<?xml version="1.0" encoding="utf-8"?>
<export-example>
  <doc>
    <id>62517</id>
    <completedYear/>
    <publishedYear>2025</publishedYear>
    <thesisYearAccepted/>
    <language>eng</language>
    <pageFirst>1</pageFirst>
    <pageLast>16</pageLast>
    <pageNumber/>
    <edition/>
    <issue/>
    <volume/>
    <type>article</type>
    <publisherName>Springer Science and Business Media LLC</publisherName>
    <publisherPlace/>
    <creatingCorporation/>
    <contributingCorporation/>
    <belongsToBibliography>1</belongsToBibliography>
    <completedDate>--</completedDate>
    <publishedDate>--</publishedDate>
    <thesisDateAccepted>--</thesisDateAccepted>
    <title language="eng">An equivalent stress approach for predicting fatigue behavior of additively manufactured AlSi10Mg</title>
    <abstract language="eng">Laser-based powder bed fusion (PBF-LB) is an advanced additive manufacturing technique renowned for its precision and capability to fabricate complex metal components. However, the high thermal gradients and rapid cooling rates intrinsic to this process introduce significant process-induced effects, such as inhomogeneities, surface roughness, anisotropy, and residual stress, all of which critically influence the fatigue behavior of the produced parts. This study investigates the fatigue performance of AlSi10Mg samples produced by PBF-LB, examining the impact of varying surface conditions, geometries, and residual stress levels. Fatigue-life prediction models are formulated based on nominal stress amplitude, residual stress, form factor, crack-initiating inhomogeneity, and surface roughness, with smooth samples serving as a baseline reference. The study presents two empirical models for predicting fatigue life and fatigue strength using S–N curves and the Kitagawa–Takahashi diagram with the El Haddad approach, derived from comprehensive experimental data, including finite element modeling, fatigue-life measurements, surface roughness evaluations, and residual stress analysis.</abstract>
    <parentTitle language="eng">Progress in Additive Manufacturing</parentTitle>
    <identifier type="doi">10.1007/s40964-025-00974-0</identifier>
    <identifier type="urn">urn:nbn:de:kobv:b43-625176</identifier>
    <enrichment key="opus_doi_flag">true</enrichment>
    <enrichment key="opus_import_data">{"status":"ok","message-type":"work","message-version":"1.0.0","message":{"indexed":{"date-parts":[[2025,2,5]],"date-time":"2025-02-05T21:10:09Z","timestamp":1738789809481,"version":"3.37.0"},"reference-count":49,"publisher":"Springer Science and Business Media LLC","license":[{"start":{"date-parts":[[2025,2,5]],"date-time":"2025-02-05T00:00:00Z","timestamp":1738713600000},"content-version":"tdm","delay-in-days":0,"URL":"https:\/\/creativecommons.org\/licenses\/by\/4.0"},{"start":{"date-parts":[[2025,2,5]],"date-time":"2025-02-05T00:00:00Z","timestamp":1738713600000},"content-version":"vor","delay-in-days":0,"URL":"https:\/\/creativecommons.org\/licenses\/by\/4.0"}],"funder":[{"name":"Universit\u00e4t der Bundeswehr M\u00fcnchen"}],"content-domain":{"domain":["link.springer.com"],"crossmark-restriction":false},"short-container-title":["Prog Addit Manuf"],"abstract":"&lt;jats:title&gt;Abstract&lt;\/jats:title&gt;\n          &lt;jats:p&gt;Laser-based powder bed fusion (PBF-LB) is an advanced additive manufacturing technique renowned for its precision and capability to fabricate complex metal components. However, the high thermal gradients and rapid cooling rates intrinsic to this process introduce significant process-induced effects, such as inhomogeneities, surface roughness, anisotropy, and residual stress, all