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Electric furnace for melting glass 원문보기

IPC분류정보
국가/구분 United States(US) Patent 등록
국제특허분류(IPC7판)
  • C03B-005/20
  • C03B-005/02
출원번호 US-0216298 (1994-03-23)
우선권정보 FR-0003288 (1993-03-23)
발명자 / 주소
  • Muniz Jose A. C. (Madrid ESX) Goicoechea Luis G. (Aviles ESX) Lemaille Maurice (Douai FRX)
출원인 / 주소
  • Saint-Gobain Vitrage International (Courbevoie FRX 03)
인용정보 피인용 횟수 : 63  인용 특허 : 0

초록

The device for melting glass includes a compartment 1 for melting with a discharge throat 11 defined on top by a mobile carrier 16 having an upper part 18 extending upward above the level of glass and a lower part 17 intended to be totally immersed in the molten glass. Faces of the lower part are fo

대표청구항

A furnace for electric melting of vitrifiable materials, comprising: a compartment having an approximately horizontal floor and an outlet; an electric heating device positioned for heating and melting glass in said compartment, the molten glass including a supernatant composition; and an immersed th

이 특허를 인용한 특허 (63)

  1. Min, Kyoung-Hoon; Im, Ye-Hoon; Moon, Won-Jae; Lee, Ji-Seob, Apparatus for eliminating heterogeneous glass and glass manufacturing apparatus comprising the same.
  2. Huber, Aaron Morgan; Martin, Marlon Keith; Mobley, John Euford, Apparatus, systems and methods for conditioning molten glass.
  3. Huber, Aaron Morgan; Martin, Marlon Keith; Mobley, John Euford, Apparatus, systems and methods for conditioning molten glass.
  4. Huber, Aaron Morgan, Apparatus, systems and methods for processing molten glass.
  5. Charbonneau, Mark William; McHugh, Kevin Patrick, Apparatus, systems and methods for reducing foaming downstream of a submerged combustion melter producing molten glass.
  6. Huber, Aaron Morgan, Apparatus, systems, and methods for pre-heating feedstock to a melter using melter exhaust.
  7. Charbonneau, Mark William, Burner apparatus, submerged combustion melters including the burner, and methods of use.
  8. Charbonneau, Mark William, Burner apparatus, submerged combustion melters including the burner, and methods of use.
  9. Charbonneau, Mark William, Burner apparatus, submerged combustion melters including the burner, and methods of use.
  10. Luka, Michael William; Baker, John Wayne, Burner panels including dry-tip burners, submerged combustion melters, and methods.
  11. Huber, Aaron Morgan, Effective discharge of exhaust from submerged combustion melters and methods.
  12. Hojaji, Hamid; Kocs, Laura, Fluid permeable and vacuumed insulating microspheres and methods of producing the same.
  13. Chenoweth Vaughn Charles, Glass melting apparatus and method.
  14. Chenoweth Vaughn Charles, Glass melting apparatus and method.
  15. Vaughn Charles Chenoweth, Glass melting apparatus and method including exhausting the furnace atmosphere by removal of a heating element.
  16. Hojaji, Hamid; Kocs, Laura Gabriela, Glass microspheres made from a redox active glass.
  17. R��mer,Hildegard; Leister,Michael; Kolberg,Uwe; Mennemann,Karl; R��ke,Guido; Sch��fer,Ernest Walter; N��ttgens,Sybill; Ohmstede,Volker, Method and device for melting glass using an induction-heated crucible with cooled crust.
  18. Bisazza,Giuseppe, Method and electric furnace for melting vitreous materials.
  19. Gross, Andreas; Roemer, Hildegard; Greulich-Hickmann, Norbert; Raeke, Guido; Weidmann, Guenter; Stelle, Thomas; Ohmstede, Volker; Jost, Wolfgang, Method for temperature manipulation of a melt.
  20. Charbonneau, Mark William, Methods and apparatus for recycling glass products using submerged combustion.
  21. Shock, Jeffrey M; Charbonneau, Mark William, Methods and systems for controlling bubble size and bubble decay rate in foamed glass produced by a submerged combustion melter.
  22. Shock, Jeffrey M; Charbonneau, Mark William, Methods and systems for controlling bubble size and bubble decay rate in foamed glass produced by a submerged combustion melter.
  23. Charbonneau, Mark William; Huber, Aaron Morgan, Methods and systems for destabilizing foam in equipment downstream of a submerged combustion melter.
  24. Charbonneau, Mark William; Huber, Aaron Morgan, Methods and systems for destabilizing foam in equipment downstream of a submerged combustion melter.
  25. Charbonneau, Mark William; Huber, Aaron Morgan, Methods and systems for destabilizing foam in equipment downstream of a submerged combustion melter.
  26. Shock, Jeffrey M; Huber, Aaron Morgan, Methods and systems for making well-fined glass using submerged combustion.
  27. Shock, Jeffrey M; Huber, Aaron Morgan, Methods and systems for making well-fined glass using submerged combustion.
  28. McCann, Jonathan; Shock, Jeffrey M; Nesti, Bryan Keith; Mobley, John Euford, Methods and systems for monitoring glass and/or foam density as a function of vertical position within a vessel.
  29. Huber, Aaron Morgan; Faulkinbury, Albert Patrick, Methods of melting feedstock using a submerged combustion melter.
