分享
分销 收藏 举报 申诉 / 51
播放页_导航下方通栏广告

类型无机非金属材料工程专业英语.pptx

  • 上传人:人****来
  • 文档编号:12634691
  • 上传时间:2025-11-17
  • 格式:PPTX
  • 页数:51
  • 大小:3.56MB
  • 下载积分:14 金币
  • 播放页_非在线预览资源立即下载上方广告
    配套讲稿:

    如PPT文件的首页显示word图标,表示该PPT已包含配套word讲稿。双击word图标可打开word文档。

    特殊限制:

    部分文档作品中含有的国旗、国徽等图片,仅作为作品整体效果示例展示,禁止商用。设计者仅对作品中独创性部分享有著作权。

    关 键  词:
    无机 非金属材料 工程 专业 英语
    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,Fundamentals of Materials Science and Engineering,Chapter 7,Deformation and strengthening mechanisms,1/51,Why study deformation and strengthening mechanism?,Most of metallic products are produced through deforming the metal somehow to obtain desired shape,size and strength.But what factors would influence the process of deformation?,You may have an experience that an iron wire will get tougher and it will break finally when it is bended for times.Do you know why?,Study on deformation and strengthening mechanism will help us use and develop materials better.,2/51,What should you be able to do after studying this chapter?,Describe dislocation motion from an atoms perspective.,Understand the relationships between dislocation motion and plastic deformation of metallic materials.,Define slip system and explain the influence of slip system on the deformability of materials.,Explain mechanism of grain boundary strengthening,solid-solution strengthening,strain hardening.,Describe recovery and recrystllization in terms of both the alternation of microstructure and mechanical characteristics of the material.,3/51,Important terms and concepts:,Cold working,冷加工,Critical resolved shear stress,临界分剪切应力,Dislocation density,位错密度,Grain growth,晶粒生长,Lattice strain,晶格应变,Recovery,回复,Recrystallization temperature,再结晶温度,Resolved shear stress,分剪切应力,4/51,Slip,滑移,Slip system,滑移系,Recrystallization,再结晶,solid-solution strengthening,固溶强化,strain hardening,应变强化,strengthening by grain size reduction,细晶强化,annealing,退火,temper,回火,quench,淬火,ageing,时效,5/51,natural ageing,自然时效,artifical ageing,人工时效,dislocation multiplication,位,错繁殖,misorientation,位相差异,equiaxed grains,等轴晶粒,elongated grains,拉长晶粒,strain field,应变场,Stress field,应力场,6/51,Key knowledge points:,Deformations mechanisms for metals,1.,Historical:,1930s,theory and actually measured discrepancy in mechanical strengths,1950s,dislocation be examined by electron microscope,7/51,2.,Basic concepts of dislocations,Plastic deformation corresponds to the motion of large numbers of dislocations.,An edge dislocation moves in response to a shear stress applied in a direction perpendicular to its line.,In an edge dislocation,localized lattice distortion exists along the end of an extra half-plane of atoms.,The mechanics of dislocation motion are represented in,Fig.7,.1,8/51,The mechanics of dislocation motion,Fig.7.1 Atomic rearrangements that accompany the motion of an edge dislocation as it moves in response to an applied shear stress.,The extra half-plane of atoms is labeled A.,The dislocation moves one atomic distance to the right as A links up to the lower portion of plane B;in the process,the upper portion of B becomes the extra half-plane.,A step forms on the surface of the crystal as the extra-plane exists.,9/51,Slip,-the process by which plastic deformation is produced by dislocation motion is termed slip.,slip,plane,-,-the crystallographic plane along which the dislocation line traverses is the slip plane.,Macroscopic plastic deformation simply corresponds to permanent deformation that results from the movement of dislocations,or slip,in response to an applied shear stress.,10/51,Drawing a carpet in the way of(a)and(b)may help you understand the motion of dislocation better.,11/51,Dislocation motion is analogous to the mode of locomotion employed by a caterpillar,(Fig.7.3),12/51,The motion of a screw dislocation in response to the applied shear stresses shown in,Fig.7.2b,.the direction of movement is perpendicular to the stress direction.,For an edge,motion is parallel to the shear stress.However,the net plastic deformation for the motion of both dislocation types is the same.,The direction of motion of the mixed dislocation line is neither perpendicular nor parallel to the applied stress,but lies somewhere in between.,13/51,Fig.7.2 The formation of a step on the surface of a crystal