of which critically influence the fatigue behavior of the produced parts. This study investigates the fatigue performance of AlSi10Mg samples produced by PBF-LB, examining the impact of varying surface conditions, geometries, and residual stress levels. Fatigue-life prediction models are formulated based on nominal stress amplitude, residual stress, form factor, crack-initiating inhomogeneity, and surface roughness, with smooth samples serving as a baseline reference. The study presents two empirical models for predicting fatigue life and fatigue strength using S\u2013N curves and the Kitagawa\u2013Takahashi diagram with the El Haddad approach, derived from comprehensive experimental data, including finite element modeling, fatigue-life measurements, surface roughness evaluations, and residual stress analysis.&lt;\/jats:p&gt;","DOI":"10.1007\/s40964-025-00974-0","type":"journal-article","created":{"date-parts":[[2025,2,5]],"date-time":"2025-02-05T20:35:56Z","timestamp":1738787756000},"update-policy":"https:\/\/doi.org\/10.1007\/springer_crossmark_policy","source":"Crossref","is-referenced-by-count":0,"title":["An equivalent stress approach for predicting fatigue behavior of additively manufactured AlSi10Mg"],"prefix":"10.1007","author":[{"ORCID":"https:\/\/orcid.org\/0000-0001-6541-8019","authenticated-orcid":false,"given":"Lea","family":"Strau\u00df","sequence":"first","affiliation":[]},{"given":"Larissa","family":"Duarte","sequence":"additional","affiliation":[]},{"given":"Julius","family":"Kruse","sequence":"additional","affiliation":[]},{"given":"Mauro","family":"Madia","sequence":"additional","affiliation":[]},{"given":"G\u00fcnther","family":"L\u00f6wisch","sequence":"additional","affiliation":[]}],"member":"297","published-online":{"date-parts":[[2025,2,5]]},"reference":[{"issue":"2","key":"974_CR1","doi-asserted-by":"publisher","first-page":"737","DOI":"10.1016\/j.cirp.2016.05.004","volume":"65","author":"MK Thompson","year":"2016","unstructured":"Thompson MK et al (2016) Design for additive manufacturing: trends, opportunities, considerations, and constraints. CIRP Ann 65(2):737\u2013760. https:\/\/doi.org\/10.1016\/j.cirp.2016.05.004","journal-title":"CIRP Ann"},{"key":"974_CR2","doi-asserted-by":"publisher","first-page":"174","DOI":"10.1016\/j.matdes.2016.05.041","volume":"104","author":"NT Aboulkhair","year":"2016","unstructured":"Aboulkhair NT, Maskery I, Tuck C, Ashcroft I, Everitt NM (2016) Improving the fatigue behaviour of a selectively laser melted aluminium alloy: influence of heat treatment and surface quality. Mater Des 104:174\u2013182. https:\/\/doi.org\/10.1016\/j.matdes.2016.05.041","journal-title":"Mater Des"},{"issue":"65","key":"974_CR3","doi-asserted-by":"publisher","first-page":"417","DOI":"10.1016\/j.matdes.2014.09.044","volume":"1980\u20132015","author":"N Read","year":"2015","unstructured":"Read N, Wang W, Essa K, Attallah MM (2015) Selective laser melting of AlSi10Mg alloy: process optimisation and mechanical properties development. Mater Des 1980\u20132015(65):417\u2013424. https:\/\/doi.org\/10.1016\/j.matdes.2014.09.044","journal-title":"Mater Des"},{"key":"974_CR4","doi-asserted-by":"publisher","DOI":"10.1016\/j.tafmec.2020.102638","volume":"108","author":"N Sanaei","year":"2020","unstructured":"Sanaei N, Fatemi A (2020) Analysis of the effect of surface roughness on fatigue performance of powder bed fusion additive manufactured metals. Theor Appl Fract Mech 108:102638. https:\/\/doi.org\/10.1016\/j.tafmec.2020.102638","journal-title":"Theor Appl Fract Mech"},{"key":"974_CR5","doi-asserted-by":"publisher","DOI":"10.1002\/9781119532552","volume-title":"Peterson's stress