Claims
- 1. A set of components that are assemblable atop a base support structure of a plural-stack annealing furnace to provide a rigid ceramic refractory base for extending in substantially concentric, annular relationship about each of a plurality of spaced-apart blower mounts of the furnace, for underlying and extending perimetrically about each of a plurality of spaced-apart charge support structures of the furnace that are of generally circular shape and that are configured to overlie the blower mounts to centrally support a plurality of charges of metal that are to be annealed, and for defining concentrically extending, relatively resilient annular inner seals that extend perimetrically about the charge support structures, atop which inner enclosures of the furnace can be removably seated for defining a plurality of controlled environment treatment chambers within which charges of metal that are positioned atop the charge support structures can be confined for treatment during an annealing process, comprising:
- a) inner cast ceramic refractory segments means for defining annular inner portions of the rigid ceramic refractory base, including a plurality of separate sets of cast refactory inner segments, with each of said sets being configured 1) to define a separate associated annular-shaped inner portion of the rigid ceramic refractory base for extending substantially concentrically about a separate associated one of a plurality of blower mounts of a plural-stack annealing furnace, 2) to underlie and support a separate associated one of a plurality of generally circular charge support structures of the furnaces and 3) to define a separate associated one of a plurality of substantially continuous, radially outwardly facing surfaces that each extends substantially concentrically about a separate associated one of the circular charge support structures at a location near the periphery thereof;
- b) outer cast ceramic refractory segment means for defining outer portions of the rigid ceramic refractory base, including a plurality of cast refractory outer segments that, taken together, comprise a set of outer segments that can be arranged side by side to cooperatively define an outer region of the rigid ceramic refractory base near which an outer enclosure of the furnace can be removably positioned, and that, taken in smaller groups, comprise a plurality of outer segment sub-sets, with the segments of each sub-set being co-operable to extend about an associated separate one of said annular-shaped inner portions to define arcuate portions of a separate associated, radially inwardly facing surface that extends concentrically about a separate associated one of said radially outwardly facing surfaces so as to cooperate therewith to define opposite, radially spaced sides of an associated inner seal positioning trough for extending circumferentially about a separate associated one of the circular charge support structures of the furnace; and,
- c) inner seal means for being positioned in said troughs atop the base support structure of the furnace for defining a plurality of inner seals that each extend in a substantially uninterrupted manner about the periphery of a separate associated one of the circular charge support structures, that each is capable of supporting at least a part of the weight of a separate associated open-bottom inner enclosure of the furnace when bottom rim portions of the associated inner enclosure are seated thereatop, and that each is sufficiently resilient to cooperate with the seated bottom rim portions of the associated inner enclosure to form a gas impervious seal for isolating the environment of an associated treatment chamber.
- 2. The set of components for a plural-stack annealing furnace of claim 1 defining in assembled relation a base for an annealing furnaces.
- 3. The set of components of claim 1 wherein each set of cast refractory inner segments includes a plurality of generally arcuate-shaped cast refractory inner segments that are configured to be positioned side by side to cooperatively define the associated annular inner portion of the rigid ceramic refractory base, and to cooperatively define the associated radially outwardly facing surface.
- 4. The set of components for a plural-stack annealing furnace of claim 3 defining in assembled relation a base for an annealing furnace.
- 5. The set of components of claim 3 wherein all of the generally arcuate-shaped cast refractory inner segments are of substantially identical configuration and are therefore interchangeable one with another.
- 6. The set of components for a plural-stack annealing furnace of claim 5 defining in assembled relation a base for an annealing furnace.
- 7. The set of components of claim 1 wherein at least one of the sets of cast refractory inner segments includes a pair of substantially identically configured, half-circle shaped inner segments.
- 8. The set of components for a plural-stack annealing furnace of claim 7 defining in assembled relation a base for an annealing furnace.
- 9. The set of components of claim 1 wherein at least one of the sets of cast refractory inner segments includes a plurality of inner segments that are positionable side by side to define the associated radially outwardly facing surface as having a truncated conical form that is inclined with respect to the associated radially inwardly facing surface so as to narrow the width of bottom portions of the associated inner seal positioning trough so that, as the associated inner seal is compressed within the associated trough by the seating of the associated inner enclosure of the furnace atop the associated inner seal, the associated inner seal will be wedged by narrowing bottom portions of the associated trough and will therefore continue to extend substantially the full radially measured distance between the associated radially outwardly facing surface and the associated radially outwardly facing surface.
- 10. The set of components for a plural-stack annealing furnace of claim 9 defining in assembled relation a base for an annealing furnace.
- 11. The set of components of claim 1 wherein the inner segment means and the outer segment means are configured such that at least a selected one of each associated pair of said radially outwardly facing surface and said radially outwardly facing surface is of a truncated conical form that serves to narrow the width of bottom portions of the associated inner seal positioning trough so that, as the associated inner seal means is compressed within the associated trough by the seating of the associated inner enclosure of the furnace atop the associated inner seal, the associated inner seal will be wedged by narrowing bottom portions of the associated trough and will therefore continue to extend substantially the full radially measured distance between the associated pair of said radially outwardly facing surface and said radially outwardly facing surface.
- 12. The set of components for a plural-stack annealing furnace of claim 11 defining in assembled relation a base for an annealing furnace.
- 13. The set of components of claim 1 wherein the inner segment means and the outer segment means are configured such that each of the inner seal positioning troughs maintains a substantially uniform cross-sectional configuration as it extends circumferentially about the associated charge support structure of the furnace, with said uniform cross-sectional configuration being tapered to narrow toward the bottom region thereof.
- 14. The set of components for a plural-stack annealing furnace of claim 13 defining in assembled relation a base for an annealing furnace.
- 15. The set of components of claim 1 wherein each of said outer segment sub-sets includes four individual outer segments, with at least two of the individual outer segments being shared with another sub-set in the sense that said two individual outer segments each define portions of two of said radially inwardly facing surfaces.
- 16. The set of components for a plural-stack annealing furnace of claim 15 defining in assembled relation a base for an annealing furnace.
- 17. The set of components of claim 15 wherein each of the four individual outer segments of each of the segment sub-sets defines at least the majority of a quarter circle portion of the associated radially inwardly facing surface, and each of said two individual outer segments also defines at least the majority of a quarter circle portion of another of the radially inwardly facing surfaces.
- 18. The set of components for a plural-stack annealing furnace of claim 17 defining in assembled relation a base for an annealing furnace.
- 19. The set of components of claim 15 wherein at least two of said four individual outer segments each has an elongate outer region of the rigid ceramic refractory base atop which the outer enclosure of the furnace can be removably seated.
- 20. The set of components for a plural-stack annealing furnace of claim 19 defining in assembled relation a base for an annealing furnace.
- 21. The set of components of claim 19 wherein at least a selected outer surface area of at least one of said side parts which may be engaged by the outer enclosure of the furnace during seating and unseating movement of the outer enclosure is reinforced by forming said selected outer surface area from a cast refractory material that contains a sufficient volume of elongate, stainless steel, needle shaped members to provide said selected outer surface area with enhanced strength and wear resistance.
- 22. The set of components for a plural-stack annealing furnace of claim 21 defining in assembled relation a base for an annealing furnace.
- 23. The set of components of claim 21 wherein the cast refractory material that is utilized to reinforce said selected outer surface area is formed as a pre-cast member that has steel anchor formation means extending therefrom for anchoring the pre-cast member to the cast refractory material from which adjacent other portions of said at least one side part is formed.
- 24. The set of components for a plural-stack annealing furnace of claim 23 defining in assembled relation a base for an annealing furnace.
- 25. The set of components of claim 19 wherein the outer region of the rigid ceramic base is generally rectangular, and wherein at least one of the individual outer segments has a right-angle shaped outer portion that defines a corner part of said generally rectangular outer region.
- 26. The set of components for a plural-stack annealing furnace of claim 25 defining in assembled relation a base for an annealing furnace.
- 27. The set of components of claim 25 wherein at least a selected outer surface area of said right-angle shaped outer portion which may be engaged by the outer enclosure of the furnace during seating and unseating movement of the outer enclosure is reinforced by forming said selected outer surface area from a cast refractory material that contains a sufficient volume of elongates stainless steel, needle shaped members to provide said selected outer surface area with enhanced strength and wear resistance.
- 28. The set of components for a plural-stack annealing furnace of claim 27 defining in assembled relation a base for an annealing furnace.
- 29. The set of components of claim 27 wherein the cast refractory material that is utilized to reinforce said selected outer surface area is formed as a pre-cast member that has steel anchor formation means extending therefrom for anchoring the pre-cast member to the cast refractory material from which adjacent other portions of said at least one side part is formed.
- 30. The set of components for a plural-stack annealing furnace of claim 29 defining in assembled relation a base for an annealing furnace.
- 31. The set of components of claim 1 wherein the radially inwardly facing surface that is defined by at least one of the sub-sets of outer segments is or generally truncated conical form that is inclined with respect to the associated radially inwardly facing surface so as to narrow the width of bottom portions of the associated inner seal positioning trough so that, as the associated inner seal is compressed within said trough by the seating thereatop of an associated inner enclosure of the furnace, the associated inner seal will be wedged by narrowing bottom portions of the associated trough and will therefore continue to extend substantially the full radially measured distance between the associated pair of said radially outwardly facing surface and said radially outwardly facing surface.
