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1.
表面粗糙度对TC4钛合金柱壳剪切带形成的影响   总被引:1,自引:0,他引:1  
剪切带是材料在高应变率加载条件下特有的变形和损伤形式之一,关于影响金属材料中剪切带形成的敏感性因素及其机理的研究,一直是科学研究和工程设计中关注的重点问题. 在柱壳高速坍塌过程中,剪切带优先在内表面形核, 其形核及扩展行为受内表面介观状态的影响显著.本文采用爆轰加载厚壁圆筒坍塌实验技术,结合材料表面处理技术、微结构表征技术和剪切带理论模型分析,研究了内表面粗糙度变化对TC4钛合金柱壳剪切带形成影响的细观动力学规律.结果表明, 在爆炸加载形成的高应变率条件下,表面粗糙度对TC4钛合金柱壳中剪切带形成具有明显影响. 在相同的变形条件下,随着试样内表面粗糙度的增大, 剪切带数量、长度和形核速率均增大;表面粗糙度越大, 部分剪切带扩展速率越快, 剪切带长度差异越大,剪切带的屏蔽效应增强. 分析表明,实验获得的剪切带间距与W-O模型和M模型预测结果基本吻合,具体数值受试样内表面粗糙度影响, 随着表面粗糙度的增大,实验结果逐渐小于预测数值.   相似文献   

2.
金属柱壳在爆炸加载断裂中的单旋现象   总被引:6,自引:3,他引:3  
系列实验结果表明,在较强的滑移爆轰加载下,许多金属材料的旋转柱壳会呈现一种奇特的单旋剪切失稳破坏模式受驱动壳壁结构上众多剪切滑移带及断口取向一致化,在45和135两族剪切带中,出现一族占优的现象。通过高速分幅和X光照相对剪切裂纹在壳壁内、外表的生成发展图像的记录和碎片样品回收,结合过程应力分析,对微剪切断裂发展过程中环向和纵向关联的可能机制进行了分析讨论,但疑点仍较多。在分析柱壳的高应变率失稳行为时,对于与加载条件及几何构形紧密耦合的材料动载剪切强度、各向异性性质所扮演的角色需要进一步认识。剪切断裂的单旋与聚能罩内层无破坏的射流整体旋转现象表现方式和程度虽有差异,但可能有着共同本质,值得深入探索。  相似文献   

3.
TA2钛合金开口柱壳外爆碎片分布研究   总被引:1,自引:0,他引:1  
吴文苍  董新龙  庞振  周风华 《力学学报》2021,53(6):1795-1806
金属柱壳爆炸膨胀断裂机制及其对碎片分布、特征尺寸的影响是应用物理、力学、兵器工程等领域共同关心的重要课题, 但目前除数值模拟外, 考虑断裂机制的简单二维碎裂模型尚未出现.开展TA2钛合金开口柱壳在不同装药条件下的碎裂实验研究, 通过对软回收碎片的统计及微观分析, 探讨金属柱壳外爆断裂模式及二维碎片分布规律, 结果显示:(1) TA2钛合金柱壳在实验爆压(7 $\sim$ 25 GPa)下宏观断口均为剪切断裂模式, 但机制不同, 在较高爆压下柱壳剪切断裂由多重绝热剪切带破坏控制, 在较低压力下为剪切破坏;(2) 与一维拉伸碎裂相比, 柱壳爆炸碎裂不充分, 碎片质量更符合$\beta=1$ (或更接近1)的指数分布; 爆炸碎裂越充分, 碎片越小并趋于均匀, $\beta$趋于较小的值, 趋向Mott和Linfoot提出的泊松统计分布形式;(3) Rayleigh分布可以较好描述柱壳碎片的宽度分布规律, 不同爆压下柱壳碎片宽度归一化尺寸分布具有相似性, 呈现"量子化"特性, 即存在最小的特征尺寸; (4) TA2柱壳碎片特征尺寸远大于G-K剪切断裂公式预测的尺寸, G-K剪切式描述的是多重绝热剪切带间距.本研究为金属柱壳碎片特征、分布规律及其模型分析提供了重要参考.   相似文献   