concentration factors","author":"WD Pilkey","year":"2020","unstructured":"Pilkey WD, Pilkey DF, Bi Z (2020) Peterson\u2019s stress concentration factors. Wiley, Hoboken"},{"issue":"6","key":"974_CR6","doi-asserted-by":"publisher","first-page":"898","DOI":"10.3390\/met12060898","volume":"12","author":"F Sausto","year":"2022","unstructured":"Sausto F, Tezzele C, Beretta S (2022) Analysis of fatigue strength of L-PBF AlSi10Mg with different surface post-processes: effect of residual stresses. Metals 12(6):898. https:\/\/doi.org\/10.3390\/met12060898","journal-title":"Metals"},{"key":"974_CR7","volume-title":"Metal fatigue: effects of small defects and nonmetallic inclusions","author":"Y Murakami","year":"2005","unstructured":"Murakami Y (2005) Metal fatigue: effects of small defects and nonmetallic inclusions. Elsevier, Amsterdam (cop. 2002)"},{"key":"974_CR8","doi-asserted-by":"publisher","first-page":"33","DOI":"10.4028\/www.scientific.net\/AMR.44-46.33","volume":"44\u201346","author":"K Shiozawa","year":"2008","unstructured":"Shiozawa K, Lu L (2008) Effect of non-metallic inclusion size and residual stresses on gigacycle fatigue properties in high strength steel. AMR 44\u201346:33\u201342. https:\/\/doi.org\/10.4028\/www.scientific.net\/AMR.44-46.33","journal-title":"AMR"},{"key":"974_CR9","doi-asserted-by":"publisher","first-page":"326","DOI":"10.1016\/j.msea.2018.12.108","volume":"745","author":"R Aigner","year":"2019","unstructured":"Aigner R, Pusterhofer S, Pomberger S, Leitner M, Stoschka M (2019) A probabilistic Kitagawa\u2013Takahashi diagram for fatigue strength assessment of cast aluminium alloys. Mater Sci Eng A 745:326\u2013334. https:\/\/doi.org\/10.1016\/j.msea.2018.12.108","journal-title":"Mater Sci Eng A"},{"issue":"3","key":"974_CR10","doi-asserted-by":"publisher","first-page":"573","DOI":"10.1016\/0013-7944(79)90081-X","volume":"11","author":"MH El Haddad","year":"1979","unstructured":"El Haddad MH, Topper TH, Smith KN (1979) Prediction of non propagating cracks. Eng Fract Mech 11(3):573\u2013584. https:\/\/doi.org\/10.1016\/0013-7944(79)90081-X","journal-title":"Eng Fract Mech"},{"issue":"12","key":"974_CR11","doi-asserted-by":"publisher","first-page":"2211","DOI":"10.1088\/0034-4885\/70\/12\/R04","volume":"70","author":"PJ Withers","year":"2007","unstructured":"Withers PJ (2007) Residual stress and its role in failure. Rep Prog Phys 70(12):2211\u20132264. https:\/\/doi.org\/10.1088\/0034-4885\/70\/12\/R04","journal-title":"Rep Prog Phys"},{"key":"974_CR12","doi-asserted-by":"publisher","DOI":"10.1016\/j.cja.2019.10.010","author":"J Guo","year":"2019","unstructured":"Guo J, Fu H, Pan B, Kang R (2019) Recent progress of residual stress measurement methods: a review. Chin J Aeronaut. https:\/\/doi.org\/10.1016\/j.cja.2019.10.010","journal-title":"Chin J Aeronaut"},{"issue":"5","key":"974_CR13","doi-asserted-by":"publisher","first-page":"683","DOI":"10.3390\/met11050683","volume":"11","author":"F Sajadi","year":"2021","unstructured":"Sajadi F, Tiemann J-M, Bandari N, Cheloee Darabi A, Mola J, Schmauder S (2021) Fatigue improvement of AlSi10Mg fabricated by laser-based powder bed fusion through heat treatment. Metals 11(5):683. https:\/\/doi.org\/10.3390\/met11050683","journal-title":"Metals"},{"key":"974_CR14","doi-asserted-by":"publisher","first-page":"355","DOI":"10.1016\/B978-0-323-88664-2.00010-5","volume-title":"Quality analysis of additively manufactured metals","author":"L Hitzler","year":"2023","unstructured":"Hitzler L, Sert E, \u00d6chsner A, Werner E (2023) Microstructure and mechanical property correlation for additively manufactured aluminum-silicon alloys. Quality analysis of