Background of the Invention
This invention relates to apparatus for refining glass. The principal objective of melting and refining glass is to produce a molten glass that is useful for the intended purposes. Among the criteria utilized to determine the quality of the molten glass are the absence of seeds or bubbles caused by entrapped gas and insufficiently melted materials. The intended use of the glass determines the extent to which seeds can be retained in the glass. Such seeds are a necessary result of the chemical reactions that occur during the melting of the glass-forming materials. Seeds are also described in the art as gaseous inclusions. Large seeds are designated blisters; however, there is no sharp line or demarcation between the classification of seeds and blisters. Seeds generally fall into the size range of 0.0001 inch to 0.030 inch in diameter. This apparatus removes gaseous inclusions most effectively when the seeds are in the range of about 0.001 inch to 0.030 inch and upwards in diameter. However, the operating parameters may be varied to remove seeds of a smaller size, such as increasing the residence time of the molten glass.
In making glass by conventional methods in commercial quantity, the glass-forming materials are usually introduced into a melter which comprises a large volumetric area and are subjected to large quantities of heat. The glass is maintained in the melting area for long periods of time and small quantities are continuously removed as they become molten. The glass is then further subjected to controlled heat in a large volumetric mass to further melt the components that may be interspersed therein and remove gases, and finally the glass is moved slowly to a third volumetric area known as a conditioning zone. Such prior art methods and apparatus involve very large tanks and large quantities of heat in order to produce the desired output.
In the copending application of Richards et al, Ser. No. 130,672, filed Apr. 2, 1971, titled "Method and Apparatus for Refining Molten Glass", now U.S. Pat. No. 3,754,886, having a common assignee with the present application, there is disclosed and claimed a method and apparatus for refining molten glass which has undesirable gaseous inclusions.
The method disclosed in the aforementioned application for removing undesirable gaseous inclusions, also known as seeds and bubbles, from seed containing or unrefined molten glass comprises continuously introducing this unrefined molten glass into a rapidly rotating contained glass mass, subjecting the unrefined molten glass mass to centrifugal forces substantially greater than gravity, and developing static pressure differences in the glass mass, resulting in pressure gradients in the molten glass that cause the gaseous inclusions to migrate to areas of lower static pressure and to the atmosphere from the molten glass, delivering refined molten glass from the contained glass mass having reduced numbers of gaseous inclusions.
Among the objects of the present invention are to provide an improved apparatus for refining glass which utilizes the method of the aforementioned application; which apparatus will function effectively and be maintained readily with long life; which apparatus includes means for controlling the temperature thereof; which apparatus further includes means for lubricating and cooling the apparatus as well as the bearings utilized therein.
Summary of the Invention
In accordance with the invention, the apparatus for refining glass comprises a shell having refractory material therein and including upper and lower open ends, the glass being delivered to the upper end and removed from the lower end. The shell includes an intermediate cylindrical portion and frusto-conical end portions and is supported by bearings engaging the end portions. Drive means are interposed between the lower frusto-conical end portion and the lower bearing. A housing surrounds the shell and provision is made for cooling the shell and the housing.
Description of the Drawings
FIG. 1 is a plan view of an apparatus embodying the invention.
FIG. 2 is a part sectional plan view of the same.
FIG. 3 is a fragmentary sectional view on a enlarged scale taken along the line 3--3 in FIG. 2.
FIG. 4 is a fragmentary sectional view on an enlarged scale taken along the line 4--4 in FIG. 2.
FIG. 5 is a fragmentary plan view of a part of the apparatus.
Description
Referring to FIG. 1, the apparatus for refining glass comprises a base 10 which includes circumferentially spaced uprights 11 that support a cylindrical outer housing 12, usually in overlying relationship to a opening 13 in a floor. A metal shell 15 is rotatably mounted within and supported by the housing 12 as presently described. The shell 15 includes an intermediate portion 16 that is cylindrical and generally frusto-conical end portions 17 and 18 having axially extending end portions 19a, 20a, and peripheral cylindrical portions 19b and 20b, the latter being connected to the cylindrical portion 16. Ball bearings 21 and 22 of conventional construction including an inner race, an outer race, and a plurality of balls, are provided on the axial extensions 19 and 20. The outer race of the bearings 21 and 22 are supported by generally radially extending end plates 23 and 24, which form the top and bottom portions of the housing 12. Refractory material 25 is provided within the shell 15 to form a chamber 26 for receiving glass. The upper and lower ends of chamber 26 are open. The glass is delivered in a stream S through the open upper end 27 downwardly into the chamber. The radially extending end plate 24 provides a support for the bearing 22. Bearing 22 rests upon a recess 61 in the end plate structure. End plate structure 24 has flange 59. Flange 59 rests upon the flange of the housing; the weight of the rotating structure is carried by the bearing. The bearing is supported by end plate 24 which is supposedly the housing 12, thus the entire weight of the rotating structure is supported by the bottom bearing structure and the housing.