- 32. The set of components for a plural-stack annealing furnace of claim 31 defining in assembled relation a base for an annealing furnace.
- 33. The set of components of claim 1 wherein said outer region of the outer segment means includes formation means configured to define at least an inner portion of an outer seal positioning trough that carries an outer seal of the furnace that is engaged by the outer enclosure of the furnace when the outer enclosure is seated atop said outer region.
- 34. The set of components for a plural-stack annealing furnace of claim 33 defining in assembled relation a base for an annealing furnace.
- 35. The set of components of claim 33 wherein at least a portion of said formation means is reinforced by forming said portion from a cast refractory material that contains a sufficient volume of elongate, stainless steel, needle shaped members to provide said portion with enhanced strength and wear resistance.
- 36. The set of components for a plural-stack annealing furnace of claim 35 defining in assembled relation a base for an annealing furnace.
- 37. The set of components of claim 1 wherein the set of outer segments, when arranged side by side to cooperatively define said outer region as being of generally rectangular shape, define a substantially continuous, perimetrically extending, outwardly facing surface adjacent which an outer seal of the furnace can extend for being engaged by the outer enclosure of the furnace when the outer enclosure is seated atop said outer region.
- 38. The set of components for a plural-stack annealing furnace of claim 37 defining in assembled relation a base for an annealing furnace.
- 39. The set of components of claim 37 wherein at least a portion of said perimetrically extending, outwardly facing surface is reinforced by forming said portion from a cast refractory material that contains a sufficient volume of elongate, stainless steel, needle shaped members to provide said portion with enhanced strength and wear resistance.
- 40. The set of components for a plural-stack annealing furnace of claim 39 defining in assembled relation a base for an annealing furnace.
- 41. The set of components of claim 1 wherein each of the inner seals includes a separate set of ceramic fiber blocks for being arranged serially in a circumferentially extending, endless array within the confines of an associated one of said troughs, with each of said arrays also including a plurality of relatively thin, perforated metal members for being interspersed among the ceramic fiber blocks of the array to extend substantially radially at circumferentially spaced intervals within the confines of the associated trough, with said blocks having radially extending widths that are sufficient to extend substantially the full radially-measured distance between said radially outwardly facing surface and said radially outwardly facing surface of the associated trough at such locations therein as are to be occupied by said blocks, and with the blocks that are included in each array being sufficient in number and in size to require that said blocks be compressed in directions extending circumferentially with respect to the associated trough in order for all of said blocks to be inserted serially into the associated trough to form said array.
- 42. The set of components for a plural-stack annealing furnace of claim 41 defining in assembled relation a base for an annealing furnace.
- 43. The set of components of claim 41 wherein said inner seal means also includes a separate relatively thin lower blanket of ceramic fiber refractory material installed in each of the inner seal positioning troughs to underlie the associated array.
- 44. The set of components for a plural-stack annealing furnace of claim 43 defining in assembled relation a base for an annealing furnace.
- 45. The set of components of claim 41 wherein said inner seal means also includes a separate relatively thin upper blanket of ceramic fiber refractory material that is installed in each of the inner seal positioning troughs to overlie the associated array.
- 46. The set of components for a plural-stack annealing furnace of claim 45 defining in assembled relation a base for an annealing furnace.
- 47. The set of components of claim 41 wherein a selected set of adjacent ones of the ceramic fiber blocks of one of the inner seals, and such ones of the thin, perforated metal members as are interspersed among the selected set of fiber blocks, are coupled together by connecting means for forming an elongate module that can be lifted and installed as a unit into the associated inner seal positioning trough.
- 48. The set of components for a plural-stack annealing furnace of claim 47 defining in assembled relation a base for an annealing furnace.
- 49. The set of components of claim 47 wherein the selected set of fiber blocks that is included in the elongate module includes two fiber blocks that are end blocks located at opposite ends of the elongate module, and at least one central fiber block that is located between the two end blocks, and the connecting means includes at least one thin, elongate member that extends substantially centrally through the elongate module so as to extend through not only the end and central blocks but also through the perforated metal members that are included in the module.
- 50. The set of components for a plural-stack annealing furnace of claim 49 defining in assembled relation a base for an annealing furnace.
- 51. The set of components of claim 49 wherein the at least one central fiber block includes at least four central fiber blocks arranged serially between the two end blocks, and the elongate member that extends substantially centrally through the module extends serially through all of the end and central blocks.
- 52. The set of components for a plural-stack annealing furnace of claim 51 defining in assembled relation a base for an annealing furnace.
- 53. The set of components of claim 49 wherein the perforated metal members that are included in the module include two metal members that are end blocks located at extreme opposite ends of the elongate module, and at least two central metal members that each are interposed between a separate adjacent pair of the set of fiber blocks that is included in the module, and the elongate member that extends substantially centrally through the module has its opposite ends connected to said end members.
- 54. The set of components for a plural-stack annealing furnace of claim 53 defining in assembled relation a base for an annealing furnace.
- 55. The set of components of claim 53 wherein the connecting means includes at least two thin, elongate metal members that extend in spaced, side by side relationship substantially centrally through the elongate module so as to extend through not only the end and central blocks but also through the perforated metal members that are included in the module, with opposite ends of each of the two metal members being connected to said end members.
- 56. The set of components for a plural-stack annealing furnace of claim 55 defining in assembled relation a base for an annealing furnace.
- 57. The set of components of claim 55 wherein the set of fiber blocks that is included in than module are substantially uniformly compressed when the module is formed so that the length of the module as measured by the distance between the end members is less than it would be if the module were formed utilizing non-compressed fiber blocks.
- 58. The set of components for a plural-stack annealing furnace of claim 57 defining in assembled relation a base for an annealing furnace.
- 59. The set of components of claim 57 wherein the substantially uniform compression of the set of fiber blocks causes each of the blocks of the set to have a length, when compressed to form the module, that is about two-thirds of its non-compressed length.
- 60. The set of components for a plural-stack annealing furnace of claim 59 defining in assembled relation a base for an annealing furnace.
- 61. The set of components of claim 47 wherein the elongate module is substantially straight when it is formed, but is sufficiently bendable to enable it to be bent to an arcuate shape prior to being installed in said inner seal positioning trough, with the arcuate shape to which the module can be bent corresponding to the curvature of the associated inner seal positioning trough.
- 62. The set of components for a plural-stack annealing furnace of claim 61 defining in assembled relation a base for an annealing furnace.
- 63. The set of components of claim 41 wherein the array of ceramic fiber blocks and thin, perforated metal members that is provided for insertion into a selected one of the inner seal positioning troughs includes a plurality of elongate modules that each include a separate set of adjacent ceramic fiber blocks and such perforated metal members as are interspersed thereamong.
- 64. The set of components for a plural-stack annealing furnace of claim 63 defining in assembled relation a base for an annealing furnace.
- 65. The set of components of claim 63 wherein the array of ceramic fiber blocks and thin, perforated metal members that is provided for insertion into said selected inner seal positioning trough includes said plurality of elongate modules and a plurality of spacer fiber blocks, with a sufficient number of spacer blocks being included so that at least one compressed spacer block can be installed between each adjacent pair of the modules when the modules and the spacer blocks are installed in said selected inner seal positioning trough.
- 66. The set of components for a plural-stack annealing furnace of claim 65 defining in assembled relation a base for an annealing furnace.
- 67. The set of components of claim 41 wherein each of the fiber blocks that is utilized to form a selected one of the inner seals is comprised of elongate fibers of ceramic refractory material, with the fibers of each block being sufficiently aligned so as to define a readily perceptible direction of orientation that extends substantially parallel to said opposed end surfaces of the block, and each of the fiber blocks is installable in the associated inner seal positioning trough with its end surfaces extending substantially transversely with respect to the length of said trough, whereby the direction of orientation of the fibers of the installed fiber blocks extends generally in radially oriented planes, not circumferentially, with respect to the associated inner seal positioning trough.
- 68. The set of components for a plural-stack annealing furnace of claim 67 defining in assembled relation a base for an annealing furnace.
- 69. The set of components of claim 67 wherein the inner seal means additionally includes elongate ceramic fiber refractory blanket means for being positioned in said inner seal positioning troughs, including a separate lower blanket for positioning in each of said troughs that has a width that is sufficient to substantially fill the radially measured width of the associated trough, and that is of sufficient length to extend substantially the full length along the circumference of the associated trough for being installed in the associated trough before the associated array of fiber blocks and metal members are installed therein to underlie the associated array, with the fibers of the blanket being sufficiently aligned so as to define a readily perceptible direction of orientation that extends substantially parallel to the length of the blanket, whereby the direction of orientation of the fibers of the installed lower blanket extends generally circumferentially with respect to the associated trough.
- 70. The set of components for a plural-stack annealing furnace of claim 69 defining in assembled relation a base for an annealing furnace.
