifted up, the first support rod is pulled out of the lower recess and the glass is placed on the upper platform.
[0010] Preferably, the hanger comprises a rectangular frame, a plurality of groups of hooks are symmetrically arranged on the rectangular frame, and the first support rod is placed on the hooks.
[0011] Preferably, the hooks are arranged at intervals along the length direction of the rectangular frame.
[0012] Preferably, the hook includes a straight rod section connected to the rectangular frame, and the end of the straight rod section away from the rectangular frame is connected to a curved rod section, and a sliding groove area is formed between the curved rod section and the straight rod section, and the sliding groove area is used to place the first support rod.
[0013] Preferably, both ends of the first support rod extend to the outside of the chute area, and a pin is installed at the end of the first support rod, and the pin is used to abut against the hook.
[0014] Preferably, a hanging lug is further provided on the top of the rectangular frame.
[0015] Preferably, the first support rod is covered with an anti-slip sleeve.
[0016] Preferably, the first support rod and the second support rod are parallel to each other.
[0017] Preferably, the frame comprises a base frame, and the base frame is provided with two rows of vertical rods, and the vertical rods in each row are arranged at intervals;
[0018] It also includes two transverse rods, and one end of each row of vertical rods away from the base frame is connected by a transverse rod, and the second supporting rod is connected to the transverse rod.
[0019] Preferably, both ends of the second support rod are connected to one of the transverse rods respectively.
[0020] Compared with the prior art, the present invention has the following beneficial effects:
[0021] The glass horizontal operation device described in the present application includes a hanger, and multiple first support rods located in the same horizontal plane are suspended below the hanger, and the first support rod is detachably connected to the hanger. When the semi-finished glass is transferred from the processing equipment to the unloading table, the hanger is lowered above the semi-finished glass, and then the first support rod is passed through the bottom of the semi-finished glass, and then the first support rod is hung on the hanger, so as to facilitate the lifting of the semi-finished glass by the hanger. Since multiple first support rods are located in the same horizontal plane, the semi-finished glass can be placed horizontally on the first support rod, ensuring that the semi-finished glass is in the same plane, thereby providing planar support for the semi-finished glass, and then horizontally lifting and transporting the semi-finished glass by moving the hanger, avoiding the risk of deformation and breakage of the semi-finished glass caused by the traditional suction cup negative pressure suction method. Furthermore, the platform also includes a frame, and second support rods are arranged at intervals on the top of the frame, and there is a concave area between adjacent second support rods. The second support rod is used to support the semi-finished glass, and when the semi-finished glass is transported to the flat When the glass is placed on the platform, the first support rod is pulled out of the recessed area and the semi-finished glass is placed on the platform. After the semi-finished glass is wrapped with a vacuum bag on the platform, the hanger is moved above the platform and the first support rod is extended from the recessed area into the bottom of the semi-finished glass. The first support rod is then hung on the hanger and the hanger is lifted to transfer the semi-finished glass wrapped with the vacuum bag to the autoclave trolley for vacuuming. The glass horizontal operation device of the present application can not only lift and transport the semi-finished glass horizontally during multiple transportation processes of the semi-finished glass, but also ensure that the semi-finished glass is on the same plane, thereby achieving horizontal support of the semi-finished glass, avoiding the risk of deformation and breakage of the semi-finished glass, and ensuring the quality of the product production process. The device is simple and convenient to operate, thereby improving production efficiency. BRIEF DESCRIPTION OF THE DRAWINGS
[0022] Figure 1 It is a schematic diagram of the hanger of this application.
[0023] Figure 2 It is a platform diagram of this application.
[0024] Figure 3 yes Figure 1 A local enlarged schematic diagram of point A.
[0025] Figure 4 It is a hook diagram of this application.
[0026] Figure 5 This is a schematic diagram of the hanger transporting semi-finished glass.
[0027] Figure 6It is a schematic diagram of placing semi-finished glass on the platform.
[0028] Figure 7 This is a diagram of the coordination between the hanger and the platform. Figure 1 .
[0029] Figure 8 This is a diagram of the coordination between the hanger and the platform. Figure 2 .
