Float glass manufacturing device and float glass manufacturing method
By attaching a heat sink with fins to the casing and using a refrigerant nozzle to cool the float glass manufacturing apparatus, the cooling efficiency is enhanced, mitigating reactions and optimizing the manufacturing process.
Patent Information
- Application Number
- JP2021174603
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2021-10-26
- Publication Date
- 2025-10-15
- Estimated Expiration
- 2041-10-26
AI Technical Summary
Existing float glass manufacturing processes face inefficiencies in cooling the casing of the float glass manufacturing apparatus, which can lead to reactions between the molten metal and the casing material.
The integration of a heat sink with fins attached to the outer surface of the casing, combined with a refrigerant nozzle to spray coolant directly onto the casing and heat sink, enhances cooling efficiency by improving heat dissipation.
The improved cooling efficiency reduces the risk of reactions between the molten metal and the casing, optimizing the manufacturing process and potentially reducing coolant usage.
Smart Images

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Abstract
Description
[Technical Field]
[0001] The present disclosure relates to a float glass manufacturing apparatus and a float glass manufacturing method. [Background technology]
[0002] Float glass manufacturing equipment continuously supplies molten glass onto molten metal in a bath, causing the molten glass to flow over the molten metal and form the molten glass into a band-like glass ribbon. After the glass ribbon is slowly cooled, both ends of the glass ribbon in the width direction are cut off to obtain float glass. Float glass is used for glass substrates for flat panel displays (FPDs), etc.
[0003] Patent Document 1 describes that the bathtub comprises a box-shaped metal casing and a plurality of bricks provided inside the metal casing, that joints are formed between the plurality of bricks, that molten metal flows into the joints, and that a cooling nozzle blows air or the like onto the underside of the metal casing to suppress a reaction between the molten metal and the metal casing. Contents similar to those of Patent Document 1 are also disclosed in Patent Documents 2 to 4. [Prior art documents] [Patent documents]
[0004] [Patent Document 1] Japanese Patent Application Publication No. 2019-94222 [Patent Document 2] Japanese Patent Application Laid-Open No. 2016-147786 [Patent Document 3] Japanese Patent Application Laid-Open No. 2015-124123 [Patent Document 4] International Publication No. 2012 / 060197 Summary of the Invention [Problem to be solved by the invention]
[0005] One aspect of the present disclosure provides a technique for improving the cooling efficiency of a casing. [Means for solving the problem]
[0006] A float glass manufacturing apparatus according to one aspect of the present disclosure includes a bath containing molten metal, continuously supplies molten glass onto the molten metal in the bath, and forms the supplied molten glass into a band-shaped glass ribbon while flowing over the molten metal. The bath includes a plurality of bricks in contact with the molten metal and a box-shaped casing that contains the plurality of bricks. The float glass manufacturing apparatus also includes a nozzle that sprays a refrigerant toward the outer surface of the casing and a heat sink having a plurality of fins. The heat sink is attached to the outer surface of the casing. [Effects of the Invention]
[0007] According to one aspect of the present disclosure, by attaching a heat sink to the outer surface of the casing, the cooling efficiency of the casing can be improved. [Brief explanation of the drawings]
[0008] [Figure 1] FIG. 1 is a cross-sectional view of a float glass manufacturing apparatus according to one embodiment. [Figure 2] FIG. 2 is a cross-sectional view showing an example of a bathtub. [Figure 3] FIG. 3 is a view showing an example of the arrangement of the bottom casing, the nozzle outlet, and the heat sink. [Figure 4] FIG. 4 is a perspective view showing an example of the structure of a heat sink. [Figure 5] FIG. 5 is a perspective view showing a modified example of the structure of the heat sink. [Figure 6] FIG. 6 is a view showing an example of a view through the bottom casing and a flow path of the coolant formed between adjacent fins. DETAILED DESCRIPTION OF THE INVENTION
[0009] Hereinafter, embodiments of the present disclosure will be described with reference to the drawings. Note that in each drawing, the same or corresponding configurations are denoted by the same reference numerals, and descriptions thereof may be omitted. In each drawing, the X-axis direction, Y-axis direction, and Z-axis direction are perpendicular to each other. The X-axis direction is the flow direction of the glass ribbon GR, and the Y-axis direction is the width direction of the glass ribbon GR. The X-axis direction and Y-axis direction are horizontal directions, and the Z-axis direction is vertical direction. In the specification, the symbol "to" indicating a numerical range means that the numerical values before and after it are included as the lower limit and upper limit.