Provision is made for rapidly rotating the shell 15 in order to provide centrifugal forces on the glass in the chamber and comprises a bevel gear 28 fixed to the axial portion 20 of shell 15 at the area of junction of the axial portion 20a of shell 15 with its frusto-conical portion 18. The bevel gear 28 is engaged by a bevel pinion 29 on a drive shaft 30 rotatably mounted by bearings in a bracket fixed on the housing 12. An electric motor 31 engages the shaft 30 through a coupling 33 to provide the desired drive. The motor and drive arrangement are such as to rotate the shell, for example, to about 1,250 revolutions per minute.
Referring to FIGS. 1 to 3, provision is made for cooling the shell and includes a blower 35 that feeds air through conduit 35a tangentially into the housing 12 in the space between the housing 12 and the shell 15. The air flows upwardly and exits through openings 36 in the top wall 23. A deflector 37 extends generally horizontally and is supported by circumferentially spaced brackets 38 on top plate 23 in overlying and spaced relationship to the top wall 23 so that air is deflected laterally outwardly. The air thus functions in part also to cool the bearing 21.
Provision is made for further lubricating and cooling the bearing 21 and comprises a plurality of circumferentially spaced pipe lines 39 that extends into overlying relationship with the center of the bearing 21 to direct oil downwardly onto the balls. Further, for additional cooling, lubricant is delivered by a plurality of circumferentially spaced pipe lines 40 into an annular channel 41 and passes through one or more axial openings 42 in the axial extension 19 to a collecting trough 43 from which the oil is drained through pipe 44. A catch pan 58 (FIG. 4) encircles the outer periphery of the lower axial extending portion of the shell.
Similarly, in the lower bearing, a plurality of circumferentially spaced pipe lines 45 and 46 delivers oil to the balls of the bearing 22 and axial openings 47, respectively.
The blowers 35 can be adapted by means of a heater 48 to supply heated air, if desired, to control the temperature of the shell 15 and, in turn, the molten glass in the chamber 26.
As shown in FIG. 2, an arcuate brake pad 50, actuated by an air cylinder 51, is provided for decelerating the rotating shell 15 as may be required.
Referring to FIGS. 1, 3 and 4, the refractory 25 comprises three layers -- an outer precast layer 25a of blocks, an intermediate layer 25b cast in situ, and an inner precast layer 25c of blocks. The upper and lower ends of the outer and inner layers 25a and 25c comprise precast frusto-conical elements 25d and 25e. A diverter plate 52 is positioned in the lower end of the apparatus and comprises a metal plate having opening 53 adjacent the wall of the chamber to cause all the glass to be diverted through areas of high centrifugal force prior to passing to the outlet tube 54 extending from element 25e.
In operation, the glass is continuously delivered to the open upper end of the shell into the chamber 26, and the mass of glass in the chamber is continuously subjected to centrifugal force to form a void at the center of the glass and to cause the gaseous inclusions to be moved towards the void, the refined molten glass being delivered downwardly to the opening in the lower axial extension 20 for use.
The apparatus is designed for a steady state operation over long periods of time. Molten glass is introduced to the apparatus, rotated for a period of time and removed from the apparatus in a substantially constant flow. The molten glass is at a temperature between 2,200.degree. and about 2,600.degree. F. Even though the glass stream is in fairly constant motion, the resulting heat build-up reaches an equilibrium condition, and the temperature surrounding the glass containing chamber is extremely high for prolonged periods of time. The apparatus of this invention provides means for processing molten glass in an extremely high temperature environment with a low probability of any damage to the supporting structure. The forced oil cooling of the bearings and the air cooling of the surrounding shell permits the use of metallic materials in the construction of the bearings and the supporting and rotating mechanism which, absent the invention, do not operate in such a high temperature environment, especially a rotating device.