LARGE MELTING KILN SUITABLE FOR BOROSILICATE GLASS
20180208492 ยท 2018-07-26
Assignee
Inventors
- Shou Peng (Shanghai, CN)
- Qing LIU (Shanghai, CN)
- LONGYUE JIANG (SHANGHAI, CN)
- YANPING CAO (SHANGHAI, CN)
- Xiaolong Wang (Shanghai, CN)
Cpc classification
C03B5/2252
CHEMISTRY; METALLURGY
Y02P40/50
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
C03B5/027
CHEMISTRY; METALLURGY
C03B5/00
CHEMISTRY; METALLURGY
C03B5/20
CHEMISTRY; METALLURGY
International classification
C03B5/027
CHEMISTRY; METALLURGY
Abstract
A large melting furnace suitable for borosilicate glass. Which has a melting area, a reinforcing area, an ascending area and a clarifying area. The melting area and the reinforcing area are separated by a partition wall, and a lower end of the partition wall goes deep below a surface of molten glass but is not in contact with a bottom of the melting furnace, so as to guarantee that the molten glass in the two areas is interconnected. The structures of the melting area and reinforcing area can also improve the problem of boron volatilization of the borosilicate glass caused by flame melting during a melting process. The molten glass flows out from a throat of the reinforcing area, passes through the ascending area and enters the shallower clarifying area.
Claims
1. A large melting furnace suitable for borosilicate glass, characterized in that the melting furnace is provided with a melting area, a reinforcing area, an ascending area and a clarifying area, wherein, The melting area and the reinforcing area are separated by a partition wall, and a lower end of the partition wall goes deep below a surface of molten glass but is not in contact with a bottom of the melting furnace, so as to guarantee that the molten glass in the two areas is interconnected.
2. The melting furnace according to claim 1, characterized in that the reinforcing area adopts a mixed heating mode, wherein flame heating is adopted for a surface of the molten glass and electrode heating is adopted for a bottom of the melting furnace.
3. The melting furnace according to claim 2, characterized in that the flame heating is full-oxygen combustion, oxygen supported combustion or air combustion.
4. The melting furnace according to claim 2, characterized in that the electrode heating comprises arranging heating electrodes at a bottom of the melting area.
5. The melting furnace according to claim 1, characterized in that the molten glass enters the ascending area through a throat at a bottom of a tail end of the reinforcing area.
6. The melting furnace according to claim 5, characterized in that the ascending area is provided with a homogenization device.
7. The melting furnace according to claim 6, characterized in that the homogenization device is a bubbling device, a mechanical mixing device or an ultrasonic device.
8. The melting furnace according to claim 1, characterized in that the clarifying area is shallower than the melting area, the reinforcing area and the ascending area.
9. The melting furnace according to claim 8, characterized in that an electric heating and negative pressure system is arranged in a space above the surface of the molten glass.
10. The melting furnace according to claim 9, characterized in that the electric heating and negative pressure system in the clarifying area adopts silicon-carbon rods for heating the surface of the molten glass and adopts a mechanical air exhaust mode to guarantee a negative pressure state of the clarifying area.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0020] With reference to the drawings, through the detailed description below, the above-mentioned and other features and advantages of the present invention can be more clearly understood, wherein:
[0021]
[0022]
DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0023] With reference to the specific embodiments and drawings of the present invention, the present invention will be described below in more detail. However, the present invention may be implemented in many different modes and shall not be understood as limited by the embodiments provided herein. Contrarily, these embodiments are provided in order to achieve full and complete disclosure and allow one skilled in the art to fully understand the scope of the present invention.
[0024] Now, with reference to
[0025] As illustrated in
[0026] In some embodiments, the reinforcing area adopts a mixed heating mode, wherein flame heating is adopted for a surface of the molten glass, and electrode heating is adopted for a bottom of the melting furnace. The flame heating may be full-oxygen combustion, oxygen-supported combustion or air combustion. The electrode heating comprises arranging heating electrodes at a bottom of the melting area.
[0027] In some embodiments, the molten glass enters the ascending area through a throat at a bottom of a tail end of the reinforcing area. The ascending area is provided with a homogenization device. The homogenization device may be a bubbling device, a mechanical mixing device or an ultrasonic device. The clarifying area is shallower than the melting area, the reinforcing area and the ascending area.
