典型文献
Superior low cycle fatigue property from cell structures in additively manufactured 316L stainless steel
文献摘要:
We have investigated the low cycle fatigue(LCF)properties and the extent of strengthening in a dense additively manufactured stainless steel containing different volume fractions of cell structures but having all other microstructure characteristics the same.The samples were produced by laser powder bed fusion(L-PBF),and the concentration of cell structures was varied systematically by varying the annealing treat-ments.Load-controlled fatigue experiments performed on samples with a high fraction of cell structures reveal an up to 23 times increase in fatigue life compared to an essentially cell-free sample of the same grain configuration.Multiscale electron microscopy characterizations reveal that the cell structures serve as the soft barriers to the dislocation propagation and the partials are the main carrier for cyclic loading.The cell structures,stabilized by the segregated atoms and misorientation between the adjacent cells,are retained during the entire plastic deformation,hence,can continuously interact with dislocations,pro-mote the formation of nanotwins,and provide massive 3D network obstacles to the dislocation motion.The compositional micro-segregation caused by the cellular solidification features serves as another non-negligible strengthening mechanism to dislocation motion.Specifically,the cell structures with a high density of dislocation debris also appear to act as dislocation nucleation sites,very much like coherent twin boundaries.This work indicates the potential of additive manufacturing to design energy absorbent alloys with high performance by tailoring the microstructure through the printing process.
文献关键词:
中图分类号:
作者姓名:
Luqing Cui;Dunyong Deng;Fuqing Jiang;Ru Lin Peng;Tongzheng Xin;Reza Taherzadeh Mousavian;Zhiqing Yang;Johan Moverare
作者机构:
Department of Management and Engineering,Division of Engineering Materials,Link?ping University,Link?ping SE-58183,Sweden;Shenyang National Laboratory for Materials Science,Institute of Metal Research,Chinese Academy of Sciences,Shenyang 110016,China;School of Materials Science and Engineering,The University of New South Wales,Sydney,NSW 2052,Australia;I-Form,Advanced Manufacturing Research Centre,Dublin City University,Dublin 9,Ireland;Ji Hua Laboratory,Foshan 528200,China
文献出处:
引用格式:
[1]Luqing Cui;Dunyong Deng;Fuqing Jiang;Ru Lin Peng;Tongzheng Xin;Reza Taherzadeh Mousavian;Zhiqing Yang;Johan Moverare-.Superior low cycle fatigue property from cell structures in additively manufactured 316L stainless steel)[J].材料科学技术(英文版),2022(16):268-278
A类:
partials,nanotwins
B类:
Superior,low,cycle,fatigue,property,from,structures,additively,manufactured,316L,stainless,steel,We,have,investigated,LCF,properties,extent,strengthening,dense,containing,different,volume,fractions,but,having,microstructure,characteristics,same,samples,were,produced,by,laser,powder,bed,fusion,PBF,concentration,was,varied,systematically,varying,annealing,treat,Load,controlled,experiments,performed,high,reveal,times,increase,life,compared,essentially,free,grain,configuration,Multiscale,electron,microscopy,characterizations,that,soft,barriers,propagation,main,carrier,cyclic,loading,stabilized,segregated,atoms,misorientation,between,adjacent,cells,retained,during,entire,plastic,deformation,hence,can,continuously,interact,dislocations,mote,provide,massive,network,obstacles,motion,compositional,segregation,caused,cellular,solidification,features,serves,another,negligible,mechanism,Specifically,density,debris,also,appear,nucleation,sites,very,much,like,coherent,boundaries,This,indicates,potential,manufacturing,design,energy,absorbent,alloys,performance,tailoring,through,printing,process
AB值:
0.609915
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