by the motion of(a)an edge dislocation and(b)a screw dislocation.Note that for an edge,the dislocation line move in the direction of the applied shear stress,;for a screw,the dislocation line motion is perpendicular to the stress direction.,14/51,Dislocation density,-the number of dislocation in a material is expressed as the total dislocation length per unit volume,or equivalently,the number of dislocations that intersect a unit area of a random section.,The units of dislocation density are millimeters of dislocation per cubic millimeter or just per square millimeter.,15/51,Do you find some relationships between deformation and density of dislocation?What is it?What does it mean?,Dislocation density,Solidified metal crystal 10,3,mm,-2,Heavy deformed metal 10,9,to 10,10,mm,-2,Heat treating could reduce the density to on the order of 10,5,to 10,6,mm,-2,Ceramic materials 10,2,to 10,4,mm,-2,Silicon single crystal 0.1 to 1 mm,-2,16/51,3.Characteristics of dislocation,When metals are plastically deformed,some fraction of the deformation energy (approximately 5%)is retained internally,the remainder is,dissipated(lost,消失,),as heat.The major portion of this stored energy is as strain energy associated with dislocations.,Lattice strains,(Fig.7.4),-some atomic lattice distortion exists around the dislocation line because of the presence of the extra half-plane of atoms.,17/51,Fig.7.4 Regions of compression(dark)and tension(colored)located around an edge dislocation.,18/51,The strains extend into the surrounding atoms,and their magnitudes decrease with radial distance from the dislocation.,The strain fields,surrounding dislocations in close proximity to one another may interact such that forces are imposed on each dislocation by the combined interactions of all its neighboring dislocations.,(Fig.7.5),19/51,Fig.7.5(a)Two edge dislocation of the same sign and lying on the same slip plane exert a repulsive force on each other;,C,and,T,denote compression and tensile regions,respectively.(b)Edge dislocations of opposite sign and lying on the same slip plane exert an attractive force on each other.Upon meeting,they annihilate each other and leave a region of perfect crystal.,20/51,4.Slip system,Dislocations do not move with the same degree of ease on all crystallographic planes of atoms and in all crystallographic directions.,Ordinarily there is a,preferred plane,and in that plane there are,specific directions,along which dislocation motion occurs.,This plane is called the,slip plane,.It follows that the direction of movement is called the,slip direction,.,21/51,slip system,-,-This combination of the slip plane and the slip direction.The slip system depends on the crystal structure of the metal and is such that the atomic distortion that accompanies the motion of a dislocation is a minimum.,For a particular crystal structure,the slip plane is that plane having the most dense atomic packing,that is has the greatest planar density.,22/51,The slip direction corresponds to the direction,in this plane,that is most closely packed with atoms,that is,has,the highest linear density.,For example:FCC crystal structure,111slip plane,slip direction,12 slip system,(Fig.7.6 and table 7.1),The more slip system,the more ductile of the metal.HCP metals have few active slip systems,are normally quite brittle.,23/51,24/51,25/51,5.Plastic deformation of polycrystalline metals,For polycrystalline metals,the direction of slip system varies from one grain to another.For each,dislocation motion occurs along the slip system that has the most favorable orientation (i.e.,the highest shear stress).,(Fig.7.10),Gross plastic deformation of a polycrystalline specimen corresponds to the comparable distortion of the individual grains by means of slip.,(Fig.7.11),26/51,Figure 7.10 slip lines on the surface of a polycrystalline specimen of copper that was polished and subsequently deformed.,27/51,Figure 7.11 Alteration of the grain structure of a polycrystalline metal as a result of plastic deformation.,(a)Before deformation the grains are equiaxed.,(b)The deformation has produced elongated grains.,28/51,During deformation,mechanical integrity and coherency are maintained along the grain boundaries.As a consequence,each individual grain is constrained,to some