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Determination of Local Flexibility Coefficients of a Functionally Graded Shaft with Breathing Crack

机译:用呼吸裂纹确定功能渐变轴的局部柔性系数

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Stress intensity factors (SIFs) play a fundamental role in the calculation of local flexibility coefficients (LFCs) in a cracked structure. Many researchers have calculated SIFs in a cracked beam or rotor made of homogeneous materials, but for functionally graded (FG) materials is scarce. The radially graded FG shaft consists of aluminum oxide (Al_2O_3) as ceramic constituent and stainless steel (SS) is as metal constituent and properties of material are computed following power law gradation under thermal gradient. LFCs of a spinning FG shaft with breathing crack behavior are determined analytically with the help of Castigliano's theorem and energy principal of Paris. A MATLAB code is developed and validated with the literatures results. The effects of crack size and orientation, gradient index, and thermal gradient are examined on the direct and cross-couple LFCs. Numerical results show that magnitudes of LFCs increase with an increase in orientations of crack, maximum, while crack is completely open and then decrease with an increase in the orientations of crack. In addition, the magnitudes of LFCs increase while crack size, gradient indices, and thermal gradients also increase.
机译:应力强度因子(SIFS)在裂缝结构中的局部柔性系数(LFC)的计算中起着基本作用。许多研究人员在由均匀材料制成的裂纹梁或转子中计算了SIFS,但对于功能梯度(FG)材料是稀缺的。径向分级的FG轴由氧化铝(AL_2O_3)组成,作为陶瓷成分和不锈钢(SS)是金属成分,并且在热梯度下的功率法灰度下计算材料的性质。在Castigliano的定理和巴黎能量校长的帮助下,分析了旋转FG轴的LFC。使用文献结果开发并验证了MATLAB代码。在直接和交叉的LFC上检查裂缝大小和取向,梯度指数和热梯度的影响。数值结果表明,LFC的幅度随着裂缝方向的增加而增加,而裂缝完全打开,然后随着裂缝方向的增加而降低。此外,LFC的大小增加而裂缝大小,梯度指数和热梯度也增加。

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