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1.
黄如旭  万正权 《力学季刊》2021,42(1):178-186
基于形状改变能为材料起裂扩展控制参量的物理事实及裂纹尖端断裂控制区能量平均概念,提出了计及裂纹尖端应力场特征级数展开奇异项和常数项的广义平均形状改变能密度(GADSED)准则,建立了 Ⅰ-Ⅱ-Ⅲ混合型裂纹断裂判据计算式,为工程结构疲劳断裂评估提供了新选择.基于提出的GADSED准则,系统分析了T应力对裂纹断裂判据的影响...  相似文献   

2.
正交异性板复合型裂纹相对周向应力断裂准则   总被引:2,自引:0,他引:2  
采用相对周向应力为断裂参数,提出正交异性板任意方向的Ⅰ-Ⅱ复合型裂纹的最大相对向应力断裂,准则,应用本准则确定开裂方向角时,能较合理地考虑材料特性的影响。  相似文献   

3.
有限断裂力学准则综合了应力和能量参数,假设裂纹或切口端部有限裂纹长度的增长.特别地,该有限裂纹的长度不是材料的基本常数,而是与构件的结构有关.基于U形切口两种形式:点方式和线方式有限断裂准则,对文献中的铝合金U形切口三点弯曲断裂实验进行了分析验证.一方面基于材料的断裂韧度和抗拉强度,预测切口件断裂载荷;另一方面根据几组不同的切口根部半径及其对应的临界切口应力强度因子,同时估算材料的断裂参数:断裂韧度和抗拉强度.将点方式和线方式两种不同形式有限断裂准则的预测结果,与平均周向应力准则、最大周向应力准则以及文献中相关结果进行了比较得出:无论是预测断裂载荷还是估算材料断裂参数,线方式有限断裂准则,与文献中相关结果比较吻合,尤其是估算的断裂韧度精度较高.  相似文献   

4.
SHPB冲击加载下四种岩石的复合型动态断裂实验研究   总被引:1,自引:0,他引:1  
分别用绿砂岩、黄砂岩、灰砂岩、大理岩制作了三种几何相似的(φ80mm、φ122mm、φ155mm)中心直裂纹平台巴西圆盘(CSTFBD)试样;利用分离式霍普金森压杆加载,进行了I型和I-II型复合动态断裂实验,并由实验结合有限元分析得到了四种岩石材料的I、II型动态断裂韧度KId、KIId。研究表明:动态断裂韧度均存在尺寸效应,试样尺寸对I-II型复合比和纯II型加载角均会产生影响,复合比随尺寸的增大而减小,大尺寸试样II型加载的加载角比小尺寸试样的小。同时,由于负值的T应力显著减小了裂纹的起裂角,用广义最大拉应力准则预测的起裂角更符合实验结果。  相似文献   

5.
对脆性材料的第一主应力--拉应力裂纹扩展准则进行了补充和修正,修正的裂纹扩展准则能确定裂纹扩展步长.以平面斜置裂纹扩展为例,利用无网格Galerkin方法,对不含裂隙水压的二维裂纹扩展进行数值模拟,计算结果与试验结果一致,表明最大周向拉应力准则的正确性.在不同裂隙水压条件下,研究了二维裂纹初始破裂,并在给定水压下对二维裂纹扩展路径进行了数值模拟跟踪.结果表明裂隙水压对裂纹初始破裂方向、破裂步长、破裂载荷和裂隙岩体破裂强度有显著影响.有水压和无水压的扩展迹线不同,但后续的扩展趋势相同.  相似文献   

6.
复合型裂纹的扩展路径不同于Ⅰ型裂纹,会沿着与初始裂纹面不同的方向扩展,扩展路径的准确预测对扩展速率的评估具有重要的作用。采用最大周向应力准则和最小应变能密度准则进行扩展路径的预测时,开裂角的误差会使裂纹不断偏离实际路径,造成最终结果的较大偏差。本文将复合裂纹在扩展过程中的弯折裂纹简化为直线裂纹,对简化过程中所产生的误差进行定量分析,并在此基础上提出了一种描述复合型裂纹扩展路径的等效修正模型。将此模型写入ABAQUS扩展有限元模块,实现了基于等效修正模型的疲劳裂纹扩展程序。通过对含中心斜裂纹板的疲劳裂纹扩展试验,验证了本模型的有效性,预测的开裂角与试验结果基本一致,所得到的载荷循环次数低于试验值,对含裂纹结构的寿命评估偏于保守。  相似文献   