degree,in the shape it may assume by its neighboring grains.,Polycrystalline metals are stronger than their single-crystal equivalents,which means that greater stresses are required to initiate slip and the attendant yielding.,29/51,1.Strengthening by grain size reduction,(细晶强化),Mechanisms of strengthening in metals,Metallurgical and materials engineers are often called on to design alloys having high strengths yet some ductility and toughness.Ordinarily,ductility is sacrificed when an alloy is strengthened.,Important to the understanding of strengthening mechanisms is the relation between dislocation motion and mechanical behavior of metals.,30/51,Macroscopic plastic deformation corresponds to the motion of large numbers of dislocations,the ability of a metal to plastically deform depends on the ability of dislocations to move.,Restriction or hindering dislocation motion renders a material harder and stronger.,The size of the grains,or average grain diameter,in a polycrystalline metal influences the mechanical properties.,(Fig.7.14),31/51,Fig.7.14 The motion of a dislocation as it,encounters,a grain boundary,illustrating how the boundary acts as a barrier to continued slip.Slip planes are discontinuous and change directions across the boundary.,32/51,The grain boundary acts as a barrier to dislocation motion for two reasons,Since the two grains are of different orientations,a dislocation passing into grain B will have to change its direction of motion;this becomes more difficult as the crystallographic misorientation increases.,The atomic disorder within a grain boundary region will result in a discontinuity of slip planes form one grain into the other,33/51,A fine-grained material (one that has small grains)is harder and stronger than one that is coarse grained,since the former has a greater total grain boundary area to impede dislocation motion.,Hall-Petch equation:,y,=,0,+,k,d,-1/2,34/51,Fig.8.15 The influence of grain size on the yield strength of a 70Cu-30 Zn brass alloy.Note that the grain diameter increases from right to left and is not linear.,35/51,2.Solid-Solution Strengthening(,固溶强化,),High-purity metals are almost always softer and weaker than alloys composed of the same base metal.,Increasing the concentration of the impurity results in an attendant increase in tensile and yield strengths.,solid-solution strengthening-impurity atoms go into either substitutional or interstitial solid solution impose lattice strains.,36/51,Alloys are stronger than pure metals because impurity atoms that go into solid solution ordinarily impose lattice strains on the surrounding host atoms.,Lattice strain filed interactions between dislocations and these impurity atoms result,and consequently,dislocation movement is restricted.Fig.7.16 7.17,7.18,37/51,3.strain hardening or work hardening or cold working,(,形变强化,冷作硬化),Strain hardening,is the phenomenon whereby a ductile metal becomes harder and,stronger as it is plastically deformed.,Sometimes it is also called,work hardening,or,because the temperature at which deformation takes place is cold relative to,the absolute melting temperature of the metal,cold working.,Most metals strain,harden at room temperature.,It is sometimes convenient to express the degree of plastic deformation as,percent cold work,rather than as strain.Percent cold work(%CW)is defined as,where,A,0,is the original area of the cross section that experiences deformation,and,A,d,is the area after deformation.,38/51,Fig.7.16 Variation with nickel content of,tensile strength,yield strength,and,ductility for copper-nickel alloys,showing strengthening.,39/51,Fig.7.17(a)Representation of tensile lattice strains imposed on host atoms by a smaller substitutional impurity atom.(b)Possible locations of smaller impurity atoms relative to an edge dislocation such that there is partial cancellation of impurity-dislocation lattice strains.,40/51,Fig.7.18(a)Representation of compressive strains imposed on host atoms by a larger substitutional impurity atom.