High-temperature glass guide plate
By designing a high-temperature glass guide plate and utilizing a receiving tray, connecting plate, and baffle structure, the glass drop point is changed, solving the problem of high-temperature glass stacking, reducing the falling speed and improving the cooling effect, and reducing the risk of burns.
Patent Information
- Application Number
- CN202423044904.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-10
- Publication Date
- 2025-12-23
- Estimated Expiration
- 2034-12-10
AI Technical Summary
High-temperature glass overflows have high temperatures and fall vertically at high speeds, resulting in poor cooling effects. The uniformity of the falling points leads to the accumulation of high-temperature glass, posing a risk of burns and scalds.
A high-temperature glass guide plate is designed, including a receiving tray, a connecting plate, and a baffle. By setting a discharge port and an overflow dispersion groove, the drop point of the glass is changed, the descent speed is slowed down and the overflow is dispersed, the dripping speed is reduced, and the cooling effect is improved.
It reduces the falling speed of the overflowing glass, disperses the high-temperature glass, improves the cooling effect, and reduces the risk of burns.
Smart Images

Figure CN223705465U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to a high temperature glass flow guide plate and belongs to the field of glass manufacturing. BACKGROUND
[0002] The glass dripping material is high in overflow temperature, fast in vertical falling speed, poor in cooling effect, consistent in falling point, more difficult to cool in high temperature glass stacking, and has big scalding and burning hidden dangers, through the installation of the flow guide plate, the water flow is added at the back to scatter the overflow and slow down the falling speed, the dropping point is changed to prevent the high temperature glass from stacking, and the high temperature caking problem of the overflow material is solved SUMMARY
[0003] According to the problems in the background, the utility model solves the problems of:
[0004] The glass dripping material is high in overflow temperature, fast in vertical falling speed, poor in cooling effect, consistent in falling point, more difficult to cool in high temperature glass stacking, and has big scalding and burning hidden dangers.
[0005] To achieve the above-mentioned purpose, the utility model provides the following technical scheme:
[0006] A high temperature glass flow guide plate, comprising a material receiving disc, a connecting plate and a baffle, one end of the connecting plate is fixed to the edge of a material basin, and the other end is connected to the material receiving disc, the top of the material receiving disc is a spherical surface with a protruding middle part, two or more baffles are arranged on the edge of the spherical surface, the baffles are not connected to each other, and the gap between the baffles is a discharging port.
[0007] Preferably, the discharging port is connected to an overflow dispersing groove.
[0008] Preferably, the overflow dispersing groove is arranged along the tangent of the edge of the spherical surface, and the overflow dispersing groove is arranged obliquely downward.
[0009] According to the requirements of reducing the dripping speed and dispersing the overflow, the flow guide plate and the material receiving disc are installed to scatter the overflow and slow down the falling speed, the discharging port is arranged by increasing the baffle, the dropping point is changed to prevent the high temperature glass from stacking, and the high temperature caking problem of the overflow material is solved.
[0010] The use of the overflow dispersing groove reduces the area of the material receiving disc and saves materials; the overflow dispersing plate prolongs the discharging port, so that the glass overflow flowing out of the discharging port flows into the material basin along the inner wall of the material basin, improves the cooling performance, and improves the effect of the discharging port.
[0011] The utility model has the advantages of:
[0012] The utility model reduces the dripping speed, disperses the high temperature glass overflow, and improves the cooling effect of the high temperature glass. BRIEF DESCRIPTION OF DRAWINGS
[0013] Figure 1 It is a top view of the utility model
[0014] Figure 2 Front view of the utility model
[0015] In the figure: 1 is connecting plate; 2 is material receiving tray; 3 is baffle; 4 is overflow dispersion groove. DETAILED DESCRIPTION
[0016] Example 1
[0017] A high-temperature glass flow guide plate, comprising a material receiving tray 2, a connecting plate 1 and a baffle 3, one end of the connecting plate 1 is fixed on the edge of the material basin, and one end is connected to the material receiving tray 2, the top of the material receiving tray 2 is a spherical surface with a raised middle part, and two or more than two baffles 3 are arranged on the edge of the spherical surface, the baffles 3 are not connected to each other, and the gap between the baffles is a discharge port.
[0018] The overflow dispersion groove 4 can be connected to the discharge port.
[0019] The overflow dispersion groove 4 is arranged along the tangent of the edge of the spherical surface, and the overflow dispersion groove 4 is arranged obliquely downward.
[0020] The utility model reduces the dripping speed, disperses the overflow of high-temperature glass, and improves the cooling effect of high-temperature glass.
Claims
1. A high-temperature glass flow guide plate, characterized in that, It includes a receiving tray (2), a connecting plate (1) and a baffle (3). One end of the connecting plate (1) is fixed to the edge of the material basin, and the other end is connected to the receiving tray (2). The top of the receiving tray (2) is a spherical surface with a central protrusion. Two or more baffles (3) are provided on the edge of the spherical surface. The baffles (3) are not connected to each other, and the gap between the baffles is the discharge port.
2. The high-temperature glass guide plate according to claim 1, characterized in that, An overflow dispersion tank (4) can be connected to the discharge port.
3. A high-temperature glass flow guide plate according to claim 2, characterized in that, The overflow dispersion groove (4) is arranged along the tangent of the edge of the sphere, and the overflow dispersion groove (4) is arranged obliquely downward.