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Archive | 2008

Fuel-Flexible Combustion System for Co-production Plant Applications

Joel Meier Haynes; Justin Thomas Brumberg; Venkatraman Ananthakrishnan Iyer; Jonathan Sebastian Janssen; Ben Lacy; Matt Mosbacher; Craig Russell; Ertan Yilmaz; Williams York; Willy Steve Ziminsky; Tim Lieuwen; Suresh Menon; Jerry Seitzman; Ashok Kumar Anand; Patrick May

Future high-efficiency, low-emission generation plants that produce electric power, transportation fuels, and/or chemicals from fossil fuel feed stocks require a new class of fuel-flexible combustors. In this program, a validated combustor approach was developed which enables single-digit NO{sub x} operation for a future generation plants with low-Btu off gas and allows the flexibility of process-independent backup with natural gas. This combustion technology overcomes the limitations of current syngas gas turbine combustion systems, which are designed on a site-by-site basis, and enable improved future co-generation plant designs. In this capacity, the fuel-flexible combustor enhances the efficiency and productivity of future co-production plants. In task 2, a summary of market requested fuel gas compositions was created and the syngas fuel space was characterized. Additionally, a technology matrix and chemical kinetic models were used to evaluate various combustion technologies and to select two combustor concepts. In task 4 systems analysis of a co-production plant in conjunction with chemical kinetic analysis was performed to determine the desired combustor operating conditions for the burner concepts. Task 5 discusses the experimental evaluation of three syngas capable combustor designs. The hybrid combustor, Prototype-1 utilized a diffusion flame approach for syngas fuels with a lean premixed swirl concept for natural gas fuels for both syngas and natural gas fuels at FA+e gas turbine conditions. The hybrid nozzle was sized to accommodate syngas fuels ranging from {approx}100 to 280 btu/scf and with a diffusion tip geometry optimized for Early Entry Co-generation Plant (EECP) fuel compositions. The swozzle concept utilized existing GE DLN design methodologies to eliminate flow separation and enhance fuel-air mixing. With changing business priorities, a fully premixed natural gas & syngas nozzle, Protoytpe-1N, was also developed later in the program. It did not have the diluent requirements of Prototype-1 and was demonstrated at targeted gas turbine conditions. The TVC combustor, Prototype-2, premixes the syngas with air for low emission performance. The combustor was designed for operation with syngas and no additional diluents. The combustor was successfully operated at targeted gas turbine conditions. Another goal of the program was to advance the status of development tools for syngas systems. In Task 3 a syngas flame evaluation facility was developed. Fundamental data on syngas flame speeds and flame strain were obtained at pressure for a wide range of syngas fuels with preheated air. Several promising reduced order kinetic mechanisms were compared with the results from the evaluation facility. The mechanism with the best agreement was selected for application to syngas combustor modeling studies in Task 6. Prototype-1 was modeled using an advanced LES combustion code. The tools and combustor technology development culminate in a full-scale demonstration of the most promising technology in Task 8. The combustor was operated at engine conditions and evaluated against the various engine performance requirements.


Archive | 2009

Premixed direct injection disk

William David York; Willy Steve Ziminsky; Thomas Edward Johnson; Benjamin Paul Lacy; Baifang Zuo; Jong Ho Uhm


Archive | 2012

Late lean injection with adjustable air splits

Lewis Berkley Davis; Krishna Kumar Venkataraman; Willy Steve Ziminsky; Geoffrey David Myers


Archive | 2006

Methods and apparatus for operating gas turbine engine systems

Charles Evan Steber; Massoud Parisay; Ravindra Annigeri; Willy Steve Ziminsky; John Stephen Henderson


Archive | 2005

Methods and systems for low emission gas turbine energy generation

Eric Motter; Willy Steve Ziminsky; Arthur James Fossum; Robert Joseph Iasillo


Archive | 2004

Methods and apparatus for gas turbine engine lean blowout avoidance

Avinash Vinayak Taware; Minesh Ashok Shah; Ajai Singh; Willy Steve Ziminsky; Pingchuan Wu


Archive | 2005

Systems for low emission gas turbine energy generation

Eric Motter; Willy Steve Ziminsky; Arthur James Fossum; Robert Joseph Iasillo


Archive | 2009

BUNDLED MULTI-TUBE NOZZLE FOR A TURBOMACHINE

Benjamin Paul Lacy; Willy Steve Ziminsky; Thomas Edward Johnson; Baifang Zuo; William David York; Jong Ho Uhm


Archive | 2007

METHODS AND SYSTEMS TO FACILITATE REDUCING NOx EMISSIONS IN COMBUSTION SYSTEMS

Benjamin Paul Lacy; Gilbert Otto Kraemer; Balachandar Varatharajan; Ertan Yilmaz; John Joseph Lipinski; Willy Steve Ziminsky


Archive | 2008

Pre-mixing apparatus for a turbine engine

Benjamin Paul Lacy; Balachandar Varatharajan; Willy Steve Ziminsky; Gilbert Otto Kraemer; Ertan Yilmaz; Patrick Benedict Melton; Baifang Zuo; Christian Xavier Stevenson; David Kenton Felling; Jong Ho Uhm

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