7.
轮轨滚动接触下,钢轨表面会产生典型的鱼钩形剥离掉块,其形成机理目前暂未明确.为了探究轮轨滚动接触下钢轨表面裂纹扩展机理,基于最大周向拉应力准则,建立轮轨滚动接触疲劳计算模型,提出裂尖扩展路径预测方法,并对不同初始角度裂纹的扩展路径进行预测.结果表明,钢轨表面微裂纹为Ⅰ-Ⅱ复合型裂纹,随着裂纹长度增加,KⅠ先增加后减小,...  相似文献   

8.
三点弯曲试件常被用来研究材料的纯Ⅰ型及Ⅰ/Ⅱ复合型断裂性能。使用Abaqus软件通过有限元法获得三点弯曲试件不同跨长比2S/L、相对裂纹长度a和裂纹倾角β下的Ⅰ型与Ⅱ型无量纲应力强度因子。由有限元结果可知,在相对裂纹长度一定时,跨长比越小,裂纹倾角越小,Ⅰ型无量纲应力强度因子可取得0,即越容易得到纯Ⅱ型断裂。当跨长比相同时,相对裂纹长度越大越容易得到纯Ⅱ型断裂。使用6组共24个三点弯曲试件,研究砂岩的纯Ⅰ型、纯Ⅱ型以及复合型加载时的断裂韧度,得到该种砂岩的纯Ⅰ型断裂韧度为0.786MPa·m0.5,纯Ⅱ型断裂韧度为0.344MPa·m0.5。实验结果与最大周向应力(MTS)准则和广义最大周向应力(GMTS)准则的预测结果进行对比,比较结果显示GMTS准则更能准确地预测实验结果。  相似文献   

9.
在车轮循环滚动接触载荷作用下,钢轨接触表面裂纹问题频发,严重威胁高速列车运行安全,开展钢轨表面三维滚动接触疲劳裂纹扩展分析意义重大.首先,考虑不同初始裂纹角度,建立钢轨轨头含初始裂纹的三维有限元模型,对钢轨表面施加循环滚动接触载荷,进行轮轨滚动接触计算;然后,基于相互作用积分法计算裂纹前缘的应力强度因子;最后,采用最大周向应力准则和Paris公式计算当前状态下裂纹扩展方向和扩展速率,进而更新下一时刻的裂纹形状和尺寸.通过对上述过程重复实现,从而预测钢轨表面三维裂纹的扩展路径.加载过程中裂纹前缘应力强度因子计算结果表明,随着初始裂纹角度增加,K的峰值逐渐减小,K的峰值逐渐增大,裂纹前缘各位置的等效应力强度因子逐渐减小;裂纹前缘节点的位置越靠近钢轨表面,等效应力强度因子越大.疲劳裂纹扩展计算结果表明,随着循环次数的增加,不同初始角度下的裂纹都发生了偏折,逐渐朝着钢轨深度方向扩展,且裂纹的初始角度越大,发生扩展时需要的循环次数越多.对比三种初始裂纹角度下裂纹长度随循环次数的演化曲线可以发现,初始裂纹角度越小,裂纹扩展速率越大.所开发的方法也适用...  相似文献   

10.
实际工程中岩体往往处于Ⅰ型和Ⅱ型加载同时存在的状态,而这种复合加载条件下岩石断裂行为的预测较为复杂,也是迫切需要解决的问题。本文基于Ⅰ型加载条件下测试得到的页岩试样断裂韧度,应用MTS(Maximum Tangential Stress,最大切向应力)断裂准则对页岩试样在Ⅱ型加载条件下的裂纹起裂角以及断裂韧度进行了预测。为评估预测效果,通过Ⅱ型加载条件下2种尺寸页岩断裂试验,发现Ⅰ型断裂韧度随岩样尺寸变化的趋势不同,Ⅱ型断裂韧度基本没有尺寸效应。通过比较预测结果以及试验结果发现,利用传统的MTS断裂准则预测的理论值与试验测试值相差较大。在预测过程中断裂过程区尺寸的确定也是非常重要的,如果不考虑断裂过程区的尺寸效应同样会造成很大的预测误差。结合MTS准则确定的断裂过程区尺寸,利用GMTS(Generalized Maximum Tangential Stress,广义最大切向应力)断裂准则预测的岩样裂纹起裂角以及断裂韧度都与试验测试值非常接近。  相似文献   