additively manufactured metals. Elsevier, Amsterdam, pp 355\u2013387"},{"issue":"5","key":"974_CR15","doi-asserted-by":"publisher","first-page":"300","DOI":"10.1515\/htm-2023-0015","volume":"78","author":"L Strau\u00df","year":"2023","unstructured":"Strau\u00df L, L\u00fcbbecke S, L\u00f6wisch G (2023) Optimizing the solution annealing of additively manufactured AlSi10Mg. HTM J Heat Treat Mater 78(5):300\u2013316. https:\/\/doi.org\/10.1515\/htm-2023-0015","journal-title":"HTM J Heat Treat Mater"},{"issue":"4","key":"974_CR16","doi-asserted-by":"publisher","first-page":"89","DOI":"10.3390\/jmmp3040089","volume":"3","author":"W Schneller","year":"2019","unstructured":"Schneller W, Leitner M, Pomberger S, Springer S, Beter F, Gr\u00fcn F (2019) Effect of post treatment on the microstructure, surface roughness and residual stress regarding the fatigue strength of selectively laser Melted AlSi10Mg structures. JMMP 3(4):89. https:\/\/doi.org\/10.3390\/jmmp3040089","journal-title":"JMMP"},{"key":"974_CR17","first-page":"767","volume":"5","author":"KN Smith","year":"1970","unstructured":"Smith KN, Topper T, Watson P (1970) A stress\u2013strain function for the fatigue of metals (stress-strain function for metal fatigue including mean stress effect). J Materials 5:767\u2013778","journal-title":"J Materials"},{"key":"974_CR18","doi-asserted-by":"crossref","unstructured":"Strau\u00df L, Pang GA, L\u00f6wisch G (2024) Fatigue life prediction of additively manufactured AlSi10Mg based on roughness and residual stress. Fatigue Fract Eng Mater Struct (in review)","DOI":"10.1111\/ffe.14441"},{"key":"974_CR19","doi-asserted-by":"publisher","first-page":"34","DOI":"10.1016\/j.engfailanal.2017.03.015","volume":"79","author":"S Siddique","year":"2017","unstructured":"Siddique S, Awd M, Tenkamp J, Walther F (2017) Development of a stochastic approach for fatigue life prediction of AlSi12 alloy processed by selective laser melting. Eng Fail Anal 79:34\u201350. https:\/\/doi.org\/10.1016\/j.engfailanal.2017.03.015","journal-title":"Eng Fail Anal"},{"issue":"7","key":"974_CR20","doi-asserted-by":"publisher","first-page":"1066","DOI":"10.3390\/met12071066","volume":"12","author":"D G\u00f6rzen","year":"2022","unstructured":"G\u00f6rzen D, Ostermayer P, Lehner P, Blinn B, Eifler D, Beck T (2022) A new approach to estimate the fatigue limit of steels based on conventional and cyclic indentation testing. Metals 12(7):1066. https:\/\/doi.org\/10.3390\/met12071066","journal-title":"Metals"},{"key":"974_CR21","doi-asserted-by":"publisher","DOI":"10.1007\/s40964-024-00577-1","author":"L Strau\u00df","year":"2024","unstructured":"Strau\u00df L, L\u00f6wisch G (2024) Prediction of fatigue lifetime and fatigue limit of aluminum parts produced by PBF-LB\/M using a statistical defect distribution. Prog Addit Manuf. https:\/\/doi.org\/10.1007\/s40964-024-00577-1","journal-title":"Prog Addit Manuf"},{"key":"974_CR22","doi-asserted-by":"publisher","first-page":"275","DOI":"10.1007\/978-3-031-49043-9_16","volume-title":"Lectures notes on advanced structured materials 2","author":"L Strau\u00df","year":"2024","unstructured":"Strau\u00df L, L\u00f6wisch G (2024) Effect of residual stress, surface roughness, and porosity on fatigue life of PBF-LB AlSi10Mg. In: Altenbach H, Hitzler L, Johlitz M, Merkel M, \u00d6chsner A (eds) Lectures notes on advanced structured materials 2. Springer, Cham, pp 275\u2013290"},{"issue":"4","key":"974_CR23","doi-asserted-by":"publisher","first-page":"745","DOI":"10.1007\/s40964-023-00428-5","volume":"8","author":"J Westbeld","year":"2023","unstructured":"Westbeld J, von Coburg F, H\u00f6fer P (2023) Forced-response characterization