材料科学与工程基础作业讲评-6

上传人:bei****lei 文档编号:252404493 上传时间:2024-11-15 格式:PPT 页数:14 大小:139.50KB
返回 下载 相关 举报
材料科学与工程基础作业讲评-6_第1页
第1页 / 共14页
材料科学与工程基础作业讲评-6_第2页
第2页 / 共14页
材料科学与工程基础作业讲评-6_第3页
第3页 / 共14页
点击查看更多>>
资源描述
,*,单击此处编辑母版标题样式,单击此处编辑母版文本样式,第二级,第三级,第四级,第五级,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(1-2),得,K=E/3(1-2),=70Gpa/3(1-2*0.34)=72.9Gpa,V/V=/K=83Mpa/72.9GPa=1.14,V=4.0496,3,*10,-30,*(1-1.14)=,66.3,10,-30,(m,3,),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:,=F/S=F/(d,2,/4)=1.56GPa,=L/L=0.456/50=0.912%,正弹性模量:,E=/=1.56Gpa/0.912%=172.9Gpa,泊松比:,=-,e,Y,/,e,X,=-(12.79-12.83)/,12.83,/,0.912%=,0.342,(a),体积模量:,K=E/3(1-2)=172.9/3(1-2*0.342),=182Gpa,(b),剪切模量:,G=E/(2(1+)=172.9/2*(1+0.342)=64Gpa,英文书,7.20 A cylindrical metal specimen 15.0mm in diameter and 150mm long is to be subjected to a tensile stress of 50,Mpa,;at this stress level the resulting deformation will be totally elastic.,(a),If the elongation must be less than 0.072mm,which of the metals in Table7.1 are suitable candidates?Why?,=,l/l,0,=0.072mm/150mm=0.00048,=,E,,,E,=,/,=50MPa/0.00048=104GPa,要使,l,104MPa,因此,in Table7.1,the metals of Tungsten,steel,nickel,titanium and copper are suitable candidates.,(b,)If,in addition,the maximum permissible diameter decrease is 2.3,10,-3,mm,which of the metals in Table 7.1 may be used?Why?,y,=,d/d,0,=0.0023mm/15mm=0.000153,v,=-,y,/,x,=0.000153/0.00048=0.319,要使,d,0.0023mm,则,v,0.319,因此,in Table7.1,the metals of Tungsten,steel and nickel may be used.,7.24,A cylindrical rod 380 mm long,having a diameter of 10.0 mm,is to be subjected to a tensile load.If the rod is to experience neither plastic deformation nor an elongation of more than 0.9 mm when the applied load is 24,500 N,which of the four metals or alloys listed below are possible candidates?,=F/A,0,=F/(,d,0,2,/4)=24500N/(3.14*10,2,mm,2,/4)=312 MPa,因此从屈服强度来看,只有,Steel alloy and Brass alloy,才有可能。,另外:,=,l/l,0,=0.9mm/380mm=0.00237,=,E,,,E,=,/,=312MPa/0.00237=131MPa,因此,,l,大于,131MPa,因此,Steel alloy,合适。,7.47,A steel specimen having a rectangular cross section of dimensions 19 mm3.2 mm(0.75in0.125in.)has the stressstrain behavior shown in,Figure,7.33,.If this specimen is subjected to a tensile force of 33,400 N(7,500lbf),then,(a)Determine the elastic and plastic strain values.,(b)If its original length is 460 mm(18 in.),what will be its final length after the load in part a is applied and then released?,(a)Determine the elastic and plastic strain values.,弹性变形应变数值大约:,0-0.0015,,,塑性变形:,0.0015,(b)If its original length is 460 mm(18 in.),what will be its final length after the load in part a is applied and then released?,E,=slope=,/,=(,2,-,1,)/(,2,-,1,)=(300-0)MPa/(0.0013-0)=231GPa,=F/A,0,=F/(,a,*,b,)=33400N/(19*3.2mm,2,)=549.3MPa,图中可知,在该应力时的总应变为,总,=0.005,最大弹性为,:,弹,=0.0015,去除应力后弹性应变回复,故长度为,:,l,0,*(,1+,总,-,弹,)=,460,*(1+0.005,0.0015,),=461.61 mm,8.24(a)Show,for a tensile test,that,if there is no change in specimen volume during the deformation process(i.e.,A,0,l,0,=,A,d,l,d,).,CW%=(,A,0,-,A,d,)/,A,0,100=(1-,A,d,/,A,0,)*100,A,0,l,0,=A,d,l,d,A,d,/A,0,=l,0,/l,d,=l,0,/(l,0,+,l)=,1/,(l,0,+,l)/l,0,=1/1+,所以,CW%=(,A,0,-,A,d,)/,A,0,100=(1-,A,d,/,A,0,),100=1-1/(1+,),100,=,/(1+,),100,即上式。,(b)Using the result of part a,compute the percent cold work experienced by naval brass(the stressstrain behavior of which is shown in Figure 7.12)when a stress of 400 MPa is applied.,=0.12,CW%=,/(1+,),100=0.12/(1+0.12),100%=10.7%,4-6.,已知温度为,25,时五种高聚物的性能,用下面列的名称来识别是哪种高聚物,并说明原因。,a.,拉伸强度 伸长率 冲击强度(悬臂梁)弹性模量,MPa,%,Nm,MPa103,(1)62.1 110 19.04 2.415,51.8 0 0.41 6.90,27.6 72 4.08 0.828,69.0 0 1.09 6.90,17.3 200 5.44 0.414,名称:环氧树脂、聚四氟乙烯、聚乙烯、酚醛树脂、聚碳酸酯,思考题,(,1,),PC;,(,2),酚醛,;,(,3,),HDPE,;,(,4,)环氧树脂,;,(,5,),PTFE,4-14.,有哪些途径可以提高材料的刚性?,复合材料、提高材料刚性、结晶、交联、提高分子量、热处理,7.22 Cite the primary differences between elastic,anelastic,and plastic deformation behaviors.,分别从概念、原子论角度、施加应力后的应变、材料的差别(或对应的材料)等几个方面阐述。,8.18 Describe in your own words the three strengthening mechanisms discussed in this chapter(i.e.,grain size reduction,solid solution strengthening,and strain hardening).Be sure to explain how dislocations are involved in each of the strengthening techniques.,Grain size reduction:,晶粒尺寸减少,位错时滑移减少方向的改变;原子位置不连续减少。,Solid solution strengthening,:,加入不同种的原子相成形成固溶体或合金,这些加入的原子限制位错移动。,Strain hardening,:,先施加应力产生位错。而位错之间的作用是排斥的,结果是存在的一个位错限制另一位错的移动。,
展开阅读全文
相关资源
正为您匹配相似的精品文档
相关搜索

最新文档


当前位置:首页 > 办公文档 > 教学培训


copyright@ 2023-2025  zhuangpeitu.com 装配图网版权所有   联系电话:18123376007

备案号:ICP2024067431-1 川公网安备51140202000466号


本站为文档C2C交易模式,即用户上传的文档直接被用户下载,本站只是中间服务平台,本站所有文档下载所得的收益归上传人(含作者)所有。装配图网仅提供信息存储空间,仅对用户上传内容的表现方式做保护处理,对上载内容本身不做任何修改或编辑。若文档所含内容侵犯了您的版权或隐私,请立即通知装配图网,我们立即给予删除!