12 resultados para Deborah (Biblical judge)
em Chinese Academy of Sciences Institutional Repositories Grid Portal
“Deborah Numbers”, Coupling Multiple Space and Time Scales and Governing Damage Evolution to Failure
Resumo:
Two different spatial levels are involved concerning damage accumulation to eventual failure. nucleation and growth rates of microdamage nN* and V*. It is found that the trans-scale length ratio c*/L does not directly affect the process. Instead, two independent dimensionless numbers: the trans-scale one * * ( V*)including the * **5 * N c V including mesoscopic parameters only, play the key role in the process of damage accumulation to failure. The above implies that there are three time scales involved in the process: the macroscopic imposed time scale tim = /a and two meso-scopic time scales, nucleation and growth of damage, (* *4) N N t =1 n c and tV=c*/V*. Clearly, the dimensionless number De*=tV/tim refers to the ratio of microdamage growth time scale over the macroscopically imposed time scale. So, analogous to the definition of Deborah number as the ratio of relaxation time over external one in rheology. Let De be the imposed Deborah number while De represents the competition and coupling between the microdamage growth and the macroscopically imposed wave loading. In stress-wave induced tensile failure (spallation) De* < 1, this means that microdamage has enough time to grow during the macroscopic wave loading. Thus, the microdamage growth appears to be the predominate mechanism governing the failure. Moreover, the dimensionless number D* = tV/tN characterizes the ratio of two intrinsic mesoscopic time scales: growth over nucleation. Similarly let D be the “intrinsic Deborah number”. Both time scales are relevant to intrinsic relaxation rather than imposed one. Furthermore, the intrinsic Deborah number D* implies a certain characteristic damage. In particular, it is derived that D* is a proper indicator of macroscopic critical damage to damage localization, like D* ∼ (10–3~10–2) in spallation. More importantly, we found that this small intrinsic Deborah number D* indicates the energy partition of microdamage dissipation over bulk plastic work. This explains why spallation can not be formulated by macroscopic energy criterion and must be treated by multi-scale analysis.
Resumo:
Spherical nano-indentations of Cu46Zr54 bulk metallic glass (BMG) model systems were performed using molecular dynamics (MD) computer simulations, focusing specifically on the physical origin of serrated plastic flow. The results demonstrate that there is a direct correlation between macroscopic flow serration and underlying irreversible rearrangement of atoms, which is strongly dependent on the loading (strain) rate and the temperature. The serrated plastic flow is, therefore, determined by the magnitude of such irreversible rearrangement that is inhomogeneous temporally. A dimensionless Deborah number is introduced to characterize the effects of strain rate and temperature on serrations. Our simulations are shown to compare favorably with the available experimental observations.
Resumo:
A dislocation theory of fracture criterion for the mixed dislocation emission and cleavage process in an anisotropic solid is developed in this paper. The complicated cases involving mixed-mode loading are considered here. The explicit formula for dislocations interaction with a semi-infinite crack is obtained. The governing equation for the critical condition of crack cleavage in an anisotropic solid after a number dislocation emissions is established. The effects of elastic anisotropy, crack geometry and load phase angle on the critical energy release rate and the total number of the emitted dislocations at the onset of cleavage are analysed in detail. The analyses revealed that the critical energy release rates can increase to one or two magnitudes larger than the surface energy because of the dislocation emission. It is also found elastic anisotropy and crystal orientation have significant effects on the critical energy release rates. The anisotropic values can be several times the isotropic value in one crack orientation. The values may be as much as 40% less than the isotropic value in another crack orientation and another anisotropy parameter. Then the theory is applied to a fee single crystal. An edge dislocation can emit from the crack tip along the most highly shear stressed slip plane. Crack cleavage can occur along the most highly stressed slip plane after a number of dislocation emissions. Calculation is carried out step by step. Each step we should judge by which slip system is the most highly shear stressed slip system and which slip system has the largest energy release rate. The calculation clearly shows that the crack orientation and the load phase angle have significant effects on the crystal brittle-ductile behaviours.
