Methods and apparatus for constructing glass furnace structures
10227220 ยท 2019-03-12
Assignee
Inventors
- Robert D. Chambers (Brook Park, OH, US)
- Michael P. Smith (Brook Park, OH, US)
- Alan E. Bowser, Jr. (Brook Park, OH, US)
- Kevin D. Pendelton (Brook Park, OH, US)
- Lou CAROLLA (Brook Park, OH, US)
Cpc classification
C03B5/42
CHEMISTRY; METALLURGY
F27D2001/005
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
C03B5/2375
CHEMISTRY; METALLURGY
F27D2201/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F27D2001/0079
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B66C17/06
PERFORMING OPERATIONS; TRANSPORTING
F27D2017/007
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B66B9/16
PERFORMING OPERATIONS; TRANSPORTING
International classification
B66C17/06
PERFORMING OPERATIONS; TRANSPORTING
C03B5/237
CHEMISTRY; METALLURGY
C03B5/42
CHEMISTRY; METALLURGY
Abstract
Methods and apparatus for constructing refractory structures, e.g., glass furnace regenerator structures and/or glass furnace structures having walls formed of refractory block and buck stays externally supporting the walls are provided. Opposed pairs of supports are connected to at least a respective one of the vertically oriented buck stays with cross-support beams spanning the refractory structure between a respective pair of the supports. An overhead crane assembly is supported by the cross-support beams. In such a manner, refractory components of the refractory structure (e.g., refractory wall blocks and/or refractory checker bricks) may be installed using the overhead crane assembly.
Claims
1. A combination comprising a glass furnace regenerator structure and a construction apparatus for constructing the glass furnace regenerator structure, wherein the glass furnace regenerator structure is comprised of respective opposed pairs of end and side walls defining an interior space and formed of stacked refractory blocks, refractory crown arches supported by the walls to cover the interior space, and vertically oriented buck stay supports positioned on exterior surfaces of the walls to thereby externally support the refractory blocks thereof, and wherein the construction apparatus comprises: an opposed plurality of foundation beams rigidly installed between respective longitudinally separated pairs of buckstay supports adjacent the exterior surfaces of the opposed pair of side walls; opposed pairs of upright support beams positioned so that a lower end of a respective pair of upright support beams is rigidly connected to and supported by respective ones of the foundation beams and an upper end of the upright support beams extends upwardly beyond the crown arches; cross-support beams latitudinally connecting respective upper ends of the opposed pairs of upright support beams such that the cross-support beams latitudinally span the interior space of the regenerator structure; a pair of raceway beams which longitudinally extend relative to the regenerator structure connected to the cross-support beams so that the raceway beams are dependently supported by the cross-support beams and an end portion of the raceway beams extends in a cantilever manner beyond one of the end walls of the regenerator structure; a bridge beam moveably mounted to the pair of raceway beams for reciprocal movements therealong in a longitudinal direction of the regenerator structure; and a hoist moveably mounted to the bridge beam for reciprocal movements therealong in a latitudinal direction of the regenerator structure.
2. The combination according to claim 1, wherein the foundation beams comprise an arch support extending between and connected to the respective longitudinally separated pairs of buckstay supports, wherein the upright support beams are attached to an apex of the arch support.
3. The combination according to claim 1, wherein the foundation beams comprise a pair of upwardly convergent supports extending between and connected to the respective longitudinally separated pairs of buckstay supports, wherein the upright support beams are attached to an apex of the convergent supports.
4. The combination according to claim 1, wherein the glass furnace regenerator structure further includes a port and an operator platform below the port, and wherein the foundation beams are rigidly positioned between the respective pairs of buck stays at or above the operator platform.
5. The combination according to claim 1, wherein the foundation beams are substantially horizontally installed between the respective longitudinally separated pairs of buckstays.
6. A method of constructing the combination according to claim 1, the method comprising: (i) rigidly connecting the opposed plurality of foundation beams between respective longitudinally separated pairs of the buckstay supports adjacent the exterior surfaces of the opposed pair of side walls; (ii) positioning opposed pairs of upright support beams so that a lower end of a respective pair of upright support beams is rigidly connected to and supported by respective ones of the foundation beams and an upper end of the upright support beams extends upwardly beyond the crown arches (iii) latitudinally spanning the refractory structure with cross-support beams connected between respective pairs of the upright support beams; and (iv) supporting the pair of raceway beams, the bridge beam and the hoist by the cross-support beams.
7. The method according to claim 6, wherein step (i) comprises extending and connecting arch supports between adjacent pairs of the buck stays, and attaching the cross-support beams to an apex of a respective one of the arch supports.
