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原始疲勞質量模型描述方法改進

Advanced description method of the initial fatigue quality model

  • 摘要: 提出了用神經網絡插值代替拉氏插值計算裂紋形成時間(TTCI)值,用極大似然估計代替均秩估計法估計分布參數的方法.考慮到僅對一組TTCI值進行參數估計具有較大的隨機性,文中對每種參考裂紋尺寸對應的TTCI值均進行極大似然估計,得出多組TTCI分布參數;然后利用不同參考裂紋尺寸對應的TTCI分布參數之間的關系確定結構細節的當量初始缺陷尺寸分布參數.對某零件的疲勞實驗及其原始疲勞質量分析證明了該方法的可行性和合理性.

     

    Abstract: An advanced description method of initial fatigue quality was proposed, in which neural network interpolation is employed instead of Lagrange interpolation to compute the values of the time to crack initiation (TTCI) and maximum likelihood estimation is used to estimate TTCI distribution parameters instead of mean rank estimation. Taking account into the randomicity encountered when only one group of TTCI values is used to estimate distribution parameters, several groups of TTCI distribution parameters were gained after maximum likelihood estimating for several groups of TTCI values corresponding to the given reference crack sizes. Then, equivalent initial flaw size distribution can be confirmed based on the relations of several groups of TTCI distribution parameters. The fatigue test of some component and its initial fatigue quality analysis show that the advanced method is feasible and reasonable.

     

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