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TABLE 28.1 Values of the Fracture Toughness Klc for a Few Engineering Materials
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Magnesium alloys have a weight about two-thirds that of aluminum and onefourth that of steel. Magnesium alloys are not very strong and are characterized by having a compressive strength that is somewhat less than the tensile strength. They are also so sensitive to temperature that they are weakened even by contact with boiling water.
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FIGURE 28.21 Effect of temperature on the yield strength and tensile strength of aluminum alloy A92024-T4. (ALCOA.)
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Downloaded from Digital Engineering Library @ McGraw-Hill (www.digitalengineeringlibrary.com) Copyright 2004 The McGraw-Hill Companies. All rights reserved. Any use is subject to the Terms of Use as given at the website.
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28.1 R. E. Peterson, Stress Concentration Factors, John Wiley & Sons, New York, 1974. 28.2 R. E. Peterson, Design Factors for Stress Concentration, Machine Design, vol. 23, no. 2, p. 161; no. 5, p. 159; no. 6, p. 173; no. 7, p. 155; 1951. 28.3 G. M. Kurajian and D. J. West, Stress Concentration Factor Determination in Stepped Hollow Shafts, Failure Prevention and Reliability, American Society of Mechanical Engineers, New York, 1977. 28.4 R. W. Hertzberg, Deformation and Fracture Mechanics of Engineering Materials, John Wiley & Sons, New York, 1976. 28.5 H. Tada, P. C. Paris, and G. R. Irwin, The Stress Analysis of Cracks Handbook, Del Research, Hellertown, Pa., 1973. 28.6 G. C. M. Sih, Handbook of Stress Intensity Factors, Lehigh University, Bethlehem, Pa., 1973. 28.7 D. P. Rooke and D. J. Cartwright, Compendium of Stress Intensity Factors, Hillingdon Press, Uxbridge, England, 1976. 28.8 Damage Tolerant Handbook, Metals and Ceramics Information Center, Battelle, Columbus, Ohio, 1975.
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Downloaded from Digital Engineering Library @ McGraw-Hill (www.digitalengineeringlibrary.com) Copyright 2004 The McGraw-Hill Companies. All rights reserved. Any use is subject to the Terms of Use as given at the website.
Source: STANDARD HANDBOOK OF MACHINE DESIGN
STRENGTH UNDER DYNAMIC CONDITIONS
Charles R. Mischke, Ph.D., P.E.
Professor Emeritus of Mechanical Engineering Iowa State University Ames, Iowa
29.1 TESTING METHODS AND PRESENTATION OF RESULTS / 29.3 29.2 SN DIAGRAM FOR SINUSOIDAL AND RANDOM LOADING / 29.7 29.3 FATIGUE-STRENGTH MODIFICATION FACTORS / 29.9 29.4 FLUCTUATING STRESS / 29.18 29.5 COMPLICATED STRESS-VARIATION PATTERNS / 29.20 29.6 STRENGTH AT CRITICAL LOCATIONS / 29.22 29.7 COMBINED LOADING / 29.27 29.8 SURFACE FATIGUE / 29.32 REFERENCES / 29.35 RECOMMENDED READING / 29.36
NOMENCLATURE
a A b B bhn BHN c C Cp d de D DI E f fi Distance, exponent, constant Area, addition factor, iNi Distance, width, exponent i2Ni Brinell hardness, roller or pinion Brinell hardness, cam or gear Exponent Coefficient of variation Materials constant in rolling contact Difference in stress level, diameter Equivalent diameter Damage per cycle or block of cycles Ideal critical diameter Young s modulus Fraction of mean ultimate tensile strength Fraction of life measure
29.1 Downloaded from Digital Engineering Library @ McGraw-Hill (www.digitalengineeringlibrary.com) Copyright 2004 The McGraw-Hill Companies. All rights reserved. Any use is subject to the Terms of Use as given at the website.
STRENGTH UNDER DYNAMIC CONDITIONS 29.2
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F h HB I ka kb kc kd ke K Kf Kt log ln L LN m M n, n N Nf N( , ) p P q r ri R Ra Rrms RA RQ RT S Sax Se Sf
Force Significant force in contact fatigue Depth Brinell hardness Second area moment Marin surface condition modification factor Marin size modification factor Marin load modification factor Marin temperature modification factor Marin miscellaneous-effects modification factor Load-life constant Fatigue stress concentration factor Geometric (theoretical) stress concentration factor Length Base 10 logarithm Natural logarithm Life measure Lognormal Strain-strengthening exponent, revolutions ratio Bending moment Design factor Cycles Cycles to failure Normal distribution with mean and standard deviation Pressure Axial load Notch sensitivity Notch radius, slope of load line Average peak-to-valley distance Reliability Average deviation from the mean Root-mean-squared deviation from the mean Fraction reduction in area As-quenched hardness, Rockwell C scale Tempered hardness, Rockwell C scale Strength Axial endurance limit Rotating-beam endurance limit Fatigue strength
Downloaded from Digital Engineering Library @ McGraw-Hill (www.digitalengineeringlibrary.com) Copyright 2004 The McGraw-Hill Companies. All rights reserved. Any use is subject to the Terms of Use as given at the website.
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