Apparatus for eliminating heterogeneous glass and glass manufacturing apparatus comprising the same
09862631 ยท 2018-01-09
Assignee
Inventors
- Kyoung-Hoon Min (Daejeon, KR)
- Ye-Hoon Im (Daejeon, KR)
- Won-Jae Moon (Daejeon, KR)
- Ji-Seob Lee (Daejeon, KR)
Cpc classification
Y02P40/57
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
C03B5/245
CHEMISTRY; METALLURGY
C03B5/262
CHEMISTRY; METALLURGY
C03B5/20
CHEMISTRY; METALLURGY
International classification
C03B5/20
CHEMISTRY; METALLURGY
C03B5/26
CHEMISTRY; METALLURGY
Abstract
The present disclosure provides an apparatus for eliminating a heterogeneous glass present in the top surface of a molten glass effectively, and a melting furnace and a glass manufacturing apparatus comprising the same. The apparatus for eliminating a heterogeneous glass according to one aspect of the present disclosure comprises a storage bath having an inlet and an outlet to receive a molten glass fed into the inlet and to discharge the received molten glass through the outlet, and an evacuating opening formed on the top of the storage bath, the evacuating opening allowing the received molten glass to overflow; a first gate being mounted close to the outlet of the storage bath to adjust an open area, thereby controlling the flow rate of the molten glass to be discharged through the outlet; and a second gate being mounted close to the inlet of the storage bath to control the height of the molten glass received in the storage bath at the section in which the evacuating opening is formed.
Claims
1. An apparatus for eliminating a heterogeneous glass, comprising: a storage bath having an inlet to receive a molten glass fed into the inlet and an outlet to discharge the received molten glass through the outlet, and an evacuating opening formed on a top of the storage bath, the evacuating opening located in a section between a first gate and a second gate, the evacuating opening positioned below the top surface of the molten glass maintained between the first gate and the second gate and configured to allow the received molten glass to overflow and eliminate heterogeneous glass on the top surface thereof; the first gate being mounted on an outlet side of the section and configured to move up and down so that the gate can open and close so that a distance between a lower end of the first gate and a bottom of the storage bath can be adjusted to thereby control the flow rate of the molten glass to be discharged through the outlet; the second gate being mounted on an inlet side of the section, the second gate having a bottom that can be inserted in the molten glass, and the second gate having rounded bottom corners, the second gate being configured to move up and down so that the gate can open and close so that the height of the molten glass received in the storage bath can be controlled in the section where the evacuating opening is located, the second gate configured to maintain the height of the molten glass received in the storage bath in the section where the evacuating opening is located between the first gate and second gate at a constant value or within a constant range whereby an overflow rate through the evacuating opening can be constantly maintained thereby eliminating the heterogenous glass even if operation conditions of a melting furnace producing the molten glass or properties of the molten glass are changed; and a height-measuring unit for measuring the height of the molten glass received in the storage bath at the section in which the evacuating opening is formed, the height-measuring unit transferring an information of the height measurement to the second gate, wherein the second gate is controlled to operate using the information transferred by the height-measuring unit and configured to move upwardly or downwardly such that the double length of the depth of the second gate inserted in the molten glass at the side in which the evacuating opening is positioned is less than a horizontal distance between the second gate and the evacuating opening.
2. The apparatus for eliminating a heterogeneous glass according to claim 1, wherein the second gate is configured to increase an open area when it moves upwardly from the bottom.
3. The apparatus for eliminating a heterogeneous glass according to claim 1, wherein the second gate is made of a refractory material.
4. The apparatus for eliminating a heterogeneous glass according to claim 1, wherein the second gate is surface-coated with platinum.
5. A glass melting furnace, comprising the apparatus for eliminating a heterogeneous glass according to claim 1.
6. A glass manufacturing apparatus, comprising the apparatus for eliminating a heterogeneous glass according claim 1.
Description
DESCRIPTION OF DRAWINGS
(1) The accompanying drawing illustrates a preferred embodiment of the present disclosure and together with the foregoing disclosure, serves to provide further understanding of the technical spirit of the present disclosure. However, the present disclosure is not construed as being limited to the drawing.
(2)
(3)
(4)
MODE FOR DISCLOSURE
(5) Hereinafter, preferred embodiments of the present disclosure will be described in detail with reference to the accompanying drawings. Prior to the description, it should be understood that the terms used in the specification and the appended claims should not be construed as limited to general and dictionary meanings, but interpreted based on the meanings and concepts corresponding to technical aspects of the present disclosure on the basis of the principle that the inventor is allowed to define terms appropriately for the best explanation.
(6) Therefore, the description proposed herein is just a preferable example for the purpose of illustrations only, not intended to limit the scope of the disclosure, so it should be understood that other equivalents and modifications could be made thereto without departing from the spirit and scope of the disclosure.
(7)
(8) Referring to
(9) The storage bath 100 has a space capable of receiving a liquid, in which a high temperature molten glass is received. Also, the storage bath 100 has an inlet 110 and an outlet 120 formed therein, the inlet 110 allows the molten glass to be fed therethrough into a receiving space, and the outlet 120 allows the received molten glass in the receiving space to be discharged therethrough.
(10) Meanwhile, since the storage bath 100 should receive a high temperature molten glass, it may be made of a refractory material such as a firebrick.
