$\require{mediawiki-texvc}$

연합인증

연합인증 가입 기관의 연구자들은 소속기관의 인증정보(ID와 암호)를 이용해 다른 대학, 연구기관, 서비스 공급자의 다양한 온라인 자원과 연구 데이터를 이용할 수 있습니다.

이는 여행자가 자국에서 발행 받은 여권으로 세계 각국을 자유롭게 여행할 수 있는 것과 같습니다.

연합인증으로 이용이 가능한 서비스는 NTIS, DataON, Edison, Kafe, Webinar 등이 있습니다.

한번의 인증절차만으로 연합인증 가입 서비스에 추가 로그인 없이 이용이 가능합니다.

다만, 연합인증을 위해서는 최초 1회만 인증 절차가 필요합니다. (회원이 아닐 경우 회원 가입이 필요합니다.)

연합인증 절차는 다음과 같습니다.

최초이용시에는
ScienceON에 로그인 → 연합인증 서비스 접속 → 로그인 (본인 확인 또는 회원가입) → 서비스 이용

그 이후에는
ScienceON 로그인 → 연합인증 서비스 접속 → 서비스 이용

연합인증을 활용하시면 KISTI가 제공하는 다양한 서비스를 편리하게 이용하실 수 있습니다.

Air/fuel control with on-board emission measurement 원문보기

IPC분류정보
국가/구분 United States(US) Patent 등록
국제특허분류(IPC7판)
  • F01N-003/20
출원번호 US-0288093 (1994-08-09)
발명자 / 주소
  • Hamburg Douglas R. (Bloomfield MI) Cook Jeffrey A. (Dearborn MI) Soltis Richard E. (Redford MI) Logothetis Eleftherios M. (Birmingham MI) Visser Jacobus H. (Southfield MI)
출원인 / 주소
  • Ford Motor Company (Dearborn MI 02)
인용정보 피인용 횟수 : 102  인용 특허 : 0

초록

An engine air/fuel control system (8) and method for controlling an engine (28) coupled to a catalytic converter (50) and for providing a measurement of engine emissions (202-296). Nitrogen oxides concentration, hydrocarbon concentration, and carbon monoxide concentration of exhaust gases downstream

대표청구항

An air/fuel control system for an engine having an exhaust coupled to a catalytic converter, comprising: a first sensor positioned downstream of the converter for providing a first electrical signal related to concentration of nitrogen oxide in the exhaust; a second sensor positioned downstream of t

이 특허를 인용한 특허 (102)