[0010] As shown in FIGS. 1 and 2 , a float glass manufacturing apparatus 1 continuously supplies molten glass G onto molten metal M in a bath 10, and forms the supplied molten glass G into a band-shaped glass ribbon GR while flowing over the molten metal M. The glass ribbon GR is pulled up from the molten metal M in a downstream region of the bath 10, then slowly cooled by a slow-cooling device (not shown), and cut to a predetermined size by a processing device (not shown). The processing device cuts off both widthwise ends of the glass ribbon GR. The glass ribbon GR is processed by the processing device to obtain a float glass product.
[0011] Float glass is, for example, alkali-free glass, aluminosilicate glass, borosilicate glass, soda-lime glass, etc. Alkali-free glass means glass that is substantially free of alkali metal oxides such as NaO and KO. Here, "substantially free of alkali metal oxides" means that the total content of alkali metal oxides is 0.1% by mass or less.
[0012] The use of float glass is not particularly limited, but for example, it is used as a cover glass for displays (e.g., liquid crystal displays or organic EL displays). When float glass is used as a cover glass, it is glass for chemical strengthening. Unlike alkali-free glass, chemical strengthening glass contains alkali metal oxides.
[0013] The thickness of float glass is selected depending on the use of the float glass. When the float glass is used as a cover glass for a display, the thickness of the float glass is, for example, 0.1 mm to 2.0 mm. When the float glass is used as a glass substrate for a display, the thickness of the float glass is, for example, 0.1 mm to 0.7 mm. When the float glass is used as a windshield for an automobile, the thickness of the float glass is, for example, 0.2 mm to 3.0 mm.
[0014] The float glass manufacturing apparatus 1 includes a bath 10. The bath 10 contains a molten metal M. As the molten metal M, for example, molten tin is used. In addition to molten tin, a molten tin alloy or the like can also be used, and the molten metal M may be any metal having a density greater than that of the molten glass G. The bath 10 includes a plurality of bricks 12, 13 that come into contact with the molten metal M, and a box-shaped casing 11 that contains the plurality of bricks 12, 13.
[0015] The casing 11 is made by welding metal plates, for example. The casing 11 contains a magnetic material, for example, iron. The casing 11 includes a bottom casing 111 and a side casing 112. The bottom casing 111 is disposed horizontally, and the side casing 112 is disposed vertically. The side casing 112 protrudes upward from the periphery of the bottom casing 111.
[0016] A plurality of bricks 12, 13 are placed on the bottom casing 111. The bricks 12 are arranged in a frame shape along the side casing 112. These bricks 12 are also called side bricks 12. The remaining bricks 13 are also called bottom bricks 13. The side bricks 12 protrude above the bottom bricks 13 and protrude above the liquid surface of the molten metal M. The bottom bricks 13 are provided below the liquid surface of the molten metal M.
[0017] The float glass manufacturing apparatus 1 includes a spout lip 14 and a tweel 15. The spout lip 14 supplies molten glass G onto the molten metal M in the bath 10. The tweel 15 adjusts the flow rate of the molten glass G flowing over the spout lip 14. A protective film 16 may be formed on the tweel 15 to prevent contact between the tweel 15 and the molten glass G. The protective film 16 is formed of, for example, platinum or a platinum alloy.
[0018] The float glass manufacturing apparatus 1 has a ceiling 17 above the bath 10. The space between the bath 10 and the ceiling 17 is filled with a reducing gas and maintained at a pressure higher than atmospheric pressure to prevent oxidation of the molten metal M. The reducing gas is, for example, a mixed gas of nitrogen gas and hydrogen gas, containing 85% to 98.5% by volume of nitrogen gas and 1.5% to 15% by volume of hydrogen gas. The reducing gas is supplied through the joints between the bricks of the ceiling 17 and through holes in the ceiling 17.
[0019] The float glass manufacturing apparatus 1 is equipped with top rolls 18. The top rolls 18 rotate while pressing the widthwise ends of the glass ribbon GR, and feed out the glass ribbon GR. A pair of top rolls 18 are provided on both sides of the glass ribbon GR in the widthwise direction, and suppress shrinkage of the glass ribbon GR in the widthwise direction. The sheet thickness of the glass ribbon GR can be made thinner than the equilibrium thickness. Although not shown, a plurality of pairs of top rolls 18 are provided at intervals in the flow direction of the glass ribbon GR.