- 71. The set of components of claim 67 wherein the inner seal means additionally includes elongate ceramic fiber refractory blanket means for being positioned in said inner seal positioning troughs, including a separate upper blanket for positioning in each of said troughs that has a width that is sufficient to substantially fill the radially measured width of the associated trough, and that is of sufficient length to extents substantially the full length along the circumference of the associated trough for being installed in the associated trough after the array of fiber blocks and metal members are installed therein to overlie the associated array, with the fibers of the blanket being sufficiently aligned so as to define a readily perceptible direction of orientation that extends substantially parallel to the length of the blanket, whereby the direction of orientation of the fibers of the installed lower blanket extends generally circumferentially with respect to the associated trough.
- 72. The set of components for a plural-stack annealing furnace of claim 71 defining in assembled relation a base for an annealing furnace.
- 73. The set of components of claim 41 wherein the inner seal means additionally includes elongate ceramic fiber refractory blanket means for being positioned in said inner seal positioning troughs, including a separate lower blanket for being positioned in each of said troughs, with each of the lower blankets having a width that is sufficient to substantially fill the radially measured width of the associated trough, and that is of sufficient length to extend substantially the full length along the circumference of the associated trough for being installed in the associated trough before the associated array of fiber blocks and metal members is installed in the associated trough to underlie the associated array.
- 74. The set of components for a plural-stack annealing furnace of claim 73 defining in assembled relation a base for an annealing furnace.
- 75. The set of components of claim 41 wherein the inner seal means additionally includes elongate ceramic fiber refractory blanket means for being positioned in said inner seal positioning troughs, including a separate upper blanket for being positioned in each of said troughs, with each of the upper blankets having a width that is sufficient to substantially fill the radially measured width of the associated trough, and that is of sufficient length to extend substantially the full length along the circumference of the associated trough for being installed in the associated trough after the associated array of fiber blocks and metal members are installed in the associated trough to overlie the associated array.
- 76. The set of components for a plural-stack annealing furnace of claim 75 defining in assembled relation a base for an annealing furnace.
- 77. The set of components of clam 41 wherein the ceramic fiber blocks that are provided for insertion into a selected one of said inner seal positioning troughs to form an associated inner seal within said selected trough have substantially uniform widths that are at least substantially equal to the maximum width of such portions of said selected trough as are to be occupied by said blocks, and said selected trough is of tapered cross section with a progressively diminishing width being encountered at progressively deeper trough depths, whereby, bottom portions of said blocks are caused to be increasingly width-wise compressed as said blocks are pressed more deeply into said selected trough by the weight of the associated inner enclosure of then furnace being seated atop the inner seal that is formed by said blocks.
- 78. The set of components for a plural-stack annealing furnace of claim 77 defining in assembled relation a base for an annealing furnace.
- 79. The set of components of claim 77 wherein the perforated metal members that are provided for insertion into said selected trough have a height that is less than the height of the ceramic fiber blocks that are provided for insertion into said selected positioning trough so that, when bottom portions of said perforated metal members and bottom portions of said ceramic fiber blocks are installed in said selected trough in engagement with a bottom wall of said selected trough, said metal members do not extend as high in said selected trough as do said blocks, whereby said metal members do not reinforce such portions of said fiber blocks as extend into upper portions of said selected trough at locations extending above the height of said metal members.
- 80. The set of components for a plural-stack annealing furnace of claim 79 defining in assembled relation a base for an annealing furnace.
- 81. The set of components of claim 79 wherein said members are sufficiently stiff, when inserted into said selected trough to form the associated inner seal, to sufficiently reinforce lower portions of the associated inner seal to prevent the associated inner seal from being crushed within said selected trough to a height that is less than the height of said metal members.
- 82. The set of components for a plural-stack annealing furnace of claim 81 defining in assembled relation a base for an annealing furnace.
- 83. The set of components of claim 41 wherein said fiber blocks have a non-compressed shape that is substantially cubical, measuring approximately 6 inches by 6 inches by 6 inches; said metal members are formed from thin pieces of perforated metal that are of about 4 inches by 4 inches in size; the portions of said inner seal positioning troughs that are to be filled by said arrays have depths of about 6 inches, widths at their tops of about 6 inches, and widths at their bottoms of about 5 inches, said fiber blocks are installed so as to extend into the bottom areas of said troughs with bottom portions thereof being compressed during installation to accommodate the bottom area width of said troughs, and said metal members also are installed so as to extend into the bottom area of said troughs.
- 84. The set of components for a plural-stack annealing furnace of claim 83 defining in assembled relation a base for an annealing furnace.
- 85. The set of components of claim 83 wherein the inner seals that are established in each of said troughs each additionally includes a lower blanket of ceramic fiber refractory material having a height of about 1 inch and a width that is sufficient to fill the width of the bottom area of the associated trough, for being installed in the bottom area of the associated trough to underlie the associated array of fiber blocks and metal members.
- 86. The set of components for a plural-stack annealing furnace of claim 85 defining in assembled relation a base for an annealing furnace.
- 87. The set of components of claim 85 wherein the inner seals that are established in each of said troughs each additionally includes an upper blanket of ceramic fiber refractory material having a height of about 1 inch and a width that is sufficient to fill an upper area width of the associated trough, for being installed in an upper area of the associated trough atop to overlie the associated array of fiber blocks and metal members.
- 88. The set of components for a plural-stack annealing furnace of claim 87 defining in assembled relation a base for an annealing furnace.
- 89. The set of components of claim 1 wherein at least a selected one of said inner segment means and said outer segment means includes at least one cast refractory segment that has lift connection means anchored into the cast refractory material from which said one segment is formed for defining three spaced lift attachment points to which connection can be made with a crane to permit said one segment to be lifted and moved about, with each of the three spaced lift attachment points opening through a single outer surface of said one segment that faces upwardly when said one segment is installed as a component of said refractory base.
- 90. The set of components for a plural-stack annealing furnace of claim 89 defining in assembled relation a base for an annealing furnace.
- 91. The set of components of claim 1 wherein the outer segment means includes central segment means configured to extend within a space located among at least three sets of inner segments that have been positioned to each extend about a separate one of at least three nonaligned, relatively closely grouped furnace blower mounts for defining at least a central part of the rigid ceramic refractory base located within said space.
- 92. The set of components for a plural-stack annealing furnace of claim 91 defining in assembled relation a base for an annealing furnace.
- 93. The set of components of claim 1 wherein the outer segment means includes central segment means configured to extend within a space located among at least four sets of inner segments that have been positioned to each extend about a separate one of at least four relatively closely grouped furnace blower mounts that are arranged in spaced, side-by-side extending rows, for defining at least a central part of the rigid ceramic refractory base located within said space.
- 94. The set of components for a plural-stack annealing furnace of claim 93 defining in assembled relation a base for an annealing furnace.
- 95. The set of components of claim 1 for a four-stack annealing furnace wherein the outer segment means includes corner-forming segment means including four right-angle corner segments for defining four right-angle corners of a substantially square cast refractory base, and side-forming segment means including four side segments for defining four side portions of the substantially square cast refractory base that each bridge between a separate pair of the corner segments.
- 96. The set of components for a plural-stack annealing furnace of claim 95 defining in assembled relation a substantially square base for a four-stack annealing furnace.
- 97. The set of components of claim 1 for an eight-stack annealing furnace wherein the outer segment means includes corner-forming segment means including four right-angle corner segments for defining four right-angle corners of a substantially rectangular cast refractory base, side-forming segment means including at least four side segments for defining four side portions of the substantially rectangular cast refractory base that each bridge between a separate pair of the corner segments, and center segment means including a plurality of center segments for bridging centrally among adjacent sets of the inner segments.
- 98. The set of components for a plural-stack annealing furnace of claim 97 defining in assembled relation a base for an eight-stack annealing furnace.
- 99. A set of components that can be positioned atop a base support structure of an annealing furnace for defining a generally annular inner seal that extends concentrically about an imaginary upstanding axis that defines the center of a stack location of the furnace, comprising: a) inner cast ceramic refractory segment means 1) for extending concentrically in an annular arrangement about said axis for underlying and supporting portions of a charge support element of the furnace that extends concentrically about said axis for underlying and supporting a coil of metal that is to be treated in a treatment chamber that is defined to extend about the coil of metal when an inner enclosure of the furnace is lowered into place so lower portions thereof extend substantially concentrically about and enclose the charge support element, and 2) for defining a substantially uninterrupted, radially outwardly facing surface that extends substantially concentrically about said axis so as to be surrounded by said lower portions of the lowered-in-place inner enclosure; b) outer cast ceramic refractory segment means for defining a substantially uninterrupted, radially inwardly facing surface that extends substantially concentrically 1) about said axis, 2) about said radially outwardly facing surface at a distance spaced therefrom, and 3) about said lower portions of the lowered-in-place inner enclosure so as to cooperate with the inner segment means to define an annular, upwardly opening trough of substantially uniform cross-section as viewed in planes that radiate from said axis its length, into which trough said lower portions of the lowered-in-place inner enclosure extend; c) annular seal means formed at least in part from heat resistant ceramic material for being installed in said trough to define a somewhat resilient seal that is engaged by said lower portions of the lowered-in-place inner enclosure and is caused by force applied to the seal due to the seal's being engaged by said lower portions to deform at least slightly to thereby aid in establishing a substantially gas-impervious seal for the treatment chamber; d) wherein the radially outwardly facing surface and the radially inwardly facing surface cooperate to define said substantially uniform trough cross-section as being tapered so as to widen progressively as the trough opens upwardly; and, e) wherein said annular seal means has a substantially uniform cross-sectional configuration of sufficient radially extending width 1) to ensure that the annular seal means is at least slightly compressed as it is pressed between the radially inwardly and radially outwardly facing surfaces as it is installed into the trough, and 2) to ensure that, if the cross-section of the seal tends to diminish slightly during its service life, the force applied to the seal due to the seal's being engaged by the lowered-in-place inner enclosure will tend to press the seal more deeply into the narrow lower part of the trough where the seal still will have a sufficiently wide cross-section to the bridge between the radially inwardly and radially outwardly facing surfaces.
