Thermochemical regeneration and heat recovery in glass furnaces

US10059615B2 · US · B2

Patent metadata
FieldValue
Publication numberUS-10059615-B2
Application numberUS-201615297471-A
CountryUS
Kind codeB2
Filing dateOct 19, 2016
Priority dateOct 29, 2015
Publication dateAug 28, 2018
Grant dateAug 28, 2018

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  1. Title

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  4. Key dates

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  5. First independent claim

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Abstract

Official abstract text for this publication.

Gaseous combustion products from a glassmelting furnace after being passed through a regenerator are used to heat glassmaking feed material and pyrolyze organic material on the feed material. Gaseous pyrolysis products and the combustion products are combined with reforming fuel and passed through a regenerator heated in a previous cycle to form syngas which is fed into the furnace and combusted.

First claim

Opening claim text (preview).

What is claimed is: 1. A method of carrying out combustion in a glassmelting furnace, comprising (A) combusting fuel in a glassmelting furnace to produce gaseous combustion products, and (B) alternately carrying out (1)(a)-(1)(d) alternating with carrying out (2)(a)-(2)(d): (1)(a) passing gaseous combustion products from the furnace into and through a cooled first regenerator to heat the first regenerator and cool said gaseous combustion products, (b) passing a first part of said cooled gaseous combustion products from said first regenerator in heat exchange with a first stream of solid glassmaking material which contains organic substances to further cool said first part of said cooled gaseous combustion products and heat the first stream of solid glassmaking material and pyrolyze organic substances contained thereon to form pyrolysis products, and passing a second part of said cooled gaseous combustion products from said first regenerator in heat exchange with a second stream of solid glassmaking material to further cool said second part of said cooled gaseous combustion products and heat the second stream of glassmaking material, (c) passing the further cooled gaseous combustion products, pyrolysis products, and fuel, into a heated second regenerator and, in the second regenerator, reacting the gaseous combustion products, pyrolysis products, and fuel in an endothermic reaction to form syngas comprising hydrogen and CO, and passing said syngas from the second regenerator into the furnace and combusting it in the furnace, and (d) feeding said heated first stream of solid glassmaking material and said heated second stream of gaseous combustion products into said furnace; and (2)(a) passing gaseous combustion products from the furnace into and through a cooled second regenerator to heat the second regenerator and cool said gaseous combustion products, (b) passing a first part of said cooled gaseous combustion products from said second regenerator in heat exchange with a first stream of solid glassmaking material which contains organic substances to further cool said first part of said cooled gaseous combustion products and heat the first stream of solid glassmaking material and pyrolyze organic substances contained thereon to form pyrolysis products, and passing a second part of said cooled gaseous combustion products from said second regenerator in heat exchange with a second stream of solid glassmaking material to further cool said second part of said cooled gaseous combustion products and heat the second stream of glassmaking material, (c) passing the further cooled gaseous combustion products, pyrolysis products, and fuel, into a heated first regenerator and, in the first regenerator, reacting the gaseous combustion products and the fuel in an endothermic reaction to form syngas comprising hydrogen and CO, and passing said syngas from the first regenerator into the furnace and combusting it in the furnace, and (d) feeding said heated first stream of solid glassmaking material and said heated second stream of gaseous combustion products into said furnace. 2. A method according to claim 1 wherein in steps (B)(1)(b), or (B)(2)(b), or both, said heat exchange is direct. 3. A method according to claim 1 wherein in steps (B)(1)(b), or (B)(2)(b), or both, said heat exchange is indirect. 4. A method according to claim 1 wherein the further cooled gaseous combustion products from said first regenerator formed in said heat exchange thereof and the further cooled gaseous combustion products from said second regenerator formed in said heat exchange thereof contain pyrolysis products. 5. A method according to claim 1 wherein the further cooled gaseous combustion products from said first regenerator formed in said heat exchange thereof and the further cooled gaseous combustion products from said second regenerator formed in said heat exchange thereof do not contain pyrolysis products. 