[0020] The float glass manufacturing apparatus 1 includes a heater 19. The heater 19 is suspended from a ceiling 17 and heats the glass ribbon GR passing below. The heater 19 is an electric heater that is heated by passing electricity. The heater 19 is, for example, a SiC heater. A plurality of heaters 19 are arranged in a matrix in the flow direction and width direction of the glass ribbon GR. By controlling the output of the plurality of heaters 19, the temperature distribution of the glass ribbon GR can be controlled, and the thickness distribution of the glass ribbon GR can also be controlled.
[0021] Incidentally, joints 21 are formed between adjacent bottom bricks 13. Joints 22 are also formed between adjacent bottom bricks 13 and side bricks 12. Joints 23 are also formed between adjacent side bricks 12 (see FIG. 3). Molten metal M flows into these joints 21, 22, 23. The molten metal M passes through the joints 21, 22, 23 and may reach the casing 11.
[0022] Therefore, the float glass manufacturing apparatus 1 is equipped with a nozzle 30. The nozzle 30 cools the casing 11 by spraying a refrigerant toward the outer surface of the casing 11, thereby suppressing a reaction between the casing 11 and the molten metal M. The refrigerant, for example, cools the temperature of the casing 11 to a temperature lower than the melting point of the molten metal M, thereby solidifying the molten metal M that has reached the casing 11. The refrigerant is, for example, air. The refrigerant may also be water or a mixture of air and water.
[0023] The nozzle 30 has, for example, an injection port 31 below the bottom casing 111 that injects the refrigerant directly upward toward the lower surface 111a of the bottom casing 111. The injection port 31 injects the refrigerant toward, for example, the joints 21 between adjacent bottom bricks 13 or the joints 22 between adjacent bottom bricks 13 and side bricks 12. The refrigerant can efficiently cool the joints 21 and 22, which are the passageway for the molten metal M, thereby reducing the amount of refrigerant used.
[0024] At least one injection port 31 may inject the coolant toward the joints 21 or 22. After passing through the joints 21 and 22, the molten metal M spreads along the bottom casing 111. Therefore, the injection port 31 may inject the coolant not toward the joints 21 and 22, but toward the molten metal M that has passed through the joints 21 and 22 and then spread laterally from the joints 21 and 22.
[0025] Although not shown, the nozzle 30 may have an injection port on a side of the side casing 112 that injects the coolant directly toward the outward side surface 112a of the side casing 112. The injection port injects the coolant toward, for example, the joints 23 between adjacent side bricks 12. The coolant can efficiently cool the joints 23, which are the path through which the molten metal M passes, thereby reducing the amount of coolant used.
[0026] At least one injection port may inject the refrigerant toward the joint 23. After passing through the joint 23, the molten metal M spreads along the side casing 112. Therefore, the injection port may inject the refrigerant not toward the joint 23, but toward the molten metal M that has passed through the joint 23 and spread laterally from the joint 23.
[0027] The float glass manufacturing apparatus 1 includes a heat sink 40. The heat sink 40 is attached to the outer surface of the casing 11. For example, the heat sink 40 is attached to the lower surface 111a of the bottom casing 111. Although not shown, the heat sink 40 may also be attached to the outward-facing side surface 112a of the side casing 112.
[0028] The heat sink 40 is attached to the outer surface of the casing 11 to release heat from the casing 11 and improve the cooling efficiency of the casing 11. To further improve the cooling efficiency, the nozzle 30 may discharge a coolant toward the heat sink 40. The coolant absorbs the heat of the casing 11 through the heat sink 40 and cools the casing 11.
[0029] As shown in Fig. 4, the heat sink 40 has a plurality of fins 41. The fins 41 increase the surface area that dissipates heat, thereby improving the heat dissipation efficiency. The fins 41 may be rod-shaped or plate-shaped. The plate-shaped fins may be either flat or corrugated.
[0030] The heat sink 40 may have a base plate 42 that supports a plurality of fins 41. Heat from the casing 11 moves from the casing 11 to the plurality of fins 41 via the base plate 42 and is dissipated from the plurality of fins 41. The fins 41 protrude from the base plate 42 in a direction perpendicular to the outer surface of the casing 11, for example, in a direction perpendicular to the lower surface of the bottom casing 111 (Z-axis direction).
