首页> 外文会议>Twenty-Ninth International Symposium on Combustion Hokkaido University >ROBUST ACTIVE CONTROL OF COMBUSTION STABILITY AND EMISSIONS PERFORMANCE IN A FUEL-STAGED NATURAL-GAS-FIRED INDUSTRIAL BURNER
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ROBUST ACTIVE CONTROL OF COMBUSTION STABILITY AND EMISSIONS PERFORMANCE IN A FUEL-STAGED NATURAL-GAS-FIRED INDUSTRIAL BURNER

机译:分级天然气工业燃烧器的燃烧稳定性和排放性能鲁棒主动控制

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Urban air pollution regulations, climate change concerns, and energy conservation efforts are placing strict constraints in the design and operation of advanced, stationary combustion systems for heat and power generation. To ensure minimal pollutant emissions and maximal efficiency at every instant of operation while preventing reaction blowout, combustion systems need to react and adapt in real time to external changes. This study describes the development, demonstration, and evaluation of an active combustion control system, designed to maximize the performance of natural-gas-fired, industrial boiler burners. A feedback sensor array is developed, consisting of a dynamic combustion stability sensor based on CH~* and CO_2~* UV chemiluminescence and bulk emission sensors for NO_x, CO, and O_2 using solid-state electrochemical cells, a conventional continuous emissions monitoring system, and a chemilumines-cence-based NO_x predictor. Next, a dual time-scale controller is designed to actively optimize operating conditions by maximizing a multivariable performance function J using a linear direction set search algorithm. Procedures for defining combustion performance, specifying input control variables, and determining optimization parameters are established. The system is successfully demonstrated on a scaled model (120 kW) commercial boiler burner and evaluated for flexibility, repeatability, and robustness by optimizing for different J functions, with different emission and stability sensors, over a load cycle between 100 and 50%, and after a core fuel injector misalignment. The controller locates a global performance peak that simultaneously minimizes emissions and maximizes system efficiency, while preventing reaction blowout.
机译:城市空气污染法规,对气候变化的关注以及节约能源的努力,对用于热能和发电的先进的固定式燃烧系统的设计和运行施加了严格的限制。为了确保在每个操作瞬间最小的污染物排放和最高的效率,同时防止反应爆裂,燃烧系统需要做出反应并实时适应外部变化。这项研究描述了主动燃烧控制系统的开发,演示和评估,该系统旨在使天然气工业锅炉燃烧器的性能最大化。开发了一种反馈传感器阵列,其中包括基于CH〜*和CO_2〜* UV化学发光的动态燃烧稳定性传感器以及使用固态电化学电池的NO_x,CO和O_2的体发射传感器,传统的连续排放监测系统,以及基于化学发光的NO_x预测因子。接下来,设计了一个双时标控制器,以通过使用线性方向集搜索算法最大化多变量性能函数J来主动优化运行条件。建立了定义燃烧性能,指定输入控制变量和确定优化参数的程序。该系统已成功在规模化模型(120 kW)商用锅炉燃烧器上进行了演示,并通过在100%至50%的负载周期内针对不同的J功能,不同的排放和稳定性传感器进行了优化来评估了灵活性,可重复性和耐用性,核心燃料喷射器未对准之后。控制器确定了一个全局性能峰值,该峰值可以同时最大程度地减少排放和最大化系统效率,同时防止反应井喷。

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