- 100. The set of components for a plural-stack annealing furnace of claim 99 defining in assembled relation a base for an annealing furnace.
- 101. A base assembly for a plural-stack annealing furnace, comprising:
- a) a welded steel base support structure having a periphery that defines the shape of the base, having a top surface of said shape defined by plate steel with a plurality of spaced blower mount locations in an array spaced centrally inwardly from the periphery of the base;
- b) a blanket of refractory fiber material substantially covering said plate steel top surface;
- c) inner cast ceramic retractor, segment means for defining annular inner portions of a rigid ceramic refractory base, including a plurality of separate sets of cast refractory inner segments positioned atop said blanket of refractory fiber material, with each of said sets of cast refractory inner segments being configured 1) to define a separate associated annular-shape inner portion of the rigid ceramic refractory base for extending substantially concentrically about a separate associated one of said blower mount locations, 2) to underlie and support a separate associated one of a plurality of generally circular charge support structures of the furnace, and 3) to define a separate-associated (one fit plurality sustantially continuous, radially outwardly facing surfaces that each extends substantially concentrically about a separate associated one of the circular charge support structures at a location near the periphery thereof;
- d) outer cast ceramic refractory segment means for defining outer portions of the rigid ceramic refactory base, including a plurality of cast refractory outer segments positioned atop said blanket refractory fiber material and arranged side by side to cooperatively define atop the blanket of refractory fiber an outer region of the rigid ceramic refractory base of said general shape near which an outer furnace enclosure of said general shape can be removably positioned, with subsets of the outer segments each being co-operable to extend about an associated separate one of said annular-shaped inner portions to define arcuate portions of a separate associated, radially inwardly facing surface that extend concentrically about a separate associated one of said radially outwardly facing surfaces so as to cooperate therewith to define opposite, radially spaced sides of an associated inner seal positioning trough for extending circumferentially about a separate associated one of the circular charge support structures of the furnace; and,
- c) inner seal means for being positioned in said troughs atop the base support structure of the furnace for defining a plurality of inner seals 1) that each extend in a separate one of said troughs in a substantially uninterrupted manner about the periphery of a separate associated one of the circular charge support structures 2) that each has sufficient structural integrity so as to be capable of supporting at least a portion of the weight of a separate associated open-bottom inner enclosure of the furnace when bottom rim portions of the associated inner enclosure are seated thereatop, and 3) that each is sufficiently resilient to cooperate with the bottom rim portions of the associated seated inner enclosure to form a gas impervious seal for isolating the environment of an associated treatment chamber.
- 102. The base of claim 101 wherein each of the inner seals includes a separate set of ceramic fiber blocks for being arranged serially in a circumferentially extending, endless array within the confines of a separate associated one of said troughs.
- 103. The base of claim 102 wherein each of said arrays also includes a plurality of relatively thin, perforated metal members for being interspersed among the ceramic fiber blocks of the array to extend substantially radially at circumferentially spaced intervals within the confines of the associated trough, with said blocks having radially extending widths that are sufficient to extend substantially the full radially-measured distance between said radially outwardly facing surface and said radially outwardly facing surface of the associated trough at such locations therein as are to be occupied by said blocks, and with the blocks that are included in each array being sufficient in number and in size to require that said blocks be compressed in directions extending circumferentially with respect to the associated trough in order for all of said blocks to be inserted serially into the associated trough to form said array.
- 104. The base of claim 101 wherein at least one of the sets of cast refractory inner segments includes a pair of substantially identically configured, half-circle shaped inner segments.
- 105. The base of claim 101 wherein the inner segment means and the outer segment means are configured such that at least a selected one of each associated pair of said radially outwardly facing surface and said radially outwardly facing surface is of a truncated conical form that serves to narrow the width of bottom portions of the associated inner seal positioning trough so that, as the associated inner seal means is compressed within the associated trough by the seating of the associated inner enclosure of the furnace atop the associated inner seal, the associated inner seal will be wedged by narrowing bottom portions of the associated trough and will therefore continue to extend substantially the full radially measured distance between the associated pair of said radially outwardly facing surface and said radially outwardly facing surface.
- 106. The base of claim 101 wherein the inner segment means and the outer segment means are configured such that each of the inner seal positioning troughs maintains a substantially uniform cross-sectional configuration as it extends circumferentially about the associated charge support structure of the furnace, with said uniform cross-sectional configuration being tapered to narrow toward the bottom region thereof.
- 107. The base of claim 101 wherein each of said outer segment sub-sets includes four Individual outer segments, with at least two of the individual outer segments being shared with another sub-set in the sense that said two individual outer segments each define portions of two of said radially inwardly facing surfaces.
- 108. The base of claim 107 wherein at least one of said at least two individual outer segments has an elongate outer portion that defines a side part of said outer region of the rigid ceramic refractory base near which the outer enclosure of the furnace can be removably positioned.
- 109. The base of claim 108 wherein at least a portion of said side part which may be engaged by the outer enclosure of the furnace when the outer enclosure is removably positioned near said outer region as reinforced by forming said selected outer surface area from a cast refractory material that contains a sufficient volume of elongate, stainless steel, needle shaped members to provide enhanced strength and wear resistance.
- 110. The base of claim 109 wherein the cast refractory material that is utilized to reinforce said selected outer surface area is formed as a pre-cast member that has steel anchor formation means extending therefrom for anchoring the pre-cast member to the cast refractory material from which adjacent other portions of said side part is formed.
- 111. The base of claim 101 wherein the radially inwardly facing surface that is defined by at least one of the sub-sets of outer segments is of generally truncated conical form that is inclined with respect to the associated radially inwardly facing surface so as to narrow the width of bottom portions of the associated inner seal positioning trough so that, as the associated inner seal is compressed within said trough by the seating thereatop of an associated inner enclosure of the furnace, the associated inner seal will be wedged by narrowing bottom portions of the associated trough and will therefore continue to extend substantially the full radially measured distance between the associated pair of said radially outwardly facing surface and said radially outwardly facing surface.
- 112. The base of claim 101 wherein the set of outer segments, when arranged side by side to cooperatively define said generally rectangular outer regions additionally define a substantially continuous, perimetrically extending, outwardly facing surface adjacent which an outer seal of the furnace can extend for being engaged by the outer enclosure of the furnace when the outer enclosure is stated atop said outer region.
- 113. The base of claim 112 wherein at least a portion of said perimetrically extending, outwardly facing surface is reinforced by forming said portion from a cast refractory material that contains a sufficient volume of elongate, stainless steel, needle shaped members to provide said portion with enhanced strength and wear resistance.
- 114. The base of claim 102 wherein a selected set of adjacent ones of the ceramic fiber blocks of one of the inner seals, and such ones of the thin, perforated metal members as are interspersed among the selected set of fiber blocks, are coupled together by connecting means for forming an elongate module that can be lifted and installed as a unit into the associated inner seal positioning trough.
- 115. The base of claim 114 wherein the connecting means includes at least two thin, elongate metal members that extend in spaced, side by side relationship substantially centrally through the elongate module so as to extend through not only the end and central blocks but also through the perforated metal members that are included in the module, with opposite ends of each of the two metal members being connected to said end members.
- 116. The base of claim 115 wherein the set of fiber blocks that is included in the module are substantially uniformly compressed when the module is formed so that the length of the module as measured by the distance between the end members is less than it would be if the module were formed utilizing non-compressed fiber blocks.
- 117. The base of claim 116 wherein the elongate module is substantially straight when it is formed, but is sufficiently bendable to enable it to be bent to an arcuate shape prior to being installed in the associated inner seal positioning trough, with the arcuate shape to which the module can be bent corresponding to the curvature of the associated inner seal positioning trough.
- 118. The base of claim 117 wherein tree array of ceramic fiber blocks and thin, perforated metal members that is provided for insertion into said selected inner seal positioning trough includes said plurality of said elongate modules and a plurality of spacer fiber blocks, with a sufficient number of spacer blocks being included so that at least one compressed spacer block can be installed between each adjacent pair of the modules when the modules and the spacer blocks are installed in said selected inner seal positioning trough.
- 119. The base of claim 101 additionally including upstanding lifting arms affixed to opposite sides of the base support structure at spaced intervals therealong for being connected to a crane to permit the base to be lifted and moved from place to place.
- 120. The base of claim 119 additionally including lifting fixture means configured to be connected to all of said lifting arms, and providing a single connection that can be coupled to a crane so that, when a crane lifts the lifting fixture means, the lifting fixture means will apply force to said base through said lifting arms to lift said base.
