Claims
- 1. In an incinerator system for bulk refuse and hydrocarbon-containing liquids having:
- (1) a main combustion chamber with:
- (a) a first inlet opening for the introduction of solid bulk refuse; and
- (b) a first outlet opening for the egress of the gaseous products of combustion from said main chamber; and
- (2) a reburn unit with:
- (a) a second inlet opening, coupled to and in fluid communication with said first outlet opening;
- (b) a second outlet opening for the egress of the gaseous products of combustion from said reburn unit;
- (c) burner means, coupled to said reburn unit, for burning a fuel in said reburn unit; and
- (d) oxygenating means, coupled to said reburn unit, for introducing an oxygen-containing gas into said reburn unit,
- the improvement wherein:
- (A) said reburn unit includes first and second separate reburn sections;
- (B) said first outlet opening has first and second outlet ports each for permitting the egress of the gaseous products of combustion from said main combustion chamber;
- (C) said second inlet opening has first and second inlet ports, coupled to and in fluid communication with, respectively, said first and second outlet ports, said first and second inlet ports opening into said first and second reburn sections, respectively;
- (D) said second outlet opening includes third and fourth outlet ports from said first and second reburn sections, respectively;
- (E) said burner means includes first and second burner sections, coupled to said first and second reburn sections, respectively, for burning a fuel in said first and second reburn sections, respectively, and
- (F) said oxygenating means includes first and second oxygenating sections, coupled to said first and second reburn sections, respectively, for introducing an oxygen-containing gas into said first and second reburn sections, respectively.
- 2. The improvement of claim 1 further including damper means, coupled between said second outlet port and said second inlet port, for selectively preventing the passage of a fluid from said second outlet port to said second inlet port.
- 3. The improvement of claim 2 wherein said first reburn section includes first and second stages and said second reburn section includes third and fourth stages with said first and third stages including said first and second inlet ports, respectively, and said third and fourth stages include said third and fourth outlet ports, respectively, and said first oxygenating section includes first and second oxygenating stages for introducing said oxygen containing gas into said first and second reburn stages, respectively, and said second oxygenating section includes third and fourth oxygenating stages for introducing oxygen into said third and fourth reburn stages, respectively, and further including first, second, third, and fourth sensing means for determining the temperatures in said first, second, third, and fourth reburn stages, respectively, and first, second, third, and fourth control means, coupled between said first second, third, and fourth sensing means and said first, second, third, and fourth oxygenating stages, respectively, for controlling the amount of said oxygen containing gas introduced into said first, second, third, and fourth reburn stages, respectively, in response to the temperatures determined by said first, second, third, and fourth sensing means.
- 4. The improvement of claim 3 wherein said damper means is a first damper means and further including second damper means, coupled between said first inlet port for selectively preventing the passage of a fluid from said first outlet port to said first inlet port.
- 5. The improvement of claim 4 wherein said main combustion chamber further includes heat removal means for absorbing a portion of the heat energy produced in said main chamber and transporting it to a location away from said main chamber.
- 6. The improvement of claim 2 further including choking means, coupled to said third outlet port for selectively reducing the cross-sectional area of said third outlet port.
- 7. The improvement of claim 6 wherein said oxygenating means is a first oxygenating means and further including (a) second oxygenating means for introducing an oxygen-containing gas into said main chamber and (b) reducing means, coupled to said second oxygenating means and to said damper means, for, when said damper means prevents the passage of a fluid from said second outlet port to said second inlet port, reducing the amount of said oxygen-containing gas introduced into said main chamber.
- 8. The improvement of claim 6 wherein said first reburn section includes first and second stages and said second reburn section includes third and fourth stages with said first and third stages including said first and second inlet ports, respectively, and said third and fourth stages include said third and fourth outlet ports, respectively, and said first oxygenating section includes first and second oxygenating stages for introducing said oxygen containing gas into said first and second reburn stages, respectively, and said second oxygenating section includes third and fourth oxygenating stages for introducing oxygen into said third and fourth reburn stages, respectively; and further including first, second, third, and fourth sensing means for determining the temperatures and said first, second, third, and fourth reburn stages, respectively, and first, second, third, and fourth control means, coupled between said first second, third, and fourth sensing means and said first, second, third, and fourth oxygenating stages, respectively, for controlling the amount of said oxygen containing gas introduced into said first, second, third, and fourth reburn stages, respectively, in response to the temperatures determined by said first, second, third, and fourth sensing means.
- 9. The improvement of claim 8 wherein said choking means is located at the end of said third reburn section.
- 10. The improvement of claim 6 further including (a) sensing means, coupled to said incinerator system, for determining a condition within said incinerator system and (b) choking control means, coupled to said sensing means and to said choking means, for, in response to the condition determined by said sensing means, controlling the amount of cross-sectional area of said third outlet port closed off by said choking means.
- 11. The improvement of claim 10 wherein said sensing means is a temperature sensing means coupled to said first and second reburn sections for determining a temperature in said first and second reburn sections, respectively, and choking control means, coupled to said first and second reburn sections and to said choking means, for, when the temperature sensed by said temperature sensing means falls below a predetermined level, causing said choking means to reduce the cross-sectional area of said third and outlet port.
- 12. The improvement of claim 10 further including steam producing means, coupled to said incinerator system, for utilizing the heat of said system to convert water to steam, and wherein said sensing means is a pressure sensing means coupled to said steam producing means for determining the pressure of steam produced by said steam producing means, and said choking control means couples to said steam sensing means and to said choking means for, when the steam pressure determined by said steam sensing means falls below a predetermined level, reducing the cross-sectional areas of said third and outlet openings respectively.
- 13. The improvement of claim 10 wherein said choking means reduces the size of said third outlet port by blocking off one side of said third outlet port respectively.
- 14. The improvement of claim 10 wherein said choking means is a butterfly choke damper.
- 15. The improvement of claim 10 wherein said choking means can reduce the cross-sectional area of said third outlet port up to 60 percent of the area of said third outlet port.
- 16. The improvement of claim 10 wherein said choking means is a first choking means and further including second choking means, coupled to said fourth outlet port, for selectively reducing the cross-sectional area of said fourth outlet port.
- 17. The improvement of claim 16 wherein said choking control means is a first choking control means and further including second choking control means, coupled to said sensing means and to said second choking means, for, in response to a condition determined by said sensing means, causing said second choking means to reduce the cross-sectional area of said fourth outlet port.
- 18. The improvement of claim 2 further including first and second excitor means placed within, surrounded by, and coupled to said first and second reburn sections, respectively, the majority of the length of said first and second excitor means, in passing from said first and second inlet ports to said third and fourth outlet ports, respectively, being out of contact with the wall of said first and second reburn sections, for reducing the cross-sectional areas of said first and reburn sections on a plain transverse to the paths passing from said first and second inlet ports to said third and fourth outlet ports, respectively.
- 19. The improvement of claim 18 further including nozzles arranged on said first and second excitor means and in fluid communication with said first and second oxygenating sections respectively, and wherein said first and second oxygenating sections couple to said first and second excitor means, respectively, and introduces said oxygenating-containing gas into said first and reburn sections through said nozzles.
- 20. The improvement of claim 19 wherein said first and second oxygenating sections include first and second plenums located on the exterior of said first and second reburn sections, respectively, and said first and second oxygenating sections passes said oxygen-containing gas through said first and second plenums prior to passing it into said first and second reburn sections through said nozzles on said first and second excitor means, respectively.
- 21. The improvement of claim 19 wherein at least a portion of said nozzles on said first and second excitor means introduce said oxygen-containing gas at a non perpendicular angle relative to said paths from said first and second inlet ports to said third and fourth outlet ports, respectively.
- 22. The improvement of claim 21 further including nozzles located on the walls of said first and second reburn sections in fluid communication with said first and second oxygenating sections and wherein said first and second oxygenating sections introduce said oxygen-containing gas into said first and second reburn sections through said nozzles located on said first and second excitor means and through said nozzles located on said walls of said first and second reburn sections.
- 23. The improvement of claim 22 wherein at least a portion of said nozzles on said first and second excitor means introduce said oxygen-containing gas with both a tangential and a radial component of velocity relative to said paths from said first and second inlet ports to said third and fourth outlet ports, respectively.
- 24. The improvement of claim 19 wherein said first and second oxygenating sections introduce said oxygen-containing gas only through said nozzles on said excitor means.
- 25. The improvement of claim 18 wherein the respective distances between said first and second excitor means and the walls of said first and second reburn sections, respectively, at particular locations along the length of said first and second excitor means, or substantially equidistant around said first and second excitor means, respectively.
- 26. The improvement of claim 25 wherein the space between said first and second excitor means and said first and second reburn sections, respectively, are substantially annular.
- 27. The improvement of claim 25 wherein the spaces between said first and second excitor means and said first and second reburn sections near said first and second inlet ports are less than near said third and fourth outlet ports, respectively.
- 28. The improvement of claim 6 further including first and second excitor means placed within, surrounded by, and coupled to said first and second reburn sections, respectively, the majority of the length of said first and second excitor means, in passing from said first and second inlet ports to said third and fourth outlet ports, respectively, being out of contact with the walls of said first and second reburn sections, for reducing the cross-sectional areas of said first and reburn sections on plains transverse to the paths passing from said first and second inlet ports to said third and fourth outlet ports, respectively.
- 29. The improvement of claim 28 further including (a) sensing means, coupled to said incinerator system, for determining a condition within said incinerator system and (b) choking control means, coupled to said sensing means and to said choking means for, in response to the condition determined by said sensing means, controlling the amount of cross-sectional area of said third outlet port closed off by said choking means.
- 30. The improvement of claim 29 wherein said choking control means is a first choking control means and further including second choking control means, coupled to said sensing means and to said second choking means, for, in response to a condition determined by said sensing means, causing said second choking means to reduce the cross-sectional area of said fourth outlet port.
