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Adaptive Nonlinear Model Predictive Control of NOx Emissions under Load Constraints in Power Plant Boilers

机译:电厂锅炉负载约束下NOx排放的自适应非线性模型预测控制

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摘要

Nitrogen oxide (NOx) emissions are major pollutants of coal-fired boilers. An adaptive nonlinear model-predictive control approach is presented to reduce NOx emissions of power plant boilers. Firstly, the boiler load and the NOx emissions are dynamically predicted by a differential evolution-based least-square support vector machine. Subsequently, based on data-driven prediction modeling, a nonlinear optimization model, with load and capacity constraints, is proposed for NOx emission minimization. Finally, a differential evolution algorithm is used to solve this optimization problem and obtain the optimal control variable settings. Experimental results based on practical data indicate that the proposed approach exhibits a promising performance in the prediction of the boiler load and NOx emissions. Compared with that obtained using the normal control strategy, the proposed approach can reduce NOx emissions by 3.2% and 4.3% under increasing and decreasing loads, respectively.
机译:氮氧化物(NOX)排放是燃煤锅炉的主要污染物。提出了一种自适应非线性模型预测控制方法,以减少电厂锅炉的NOx排放。首先,通过基于差分演化的最小二乘支持向量机动态地预测锅炉负荷和NOx排放。随后,基于数据驱动的预测建模,提出了用于NOx发射最小化的负载和容量约束的非线性优化模型。最后,使用差分演进算法来解决该优化问题并获得最佳控制变量设置。基于实际数据的实验结果表明,该方法在预测锅炉负荷和NOx排放方面表现出有希望的性能。与使用正常控制策略的获得相比,所提出的方法可以分别在增加和减少负荷下减少3.2%和4.3%的NOx排放。

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