  1. David Karl Bidner ; Gopichandra Sumilla ; Imad Hassan Makki ; James Michael Kerns ; Stephen B. Smith, Air/fuel ratio control responsive to catalyst window locator.
  2. Kumar Sanath V., Apparatus and method for diagnosis of catalyst performance.
  3. Kumar Sanath V., Apparatus and method for diagnosis of catalyst performance.
  4. Kumar Sanath V. ; Heck Ronald M. ; Naber Jeffrey D. ; Chewter Alan ; Price David R., Apparatus and method for diagnosis of catalyst performance.
  5. Stewart,Gregory E.; Shahed,Syed M.; Kolavennu,Soumitri N., Calibration of engine control systems.
  6. Hamburg Douglas Ray ; Logothetis Eleftherios Miltiadis ; Visser Jacobus Hendrik ; Zanini-Fisher Margherita, Catalyst monitoring using a hydrocarbon sensor.
  7. Pfefferle William C., Catalytic method.
  8. Davey Christopher Kirk ; Kluzner Michael Igor ; Jentz Robert Roy ; Jerger Robert Joseph, Catalytic monitoring method.
  9. Farmer, David George; Surnilla, Gopichandra, Closed-loop method and system for purging a vehicle emission control.
  10. Meyer, Garth Michael; Asik, Joseph Richard, Closed-loop temperature control for an emission control device.
  11. Fuxman, Adrian Matias; Pachner, Daniel, Condition-based powertrain control system.
  12. Stewart, Greg; Borrelli, Francesco; Pekar, Jaroslav, Configurable automotive controller.
  13. David Karl Bidner ; Gopichandra Surnilla, Control for improved vehicle performance.
  14. David Karl Bidner ; Gopichandra Surnilla, Control for improved vehicle performance.
  15. Stewart, Greg; Pekar, Jaroslav; Pachner, Daniel, Coordinated engine and emissions control system.
  16. Stewart,Gregory E.; Shahed,Syed M.; Borrelli,Francesco, Coordinated multivariable control of fuel and air in engines.
  17. Bidner, David Karl; Surnilla, Gopichandra, Degradation detection method for an engine having a NOx sensor.
  18. Bidner,David Karl; Surnilla,Gopichandra, Degradation detection method for an engine having a NOx sensor.
  19. Samad,Tariq; Shahed,Syed M.; Lu,Joseph Z.; Stewart,Gregory E.; Ravlena,Vladimir, Distributed control architecture for powertrains.
  20. Shahed,Syed M.; Hampson,Gregory J., EGR system.
  21. Stewart, Gregory E.; Rhodes, Michael L., Emissions sensors for fuel control in engines.
  22. Stewart,Gregory E.; Rhodes,Michael L., Emissions sensors for fuel control in engines.
  23. Pachner, Daniel; Pekar, Jaroslav, Engine and aftertreatment optimization system.
  24. Stewart, Gregory E.; Rhodes, Michael L., Engine controller.
  25. Stewart, Gregory E.; Rhodes, Michael L., Engine controller.
  26. Stewart, Gregory E., Engine exhaust heat exchanger.
  27. Yamashita Yukihiro,JPX, Engine exhaust purification system and method having NOx occluding and reducing catalyst.
  28. Havlena, Vladimir; Lu, Joseph Z.; Shahed, Syed M.; Rhodes, Michael L.; Samad, Tariq, Exhaust catalyst system.
  29. Kolavennu,Soumitri N., Exhaust gas recirculation system.
  30. Young Daniel ; Naber Jeffrey ; Adams Neil ; Balko Edward ; Blosser Patrick ; Hratko Linda ; Koermer Gerald ; Xue Jie ; Moya Adam ; Koripella Chowdary, Exhaust gas sensor.
  31. Mangum, Doug; Yerace, Daniel, Fuel enrichment indicator.
  32. Pachner, Daniel, Identification approach for internal combustion engine mean value models.
  33. Surnilla, Gopichandra; Smith, Stephen B., Idle speed control for lean burn engine with variable-displacement-like characteristic.
  34. Surnilla,Gopichandra; Smith,Stephen B., Idle speed control for lean burn engine with variable-displacement-like characteristic.
  35. Bidner David Karl ; Surnilla Gopichandra, Method and apparatus for accessing ability of lean NOx trap to store exhaust gas constituent.
  36. David Karl Bidner ; Gopichandra Surnilla, Method and apparatus for accessing ability of lean NOx trap to store exhaust gas constituent.
  37. Jones Barbara L.,GBX ; Peter Kenneth W.,GBX ; Hawkins Marcus J.,GBX, Method and apparatus for analyzing catalyst and other systems operations.
  38. Michael John Cullen ; David Karl Bidner ; Gopichandra Surnilla ; Jeffrey Scott Hepburn ; Jerry D. Robichaux, Method and apparatus for controlling lean operation of an internal combustion engine.