11.
采用修正的剪滞理论建立了岩石、混凝土等准脆性材料的I-II复合型裂缝在单向拉伸荷载作用下的计算模型,得到了与实验相吻合且优于传统S判据的断裂角。通过对远场应力、斜裂缝区应力以及子层位移的合理简化,得到了求解剪滞分析模型的边界条件,进而得到了含斜裂缝的各子层位移分布函数。引入最大应力集中因子,对I-II复合型裂缝前缘应力场进行简化;基于斜裂缝沿最大应力集中因子方向扩展,得到裂缝的断裂角。根据斜裂缝的应力分布,设置不同的子层分区,得到了更为细化的位移分布模式。通过对计算数据的分析,针对单向拉伸荷载作用下的I-II复合型裂缝,建立了按应力场分区设置子层的分层剪滞模型,得到更为精确的斜裂缝断裂角。  相似文献   

12.
基于断裂力学的疲劳裂纹扩展寿命问题的研究常常将裂纹尖端应力展开项的高次项忽略,引起了裂纹扩展模拟的误差,本文考虑高次项T-stress对裂纹扩展角的影响,对裂纹扩展过程做了数值模拟,结果显示相同裂纹扩展长度下,考虑T-stress会延长裂纹扩展寿命。文章首先采用修正的Paris-Erdogan 公式计算了两端承受均布拉伸载荷的边缘斜裂纹板的疲劳裂纹扩展寿命,裂纹扩展方向采用两参数修正的最大拉应力准则。由于结构尺寸,材料特性和载荷等因素具有不确定性,导致疲劳裂纹扩展过程带有一定的随机性,本文以材料属性和载荷为随机变量,在随机有限元法的基础上,结合计算可靠度的四阶矩法,Edgeworth级数展开方法,提出随机参数服从任意分布时的结构疲劳裂纹扩展寿命可靠度的计算方法。分析了参数为非正态分布时的平板裂纹扩展寿命可靠度随裂纹扩展的变化过程。本文方法可预测工程中板裂纹的扩展行为,以及预测裂纹板的可靠度。  相似文献   

13.
The stress field near the tip of a finite angle sharp notch is singular. However, unlike a crack, the order of the singularity at the notch tip is less than one-half. Under tensile loading, such a singularity is characterized by a generalized stress intensity factor which is analogous to the mode I stress intensity factor used in fracture mechanics, but which has order less than one-half. By using a cohesive zone model for a notional crack emanating from the notch tip, we relate the critical value of the generalized stress intensity factor to the fracture toughness. The results show that this relation depends not only on the notch angle, but also on the maximum stress of the cohesive zone model. As expected the dependence on that maximum stress vanishes as the notch angle approaches zero. The results of this analysis compare very well with a numerical (finite element) analysis in the literature. For mixed-mode loading the limits of applicability of using a mode I failure criterion are explored.  相似文献   

14.
Fracture phenomenon was investigated both experimentally and theoretically for a type of coarse-grained polycrystalline graphite weakened by a U-shaped notch under mixed mode loading. First, 36 disc-type graphite specimens containing a central U-notch, so called in literature as the U-notched Brazilian disc (UNBD), were prepared for four different notch tip radii and the fracture tests were performed under mode I and mixed mode I/II loading conditions. Then, the experimentally obtained fracture loads and the fracture initiation angles were predicted by using the U-notched maximum tangential stress (UMTS) and the newly formulated U-notched mean stress (UMS) fracture criteria. Both the criteria were developed in the form of the fracture curves and the curves of fracture initiation angle, in terms of the notch stress intensity factors (NSIFs). The results showed that while the criteria could predict successfully the experimental notch fracture toughness values, the UMS criterion provides slightly better predictions than the UMTS criterion, particularly for shear-dominant deformations. Also, found in this research was that the curves of fracture initiation angle were almost identical for the two criteria which both could predict well the experimental results.  相似文献   

15.
In this work, we propose a new criterion for mixed mode I-II crack initiation angles based on the characteristics of the plastic core region surrounding the crack tip. The shape and size of the plastic core region are thoroughly analyzed under different loading conditions and a new formulation for the non-dimensional variable radius of the core region is presented for mixed mode (KIKII) fracture. The proposed criterion states that the crack extends in the direction of the local or global minimum of the plastic core region boundary depending on the resultant stress state at the crack tip. The results show a well-defined correlation between the plastic core region characteristics and crack extension angles predicted by other criteria. The proposed criterion is formulated for various loading conditions and is compared with other available criteria against the limited available experimental data. It is shown that the proposed criterion provides a better agreement with the experimental data.  相似文献   