- 31. The improvement of claim 30 further including nozzles arranged on said first and second excitor means and in fluid communication with said first and second oxygenating sections respectively, and wherein said first and second oxygenating sections couple to said first and second excitor means, respectively, and introduces said oxygenating-containing gas into said first and reburn sections through said nozzles.
- 32. The improvement of claim 31 wherein at least a portion of said nozzles on said first and second excitor means introduce said oxygen-containing gas at a non-perpendicular angle relative to said paths from said first and second inlet ports to said third and fourth outlet ports, respectively.
- 33. The improvement of claim 32 wherein at least a portion of said nozzles on said first and second excitor means introduce said oxygen-containing gas with both a tangential and a radial component of velocity relative to said paths from said first and second inlet ports to said third and fourth outlet ports, respectively.
- 34. The improvement of claim 33 wherein the space between said first and second excitor means and said first and second reburn sections near said first and second inlet ports is less than near said third and fourth outlet ports, respectively.
- 35. The improvement of claim 34 wherein further including control means, coupled to said and first and second damper means, for causing said first and second damper means to substantially close said first and second outlet ports, respectively.
- 36. In an incinerator system for bulk refuse and hydrocarbon-containing liquids having:
- (1) a main combustion chamber with:
- (a) a first inlet opening for the introduction of solid bulk refuse; and
- (b) a first outlet opening for the egress of the gaseous products of combustion from said main chamber; and
- (2) a reburn unit with:
- (a) a second inlet opening, coupled to and in fluid communication with said first outlet opening;
- (b) a second outlet opening for the egress of the gaseous products of combustion from said reburn unit;
- (c) burner means, coupled to said reburn unit, for burning a fuel in said reburn unit; and
- (d) oxygenating means, coupled to said reburn unit, for introducing an oxygen-containing gas into said reburn unit, the improvement comprising (A) excitor means placed within, surrounded by, and coupled to said reburn unit, the majority of the length of said excitor means, in passing from said second inlet opening to said second outlet opening, being out of contact with the wall of said reburn unit, for reducing the cross-sectional area of said reburn unit on a plane transverse to the path passing from said second inlet opening to said second outlet opening and (B) a plurality of nozzle means, coupled to, in fluid communications with, and forming part of said oxygenating means, said nozzle means being connected to and arranged on the surface of said excitor means and being for introducing said oxygen-containing gas into the space between the inner surface of said reburn unit and said excitor means at a nonperpendicular angle to said path and with a component of motion in the direction from said second inlet opening to said second outlet opening.
- 37. The improvement of claim 36 further including cooling means, coupled to said excitor means, for reducing the temperature of said excitor means.
- 38. The improvement of claim 37 wherein said cooling means includes a plenum located within said excitor means and wherein said oxygenating means couples to said excitor means and introduces said oxygenating-containing gas into said reburn unit through nozzles arranged on said excitor means.
- 39. The improvement of claim 38 wherein said plenum is a first plenum, said oxygenating means includes a second plenum located on the exterior of said reburn unit, and said oxygenating means passes said oxygen-containing gas through said second plenum and then to said first plenum and then through said nozzles on said excitor means.
- 40. The improvement of claim 39 further including nozzles located on the wall of said reburn unit in fluid communication with said oxygenating means and wherein said oxygenating means introduces said oxygen-containing gas into said reburn unit through said nozzles located on said excitor means and through nozzles located on the wall of said reburn unit.
- 41. The improvement of claim 39 wherein said oxygenating means introduces said oxygen-containing gas only through said nozzles on said excitor means.
- 42. The improvement of claim 41 wherein at least a portion of said nozzles on said excitor means introduce an oxygen-containing gas with both a tangential and a radial component of velocity relative to said path from said second inlet opening to said outlet opening.
- 43. The improvement of claim 42 wherein said nozzles of said portion introduce an oxygen-containing gas at an angel of about 45 degrees relative to said path of said gasses.
- 44. The improvement of claim 43 wherein said nozzles of said portion introduce an oxygen-containing gas into said reburn section at an angle not greater than about 45 degrees relative to radial lines drawn from the center of said excitor means directly to the wall of said reburn unit.
- 45. The improvement of claim 42 wherein the space between said excitor means and the wall of said reburn unit near said inlet opening is less than near said outlet opening.
- 46. The improvement of claim 45 wherein the fluid within said reburn unit has a component of velocity in direction of said path from said second inlet opening to said second outlet opening of not greater than about 55 feet per second.
- 47. The improvement of claim 46 wherein said nozzles on said excitor means are arranged in rows relative to said path from said second inlet opening to said second outlet opening, with the nozzles of a particular one of said rows having a staggard configuration relative to the nozzles on the preceeding row and to the nozzles on the succeeding row.
- 48. The improvement of claim 47 wherein said component of velocity is not greater than about 46 feet per second.
- 49. The improvement of claim 46 wherein said space between said excitor means and said wall of said reburn unit has at least one sharp increase along said path.
- 50. The improvement of claim 46 wherein said space between said excitor means and said wall of said reburn unit increases gradually along at least a portion of said path from said second inlet opening to said second outlet opening.
- 51. The improvement of claim 38 including (a) a first support connected between said excitor means near said second inlet opening and said wall of said reburn unit and (b) a second support connected between said excitor means near said second outlet opening and said wall of said reburn unit, said first and second supports holding said excitor means within said reburn unit and having hollow interior in fluid communication with said plenum in said excitor means and a substantially rectangular cross-section on planes parallel to said path from said second inlet opening to said second outlet opening, and wherein said oxygenating means introduces said oxygen-containing gas to said plenum in said excitor means through said first and second supports.
- 52. The improvement of claim 46 wherein the distance between said excitor means and the wall of said reburn unit at a particular location along the length of said excitor means is substantially equidistant around said excitor means.
- 53. The improvement of claim 52 wherein the space between said excitor means and said reburn unit, is substantially annular.
- 54. The improvement of claim 38 wherein the surface of said excitor means facing said interior of said reburn unit is composed of a material having a thermal conductivity constant k less than about ##EQU3## where k is defined by ##EQU4## where q is the heat conductivity in Btu/hr. through a surface of thickness 1 in inches, area A in square feet, and temperature T in F.
- 55. The improvement of claim 54 wherein at least a portion of said nozzles on said excitor means introduce an oxygen-containing gas with both a tangential and a radial component of velocity relative to said path from said second inlet opening to said second outlet opening.
- 56. The improvement of claim 55 wherein the surface of said excitor means facing said interior is composed of a heat and corrosion resistant material and wherein k is not greater than about 24.
- 57. In an incinerator system for bulk refuse and hydrocarbon-containing liquids having:
- (1) a main combustion chamber with:
- (a) a first inlet opening for the introduction of solid bulk refuse; and
- (b) a first outlet opening for the egress of the gaseous products of combustion from said main chamber; and
- (2) a reburn unit with:
- (a) a second inlet opening, coupled to and in fluid communication with said first outlet opening;
- (b) a second outlet opening for the egress of the gaseous products of combustion from said reburn unit;
- (c) burner means, coupled to said reburn unit, for burning a fuel in said reburn unit; and
- (d) oxygenating means, coupled to said reburn unit, for introducing an oxygen-containing gas into said reburn unit,
- the improvement comprising choking means, coupled to said second outlet opening, for selectively reducing the cross-sectional area of said second outlet opening.
- 58. The improvement of claim 57 wherein said oxygenating means is a first oxygenating means and further including second oxygenating means for introducing an oxygen-containing gas into said main chamber and reducing means, coupled to said second oxygenating means and to said choking means for, when said choking means reduces the cross-sectional area of said second outlet opening, reducing the amount of said oxygen-containing gas introduced into said main chamber.
- 59. The improvement of claim 58 wherein said reburn unit includes first and second stages with said first stage including said second inlet opening, and said second stage including said second outlet opening, and said oxygenating means includes first and second oxygenating stages for introducing said oxygen containing gas into said first and second reburn stages, respectively and further including first and second sensing means for determining the temperatures in said first and second reburn stages, respectively, and first and second control means, coupled between said first and second sensing means and said first and second oxygenating stages for controlling the amount of said oxygen containing gas introduced into said first and second reburn stages, respectively, in response to the temperatures determined by said first and second sensing means.
- 60. The improvement of claim 59 wherein said choking means is located at the end of said second reburn stage.
- 61. The improvement of claim 57 further including (a) sensing means, coupled to said incinerator system, for determining a condition within said incinerator system and (b) choking control means, coupled to said sensing means and to said choking means for, in response to the condition determined by said sensing means, controlling the amount of the cross-sectional area of said second outlet opening closed reduced by said choking means.
- 62. The improvement of claim 61 wherein said temperature sensing means is a temperature sensing means, coupled to said reburn unit, and said choking control means, when the temperature sensed by said temperature sensing means falls below a predetermined level, causes said choking means to reduce the cross-sectional areas of said second outlet opening.
- 63. The improvement of claim 61 further including steam producing means coupled to said incinerator system for utilizing the heat of said system to convert water to steam, and wherein said sensing means is a pressure sensing means, coupled to said steam producing means, for determining the pressure of steam produced by said steam producing means, and said choking control means, when the steam pressure determined by said steam sensing means falls below a predetermined level, causes said choking means to reduce the cross-sectional area of said outlet opening.
- 64. The improvement of claim 61 wherein said choking means reduces the size of said second outlet opening by blocking off one side of said second outlet opening.
- 65. The improvement of claim 61 wherein said choking means is a butterfly choke damper.
- 66. The improvement of claim 61 further including (A) excitor means placed within, surrounded by, and coupled to said reburn unit, the majority of the length of said excitor means, in passing from said second inlet opening to said second outlet opening, being out of contact with the wall of said reburn unit, for reducing the cross-sectional area of said reburn unit on a plane transverse to the path passing from said second inlet opening to said second outlet opening and (B) a plurality of nozzle means, coupled to, in fluid communications with, and forming part of said oxygenating means, said nozzle means being connected to and arranged on the surface of said excitor means and being for introducing said oxygen-containing gas into the space between the inner surface of said reburn unit and said excitor means at a nonperpendicular angle to said path.
