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Experimental and numerical prediction of lean blowout limits for micro gas turbine combustor

机译:微燃气轮机燃烧器贫井喷限制的实验性和数值预测

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PurposeThe lean blowout (LBO) limit of the combustor is one of the important performance parameters for any gas turbine combustor design. This study aims to predict the LBO limits of an in-house designed swirl stabilized 3kW can-type micro gas turbine combustor.Design/methodology/approachThe experimental prediction of LBO limits was performed on 3kW swirl stabilized combustor fueled with methane for the combustor inlet velocity ranging from 1.70 m/s to 6.80 m/s. The numerical prediction of LBO limits of combustor was performed on two-dimensional axisymmetric model. The blowout limits of combustor were predicted through calculated average exit gas temperature (AEGT) method and compared with experimental predictions.FindingsThe results show that the predicted LBO equivalence ratio decreases gradually with an increase in combustor inlet velocity.Practical implicationsThis LBO limits predictions will use to fix the operating boundary conditions of 3kW can-type micro gas turbine combustor. This methodology will be used in design stage as well as in the testing stage of the combustor.Originality/valueThis is a first effort to predict the LBO limits on micro gas turbine combustor through AEGT method. The maximum uncertainty in LBO limit prediction with AEGT is 6 % in comparison with experimental results.
机译:燃烧器的PURPOSETHE贫吹口(LBO)极限是任何燃气轮机燃烧器设计的重要性能参数之一。本研究旨在预测内部设计旋流的LBO限制稳定的3KW罐式微型燃气涡轮机Combustor.design/methodology/Approach在用甲烷的3kW旋转稳定的燃烧器中进行LBO限值的实验预测,用于燃烧器入口速度从1.70米/秒到6.80米/秒。二维轴对称模型对燃烧器LBO限制的数值预测。通过计算的平均出口气体温度(AEGT)方法预测燃烧器的井喷限制,并与实验预测进行比较.Findingsthe结果表明,预测的LBO等当量比随着燃烧器入口速度的增加而逐渐降低。燃烧器入口速度的增加。正式旨在将使用LBO限制预测修复3KW罐式微燃气轮机燃烧器的工作边界条件。该方法将用于设计阶段以及在燃烧器的测试阶段。更多的是通过AEGT方法预测微型燃气涡轮机燃烧器LBO限制的首次努力。与实验结果相比,LBO限制预测的最大不确定度为6%。

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