16.
为研究拉伸荷载下分支裂隙对破坏模式的影响,保持主裂隙参数不变,改变分支裂隙倾角和长度,利用扩展有限元方法模拟了弯折裂隙的动态扩展,总结了分支裂隙参数变化对破坏模式的影响。利用ABAQUS中的轮廓积分计算了分支裂隙尖端应力强度因子,并根据最大周向应力准则计算起裂角。结果表明:拉伸荷载下分支裂隙出现三种破坏模式;分支裂隙倾角和长度均对破坏模式有一定的影响。I型应力强度因子与分支裂隙倾角关系曲线呈斜"S"型,相应II型应力强度因子曲线呈上凸型;由于分支裂隙存在非尖端破坏,利用裂隙尖端应力强度因子判断开裂应结合相应的破坏模式。  相似文献   

17.
空腔和裂纹缺陷通常共存于深部地下岩体中,它们共同影响着岩体的结构安全性与稳定性。为了探究动力扰动载荷下圆形空腔对裂隙岩体内裂纹扩展行为的影响规律,提出了不同圆孔倾角的直裂纹空腔圆弧开口试件(circular opening specimen with straight crack cavity, COSSCC),利用自制大型落锤冲击实验装置进行动态加载实验,同时采用裂纹扩展计系统测试了裂纹的动态起裂时刻与裂纹扩展速度等各种断裂力学参数,随后采用有限差分软件Autodyn进行裂纹扩展路径与圆孔周围应力场的数值分析,并采用有限元软件Abaqus计算裂纹的动态起裂韧度与裂纹扩展过程中的动态扩展韧度。结果表明:(1)当圆孔倾角θ小于10°时,裂纹扩展路径会偏折并穿过圆孔表面;当圆孔倾角θ为20°与30°时,裂纹扩展路径向圆孔方向发生偏折但不会穿过圆孔,圆孔具有明显的裂纹扩展引导作用; 当圆孔倾角θ为40°与50°时,裂纹扩展路径不会发生偏折,圆孔引导作用明显减弱。(2)当裂纹扩展路径达到圆孔空腔附近时,裂纹尖端的拉伸应力区与圆孔边缘的拉伸应力区发生重合,此时裂纹扩展速度显著增大,裂纹动态断裂韧度显著减小。(3)裂纹的偏折方向与裂纹尖端最大周向应力的方向基本一致。(4)裂纹动态断裂韧度始终小于裂纹起裂韧度,且裂纹动态断裂韧度与裂纹动态扩展速度呈负相关关系。裂纹动态扩展速度越大,裂纹动态断裂韧度越小。  相似文献   

18.
Motivated by the existence of a universal singular stress field at bimaterial interface corners, a fair amount of work has been performed to support the use of the corresponding critical stress intensities to correlate fracture initiation. The approach is in the spirit of interface fracture mechanics but applicable to a different class of problems, specifically, when a crack does not previously exist (or cannot be detected, at least economically), and when subsequent crack propagation does not necessarily occur along the interface. Here we further progress toward the development, understanding, and application of the approach, both experimentally and theoretically, for a series of silicon/glass anodically bonded structures. To this end we designed and fabricated two series of silicon/glass anodically bonded bimaterial specimens with different interface corner geometries that commonly arise from different silicon etching technologies. Offset three-point flexure tests were performed that resulted in brittle fracture that initiated at the interface corner. From a rigorous stress analysis at the interface corner, we determined the order of the stress singularities and the angular variation of the stress fields. We computed the corresponding stress intensities via full-field finite element analyses of the silicon/glass specimens loaded in offset three-point flexure. Measured fracture data show that although the failure stress varies significantly with bond size, the corresponding critical stress intensity of the dominant mode is constant, thus providing support for its use as a fracture initiation criterion. In the light of both the stress analysis and the measured fracture data, we discuss the effect of mode mixity (loosely shearing versus opening) and show that it has little influence on the results for the specimens and loading considered in this study. Via an idealized model of a small crack, either interfacial or extending into one of the adherends, we study the effects of geometrical perturbations at the interface corner on the stress state, and discuss implications for fracture analysis and interpretation of fracture data. We also explore the prediction of the crack initiation angle and achieve reasonable success with a simple criterion based on the maximum circumferential stress near the uncracked interface corner.  相似文献   

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