Insulating glass side edge sealing apparatus
By designing a multi-component collaborative edge sealing device for insulated glass, the problems of inflexible fixing and inaccurate edge sealing in existing technologies have been solved. This enables stable clamping and efficient edge sealing of glass of different specifications, improving sealing effect and heat dissipation performance.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- NINGXIA FUDUO GLASS CO LTD
- Filing Date
- 2025-04-21
- Publication Date
- 2026-06-02
AI Technical Summary
Existing edge sealing devices for insulated glass cannot be flexibly adjusted according to the size of the glass, resulting in frequent equipment replacements, cumbersome operation, and deviations in the sealing position, which affect the sealing effect and aesthetics. Furthermore, the single fixing method cannot take into account differences in glass thickness, which can easily cause crushing or insecure fixing.
A device comprising a base plate, a support plate, a top plate, a fixing component, an edge sealing component, and a cooling component was designed. Through the coordinated action of components such as telescopic rods, sliding blocks, guide rods, suction cups, a driving power supply, and fan blades, it achieves stable clamping and precise edge sealing of glass of different specifications, and combines aerodynamic principles for heat dissipation.
It enables flexible and adaptable fixing of glass of different specifications, ensures precise edge sealing, improves sealing effect and aesthetics, and enhances the structural stability and heat dissipation efficiency of the device.
Smart Images

Figure CN224314847U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of heat-insulating glass processing technology, and in particular to a heat-insulating glass side sealing device. Background Technology
[0002] The function of a side sealing device for insulated glass is to seal the sides of the glass to prevent heat transfer through the edges, thereby improving its insulation performance. This device, typically composed of sealing strips or other materials, effectively reduces the penetration of air and moisture, preventing deformation or breakage caused by thermal expansion and contraction. Simultaneously, it also improves the structural stability of the glass, extends its service life, and enhances the building's energy efficiency, reducing energy consumption for air conditioning and heating.
[0003] Existing side sealing devices cannot be fixed and adjusted according to the size of the glass, which has many drawbacks. When dealing with glass of different specifications, it is necessary to frequently change the matching equipment, which is cumbersome and inefficient. In addition, due to the lack of a flexible adjustment mechanism, it is easy to cause the sealing position to deviate, affecting the sealing effect and aesthetics. Furthermore, the fixing method is singular and cannot take into account the differences in glass thickness, which can easily cause crushing or loose fixing, increasing waste and costs.
[0004] Therefore, this application provides a heat-insulating glass side sealing device to meet the requirements. Utility Model Content
[0005] The purpose of this invention is to address the shortcomings of existing technologies by proposing a side sealing device for heat-insulating glass.
[0006] To achieve the above objectives, the present invention adopts the following technical solution: a heat-insulating glass side sealing device, comprising a base plate and a support plate placed on top of the base plate, wherein a top plate is fixed to the top of the support plate, and further comprising:
[0007] The fixing component includes a first telescopic rod disposed on the top of the base plate, a first sliding block disposed on both sides of the first telescopic rod, a fixing block fixed on the top of the first sliding block, a first guide rod rotatably disposed on both ends of the fixing block, a telescopic suction cup slidably disposed on each of the first guide rods, and a first driving power supply disposed on the top of the telescopic suction cup;
[0008] An edge sealing assembly includes a sliding groove formed at the bottom of a top plate, a second guide rod disposed inside the sliding groove, and a sliding plate slidably disposed on the second guide rod.
[0009] Furthermore, a slot is provided on the top of the base plate, through which the first telescopic rod is slidably connected to the base plate.
[0010] The beneficial effects of adopting the above-mentioned further solution are: the top of the base plate is slotted, and the first telescopic rod slides in the slot, which can flexibly adjust the lateral position to adapt to different types of glass and enhance the adaptability and flexibility of the device for fixing glass.
[0011] Furthermore, a rotating base is provided on the top side of the base plate away from the first telescopic rod.
[0012] The beneficial effect of adopting the above-mentioned further solution is that the rotating base on the top of the base plate away from the first telescopic rod is used to support the second telescopic rod and allow it to rotate, and adjust the angle of the fixing component to fit the edge of the glass.
[0013] Furthermore, the cooling component includes a fixed box fixed in the slot of the support plate, a fixed ring fixed on each fixed box, a rotating shaft provided in the middle of each fixed ring, and a fan blade provided on each rotating shaft.
[0014] The beneficial effects of adopting the above-mentioned further solution are: the fixed box is fixed in the slot of the support plate, providing structural support and positioning the component. The fixed ring on the fixed box surrounds the rotating shaft, forming a rotation fulcrum, so that the rotating shaft can rotate freely. When the fan blades on the rotating shaft rotate with the shaft, they drive the airflow through the principle of aerodynamics to dissipate heat from the inside of the equipment or the glass sealing area.