8. The method according to claim 6, wherein step (i) comprises extending and connecting pairs of upwardly convergent supports between an adjacent pair of the buck stays, and attaching the cross-support beams to an apex of a respective one of the convergent supports.
9. The method according to claim 6, wherein the interior of the glass furnace regenerator includes checker bricks, and wherein the method further comprises operating the overhead crane assembly so as to position the refractory blocks and/or the checker bricks.
10. The method according to claim 6, wherein step (iv) includes installing the raceway beams so that one end portion of the raceway beams is supported in a cantilever manner by a respective pair of the support beams and a cross-support beam to thereby cause the one end of the raceway beams to extend beyond a respective end of the glass furnace regenerator.
11. The method according to claim 6, wherein the glass furnace regenerator further includes a port and an operator platform below the port, and wherein step (i) comprises rigidly installing the foundation beams at a position between the respective pairs of buck stays which is at or above the operator platform.
12. The method according to claim 6, further comprising removing tie rods interconnecting the buck stays.
Description
BRIEF DESCRIPTION OF ACCOMPANYING DRAWINGS
(1) The disclosed embodiments of the present invention will be better and more completely understood by referring to the following detailed description of exemplary non-limiting illustrative embodiments in conjunction with the drawings of which:
(2)
(3)
(4)
(5)
(6)
(7)
(8)
(9)
(10)
(11)
(12)
DETAILED DESCRIPTION
(13) Accompanying
(14) The regenerator structure 10 includes a series of ports 10-1 which are used to introduce pre-heated combustion air into the glass furnace (not shown) or to exhaust combustion gas from the furnace depending on the operational cycle. The top of the regenerator structure 10 is capped with crowns (a representative few of which are noted by reference numeral 10-2). An operator platform 10-3 typically is provided near the ports 10-1. The walls 16, 18 are structurally supported by external upright structural beams known colloquially as buck stays 20. As is shown in
(15)
(16) The overhead crane apparatus 50 in accordance with an embodiment of the invention is depicted as including laterally spaced-apart upright pairs of upright support beams 52 and a cross-support beam 54 spanning the distance therebetween. A foundation beam 55 extends between and is rigidly attached (e.g., by welding) to an adjacent pair of buck stays 20 so as to structurally support the upright and cross-support beams 52, 54. Each of the foundation beams 55 is most preferably connected between the adjacent pair of buck stays 20 at or just above the platform 10-3.
(17) The cross-support beams 52, 54 dependently support a pair of runway beams 56 between which is connected a travelling bridge beam 58. The bridge beam 58 includes an overhead travelling hoist 60. As is shown in
(18) Suitable operator controlled motors (not shown) are provided with the bridge beam 58 to allow it to reciprocally travel along the runway beams 56 in a longitudinal direction of the regenerator structure (i.e., in the direction of arrow A1 in
(19)
(20)
(21) A cross-fired glass furnace system 70 is depicted in
(22) The glass furnace structure 75, like the regenerators 10, 10, includes vertically oriented buck stays 80. The overhead crane apparatus employed for the glass furnace structure 75 is depicted as including laterally spaced-apart upright pairs of upright support beams 82 and a cross-support beam 84 spanning the distance therebetween. A foundation beam 85 extends between and is rigidly attached (e.g., by welding) to an adjacent pair of buck stays 80 so as to structurally support the upright and cross-support beams 82, 84.
(23) The cross-support beams 82, 84 dependently support a pair of runway beams 86 between which is connected a travelling bridge beam 88. The bridge beam 88 includes an overhead travelling hoist 90. The runway beams 86 are preferably supported in a cantilever manner by the end-most upright and cross-support beams 82, 84 so that the terminal end portions extend beyond the end wall of the furnace structure 75 thereby enabling access to structural components to be hoisted by the travelling hoist 90.
(24) Suitable operator controlled motors (not shown) are provided with the bridge beam 88 to allow it to reciprocally travel along the runway beams 86 in a longitudinal direction of the regenerator structure (i.e., in the direction of arrow A1 in
(25)
(26) As shown in
(27) In a similar manner,
(28) Another embodiment is depicted in
(29) Accompanying
(30)
(31) Although the embodiments have been described in relation to a cross-fired glass furnace system, the principles of the invention may likewise be embodied in any glass furnace design, such as float furnaces, end-fired furnaces, unit melters with recuperators and electric furnaces with shelf, sidewall or bottom electrodes.
(32) It will therefore be understood that the description provided herein is presently considered to be the most practical and preferred embodiments of the invention. Thus, the invention is not to be limited to the disclosed embodiments, but on the contrary, is intended to cover various modifications and equivalent arrangements included within the spirit and scope thereof.