- 67. The improvement of claim 66 wherein at least a portion of said nozzles on said excitor means introduce said oxygen-containing gas with both a tangential and a radial component of velocity relative to said path from said second inlet opening to said second outlet opening.
- 68. The improvement of claim 67 further including nozzles located on the wall of said reburn unit in fluid communication with said oxygenating means and wherein said oxygenating means introduces said oxygen-containing gas into said reburn unit through said nozzles located on said excitor means and through said nozzles located on the walls of said reburn unit.
- 69. The improvement of claim 67 wherein said oxygenating means introduces said oxygen-containing gas only through said nozzles on said excitor means.
- 70. The improvement of claim 67 wherein the distance between said excitor means and the wall of said reburn unit at a particular location along the length of said excitor means is substantially equidistant around said excitor means.
- 71. The improvement of claim 70 wherein the space between said excitor means and said reburn unit is substantially annular.
- 72. The improvement of claim 70 wherein said excitor means includes a plenum in fluid communication with said oxygenating means and nozzles on the surface of said excitor means in fluid receive plenum in fluid communication with said plenum and oxygenating means and introduces said oxygenating-containing gas into said reburn unit through said nozzles.
- 73. The improvement of claim 72 wherein said plenum is a first plenum said oxygenating means including a second plenum located on the exterior of said reburn unit and said oxygenating means passes said oxygen-containing gas through said second plenum prior to passing it into said reburn unit through said nozzles on said excitor means.
- 74. The improvement of claim 72 wherein the space between said excitor means and the wall of said reburn unit near said second inlet opening is less than near said second outlet opening.
- 75. The improvement of claim 74 wherein said space between said excitor means and said wall of said reburn unit has at least one sharp increase along said path.
- 76. The improvement of claim 74 wherein said space between said excitor means and said wall of said reburn unit increases gradually along at least a portion of said path from said second inlet opening to said second outlet opening.
- 77. The improvement of claim 72 including (a) a first support connected between said excitor means near said second inlet opening and said wall of said reburn unit and (b) a second support connected between said excitor means near said second outlet opening and said wall of said reburn unit, said first and second supports holding said excitor means within said reburn unit and having hollow interiors in fluid communication with said plenum in said excitor means substantially rectangular cross-section on planes parallel to said path from said second inlet opening to said second outlet opening, and wherein said oxygenating means introduces said oxygen-containing gas to said plenum in said excitor means through said first and second supports.
- 78. The improvement of claim 67 wherein the surface of said excitor means facing said interior is composed of a heat and corrosion resistant material.
- 79. The improvement of claim 78 wherein the surface of said excitor means facing said interior of said reburn unit is composed of a material having a thermal conductivity constant k less than about ##EQU5## where k is defined by ##EQU6## where q is the heat conductivity in Btu/hr. through a surface of thickness in inches, area A in square feet, and temperature T in .degree. F.
- 80. The improvement of claim 79 wherein the fluid within said reburn unit has a component of velocity in the direction of said path from said outlet opening to said second outlet opening of not greater than about 46 feet per second.
- 81. The improvement of claim 67 wherein the surface of said excitor means facing said interior of said reburn unit is composed of a material having a thermal conductivity constant k less than about ##EQU7## where k is defined by ##EQU8## where q is the heat conductivity in Btu/hr. through a surface of thickness 1 in inches, area A in square feet, and temperature T in .degree.F.
- 82. The improvement of claim 81 wherein the fluid within said reburn unit has a component of velocity in the directions of said path from said outlet opening to said second outlet opening of not greater than about 46 feet per second.
- 83. The improvement of claim 66 wherein said choking means can reduce the cross-sectional area of said second outlet openings up to 60 percent of the area of said second outlet opening.
- 84. The improvement of claim 61 wherein said second choking can reduce the cross-sectional area of said second outlet opening up to 60 percent of the area of said second outlet opening.
- 85. In an incinerator system for bulk refuse and hydrocarbon-containing liquids having:
- (1) a main combustion chamber with:
- (a) a first inlet opening for the introduction of solid bulk refuse; and
- (b) a first outlet opening for the egress of the gaseous products of combustion from said main chamber; and
- (2) a reburn unit with:
- (a) a second inlet opening, coupled to and in fluid communication with said first outlet opening;
- (b) a second outlet opening for the egress of the gaseous products of combustion from said reburn unit;
- (c) burner means, coupled to said reburn unit, for burning a fuel in said reburn unit; and
- (d) oxygenating means, coupled to said reburn unit, for introducing an oxygen-containing gas into said reburn unit,
- the improvement (a) comprising excitor means, coupled to, placed within, and surrounded by said reburn unit, the majority of the length of said excitor means, in passing from said second inlet opening to said second outlet opening, being out of contact with the wall of said reburn unit, for reducing the cross-sectional area of the interior of said reburn unit on a plane transverse to the path passing from said second inlet opening to said second outlet opening, the surface of said excitor means facing said interior being composed of a heat and corrosion resistant material, (b) nozzles arranged on said excitor means, said oxygenating means coupling to said oxygenating means and introducing said oxygen-containing gas into said reburn unit through said nozzles, (c) a first support connected between said excitor means near said second inlet opening and said wall of said reburn unit, and (d) a second support connected between said excitor means near said second outlet opening and said wall of said reburn unit, said first and second supports holding said excitor means within said reburn unit and having hollow interiors in fluid communication with said plenum in said excitor means and a substantially rectangular cross-section on planes parallel to said path from said second inlet opening to said second outlet opening, and wherein said oxygenating means introduces said oxygen-containing gas to said excitor means through said first and second supports.
- 86. The improvement of claim 85 further including cooling means, coupled to excitor means, for reducing the temperature of said excitor means.
- 87. The improvement of claim 86 wherein said oxygenating means includes a plenum located on the exterior of said reburn unit and said oxygenating means passes said oxygen-containing gas through said plenum prior to passing it into said reburn unit through said nozzles on said excitor means.
- 88. The improvement of claim 87 wherein said nozzles on said excitor means are arranged in rows relative to said path from said second inlet opening to said second outlet opening with the nozzles of a particular one of said rows having a staggard configuration relative to the nozzles on the preceeding row and to the nozzles on the succeeding row.
- 89. The improvement of claim 87 wherein the distance between said excitor means and the wall of said reburn unit at a particular location along the length of said excitor means is substantially equidistant around said excitor means.
- 90. The improvement of claim 89 wherein said space between said excitor means and said wall of said reburn unit has at least one sharp increase along said path.
- 91. The improvement of claim 89 wherein said space between said excitor means and said wall of said reburn unit increases gradually along at least a portion of said path from said second inlet opening to said second outlet opening.
- 92. The improvement of claim 87 wherein the surface of said excitor means facing said interior of said reburn unit is composed of a material having a thermal conductivity constant k less than about ##EQU9## where k is defined by ##EQU10## where q is the heat conductivity in Btu/hr. through a surface of thickness 1 in inches, area A in square feet, and temperature T in .degree.F.
- 93. The improvement of claim 92 wherein k is not greater than about 24.
- 94. In an incinerator system for bulk refuse and hydrocarbon-containing liquids having:
- (1) a main combustion chamber with:
- (a) a first inlet opening for the introduction of solid bulk refuse; and
- (b) a first outlet opening for the egress of the gaseous products of combustion from said main chamber; and
- (2) a reburn unit with:
- (a) a second inlet opening, coupled to and in fluid communication with said first outlet opening;
- (b) a second outlet opening for the egress of the gaseous products of combustion from said reburn unit;
- (c) burner means, coupled to said reburn unit, for burning a fuel in said reburn unit; and
- (d) oxygenating means, coupled to said reburn unit, for introducing an oxygen-containing gas into said reburn unit,
- the improvement comprising excitor means, coupled to, placed within, and surrounded by said reburn unit, the majority of the length of said excitor means, in passing from said second inlet opening to said second outlet opening, being out of contact with the wall of said reburn unit, for reducing the cross-sectional area of the interior of said reburn unit on a plane transverse to the path passing from said second inlet opening to said second outlet opening, the surface of said excitor means facing said interior being composed of a material having a thermal conductivity constant k less than about ##EQU11## where k is defined by ##EQU12## where q is the heat conductivity in Btu/hr. through a surface of thickness 1 in inches, area A in square feet, and temperature T in .degree.F.
- 95. The improvement of claim 94 further including cooling means, coupled to said excitor means, for reducing the temperature of said excitor means.
- 96. The improvement of claim 95 further including nozzles arranged on said excitor means and in fluid communication with said oxygenating means coupled to nozzles and introducing said oxygenating-containing gas into said reburn unit through said nozzles.
- 97. The improvement of claim 96 wherein said oxygenating means includes a plenum located on the exterior of said reburn unit and said oxygenating means passes said oxygen-containing gas through said plenum prior to passing it into said reburn unit through said nozzles on said excitor means.
- 98. The improvement of claim 97 wherein said nozzles on said excitor means are arranged in rows in said path from said second inlet opening to said second outlet opening with the nozzles of a particular one of set rows having a staggard configuration relative to the nozzles on the preceeding row and to the nozzles on the succeeding row.
- 99. The improvement of claim 97 including (a) a first support connected between said excitor means near said second inlet opening and said wall of said reburn unit and (b) a second support connected between said excitor means near said second outlet opening and said wall of said reburn unit, said first and second supports holding said excitor means within said reburn unit and having hollow interiors in fluid communication with said plenum in said excitor means and a substantially rectangular cross-section on planes parallel to said path from said second inlet opening to said second outlet opening, and wherein said oxygenating means introduces said oxygen-containing gas to said plenum in said excitor means through said first and second supports.
- 100. The improvement of claim 97 wherein the distance between said excitor means and the wall of said reburn unit at a particular location along the length of said excitor means is substantially equidistant around said excitor means.
- 101. The improvement of claim 100 wherein said space between said excitor means and said wall of said reburn unit has at least one sharp increase along said path.
