Regenerator for glass melting tanks
09815727 · 2017-11-14
Assignee
Inventors
- Alexander Sorg (Aschaffenburg, DE)
- Matthias Lindig (Ingelheim, DE)
- Thomas Breitfelder (Lohr am Main, DE)
Cpc classification
Y02P40/50
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
C03B5/237
CHEMISTRY; METALLURGY
F23L15/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
C03B5/2375
CHEMISTRY; METALLURGY
F28D17/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28D2021/0078
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Y02E20/34
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
International classification
C03B5/237
CHEMISTRY; METALLURGY
F23L15/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A regenerator for glass melting tanks for storing waste heat from combustion cycles and emitting the stored heat to oxidation gases supplied from the outside, having a gas-permeable chamber lattice in which the chamber lining is made of fire-resistant stones held together by lateral wall elements. A cover region is situated over the chamber lattice for the combustion gases entering into the chamber lattice and for the oxidation gases exiting from the chamber lattice, the chamber cover forming a flow duct together with a further cover segment, connected to the cover, limited by a downward-extending terminating wall that is connected to the burner throat and with the wall element. A segment of the lateral wall element between the flow duct running essentially vertically and the upper region of the chamber lattice is fashioned as an intermediate wall having a cooling duct system situated therein.
Claims
1. A regenerator for glass melting tanks, for storing waste heat from combustion cycles and for emitting the stored heat to oxidation gases supplied from the outside, comprising: a gas-permeable chamber lattice made up of regenerative chambers having a chamber lining made of fire-resistant stones held together by a first and additional lateral wall elements, having an upper limiting surface and a lower limiting surface that are situated at a distance from a chamber cover and a chamber floor, a cover region being fashioned over the chamber lattice for the combustion gases entering into the chamber lattice and for the oxidation gases exiting from the chamber lattice, the cover region being connected to the glass melting tank via a burner port, a vertical cross-section of the burner port being situated at least partly lower than the upper limiting surface of the chamber lattice, opening into the cover region, and a further cover segment being connected to the chamber cover, which further segment upwardly terminates the cover region and is limited by a downward-extending terminating wall that is connected to a burner throat and that forms a flow duct together with the first lateral wall element, wherein a segment of the first lateral wall element between a portion of the flow duct running essentially vertically and an upper region of the chamber lattice is fashioned as an intermediate wall having a cooling duct system situated therein with ducts of the cooling duct system enclosed by the intermediate wall.
2. The regenerator as recited in claim 1, wherein the flow duct forms a U-shaped flow path together with a flow path inside the chamber lattice.
3. The regenerator as recited in claim 1, wherein the intermediate wall extends from a floor of the burner port to an upper edge of the first lateral wall element.
4. The regenerator as recited in claim 1, wherein cooling pipes are situated in the intermediate wall.
5. The regenerator as recited in claim 4, wherein the cooling pipes run horizontally through the intermediate wall.
6. The regenerator as recited in claim 4, wherein at least one of air, or a liquid or gaseous cooling medium, flows through the cooling pipes.
7. The regenerator as recited in claim 1, wherein for cooling, in the intermediate wall there are fashioned hollow spaces configured horizontally one over the other, having openings at both sides for the introduction and for the discharge of a cooling medium.
8. A glass melting oven having a glass melting tank fashioned as an end-fired furnace having two regenerative chambers situated alongside one another, each regenerative chamber comprising: a gas-permeable chamber lattice made up of regenerative chambers having a chamber lining made of fire-resistant stones held together by a first and additional lateral wall elements, having an upper limiting surface and a lower limiting surface that are situated at a distance from a chamber cover and a chamber floor, a cover region being fashioned over the chamber lattice for the combustion gases entering into the chamber lattice and for the oxidation gases exiting from the chamber lattice, the cover region being connected to the glass melting tank via a burner port, a vertical cross-section of the burner port being situated at least partly lower than the upper limiting surface of the chamber lattice, opening into the cover region, and a further cover segment being connected to the chamber cover, which further segment upwardly terminates the cover region and is limited by a downward-extending terminating wall that is connected to a burner throat and that forms a flow duct together with the first lateral wall element, wherein a segment of the first lateral wall element between a portion of the flow duct running essentially vertically and an upper region of the chamber lattice is fashioned as an intermediate wall having a cooling duct system situated therein with ducts of the cooling duct system enclosed by the intermediate wall.