[0030] Markings in the figure:
[0031] 1-hanger, 11-rectangular frame, 12-hook, 121-straight rod section, 122-curved rod section, 123-slide area, 13-lifting ear, 2-first support rod, 21-anti-slip sleeve, 22-pin shaft, 3-platform, 31-frame, 311-base frame, 312-transverse rod, 313-vertical rod, 32-second support rod, 33-recessed area, 34-protective layer, 4-semi-finished glass, 5-vacuum bag. DETAILED DESCRIPTION
[0032] The present invention will be further described in detail below with reference to specific embodiments. However, this should not be construed as limiting the scope of the present invention to the following embodiments. All technologies implemented based on the present invention fall within the scope of the present invention.
[0033] Unless otherwise specified, in the description of the specific embodiments of the present invention, the terms indicating orientation or positional relationships, such as "upper," "lower," "left," "right," "center," "inside," and "outside," are based on the orientation or positional relationships shown in the accompanying drawings, or are the orientation or positional relationships in which the product / device / apparatus of the present invention is typically placed when in use. These terms indicating orientation or positional relationships are merely for the purpose of facilitating the description of the present invention or simplifying the description of the specific embodiments to facilitate a quick understanding of the solutions by technicians. They do not indicate or imply that a particular device / component / element must have a specific orientation or be constructed and operated in a specific positional relationship, and therefore should not be construed as limiting the present invention.
[0034] In addition, if the terms "horizontal", "vertical", "overhanging", "parallel" and the like appear, it does not mean that the corresponding devices / components / elements are required to be absolutely horizontal or vertical or overhanging or parallel, but may be slightly tilted or have deviations. For example, "horizontal" only means that its direction is more horizontal than "vertical", and does not mean that the structure must be completely horizontal, but may be slightly tilted. Alternatively, it can be simply understood that the corresponding devices / components / elements are set in directions such as "horizontal", "vertical", "overhanging", and "parallel", and can have an error / deviation of ±10% relative to the corresponding direction setting, more preferably an error / deviation within ±8%, more preferably an error / deviation within ±6%, more preferably an error / deviation within ±5%, and more preferably an error / deviation within ±4%. As long as the corresponding device / component / element is within the error / deviation range, it can still achieve its role in the solution of the present utility model.
[0035] In addition, the expressions "first", "second", "third", etc. that appear in the terms are merely descriptions used to distinguish the same or similar components and should not be understood as emphasizing or implying the relative importance of specific components.
[0036] In addition, in the description of the embodiments of the present invention, "several", "a plurality", and "a number" represent at least 2. It can be any number such as 2, 3, 4, 5, 6, 7, 8, 9, and even more than 9.
[0037] Furthermore, in the description of the technical solutions of this utility model, unless otherwise expressly specified / defined / restricted, the terms "disposed," "installed," "connected," "connected," "provided with," "laid," and "arranged" should be understood in a broad sense. For example, they may refer to fixed connections, detachable connections, or integral connections. They may be welding, riveting, bolting, threading, or other commonly used connection methods in the art. Such connections may be mechanical, electrical, or communication connections; they may be direct connections, indirect connections through an intermediate medium, or internal connections between two components.
[0038] Example 1
[0039] like Figures 1-8 As shown, a glass horizontal operation device according to this embodiment is characterized in that it includes a hanger 1, and a plurality of first support rods 2 located in the same horizontal plane are suspended below the hanger 1, and the first support rods 2 are detachably connected to the hanger 1;
[0040] The platform 3 includes a frame 31, a second support rod 32 is arranged at intervals on the top of the frame 31, and a concave area 33 is formed between adjacent second support rods 32;
[0041] The hanger 1 and the platform 3 are configured such that when the hanger 1 and the platform 3 are engaged with each other, the first support rod 2 is located in the concave area 33 .