[0015] Furthermore, rotating rings are fixed on both sides of the rotating shaft away from the fan blades, and arc-shaped blades are arranged between the rotating rings. Arc-shaped plates are arranged on the outer side of the arc-shaped blades.
[0016] The beneficial effects of adopting the above-mentioned further scheme are: the rotating rings on both sides of the rotating shaft are fixed to the shaft body and rotate synchronously with the shaft, providing a support base for the arc-shaped blades. The arc-shaped blades connect the two rotating rings, and their curved surface design cuts the airflow through aerodynamic effects during rotation, generating directional wind force. The outer arc-shaped plate fits the curvature of the blade, guiding the airflow to flow in a preset direction, reducing turbulence and enhancing heat dissipation efficiency.
[0017] Compared with the prior art, the advantages and positive effects of this utility model are as follows:
[0018] 1. The first telescopic rod at the top of the base plate is telescopic. By adjusting its height and lateral position, it can initially adapt to glass of different sizes. The rotating block at the top of the first telescopic rod can drive the bending rod to rotate, adapting to different angle edges of the glass. The slot at the top of the bending rod cooperates with the first sliding block, allowing the first sliding block to slide in the slot and flexibly adjust the lateral spacing. The fixing block at the top of the first sliding block securely installs the first guide rod. The two ends of the first guide rod are rotatable, and the telescopic suction cup on it can slide along the rod to find the best adsorption point and adjust the angle with the rod. After the telescopic suction cup is attached to the glass, it is adsorbed and fixed. All components work together to achieve stable clamping of glass of different specifications, providing reliable support for edge sealing.
[0019] 2. The sliding groove at the bottom of the top plate is the basic structure, which accommodates the second guide rod. The second drive power supply at one end of the second guide rod provides power after being energized, driving the sliding plate to slide on the second guide rod to achieve lateral movement and adjust the edge sealing position. The third guide rod inside the sliding plate allows the second sliding block to slide on it, achieving longitudinal fine adjustment and ensuring accurate positioning of the edge sealing head. The conveying pipes slid on both sides of the second sliding block can further fine-tune the position to ensure that the edge sealing head is accurately aligned with the side of the glass. The edge sealing head is located at the bottom of the conveying pipe. Attached Figure Description
[0020] Figure 1 This is a front view of a heat-insulating glass side sealing device according to the present invention;
[0021] Figure 2 This is a structural diagram of the fixing component in the heat-insulating glass side sealing device of this utility model;
[0022] Figure 3 This is a structural diagram of the edge sealing component in the heat-insulating glass side edge sealing device of this utility model;
[0023] Figure 4 This is a structural diagram of the cooling component in a heat-insulating glass side sealing device according to the present invention.
[0024] Figure label:
[0025] 1. Base plate; 2. Support plate;
[0026] 3. Fixing component; 31. First telescopic rod; 32. Rotating block; 33. Second telescopic rod; 34. Bending rod; 35. Third telescopic rod; 36. First sliding block; 37. Fixing block; 38. First guide rod; 39. First driving power supply; 310. Telescopic suction cup; 311. Rotating base;
[0027] 4. Top slab;
[0028] 5. Edge sealing assembly; 51. Second guide rod; 52. Sliding groove; 53. Sliding plate; 54. Third guide rod; 55. Second sliding block; 56. Conveying pipe; 57. Edge sealing head; 58. Second drive power supply;
[0029] 6. Cooling component; 61. Fixing box; 62. Fixing ring; 63. Rotating shaft; 64. Fan blade; 65. Rotating ring; 66. Curved blade; 67. Curved plate. Detailed Implementation
[0030] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.
[0031] like Figure 1 - Figure 3 As shown, this utility model provides a technical solution: a heat-insulating glass side sealing device, including a base plate 1 and a support plate 2 placed on top of the base plate 1, a top plate 4 fixed to the top of the support plate 2, and further including:
[0032] The fixing component 3 includes a first telescopic rod 31 disposed on the top of the base plate 1. First sliding blocks 36 are disposed on both sides of the first telescopic rod 31. A fixing block 37 is fixed to the top of each sliding block 36. First guide rods 38 are rotatably disposed at both ends of each fixing block 37. Telescopic suction cups 310 are slidably disposed on each guide rod 38. A first driving power supply 39 is disposed on the top of each telescopic suction cup 310. The first telescopic rod 31 on the top of the base plate 1 is telescopic, and by adjusting its height and lateral position, it can initially adapt to glass of different sizes. The rotating blocks at the top of the first telescopic rod 31... 32 can drive the bending rod 34 to rotate, adapting to different angle edges of the glass. The slot at the top of the bending rod 34 cooperates with the first sliding block 36, allowing the first sliding block 36 to slide in the slot and flexibly adjust the lateral spacing. The fixing block 37 at the top of the first sliding block 36 securely installs the first guide rod 38. The two ends of the first guide rod 38 can rotate, and the telescopic suction cup 310 on it can slide along the rod to find the best adsorption point and adjust the angle with the rod. After the telescopic suction cup 310 is attached to the glass, it is adsorbed and fixed. All components work together to achieve stable clamping of glass of different specifications, providing reliable support for edge sealing.