9. A glass melting oven having a glass melting tank fashioned as a cross-fired furnace having regenerative chambers situated opposite one another, each regenerative chamber comprising: a gas-permeable chamber lattice made up of regenerative chambers having a chamber lining made of fire-resistant stones held together by a first and additional lateral wall elements, having an upper limiting surface and a lower limiting surface that are situated at a distance from a chamber cover and a chamber floor, a cover region being fashioned over the chamber lattice for the combustion gases entering into the chamber lattice and for the oxidation gases exiting from the chamber lattice, the cover region being connected to the glass melting tank via a burner port, a vertical cross-section of the burner port being situated at least partly lower than the upper limiting surface of the chamber lattice, opening into the cover region, and a further cover segment being connected to the chamber cover, which further segment upwardly terminates the cover region and is limited by a downward-extending terminating wall that is connected to a burner throat and that forms a flow duct together with the first lateral wall element, wherein a segment of the first lateral wall element between a portion of the flow duct running essentially vertically and an upper region of the chamber lattice is fashioned as an intermediate wall having a cooling duct system situated therein with ducts of the cooling duct system enclosed by the intermediate wall.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) In the following, the present invention is explained in more detail with reference to two exemplary embodiments shown in the drawing.
(2)
(3)
(4)
(5)
DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
(6) A glass melting tank 1 shown in
(7) The burner port 2 has a vertical inner cross-section 8. It is connected to a regenerator 10 via a burner throat 9 of the burner port 2. In this regenerator, there are situated chamber lattice structures 11 made up of fire-resistant stones. These are surrounded by wall elements 12 and 13, and are held together by these. The regenerator 10 has a chamber floor 14 and a chamber cover 15, each at a distance from the chamber lattice structure 11. The chamber lattice structure 11 has an upper limiting surface 16 and a lower limiting surface 17. To the chamber cover 15 there is connected a further cover segment 18 that is limited by a downward-extending terminating wall 19 that is connected to the burner throat 9.
(8) In the depicted exemplary embodiment, a lower edge 20 of the terminating wall 19 is situated below the upper limiting surface 16 of the chamber lattice structure 11. The wall element 12 is correspondingly shortened in its height.
(9) The upper region of the wall element 13 forms, together with the chamber cover 15, the further cover segment 18, and the terminating wall 19 above the chamber lattice structure 11, a covering region 21, also referred to as headroom. With this configuration, at both sides of the wall element 12 and its upper edge 22 in the covering region 21 there is formed a downward-directed U-shaped flow duct 23.
(10) Alongside the regenerator 10 there is situated (covered in the depiction shown in
(11) When there is such a firing change, the part of wall element 12 situated above the floor 4 of the burner port 2 is strongly thermally loaded from both sides, and is continuously exposed to the corrosive exhaust gas of the melting tank. This poses a serious danger to the stability of the overall construction. Therefore, this part of the wall element 12 is fashioned as an intermediate wall 24 having a cooling duct system 25. The cooling duct system 25 is made up of cooling pipes 26 through which air, or some other liquid or gaseous cooling medium, is conducted. As
(12) Instead of the cooling pipes 26, for the cooling of the intermediate wall 24 hollow spaces (not shown) situated horizontally one over the other can be fashioned in this wall, fashioned so as to be laterally accessible for the introduction and discharge of a cooling medium.
(13) The regenerators 10 having cooled intermediate walls 24 can in the same way be used both in connection with end-fired furnaces 1 according to
(14) As is apparent from the foregoing specification, the invention is susceptible of being embodied with various alterations and modifications which may differ particularly from those that have been described in the preceding specification and description. It should be understood that I wish to embody within the scope of the patent warranted hereon all such modifications as reasonably and properly come within the scope of my contribution to the art.
LIST OF REFERENCE CHARACTERS
(15) 1 glass melting tank (end-fired furnace) 2 burner port 3 mouth 4 floor 5 glass melt 6 melt level 7 discharge device 8 cross-section 9 burner throat 10 regenerator (regenerative chamber) 11 chamber lattice structure 12 wall element 13 wall element 14 chamber floor 15 chamber cover 16 upper limiting surface 17 lower limiting surface 18 cover segment 19 terminating wall 20 lower edge 21 cover region (headroom) 22 upper edge 23 flow duct 24 intermediate wall 25 cooling duct system 26 cooling pipes 27 glass melting tank (cross-fired furnace)