[0042] like Figure 5-Figure 8 As shown, the glass horizontal operation device described in this embodiment, when the semi-finished glass 4 is transferred from the processing equipment to the unloading table, the hanger 1 is lowered to the top of the semi-finished glass 4, and then the first support rod 2 is passed through the bottom of the semi-finished glass 4, and then the first support rod 2 is hung on the hanger 1, so that it is convenient to lift the semi-finished glass 4 through the hanger 1. Since multiple first support rods 2 are located in the same horizontal plane, the semi-finished glass 4 can be placed horizontally on the first support rod 2, ensuring that the semi-finished glass 4 is in the same plane, thereby performing plane adjustment on the semi-finished glass 4. The semi-finished glass 4 is lifted and transported horizontally by moving the hanger 1, thereby avoiding the risk of deformation and breakage of the semi-finished glass 4 caused by the traditional suction cup negative pressure suction method. Furthermore, the platform 3 is further included. The platform 3 includes a frame 31. The top of the frame 31 is spaced apart with second support rods 32. There is a concave area 33 between adjacent second support rods 32. The second support rods 32 are used to support the semi-finished glass 4. When the semi-finished glass 4 is transported to the platform 3 by the hanger 1, the hanger 1 and the platform 3 cooperate with each other, and the hanger 1 is lifted from the platform 3. When descending from the top, the first support rod 2 descends into the concave area 33 to avoid interference between the first support rod 2 and the second support rod 32. After the semi-finished glass 4 on the first support rod 2 is placed on the second support rod 32, the first support rod 2 is separated from the hanger 1, and then the first support rod 2 is pulled out from the concave area 33, so that the semi-finished glass 4 is placed on the platform 3. After the semi-finished glass 4 is wrapped with the vacuum bag 5 on the platform 3, the hanger 1 is moved to the top of the platform 3, and the first support rod 2 is extended from the concave area 33 into the bottom of the semi-finished glass 4, and then Then, the first support rod 2 is hung on the hanger 1, and then the hanger 1 is lifted to transfer the semi-finished glass 4 wrapped in the vacuum bag 5 to the autoclave trolley for vacuuming. The glass horizontal operation device of the present application can not only perform horizontal lifting and transportation of the semi-finished glass 4 during multiple transportation processes of the semi-finished glass 4, but also ensure that the semi-finished glass 4 is in the same plane, and horizontal support of the semi-finished glass 4 is achieved, thereby avoiding the risk of deformation and breakage of the semi-finished glass 4, ensuring the quality of the product production process, and the device is simple and convenient to operate, thereby improving production efficiency.
[0043] In one or more embodiments, Figure 1 、 Figure 3 As shown, the hanger 1 includes a rectangular frame 11 , on which a plurality of hooks 12 are symmetrically arranged, and the first support rod 2 is placed on the hooks 12 .
[0044] Among them, hooks 12 are symmetrically arranged on the two long sides of the rectangular frame 11, and the hooks 12 arranged opposite to each other on the two long sides form a group. When the hanger 1 hangs the first support rod 2, the first support rod 2 is placed on a group of hooks 12 to realize a detachable connection between the hanger 1 and the first support rod 2.
[0045] In an optional embodiment, if Figure 1 As shown, the hooks 12 are arranged at intervals along the length direction of the rectangular frame 11 , that is, the hooks 12 are arranged at intervals along the long sides of the rectangular frame 11 , so that the first support rods 2 are suspended below the rectangular frame 11 at intervals along the length direction of the rectangular frame 11 .
[0046] In an optional embodiment, if Figure 3 、 Figure 4 As shown, the hook 12 includes a straight rod section 121 connected to the rectangular frame 11, and the end of the straight rod section 121 away from the rectangular frame 11 is connected to a bent rod section 122, and a slide groove area 123 is formed between the bent rod section 122 and the straight rod section 121, and the slide groove area 123 is used to place the first support rod 2.
[0047] The first support rod 2 is installed on the hook 12 by placing it in the slide groove area 123 of the hook 12. At the same time, when the first support rod 2 is subsequently disassembled, the first support rod 2 can be pulled out from the slide groove area 123, which facilitates the subsequent disassembly of the first support rod 2 from the hanger 1.
[0048] In an optional embodiment, if Figure 1 、 Figure 3 As shown, both ends of the first support rod 2 extend to the outside of the slide groove area 123 , and a pin 22 is installed at the end of the first support rod 2 , and the pin 22 is used to abut the hook 12 .
[0049] By installing a pin 22 on the end of the first support rod 2 located on the outside of the hook 12, the pin 22 is used to abut the hook 12. When the hanger 1 tilts, the pin 22 at the upturned end of the first support rod 2 can abut the hook 12, thereby preventing the first support rod 2 from falling off the hook 12, thereby avoiding the falling of the semi-finished glass 4 on the first support rod 2.