(11) The storage bath 100, which is a component of a melting furnace that melts the raw materials of a glass to produce a molten glass, is included within the melting furnace or is positioned in the rear end of the melting furnace to supply the molten glass into a molding furnace such as a float bath.
(12) Particularly, the storage bath 100 may have an overflow zone that allows a part of the molten glass received to overflow. For this, the storage bath 100 may have one or more evacuating openings 130 on the top thereof. For example, as shown in
(13) The first gate 200 is configured to be mounted close to the outlet of the storage bath 100 so that it can open and close. Particularly, the first gate 200 can adjust an open area to control the flow rate of the molten glass to be discharged through the outlet 120 of the storage bath 100.
(14) Particularly, the first gate 200 may be configured to move up and down, as indicated by b1 in
(15) Preferably, the first gate 200 can adjust an open area by measuring the flow rate of the molten glass being discharged through the outlet 120. For example, when the flow rate of the molten glass being discharged through the outlet 120 is higher than the reference rate, the open area may increase, and when the flow rate of the molten glass being discharged through the outlet 120 is less than the reference rate, the open area may decrease.
(16) The second gate 300 may be mounted close to the inlet 110 of the storage bath 100 with the evacuating opening 130 as the center. That is, as shown in
(17) The second gate 300 may be configured to open and close, similar to the first gate 200. Particularly, the second gate 300 can adjust an open area, thereby controlling the height of the molten glass received in the storage bath 100 at the position in which the evacuating opening 130 is formed.
(18) The configuration for controlling the height of the second gate 300 will be described below with reference to
(19)
(20) Referring to
(21) For example, referring to
(22) Preferably, the second gate 300 is preferably configured to constantly maintain the height of the molten glass received in the storage bath 100 at the section in which the evacuating opening 130 is formed. That is, the second gate 300 can adjust an open area so that H1 shown in
(23) According to such an embodiment, even though the operation conditions of the melting furnace or the properties of the glass are changed, the height of the molten glass at the section in which the evacuating opening 130 is formed can be constantly maintained, and therefore, the overflow rate through the evacuating opening 130 can be constantly maintained. Thereby, a heterogeneous glass present in the top surface of the molten glass can be effectively eliminated, making it prevent the problem that the heterogeneous glass is insufficiently eliminated or the normal glass is excessively eliminated.
(24) Preferably, the apparatus for eliminating a heterogeneous glass according to the present disclosure further comprises a height-measuring unit.
(25) The height-measuring unit measures the height of the molten glass received in the storage bath 100 at the section in which the evacuating opening 130 is formed. For example, the height-measuring unit can measure the distance of H1 in
(26) Preferably, the second gate is configured such that a horizontal distance between the second gate 300 and the evacuating opening 130 is more than the double length of the depth of the second gate 300 inserted in the molten glass at the side in which the evacuating opening is positioned.
(27) For example, in
L1>2H2
(28) By such relation, the sufficient length can be obtained so that a heterogeneous glass present in the surface of the front side (the left of
(29) Also, the second gate 300 is preferably configured such that the depth of the second gate 300 inserted in the molten glass at the side in which the evacuating opening 130 is positioned ranges from 10 to 50% of the depth of the molten glass received in the storage bath 100 at the section in which the evacuating opening 130 is formed.
(30) For example, in
0.1H2/H10.5
(31) By such relation, the flow rate of the molten glass that passes through the second gate 300 can be lowered below a certain level to minimize the formation of vortex and to make a heterogeneous glass be raised into the surface of the molten glass again after passing through the second gate 300, from which the heterogeneous glass is surely made to overflow and be eliminated.
(32) Also, the second gate 300 is preferably configured to have rounded bottom corners.
(33)
(34) Referring to
(35) However, the present invention is not limited to such a configuration, and the second gate 300 may be variously configured.
(36) Also, the second gate 300 is preferably made of a refractory material. Since the second gate 300 comes into contact with a high temperature molten glass, it is favorable to be made of a refractory material being endurable to high temperature conditions.
(37) In addition, the second gate 300 is preferably coated with a material being not brought into reaction with a high temperature molten glass on at least a part of the surface thereof. For example, the surface of the second gate 300 may be coated with platinum being chemically stable to a high temperature molten glass.
(38) The apparatus for eliminating a heterogeneous glass according to the present disclosure can be applied in a glass melting furnace that melts glass raw materials and supplies the molten glass into a molding furnace such as a float bath. That is, the glass melting furnace of the present disclosure may comprise the above-mentioned apparatus for eliminating a heterogeneous glass. In this melting furnace, a bath receiving a molten glass may act as the storage bath 100 of the above-mentioned apparatus for eliminating a heterogeneous glass.
(39) Further, the present disclosure provides a glass manufacturing apparatus, comprising the above-mentioned apparatus for eliminating a heterogeneous glass. Particularly, the glass manufacturing apparatus of the present disclosure may comprise the above-mentioned apparatus for eliminating a heterogeneous glass in a melting furnace. Besides, the glass manufacturing apparatus of the present disclosure may comprise a molding furnace and a slow cooling chamber.
(40) Hereinabove, the present disclosure has been described by the limited embodiments and drawings, but is not limited thereto, and it should be understood that various changes and modifications may be made by those skilled in the art within the spirit of the disclosure and the equivalent scope of the appended claims.