首页> 外文会议>2003 ASME(American Society of Mechanical Engineers) Turbo Expo; Jun 16-19, 2003; Atlanta, Georgia >THE IMPACT OF FUEL FLEXIBLE GAS TURBINE CONTROL SYSTEMS ON INTEGRATED GASIFICATION COMBINED CYCLE PERFORMANCE
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THE IMPACT OF FUEL FLEXIBLE GAS TURBINE CONTROL SYSTEMS ON INTEGRATED GASIFICATION COMBINED CYCLE PERFORMANCE

机译:燃油柔性燃气轮机控制系统对综合气化联合循环性能的影响

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Interest in Integrated Gasification Combined Cycle (IGCC) is developing from a need for fuel diversification as a hedge for natural gas price and availability. In IGCC, the gas turbine combustion system is critical to meeting this need. The combustion system also needs to achieve superior environmental performance. This paper discusses specific requirements for IGCC combustion systems that derive from characteristics of gasification fuels and integration with the gasification process. Tradeoffs between system physical design parameters and control strategies must be evaluated in terms of overall functionality of the IGGC process. The key metrics for evaluating "goodness" of design are reliability, availability, maintainability (RAM), robustness to process variability, response to upsets and trips, time to synchronization and startup and shutdown automation. For IGCC, high availability is achieved from the capability of the turbine to robustly co-fire low-calorific synthesis gas with supplementary fuels. Co-firing compensates for shortfalls in gasifier output and maintains continuity of power service during servicing of the gasification plant. Controls need to provide seamless transfers between varying levels of syngas and supplementary fuel, and over the widest range of fuel mixes and power levels. Low calorific fuels provide special challenges to control system design. Variability in syngas composition, temperature and pressure will impact the minimum and maximum nozzle pressure drops and controllability. The effect of fuel constituents on controllability is captured in the modified Wobbe index. Stability and margin against flameout is captured in the upper-to-lower flammability ratio. The paper discusses the restrictions on these parameters for IGCC combustion systems. Control hardware and manifolding necessary with low calorific fuel can potentially conflict with accessibility to the gas turbine. Safe transfers from natural gas to syngas and shutdowns require purge strategies that account for residual energy in ductwork Finally, the design of the Exxon Singapore IGCC control system is described which provides an extended range of co-firing and load control.
机译:人们对燃料多样化的需求正在逐渐引起人们对综合气化联合循环(IGCC)的兴趣,这是对冲天然气价格和可获得性的对冲。在IGCC中,燃气轮机燃烧系统对于满足这一需求至关重要。燃烧系统还需要实现卓越的环境性能。本文讨论了IGCC燃烧系统的具体要求,这些要求源自气化燃料的特性以及与气化过程的集成。必须根据IGGC流程的整体功能评估系统物理设计参数和控制策略之间的折衷。评估设计“良好”的关键指标是可靠性,可用性,可维护性(RAM),过程可变性的鲁棒性,对故障和跳闸的响应,同步时间以及启动和关闭自动化。对于IGCC,通过涡轮机与辅助燃料强劲共燃低热合成气的能力,可以实现高可用性。共燃可补偿气化炉输出的不足,并在气化厂维修期间保持电力服务的连续性。控件需要在合成气和辅助燃料的不同含量之间以及最广泛的燃料混合物和功率水平之间提供无缝转换。低热量燃料对控制系统设计提出了特殊挑战。合成气组成,温度和压力的变化将影响最小和最大喷嘴压降和可控性。燃料成分对可控性的影响记录在修正的沃泊指数中。上下可燃比记录了稳定性和抗熄火的余量。本文讨论了IGCC燃烧系统对这些参数的限制。低热量燃料所需的控制硬件和歧管可能会与燃气轮机的可达性发生冲突。从天然气到合成气的安全转移和关闭需要采用吹扫策略,以解决管道中的剩余能量。最后,对埃克森新加坡IGCC控制系统的设计进行了介绍,该系统提供了扩展的共燃和负荷控制范围。

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