4.
金属柱壳爆炸膨胀断裂存在拉伸、剪切及拉剪混合等多种断裂模式,目前其物理机制及影响因素还不清晰。本文中采用光滑粒子流体动力学方法(smoothed particle hydrodynamics, SPH)对45钢柱壳在JOB-9003及RHT-901不同装药条件下的外爆实验进行了数值模拟,探讨柱壳在不同装药条件下发生的剪切断裂、拉剪混合断裂模式及其演化过程,模拟结果与实验结果一致。SPH数值模拟结果表明:在爆炸加载阶段,随着冲击波在柱壳内、外壁间来回反射形成二次塑性区,沿柱壳壁厚等效塑性应变演化呈凸形分布,壁厚中部区域等效塑性应变较内、外壁大;在较高爆炸压力(JOB-9003)作用下,柱壳断裂发生在爆轰波加载阶段,损伤裂纹从塑性应变积累较大的壁厚中部开始沿剪切方向向内、外壁扩展,形成剪切型断裂模式;而在RHT-901空心炸药加载下,虽然裂纹仍从壁厚中部开始沿剪切方向扩展,但随后柱壳进入自由膨胀阶段,未断区域处于拉伸应力状态,柱壳局部发生结构失稳,形成类似“颈缩”现象,裂纹从剪切方向转向沿颈缩区向外扩展,呈现拉剪混合断裂模式。拉伸裂纹占截面的比例与柱壳结构失稳时刻相关。可见,柱壳断裂演化是一个爆炸冲击波与柱壳结构相互作用的过程,不能简单将其作为一系列膨胀拉伸环处理。  相似文献   

5.
金属柱壳破坏过程与材料、结构及载荷等相关,断裂结果呈现多种形式,采用有限元结合实验对不同爆炸载荷作用下,TA2钛合金圆管的破坏机制开展研究。有限元结果显示:对于理想均质柱壳,由于冲击波传播使壁厚中间形成二次塑性区,圆管壁厚中部的等效塑性应变总是大于内、外壁。在较高爆压下,裂纹在加载阶段从试样壁厚中部起始,沿45°或135°向内外壁剪切扩展;而在较低爆压下,破坏发生在自由膨胀阶段,断裂从内壁起始向外壁剪切扩展,两者破坏过程和机制不同,总体来说,与实验现象符合较好。相关实验中出现的一些外壁拉伸断裂现象,可能与试样的几何、材料缺陷等因素相关,其对金属圆管爆炸破坏的影响值得进一步关注。  相似文献   

6.
帽型试样动态绝热剪切破坏演化分析   总被引:1,自引:0,他引:1  
利用分离式霍普金森压杆加载Ta2钛合金扁平闭合帽形受迫剪切试样,结合数字图像相关法和“冻结”试样的微观金相观察,研究剪切区剪切应变的演化、绝热剪切带形成条件等。结果显示:受迫剪切试样在动态加载过程,剪切区剪切应变不断集中,形成绝热剪切带,裂纹沿绝热剪切带发展;随加载率提高,绝热剪切起始临界应变减小;进一步利用数字图像相关法DIC场应变分析及金相微观观测对比,利用卸载回复特性对绝热剪切带起始临界条件进行了讨论,计算的绝热剪切带起始时温升仅为86℃。材料软化可能不是绝热剪切带起始的控制条件,相反是由于绝热剪切带形成造成的应变高度集中发展导致温度急剧升高。  相似文献   

7.
使用二辊轧机对TA2工业纯钛进行多道次大应变冷轧处理,制备了冷轧总变形量为70%的TA2纯钛板。通过对冷轧TA2纯钛板进行500℃加热、不同保温时间的退火处理,获得了具有不同再结晶组织的钛板。基于帽形试样和限位环变形控制技术,在分离式霍普金森压杆装置上对不同再结晶组织的试样进行动态冲击冻结实验,结合光学显微镜和扫描电子显微镜表征试样冲击前后微观组织的变化,研究了再结晶组织对TA2纯钛绝热剪切行为的影响。结果表明,随着退火保温时间的延长,试样再结晶晶粒占比逐渐增大,晶粒分布由分散向局部聚集转变;在相同应变和应变率下,在所有试样中都观察到了绝热剪切带,再结晶晶粒占比高的试样更易诱发绝热剪切带中裂纹形核扩展。对比变形前后试样再结晶组织和几何必需位错变化,结合剪切区整体温升分析发现,再结晶晶粒作为材料软化点能够诱发剪切带的形成,而剪切带发展后期产生的绝热温升会促进剪切带内材料发生二次再结晶,提高剪切带内材料的韧性,延缓剪切裂纹的形成。  相似文献   