- 121. A cast refractory base of generally rectangular shape for an eight-stack annealing furnace having two spaced, parallel extending rows of four stack locations, wherein the base is formed from plurality of individually formed cast refractory segments assembled side-by-side atop a generally rectangular base support structure, comprising: a) inner segment means comprising a plurality of generally arcuate-shaped inner segments for extending in an annular manner about spaced center axes of the eight stack locations of the furnace; b) outer segment means comprising four corner-defining segments and at least four side-defining segments for bridging between adjacent pairs of the corner segments to define the generally rectangular shape of the perimeter of the cast refractory base; and, c) center segment means including a plurality of center segments for bridging centrally among adjacent inner segment sets; d) wherein the inner, outer and center segments cooperate to define substantially annular, upwardly opening troughs extending concentrically about the center axes for receiving inner seals that are engaged by inner enclosures of the furnace that each extend about a separate one of the center axes when lowered into operating position to define separate treatment chambers extending about each of the center axes.
- 122. The cast refractory base of claim 121 wherein the inner, outer and center segments are configured such that the upwardly opening troughs have substantially uniform cross-sections that taper so as to widen progressively as the troughs open upwardly, and annular seal means is provided including a plurality of annular seals that each has a cross-section that causes each annular seal to be compressed to a progressively greater degree the deeper each annular seal is pressed into an associated one of the troughs.
- 123. The cast refractory base of claim 121 wherein the steel base is formed in two sections, each of which define a separate row of four stack locations, each of which is positioned atop a separate flat bed truck and has selected ones of its inner, outer and central segments installed thereon for transfer as a subassembly to a site where a new cast refractory base is to be installed, with the resulting sub-assemblies being crane-lifted into installed positions so as to extend side-by-side before all remaining ones of the needed inner, outer and central segments are installed.
- 124. An annealing furnace seal provided in a given length of an elongate, upwardly-opening trough defined between a pair of spaced, opposed surfaces of an annealing furnace base for being engaged by portions of a cover of the furnace to aid in establishing a gas-impervious seal between the furnace base and the cover extending along said given length, comprising: a) a plurality of ceramic fiber blocks arranged serially within the confines of the trough along said given length thereof, with the blocks having transverse widths that are sufficient to bridge the width of the trough at locations within the trough where the blocks are installed, with the blocks being sufficient in number and size to require that the blocks be compressed in directions extending along the length of the trough to be inserter, serially into the trough; and, b) reinforcement means including a plurality of relatively thin, perforated metal members interspersed among the ceramic fiber blocks and extending generally transversely within the confines of the trough for enhancing the crush resistance of the resulting seal.
- 125. The annealing furnace seal of claim 124 additionally including elongate means extending substantially centrally through such ones of the ceramic fiber blocks and perforated metal members interspersed thereamong as occupy a selected part of said given length, and being connected to perforated metal members located near opposite ends of said selected part of said given length for positioning the connected perforated metal members to compress such ceramic fiber blocks and interspersed metal members as are located therebetween thereby forming a module of interconnected, compressively sandwiched ceramic fiber blocks and interspersed metal members.
- 126. The annealing furnace seal of claim 125 wherein said elongate means that compressively sandwiches ceramic fiber blocks and interspersed metal members is curved along its length to substantially correspond to a curvature of the length of said trough that is to be occupied by said module so that said module is caused to curve along its length to correspond to the curvature of the trough length wherein the module is positioned.
- 127. The annealing furnace seal of claim 125 wherein the elongate means includes at least one steel rod.
- 128. The annealing furnace seal of claim 125 additionally including a relatively thin lower blanket of ceramic fiber refractory material installed in said trough to underlie said module.
- 129. The annealing furnace seal of claim 125 additionally including a relatively thin upper blanket of ceramic fiber refractory material installed in said trough to overlie said module.
- 130. The annealing furnace seal of claim 125 including a plurality of said modules of compressively sandwiched ceramic fiber blocks and interspersed metal members.
- 131. The annealing furnace seal of claim 130 additionally including a relatively thin, elongate, lower blanket of ceramic fiber refractory material installed in said trough to underlie more than one of said modules.
- 132. The annealing furnace seal of claim 130 additionally including a relatively thin, elongate, upper blanket of ceramic fiber refractory material installed in said trough to overlie more than one of said modules.
- 133. A crush-resistant ceramic seal module for insertion into a given length of an elongate, upwardly-opening trough defined between a pair of spaced, opposed surfaces of an annealing furnace base for being engaged by portions of a cover of the furnace to aid in establishing a gas-impervious seal between the furnace base and the cover extending along said given length, comprising:
- a) a plurality of ceramic fiber blocks arranged serially for defining an array of ceramic fiber blocks configured to be inserted into the confines of the upwardly opening trough along said given length thereof; with the blocks having transverse widths that are sufficient to bridge the width of the trough at locations within the trough where the blocks are installed, with the blocks being sufficient in number and size to require that the blocks be compressed in directions extending along the length of the trough to be inserted serially into the trough;
- b) reinforcement means including a plurality of relatively thin, perforated metal members interspersed among the ceramic fiber blocks for extending generally transversely within the confines of the trough for enhancing the crush resistance of the resulting seal; and,
- c) elongate means extending substantially centrally through the array of ceramic fiber blocks and through such perforated metal members as are interspersed thereamong, and being connected to end structures located at opposite ends of the array for positioning the end structures to compressively sandwich the array of ceramic fiber blocks and interspersed metal members.
- 134. The ceramic seal module of claim 133 wherein the elongate means is curved along its length to substantially correspond to a curvature of the length of said trough that is to be occupied by said module so that said module is caused to curve along its length to correspond to a curvature of the trough length wherein the module is positioned.
- 135. The ceramic seal module of claim 133 wherein the elongate means is sufficiently bendable to enable the module to be bent along its length at a time after the module has been assembled to enable the assembled module to conform to a curvature of the trough length wherein the module is to be positioned.
- 136. A method of providing a crush-resistant annealing furnace seal in a given length of an elongate, upwardly-opening trough defined between a pair of spaced, opposed surfaces of an annealing furnace base for being engaged by portions of a cover of the furnace to aid in establishing a gas-impervious seal between the furnace base and the cover extending along said given length, comprising the step of positioning within the confines of the trough and extending continuously along said given length a compressed serial array of a plurality of ceramic fiber blocks that have widths that are sufficient to bridge the width of the trough at locations within the trough where the blocks are installed, with the array also including a plurality of relatively thin, perforated metal members interspersed among the ceramic fiber blocks and extending generally transversely within the confines of the trough for enhancing the crush resistance of the resulting seal.
- 137. The method of claim 136 additionally including the step of positioning elongate means to extend substantially centrally through said array of ceramic fiber blocks and perforated metal members along at least a selected part of said given length, and connecting the elongate means to perforated metal members located near opposite ends of said selected part of said given length for holding the connected perforated metal members in positions compressing such ceramic fiber blocks and interspersed metal members as are located therebetween, thereby forming a module of interconnected, compressively sandwiched ceramic fiber blocks and interspersed metal members.
- 138. The method of claim 137 additionally including the step of configuring the elongate means to assume a curvature along the length thereof that substantially corresponds to a curvature of a trough length occupied by said module so that said module is caused to curve along its length to correspond to the curvature of the trough length wherein the module is positioned.
- 139. The method of claim 137 additionally including the step of positioning a relatively thin lower blanket of ceramic fiber refractory material in said trough to underlie said module.
- 140. The method of claim 137 additionally including the step of positioning a relatively thin upper blanket of ceramic fiber refractory material in said trough to overlie said module.
- 141. A method of assembling from a set of component parts, at a location atop a base support structure of a plural-stack annealing furnace, 1) a rigid ceramic refractory base for extending in substantially concentric, annular relationship about a plurality of spaced blower mounts of the furnace, for underlying and extending perimetrically about a plurality of charge support structures of the furnace that are of generally circular shape and that are configured to overlie the blower mounts to support a plurality of charges of metal that are to be annealed, and 2) a plurality of relatively resilient annular inner seals that extend perimetrically about the charge support structures, atop which inner enclosures of the furnace can be removably seated for defining a plurality of controlled environment treatment chambers within which charges of metal that are positioned atop the charge support structures can be confined for treatment during an annealing process, comprising the steps of:
- a) providing inner segment means including a plurality of sets of cast refractory inner segments, and installing each set of the inner segment means 1) to define a separate associated annular-shaped inner portion of the rigid ceramic refractory base for extending substantially concentrically about a separate associated one of a plurality of blower mounts of a plural-stack annealing furnace, 2) to underlie and support a separate associated one of a plurality of generally circular charge support structures of the furnace, and 3) to define a separate associated one of a plurality of substantially continuous, radially outwardly facing surfaces that each extends substantially concentrically about a separate associated one of the circular charge support structures at a location near the periphery thereof;
- b) providing outer segment means including a set of cast ceramic refractory outer segments, and installing the outer segment means so that the outer segments extend side by side to cooperatively define an outer region of the rigid ceramic refractory base near which an outer enclosure of the furnace can be removably positioned, with smaller groups of the outer segments of the set comprising outer segment sub-sets, with the segments of each sub-set extending about an associated separate one of said annular-shaped inner portions to define arcuate portions of a separate associated, radially inwardly facing surface that extends concentrically about a separate associated one of said radially outwardly facing surfaces so as to cooperate therewith to define opposite, radially spaced sides of an associated inner seal positioning trough for extending circumferentially about a separate associated one of the circular charge support structures of the furnace; and,
- c) providing inner seal means including a plurality of separate inner seals, and installing each of the inner seals atop the base support structure of the furnace and in a separate one of said troughs, with the installed inner seals 1) each extending in a substantially uninterrupted manner about the periphery of a separate associated one of the circular charge support structures, 2) each being capable of supporting at least a part of the weight of a separate associated open-bottom inner enclosure of the furnace when bottom rim portions of the associated inner enclosure are seated thereatop, and 3) each being sufficiently resilient to cooperate with the seated to rim portions of the associated inner enclosure to form a gas impervious seal for isolating the environment of an associated treatment chamber.