  39. Robichaux, Jerry D.; Bidner, David Karl; Surnilla, Gopichandra, Method and apparatus for controlling lean-burn engine based upon predicted performance impact.
  40. David Karl Bidner ; Gopichandra Surnilla, Method and apparatus for controlling lean-burn engine based upon predicted performance impact and trap efficiency.
  41. Surnilla, Gopichandra; Bidner, David K., Method and apparatus for controlling lean-burn engine to purge trap of stored NOx.
  42. Gopichandra Surnilla ; Michael John Cullen, Method and apparatus for enabling lean engine operation upon engine start-up.
  43. Hepburn, Jeffrey Scott; Surnilla, Gopichandra; Robichaux, Jerry D.; Cullen, Michael John, Method and apparatus for enhancing fuel economy of a lean burn internal combustion engine.
  44. Jerry D. Robichaux ; Gopichandra Surnilla ; Jeffrey Scott Hepburn ; Michael John Cullen, Method and apparatus for measuring lean-burn engine emissions.
  45. Surnilla, Gopichandra; Bidner, David Karl, Method and apparatus for measuring the performance of an emissions control device.
  46. David Karl Bidner ; Gopichandra Surnilla, Method and apparatus for optimizing purge fuel for purging emissions control device.
  47. Meyer, Garth Michael; Asik, Joseph Richard, Method and system for controlling a regeneration cycle of an emission control device.
  48. Meyer, Garth Michael; Asik, Joseph Richard, Method and system for controlling an emission control device based on depletion of device storage capacity.
  49. Asik, Joseph Richard; Meyer, Garth Michael, Method and system for controlling storage and release of exhaust gas constituents in an emission control device.
  50. Gopichandra Surnilla ; David George Farmer, Method and system for operating dual-exhaust engine.
  51. Joseph Richard Asik ; Garth Michael Meyer, Method and system for optimizing open-loop fill and purge times for an emission control device.
  52. Meyer, Garth Michael; Asik, Joseph Richard, Method and system for optimizing purge of exhaust gas constituent stored in an emission control device.
  53. Farmer, David George; Surnilla, Gopichandra, Method and system for preconditioning an emission control device for operation about stoichiometry.
  54. Ingram,Grant Alan; Surnilla,Gopichandra, Method and system for rapid heating of an emission control device.
  55. Gopichandra Surnilla ; Jeffrey Scott Hepburn ; Jerry D. Robichaux ; Michael John Cullen, Method and system for reducing NOx tailpipe emissions of a lean-burn internal combustion engine.
  56. Jeffrey Scott Hepburn ; JoAnne Temple ; Mark Allen Dearth, Method and system for reducing lean-burn vehicle emissions using a downstream reductant sensor.
  57. Hepburn, Jeffrey Scott; Temple, JoAnne; Dearth, Mark Allen, Method and system for reducing vehicle emissions using a sensor downstream of an emission control device.
  58. Gopichandra Surnilla ; Jeffrey Scott Hepburn ; Jerry D. Robichaux ; Michael John Cullen, Method and system for reducing vehicle tailpipe emissions when operating lean.
  59. Surnilla, Gopichandra; Farmer, David George, Method and system for transitioning between lean and stoichiometric operation of a lean-burn engine.
  60. Kihas, Dejan, Method and system for updating tuning parameters of a controller.
  61. Kihas, Dejan, Method and system for updating tuning parameters of a controller.
  62. Stewart, Gregory E., Method and system for using a measure of fueling rate in the air side control of an engine.
  63. Stewart,Gregory E., Method and system for using a measure of fueling rate in the air side control of an engine.
  64. Surnilla, Gopichandra, Method and system of adaptive learning for engine exhaust gas sensors.
  65. Surnilla, Gopichandra, Method and system of adaptive learning for engine exhaust gas sensors.
  66. Surnilla, Gopichandra, Method for air-fuel ratio control of a lean burn engine.
  67. Gopichandra, Surnilla, Method for air-fuel ratio sensor diagnosis.
  68. Beer, Johannes; Zhang, Hong, Method for checking a three-way exhaust catalytic converter of an internal-combustion engine.
  69. Bidner,David Karl; Surnilla,Gopichandra, Method for controlling an engine to obtain rapid catalyst heating.
