Methods and systems for making well-fined glass using submerged combustion

US9676644B2 · US · B2

Patent metadata
FieldValue
Publication numberUS-9676644-B2
Application numberUS-201514949580-A
CountryUS
Kind codeB2
Filing dateNov 23, 2015
Priority dateNov 29, 2012
Publication dateJun 13, 2017
Grant dateJun 13, 2017

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  1. Title

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  2. Abstract

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  3. Assignees and inventors

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  4. Key dates

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  5. First independent claim

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  6. CPC / IPC classifications

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  7. Citations and related patents

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Abstract

Official abstract text for this publication.

Methods and systems produce a molten mass of foamed glass in a submerged combustion melter (SCM). Routing foamed glass to a fining chamber defined by a flow channel fluidly connected to and downstream of the SCM. The flow channel floor and sidewalls have sufficient glass-contact refractory to accommodate expansion of the foamed glass as fining occurs during transit through the fining chamber. The foamed glass is separated into an upper glass foam phase and a lower molten glass phase as the foamed glass flows toward an end of the flow channel distal from the SCM. The molten glass is then routed through a transition section fluidly connected to the distal end of the flow channel. The transition section inlet end construction has at least one molten glass inlet aperture, such that the inlet aperture(s) are positioned lower than the phase boundary between the upper and lower phases.

First claim

Opening claim text (preview).