- 142. The method of claim 141 wherein the steps of providing and installing inner segment means include the steps of providing and installing a plurality of arcuate-shaped inner segments that are of substantially identical configuration and are therefore interchangeable one with another.
- 143. The method of claim 141 wherein the steps of providing and installing inner segment means include the steps of providing and installing pairs of substantially identically configured, half-circle shaped inner segments.
- 144. The method of claim 141 wherein the steps of providing and installing inner segment means include the steps of providing and installing inner segments that define at least one of the associated radially outwardly facing surfaces such that it is of a truncated conical form that is inclined with respect to the associated radially inwardly facing surface so as to narrow the width of bottom portions of the associated inner seal positioning trough so that, as the associated inner seal is compressed within the associated trough by the seating thereatop of the associated inner enclosure of the furnace, the associated inner seal will continue to extend substantially the full radially measured distance between the associated pair of radially outwardly facing and radially inwardly facing surfaces at such locations within the associated trough as are occupied by the associated inner seal.
- 145. The method of claim 141 wherein the steps of providing and installing said inner segment means and said outer segment means include the steps of configuring and installing said inner segment means and said outer segment means such that at least one of an associated pair of radially inwardly facing and radially outwardly facing surfaces is of a truncated conical form that serves to narrow the width of bottom portions of the associated inner seal positioning trough so that, as the associated inner seal means is compressed within the associated trough by the seating of the associated inner enclosure or the furnace thereatop, the associated inner seal will continue to extend substantially the full radially measured distance between said associated pair of surfaces at such locations within the associated trough as are occupied by the associated inner seal.
- 146. The method of claim 141 wherein the steps of providing and installing said inner segment means and said outer segment means include the steps of configuring and installing said inner segment means and said outer segment means such that all of the inner seal positioning troughs maintain a substantially uniform cross-sectional configuration as they extend circumferentially about the charge support structures of the furnace, with said uniform cross-sectional configuration being tapered such that the inner seal positioning troughs narrow toward bottom regions thereof.
- 147. The method of claim 141 wherein the steps of providing and installing outer segment means include the steps of providing and installing four individual outer segments per outer segment sub-set to define an associated one of the radially inwardly facing surfaces, with at least a designated pair of the individual outer segments being shared with another of the sub-sets in the sense that each of the segments of said designated pair also defines portions of another of said radially inwardly facing surfaces.
- 148. The method of claim 147 wherein the step of providing and installing the outer segment means include the steps of providing and installing four individual outer segments per sub-set 1) in such a manner that each of the four individual segments defines at least the majority of a quarter circle portion of said one of the associated radially inwardly facing surfaces, and 2) in such a manner that each of the segments of said designated pair also defines at least the majority of a quarter circle portion of said another of the radially inwardly facing surfaces.
- 149. The method of claim 147 wherein the steps of providing and installing the outer segment means are carried out in such a way that at least one of the segments of said designated pair has an elongate outer portion that is installed to define a side part of said outer region of the rigid ceramic refractory base adjacent which the outer enclosure of the furnace is removably positioned during operation of the furnace.
- 150. The method of claim 149 wherein the steps of providing and installing the outer segment means are carried out in such a way that at least a selected outer surface area of said side part which may be engaged by the outer enclosure of the furnace during positioning of the outer enclosure adjacent said side part is reinforced by having its selected outer surface area formed from a cast refractory material that contains a sufficient volume of elongate, stainless steel, needle shaped members to provide said selected outer surface area with enhanced strength and wear resistance.
- 151. The method of claim 150 wherein the steps of providing and installing the outer segment means are carried out in such a way that the cast refractory material that is utilized to reinforce said selected outer surface area is formed as a pre-cast member that has steel anchor formation means extending therefrom for anchoring the pre-cast member to the cast refractory material from which adjacent other portions of said at least one side part is formed.
- 152. The method of claim 151 wherein the outer segments cooperate to define said outer region as being of generally rectangular shape, and wherein the steps of providing and installing the outer segment means are carried out in such a way that at least one of the individual outer segments defines a right-angle shaped outer portion that provides a corner part of said generally rectangular outer region.
- 153. The method of claim 152 wherein the steps of providing and installing the outer segment means are carried out in such a way that at least a selected outer surface area of said corner part is reinforced by having its selected outer surface area formed from a cast refractory material that contains a sufficient volume of elongate, stainless steel, needle shaped members to provide said selected outer surface area with enhanced strength and wear resistance.
- 154. The method of claim 153 wherein the steps of providing and installing the outer segment means are carried out in such a way that the cast refractory material that is utilized to reinforce said selected outer surface area is formed as a pre-cast member that has steel anchor formation means extending therefrom for anchoring the pre-cast member to the cast refractory material from which adjacent other portions of said corner part is formed.
- 155. The method of claim 151 wherein the steps of providing and installing the outer segment means are carried out such that the set of outer segments, when arranged side by side to cooperatively define said generally rectangular outer region, additionally define a substantially continuous, perimetrically extending, outwardly facing surface adjacent which an outer seal of the furnace can extend for being engaged by the outer enclosure of the furnace when the outer enclosure is positioned near outer region during operation of the furnace.
- 156. The method of claim 155 wherein the steps of providing and installing the outer segment means are carried out such that at least a portion of said perimetrically extending, outwardly facing surface is reinforced by forming said portion from a cast refractory material that contains a sufficient volume of elongate, stainless steel, needle shaped members to provide said portion with enhanced strength and wear resistance.
- 157. The method of claim 156 wherein the steps of providing and installing the outer segment means are carried out in such a way that the cast refractory material that is utilized to reinforce said outwardly facing surface is formed as a pre-cast member that has steel anchor formation means extending therefrom for anchoring the pre-cast member to the cast refractory material from which adjacent other portions of said outer segment means is formed.
- 158. The method of claim 141 wherein the steps of providing and installing outer segment means include the steps of providing and installing outer segments that cooperate to define portions of an outer seal trough wherein an outer seal of the furnace can be carried that engages the outer enclosure of the furnace when the outer enclosure is seated atop the outer segment means.
- 159. The method of claim 141 wherein the step of providing inner seal means includes the step of configuring the installed inner seals to each include a separate set of ceramic fiber blocks arranged serially in a circumferentially extending array within the confines of an associated one of said troughs, with each of said arrays also including a plurality of relatively thin, perforated metal members interspersed among the ceramic fiber blocks of the array to extend substantially radially at circumferentially spaced intervals within the confines of the associated trough, with said blocks having radially extending widths that are sufficient to extend substantially the full radially-measured distance between said radially outwardly facing surface and said radially outwardly facing surface of the associated trough at such locations therein as are to be occupied by said blocks, and with the blocks that are included in each array being sufficient in number and in size to require that said blocks be compressed in directions extending circumferentially with respect to the associated trough in order for all of said blocks to be inserted serially into the associated trough to form said array.
- 160. The method of claim 159 wherein the steps of providing and installing inner seal means include the steps of connecting a set of selected ones of the fiber blocks of one of the inner seals, and such thin metal members as are interspersed thereamong, to form an elongate module, and installing the module as a unit in the associated inner seal positioning trough.
- 161. The method of claim 160 wherein the steps of providing and installing inner seal means include the steps of including within the set of selected fiber blocks two fiber blocks that constitute end blocks inasmuch as they are located at opposite ends of the elongate module, and at least one central fiber block that is located between the two end blocks, and the step of connecting includes the step of inserting at least one elongate connector member to extend substantially centrally through the elongate module so as to extend through not only the end and central blocks but also through the perforated metal members that are included in the module.
- 162. The method of claim 161 wherein the steps of providing and installing inner seal means include the steps of including within the set of selected fiber blocks at least four central fiber blocks arranged serially between the two end blocks, and the step of connecting includes the step of inserting said elongate connector member to extend substantially centrally through all of the end and central blocks.
- 163. The method of claim 162 wherein the steps of providing and installing a module include the steps of incorporating in the module two metal members that constitute end members inasmuch as they are located at extreme opposite ends of the elongate module, and at least two central metal members that each are interposed between a separate adjacent pair of the set of selected fiber blocks, and the step of connecting includes connected opposite ends of the elongate connector member to said end members.
- 164. The method of claim 163 wherein the step of connecting includes the step of substantially uniformly compressing all of the fiber blocks of the set so that the length of said module as measured by the distance between the end members is less than it would be if the module were formed utilizing non-compressed fiber blocks.