[0031] The length L of the fins 41 in the direction perpendicular to the outer surface of the casing 11 is, for example, 75 mm or more. If the length L of the fins 41 is 75 mm or more, heat dissipation efficiency is good. From the viewpoint of heat dissipation efficiency, the length L is preferably 100 mm or more, and more preferably 150 mm or more. However, from the viewpoint of miniaturizing the heat sink 40, the length L is preferably 75 mm to 100 mm.
[0032] Although not shown, the float glass manufacturing apparatus 1 may include a heat-dissipating paint applied to the heat sink 40. The heat-dissipating paint is applied to the heat-dissipating surface of the heat sink 40, for example, the fins 41. The heat-dissipating paint may also be applied to the base plate 42. The heat-dissipating paint improves heat dissipation efficiency by utilizing, for example, thermal radiation. The emissivity of the heat-dissipating paint is, for example, 0.90 to 0.95. The emissivity is measured in accordance with Japanese Industrial Standard JIS A1423:2017. The heat-dissipating paint contains, for example, carbon black.
[0033] The means for fixing the heat sink 40 to the casing 11 is not particularly limited, but it is preferable to fix the heat sink 40 to the casing 11 by welding or by forming the heat sink 40 and the casing 11 into one piece, which allows the heat sink 40 to be firmly fixed to the casing 11. Alternatively, if the heat sink 40 and the casing 11 contain magnetic materials, a magnet 51 may be attached to the heat sink 40 to attract the casing 11.
[0034] The float glass manufacturing apparatus 1 may include a thermally conductive layer 52 between the heat sink 40 and the casing 11. The thermally conductive layer 52 has fluidity, fills the gap between the heat sink 40 and the casing 11, and improves thermal conductivity.
[0035] As described above, the heat sink 40 has a plurality of fins 41 and a base plate 42 that supports the plurality of fins 41. The base plate 42 has a facing surface 42a that faces the outer surface of the casing 11 and an opposite surface 42b that faces away from the facing surface 42a. The thermally conductive layer 52 is applied to the facing surface 42a (e.g., the upper surface) of the base plate 42. The fins 41 are provided on the opposite surface 42b (e.g., the lower surface) of the base plate 42.
[0036] Next, referring to Figure 3, an example of the arrangement of the joints 21 and 22, the nozzle outlet 31 of the nozzle 30, and the heat sink 40 will be described through the bottom casing 111. The heat sink 40 is arranged linearly along the joint 21 or the joint 22. When viewed from a direction perpendicular to the bottom surface of the bottom casing 111 (specifically, from below), the heat sink 40 overlaps with the joint 21 or the joint 22. The heat sink 40 can efficiently cool the joint 21 or the joint 22, which is the path of the molten metal M, and the amount of refrigerant used can be reduced.
[0037] The bottom surface of the bottom brick 13 is rectangular and surrounded on all four sides by four joints selected from the plurality of joints 21, 22 (for example, four joints 21, three joints 21 and one joint 22, or two joints 21 and two joints 22). Therefore, the plurality of heat sinks 40 may be arranged in a square lattice pattern. This allows for concentrated cooling of the path of the molten metal M. This can suppress cooling of areas outside the path of the molten metal M, thereby reducing the amount of refrigerant used.
[0038] When viewed from below, the heat sink 40 may overlap an intersection of four or three joints selected from the plurality of joints 21, 22. When viewed from below, the injection port 31 of the nozzle 30 may also overlap an intersection of four or three joints selected from the plurality of joints 21, 22.
[0039] When viewed from below, the outlet 31 of the nozzle 30 overlaps with the joint 21 or 22 and also overlaps with the heat sink 40. This allows for more concentrated cooling of the path of the molten metal M. This further suppresses cooling of areas outside the path of the molten metal M, thereby further reducing the amount of refrigerant used.
[0040] Although not shown, the heat sink 40 may be attached to the outward side surface 112a of the side casing 112, or may be arranged linearly along the joint 23. In this case, when viewed from a direction perpendicular to the side surface 112a (for example, the Y-axis direction or the X-axis direction), the heat sink 40 overlaps the joint 23. The heat sink 40 can efficiently cool the joint 23, which is the path through which the molten metal M passes, and the amount of refrigerant used can be reduced.
[0041] Next, an example of the structure of the heat sink 40 will be described with reference to Fig. 4 again. The heat sink 40 has, for example, a linear base plate 42 and a plurality of fins 41 arranged in a row at intervals in the longitudinal direction of the base plate 42. The base plate 42 is arranged along the joint 21, the joint 22, or the joint 23.