- 102. The improvement of claim 100 wherein said space between said excitor means and said wall of said reburn unit increases gradually along at least a portion of said path from said second inlet opening to said second outlet opening.
- 103. The improvement of claim 97 wherein k is not greater than about 24.
- 104. In a fume burning system for improving the environmental quality of a gaseous fluid emanating from the output of a source and containing combustible hydrocarbons comprising a reburn unit with:
- (1) an inlet opening, coupled to and in fluid communication with said output;
- (2) an outlet opening for the egress of the gaseous products of combustion from said reburn unit;
- (3) burner means, coupled to said reburn unit, for burning a fuel in said reburn unit; and
- (4) oxygenating means, coupled to said reburn unit, for introducing an oxygen-containing gas into said reburn unit,
- the improvement wherein:
- (A) said reburn unit includes first and second separate reburn sections;
- (B) said inlet opening has first and second inlet ports, coupled to and in fluid communication with said output, said first and second inlet ports opening into said first and second reburn sections, respectively;
- (C) said outlet opening includes first and second outlet ports from said first and second reburn sections, respectively;
- (D) said burner means includes first and second burner sections, coupled to said first and second reburn sections, respectively, for burning a fuel in said first and second reburn sections, respectively; and
- (E) said oxygenating means includes first and second oxygenating sections, coupled to said first and second reburn sections, respectively, for introducing an oxygen-containing gas into said first and second reburn sections, respectively.
- 105. The improvement of claim 104 further including damper means, coupled between said output and said second inlet port, for selectively preventing the passage of a fluid from said output to said second inlet port.
- 106. The improvement of claim 105 wherein said first reburn section includes first and second stages and said second reburn section includes third and fourth stages with said first and third stages including said first and second inlet ports, respectively, and said third and fourth stages including said first and second outlet ports, respectively, and said first oxygenating section includes first and second oxygenating stages for introducing said oxygen containing gas into said first and second reburn stages, respectively, and said second oxygenating section including third and fourth oxygenating stages for introducing oxygen into said third and fourth reburn stages, respectively and further including first, second, third, and fourth sensing means for determining the temperatures and said first, second, third, and fourth reburn stages, respectively, and first, second, third and fourth control means, coupled between said first, second, third, and fourth sensing means and said first, second, third, and fourth oxygenating stages, respectively, for controlling the amount of said oxygen containing gas introduced into said first, second, third, and fourth reburn stages, respectively, in response to the temperatures determined by said first, second, third, and fourth sensing means.
- 107. The improvement of claim 106 wherein said damper means and further including second damper means, coupled between said output and first inlet port for selectively preventing the passage of a fluid from said output to said second inlet port.
- 108. The improvement of claim 105 further including choking means, coupled to said first outlet port, for selectively reducing the cross-sectional area of said first outlet port.
- 109. The improvement of claim 108 wherein said first reburn section includes first and second stages and said second reburn section includes third and fourth stages with said first and third stages including said first and second inlet ports, respectively, and said third and fourth stages include said first and second outlet ports, respectively, and said first oxygenating section includes first and second oxygenating stages for introducing said oxygen containing gas into said first and second reburn stages, respectively, and said second oxygenating section includes third and fourth oxygenating stages for introducing oxygen into said third and fourth reburn stages, respectively, and further including first, second, third, and fourth sensing means for determining the temperatures and said first, second, third, and fourth reburn stages, respectively, and first, second, third, and fourth control means, coupled between said first second, third, and fourth sensing means and said first, second, third, and fourth oxygenating stages for controlling the amount of said oxygen containing gas introduced into said first, second, third, and fourth reburn stages, respectively, in response to the temperatures determined by said first, second, third, and fourth sensing means.
- 110. The improvement of claim 109 wherein said choking means is located at the end of said third reburn section.
- 111. The improvement of claim 108 further including (a) sensing means, coupled to said system, for determining a condition within said system and (b) choking control means, coupled to said sensing means and to said choking means for, in response to the condition determined by said sensing means, controlling the amount of cross-sectional area of said first outlet port closed off by said choking means.
- 112. The improvement of claim 111 wherein said sensing means is a temperature sensing means coupled to said first and second reburn sections, for determining a temperature in said first and second reburn sections, respectively, and choking control means, coupled to said first and second reburn sections into said first and second choking means, for, when the temperature sensed by said temperature sensing means falls below a predetermined level, causing said choking means to reduce the cross-sectional areas of said first outlet port.
- 113. The improvement of claim 111 further including steam producing means, coupled to said system, for utilizing the heat of said system to convert water to steam, wherein said sensory means is a pressure sensing means coupled to said steam producing means for determining the pressure of steam produced by said steam producing means, and said choking control means couples to said steam sensing means, and to said first and second choking means for, when the steam pressure determined by said steam sensing means falls below a predetermined level, reducing the cross-sectional areas of said second and first outlet openings respectively.
- 114. The improvement of claim 111 wherein said choking means reduces the size of said first outlet port by blocking off one side of said first outlet port.
- 115. The improvement of claim 111 wherein said choking means is a butterfly choke damper.
- 116. The improvement of claim 111 wherein said choking means can reduce the cross-sectional area of said second second and first outlet port up to 60 percent of the area of said first outlet port.
- 117. The improvement of claim 111 wherein said choking means is a first choking means and further including second choking means, coupled to said second outlet port, for selectively reducing the cross-sectional area of said second outlet port.
- 118. The improvement of claim 117 wherein said choking control means is a first choking control means and further including second choking control means, coupled to said sensing means and to said second choking means, for, in response to a condition determined by said sensing means, causing said second choking means to reduce the cross-sectional area of said second outlet port.
- 119. The improvement of claim 105 further including first and second excitor means placed within, surrounded by, and coupled to said first and second reburn sections, respectively, the majority of the length of said first and second excitor means, in passing from said first and second inlet ports to said first and second outlet ports, respectively, being out of contact with the wall of said first and second reburn sections, for reducing the cross-sectional areas of said first and reburn sections on planes transverse to the paths passing from said first and second inlet ports to said first and second outlet ports, respectively.
- 120. The improvement of claim 119 further including nozzles arranged on said first and second excitor means and in fluid communication with said first and second oxygenating sections respectively and wherein said first and second oxygenating sections couples to said first and second excitor means, respectively, and introduces said oxygenating-containing gas into said first and reburn sections through said nozzles arranged on said first and second excitor means, respectively.
- 121. The improvement of claim 120 wherein said first and second oxygenating sections include first and second plenums located on the exterior of said first and second reburn sections, respectively, and said oxygenating means passes said oxygen-containing gas through said first and second plenums prior to passing it into said first and second reburn sections through said nozzles on said first and second excitor means, respectively.
- 122. The improvement of claim 120 wherein at least a portion of said nozzles on said first and second excitor means introduce said oxygen-containing gas at a nonperpendicular angle relative to said paths from said first and second inlet ports to said first and second outlet ports, respectively.
- 123. The improvement of claim 122 further including nozzles located on the walls of said first and second reburn sections in fluid communication with said first and second oxygenating sections and wherein said first and second oxygenating sections introduce said oxygen-containing gas into said first and second reburn sections through said nozzles located on said first and second excitor means and through said nozzles located on the walls of said first and second reburn sections.
- 124. The improvement of claim 123 wherein at least a portion of said nozzles on said first and second excitor means introduce said oxygen-containing gas with both a tangential and a radial component of velocity relative to said paths from said first and second inlet ports to said first and second outlet ports, respectively.
- 125. The improvement of claim 119 wherein said first and second oxygenating sections introduces said oxygen-containing gas only through said nozzles on said excitor means.
- 126. The improvement of claim 119 wherein the respective distances between said first and second excitor means and the walls of said first and second reburn sections, respectively, at particular locations along the length of said first and second excitor means, are substantially equidistant around said first and second excitor means, respectively.
- 127. The improvement of claim 126 wherein the space between said first and second excitor means and said first and second reburn sections, respectively, are substantially annular.
- 128. The improvement of claim 126 wherein the spaces between said first and second excitor means and said first and second reburn sections near said first and second inlet ports are less than near said first and second outlet ports, respectively.
- 129. The improvement of claim 108 further including first and second excitor means placed within, surrounded by, and coupled to said first and second reburn sections, respectively, the majority of the length of said first and second excitor means, in passing from said first and second inlet ports to said first and second outlet ports, respectively, being out of contact with the walls of said first and second reburn sections, for reducing the cross-sectional areas of said first and reburn sections on plains transverse to the paths passing from said first and second inlet ports to said first and second outlet ports, respectively.
- 130. The improvement of claim 129 further including (a) sensing means, coupled to said system for determining a condition within said system, and (b) choking control means, coupled to said sensing means and to said choking means for, in response to the condition determined by said sensing means, controlling the amount of cross-sectional area of said first outlet port closed off by said choking means.
- 131. The improvement of claim 119 wherein said choking control means is a first choking control means and further including second choking control means, coupled to said sensing means and to said second choking means, for, in response to a condition determined by said sensing means, causing said second choking means to reduce the cross-sectional area of said second outlet port.
- 132. The improvement of claim 131 further including nozzles arranged on said first and second excitor means and in fluid communication with said first and second oxygenating sections respectively and wherein said first and second oxygenating sections couples to said first and second excitor means, respectively, and introduces said oxygenating-containing gas into said first and reburn sections through said nozzles arranged on said first and second excitor means, respectively.
- 133. The improvement of claim 132 wherein at least a portion of said nozzles on said first and second excitor means introduce said oxygen-containing gas at a nonperpendicular angle relative to said paths from said first and second inlet ports to said first and second outlet ports, respectively.
- 134. The improvement of claim 133 wherein at least a portion of said nozzles on said first and second excitor means introduce said oxygen-containing gas with both a tangential and a radial component of velocity relative to said paths from said first and second inlet ports to said first and second outlet ports, respectively.
