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1、第九次作业中文4-1:铝的弹性模量为70GPa,泊松比为0.34,在83MPa的静水压时,此单位晶胞的体积是多少?由E=3K(1-2ν)得K=E/[3(1-2ν)]=70Gpa/[3(1-2*0.34)]=72.9Gpa△V/V=σ/K=83Mpa/72.9GPa=1.14‰V=4.04963*10-30*(1-1.14‰)=66.310-30(m3)4-3直径为12.83mm的试棒,标距长度为50mm,轴向受200kN的作用力后拉长0.456mm,且直径变成12.79mm,(a)此试棒的体积模量是多少?(b)剪切模量是多少?解:σ=F/S=F/(πd2/
2、4)=1.56GPaε=ΔL/L=0.456/50=0.912%正弹性模量:E=σ/ε=1.56Gpa/0.912%=172.9Gpa泊松比:ν=-eY/eX=[-(12.79-12.83)/12.83]/0.912%=0.342(a)体积模量:K=E/[3(1-2ν)]=172.9/[3(1-2*0.342)]=182Gpa(b)剪切模量:G=E/(2(1+ν))=172.9/[2*(1+0.342)]=64Gpa英文书7.20Acylindricalmetalspecimen15.0mmindiameterand150mmlongistobesubject
3、edtoatensilestressof50Mpa;atthisstressleveltheresultingdeformationwillbetotallyelastic.(a)Iftheelongationmustbelessthan0.072mm,whichofthemetalsinTable7.1aresuitablecandidates?Why?=l/l0=0.072mm/150mm=0.00048=E,E=/=50MPa/0.00048=104GPa要使l<0.072mm,则E>104MPa,因此inTable7.1,themetal
4、sofTungsten,steel,nickel,titaniumandcopperaresuitablecandidates.(b)If,inaddition,themaximumpermissiblediameterdecreaseis2.3×10-3mm,whichofthemetalsinTable7.1maybeused?Why?y=d/d0=0.0023mm/15mm=0.000153v=-y/x=0.000153/0.00048=0.319要使d<0.0023mm,则v<0.319,因此inTable7.1,themetalsofTun
5、gsten,steelandnickelmaybeused.7.24Acylindricalrod380mmlong,havingadiameterof10.0mm,istobesubjectedtoatensileload.Iftherodistoexperienceneitherplasticdeformationnoranelongationofmorethan0.9mmwhentheappliedloadis24,500N,whichofthefourmetalsoralloyslistedbelowarepossiblecandidates?=F/
6、A0=F/(d02/4)=24500N/(3.14*102mm2/4)=312MPa,因此从屈服强度来看,只有SteelalloyandBrassalloy才有可能。另外:=l/l0=0.9mm/380mm=0.00237=E,E=/=312MPa/0.00237=131MPa,因此,l<0.9mm,E必须>大于131MPa,因此Steelalloy合适。7.47Asteelspecimenhavingarectangularcrosssectionofdimensions19mm×3.2mm(0.75in×0.125in.)hasthestr
7、ess–strainbehaviorshowninFigure7.33.Ifthisspecimenissubjectedtoatensileforceof33,400N(7,500lbf),then(a)Determinetheelasticandplasticstrainvalues.(b)Ifitsoriginallengthis460mm(18in.),whatwillbeitsfinallengthaftertheloadinpartaisappliedandthenreleased?(a)Determinetheelasticandplastics
8、trainvalues.弹性变形应变数