- 165. The method of claim 164 wherein the step of substantially uniformly compressing the set of fiber blocks is carried out in such a way as to cause each of the blocks of the set to have a length, when compressed, that is about two-thirds of its non-compressed length.
- 166. The method of claim 160 wherein the step of forming the elongate module includes the step of forming the module such that it is substantially straight, and the step of installing the module in an associated trough includes the step of bending the module to an arcuate shape that corresponds to the curvature of the associated trough.
- 167. The method of claim 160 wherein the steps of providing and installing the inner seal means include the steps of providing and installing a plurality of said elongate modules, with each module including a separate set of fiber blocks together with such metal members as are interspersed thereamong.
- 168. The method of claim 167 wherein the steps of providing and installing the inner seal means include the steps of providing and installing a plurality of individual spacer fiber blocks, with a sufficient number of the spacer blocks being provided so that at least one compressed spacer block can be installed between each adjacent pair of the installed modules.
- 169. The method of claim 141 wherein the step of providing the inner seal means includes the step of providing ceramic refractory fiber blocks that have opposite end surfaces that are to be positioned in the associated trough so as to extend generally radially with respect to the associated trough, that have elongate fibers of ceramic refractory material, with the fibers of each block being sufficiently aligned so as to define a readily perceptible direction of orientation that extends substantially parallel to the opposed end surfaces of the block, and the step of installing the inner seal means includes the step of installing each of the fiber blocks in the associated inner seal positioning trough with the end surfaces of each block extending substantially radially with respect to the length of the associated trough, whereby the fibers of the blocks are oriented to extend generally in planes that extend substantially radially, not substantially circumferentially, with respect to the associated inner seal positioning trough.
- 170. The method of claim 169 wherein the step of providing inner seal means includes the step of providing said fiber blocks such that they have a substantially uniform width that is at least substantially equal to the maximum width of such portions of the associated trough as are to be occupied by said blocks; the steps of providing and installing said inner segment means and said outer segment means are carried out so that the associated trough, which is defined by a space located between said inner segment means and said outer segment means, is of tapered cross section with a progressively diminishing width being encountered at progressively deeper trough depths; and the step of installing the inner seal means is carried out by causing said blocks to be compressed in radially extending directions as said blocks are installed in the associated trough so that said blocks substantially fill the width of such portions of the associated trough as are occupied by said blocks.
- 171. The method of claim 169 wherein the step of providing the inner seal means includes the step of providing said perforated metal members in a form having a height that is less than the height of said fiber blocks, and the step of installing the inner seal means includes the step of inserting both the metal members and the fiber blocks to extend into bottom regions of the associated trough, with the metal members being sufficiently stiff to reinforce lower portions of the inner seal that is formed by said blocks and said members to prevent the inner from being crushed within the associated trough to a height that is less than the height of said metal members.
- 172. The method of claim 141 wherein the step of providing said inner segment means includes the step of mold-forming castable ceramic refractory material to mold a cast refractory inner segment while forcefully vibrating the mold to cause the castable ceramic material to flow properly to substantially fill all significant voids within the mold, and curing the molded cast refractory inner segment in a temperature controlled environment.
- 173. The method of claim 172 wherein the step of mold-forming castable ceramic refractory material includes the step of providing at least one anchor-carrying lift-engageable formation in said mold for being molded into the cast refractory inner segment, with the lift-engageable formation being accessible along an outer, upwardly-facing surface of the resulting cast refractory inner segment for connection to a crane to permit the cast refractory inner segment to be lifted by a crane during installation of the cast refractory inner segment.
- 174. The method of claim 141 wherein the step of providing said outer segment means includes the step of mold-forming castable ceramic refractory material to mold a cast refractory outer segment while forcefully vibrating the mold to cause the castable ceramic material to flow properly to substantially fill all significant voids within the mold, and curing the molded cast refractory outer segment in a temperature controlled environment.
- 175. The method of claim 174 wherein the step of mold-forming castable ceramic refractory material includes the step of providing at least one anchor-carrying lift-engageable formation in said mold for being molded into the cast refractory outer segment, with the lift-engageable formation being accessible along an outer, upwardly-facing surface of the resulting cast refractory outer segment for connection to a crane to permit the cast refractory outer segment to be lifted by a crane during installation of the cast refractory outer segment.
- 176. The method of claim 141 wherein the step of providing inner segment means includes the step of providing at least one cast refractory inner segment that has lift connection means anchored into the cast refractory material from which the segment is formed for defining three spaced lift attachment points to which connection can be made with a crane to permit the segment to be lifted and moved about, with each of the three spaced lift attachment points opening through a single outer surface of the segment that faces upwardly when said one inner segment is installed as a component of said refractory base, and the step of installing the cast refractory inner segment means includes the step of connecting each of the three lift attachment points of said one inner segment to crane, and operating the crane to lift and move said one inner segment into an installed position.
- 177. The method of claim 141 wherein the step of providing outer segment means includes the step of providing at least one cast refractory outer segment that has lift connection means anchored into the cast refractory material from which the segment is formed for defining three spaced lift attachment points to which connection can be made with a crane to permit the segment to be lifted and moved about, with each of the three spaced lift attachment points opening through a single outer surface of the segment that faces upwardly when said one outer segment is installed as a component of said refractory base, and the step of installing the cast refractory outer segment means includes the step of connecting each of the three lift attachment points of said one outer segment to a crane, and operating the crane to lift and move said one outer segment into an installed position.
- 178. A method of forming an elongate, upwardly facing seal of given length within an upwardly opening seal-positioning trough of an annealing furnace base, comprising the steps of:
- a) providing a set of substantially identical ceramic fiber blocks that can be positioned in an end-to-end serial array having a non-compressed length that is greater than said given length, with the fibers of refractory material that comprise said blocks being of sufficient length so that, when the blocks are positioned in said array with their fibers extending substantially transversely relative to the length of the array, the serial array will have a transverse width that is slightly greater than is the width of such portions of the trough portions that are to be occupied by the blocks;
- b) providing a plurality of relatively thin, perforated metal members that have lengths that are less than the width of said trough portions;
- c) arranging said blocks to form said array with the thin metal members interspersed to extend among the blocks of the array; and,
- d) compressing-lengthwise and installing the array of blocks with metal members interspersed thereamong within said given length of the trough with the metal members extending transversely within the compressed array to enhance the crush resistance of the resulting seal.
- 179. The method of claim 178 additionally including the steps of installing a relatively thin lower blanket of ceramic fiber refractory material to underlie the compressed array as an additional element of the resulting seal.
- 180. The method of claim 178 additionally including the steps of installing a relatively thin upper blanket of ceramic fiber refractory material to overlie the compressed array as an additional element of the resulting seal.
- 181. The method of claim 180 additionally including the step of providing compression means extending longitudinally, centrally through the compressed array of blocks and interspersed metal members to hold the array compressed so that the resulting assembly can be installed in the trough as a module.
- 182. The method of claim 181 additionally including the step of forming a plurality of said modules, and installing selected ones of said modules in the trough in an end-to-end arrangement to provide a seal in more than said given length of the trough.
- 183. The method of claim 182 additionally including the step of installing blocks of fiber refractory material between adjacent ends of adjacent pairs of the installed modules, and positioning the adjacent ends to compress the installed blocks therebetween.
- 184. The method of claim 182 wherein the step of forming the modules includes the step of forming the modules such that they are of generally straight form, and the step of installing modules includes the step of bending selected modules sufficiently to conform the shape of the selected modules to a curved shape of such trough portions as are to be occupied by the selected modules.
- 185. A method of building a plural stack annealing furnace base in an off-site facility that is removed from a furnace site where the base is to be installed, wherein the facility has a crane of sufficient lift capacity to pick up at least one of each of the heavier base components which include a base support structure, a plurality of cast refractory inner segments, a plurality of cast refractory outer segments, comprising the steps of:
- a) forming a plurality of welded steel base support structures at the off-site facility, with the base support structures being configured to be assemblable side-by-side define a base support for the furnace;
- b) utilizing a crane of the off-site facility to individually lift the welded steel base structures onto flat bed vehicle means parked at the off-site facility;
- c) forming cast refractory base assemblies by installing atop each of the base structures separate associated sets of cast refractory inner segments and separate associated sets of cast refractory outer segments;
- d) moving the flat bed vehicle means from the off-site facility to a furnace location where the cast refractory base assemblies are to be installed;
- e) utilizing a crane at the furnace location to connect with the welded steel base structures to lift the welded steel base structures together with the cast refractory base assemblies formed thereon from the flat bed vehicle means to position the welded steel base structures side-by-side at the furnace location.
- 186. The method of claim 185 additionally including the step of providing and lifting into place additional cast refractory segments that are needed to complete a new cast refractory base assembly at the furnace location.
- 187. The method of claim 185 additionally including the step of providing and installing resilient seal means in upwardly-facing troughs that are defined atop the welded steel base structures at locations between spaced ones of the installed cast refractory segments installed atop the welded steel base structures.