[0050] In an optional embodiment, if Figure 1 、 Figure 3 As shown, a lifting lug 13 is further provided on the top of the rectangular frame 11 . The lifting lug 13 is used to connect a steel wire rope. The lifting equipment is connected to the lifting lug 13 via the steel wire rope, thereby lifting the hanger 1 .
[0051] In an optional embodiment, if Figure 1 、 Figure 4As shown, an anti-slip sleeve 21 is provided on the first support rod 2, and the semi-finished glass 4 is pressed on the anti-slip sleeve 21. During the horizontal placement and transportation of the semi-finished glass 4 by the hanger 1, the anti-slip sleeve 21 can effectively protect the semi-finished glass 4 and prevent the risk of the semi-finished glass 4 sliding on the first support rod 2 during the transportation of the hanger 1, thereby eliminating production safety hazards.
[0052] In an optional embodiment, the first support rod 2 and the second support rod 32 are parallel to each other, ensuring that the first support rod 2 and the second support rod 32 will not interfere with each other, and ensuring that when the hanger 1 cooperates with the platform 3, that is, when the hanger 1 descends from above the platform 3, the first support rod 2 can descend into the recessed area 33.
[0053] In one or more embodiments, Figure 2 As shown, the frame 31 includes a bottom frame 311, and two rows of vertical rods 313 are provided on the bottom frame 311. The vertical rods 313 in each row are arranged at intervals.
[0054] It also includes two transverse rods 312 , and one end of each row of vertical rods 313 away from the base frame 311 is connected through the transverse rod 312 , and the second support rod 32 is connected to the transverse rod 312 .
[0055] The second support rods 32 are connected to the top of the transverse rod 312, and the second support rods 32 are spaced apart along the length direction of the transverse rod 312, with a concave area 33 between adjacent second support rods 32;
[0056] Furthermore, a plurality of wheels are installed at the bottom of the chassis 311 so that the entire chassis 31 can be moved, thereby enabling the platform 3 to move, so that after the semi-finished glass 4 is placed on the platform 3, the platform 3 can be pushed to transfer the semi-finished glass 4, such as Figure 6 .
[0057] In an optional embodiment, if Figure 2 As shown, both ends of the second support rod 32 are connected to one transverse rod 312 , that is, the second support rod 32 is mounted on two transverse rods 312 .
[0058] In an optional embodiment, a protective layer 34 is further provided on the top of the second support rod 32, and the protective layer 34 is used to protect the semi-finished glass 4 to prevent a large collision between the semi-finished glass 4 and the second support rod 32 when the semi-finished glass 4 is placed on the platform 3. Figure 6 ;
[0059] The protective layer 34 is a rubber layer.
[0060] In this embodiment, after the semi-finished glass 4 is transferred from the processing equipment to the unloading platform, the hanger 1 is lowered to above the semi-finished glass 4, the first support rod 2 is removed from the hanger 1, and the hanger 1 is lowered by a crane so that the hook 12 on the hanger 1 is lower than the lower surface of the semi-finished glass 4. Then, the first support rod 2 is passed through the bottom of the semi-finished glass 4 and fixed to the hook 12. After all the first support rods 2 are fixed, the hanger 1 is lifted to lift and transport the semi-finished glass 4 horizontally.
[0061] The platform 3 is covered with a vacuum bag 5. When the semi-finished glass 4 is hoisted onto the platform 3, the hanger 1 is lowered from above the platform 3 until the first support rod 2 is lowered into the concave area 33. After the semi-finished glass 4 on the first support rod 2 is placed on the second support rod 32, the first support rod 2 is separated from the hook 12, and then the first support rod 2 is pulled out from the concave area 33. Then, the semi-finished glass 4 is wrapped with the vacuum bag 5.
[0062] After the semi-finished glass 4 is wrapped with the film, the hanger 1 is lowered again to above the semi-finished glass 4, and then the first support rod 2 is extended from the recessed area 33 into the bottom of the semi-finished glass 4, and then the first support rod 2 is installed on the hook 12, and then the hanger 1 is lifted, and the semi-finished glass 4 wrapped with the vacuum bag 5 is transferred to the autoclave trolley for vacuuming to realize vacuum production.