Resumo:
A closed, trans-scale formulation of damage evolution based on the statistical microdamage mechanics is summarized in this paper. The dynamic function of damage bridges the mesoscopic and macroscopic evolution of damage. The spallation in an aluminium plate is studied with this formulation. It is found that the damage evolution is governed by several dimensionless parameters, i.e., imposed Deborah numbers De* and De, Mach number M and damage number S. In particular, the most critical mode of the macroscopic damage evolution, i.e., the damage localization, is deter-mined by Deborah number De+. Deborah number De* reflects the coupling and competition between the macroscopic loading and the microdamage growth. Therefore, our results reveal the multi-scale nature of spallation. In fact, the damage localization results from the nonlinearity of the microdamage growth. In addition, the dependence of the damage rate on imposed Deborah numbers De* and De, Mach number M and damage number S is discussed.
Resumo:
The process of damage evolution concerns various scales, from micro- to macroscopic. How to characterize the trans-scale nature of the process is on the challenging frontiers of solid mechanics. In this paper, a closed trans-scale formulation of damage evolution based on statistical microdamage mechanics is presented. As a case study, the damage evolution in spallation is analyzed with the formulation. Scaling of the formulation reveals that the following dimensionless numbers: reduced Mach number M, damage number S, stress wave Fourier number P, intrinsic Deborah number D*, and the imposed Deborah number De*, govern the whole process of deformation and damage evolution. The evaluation of P and the estimation of temperature increase show that the energy equation can be ignored as the first approximation in the case of spallation. Hence, apart from the two conventional macroscopic parameters: the reduced Mach number M and damage number S, the damage evolution in spallation is mainly governed by two microdamage-relevant parameters: the Deborah numbers D* and De*. Higher nucleation and growth rates of microdamage accelerate damage evolution, and result in higher damage in the target plate. In addition, the mere variation in nucleation rate does not change the spatial distribution of damage or form localized rupture, while the increase of microdamage growth rate localizes the damage distribution in the target plate, which can be characterized by the imposed Deborah number De*.
Resumo:
This paper reports a comparative study of shear banding in BMGs resulting from thermal softening and free volume creation. Firstly, the effects of thermal softening and free volume creation on shear instability are discussed. It is known that thermal softening governs thermal shear banding, hence it is essentially energy related. However, compound free volume creation is the key factor to the other instability, though void-induced softening seems to be the counterpart of thermal softening. So, the driving force for shear instability owing to free volume creation is very different from the thermally assisted one. In particular, long wave perturbations are always unstable owing to compound free volume creation. Therefore, the shear instability resulting from coupled compound free volume creation and thermal softening may start more like that due to free volume creation. Also, the compound free volume creation implies a specific and intrinsic characteristic growth time of shear instability. Finally, the mature shear band width is governed by the corresponding diffusions (thermal or void diffusion) within the band. As a rough guide, the dimensionless numbers: Thermal softening related number B, Deborah number (denoting the relation of instability growth rate owing to compound free volume and loading time) and Lewis number (denoting the competition of different diffusions) show us their relative importance of thermal softening and free volume creation in shear banding. All these results are of particular significance in understanding the mechanism of shear banding in bulk metallic glasses (BMGs).
Resumo:
We investigate the plastic deformation and constitutive behaviour of bulk metallic glasses (BMGs). A dimensionless Deborah number De(ID) = t(r)/t(i) is proposed to characterize the rate effect in BMGs, where t(r) is the structural relaxing characteristic time of BMGs under shear load, t(i) is the macroscopic imposed characteristic time of applied stress or the characteristic time of macroscopic deformation. The results demonstrate that the modified free volume model can characterize the strain rate effect in BMGs effectively.
Resumo:
比较研究了大块金属玻璃中由热软化和自由体积产生诱导的剪切带行为.首先讨论了大块金属玻璃中剪切失稳的热软化和自由体积产生效应.众所周知,在普通金属材料中,由塑性功转变来的热是其形成热塑剪切带的主要原因,并且是与能量直接相关的.与热软化相比,自由体积产生是金属玻璃发生剪切失稳的另外一种主控因素,由自由体积产生诱导的剪切失稳与由热软化诱导的剪切失稳完全不同,失稳判据中不显含能量.尤其是自由体积产生时的长波扰动总是不稳定的.从而,由自由体积产生和热软化耦合时的剪切失稳更像是由自由体积产生引发的.同时,在金属玻璃中,复合自由体积产生提供了一种特殊和内在的剪切失稳特征生长时间.剪切带的特征宽度由剪切带内相应的扩散过程控制:热扩散和自由体积扩散.作为粗略的估计,用无量纲数B,Deborah数(表示失稳生长率和载荷时间关系)和Lewis数(表示不同扩散竞争)表示了热软化和自由体积产生在剪切带形成过程中的相对重要性.这些结果对于理解大块金属玻璃剪切带形成机理具有非常重要的意义.
