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Robust wide-range control of power plants for life extension and performance enhancement.

机译:强大的发电厂宽范围控制,以延长使用寿命和提高性能。

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This dissertation presents a complete methodology for life extending control system (LECS) synthesis for fossil fuel steam power plants with the objectives of performance enhancement, structural durability and life extension. The proposed LECS has a two-tier architecture. The lower tier consists of a feedforward control policy and a family of linear multivariable robust controllers which are gain-scheduled. The optimal feedforward policy is formulated on the principle of nonlinear programming. The sampled-data feedback control laws are synthesized based on an induced L{dollar}sb2{dollar}-norm technique which minimizes the worst case gain between the energy of the exogenous inputs and the energy of the regulated outputs. The supervisory controller at the upper level makes decisions based on trade-off between performance enhancement and life-extension. The supervisory controller is synthesized based on approximate reasoning embedded with rule based expert knowledge of the power plant and structural damage models. Using the fuzzy logic, the plant operation strategy is modified on-line for trade off between plant performance and structural damage in critical components. The fuzzy algorithm facilitates bumpless controller switching for gain scheduling, under wide range operation and control.; The LECS has been tested by simulation experiments on a generic fossil fuel power plant model with the generation capacity of 525 MW. The plant is represented by a 27 state, 4 input, 4 output nonlinear model. This research explores the service life of three critical components, namely the main steam header, radiant superheater and hot reheat header. Developing structural damage models for these three components is an integral part of the research. Knowledge of these models is used in feedforward optimization, robust feedback synthesis and supervisory controller development. The models are also used to estimate accumulated structural damage during plant operation.; A distinct feature of the research work reported here is that a thorough knowledge of the power plant dynamics and the mechanics of the structural materials is applied to formulate a novel controller design tool. This tool can be readily used by practicing engineers with the aid of commercially available software.
机译:本文针对化石燃料蒸汽发电厂的寿命延长控制系统(LECS)合成提出了一套完整的方法,其目标是提高性能,结构耐久性和延长寿命。拟议的LECS具有两层体系结构。较低层由前馈控制策略和增益调度的线性多变量鲁棒控制器组成。最优前馈策略是根据非线性规划的原则制定的。采样数据反馈控制律是基于诱导L {dolb} sb2 {dollar} -norm技术合成的,该技术将外生输入的能量与调节输出的能量之间的最坏情况增益最小化。上级的监督控制器基于性能提升和寿命延长之间的权衡做出决策。监控控制器是基于近似推理综合而成的,该推理嵌入了基于规则的电厂专业知识和结构破坏模型。使用模糊逻辑,可以在线修改工厂运行策略,以在工厂性能和关键组件的结构损坏之间进行权衡。模糊算法有助于在宽范围的操作和控制下进行无扰动的控制器切换,以进行增益调度。 LECS已通过模拟实验在发电能力为525兆瓦的通用化石燃料发电厂模型上进行了测试。该工厂由27状态,4输入,4输出非线性模型表示。这项研究探索了三个关键组件的使用寿命,即主蒸汽集管,辐射过热器和热再加热集管。为这三个部分开发结构损伤模型是该研究的组成部分。这些模型的知识可用于前馈优化,可靠的反馈综合和监控控制器的开发。这些模型还用于估计工厂运营期间累积的结构破坏。此处报道的研究工作的一个显着特征是,对电厂动力学和结构材料的力学有全面的了解,从而可以制定出新颖的控制器设计工具。练习工程师可借助市售软件轻松使用此工具。

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