References for the Fatigue Module
1. M. Hoffmann and T. Seeger, “A Generalized Method for Estimating Multiaxial Elastic-Plastic Notch Stresses and Strains, Part 1: Theory,” J. Engineering Materials and Technology, vol. 107, pp. 250–254, 1985.
2. Standard Practices for Cycle Counting in Fatigue Analysis, ASTM E 1049-85, ASTM International, 2005.
3. A. Fatemi and L. Yang, “Cumulative Fatigue Damage and Life Prediction Theories: A Survey of the State of the Art for Homogeneous Materials,” Int. J. Fatigue, vol. 20, no. 1, pp 9–34, 1998.
4. Lee W. W., Nguyen L. T., and Selvaduray G. S., “Solder joint fatigue models: review and applicability to chip and scale packages,” Microelectronic Reliability, vol. 40, pp. 231–244, 2000.
5. Socie D. F. and Marquis G. B., Multiaxial Fatigue, Society of Automotive Engineeds, Inc., 2000.
6. Morrow J. D., “Cyclic plastic strain energy and fatigue of metals,” ASTM STP-378, pp.45–87, 1965.
7. Darveaux R., “Effect of Simulation Methodology on Solder Joint Crack Growth Correlation,” Electronic Components and Technology Conference, IEEE, pp. 1048–1058, 2000.
8. Bendat J.S., “Probability functions for random responses: Prediction of peaks, fatigue damage, and catastrophic failures,” NASA Report on Contract NAS-5-4590, 1964.
9. Dirlik T., “Application of Computers in Fatigue Analysis,” Ph.D. Thesis, University of Warwick, Coventry, 1985.
10. Preumont A. and Piéfort V., “Predicting Random High-Cycle Fatigue Life With Finite Elements,” J. Vibr. Acoustics, vol. 116, pp 245–248, 1994.