Fatigue & Fracture of Engineering Materials & Structures · 2014 · 136 citations · 37 references
EngineeringOther Mechanical PropertiesMechanical EngineeringHigh Strength Low Alloy SteelTensile MechanicsFatigueStructural MaterialsMetallic MaterialsFatigue ManagementFatigue StrengthStrength PropertyMicrostructure-strength RelationshipMaterials PropertiesTensile StrengthMaterials ScienceDurability PerformanceSolid MechanicsLow-cycle FatigueMicrostructureMechanical PropertiesDuctilityFatigue Damage MechanismMechanics Of Materials
ABSTRACT The relations between fatigue strength and other mechanical properties especially the tensile strength of metallic materials are reviewed. After analyzing the numerous fatigue data available, the qualitative or quantitative relations between fatigue strength and hardness, strength (tensile strength and yield strength) and toughness (static toughness and impact toughness) are established. Among these relations, the general relation between fatigue strength σ w and tensile strength σ b , σ w = σ b ( C − P ⋅ σ b ), where C and P are parameters, (hereafter, the general fatigue formula) can well predict the fatigue strength with increasing the tensile strength in a wide range for many materials such as conventional metallic materials, newly developed materials and engineering components. On the basis of the experimental results of many materials, the fatigue damage mechanism, especially for high‐strength steels, is proposed. It is suggested that the general fatigue formula can provide a new clue to predict the fatigue strength and design the materials by adjusting material parameters P and C adequately.
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