[0033] The edge sealing assembly 5 includes a sliding groove 52 formed at the bottom of the top plate 4. A second guide rod 51 is provided inside the sliding groove 52. A sliding plate 53 is slidably arranged on the second guide rod 51. The sliding groove 52 at the bottom of the top plate 4 is the basic structure that accommodates the second guide rod 51. A second driving power source 58 at one end of the second guide rod 51 provides power when energized, driving the sliding plate 53 to slide on the second guide rod 51 to achieve lateral movement and adjust the edge sealing position. A third guide rod 54 inside the sliding plate 53 allows the second sliding block 55 to slide on it, achieving longitudinal fine adjustment and ensuring accurate positioning of the edge sealing head 57. Conveying pipes 56 are slidably arranged on both sides of the second sliding block 55, which can further fine-tune the position to ensure that the edge sealing head 57 is accurately aligned with the glass side. The edge sealing head 57 is located at the bottom of the conveying pipes 56.
[0034] Furthermore, such as Figure 1- Figure 3 As shown: The top of the base plate 1 is provided with a slot, and the first telescopic rod 31 is slidably connected to the base plate 1 through the slot. The slot on the top of the base plate 1 allows the first telescopic rod 31 to slide within the slot, which can flexibly adjust the lateral position to adapt to different types of glass and enhance the adaptability and flexibility of the device for fixing glass.
[0035] Furthermore, such as Figure 1 - Figure 2 As shown: The cooling component 6 includes a fixed box 61 fixed in the slot of the support plate 2. Each fixed box 61 is fixed with a fixing ring 62. A rotating shaft 63 is set in the middle of the fixing ring 62. Each rotating shaft 63 is equipped with a fan blade 64. The fixed box 61 is fixed in the slot of the support plate 2 to provide structural support and position the component. The fixing ring 62 on the fixed box 61 surrounds the rotating shaft 63 to form a rotation fulcrum, so that the rotating shaft 63 can rotate freely. When the fan blade 64 on the rotating shaft 63 rotates with the shaft, it drives the airflow through the aerodynamic principle to dissipate heat from the inside of the equipment or the glass sealing area.
[0036] like Figure 1 - Figure 4As shown, the top of the base plate 1 has a slot that allows the first telescopic rod 31 to slide laterally. Combined with its own telescopic function, this allows for initial adjustment of the height and lateral position of the fixing component 3 to accommodate glass of different sizes. The second telescopic rod 33 at the top of the first telescopic rod 31 provides further fine adjustment, ensuring a tighter fit between the device and the glass. A rotating block 32 at one end of the second telescopic rod 33 connects to a bent rod 34, allowing the bent rod 34 to rotate at multiple angles to adapt to the different edge contours of the glass. The slot at the top of the bent rod 34 engages with the first sliding block 36, allowing the first sliding block 36 to move flexibly within the slot. The sliding block 36 allows for fine-tuning of its lateral position. The fixing block 37 at the top of the first sliding block 36 securely fixes the first guide rod 38. The first guide rod 38 has rotatable ends with slidable telescopic suction cups 310 mounted on it. These cups can slide along the rod to find the optimal suction point and rotate with the rod to adhere to the glass surface. The first driving power supply 39 at the top powers the suction cups, generating suction to firmly adhere to the glass side. In the edge sealing assembly 5, the sliding groove 52 at the bottom of the top plate 4 accommodates the second guide rod 51. When the second driving power supply 58 at one end is energized, it drives the sliding plate 53 to slide horizontally along the second guide rod 51. The sliding plate 53 is moved to adjust the sealing position. The third guide rod 54 inside the sliding plate 53 allows the second sliding block 55 to be finely adjusted longitudinally, ensuring the sealing head 57 is accurately positioned. The conveying pipes 56 on both sides of the second sliding block 55 can be further finely adjusted to ensure the sealing head 57 is accurately aligned with the glass side. The sealing head 57 at the bottom of the conveying pipe 56 receives material to achieve coating or extrusion sealing. In terms of auxiliary structure, the rotating base 311 at the top of the base plate 1 supports the second telescopic rod 33 and allows it to rotate. In conjunction with the retractable third telescopic rod 35 between the second telescopic rods 33, the two... The spacing of the second telescopic rod 33 is adapted to different widths of glass while adjusting the angle of the fixing component 3. In the cooling component 6, the fixing box 61 is fixed in the slot of the support plate 2 to provide structural support. The fixing ring 62 on the fixing box 61 surrounds the rotating shaft 63 to form a fulcrum. The rotating shaft 63 drives the fan blade 64 to rotate and promote airflow for heat dissipation. The rotating rings 65 on both sides of the rotating shaft 63 provide support for the arc blade 66. When the arc blade 66 rotates, it cuts the airflow to generate directional wind force. The outer arc plate 67 fits the curvature of the blade to optimize the airflow direction, reduce turbulence, and enhance heat dissipation efficiency.