What is claimed is: 1. A method comprising: melting glass-forming materials to produce a turbulent molten mass of foamed glass in a submerged combustion melter (SCM), the SCM comprising a roof, a floor, a sidewall structure connecting the roof and floor, and an outlet for the molten mass of foamed glass in the floor and/or the sidewall structure; routing the molten mass of foamed glass through the SCM outlet to a fining chamber defined by a first flow channel fluidly connected to and downstream of the SCM, the first flow channel comprising at least a floor, a sidewall structure, and a roof that slants upward in the flow direction at an angle “γ” to horizontal, the first flow channel having glass-contact refractory lining the floor and at least a portion of the flow channel sidewall structure to a height sufficient to accommodate expansion of the molten mass of foamed glass as fining occurs during transit through the fining chamber; separating the molten mass of foamed glass into an upper phase consisting essentially of glass foam and a lower phase consisting essentially of molten glass as the molten mass of foamed glass flows toward an end of the first flow channel distal from the SCM; and routing the lower phase consisting essentially of molten glass through a passage defined by a transition section fluidly connected to the distal end of the first flow channel, the transition section comprising a floor and a cover, the floor and cover connected by a sidewall structure, and comprising an inlet end structure and an outlet end structure, the inlet end structure comprising at least one molten glass inlet aperture and the outlet end structure comprising at least one molten glass outlet aperture, wherein all of the inlet apertures are positioned lower than a phase boundary between the upper and lower phases in the first flow channel. 2. The method of claim 1 comprising routing the phase consisting essentially of molten glass through the at least one outlet aperture of the outlet end structure of the transition section to a temperature homogenizing chamber defined by a second flow channel fluidly connected to the outlet end structure of the transition section, and forming a temperature homogenized molten glass. 3. The method of claim 2 comprising feeding at least a portion of the temperature homogenized molten glass to one or more glass forming stations. 4. The method of claim 3 comprising wherein the glass forming stations are selected from the group consisting of fiber forming spinnerets, fiberization stations, and non-glass fiber product forming stations. 5. The method of claim 1 wherein the step of routing the lower phase consisting essentially of molten glass through the transition section comprises flowing the lower phase consisting essentially of molten glass through the at least one inlet aperture, wherein 100 percent of the inlet aperture is lower than the floor of the first flow channel. 6. The method of claim 1 comprising heating the lower phase consisting essentially of molten glass in the transition section to maintain the lower phase consisting essentially of molten glass in the molten state. 7. The method of claim 1 comprising cooling the lower phase consisting essentially of molten glass as it passes through the transition section to a temperature just above a desired glass product forming temperature. 8. A method comprising: melting glass-forming materials to produce a turbulent molten mass of foamed glass in a submerged combustion melter (SCM), the SCM comprising a roof, a floor, a sidewall structure connecting the roof and floor, and an outlet for the molten mass of foamed glass in the floor and/or sidewall structure; routing the molten mass of foamed glass through the SCM outlet to a fining chamber defined by a first flow channel fluidly connected to and downstream of the SCM, the first flow channel comprising at least a floor, a sidewall structure, and a roof that slants upward in the flow direction at an angle “γ” to horizontal, the first flow channel having glass-contact refractory lining the floor and at least a portion of the first flow channel sidewall structure to a height sufficient to accommodate expansion of the molten mass of foamed glass as fining occurs during transit through the fining chamber; separating the molten mass of foamed glass into an upper phase consisting essentially of glass foam and a lower phase consisting essentially of molten glass as the molten mass of foamed glass flows toward an end of the first flow channel distal from the SCM; routing the lower phase consisting essentially of molten glass through a passage defined by a transition section fluidly connected to the distal end of the first flow channel, the transition section comprising a floor and a cover, the floor and cover connected by a sidewall structure, and comprising an inlet end wall and an outlet end wall, the inlet end wall comprising at least one molten glass inlet aperture and the outlet end wall comprising at least one molten glass outlet aperture, wherein 100 percent of the inlet aperture is lower than the floor of the first flow channel; and routing the phase consisting essentially of molten glass through the outlet aperture of the end wall of the transition section to a temperature homogenizing chamber defined by a second flow channel fluidly connected to the outlet end wall of the transition section, the second flow channel comprising a geometry sufficient to form a temperature homogenized, well-fined molten glass. 9. The method of claim 8 comprising adjusting temperature of the lower phase consisting essentially of molten glass as it passes through the passage. 10. The method of claim 9 comprising feeding at least a portion of the temperature homogenized, well-fined molten glass to one or more glass forming stations. 11. The method of claim 10 comprising wherein the glass forming stations are selected from the group consisting of fiber forming spinnerets, fiberization stations, and non-glass fiber product forming stations. 12. The method of claim 8 comprising heating the lower phase consisting essentially of molten glass in the transition section to maintain the lower phase consisting essentially of molten glass in the molten state. 13. The method of claim 8 comprising cooling the lower phase consisting essentially of molten glass as it passes through the transition section to a temperature just above a desired glass product forming temperature. 14. A method comprising: melting glass-forming materials to produce a turbulent molten mass of foamed glass in a submerged combustion melter (SCM), the SCM comprising a roof, a floor, a sidewall structure connecting the roof and floor, and an outlet for the molten mass of foamed glass in the floor and/or the sidewall structure; routing the molten mass of foamed glass through the SCM outlet to a fining chamber defined by a first flow channel fluidly connected to and downstream of the SCM, the first flow channel comprising at least a floor, a sidewall structure, the first flow channel having glass-contact refractory lining the floor and at least a portion of the flow channel sidewall structure to a height sufficient to accommodate expansion of the molten mass of foamed glass as fining occurs during transit through the fining chamber; separating the molten mass of foamed glass into an upper phase consisting essentially of glass foam and a lower phase consisting essentially of molten glass as the molten mass of foamed glass flows toward an end of the first flow channel distal from the SCM; routing the lower phase consisting essentially of molten glass through a passage defined by

Assignees

Inventors

Classifications

  • using oxygen, i.e. pure oxygen or oxygen-enriched air · CPC title

  • by direct combustion in the melt · CPC title

  • Cross-Sectional Technologies · mapped topic

  • in tank furnaces {(C03B5/02 takes precedence)} · CPC title

  • Bridges, shoes, throats, or other devices for withholding dirt, foam, or batch · CPC title

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What does patent US9676644B2 cover?
Methods and systems produce a molten mass of foamed glass in a submerged combustion melter (SCM). Routing foamed glass to a fining chamber defined by a flow channel fluidly connected to and downstream of the SCM. The flow channel floor and sidewalls have sufficient glass-contact refractory to accommodate expansion of the foamed glass as fining occurs during transit through the fining chamber. T…
Who is the assignee on this patent?
Johns Manville
What technology area does this patent fall under?
Primary CPC classification C03B5/225. Mapped technology areas include Chemistry & Metallurgy.
When was this patent published?
Publication date Tue Jun 13 2017 00:00:00 GMT+0000 (Coordinated Universal Time) (B2). Legal status and post-grant events are not shown on this page.
What related patents are in patentsdb?
We list 7 related publications on this page (citations in our corpus or others sharing the same primary CPC).