[0028] In some embodiments, an electric heating and negative pressure system is arranged in a space above the surface of the molten glass. The electric heating and negative pressure system in the clarifying area adopts silicon-carbon rods for heating the surface of the molten glass, and adopts a mechanical air exhaust mode to guarantee a negative pressure state of the clarifying area.
[0029] A full-oxygen combustion mode is selected for the flame melting part in this embodiment, and as illustrated in the drawings, the melting furnace is divided into a melting area, a reinforcing area, an ascending area and a clarifying area, wherein two smoke exhaust flues are arranged at two sides of a furnace body in the reinforcing area.
[0030] The melting area and the reinforcing area of the melting furnace provided by the present invention is separated by a partition wall 1 near level line 7, and the insertion depth into the molten glass level line 7 can be adjusted by the partition wall 1. Below the partition wall 1, the melting area and the reinforcing area are interconnected.
[0031] An open feed inlet is provided above the melting area, powder batch is uniformly fed above the molten glass in the melting area through a feeder, heating electrodes 3 are arranged at a bottom of the melting area, the power of the heating electrodes 3 must guarantee that a surface of the melting area is covered with a thicker powder batch layer, and temperature of the surface of the powder batch layer is as low as possible to enable boron oxide volatilized from the molten glass in the melting area to be condensed in the batch covering layer and to flow back into the molten glass, such that the volatilization of boron oxide is decreased.
[0032] A bottom of the melting furnace in the reinforcing area is heated from the bottom thereof by adopting electrodes 4, a flame combustion spray gun opening 2 is arranged at a sidewall of the melting furnace and is used for erecting a full-oxygen spray gun. Flame heating is adopted in a space above the level line 7. A mode combining electrode hating and flame heating improves the melting quality of the molten glass increased the uniformity of the molten glass and is suitable for a melting furnace having a great production capacity. Since the partition wall 1 separates the flame space from the powder batch, the disturbance caused by flame combustion to the powder batch is decreased and thus the volatilization of boron oxide is decreased. Flues at the two sides of the melting furnace are used for exhausting waste gas produced during flame combustion.
[0033] The molten glass in the reinforcing area passes through a throat 5 between the reinforcing area and the ascending area and enters the ascending area. The throat 5 is located at a position close to the bottom of the melting furnace. A bubbling device 6 is arranged at a bottom of the ascending area to decrease the accumulation of aluminum elements having a larger proportion at a dead corner of the ascending area during the fluxion of the molten glass, and to increase the uniformity of the molten glass.
[0034] The ascending area and the clarifying area are located in a comparatively close space, and the clarifying area is shallower. A depressurization device is arranged at a mechanical air exhaust outlet 10 at the sidewall of the melting furnace in the clarifying area to reduce the pressure in the space above the molten glass level line 7 in the ascending area and the clarifying area and accelerate the exhaust of air bubbles in the molten glass. Besides, a partition plate 8 is arranged in the space above the molten glass level line 7 in the ascending area and the clarifying area, and silicon-carbon rods 9 are used above the partition plate 8 for performing radiation heating to the molten glass, so as to reduce the viscosity of the molten glass and accelerate the exhaust of the air bubbles in the molten glass.
[0035] According to the large melting furnace suitable for borosilicate glass provided by the embodiment of the present invention, the structures of the melting area and reinforcing area can also improve the problem of boron volatilization of the borosilicate glass caused by flame melting during the melting process. The molten glass flows out from the throat of the reinforcing area, passes through the ascending area and enters the shallower clarifying area. By means of the homogenization device arranged in the ascending area and the electric heating and negative pressure system arranged in the clarifying area, the molten glass is sufficiently homogenized and clarified.
[0036] The preferred specific embodiments of the present invention are described above in detail. It should be understood that various modifications and variations may be made by one skilled in the art according to the concept of the present invention without contributing any inventive labor. All technical solutions, which can be obtained by one skilled in the art according to the concept of the present invention on the basis of the prior art through logical analysis, reasoning or limited tests, shall be included in the protection scope determined by the claims.