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STRUCTURAL DYNAMIC ANALYSIS APPROACH USED IN A GE HEAVY DUTY GAS TURBINE COMBUSTOR FOR MTBM ENHANCEMENT

机译:用于MTBM增强的GE重型燃气涡轮机燃烧器的结构动态分析方法

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Gas turbine combustors are subjected to vibrations due to combustion dynamics pressure and rotor imbalance force which results in forced excitation of hardware. Such structural vibration leads to high cycle fatigue and wear out of contact interfaces of combustor, thus limiting hardware durability with reduced maintenance intervals. To have more realistic hardware life prediction for both failure modes, it is vital to understand structural dynamic behavior of combustor assembly in the presence of vibratory loads. This paper describes the methodology used in developing MS5002D LHE combustor assembly linearized finite element dynamic models, the strategy to calibrate them with experimental data and the approach used to perform a forced responded analysis with harmonically varying combustion dynamics pressure and rotor imbalance force. Study shows that with adopted approach, an acceptable modal correlation between the model and the experimental test rig can be achieved. The forced dynamic response analysis results, in terms of dynamic stress distribution, interface sliding displacements and contact loads, represent the needed inputs for life prediction and for addressing the design improvements.
机译:由于燃烧动力学压力和转子不平衡力而导致燃气轮机燃烧器振动,从而导致硬件强制激发。这种结构振动导致高循环疲劳和燃烧器接触界面的磨损,从而限制了维护间隔减少的硬件耐用性。为了对两个故障模式进行更现实的硬件寿命预测,在存在振动载荷的情况下了解燃烧器组件的结构动态行为至关重要。本文介绍了开发MS5002D LHE燃烧器组件线性化有限元动态模型的方法,该策略用实验数据校准它们的策略和用于执行强制响应分析的方法,以及谐振燃烧动力学压力和转子不平衡力。研究表明,通过采用的方法,可以实现模型和实验试验台之间的可接受的模态相关性。强制动态响应分析结果,即动态应力分布,界面滑动位移和接触载荷,代表了寿命预测所需的输入,并用于解决设计改进。

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