Daniel Perghem, Lorenzo Rusnati, Luca Patriarca, Federico Uriati, Stefano Beretta
{"title":"缺陷材料疲劳寿命和强度模型的比较:应用于不同表面条件下的鳞状合金","authors":"Daniel Perghem, Lorenzo Rusnati, Luca Patriarca, Federico Uriati, Stefano Beretta","doi":"10.1111/ffe.14638","DOIUrl":null,"url":null,"abstract":"<p>Additive manufacturing (AM), particularly laser-powder bed fusion (L-PBF), has transformed the production of lightweight, high-performance metallic components, with Scalmalloy emerging as a promising material due to its excellent strength-to-weight ratio, making it ideal for aerospace and automotive applications. However, process-induced anomalies present challenges in achieving reliable fatigue performance, which requires robust methodologies for life prediction and defect-tolerant design. This study investigates the fatigue behavior of L-PBF Scalmalloy under various surface conditions (net-shape and sandblasted) and orientations (vertical and inclined at 55°) using an advanced fracture mechanics framework. An experimental campaign evaluates fatigue strength under these varying conditions, with results compared between conventional models incorporating different assumptions regarding the long-crack threshold (El-Haddad model and NASGRO-type equations) and R-curve-enhanced approaches. The analysis demonstrates the effectiveness of the R-curve in improving fatigue predictions in all conditions tested, particularly in mitigating nonconservative results. This work advances the understanding of fatigue mechanisms in AM Scalmalloy, offering a framework for life prediction and defect-tolerant design, ensuring more reliable applications of additively manufactured components in critical applications.</p>","PeriodicalId":12298,"journal":{"name":"Fatigue & Fracture of Engineering Materials & Structures","volume":"48 7","pages":"3185-3205"},"PeriodicalIF":3.2000,"publicationDate":"2025-04-27","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"https://onlinelibrary.wiley.com/doi/epdf/10.1111/ffe.14638","citationCount":"0","resultStr":"{\"title\":\"Comparison of Fatigue Life and Strength Models for Defective Materials: Application to Scalmalloy in Different Surface Conditions\",\"authors\":\"Daniel Perghem, Lorenzo Rusnati, Luca Patriarca, Federico Uriati, Stefano Beretta\",\"doi\":\"10.1111/ffe.14638\",\"DOIUrl\":null,\"url\":null,\"abstract\":\"<p>Additive manufacturing (AM), particularly laser-powder bed fusion (L-PBF), has transformed the production of lightweight, high-performance metallic components, with Scalmalloy emerging as a promising material due to its excellent strength-to-weight ratio, making it ideal for aerospace and automotive applications. However, process-induced anomalies present challenges in achieving reliable fatigue performance, which requires robust methodologies for life prediction and defect-tolerant design. This study investigates the fatigue behavior of L-PBF Scalmalloy under various surface conditions (net-shape and sandblasted) and orientations (vertical and inclined at 55°) using an advanced fracture mechanics framework. An experimental campaign evaluates fatigue strength under these varying conditions, with results compared between conventional models incorporating different assumptions regarding the long-crack threshold (El-Haddad model and NASGRO-type equations) and R-curve-enhanced approaches. The analysis demonstrates the effectiveness of the R-curve in improving fatigue predictions in all conditions tested, particularly in mitigating nonconservative results. 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Comparison of Fatigue Life and Strength Models for Defective Materials: Application to Scalmalloy in Different Surface Conditions
Additive manufacturing (AM), particularly laser-powder bed fusion (L-PBF), has transformed the production of lightweight, high-performance metallic components, with Scalmalloy emerging as a promising material due to its excellent strength-to-weight ratio, making it ideal for aerospace and automotive applications. However, process-induced anomalies present challenges in achieving reliable fatigue performance, which requires robust methodologies for life prediction and defect-tolerant design. This study investigates the fatigue behavior of L-PBF Scalmalloy under various surface conditions (net-shape and sandblasted) and orientations (vertical and inclined at 55°) using an advanced fracture mechanics framework. An experimental campaign evaluates fatigue strength under these varying conditions, with results compared between conventional models incorporating different assumptions regarding the long-crack threshold (El-Haddad model and NASGRO-type equations) and R-curve-enhanced approaches. The analysis demonstrates the effectiveness of the R-curve in improving fatigue predictions in all conditions tested, particularly in mitigating nonconservative results. This work advances the understanding of fatigue mechanisms in AM Scalmalloy, offering a framework for life prediction and defect-tolerant design, ensuring more reliable applications of additively manufactured components in critical applications.
期刊介绍:
Fatigue & Fracture of Engineering Materials & Structures (FFEMS) encompasses the broad topic of structural integrity which is founded on the mechanics of fatigue and fracture, and is concerned with the reliability and effectiveness of various materials and structural components of any scale or geometry. The editors publish original contributions that will stimulate the intellectual innovation that generates elegant, effective and economic engineering designs. The journal is interdisciplinary and includes papers from scientists and engineers in the fields of materials science, mechanics, physics, chemistry, etc.