[0042] The magnets 51 are attached, for example, to both ends in the longitudinal direction of the base plate 42. A pair of magnets 51 are provided, sandwiching the base plate 42 in the width direction. The pair of magnets 51 are attached to both ends in the longitudinal direction of the base plate 42.
[0043] Next, a modified example of the structure of the heat sink 40 will be described with reference to Fig. 5. The heat sink 40 has, for example, a linear base plate 42 and a plurality of fins 41 arranged at intervals in the width direction of the base plate 42. The base plate 42 is arranged along the joint 21, the joint 22, or the joint 23.
[0044] 6, the multiple fins 41 are plates parallel to one another and form flow paths 43 for the refrigerant along the joints 21. The flow paths 43 allow the refrigerant to flow along the joints 21, and the refrigerant can efficiently cool the joints 21. Although not shown, the multiple fins 41 may also form flow paths 43 for the refrigerant along the joints 22 or the joints 23.
[0045] 6, when viewed from a direction (e.g., the Z-axis direction) perpendicular to the outer surface of the casing 11 (e.g., the lower surface of the bottom casing 111), the outlet 31 of the nozzle 30 overlaps with the heat sink 40. The outlet 31 of the nozzle 30 injects the refrigerant directly upward. The direction in which the refrigerant is injected from the outlet 31 is perpendicular to the direction in which the refrigerant flows in the flow path 43.
[0046] Although not shown, the outlet 31 of the nozzle 30 may be installed to the side of the heat sink 40, or may inject the refrigerant directly to the side. In this case, the direction in which the refrigerant is injected from the outlet 31 is the same as the direction in which the refrigerant flows in the flow path 43, so that turbulence in the flow of the refrigerant can be suppressed, and the cooling efficiency of the casing 11 by the refrigerant can be improved.
[0047] The float glass manufacturing apparatus and the float glass manufacturing method according to the present disclosure have been described above, but the present disclosure is not limited to the above-described embodiments. Various changes, modifications, substitutions, additions, deletions, and combinations are possible within the scope of the claims. These naturally fall within the technical scope of the present disclosure. [Explanation of symbols]
[0048] 10 Bathtub M Molten metal G. Molten Glass GR Glass Ribbon
Claims
1. A float glass manufacturing apparatus comprising: a bath for containing molten metal; continuously supplying molten glass onto the molten metal in the bath; and forming the supplied molten glass into a band-like glass ribbon while causing the molten glass to flow on the molten metal, The bath includes a plurality of bricks in contact with the molten metal and a box-shaped casing that accommodates the plurality of bricks, a nozzle that sprays a refrigerant toward the outer surface of the casing; and a heat sink having a plurality of fins, the heat sink is attached to the outer surface of the casing; The float glass manufacturing apparatus, wherein the heat sinks are arranged linearly along the joints between adjacent bricks.
2. 2. The float glass manufacturing apparatus according to claim 1, wherein the nozzle has an injection port for injecting the refrigerant toward joints between adjacent bricks.
3. 2. The float glass manufacturing apparatus according to claim 1, wherein the plurality of heat sinks are arranged in a square lattice pattern.
4. 4. The float glass manufacturing apparatus according to claim 1, wherein the plurality of fins are plates parallel to each other and form flow paths for the refrigerant along joints between adjacent bricks.
5. 5. The float glass manufacturing apparatus according to claim 1, wherein the length of the fin in a direction perpendicular to the outer surface of the casing is 75 mm or more.
6. The float glass manufacturing apparatus according to any one of claims 1 to 5, further comprising a magnet for fixing the heat sink to the casing.
7. The float glass manufacturing apparatus according to any one of claims 1 to 6, further comprising a thermally conductive layer between the heat sink and the casing.
8. The float glass manufacturing apparatus according to any one of claims 1 to 7, further comprising a heat dissipation paint applied to the heat sink.
9. The float glass manufacturing apparatus according to any one of claims 1 to 8, wherein the refrigerant is air, water, or a mixture of air and water.
10. A float glass manufacturing method using the float glass manufacturing apparatus according to any one of claims 1 to 9, forming the molten glass into the glass ribbon while flowing the molten glass over the molten metal; and cooling the outer surface of the casing using the nozzle and the heat sink.
Citation Information
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