of PBF-LB\/AlSi10Mg particle dampers with thin and flat cavities. Prog Addit Manuf 8(4):745\u2013757. https:\/\/doi.org\/10.1007\/s40964-023-00428-5","journal-title":"Prog Addit Manuf"},{"key":"974_CR24","volume-title":"Theory of notch stresses: principles for exact stress calculation","author":"H Neuber","year":"1946","unstructured":"Neuber H (1946) Theory of notch stresses: principles for exact stress calculation. JW Edwards, Aylesbury"},{"issue":"9","key":"974_CR25","first-page":"442","volume":"5","author":"HH Johnson","year":"1965","unstructured":"Johnson HH (1965) Calibrating the electric potential method for studying slow crack growth. J Mater Res Stand 5(9):442\u2013445","journal-title":"J Mater Res Stand"},{"key":"974_CR26","doi-asserted-by":"publisher","DOI":"10.1016\/j.jallcom.2023.169315","volume":"945","author":"I Kim","year":"2023","unstructured":"Kim I et al (2023) Surface residual stress analysis of additive manufactured AlSi10Mg alloys. J Alloy Compd 945:169315. https:\/\/doi.org\/10.1016\/j.jallcom.2023.169315","journal-title":"J Alloy Compd"},{"issue":"3","key":"974_CR27","doi-asserted-by":"publisher","first-page":"293","DOI":"10.1115\/1.4010337","volume":"18","author":"W Weibull","year":"1951","unstructured":"Weibull W (1951) A statistical distribution function of wide applicability. J Appl Mech 18(3):293\u2013297. https:\/\/doi.org\/10.1115\/1.4010337","journal-title":"J Appl Mech"},{"key":"974_CR28","doi-asserted-by":"publisher","first-page":"271","DOI":"10.1007\/978-3-662-43807-7_6","volume-title":"Anwendungstechnologie aluminium","author":"F Ostermann","year":"2014","unstructured":"Ostermann F (2014) Mechanische Eigenschaften. In: Ostermann F (ed) Anwendungstechnologie aluminium. Springer, Berlin, Heidelberg, pp 271\u2013418"},{"key":"974_CR29","unstructured":"Timoshenko S (1970) Goodier. JN, Theory of elasticity, vol 970, no 4. McGraw-Hil1, New York. pp 279\u2013291"},{"issue":"7","key":"974_CR30","doi-asserted-by":"publisher","first-page":"5392","DOI":"10.1007\/s11665-021-05820-2","volume":"30","author":"RK Rhein","year":"2021","unstructured":"Rhein RK, Shi Q, Tekalur SA, Jones JW, Carroll JW (2021) Short-crack growth behavior in additively manufactured AlSi10Mg alloy. J Mater Eng Perform 30(7):5392\u20135398. https:\/\/doi.org\/10.1007\/s11665-021-05820-2","journal-title":"J Mater Eng Perform"},{"key":"974_CR31","doi-asserted-by":"publisher","first-page":"165","DOI":"10.1016\/j.engfracmech.2017.11.002","volume":"187","author":"S Romano","year":"2018","unstructured":"Romano S, Br\u00fcckner-Foit A, Brand\u00e3o A, Gumpinger J, Ghidini T, Beretta S (2018) Fatigue properties of AlSi10Mg obtained by additive manufacturing: Defect-based modelling and prediction of fatigue strength. Eng Fract Mech 187:165\u2013189. https:\/\/doi.org\/10.1016\/j.engfracmech.2017.11.002","journal-title":"Eng Fract Mech"},{"key":"974_CR32","doi-asserted-by":"publisher","first-page":"1","DOI":"10.1016\/j.ijfatigue.2023.107808","volume":"175","author":"I Roveda","year":"2023","unstructured":"Roveda I, Serrano Munoz I, Haubrich J, Requena G, Madia M (2023) Influence of post-process heat treatments on the fatigue crack propagation behaviour of a PBF-LB\/M AlSi10Mg alloy. Int J Fatigue 175:1\u201312. https:\/\/doi.org\/10.1016\/j.ijfatigue.2023.107808","journal-title":"Int J Fatigue"},{"key":"974_CR33","doi-asserted-by":"publisher","first-page":"141141","DOI":"10.1016\/j.msea.2021.141141","volume":"812","author":"Z Xu","year":"2021","unstructured":"Xu Z, An L, Wang X (2021) Fatigue performance and crack propagation behavior of selective laser melted AlSi10Mg in 0\u00b0, 15\u00b0, 45\u00b0 and 90\u00b0 building