- 135. The improvement of claim 134 wherein the spaces between said first and second excitor means and said first and second reburn sections near said first and second inlet ports is less than near said first and second outlet ports, respectively.
- 136. The improvement of claim 135 further including control means, coupled to said and first and second damper means for causing said first and second damper means to substantially close said first and second inlet ports, respectively.
- 137. In a fume burning system for improving the environmental quality of a gaseous fluid emanating from the output of a source and containing combustible hydrocarbons comprising a reburn unit with:
- (1) an inlet opening, coupled to and in fluid communication with said output;
- (2) an outlet opening for the egress of the gaseous products of combustion from said reburn unit;
- (3) burner means, coupled to said reburn unit, for burning a fuel in said reburn unit; and
- (4) oxygenating means, coupled to said reburn unit, for introducing an oxygen-containing gas into said reburn unit,
- the improvement comprising:
- (A) excitor means, placed within, surrounded by, and coupled to said reburn unit, the majority of the length of said excitor means, in passing from said inlet opening to said outlet opening, being out of contact with the wall of said reburn unit, for reducing the cross-sectional area of said reburn unit on a plane transverse to the path passing from said inlet opening to said outlet opening; and
- (B) a plurality of nozzle means, coupled to, in fluid communications with, and forming part of said oxygenating means, said nozzle means being connected to and arranged on the surface of said excitor means and being for introducing said oxygen-containing gas into the space between the inner surface of said reburn unit and said excitor means at a nonperpendicular angle to said path and with a component of motion in the direction from said inlet opening to said outlet opening.
- 138. The improvement of claim 137 further including cooling means, coupled to said excitor means, for reducing the temperature of said excitor means.
- 139. The improvement of claim 138 wherein said cooling means includes a plenum located within said excitor means and wherein said oxygenating means couples to said excitor means and introduces said oxygenating-containing gas into said reburn unit through nozzles arranged on said excitor means.
- 140. The improvement of claim 139 wherein said plenum is a first plenum, said oxygenating means includes a second plenum located on the exterior of said reburn unit, and said oxygenating means passes said oxygen-containing gas through said second plenum and then to said first plenum and then through said nozzles on said excitor means.
- 141. The improvement of claim 140 further including nozzles located on the wall of said reburn unit in fluid communication with said oxygenating means and wherein said oxygenating means introduces said oxygen-containing gas into said reburn unit through said nozzles sections located on said excitor means and through nozzles located on the wall of said reburn unit.
- 142. The improvement of claim 140 wherein said oxygenating means introduces said oxygen-containing gas only through said nozzles on said excitor means.
- 143. The improvement of claim 142 wherein at least a portion of said nozzles on said excitor means introduce an oxygen-containing gas with both a tangential and a radial component of velocity relative to said path from said second inlet opening to said outlet opening.
- 144. The improvement of claim 143 wherein said nozzles of said portion introduce an oxygen-containing gas at an angel of about 45 degrees relative to said path of said gasses.
- 145. The improvement of claim 144 wherein said nozzles of said portion introduce an oxygen-containing gas into said reburn section at an angle not greater than about 45 degrees relative to radial lines drawn from the center of said excitor means directly to the wall of said reburn unit.
- 146. The improvement of claim 143 wherein the space between said excitor means and the wall of said reburn unit near said inlet opening is less than near said outlet opening.
- 147. The improvement of claim 146 wherein the fluid within said reburn unit has a component of velocity in direction of said path from said second inlet opening to said second outlet opening of not greater than about 55 feet per second.
- 148. The improvement of claim 147 wherein said nozzles on said excitor means are arranged in rows relative to said path from said second inlet opening to said second outlet opening, with the nozzles of a particular one of said rows having a staggard configuration relative to the nozzles on the preceeding row and to the nozzles on the succeeding row.
- 149. The improvement of claim 148 wherein said component of velocity is not greater than about 46 feet per second.
- 150. The improvement of claim 147 wherein said space between said excitor means and said wall of said reburn unit has at least one sharp increase along said path.
- 151. The improvement of claim 147 wherein said space between said excitor means and said wall of said reburn unit increases gradually along at least a portion of said path from said second inlet opening to said second outlet opening.
- 152. The improvement of claim 139 including (a) a first support connected between said excitor means near said second inlet opening and said wall of said reburn unit and (b) a second support connected between said excitor means near said second outlet opening and said wall of said reburn unit, said first and second supports holding said excitor means within said reburn unit and a having hollow interior in fluid communication with said plenum in said excitor means and a substantially rectangular cross-section on planes parallel to said path from said second inlet opening to said second outlet opening, and wherein said oxygenating means introduces said oxygen-containing gas to said plenum in said excitor means through said first and second supports.
- 153. The improvement of claim 147 wherein the distance between said excitor means and the wall of said reburn unit at a particular location along the length of said excitor means is substantially equidistant around said excitor means.
- 154. The improvement of claim 153 wherein the space between said excitor means and said reburn unit, is substantially annular.
- 155. The improvement of claim 139 wherein the surface of said excitor means facing said interior of said reburn unit is composed of a material having a thermal conductivity constant k less than about ##EQU13## where k is defined by ##EQU14## where q is the heat conductivity in Btu/hr. through a surface of thickness 1 in inches, area A in square feet, and temperature T in .degree.F.
- 156. The improvement of claim 155 wherein at least a portion of said nozzles on said excitor means introduce an oxygen-containing gas with both a tangential and a radial component of velocity relative to said path from said second inlet opening to said second outlet opening.
- 157. The improvement of claim 156 wherein the surface of said excitor means facing said interior is composed of a heat and corrosion resistant material and wherein k is not greater than about 24.
- 158. In a fume burning system for improving the environmental quality of a gaseous fluid emanating from the output of a source and containing combustible hydrocarbons comprising a reburn unit with:
- (1) an inlet opening, coupled to and in fluid communication with said output;
- (2) means forming an outlet opening for the egress of all of the gaseous products of combustion from said reburn unit;
- (3) burner means, coupled to said reburn unit, for burning a fuel in said reburn unit; and
- (4) oxygenating means, coupled to said reburn unit, for introducing an oxygen-containing gas into said reburn unit,
- the improvement comprising choking means, coupled to said outlet opening, for selectively reducing the cross-sectional area of said outlet opening.
- 159. The improvement of claim 158 wherein said choking means can selectively reduce the cross-sectional area of said outlet opening to 60 percent of the maximum cross-sectional area of said outlet opening.
- 160. The improvement of claim 159 wherein said choking means is located at the end of said reburn unit.
- 161. The improvement of claim 158 further including (a) sensing means, coupled to said system, for determining a condition within said system and (b) choking control means, coupled to said sensing means and to said choking means for, in response to the condition determined by said sensing means, controlling the amount of the cross-sectional area of said outlet opening closed reduced by said choking means.
- 162. The improvement of claim 161 wherein said temperature sensing means is a temperature sensing means, coupled to said reburn unit, and said choking control means, when the temperature sensed by said temperature sensing means falls below a predetermined level, causes said choking means to reduce the cross-sectional areas of said outlet opening.
- 163. The improvement of claim 161 further including steam producing means coupled to said system for utilizing the heat of said system to convert water to steam, and wherein said sensing means is a pressure sensing means, coupled to said steam producing means, for determining the pressure of steam produced by said steam producing means, and said choking control means, when the steam pressure determined by said steam sensing means falls below a predetermined level, causes said choking means to reduce the cross-sectional area of said outlet opening.
- 164. The improvement of claim 161 wherein said choking means reduces the size of said outlet opening by blocking off one side of said outlet opening.
- 165. The improvement of claim 161 wherein said choking means is a butterfly choke damper.
- 166. The improvement of claim 161 further including (A) excitor means placed within, surrounded by, and coupled to said reburn unit, the majority of the length of said excitor means, in passing from said inlet opening to said outlet opening, being out of contact with the wall of said reburn unit, for reducing the cross-sectional area of said reburn unit on a plane transverse to the path passing from said inlet opening to said outlet opening and (B) a plurality of nozzle means, coupled to, in fluid communications with, and forming part of said oxygenating means, said nozzle means being connected to and arranged on the surface of said excitor means and being for introducing said oxygen-containing gas into the space between the inner surface of said reburn unit and said excitor means at a nonperpendicular angle to said path.
- 167. The improvement of claim 166 wherein at least a portion of said nozzles on said excitor means introduce said oxygen-containing gas with both a tangential and a radial component of velocity relative to said path from said inlet opening to said outlet opening.
- 168. The improvement of claim 167 further including nozzles located on the wall of said reburn unit in fluid communication with said oxygenating means and wherein said oxygenating means introduces said oxygen-containing gas into said reburn unit through said nozzles located on said excitor means and through said nozzles located on the walls of said reburn unit.
- 169. The improvement of claim 167 wherein said oxygenating means introduces said oxygen-containing gas only through said nozzles on said excitor means.
- 170. The improvement of claim 167 wherein the distance between said excitor means and the wall of said reburn unit at a particular location along the length of said excitor means is substantially equidistant around said excitor means.
- 171. The improvement of claim 170 wherein the space between said excitor means and said reburn unit is substantially annular.
- 172. The improvement of claim 170 wherein said excitor means includes a plenum in fluid communication with said oxygenating means and nozzles on the surface of said excitor means in fluid communication with said plenum and said oxygenating means and introduces said oxygenating-containing gas into said reburn unit through said nozzles.
- 173. The improvement of claim 172 wherein said plenum is a first plenum said oxygenating means includes a second plenum located on the exterior of said reburn unit and said oxygenating means passes said oxygen-containing gas through said second plenum prior to passing it into said reburn unit through said nozzles on said excitor means.
- 174. The improvement of claim 172 wherein the space between said excitor means and the wall of said reburn unit near said inlet opening is less than near said outlet opening.
- 175. The improvement of claim 174 wherein said space between said excitor means and said wall of said reburn unit has at least one sharp increase along said path.
- 176. The improvement of claim 174 wherein said space between said excitor means and said wall of said reburn unit increases gradually along at least a portion of said path from said inlet opening to said outlet opening.
