稳态燃气轮机转速瞬变工况建模与性能分析

André L. S. Andade, O. Venturini, V. Cobas, V. Z. Silva
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摘要

为了提高燃气轮机的灵活性和性能,通常他们的制造商和研究中心参与他们的发展,不断寻求扩大他们的运行范围,以及他们的效率,使发动机更动态,污染更少,能够迅速响应负载需求的变化。在分析这些原动机时,应该考虑的一个重要方面是评估其在负荷变化下的瞬态行为,这可以通过开发详细,准确和有效的计算模型来完成。考虑到这种情况,目前的工作旨在建立一个模型来模拟和分析固定式燃气轮机的动态行为。在本分析中考虑的发动机的标称容量为30.7兆瓦(ISO条件),由一个双轴气体发生器和一个自由动力涡轮机组成。该模型是使用T-MATS开发的,T-MATS是由NASA开发的集成Simulink/Matlab工具箱。对燃气轮机进行了恒态和暂态两种工况下的评估,并对其各部件进行了单独分析。通过评估,可以确定不同负载条件下的发动机性能参数,如效率、热率、比油耗及其运行极限(喘振极限、失速、涡轮入口温度等)。将所得结果与现有现场数据进行了比较,所考虑参数的相对偏差均小于1%。
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Modelling and Performance Analysis of Stationary Gas Turbines Operating Under Rotational Speed Transients
In order to increase the flexibility and performance of gas turbines, generally their manufacturers and research centers involved in their development are constantly seeking the expansion of their operational envelope as well as their efficiency, making the engine more dynamic, less polluting and able to respond promptly to variations in load demands. An important aspect that should be considered when analyzing these prime movers is the assessment of its behavior under transients due to load changes, which can be accomplished through the development of a detailed, accurate and effective computational model. Considering this scenario, the present work aims to develop a model for the simulation and analysis of the dynamic behavior of stationary gas turbines. The engine considered in this analysis has a nominal capacity of 30.7 MW (ISO conditions) and is composed by a two-spool gas generator and a free power turbine. The model was developed using T-MATS, an integrated Simulink/Matlab toolbox, develop by NASA. The gas turbine was evaluated under both permanent and transient regimes and each one of its component was analyzed individually. The assessment made it possible to determine the engine performance parameters such as efficiency, heat rate and specific fuel consumption and its operational limits (surge limits, stall, turbine inlet temperatures, etc.) under different load conditions and regimes. The results obtained were compared with available field data, and the relative deviations for the considered parameters were all lower than 1%.
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