directions. Mater Sci Eng A 812:141141. https:\/\/doi.org\/10.1016\/j.msea.2021.141141","journal-title":"Mater Sci Eng A"},{"key":"974_CR34","doi-asserted-by":"publisher","DOI":"10.1016\/j.engfracmech.2019.106564","volume":"217","author":"MT Di Giovanni","year":"2019","unstructured":"Di Giovanni MT, de Menezes JTO, Bolelli G, Cerri E, Castrodeza EM (2019) Fatigue crack growth behavior of a selective laser melted AlSi10Mg. Eng Fract Mech 217:106564. https:\/\/doi.org\/10.1016\/j.engfracmech.2019.106564","journal-title":"Eng Fract Mech"},{"key":"974_CR35","doi-asserted-by":"publisher","first-page":"190","DOI":"10.1016\/j.engfracmech.2015.12.002","volume":"153","author":"U Zerbst","year":"2016","unstructured":"Zerbst U, Vormwald M, Pippan R, G\u00e4nser H-P, Sarrazin-Baudoux C, Madia M (2016) About the fatigue crack propagation threshold of metals as a design criterion\u2014a review. Eng Fract Mech 153:190\u2013243. https:\/\/doi.org\/10.1016\/j.engfracmech.2015.12.002","journal-title":"Eng Fract Mech"},{"key":"974_CR36","doi-asserted-by":"publisher","DOI":"10.1016\/j.ijfatigue.2022.107131","volume":"164","author":"L Duarte","year":"2022","unstructured":"Duarte L et al (2022) Recent developments in the determination of fatigue crack propagation thresholds. Int J Fatigue 164:107131. https:\/\/doi.org\/10.1016\/j.ijfatigue.2022.107131","journal-title":"Int J Fatigue"},{"issue":"3","key":"974_CR37","doi-asserted-by":"publisher","first-page":"318","DOI":"10.1007\/s40192-019-00149-0","volume":"8","author":"TQ Phan","year":"2019","unstructured":"Phan TQ et al (2019) Elastic residual strain and stress measurements and corresponding part deflections of 3D additive manufacturing builds of IN625 AM-bench artifacts using neutron diffraction, synchrotron X-ray diffraction, and contour method. Integr Mater Manuf Innov 8(3):318\u2013334. https:\/\/doi.org\/10.1007\/s40192-019-00149-0","journal-title":"Integr Mater Manuf Innov"},{"key":"974_CR38","doi-asserted-by":"publisher","first-page":"380","DOI":"10.1016\/j.ijfatigue.2019.03.025","volume":"124","author":"J Gockel","year":"2019","unstructured":"Gockel J, Sheridan L, Koerper B, Whip B (2019) The influence of additive manufacturing processing parameters on surface roughness and fatigue life. Int J Fatigue 124:380\u2013388. https:\/\/doi.org\/10.1016\/j.ijfatigue.2019.03.025","journal-title":"Int J Fatigue"},{"issue":"2","key":"974_CR39","doi-asserted-by":"publisher","first-page":"153","DOI":"10.1080\/17452759.2017.1310439","volume":"12","author":"A Salmi","year":"2017","unstructured":"Salmi A, Atzeni E (2017) History of residual stresses during the production phases of AlSi10Mg parts processed by powder bed additive manufacturing technology. Virtual Phys Prototyp 12(2):153\u2013160. https:\/\/doi.org\/10.1080\/17452759.2017.1310439","journal-title":"Virtual Phys Prototyp"},{"key":"974_CR40","doi-asserted-by":"publisher","first-page":"285","DOI":"10.1016\/j.actamat.2016.06.009","volume":"115","author":"J Suryawanshi","year":"2016","unstructured":"Suryawanshi J, Prashanth KG, Scudino S, Eckert J, Prakash O, Ramamurty U (2016) Simultaneous enhancements of strength and toughness in an Al-12Si alloy synthesized using selective laser melting. Acta Mater 115:285\u2013294. https:\/\/doi.org\/10.1016\/j.actamat.2016.06.009","journal-title":"Acta Mater"},{"key":"974_CR41","doi-asserted-by":"publisher","DOI":"10.1016\/j.matdes.2020.108581","volume":"191","author":"J Fiocchi","year":"2020","unstructured":"Fiocchi J, Biffi CA, Tuissi A (2020) Selective laser melting of high-strength primary AlSi9Cu3 alloy: processability, microstructure, and mechanical properties. Mater Des 