Temperature distribution of ceramic panels of a V94.2 gas turbine combustor under realistic operation conditions

IF 1.9 Q3 MATERIALS SCIENCE, MULTIDISCIPLINARY
Mohammad Javad Namayandeh, M. Mohammadimehr, M. Mehrabi
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引用次数: 2

Abstract

The lifetime of a gas turbine combustor is typically limited by the durability of its liner, the structure that encloses the high-temperature combustion products. The primary objective of the combustor thermal design process is to ensure that the liner temperatures do not exceed a maximum value set by material limits. Liner temperatures exceeding these limits hasten the onset of cracking which increase the frequency of unscheduled engine removals and cause the maintenance and repair costs of the engine to increase. Hot gas temperature prediction can be considered a preliminary step for combustor liner temperature prediction which can make a suitable view of combustion chamber conditions. In this study, the temperature distribution of ceramic panels for a V94.2 gas turbine combustor subjected to realistic operation conditions is presented using three-dimensional finite difference method. A simplified model of alumina ceramic is used to obtain the temperature distribution. The external thermal loads consist of convection and radiation heat transfers are considered that these loads are applied to flat segmented panel on hot side and forced convection cooling on the other side. First the temperatures of hot and cold sides of ceramic are calculated. Then, the thermal boundary conditions of all other ceramic sides are estimated by the field observations. Finally, the temperature distributions of ceramic panels for a V94.2 gas turbine combustor are computed by MATLAB software. The results show that the gas emissivity for diffusion mode is more than premix therefore the radiation heat flux and temperature will be more. The results of this work are validated by ANSYS and ABAQUS softwares. It is showed that there is a good agreement between all results.
V94.2燃气轮机燃烧室陶瓷板在实际工况下的温度分布
燃气轮机燃烧器的寿命通常受到其衬套的耐久性的限制,衬套是包围高温燃烧产物的结构。燃烧器热设计过程的主要目标是确保衬套温度不超过材料极限设定的最大值。超过这些限制的缸套温度会加速裂纹的发生,从而增加发动机非计划拆卸的频率,并导致发动机的维护和维修成本增加。热气温度预测可以被认为是燃烧器衬里温度预测的初步步骤,其可以对燃烧室条件进行适当的观察。本文采用三维有限差分法,给出了V94.2燃气轮机燃烧室陶瓷板在实际运行条件下的温度分布。使用氧化铝陶瓷的简化模型来获得温度分布。外部热负荷由对流和辐射传热组成,这些负荷分别作用于热侧的平分段面板和另一侧的强制对流冷却。首先计算了陶瓷的热侧和冷侧的温度。然后,通过现场观测估计了所有其他陶瓷侧面的热边界条件。最后,利用MATLAB软件对V94.2燃气轮机燃烧室陶瓷板的温度分布进行了计算。结果表明,扩散模式下的气体发射率大于预混模式,因此辐射热通量和温度会更高。利用ANSYS和ABAQUS软件对研究结果进行了验证。结果表明,所有结果之间有很好的一致性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Advances in Materials Research-An International Journal
Advances in Materials Research-An International Journal MATERIALS SCIENCE, MULTIDISCIPLINARY-
CiteScore
3.50
自引率
27.30%
发文量
0
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