  30. Charbonneau, Mark William; Nesti, Bryan Keith, Methods of using a submerged combustion melter to produce glass products.
  31. Charbonneau, Mark William; Nesti, Bryan Keith, Methods of using a submerged combustion melter to produce glass products.
  32. Hojaji, Hamid; Kocs, Laura Gabriela, Microspheres and methods of making the same.
  33. Tomamoto,Masahiro; Aoki,Shigeaki; Takaya,Tatsuya, Molten glass supply device, glass formed product, and method of producing the glass formed product.
  34. Madeni, Juan Carlos; Baker, John Wayne, Post-manufacturing processes for submerged combustion burner.
  35. Charbonneau, Mark William; McHugh, Kevin Patrick, Process of using a submerged combustion melter to produce hollow glass fiber or solid glass fiber having entrained bubbles, and burners and systems to make such fibers.
  36. Charbonneau, Mark William; McHugh, Kevin Patrick, Process of using a submerged combustion melter to produce hollow glass fiber or solid glass fiber having entrained bubbles, and burners and systems to make such fibers.
  37. Charbonneau, Mark William; McHugh, Kevin Patrick, Process of using a submerged combustion melter to produce hollow glass fiber or solid glass fiber having entrained bubbles, and burners and systems to make such fibers.
  38. Baker, John Wayne; Charbonneau, Mark William, Processing organics and inorganics in a submerged combustion melter.
  39. Chenoweth Vaughn Charles, Side-discharge melter for use in the manufacture of fiberglass.
  40. Hegde, Subray R, Submerged combustion burners.
  41. Cai, Yifang; Huber, Aaron Morgan, Submerged combustion burners and melters, and methods of use.
  42. Hegde, Subray R; Chalasani, Narayana Rao, Submerged combustion burners and melters, and methods of use.
  43. Baker, John Wayne; Huber, Aaron Morgan, Submerged combustion burners, submerged combustion glass melters including the burners, and methods of use.
  44. Huber, Aaron Morgan; Martin, Marlon Keith, Submerged combustion glass manufacturing system and method.
  45. Huber, Aaron Morgan; Martin, Marlon Keith, Submerged combustion glass manufacturing system and method.
  46. Huber, Aaron Morgan; Martin, Marlon Keith, Submerged combustion glass manufacturing system and method.
  47. Baker, John Wayne, Submerged combustion glass melting systems and methods of use.
  48. Mobley, John Euford; Huber, Aaron Morgan; Enright, Ryan Patrick, Submerged combustion melter comprising a melt exit structure designed to minimize impact of mechanical energy, and methods of making molten glass.
  49. Mobley, John Euford; Huber, Aaron Morgan; Enright, Ryan Patrick, Submerged combustion melter comprising a melt exit structure designed to minimize impact of mechanical energy, and methods of making molten glass.
  50. Mobley, John Euford; Huber, Aaron Morgan; Enright, Ryan Patrick, Submerged combustion melter comprising a melt exit structure designed to minimize impact of mechanical energy, and methods of making molten glass.
  51. Faulkinbury, Albert Patrick; Huber, Aaron Morgan, Submerged combustion melters and methods of feeding particulate material into such melters.
  52. Charbonneau, Mark William; McHugh, Kevin Patrick; Huber, Aaron Morgan, Submerged combustion melters having an extended treatment zone and methods of producing molten glass.
  53. Faulkinbury, Albert Patrick, Submerged combustion melters, wall structures or panels of same, and methods of using same.
  54. Charbonneau, Mark William, Submerged combustion melting processes for producing glass and similar materials, and systems for carrying out such processes.
  55. Charbonneau, Mark William, Submerged combustion melting processes for producing glass and similar materials, and systems for carrying out such processes.
  56. Shock, Jeffrey M.; McCann, Jonathan, System for producing molten glasses from glass batches using turbulent submerged combustion melting.
  57. Charbonneau, Mark William; Huber, Aaron Morgan; Shock, Jeffrey M.; Borders, Harley Allen, Systems and methods for glass manufacturing.
  58. Charbonneau, Mark William; Huber, Aaron Morgan; Shock, Jeffrey M; Borders, Harley Allen, Systems and methods for glass manufacturing.
  59. Shock, Jeffrey M.; Huber, Aaron Morgan; Swales, Timothy G., Systems and methods for making foamed glass using submerged combustion.
  60. Shock, Jeffrey M; Huber, Aaron Morgan; Swales, Timothy G, Systems and methods for making foamed glass using submerged combustion.
  61. Shock, Jeffrey M; Huber, Aaron Morgan; Swales, Timothy G, Systems and methods for making foamed glass using submerged combustion.
  62. Baker, John Wayne; Charbonneau, Mark William, Systems and methods for mechanically binding loose scrap.
  63. McCann, Jonathan; Shock, Jeffrey M; Nesti, Bryan Keith; Mobley, John Euford, Systems for monitoring glass and/or glass foam density as a function of vertical position within a vessel.
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