[0037] The above description is merely a preferred embodiment of the present utility model and is not intended to limit the present utility model in any other way. Any person skilled in the art may make changes or modifications to the above-disclosed technical content to create equivalent embodiments for application in other fields. However, any simple modifications, equivalent changes, and modifications made to the above embodiments based on the technical essence of the present utility model without departing from the technical solution of the present utility model shall still fall within the protection scope of the technical solution of the present utility model.
Claims
1. A heat-insulating glass side sealing device, comprising a base plate (1) and a support plate (2) placed on top of the base plate (1), wherein a top plate (4) is fixed to the top of the support plate (2), characterized in that, Also includes: The fixing component (3) includes a first telescopic rod (31) set on the top of the base plate (1), a first sliding block (36) is provided on both sides of the first telescopic rod (31), a fixing block (37) is fixed on the top of the first sliding block (36), a first guide rod (38) is rotatably provided at both ends of the fixing block (37), a telescopic suction cup (310) is slidably provided on the first guide rod (38), and a first driving power supply (39) is provided on the top of the telescopic suction cup (310). The edge sealing assembly (5) includes a sliding groove (52) formed at the bottom of the top plate (4), and a second guide rod (51) is provided inside the sliding groove (52), and a sliding plate (53) is slidably disposed on the second guide rod (51).
2. The heat-insulating glass side sealing device according to claim 1, characterized in that, The top of the base plate (1) is provided with a slot, and the first telescopic rod (31) is slidably connected to the base plate (1) through the slot.
3. The heat-insulating glass side sealing device according to claim 1, characterized in that, A rotating base (311) is provided on the top side of the base plate (1) away from the first telescopic rod (31).
4. The heat-insulating glass side sealing device according to claim 1, characterized in that, A second driving power supply (58) is fixed at one end of the second guide rod (51). A third guide rod (54) is provided inside the sliding plate (53). A second sliding block (55) is slidably provided on the third guide rod (54). A conveying pipe (56) is provided at both ends of the second sliding block (55). A sealing head (57) is provided at the other end of the conveying pipe (56).
5. The heat-insulating glass side sealing device according to claim 1, characterized in that, The support plate (2) has a slot in the middle, and a cooling component (6) is provided in the support plate (2) through the slot.
6. The heat-insulating glass side sealing device according to claim 5, characterized in that, The cooling component (6) includes a fixed box (61) fixed in the slot of the support plate (2). Each fixed box (61) is fixed with a fixing ring (62). A rotating shaft (63) is provided in the middle of the fixing ring (62). Each rotating shaft (63) is provided with a fan blade (64).
7. The heat-insulating glass side sealing device according to claim 6, characterized in that, Rotating rings (65) are fixed on both sides of the rotating shaft (63) away from the fan blade (64). Arc-shaped blades (66) are provided between the rotating rings (65), and arc-shaped plates (67) are provided on the outer side of the arc-shaped blades (66).
8. The heat-insulating glass side sealing device according to claim 1, characterized in that, A rotating block (32) is provided on one side of the first telescopic rod (31), and a second telescopic rod (33) is provided between each of the rotating blocks (32). A rotating block (32) is provided at the top of the first telescopic rod (31), and a bending rod (34) is rotatably provided at the other end of the rotating block (32).
9. The heat-insulating glass side sealing device according to claim 8, characterized in that, The top of each of the bent rods (34) is provided with a slot, and the bent rods (34) are slidably connected to the first sliding block (36) through the slot. A third telescopic rod (35) is provided between each of the second telescopic rods (33).