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Control Initiatives to Improve Coal Pulverizer and Unit Dynamic Performance under Adverse Conditions

机译:在不利条件下改善粉磨机和机组动态性能的控制措施

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Changing electricity market conditions, particularly from the growth of uncontrolled renewables, have demanded that fossil-fuel generators seek to increase capacity margins and become more flexible in operation. Consequently utilities are often seeking higher ramp rates, wider load ranges and the ability to maintain bid output even under adverse conditions. Pressure to "push the margins" of performance can increase reliability risks, both from plant and operational limitations. The performance of coal pulverizers has become increasingly important in this environment, as they significantly influence a power plant's ramp rate, stable operating range, frequency response and operational security. Yet generators may extend pulverizer service hours, increase working range and continue operation with running faults or poor coal conditions to meet economic imperatives. In this paper the author presents a range of control initiatives that have each been introduced on several power projects to reduce the impact on performance under such adverse conditions. The control enhancements help to detect and circumvent choking, provide 'smart' capability calculations to optimise fuel runbacks, and introduce pulverizer air flow demand shaping to compensate for worn pulverizers and so maintain consistency in the pulverized coal flow dynamic response during ramps. The paper also describes milling and classification process dynamics and the mechanisms that cause variations in the pulverized fuel output response. Simulation results from a pulverizer model are presented to demonstrate the effects of air flow and fuel input changes on several key process parameters, and thus help explain the reasoning behind some of the control enhancements.
机译:不断变化的电力市场状况,尤其是不受控制的可再生能源的增长所致,要求化石燃料发电商设法提高容量裕度,并在运营中变得更加灵活。因此,公用事业公司通常寻求更高的爬坡率,更宽的负载范围以及即使在不利条件下也能保持出价输出的能力。由于工厂和运营方面的限制,“提高性能极限”的压力可能会增加可靠性风险。在这种环境下,煤粉机的性能变得越来越重要,因为它们会严重影响发电厂的斜率,稳定的运行范围,频率响应和运行安全性。然而,发电机可能会延长粉碎机的工作时间,增加工作范围,并在出现运行故障或恶劣的煤质条件下继续运行,以满足经济需求。在本文中,作者提出了一系列控制措施,这些措施已分别引入几个电力项目中,以减少在这种不利条件下对性能的影响。增强的控制功能有助于检测和避免阻塞,提供“智能”功能计算以优化燃料流失,并引入粉碎机气流需求定型以补偿磨损的粉碎机,从而在斜升过程中保持粉碎后的煤流动态响应的一致性。本文还描述了研磨和分类过程的动力学以及导致粉状燃料输出响应变化的机理。给出了粉碎机模型的仿真结果,以演示气流和燃料输入变化对几个关键过程参数的影响,从而有助于解释某些控制增强背后的原因。

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