- 177. The improvement of claim 172 including (a) a first support connected between said excitor means near said inlet opening and said wall of said reburn unit and (b) a second support connected between said excitor means near said outlet opening and said wall of said reburn unit, said first and second supports holding said excitor means and being within said reburn unit and having hollow interiors in fluid communication with said plenum in said excitor means substantially rectangular cross-section on planes parallel to said path from said inlet opening to said outlet opening, and wherein said oxygenating means introduces said oxygen-containing gas to said plenum in said excitor means through said first and second supports.
- 178. The improvement of claim 167 wherein the surface of said excitor means facing said interior is composed of a heat and corrosion resistant material.
- 179. The improvement of claim 178 wherein the surface of said excitor means facing said interior of said reburn unit is composed of a material having a thermal conductivity constant k less than about ##EQU15## where k is defined by ##EQU16## where q is the heat conductivity in Btu/hr. through a surface of thickness in inches, area A in square feet, and temperature T in .degree. F.
- 180. The improvement of claim 179 wherein the fluid within said reburn unit has a component of velocity in the direction of said path from said inlet opening to said outlet opening of not greater than about 46 feet per second.
- 181. The improvement of claim 167 wherein the surface of said excitor means facing said interior of said reburn unit is composed of a material having a thermal conductivity constant k less than about ##EQU17## where k is defined by ##EQU18## where q is the heat conductivity in Btu/hr. through a surface of thickness l in inches, area A in square feet, and temperature T in .degree. F.
- 182. The improvement of claim 181 wherein the fluid within said reburn unit has a component of velocity in the direction of said path from said outlet opening to said second outlet opening of not greater than about 46 feet per second.
- 183. The improvement of claim 166 wherein said choking means can reduce the cross-sectional area of said outlet opening up to 60 percent of the area of said outlet opening.
- 184. The improvement of claim 161 wherein said choking means can reduce the cross-sectional area of said second opening up to 60 percent of the area of said outlet opening.
- 185. In a fume burning system for improving the environmental quality of a gaseous fluid emanating from the output of a source and containing combustible hydrocarbons comprising a reburn unit with:
- (1) an inlet opening, coupled to and in fluid communication with said output;
- (2) an outlet opening for the egress of the gaseous products of combustion from said reburn unit;
- (3) burner means, coupled to said reburn unit, for burning a fuel in said reburn unit; and
- (4) oxygenating means, coupled to said reburn unit, for introducing an oxygen-containing gas into said reburn unit,
- the improvement comprising (a) excitor means, coupled to, placed within, and surrounded by said reburn unit, the majority of the length of said excitor means, in passing from said inlet opening to said outlet opening, being out of contact with the wall of said reburn unit, said excitor means being for reducing the cross-sectional area of the interior of said reburn unit on a plane transverse to the path passing from said inlet opening to said outlet opening, the surface of said excitor means facing said interior being composed of a heat and corrosion resistant material, (b) nozzles arranged on said excitor means, said oxygenating means coupling to said oxygenating means and introducing said oxygen-containing gas into said reburn unit through said nozzles, (c) a first support connected between said excitor means near said inlet opening and said wall of said reburn unit, and (d) a second support connected between said excitor means near said outlet opening and said wall of said reburn unit, said first and second supports holding said excitor means within said reburn unit and having hollow interiors in fluid communication with said plenum in said excitor means and a substantially rectangular cross-section on planes parallel to said path from said inlet opening to said outlet opening, and wherein said oxygenating means introduces said oxygen-containing gas to said excitor means through said first and second supports.
- 186. The improvement of claim 185 further including cooling means, coupled to excitor means, for reducing the temperature of said excitor means.
- 187. The improvement of claim 186 wherein said oxygenating means includes a plenum located on the exterior of said reburn unit and said oxygenating means passes said oxygen-containing gas through said plenum prior to passing it into said reburn unit through said nozzles on said excitor means.
- 188. The improvement of claim 187 wherein said nozzles on said excitor means are arranged in rows relative to said path from said inlet opening to said outlet opening with the nozzles of a particular one of said rows having a staggered configuration relative to the nozzles on the preceeding row and to the nozzles on the succeeding row.
- 189. The improvement of claim 187 wherein the distance between said excitor means and said reburn unit at a particular location along the length of said excitor means is substantially equidistant around said excitor means.
- 190. The improvement of claim 189 wherein said space between said excitor means and said wall of said reburn unit has at least one sharp increase along said path.
- 191. The improvement of claim 189 wherein said space between said excitor means and said wall of said reburn unit increases gradually along at least a portion of said path from said second inlet opening to said second outlet opening.
- 192. The improvement of claim 187 wherein the surface of said excitor means facing said interior of said reburn unit is composed of a material having a thermal conductivity constant k less than about ##EQU19## where k is defined by ##EQU20## where q is the heat conductivity in Btu/hr. through a surface of thickness l in inches, area A in square feet, and temperature T in .degree. F.
- 193. The improvement of claim 192 wherein k is not greater than about 24.
- 194. In a fume burning system for improving the environmental quality of a gaseous fluid emanating from the output of a source and containing combustible hydrocarbons comprising a reburn unit with:
- (1) an inlet opening, coupled to and in fluid communication with said output;
- (2) an outlet opening for the egress of the gaseous products of combustion from said reburn unit;
- (3) burner means, coupled to said reburn unit, for burning a fuel in said reburn unit; and
- (4) oxygenating means, coupled to said reburn unit, for introducing an oxygen-containing gas into said reburn unit,
- the improvement comprising excitor means, coupled to, placed within, and surrounded by said reburn unit, the majority of the length of said excitor means, in passing from said inlet opening to said outlet opening being out of contact with the wall of said reburn unit, said excitor means being for reducing the cross-sectional area of the interior of said reburn unit on a plane transverse to the path passing from said inlet opening to said outlet opening, the surface of said excitor means facing said interior and being composed of a material having a thermal conductivity constant k less than ##EQU21## where k is defined by ##EQU22## where q is the heat conductivity in Btu/hr. through a surface of thickness l in inches, area A in square feet, and temperature T in .degree. F.
- 195. The improvement of claim 194 further including cooling means, coupled to said excitor means, for reducing the temperature of said excitor means.
- 196. The improvement of claim 195 further including nozzles arranged on said excitor means and in fluid communications with said oxygenating means when said oxygenating means and introduces said oxygenating-containing gas into said reburn unit through said nozzles.
- 197. The improvement of claim 196 wherein said oxygenating means includes a plenum located on the exterior of said reburn unit and said oxygenating means passes said oxygen-containing gas through said plenum prior to passing it into said reburn unit through said nozzles on said excitor means.
- 198. The improvement of claim 197 wherein said nozzles on said excitor means are arranged in rows in said path from said inlet opening to said outlet opening with the nozzles of a particular one of set rows having a staggard configuration relative to the nozzles on the preceeding row and to the nozzles on the succeeding row.
- 199. The improvement of claim 197 including (a) a first support connected between said excitor means near said inlet opening and said wall of said reburn unit and (b) a second support connected between said excitor means near said outlet opening and said wall of said reburn unit, said first and second supports holding said excitor means within said reburn unit and having hollow interiors in fluid communication with said plenum in said excitor means and a substantially rectangular cross-section on planes parallel to said path from said inlet opening to said outlet opening, and wherein said oxygenating means introduces said oxygen-containing gas to said plenum in said excitor means through said first and second supports.
- 200. The improvement of claim 197 wherein the distance between said excitor means and the wall of said reburn unit at a particular location along the length of said excitor means is substantially equidistant around said excitor means.
- 201. The improvement of claim 200 wherein said space between said excitor means and said wall of said reburn unit has at least one sharp increase along said path.
- 202. The improvement of claim 200 wherein said space between said excitor means and said wall of said reburn unit increases gradually along at least a portion of said path from said second inlet opening to said second outlet opening.
- 203. The improvement of claim 197 wherein k is not greater than about 24.
- 204. A method of incinerating refuse which comprises:
- (A) placing bulk refuse through a first inlet opening into a main incinerator chamber;
- (B) burning said bulk refuse to produce gaseous combustion products;
- (C) passing the gaseous combustion products out of said main combustion chamber through a first outlet opening and directly into (a) a second inlet opening of a first reburn section and (b) a third inlet opening of a second reburn section;
- (D) burning a fuel in said first and second reburn sections;
- (E) introducing an amount of an oxygen-containing gas into said first and second reburn sections;
- (F) passing the gaseous combustion products out of said first and second reburn sections through second and third outlet openings respectively.
- 205. The method of claim 204 further including closing off one of said reburn sections.
- 206. The method of claim 205 wherein said first reburn stages is composed of first and second reburn stages and said second reburn section is composed of third and fourth reburn stages with said first and third reburn stages being adjacent to said second and third inlet openings and said second and fourth reburn stages being adjacent to said second and third outlet openings and further including measuring first and second temperatures within or near proximity to the interiors of said first and third reburn stages, respectively, burning greater amounts of said fuel in said first and third reburn chambers when said first and second temperatures are below first and second predetermined set points, respectively, and lesser amounts when said first and second temperatures are above said first and second set points, respectively, measuring third and fourth temperatures within or near proximity to the interior of said first and third reburn stages, increasing the amounts of said oxygen-containing gas introduced into said first and third reburn stages when said third and fourth temperatures are above third and fourth predetermined set points, respectively, and lesser amounts of said oxygen-containing gas when said third and fourth temperatures are below said third and fourth set points, respectively, measuring fifth and sixth temperatures within or in near proximity to the interiors of said second and fourth reburn stages, and introducing a greater amount of said oxygen-containing gas into said second and fourth reburn stages when said fifth and sixth temperatures are above fifth and sixth set points, respectively, and reducing the amount of said oxygen-containing gas introduced into said second and fourth reburn stages when said fifth and sixth temperatures are below said fifth and sixth predetermined set points, respectively.