Resumo:
工程结构的失效起始于底层 ,即从材料中的孤立的空洞成核开始 ,形成微裂纹 ,发展为宏观裂纹 ,直至整个结构破坏 ,因此分布式损伤和尺度效应在工程结构损伤问题中显得十分重要 .本文简要介绍了一种处理分布式损伤 (微损伤 )的方法———“统计细观损伤力学” ,以及基于该方法讨论了分布式损伤的演化规律 .对于跨尺度失效问题的尺寸效应 ,通过分析应力波引起的损伤问题 (存在 2个反映尺度效应的Deborah数 ) ,指出各类尺度耦合的机理和特征是关键点
Resumo:
本书为祝贺郑哲敏先生八十华诞的学术报告会的文集,其中收录邀请报告12篇,定向征文58篇。这些论文涉及爆炸力学、岩土力学、冲击力学、材料力学性能、生物力学、物理力学、海洋工程力学、环境流体力学等几大方面,绝大多数为论文作者科研项目的最新成果。
会议论文 |
序 | 洪友士; | ||||||
内禀Deborah数在破坏现象中的意义 | 白以龙;汪海英; | ||||||
爆炸波在混凝土夹层结构中传播特性分析 | 段祝平; | ||||||
海洋内波与海洋工程 | 李家春;程友良;范平; | ||||||
郑哲敏先生为推动我国力学和技术科学发展所作的贡献 | 谈庆明; | ||||||
开发深海资源的海底空间站技术 | 曾恒一; | ||||||
微系统动力学研究的一些新进展 | 赵亚溥; | ||||||
爆炸近区空气冲击波规则反射和非规则反射 | 周丰峻;陈叶青;任辉启; | ||||||
椭圆函数的精细积分算法 | 钟万勰;姚征; | ||||||
量子蒙特卡罗法的研究 | 孙祉伟; | ||||||
拟Hamilton系统随机平均法在活性布朗粒子动力学研究中的应用 | 朱位秋;邓茂林; | ||||||
二个二阶张量的各向同性标量函数的广义坐标 | 王文标;段祝平; | ||||||
弹性杆轴向碰撞波动问题理论分析 | 马炜;刘才山;黄琳; | ||||||
两个可变形结构的相互碰撞——模型与验证 | 余同希;阮海辉; | ||||||
结构动力计算中自由度减缩方法概述 | 刘彬;丁桦;梁乃刚; | ||||||
弹塑性系统动力行为探讨 | 杨桂通; | ||||||
SINGULARITY THEORY ON BUCKLING OF COMPRESSIBLE ELASTIC SLENDER RODS | 张义同;谢宇新; | ||||||
GCr15钢超高周疲劳断口观察与裂纹起源分析 | 周承恩;洪友士; | ||||||
纳米尺度毛细作用学——纳米物理力学的新领域 | 朱如曾; | ||||||
METALLIC CELLULAR SOLIDS UNDER IMPACT LOADING | H.Zhao;S.Abdennadher;I.Elnasri; |
Resumo:
We investigate the energy spectrum of fermionized bosonic atoms, which behave very much like spinless noninteracting fermions, in optical lattices by means of the perturbation expansion and the retarded Green's function method. The results show that the energy spectrum splits into two energy bands with single-occupation; the fermionized bosonic atom occupies nonvanishing energy state and left hole has a vanishing energy at any given momentum, and the system is in Mott-insulating state with a energy gap. Using the characteristic of energy spectra we obtained a criterion with which one can judge whether the Tonks-Girardeau (TG) gas is achieved or not.
Resumo:
We propose a novel highly sensitive wave front detection method for a quick check of a flat wave front by taking advantage of a non-zero-order pi phase plate that yields a non-zero-order diffraction pattern. When a light beam with a flat wave front illuminates a phase plate, the zero-order intensity is zero. When there is a slight distortion of the wave front, the zero-order intensity increases. The ratio of first-order intensity to that of zero-order intensity is used as the criterion with which to judge whether the wave front under test is flat, eliminating the influence of background light. Experimental results demonstrate that this method is efficient, robust, and cost-effective and should be highly interesting for a quick check of a flat wave front of a large-aperture laser beam and adaptive optical systems. (c) 2005 Optical Society of America.