  70. Kato Nobuhide,JPX ; Kurachi Hiroshi,JPX, Method for controlling engine exhaust gas system.
  71. Surnilla,Gopichandra, Method for controlling the temperature of an emission control device.
  72. Surnilla, Gopichandra, Method for controlling transitions between operating modes of an engine for rapid heating of an emission control device.
  73. Surnilla, Gopichandra, Method for controlling transitions between operating modes of an engine for rapid heating of an emission control device.
  74. Bidner, David Karl; Surnilla, Gopichandra, Method for determining emission control system operability.
  75. Surnilla Gopichandra ; Bidner David Karl, Method for improved air-fuel ratio control in engines.
  76. David Karl Bidner ; Gopichandra Surnilla, Method for improved engine control.
  77. Surnilla Gopichandra ; Bidner David Karl, Method for improved performance of a vehicle.
  78. Gopichandra Surnilla ; David Karl Bidner, Method for improved performance of a vehicle having an internal combustion engine.
  79. David Karl Bidner ; Gopichandra Surnilla, Method for improved performance of an engine emission control system.
  80. Surnilla, Gopichandra; Bidner, David Karl, Method for improved vehicle performance.
  81. Gruber, Friedrich; Spyra, Nikolaus; Trapp, Christian; Tinschmann, Georg; Musu, Ettore; Christiner, Peter, Method for operating a compression ignition engine.
  82. Pott, Ekkehard, Method for operating an internal combustion engine.
  83. R철sel,Gerd; Zhang,Hong, Method for purifying exhaust gas of an internal combustion engine.
  84. Meyer, Garth Michael; Asik, Joseph Richard, Method for quantifying oxygen stored in a vehicle emission control device.
  85. Surnilla, Gopichandra, Method for rapid catalyst heating.
  86. Surnilla, Gopichandra, Method for split ignition timing for idle speed control of an engine.
  87. Bidner,David Karl; Sumilla,Gopichandra, Method of determining emission control system operability.
  88. Bidner, David Karl; Surnilla, Gopichandra, Method to control fuel vapor purging.
  89. Surnilla, Gopichandra, Method to control transitions between modes of operation of an engine.
  90. Surnilla, Gopichandra; Michelini, John Ottavio; Roth, John M., Method to improve fuel economy in lean burn engines with variable-displacement-like characteristics.
  91. Surnilla,Gopichandra; Michelini,John Ottavio; Roth,John M., Method to improve fuel economy in lean burn engines with variable-displacement-like characteristics.
  92. Stewart,Gregory E.; Kolavennu,Soumitri N.; Borrelli,Francesco; Hampson,Gregory J.; Shahed,Syed M.; Samad,Tariq; Rhodes,Michael L., Multivariable control for an engine.
  93. David George Farmer ; Gopichandra Surnilla ; Michael John Cullen, Open-loop method and system for controlling the storage and release cycles of an emission control device.
  94. Surnilla, Gopichandra; Roth, John M., Overall scheduling of a lean burn engine system.
  95. Stewart, Gregory; Shahed, Syed M.; Borrelli, Francesco; Hampson, Gregory J., Pedal position and/or pedal change rate for use in control of an engine.
  96. Stewart,Gregory E.; Shahed,Syed M.; Borrelli,Francesco; Hampson,Gregory J., Pedal position and/or pedal change rate for use in control of an engine.
  97. Tamura, Yasuki; Nakayama, Osamu; Koga, Kazuo, Plasma exhaust gas treatment device.
  98. Rhodes, Michael L.; Krafthefer, Brian C.; Kittleson, David B.; Ma, Hogbin, System for particulate matter sensor signal processing.
  99. Rhodes, Michael L.; Krafthefer, Brian C.; Kittleson, David B.; Ma, Hongbin, System for particulate matter sensor signal processing.
  100. Stewart,Gregory E.; Kolavennu,Soumitri N.; Borrelli,Francesco; Hampson,Gregory J.; Shahed,Syed M.; Samad,Tariq; Rhodes,Michael L., Use of sensors in a state observer for a diesel engine.
  101. Pekar, Jaroslav; Stewart, Gregory E., Using model predictive control to optimize variable trajectories and system control.
  102. Markham, Thomas R., Vehicle security module system.
섹션별 컨텐츠 바로가기

AI-Helper ※ AI-Helper는 오픈소스 모델을 사용합니다.

AI-Helper 아이콘
AI-Helper
안녕하세요, AI-Helper입니다. 좌측 "선택된 텍스트"에서 텍스트를 선택하여 요약, 번역, 용어설명을 실행하세요.
※ AI-Helper는 부적절한 답변을 할 수 있습니다.

선택된 텍스트

맨위로