(b)Possible locations of larger impurity atoms relative to an edge dislocation such that there is partial cancellation of impurity-dislocation lattice strains.,41/51,The dislocation density in a metal increase with deformation or cold work,due to,dislocation multiplication,(,繁殖,增加,)or the formation of new dislocations.,On the average,dislocation-dislocation strain interactions are repulsive.The net result is the motion of a dislocation is hindered by the presence of other dislocations.,42/51,Recovery,recrystallization,and grain growth,Plastically deforming a polycrystalline metal specimen at temperatures that are low relative to its absolute melting temperature produces microstructure and property changes that include,(1)a change in grain shape,(2)strain hardening,(3)an increase in dislocation density.,43/51,Some fraction of the energy expanded in deformations is stored in the metal as strain energy which is associated with tensile,compressive and shear zones around the newly created dislocations.These properties and structures may,revert(return),back to the precold-worked states by appropriate heat treatment.,Such restoration results from two different processes that occur at elevated temperatures:,recovery,and,recrystallization,which may be followed by grain growth.,.,44/51,Recovery,During recovery,some of the stored internal strain energy is relieved by virtue of dislocation motion(in the absence of an externally applied stress),as a result of enhanced atomic diffusion at the elevated temperature.,There is some reduction in the number of dislocations,and dislocation configurations(similar to that shown in Figure 5.12)are produced having low strain energies.,In addition,physical properties such as electrical and thermal conductivities and the like are recovered to their precold-worked states.,45/51,Recrystallization,Recrystallization is the formation of a new set of strain-free and equiaxed grains that have low dislocation densities and are characteristic of the pre-cold-worked condition.,(Fig.7.21),After recrystallization,the metal becomes softer,weaker,yet more ductile.,Recrystallization temperature,-the temperature at which recrystallization just reaches completion in 1h.Typically,it is between one third and one half of the absolute melting temperature of a metal or alloy and depends on several factors,including the amount of,prior,cold work and purity of the alloy.,46/51,Fig.7.22 The influence of annealing temperature on the tensile strength and ductility of a brass alloy.Grain size as a function of annealing temperature is indicated.Grain structures during recovery,recrystallization,and grain growth stages are shown schematically.,47/51,48/51,Important conclusions:,On a microscopic level,plastic deformation of metals co
    展开阅读全文
    提示  咨信网温馨提示:
    1、咨信平台为文档C2C交易模式,即用户上传的文档直接被用户下载,收益归上传人(含作者)所有;本站仅是提供信息存储空间和展示预览,仅对用户上传内容的表现方式做保护处理,对上载内容不做任何修改或编辑。所展示的作品文档包括内容和图片全部来源于网络用户和作者上传投稿,我们不确定上传用户享有完全著作权,根据《信息网络传播权保护条例》,如果侵犯了您的版权、权益或隐私,请联系我们,核实后会尽快下架及时删除,并可随时和客服了解处理情况,尊重保护知识产权我们共同努力。
    2、文档的总页数、文档格式和文档大小以系统显示为准(内容中显示的页数不一定正确),网站客服只以系统显示的页数、文件格式、文档大小作为仲裁依据,个别因单元格分列造成显示页码不一将协商解决,平台无法对文档的真实性、完整性、权威性、准确性、专业性及其观点立场做任何保证或承诺,下载前须认真查看,确认无误后再购买,务必慎重购买;若有违法违纪将进行移交司法处理,若涉侵权平台将进行基本处罚并下架。
    3、本站所有内容均由用户上传,付费前请自行鉴别,如您付费,意味着您已接受本站规则且自行承担风险,本站不进行额外附加服务,虚拟产品一经售出概不退款(未进行购买下载可退充值款),文档一经付费(服务费)、不意味着购买了该文档的版权,仅供个人/单位学习、研究之用,不得用于商业用途,未经授权,严禁复制、发行、汇编、翻译或者网络传播等,侵权必究。
    4、如你看到网页展示的文档有www.zixin.com.cn水印,是因预览和防盗链等技术需要对页面进行转换压缩成图而已,我们并不对上传的文档进行任何编辑或修改,文档下载后都不会有水印标识(原文档上传前个别存留的除外),下载后原文更清晰;试题试卷类文档,如果标题没有明确说明有答案则都视为没有答案,请知晓;PPT和DOC文档可被视为“模板”,允许上传人保留章节、目录结构的情况下删减部份的内容;PDF文档不管是原文档转换或图片扫描而得,本站不作要求视为允许,下载前可先查看【教您几个在下载文档中可以更好的避免被坑】。
    5、本文档所展示的图片、画像、字体、音乐的版权可能需版权方额外授权,请谨慎使用;网站提供的党政主题相关内容(国旗、国徽、党徽--等)目的在于配合国家政策宣传,仅限个人学习分享使用,禁止用于任何广告和商用目的。
    6、文档遇到问题,请及时联系平台进行协调解决,联系【微信客服】、【QQ客服】,若有其他问题请点击或扫码反馈【服务填表】;文档侵犯商业秘密、侵犯著作权、侵犯人身权等,请点击“【版权申诉】”,意见反馈和侵权处理邮箱:1219186828@qq.com;也可以拔打客服电话:0574-28810668;投诉电话:18658249818。

    开通VIP折扣优惠下载文档

    自信AI创作助手
    关于本文
    本文标题:无机非金属材料工程专业英语.pptx
    链接地址:https://www.zixin.com.cn/doc/12634691.html
    页脚通栏广告

    Copyright ©2010-2025   All Rights Reserved  宁波自信网络信息技术有限公司 版权所有   |  客服电话:0574-28810668    微信客服:咨信网客服    投诉电话:18658249818   

    违法和不良信息举报邮箱:help@zixin.com.cn    文档合作和网站合作邮箱:fuwu@zixin.com.cn    意见反馈和侵权处理邮箱:1219186828@qq.com   | 证照中心

    12321jubao.png12321网络举报中心 电话:010-12321  jubao.png中国互联网举报中心 电话:12377   gongan.png浙公网安备33021202000488号  icp.png浙ICP备2021020529号-1 浙B2-20240490   


    关注我们 :微信公众号  抖音  微博  LOFTER               

    自信网络  |  ZixinNetwork