8.
Ta2钛合金绝热剪切失稳起始温度研究   总被引:1,自引:0,他引:1  
利用分离式霍普金森压杆加载TA2钛合金扁平帽型试样,结合高速红外测温与金相观察,分析动态加载下帽型试样受迫剪切力学响应以及绝热剪切带温度演化,确定绝热剪切带起始温度,并讨论绝热剪切失稳起始条件。结果显示,绝热剪切带起始温度约为470K,明显低于再结晶温度,以温度470K作为起始条件,对应剪切应力时程曲线起始时刻,并非剪切应力最大值,而是应力软化至504MPa,即发生应力“塌陷”处,应力下降8.86%,塑性应变继续发展  相似文献   

9.
不同加载状态下TA2钛合金绝热剪切破坏响应特性   总被引:2,自引:1,他引:1  
一般认为绝热剪切现象在宏观上表现为材料动态本构失稳,即热软化大于应变硬化.本文采用帽型受迫剪切试样研究TA2钛合金的动态力学特性和本构失稳过程.首先对剪切区加载应力状态进行理论和数值分析,通过合理设计帽型试样,剪切区变形可近似按剪切状态处理;结合二维数字图像相关法(two-dimensional digital image correlation,DIC-2D)直接测试试样剪切区应变演化,给出帽型受迫剪切实验的等效应力-应变响应曲线.进一步,利用Hopkinson压杆对TA2钛合金开展动态压缩及帽型剪切对比试验研究,比较压缩、剪切试验得到的等效应力-应变曲线,采用"冻结"试样方法分析试样中绝热剪切局域化演化过程,探讨不同加载状态下TA2钛合金的绝热剪切破坏现象及其动态力学响应特性.实验结果表明,在塑性变形初始阶段,动态压缩及剪切加载下的等效应力-应变曲线符合较好,但随塑性损伤发展及绝热剪切带形成,两者出现分离,表明损伤及绝热剪切演化过程与应力状态相关.剪切试样实验得到的本构"软化"特性能够反映绝热剪切带起始、破坏演化过程的力学响应特性,而在动态压缩实验中,即使试样中已出现双锥形的绝热剪切带及局部裂纹分布,其表观等效应力-应变曲线并不出现软化特征,动态压缩实验无法得到关于绝热剪切起始、发展以及破坏的本构软化响应特性.  相似文献   

10.
针对绝热剪切形成时由于变形高度局域化,塑性功产生的热导致局部高温,有时会伴随动态再结晶(DRX)的现象,采用一种考虑动态再结晶过程的绝热剪切破坏准则,利用有限元方法模拟了Arne工具钢平头弹冲塞Weldox 460 E钢靶板的实验.数值模拟揭示了剪切带产生、传播的过程,温度分布情况表明在绝热剪切带中具备动态再结晶形成的...  相似文献   

11.
Deformation and failure mechanism in AISI 4340 steel under ballistic impact   总被引:2,自引:0,他引:2  
Deformation and failure mechanism in quench-hardened AISI 4340 steel under ballistic impact is investigated. The influence of microstructure on damage evolution is also evaluated. Strain localization and shear failure along adiabatic shear bands are the dominant deformation and failure mechanisms. The time and critical strain for the commencement of strain localization is influenced by strain rate and microstructure. The microstructure of the steel sample also influenced the type of adiabatic shear bands formed during impact. Failure mechanism involves nucleation of micro-voids, which clusters to form bigger pores. Extremely fine micro-cracks are initiated adjacent to the pores and in shear flow direction along the shear bands. These micro-cracks become interconnected and grow to macro-cracks, which cause fracture of some of the investigated cylindrical steel samples under impact. The susceptibility of the adiabatic shear bands to cracking increases with decreasing tempering temperature of the steel.  相似文献   

12.
采用多普勒光纤探针测速技术(Doppler pins system,DPS,又称全光纤位移干涉测速技术)和高速摄影技术,研究装配垫片对金属柱壳膨胀断裂的影响,获得了有无垫片对应柱壳外表面位置的速度曲线和垫片对柱壳膨胀断裂影响明显的高速摄影图像。实验结果表明:与无垫片区域相比,垫片区域的柱壳外表面经历了先凸起后内凹的过程,导致垫片对应柱壳的径向运动位移发生反复错位,最终低于无垫片区域约0.34 mm,该位移差可能导致柱壳发生径向剪切断裂;实验结果还表明,在垫片与间隙交界处两侧(沿垫片方向约7.5°、沿间隙方向约9°)处各增加了一条裂纹,该断裂模式既不同于环向拉伸断裂,也不同于45°的剪切断裂,而是由垫片/间隙边界产生的两束稀疏应力波传到柱壳外表面引起的扰动影响所致,这个新的断裂模式与柱壳材料的动态力学性能密切相关。数值模拟结果表明,装配垫片对柱壳断裂机制影响不仅包含该处附加的质量效应,还应考虑炸药通过垫片后作用在柱壳上的冲击加载幅值变化、冲击加载时序与其他部位不同步的差异,以及垫片/间隙交界处引起的表面波传播对柱壳断裂模式的后续发展行为的影响。  相似文献   