- 188. The method of claim 185 wherein the step of utilizing a crane at the furnace location to connect with the welded steel base structures to lift the welded steel base structures together with the cast refractory base assemblies formed thereon from the flat bed vehicle means includes the step of connecting to the welded steel base structures a lifting fixture is configured to minimize deformation of the welded steel base structures during lifting, and connecting the crane to the lifting fixture to lift the welded steel base structures by lifting the lifting fixture.
- 189. The method of claim 188 additionally including the steps of:
- a) providing upstanding lifting arms affixed to opposite sides of the welded steel base structures at spaced intervals therealong for being connected to the lifting fixture; and,
- b) connecting the lifting fixture to said lifting arms to enable the lifting fixture to lift the welded steel base structures.
- 190. The method of claim 189 additionally including the step of cutting off portions of said lifting arms at a time after the welded steel base structures have been positioned side-by-side at the furnace location.
- 191. A method of carrying out an annealing process in a closed, controlled environment of a plural-stack annealing furnace, comprising the steps of:
- a) providing a plural stack annealing furnace, including the steps of providing a base, providing a plurality of removable, open-bottom inner covers configured to cooperate with the base and to extend upwardly therefrom to define a plurality of side by side treatment chambers within which charges of metal can be simultaneously received and contained for being subjected to an annealing process, providing furnace structure configured to extend about the inner covers to provide heat energy for heating the contents of the treatment chambers during an annealing process, and providing seal means 1) connected to the base, 2) extending perimetrically and continuously about bottom regions of the treatment chambers, and 3) being configured to be compressively engaged by substantially continuous bottom rim portion of the open-bottom inner covers when the inner covers are positioned to cooperate with the base to define said treatment chambers i) for supporting at least a portion of the weight of the inner covers atop the base, and ii) for establishing seals between the base and the inner covers that will permit closed, controlled environments of desired character to be maintained within the treatment chambers during annealing of charges of metal contained therein;
- b) supporting separate charges of metal on the base at locations within each of the treatment chambers for being annealed;
- c) positioning the inner covers to extend about the base-supported charges of metal, with the bottom rim portions of the inner covers compressively engaging the seal means so as to establish seals between the base and the inner covers that isolate the environments of the treatment chambers, with the base and the inner covers cooperating to house the base-supported charges of metal within the isolated environments of the treatment chambers;
- d) heating the base-supported, chamber-housed charges of metal within the isolated environment of the treatment chambers to initiate an annealing process of desired character while maintaining a gas atmosphere of desired character within the treatment chambers, and completing the conduct of the annealing process by continuing to control the treatment chamber environments;
- e) withdrawing the inner covers from compressive engagements with the inner seals and from positions wherein the covers surrounded the charges of annealed metal so that the charges of annealed metal can be removed from atop the base;
- f) wherein the step of providing a base includes the steps of:
- 1) providing inner base structure that defines a plurality of spaced, upwardly facing support surface locations for receiving and supporting the charges of metal that are to be annealed, and that defines about each of said locations an associated outer surface which extends perimetrically about its associated charge support location;
- 2) providing outer base structure that extends about the inner base structure, and that defines a separate substantially continuous inner surface to extends perimetrically about and to face generally toward each of the outer surfaces of the inner base structure at substantially uniform distances therefrom so as to define seal mounting troughs of substantially uniform width that extend continuously about the charge support locations, into which troughs the substantially continuous bottom rim portions of the open-bottom inner covers will extend when the inner cover is positioned to cooperate with the base to define said treatment chamber;
- g) wherein at least a selected one of the steps of providing inner base structure and providing outer base structure includes the step of separately forming a plurality of cast refractory base components, and assembling said cast refractory base components to define major portions of such base structure.
- 192. The method of claim 191 wherein the step of providing seal means additionally includes the steps of providing a plurality of elongate insulation modules that are formed at least in part from fiber refractory material interspersed with sheets of perforated metal, and utilizing the elongate modules in a serial array to define at least a part of said seal means.
CROSS-REFERENCE TO RELATED APPLICATIONS
The present application is a continuation-in-part of each of the following four utility applications of Gary L. Coble, the disclosures of which are incorporated herein by reference:
U-1) CAST REFRACTORY BASE SEGMENTS AND MODULAR FIBER SEAL SYSTEM FOR SINGLE-STACK ANNEALING FURNACE, Ser. No. 08/423,009 filed Apr. 14, 1995, issued Oct. 8, 1996 as U.S. Pat. No. 5,562,879;
U-2) CAST REFRACTORY BASE SEGMENTS AND MODULAR FIBER SEAL, SYSTEM FOR SINGLE-STACK ANNEALING FURNACE, Ser. No. 08/674,996 now U.S. Pat. No. 5,681,525 filed Jul. 3, 1996 as a division of Ser. No. 08/423,009;
U-3) CAST REFRACTORY BASE SEGMENTS AND MODULAR FIBER SEAL SYSTEM FOR PLURAL-STACK ANNEALING FURNACE, Ser. No. 08/423,010 filed Apr. 14, 1995 now U.S. Pat. No. 5,578,264; and,
U-4) CAST REFRACTORY BASE SEGMENTS AND MODULAR FIBER SEAL SYSTEM FOR PLURAL-STACK ANNEALING FURNACE, Ser. No. 08/647,676 now U.S. Pat. No. 5,575,970 filed May 15, 1996 as a division of Ser. No. 08/423,010.
The two utility applications designated "U-1)" and "U-3)" were filed as continuations-in-part of the following seven design applications:
D-1) CAST REFRACTORY CENTER SEGMENT OF ANNEALING FURNACE BASE, Ser. No. 29/032,593 file December 21, 1994, now abandoned;
D-2) CAST REFRACTORY CENTER SEGMENT OF ANNEALING FURNACE BASE, Ser. No. 29/032,592; filed Dec. 21; 1994, issued Jul. 16, 1996 as U.S. Pat. Des. No. 37,837;
D-3) CASE REFRACTORY SIDE SEGMENT OF ANNEALING FURNACE BASE, Ser. No. 29/032,591 filed Dec. 21, 1994, issued Sep. 24, 1996 as U.S. Pat. Des. No. 374,073;
D-4) ASSEMBLY OF CAST REFACTORY SEGMENTS OF ANNEALING FURNACE BASE, Ser. No, 29/032,587 filed Dec. 21, 1994;
D-5) ASSEMBLY OF CAST REFACTORY SEGMENTS OF ANNEALING FURNACE BASE, Ser. No. 29,032,589 filed Dec. 21, 1994, issued Jul. 16, 1996 as Patent-371,836;
D-6) ARCUATE CAST REFRACTORY AND STEEL SEGMENT OF ANNEALING FURNACE BASE, Ser. No. 29/032,590 filed Dec. 21, 1994; now U.S. Pat. Des. No. 382,339 and,
D-7) ASSEMBLY OF ARCUATE CAST REFRACTORY AND STEEL SEGMENTS OF ANNEALING FURNACE BASE, Ser. No. 29/032,588 filed Dec. 21, 1994 issued Sep. 24, 1996 as U.S. Pat. Des. No. 374,072.
The present application also is a continuation-in-part of each of the co-pending design applications designated as "D-3)," "D-4)," "D-6)" and "D-7)" above.
The present application also is a continuation-in-part of each of the following co-pending design applications of Gary L. Coble, the disclosures of which are incorporated herein by reference:
D-8) ASSEMBLY OF CAST REFRACTORY SEGMENTS OF AN ANNEALING FURNACE BASE, Ser. No. 29/051,631 filed Mar. 14, 1996; now abandoned
D-9) ASSEMBLY OF CAST REFRACTORY SEGMENTS OF AN ANNEALING FURNACE BASE, Ser. No. 29/051,620 filed Mar. 14, 1996; now abandoned
D-10) ASSEMBLY OF CAST REFRACTORY SEGMENTS OF AN ANNEALING FURNACE BASE, Ser. No. 29/051,626 filed Mar. 14, 1996;
D-11) ASSEMBLY OF CAST REFRACTORY SEGMENTS OF AN ANNEALING FURNACE BASE, Ser. No. 29/051,616 filed Mar. 14, 1996; now abandoned
D-12) ASSEMBLY OF CAST REFRACTORY SEGMENTS OF AN ANNEALING FURNACE BASE, Ser. No. 29/051,617 filed Mar. 14, 1996; now abandoned
D-13) CAST REFRACTORY CORNER SEGMENT OF AN ANNEALING FURNACE BASE, Ser. No. 29,051,615 filed Mar. 14, 1996; now abandoned
D-14) CAST REFRACTORY SIDE SEGMENT OF AN ANNEALING FURNACE BASE, Ser. No. 29/051,624 filed Mar. 14, 1996; now abandoned
D-15) CAST REFRACTORY SIDE SEGMENT OF AN ANNEALING FURNACE BASE, Ser. No. 29/051,625 filed Mar. 14, 1996; now abandoned and,
D-16) CAST REFRACTORY INNER SEGMENT OF AN ANNEALING FURNACE BASE, Ser. No. 29/051,635 filed Mar. 14, 1996, now abandoned.
The design applications designated above as "D-8)" through "D-16)" were filed as continuations-in-part not only of the utility applications designated above as "U-1)" and "U-3)," but also as continuations-in-part of the design applications designed as "D-1)" through "D-7)."
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