- 207. The method of claim 206 further including sensing a condition within said first or second reburn sections and, in response to said condition sensed, opening or closing said third inlet opening.
- 208. The method of claim 207 further including removing heat energy from said main chamber and transporting it in a form useful to another location.
- 209. The method of claim 205 further including closing off at least a portion of said third outlet opening.
- 210. The method of claim 209 further including introducing an oxygen-containing gas into said main chamber, sensing a condition in the incinerator system composed of said main chamber and said first and second reburn sections, and changing the amount of said oxygen-containing gas introduced into said main chamber dependent upon said sensed determined in said system.
- 211. The method of claim 209 wherein said first reburn stages is composed of first and second reburn stages and said second reburn section is composed of third and fourth reburn stages with said first and third reburn stages being adjacent to said second and third inlet openings and said second and fourth reburn stages being adjacent to said second and third outlet openings and further including measuring first and second temperatures within or near proximity to the interiors of said first and third reburn stages, respectively, burning greater amounts of said fuel in said first and third reburn chambers when said first and second temperatures are below first and second predetermined set points, respectively, and lesser amounts when said first and second temperatures are above said first and second set points, respectively, measuring third and fourth temperatures within or near proximity to the interior of said first and third reburn stages, increasing the amounts of said oxygen-containing gas introduced into said first and third reburn stages when said third and fourth temperatures are above third and fourth predetermined set points, respectively, and lesser amounts of said oxygen-containing gas when said third and fourth temperatures are below said third and fourth set points, respectively, measuring fifth and sixth temperatures within or in near proximity to the interiors of said second and fourth reburn stages, and introducing a greater amount of said oxygen-containing gas into said second and fourth reburn stages when said fifth and sixth temperatures are above fifth and sixth set points, respectively, and reducing the amount of said oxygen-containing gas introduced into said second and fourth reburn stages when said fifth and sixth temperatures are below said fifth and sixth predetermined set points, respectively.
- 212. The method of claim 211 further including reducing the cross-sectional area of said third outlet opening.
- 213. The method of claim 209 further including sensing a condition in the system comprising said main chamber and said first and second reburn sections and, in response to said condition sensed in said system, changing the amount of the cross-sectional area of said third outlet opening closed off.
- 214. The method of claim 213 wherein said condition determined in said system is the temperature of said first and second reburn sections and, once said temperature falls below a predetermined value, said third inlet opening is closed and, once said temperature raises above said predetermined value, said third inlet opening is opened.
- 215. The method of claim 213 including closing off at least about 60 percent of at least one of said second or said third outlet openings.
- 216. The method of claim 213 further including closing off at least a portion of both said second and said third outlet openings.
- 217. The method of claim 205 wherein said fumes, after being passed into said second and third inlet openings of said first and second reburn sections, are passed around, respectively, first and second excitor means placed within, surrounded by, and coupled to said first and second reburn sections, respectively, the majority of the lengths of said first and second excitor means, in passing from said second and third inlet openings to said second and third outlet openings, respectively, being out of contact with the walls of said first and second reburn sections, respectively.
- 218. The method of claim 217 wherein said oxygen-containing gas is introduced into said first and second reburn sections through said first and second excitor means, respectively.
- 219. The method of claim 218 wherein said oxygen-containing gas, before being introduced into said first and second excitor means, is passed around the exterior of said first and second reburn sections, respectively.
- 220. The method of claim 218 wherein said oxygen-containing gas is introduced into said first and second reburn sections at an angle that is nonperpendicular to the path from said second and third inlet openings to said second and third outlet openings, respectively.
- 221. The method of claim 220 wherein said oxygen-containing gas is introduced into said first and second reburn sections with a nonzero tangetial component of velocity relative to said paths in said first and second reburn sections, respectively.
- 222. The method of claim 209 wherein said fumes, after being passed into said second and third inlet openings of said first and second reburn sections, are passed around, respectively, first and second excitor means placed within, surrounded by, and coupled to said first and second reburn sections, respectively, the majority of the length of said first and second excitor means, in passing from said second and third said inlet openings to said second and third outlet openings, respectively, being out of contact with the walls of said first and second reburn sections, respectively.
- 223. The method of claim 222 further including sensing a condition in the system comprising said main chamber and said first and second reburn sections and, in response to said condition determined in said system, changing the amount of the cross-sectional area of said third outlet opening closed off.
- 224. The method of claim 223 wherein said oxygen-containing gas is introduced into said first and second reburn sections through first and second excitor means placed in the interior of said first and second reburn sections, respectively.
- 225. The method of claim 224 wherein said oxygen-containing gas is introduced into said first and second reburn sections at an angle that is nonperpendicular to the path from said second and third inlet openings to said second and third outlet openings, respectively.
- 226. The method of claim 225 wherein said oxygen-containing gas is introduced into said first and second reburn sections with a nonzero tangential component of velocity relative to said paths in said first and second reburn sections, respectively.
- 227. The method of claim 226 further including sensing a condition within said first or second reburn units and, in response to said condition sensed, opening or closing said third inlet opening.
- 228. A method of incinerating refuse which comprises:
- (A) placing bulk refuse through a first inlet opening into a main incinerator chamber;
- (B) burning said bulk refuse to produce gaseous combustion products;
- (C) passing the gaseous combustion products out of said main combustion chamber through a first outlet opening and directly into a second inlet opening of a reburn unit;
- (D) while in said reburn unit, passing said gaseous combustion products around an excitor placed within, surrounded by, and coupled to said reburn unit with the majority of the length of said excitor, in passing from said second inlet opening to a second outlet opening, through which the gaseous combustion products can egress from said reburn unit, being out of contact with the wall of said reburn unit;
- (E) burning a fuel in said reburn unit;
- (F) introducing into the space between the inner surface of said reburn unit and said excitor at a nonperpendicular angle to the direction of flow of gas through said space and with a component of motion in the direction from said second inlet opening to said second outlet opening an amount of an oxygen-containing gas into said reburn unit through a plurality of nozzles connected to and arranged on the surface of said excitor;
- (G) passing the gaseous combustion products out of said reburn unit through said second outlet opening.
- 229. The method of claim 228 further including cooling said excitor means.
- 230. The method of claim 229 wherein said oxygen-containing gas is introduced into said first and second reburn unit through said excitor means.
- 231. The method of claim 230 wherein said oxygen-containing gas, before being introduced into said reburn unit through said excitor means, is passed around the exterior of said reburn unit.
- 232. The method of claim 231 wherein said oxygen-containing gas is introduced into said reburn sections with a nonzero tangential component of velocity relative to said path in said reburn unit.
- 233. The method of claim 230 wherein said oxygen-containing gas is introduced into said reburn unit with a nonzero tangential component of velocity relative to said path in said reburn unit.
- 234. A method of incinerating refuse which comprises:
- (A) placing bulk refuse through a first inlet opening into a main incinerator chamber;
- (B) burning said bulk refuse to produce gaseous combustion products;
- (C) passing the gaseous combustion products out of said main combustion chamber through a first outlet opening and directly into a second inlet opening of a reburn unit;
- (D) burning a fuel in said reburn unit;
- (E) introducing an amount of an oxygen-containing gas into said reburn unit;
- (F) passing all of the gaseous combustion products out of said reburn unit through a second outlet opening; and
- (G) selectively reducing the cross-sectional area of said second outlet opening.
- 235. The method of claim 234 further including introducing an oxygen-containing gas into said main chamber, sensing a condition in the incinerator system composed of said main chamber and said reburn unit, and changing the amount of said oxygen-containing gas introduced into said main chamber dependent upon said condition sensed in said system.
- 236. The method of claim 235 wherein said reburn unit is composed of first and second reburn stages with said first reburn stage being adjacent to said second inlet opening and said second reburn stage being adjacent to said second outlet opening and further including measuring a first temperature within or near proximity to the interior of said first reburn stage, burning a greater amount of said fuel in said first reburn stage when said first temperature is below a first predetermined set point and a less amount when said first temperature is above said first set point, measuring a second temperature within or near proximity to the interior of said first reburn stage, increasing the amount of said oxygen-containing gas introduced into said first reburn stage, when said second temperature is above a second predetermined set point and a lesser amount of said oxygen-containing gas when said temperature is below said second predetermined set point, measuring a third temperature within or in near proximity to the interior of said second reburn stage; and introducing a greater amount of said oxygen-containing gas into said second reburn stage when said third temperature is above a third predetermined set point and reducing the amount of said oxygen-containing gas introduced into said second reburn stage when said third temperature is below said third set point.
- 237. The method of claim 236 further including reducing the cross-sectional area of said second outlet opening.
- 238. The method of claim 237 further including sensing a condition in the system comprising said main chamber and said reburn unit and, in response to said condition determined with said system, changing the amount of the cross-sectional area of said second outlet opening closed off.
- 239. The method of claim 238 wherein said oxygen-containing gas is introduced into said reburn unit at an angle that is nonperpendicular to the path from said second inlet opening to said second outlet opening.
- 240. The method of claim 239 wherein said oxygen-containing gas is introduced into said reburn unit with a nonzero tangential component of velocity relative to said path in said reburn unit.
- 241. The method of claim 240 wherein said oxygen-containing gas is introduced into said reburn unit through an excitor means placed in the interior of said reburn unit.
- 242. The method of claim 241 wherein said oxygen-containing gas, before being introduced into said excitor means, is passed around the exterior of said reburn unit.
- 243. The method of claim 239 including closing off at least about 60 percent of said second outlet opening.
- 244. The method of claim 238 including closing off at least about 60 percent of said second outlet openings.
- 245. A method of burning fumes emanating from the output of a source comprising:
- (A) passing said fumes from said output directly into a inlet opening of a first reburn section and a second inlet opening of a second reburn section;
- (B) burning a fuel in said first and second reburn sections;
- (C) introducing an amount of an oxygen-containing gas into said first and second reburn sections; and
- (D) passing the gaseous combustion products out of said first and second reburn sections through first and second outlet openings, respectively.
