期刊文献+

DETERMINATION OF CRACK SURFACE DISPLACEMENTS FOR A RADIAL CRACK EMANATING FROM A SEMI-CIRCULAR NOTCH USING WEIGHT FUNCTION METHOD 被引量:1

DETERMINATION OF CRACK SURFACE DISPLACEMENTS FOR A RADIAL CRACK EMANATING FROM A SEMI-CIRCULAR NOTCH USING WEIGHT FUNCTION METHOD
原文传递
导出
摘要 A radial crack emanating from a semi-circular notch is of significant engineering importance. Accurate determination of key fracture mechanics parameters is essential for damage tolerance design and fatigue crack growth life predictions. The purpose of this paper is to provide an efficient and accurate closed-form weight function approach to the calculation of crack surface displacements for a radial crack emanating from a semi-circular notch in a semi-infinite plate. Results are presented for two load conditions: remote applied stress and uniform stress segment applied to crack surfaces. Based on a correction of stress intensity factor ratio, highly accurate analytical equations of crack surface displacements under the two load conditions are developed by fitting the data obtained with the weight function method. It is demonstrated that the Wu- Carlsson closed-form weight functions are very efficient, accurate and easy-to-use for calculating crack surface displacements for arbitrary load conditions. The method will facilitate fatigue crack closure and other fracture mechanics analyses where accurate crack surface displacements are required. A radial crack emanating from a semi-circular notch is of significant engineering importance. Accurate determination of key fracture mechanics parameters is essential for damage tolerance design and fatigue crack growth life predictions. The purpose of this paper is to provide an efficient and accurate closed-form weight function approach to the calculation of crack surface displacements for a radial crack emanating from a semi-circular notch in a semi-infinite plate. Results are presented for two load conditions: remote applied stress and uniform stress segment applied to crack surfaces. Based on a correction of stress intensity factor ratio, highly accurate analytical equations of crack surface displacements under the two load conditions are developed by fitting the data obtained with the weight function method. It is demonstrated that the Wu- Carlsson closed-form weight functions are very efficient, accurate and easy-to-use for calculating crack surface displacements for arbitrary load conditions. The method will facilitate fatigue crack closure and other fracture mechanics analyses where accurate crack surface displacements are required.
出处 《Acta Mechanica Solida Sinica》 SCIE EI CSCD 2015年第3期305-312,共8页 固体力学学报(英文版)
基金 Project supported by the National Natural Science Foundation of China(No.11402249)
关键词 radial crack semi-circular notch Dugdale strip-yield model crack surface displacement weight function method radial crack, semi-circular notch, Dugdale strip-yield model, crack surface displacement, weight function method
  • 相关文献

参考文献1

二级参考文献15

  • 1Newman J C, Jr. A crack-closure model for predicting fa- tigue crack growth under aircraft spectrum loading. ASTM STP 748, 1981: 53-84.
  • 2Budiansky B, Hutchinson J W. Analysis of closure in fa- tigue crack growth. Journal of Applied Mechanics, 1978, 45(2) : 267 -276.
  • 3Kim J H, Lee S B. Fatigue crack opening stress based on the strip-yield model. Theoretical and Applied Fracture Mechanics, 2000, 34(1): 73-84.
  • 4Liu J Z, Wu X R. Study on fatigue crack closure behavior for various cracked geometries. Engineering Fracture Me- chanics, 1997, 57(5): 475-491.
  • 5Ziegler B, Yamada Y, Newman J C, Jr. Application of a strip-yield model to predict crack growth under variable- amplitude and spectrum loading, Part 2.- middle-crack-ten- sion specimens. Engineering Fracture Mechanics, 2011, 78(14) : 2609-2619.
  • 6Wu X R, Zhao W. Dugdale model solution for compact specimen. Mechanical Behaviour of Materials: V, 1988: 243-248.
  • 7Wang G S, Blom A F. A strip model for fatigue crack growth predictions under general load conditions. Engi- neering Fracture Mechanics, 1991, 40(3).. 507-533.
  • 8Yamada Y, Ziegler B, Newman J C, Jr. Application of a strip-yield model to predict crack growth under variable- amplitude and spectrum loading, Part 1: compact speci- mens. Engineering Fracture Mechanics, 2011, 78 (14) : 2597-2608.
  • 9Mall S, Newman J C, Jr. The Dugdale model for compact specimen. ASTM STP. 868, 1985: 113-1:78.
  • 10Newman J C, Jr. A nonlinear fracture mechanics approach to the growth of small cracks. In: Zocher H. Behaviour of Short Cracks in Airframe Materials. AGARD CP, 1983, 328:61 -626.

共引文献4

同被引文献22

引证文献1

二级引证文献5

相关作者

内容加载中请稍等...

相关机构

内容加载中请稍等...

相关主题

内容加载中请稍等...

浏览历史

内容加载中请稍等...
;
使用帮助 返回顶部