[0063] Example 2
[0064] like Figure 5-Figure 8 As shown, based on Example 1, this embodiment further discloses a method for using a glass horizontal operation device, comprising the following steps:
[0065] Step 1: Unload the semi-finished glass 4. After the semi-finished glass 4 is transferred from the processing equipment to the unloading platform, the hanger 1 is lowered to the top of the semi-finished glass 4. The first support rod 2 is removed from the hanger 1. The hanger 1 is lowered by a crane so that the hook 12 on the hanger 1 is lower than the lower surface of the semi-finished glass 4. Then, the first support rod 2 is passed through the bottom of the semi-finished glass 4 and fixed on the hook 12. After all the first support rods 2 are fixed, the hanger 1 is lifted to lift the semi-finished glass 4 horizontally for transportation.
[0066] Step 2: Lay the semi-finished glass 4 with a film. Place a vacuum bag 5 on the platform 3 in advance. When the semi-finished glass 4 is hoisted onto the platform 3, the hanger 1 is lowered from above the platform 3 until the first support rod 2 is lowered into the recessed area 33. After the semi-finished glass 4 on the first support rod 2 is placed on the second support rod 32, the first support rod 2 is separated from the hook 12, and then the first support rod 2 is pulled out of the recessed area 33. The semi-finished glass 4 is then wrapped with the vacuum bag 5.
[0067] Step 3: The semi-finished glass 4 is vacuumed. After the semi-finished glass 4 is wrapped with a film, the hanger 1 is lowered again to above the semi-finished glass 4, and then the first support rod 2 is extended from the recessed area 33 into the bottom of the semi-finished glass 4. The first support rod 2 is then installed on the hook 12, and then the hanger 1 is lifted to transfer the semi-finished glass 4 wrapped with the vacuum bag 5 to the autoclave trolley for vacuuming.
[0068] The above description is only a preferred embodiment of the present invention and is not intended to limit the present invention. Any modifications, equivalent replacements and improvements made within the spirit and principles of the present invention should be included in the scope of protection of the present invention.
Claims
1. A glass horizontal operation device, characterized in that: It comprises a hanger (1), wherein a plurality of first support rods (2) located on the same horizontal plane are suspended below the hanger (1), and the first support rods (2) are detachably connected to the hanger (1); The vehicle further comprises a platform (3), wherein the platform (3) comprises a frame (31), second support rods (32) are spaced apart on the top of the frame (31), and recessed areas (33) are provided between adjacent second support rods (32); The hanger (1) and the platform (3) are configured such that when the hanger (1) and the platform (3) are engaged, the first support rod (2) is located in the concave area (33).
2. A glass horizontal operation device according to claim 1, characterized in that: The hanger (1) comprises a rectangular frame (11), a plurality of groups of hooks (12) are symmetrically arranged on the rectangular frame (11), and the first support rod (2) is placed on the hooks (12).
3. A glass horizontal operation device according to claim 2, characterized in that: The hooks (12) are arranged at intervals along the length direction of the rectangular frame (11).
4. A glass horizontal operation device according to claim 3, characterized in that: The hook (12) comprises a straight rod section (121) connected to the rectangular frame (11); an end of the straight rod section (121) away from the rectangular frame (11) is connected to a curved rod section (122); a chute area (123) is formed between the curved rod section (122) and the straight rod section (121); and the chute area (123) is used to place the first support rod (2).
5. The glass horizontal operation device according to claim 4, characterized in that: Both ends of the first support rod (2) extend to the outside of the chute area (123), and a pin (22) is installed at the end of the first support rod (2), and the pin (22) is used to abut against the hook (12).
6. The glass horizontal operation device according to claim 4, characterized in that: A hanging lug (13) is also provided on the top of the rectangular frame (11).
7. The glass horizontal operation device according to claim 1, characterized in that: The first support rod (2) is provided with an anti-slip sleeve (21).
8. A glass horizontal operation device according to any one of claims 1 to 7, characterized in that: The first support rod (2) and the second support rod (32) are parallel to each other.
9. The glass horizontal operation device according to claim 8, characterized in that: The vehicle frame (31) includes a bottom frame (311), and two rows of vertical rods (313) are provided on the bottom frame (311), and the vertical rods (313) in each row are arranged at intervals; It also includes two transverse rods (312), and one end of each row of vertical rods (313) away from the base frame (311) is connected through the transverse rod (312), and the second support rod (32) is connected to the transverse rod (312).
10. The glass horizontal operation device according to claim 9, characterized in that: Both ends of the second support rod (32) are connected to one of the transverse rods (312).