13.
The phenomenon of adiabatic shear banding is analyzed theoretically in the context of metal cutting. The mechanisms of material weakening that are accounted for are (i) thermal softening and (ii) material failure related to a critical value of the accumulated plastic strain. Orthogonal cutting is viewed as a unique configuration where adiabatic shear bands can be experimentally produced under well controlled loading conditions by individually tuning the cutting speed, the feed (uncut chip thickness) and the tool geometry. The role of cutting conditions on adiabatic shear banding and chip serration is investigated by combining finite element calculations and analytical modeling. This leads to the characterization and classification of different regimes of shear banding and the determination of scaling laws which involve dimensionless parameters representative of thermal and inertia effects. The analysis gives new insights into the physical aspects of plastic flow instability in chip formation. The originality with respect to classical works on adiabatic shear banding stems from the various facets of cutting conditions that influence shear banding and from the specific role exercised by convective flow on the evolution of shear bands. Shear bands are generated at the tool tip and propagate towards the chip free surface. They grow within the chip formation region while being convected away by chip flow. It is shown that important changes in the mechanism of shear banding take place when the characteristic time of shear band propagation becomes equal to a characteristic convection time. Application to Ti–6Al–4V titanium are considered and theoretical predictions are compared to available experimental data in a wide range of cutting speeds and feeds. The fundamental knowledge developed in this work is thought to be useful not only for the understanding of metal cutting processes but also, by analogy, to similar problems where convective flow is also interfering with adiabatic shear banding as in impact mechanics and perforation processes. In that perspective, cutting speeds higher than those usually encountered in machining operations have been also explored.  相似文献   

14.
A thermal-mechanical multiresolution continuum theory is applied within a finite element framework to model the initiation and propagation of dynamic shear bands in a steel alloy. The shear instability and subsequent stress collapse, which are responsible for dynamic adiabatic shear band propagation, are captured by including the effects of shear driven microvoid damage in a single constitutive model. The shear band width during propagation is controlled via a combination of thermal conductance and an embedded evolving length scale parameter present in the multiresolution continuum formulation. In particular, as the material reaches a shear instability and begins to soften, the dominant length scale parameter (and hence shear band width) transitions from the alloy grain size to the spacing between micro-voids. Emphasis is placed on modeling stress collapse due to micro-void damage while simultaneously capturing the appropriate scale of inhomogeneous deformation. The goal is to assist in the microscale optimization of alloys which are susceptible to shear band failure.  相似文献   

15.
Influence of void nucleation on ductile shear fracture at a free surface   总被引:7,自引:0,他引:7  
An approximate continuum model of a ductile, porous material is used to study the influence of the nucleation and growth of micro-voids on the formation of shear bands and the occurrence of surface shear fracture in a solid subject to plane strain tension. Bifurcation into diffuse modes is analysed for a plane strain tensile specimen described by these constitutive relations, which account for a considerable plastic dilatancy due to void growth and for the possibility of non-normality of the plastic flow law. In particular, bifurcation into surface wave modes and the possible influence of such modes triggering shear bands is investigated. For solids with initial imperfactions such as a surface undulation, a local material inhomogeneity on an inclusion colony, the inception and growth of plastic flow localization is analysed numerically. Both the formation of void-sheets and the final growth of cracks in the shear bands is described numerically. Some special features of shear band development in the solid obeying non-normality are studied by a simple model problem.  相似文献   

16.
绝热剪切损伤和破坏的数值模拟研究   总被引:2,自引:0,他引:2  
绝热剪切破坏是冲击载荷作用下金属材料中经常出现的一种重要破坏模式,尽管已经在实验中观察到了绝热剪切带内部的损伤现象,但是在理论和计算模型中往往还只是考虑它的热软化效应,对与之伴随的损伤破坏效应却鲜有讨论.该文在前人实验的基础上,提出了一个适用于绝热剪切带内部微孔洞损伤发展的演化方程,并在本构方程中同时考虑了温度和损伤对材料的影响,成功地模拟出了绝热剪切带的热软化效应和损伤破坏效应.  相似文献   

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