191:108581. https:\/\/doi.org\/10.1016\/j.matdes.2020.108581","journal-title":"Mater Des"},{"issue":"7","key":"974_CR42","doi-asserted-by":"publisher","first-page":"2282","DOI":"10.1016\/S1003-6326(14)63345-8","volume":"24","author":"S Fu","year":"2014","unstructured":"Fu S, Yi D, Liu H, Jiang Y, Wang B, Hu Z (2014) Effects of external stress aging on morphology and precipitation behavior of \u03b8\u2033 phase in Al\u2013Cu alloy. Trans Nonferrous Met Soc China 24(7):2282\u20132288. https:\/\/doi.org\/10.1016\/S1003-6326(14)63345-8","journal-title":"Trans Nonferrous Met Soc China"},{"key":"974_CR43","doi-asserted-by":"publisher","DOI":"10.1016\/j.matdes.2021.109651","volume":"204","author":"J Fiocchi","year":"2021","unstructured":"Fiocchi J, Tuissi A, Biffi CA (2021) Heat treatment of aluminium alloys produced by laser powder bed fusion: a review. Mater Des 204:109651. https:\/\/doi.org\/10.1016\/j.matdes.2021.109651","journal-title":"Mater Des"},{"key":"974_CR44","doi-asserted-by":"publisher","first-page":"234","DOI":"10.1016\/j.addma.2018.03.014","volume":"21","author":"AH Maamoun","year":"2018","unstructured":"Maamoun AH, Elbestawi M, Dosbaeva GK, Veldhuis SC (2018) Thermal post-processing of AlSi10Mg parts produced by selective laser melting using recycled powder. Addit Manuf 21:234\u2013247. https:\/\/doi.org\/10.1016\/j.addma.2018.03.014","journal-title":"Addit Manuf"},{"key":"974_CR45","doi-asserted-by":"publisher","first-page":"196","DOI":"10.1016\/j.matlet.2018.09.109","volume":"234","author":"L Zhuo","year":"2019","unstructured":"Zhuo L et al (2019) Effect of post-process heat treatment on microstructure and properties of selective laser melted AlSi10Mg alloy. Mater Lett 234:196\u2013200. https:\/\/doi.org\/10.1016\/j.matlet.2018.09.109","journal-title":"Mater Lett"},{"issue":"5","key":"974_CR46","doi-asserted-by":"publisher","first-page":"254","DOI":"10.1108\/13552540610707013","volume":"12","author":"P Mercelis","year":"2006","unstructured":"Mercelis P, Kruth J-P (2006) Residual stresses in selective laser sintering and selective laser melting. Rapid Prototyp J 12(5):254\u2013265. https:\/\/doi.org\/10.1108\/13552540610707013","journal-title":"Rapid Prototyp J"},{"key":"974_CR47","doi-asserted-by":"publisher","DOI":"10.1002\/adem.202201855","author":"P Lehner","year":"2023","unstructured":"Lehner P, Blinn B, Beck T (2023) Improving the defect tolerance and fatigue strength of AM AlSi10Mg. Adv Eng Mater. https:\/\/doi.org\/10.1002\/adem.202201855","journal-title":"Adv Eng Mater"},{"key":"974_CR48","doi-asserted-by":"publisher","DOI":"10.1016\/j.addma.2020.101424","volume":"35","author":"A Du Plessis","year":"2020","unstructured":"Du Plessis A, Beretta S (2020) Killer notches: the effect of as-built surface roughness on fatigue failure in AlSi10Mg produced by laser powder bed fusion. Addit Manuf 35:101424. https:\/\/doi.org\/10.1016\/j.addma.2020.101424","journal-title":"Addit Manuf"},{"issue":"1229","key":"974_CR49","doi-asserted-by":"publisher","first-page":"198","DOI":"10.1098\/rspa.1957.0168","volume":"242","author":"PJE Forsyth","year":"1957","unstructured":"Forsyth PJE (1957) Slip-band damage and extrusion. Proc R Soc Lond A 242(1229):198\u2013202. https:\/\/doi.org\/10.1098\/rspa.1957.0168","journal-title":"Proc R Soc Lond A"}],"container-title":["Progress in Additive