- 246. The method of claim 245 further including closing off one of said reburn sections.
- 247. The method of claim 246 wherein said first reburn stages is composed of first and second reburn stages and said second reburn section is composed of third and fourth reburn stages with said first and third reburn stages being adjacent to said second and third inlet openings and said second and fourth reburn stages being adjacent to said second and third outlet openings and further including measuring first and second temperatures within or near proximity to the interiors of said first and third reburn stages, respectively, burning greater amounts of said fuel in said first and third reburn chambers when said first and second temperatures are below first and second predetermined set points, respectively, and lesser amounts when said first and second temperatures are above said first and second set points, respectively, measuring third and fourth temperatures within or near proximity to the interior of said first and third reburn stages, increasing the amounts of said oxygen-containing gas introduced into said first and third reburn stages when said third and fourth temperatures are above third and fourth predetermined set points, respectively, and lesser amounts of said oxygen-containing gas when said third and fourth temperatures are below said third and fourth set points, respectively, measuring fifth and sixth temperatures within or in near proximity to the interiors of said second and fourth reburn stages, and introducing a greater amount of said oxygen-containing gas into said second and fourth reburn stages when said fifth and sixth temperatures are above fifth and sixth set points, respectively, and reducing the amount of said oxygen-containing gas introduced into said second and fourth reburn stages when said fifth and sixth temperatures are below said fifth and sixth predetermined set points, respectively.
- 248. The method of claim 247 further including sensing a condition within said first or second reburn sections and, in response to said condition sensed opening or closing said second inlet opening.
- 249. The method of claim 246 further including closing off at least a portion of said second outlet opening.
- 250. The method of claim 249 wherein said first reburn stages is composed of first and second reburn stages and said second reburn section is composed of third and fourth reburn stages with said first and third reburn stages being adjacent to said second and third inlet openings and said second and fourth reburn stages being adjacent to said second and third outlet openings and further including measuring first and second temperatures within or near proximity to the interiors of said first and third reburn stages, respectively, burning greater amounts of said fuel in said first and third reburn chambers when said first and second temperatures are below first and second predetermined set points, respectively, and lesser amounts when said first and second temperatures are above said first and second set points, respectively, measuring third and fourth temperatures within or near proximity to the interior of said first and third reburn stages, increasing the amounts of said oxygen-containing gas introduced into said first and third reburn stages when said third and fourth temperatures are above third and fourth predetermined set points, respectively, and lesser amounts of said oxygen-containing gas when said third and fourth temperatures are below said third and fourth set points, respectively, measuring fifth and sixth temperatures within or in near proximity to the interiors of said second and fourth reburn stages, and introducing a greater amount of said oxygen-containing gas into said second and fourth reburn stages when said fifth and sixth temperatures are above fifth and sixth set points, respectively, and reducing the amount of said oxygen-containing gas introduced into said second and fourth reburn stages when said fifth and sixth temperatures are below said fifth and sixth predetermined set points, respectively.
- 251. The method of claim 250 further including reducing the cross-sectional area of said second outlet opening.
- 252. The method of claim 251 further including sensing a condition in the system comprising said first and second reburn sections and, in response to said condition sensed in said system, changing the amount of the cross-sectional area of said second outlet opening closed off.
- 253. The method of claim 252 wherein said condition determined in said system is the temperature of said first and second reburn sections and, once said temperature falls below a predetermined value, said second inlet opening is closed and, once said temperature raises above said predetermined value said second inlet opening is opened.
- 254. The method of claim 252 including closing off at least about 60 percent of at least one of said first or said second outlet openings.
- 255. The method of claim 252 further including closing off at least a portion of both said first and second outlet openings.
- 256. The method of claim 245 wherein, said fumes, after being passed into said first and second inlet openings of said first and second reburn sections, are passed around, respectively, first and second excitor means placed within, surrounded by, and coupled to said first and second reburn sections, respectively, the majority of the length of said first and second excitor means, in passing from said first and second said inlet openings to said first and second second outlet openings, respectively, being out of contact with the walls of said first and second reburn sections, respectively.
- 257. The method of claim 256 wherein said oxygen-containing gas is introduced into said first and second reburn sections through said first and second excitor means, respectively.
- 258. The method of claim 257 wherein said oxygen-containing gas, before being introduced into said first and second excitor means, is passed around the exterior of said first and second reburn sections, respectively.
- 259. The method of claim 257 wherein said oxygen-containing gas is introduced into said first and second reburn sections at an angle that is nonperpendicular to the path from said first and second inlet openings to said first and second outlet openings, respectively.
- 260. The method of claim 259 wherein said oxygen-containing gas is introduced into said first and second reburn sections with a nonzero tangential component of velocity relative to said paths in said first and second reburn sections, respectively.
- 261. The method of claim 246 wherein said fumes after being passed into said first and second inlet openings of said first and second reburn sections, are passed around, respectively, first and second excitor means placed within, surrounded by, and coupled to said first and second reburn sections, respectively, the majority of the length of said first and second excitor means, in passing from said first and second said inlet openings to said first and second outlet openings, respectively, being out of contact with the walls of said first and second reburn sections, respectively.
- 262. The method of claim 261 further including sensing a condition in the system comprising said first and second reburn units and, in response to said condition sensed in said system, changing the amount of the cross-sectional area of said second outlet opening closed off.
- 263. The method of claim 262 wherein said oxygen-containing gas is introduced into said first and second reburn sections through said first and second excitor means, respectively.
- 264. A method of burning fumes emanating from the output of a source comprising:
- (A) passing said fumes from said output directly into an inlet opening of a reburn unit;
- (B) while in said reburn unit, passing said fumes around an excitor placed within, surrounded by, and coupled to said reburn unit with the majority of the length of said excitor, in passing from said inlet opening to an outlet opening through which the gaseous combustion products can egress from said reburn unit, being out of contact with the wall of said reburn unit;
- (C) burning a fuel in said reburn unit;
- (D) introducing into the space between the inner surface of said reburn unit and said excitor at a nonperpendicular angle to the path of the flow of gas through said space and with a component of motion in the direction from said inlet opening to said outlet opening an amount of an oxygen-containing gas into said reburn unit through a first plurality of nozzles connected to and arranged on the surface of said excitor; and
- (E) passing the gaseous combustion products out of said reburn unit.
- 265. The method of claim 264 further including cooling said excitor means.
- 266. The method of claim 265 wherein said oxygen-containing gas is introduced into said reburn unit through said excitor means.
- 267. The method of claim 266 wherein said oxygen-containing gas, before being introduced into said reburn unit through said excitor means, is passed around the exterior of said reburn unit.
- 268. The method of claim 267 wherein said oxygen-containing gas is introduced into said reburn unit with a nonzero tangential component of velocity relative to said path in said reburn unit.
- 269. The method of claim 266 wherein said oxygen-containing gas is introduced into said reburn unit with a nonzero tangential component of velocity relative to said path in said reburn unit.
- 270. A method of burning fumes emanating from the output of a source comprising:
- (A) passing said fumes from said output directly into an inlet opening of a reburn unit;
- (D) burning a fuel in said reburn unit;
- (E) introducing an amount of an oxygen-containing gas into said reburn unit;
- (F) passing all of the gaseous combustion products out of said reburn unit through an outlet opening; and
- (G) selectively reducing the cross-sectional area of said outlet opening.
- 271. The method of claim 270 wherein said reburn unit is composed of first and second reburn stages with said first reburn stage being adjacent to said inlet opening and said second reburn stage being adjacent to said outlet opening and further including measuring a first temperature within or near proximity to the interior of said first reburn stage, burning a greater amount of said fuel in said first reburn stage when said first temperature is below a first predetermined set point and a less amount when said first temperature is above said first set point, measuring a second temperature within or near proximity to the interior of said first reburn stage, increasing the amount of said oxygen-containing gas introduced into said first reburn stage when said second temperature is above a second predetermined set point and a lesser amount of said oxygen-containing gas when said temperature is below said second predetermined set point, measuring a third temperature within or in near proximity to the interior of said second reburn stage, and introducing a greater amount of said oxygen-containing gas into said second reburn stage when said third temperature is above a third predetermined set point and reducing the amount of said oxygen-containing gas introduced into said second reburn stage when said third temperature is below said third set point.
- 272. The method of claim 271 further including reducing the cross-sectional area of said outlet opening.
- 273. The method of claim 272 further including sensing a condition in said reburn unit and, in response to said condition determined with said unit, changing the amount of the cross-sectional area of said outlet opening closed off.
- 274. The method of claim 273 wherein said oxygen-containing gas is introduced into said reburn unit at an angle that is nonperpendicular to the path from said inlet opening to said outlet opening.
- 275. The method of claim 274 wherein said oxygen-containing gas is introduced into said reburn unit with a nonzero tangential component of velocity relative to said path in said reburn unit.
- 276. The method of claim 275 wherein said oxygen-containing gas is introduced into said reburn unit through an excitor means placed in the interior of said reburn unit.
- 277. The method of claim 276 wherein said oxygen-containing gas, before being introduced into said excitor means, is passed around the exterior of said reburn unit.
- 278. The method of claim 274 including closing off at least about 60 percent of said second outlet opening.
- 279. The method of claim 273 including closing off at least about 60 percent of said second outlet opening.
CROSS-REFERENCE TO RELATED APPLICATIONS
The present application constitutes a continuation-in-part of U.S. patent application Ser. No. 659,849 filed Oct. 9, 1984, U.S. Pat. No. 4,706,578 which itself represents a continuation of U.S. patent application Ser. No. 362,853 filed Mar. 29, 1982, now U.S. Pat. No. 4,475,469, which in turn constitutes a continuation-in-part of U.S. patent application Ser. No. 248,054 filed Mar. 27, 1981, now U.S. Pat. No. 4,438,705.
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Continuations (1)
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Number |
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362853 |
Mar 1982 |
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Continuation in Parts (2)
|
Number |
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659849 |
Oct 1984 |
|
Parent |
248054 |
Mar 1981 |
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