6. A method of carrying out combustion in a glassmelting furnace, comprising (A) combusting fuel in a glassmelting furnace to produce gaseous combustion products, and (B) alternately carrying out (1)(i)-(1)(vii) alternating with carrying out (2)(i)-(2)(vii): (1) (i) passing a first amount of gaseous combustion products from the furnace into and through a cooled first regenerator to heat the first regenerator and cool said first amount of gaseous combustion products, (ii) passing a second amount of gaseous combustion products from the furnace into and through a cooled second regenerator to heat the second regenerator and cool said second amount of gaseous combustion products, (iii) passing cooled gaseous combustion products from said first regenerator, from said second regenerator, or from both said first and second regenerators, in heat exchange with solid glassmaking material which contains organic material, to further cool the cooled gaseous combustion products and heat the glasssmaking material and pyrolyze organic material in the glassmaking material, to form pyrolysis products, and feeding said heated glassmaking material into said furnace, (iv) passing reforming fuel, further cooled gaseous combustion products, pyrolysis products, and cooled gaseous combustion products from said first regenerator, cooled gaseous combustion products from said second regenerator, or cooled gaseous combustion products from both of said first and second regenerators, into a heated third regenerator, (v) reacting the gaseous combustion products and the reforming fuel and pyrolysis products in the third regenerator in an endothermic reaction under conditions effective to form syngas comprising hydrogen and carbon monoxide, and thereby cooling the third regenerator, (vi) passing gaseous oxidant into and through a heated fourth regenerator to heat the gaseous oxidant and cool the fourth regenerator, and (vii) passing said syngas and any unreacted pyrolysis products from said third regenerator into said furnace, passing said heated gaseous oxidant from the fourth regenerator into the furnace, and combusting the syngas, any unreacted pyrolysis products, and said heated gaseous oxidant in the furnace; while maintaining the difference in temperatures of the combustion products passing out of said first and second regenerators at 300 F. or less; and (2) (i) passing a first amount of gaseous combustion products from the furnace into and through a cooled third regenerator to heat the third regenerator and cool said first amount of gaseous combustion products, (ii) passing a second amount of gaseous combustion products from the furnace into and through a cooled fourth regenerator to heat the fourth regenerator and cool said second amount of gaseous combustion products, (iii) passing cooled gaseous combustion products from said third regenerator, from said fourth regenerator, or from both said third and fourth regenerators, in heat exchange with solid glassmaking material which contains organic material, to further cool the cooled gaseous combustion products and heat the glassmaking material and pyrolyze organic material in the glassmaking material, to form pyrolysis products, and feeding said heated glassmaking material into said furnace, (iv) passing reforming fuel, further cooled gaseous combustion products, pyrolysis products, and cooled gaseous combustion products from said third regenerator, cooled gaseous combustion products from said fourth regenerator, or cooled gaseous combustion products from both of said third and fourth regenerators, into a heated first regenerator, (v) reacting the gaseous combustion products and the reforming fuel and pyrolysis products in the first regenerator in an endothermic reaction under conditions effective to form syngas comprising h

Assignees

Inventors

Classifications

  • C03B5/2353Primary

    by combustion with pure oxygen or oxygen-enriched air, e.g. using oxy-fuel burners or oxygen lances · CPC title

  • C03B5/237Primary

    Regenerators or recuperators specially adapted for glass-melting furnaces · CPC title

  • Preheating · CPC title

  • Heating the glass (C03B5/02, C03B5/18, C03B5/225 take precedence) · CPC title

  • Glass production, e.g. reusing waste heat during processing or shaping · CPC title

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What does patent US10059615B2 cover?
Gaseous combustion products from a glassmelting furnace after being passed through a regenerator are used to heat glassmaking feed material and pyrolyze organic material on the feed material. Gaseous pyrolysis products and the combustion products are combined with reforming fuel and passed through a regenerator heated in a previous cycle to form syngas which is fed into the furnace and combusted.
Who is the assignee on this patent?
Kobayashi Hisashi, Praxair Technology Inc
What technology area does this patent fall under?
Primary CPC classification C03B5/2353. Mapped technology areas include Chemistry & Metallurgy.
When was this patent published?
Publication date Tue Aug 28 2018 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 4 related publications on this page (citations in our corpus or others sharing the same primary CPC).