Manufacturing"],"original-title":[],"language":"en","link":[{"URL":"https:\/\/link.springer.com\/content\/pdf\/10.1007\/s40964-025-00974-0.pdf","content-type":"application\/pdf","content-version":"vor","intended-application":"text-mining"},{"URL":"https:\/\/link.springer.com\/article\/10.1007\/s40964-025-00974-0\/fulltext.html","content-type":"text\/html","content-version":"vor","intended-application":"text-mining"},{"URL":"https:\/\/link.springer.com\/content\/pdf\/10.1007\/s40964-025-00974-0.pdf","content-type":"application\/pdf","content-version":"vor","intended-application":"similarity-checking"}],"deposited":{"date-parts":[[2025,2,5]],"date-time":"2025-02-05T20:36:03Z","timestamp":1738787763000},"score":1,"resource":{"primary":{"URL":"https:\/\/link.springer.com\/10.1007\/s40964-025-00974-0"}},"subtitle":[],"short-title":[],"issued":{"date-parts":[[2025,2,5]]},"references-count":49,"alternative-id":["974"],"URL":"https:\/\/doi.org\/10.1007\/s40964-025-00974-0","relation":{},"ISSN":["2363-9512","2363-9520"],"issn-type":[{"value":"2363-9512","type":"print"},{"value":"2363-9520","type":"electronic"}],"subject":[],"published":{"date-parts":[[2025,2,5]]},"assertion":[{"value":"6 September 2024","order":1,"name":"received","label":"Received","group":{"name":"ArticleHistory","label":"Article History"}},{"value":"10 January 2025","order":2,"name":"accepted","label":"Accepted","group":{"name":"ArticleHistory","label":"Article History"}},{"value":"5 February 2025","order":3,"name":"first_online","label":"First Online","group":{"name":"ArticleHistory","label":"Article History"}},{"order":1,"name":"Ethics","group":{"name":"EthicsHeading","label":"Declarations"}},{"value":"For this research, there is no conflict of interest for all authors.","order":2,"name":"Ethics","group":{"name":"EthicsHeading","label":"Conflict of interest"}}]}}</enrichment>
    <enrichment key="local_crossrefDocumentType">journal-article</enrichment>
    <enrichment key="opus.source">publish</enrichment>
    <enrichment key="date_peer_review">19.02.2025</enrichment>
    <licence>Creative Commons - CC BY - Namensnennung 4.0 International</licence>
    <author>Lea Strauß</author>
    <author>Larissa Duarte</author>
    <author>Julius Kruse</author>
    <author>Mauro Madia</author>
    <author>Günther Löwisch</author>
    <subject>
      <language>eng</language>
      <type>uncontrolled</type>
      <value>AlSi10Mg</value>
    </subject>
    <subject>
      <language>eng</language>
      <type>uncontrolled</type>
      <value>Kitagawa–Takahashi diagram</value>
    </subject>
    <subject>
      <language>eng</language>
      <type>uncontrolled</type>
      <value>El Haddad</value>
    </subject>
    <subject>
      <language>eng</language>
      <type>uncontrolled</type>
      <value>Equivalent stress</value>
    </subject>
    <subject>
      <language>eng</language>
      <type>uncontrolled</type>
      <value>Fatigue-life prediction</value>
    </subject>
    <subject>
      <language>eng</language>
      <type>uncontrolled</type>
      <value>PBF-LB/M</value>
    </subject>
    <collection role="ddc" number="620">Ingenieurwissenschaften und zugeordnete Tätigkeiten</collection>
    <collection role="institutes" number="">9 Komponentensicherheit</collection>
    <collection role="institutes" number="">9.4 Integrität von Schweißverbindungen</collection>
    <collection role="themenfelder" number="">Material</collection>
    <collection role="literaturgattung" number="">Verlagsliteratur</collection>
    <collection role="fulltextaccess" number="">Datei für die Öffentlichkeit verfügbar ("Open Access")</collection>
    <collection role="unnumberedseries" number="">Wissenschaftliche Artikel der BAM</collection>
    <collection role="themenfelder" number="">Additive Fertigung</collection>
    <thesisPublisher>Bundesanstalt für Materialforschung und -prüfung (BAM)</thesisPublisher>
    <file>https://opus4.kobv.de/opus4-bam/files/62517/250205_Strauss.pdf</file>
  </doc>
</export-example>
