915 resultados para CFRP, carbonio, FEM, sedili, elicotteri ultraleggeri


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The mechanical properties of film-substrate systems have been investigated through nano-indentation experiments in our former paper (Chen, S.H., Liu, L., Wang, T.C., 2005. Investigation of the mechanical properties of thin films by nano-indentation, considering the effects of thickness and different coating-substrate combinations. Surf. Coat. Technol., 191, 25-32), in which Al-Glass with three different film thicknesses are adopted and it is found that the relation between the hardness H and normalized indentation depth h/t, where t denotes the film thickness, exhibits three different regimes: (i) the hardness decreases obviously with increasing indentation depth; (ii) then, the hardness keeps an almost constant value in the range of 0.1-0.7 of the normalized indentation depth h/t; (iii) after that, the hardness increases with increasing indentation depth. In this paper, the indentation image is further investigated and finite element method is used to analyze the nano-indentation phenomena with both classical plasticity and strain gradient plasticity theories. Not only the case with an ideal sharp indenter tip but also that with a round one is considered in both theories. Finally, we find that the classical plasticity theory can not predict the experimental results, even considering the indenter tip curvature. However, the strain gradient plasticity theory can describe the experimental data very well not only at a shallow indentation depth but also at a deep depth. Strain gradient and substrate effects are proved to coexist in film-substrate nano-indentation experiments. (c) 2006 Elsevier Ltd. All rights reserved.

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The bending behavior and damage characteristics of CALL (Carbon fiber/epoxy/AL Laminate) hybrid composites have been studied by moire interferometry. The shear strain distribution along the cross-section and the forms of damage of bending beams are obtained. The results show that the magnitude of the shear strain in a carbon/epoxy layer is obviously larger than that in a corresponding aluminum layer and the shear strain distribution of a CFRP layer along the cross-section conforms basically to a parabolic distribution curve, as for the shear strain distribution in aluminum layers along the cross-section. Shear damage, either in the interfaces or in carbon-fiber/epoxy laminae, and tensile failure of CFRP laminae in the tension surface represent, respectively, the damage forms of the longitudinal and transverse bending specimen.

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The prediction of cracking direction in composite materials is of significance to the design of composite structures. This paper presents several methods for predicting the cracking direction in the double grooved tension-shear specimen which gives mixed-mode cracking. Five different criteria are used in this analysis: two of them have been used by other investigators and the others are proposed by the present authors. The strain energy density criterion proposed by G.C. Sih is modified to take account of the influence of the anisotropy of the strength on the direction of crack. The two failure criteria of Tsai-Hill and Norris are extended to predict the crack orientation. The stress distributions in the near-notch zone are calculated by using the 8-node quadrilateral isoparametric finite element method. The predictions of all the criteria except one are in good agreement with the experimental measurement. In addition, on the basis of the FEM results, the size of the zone in which the singular term is dominant is estimated.

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In this paper, the real-time deformation fields are observed in two different kinds of hole-excavated dog-bone samples loaded by an SHTB, including single hole sample and dual holes sample with the aperture size of 0.8mm. The testing system consists of a high-speed camera, a He-Ne laser, a frame grabber and a synchronization device with the controlling accuracy of I microsecond. Both the single hole expanding process and the interaction of the two holes are recorded with the time interval of 10 mu s. The observed images on the sample surface are analyzed by newly developed software based on digital correlation theory and a modified image processing method. The 2-D displacement fields in plane are obtained with a resolution of 50 mu m and an accuracy of 0.5 mu m. Experimental results obtained in this paper are proofed, by compared with FEM numerical simulations.

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A new mathematical model for the transient flow in the composite low permeability is established. It is solved by FEM with different boundary conditions such as infinite, circular closed and constant pressure boundary conditions. The typical curves for transient wellbore pressure have been presented. It is shown that the pressure and pressure derivative curves with composite start-up pressure gradients have different slopes which are depended on the start-up pressure gradients and the mobility radios in different regions. The boundary effects are the same as the normal reservoirs without start-up pressure gradients. The study provides a new tool to analyze the transient pressure test data in the low permeability reservoir.

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In order to investigate the transient thermal stress field in wall-shape metal part during laser direct forming, a FEM model basing on ANSYS is established, and its algorithm is also dealt with. Calculation results show that while the wall-shape metal part is being deposited, in X direction, the thermal stress in the top layer of the wall-shape metal part is tensile stress and in the inner of the wall-shape metal part is compressive stress. The reason causing above-mentioned thermal stress status in the wall-shape metal part is illustrated, and the influence of the time and the processing parameters on the thermal stress field in wall-shape metal part is also studied. The calculation results are consistent with experimental results in tendency.

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A new numerical model for transient flows of polymer solution in a circular bounded composite formation is presented in this paper. Typical curves of the wellbore transient pressure are yielded by FEM. The effects of non-Newtonian power-law index, mobility and boundary distance have been considered. It is found that for the mobility ratio larger than 1, which is favorable for the polymer flooding, the pressure derivative curve in log-log form rises up without any hollow. On the other hand, if the pressure derivative curve has a hollow and then is raised up, we say that the polymer flooding fails. Finally, the new model has been extended to more complicated boundary case.

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In this paper, the penetration process of ogive-nose projectiles into the semi-infinite concrete target is investigated by the dimensional analysis method and FEM simulation. With the dimensional analysis, main non-dimensional parameters which control the penetration depth are obtained with some reasonable hypothesis. Then, a new semi-empirical equation is present based on the original work of Forrestal et al., has only two non-dimensional combined variables with definite physical meanings. To verify this equation, prediction results are compared with experiments in a wide variation region of velocity. Then, a commercial FEM code, LS-DYNA, is used to simulate the complex penetration process, that also show the novel semi-empirical equation is reasonable for determining the penetration depth in a concrete target.

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In order to investigate the transient thermal stress field in wall-shape metal part during laser direct forming, a FEM model basing on ANSYS is established, and its algorithm is also dealt with. Calculation results show that while the wall-shape metal part is being deposited, in X direction, the thermal stress in the top layer of the wall-shape metal part is tensile stress and in the inner of the wall-shape metal part is compressive stress. The reason causing above-mentioned thermal stress status in the wall-shape metal part is illustrated, and the influence of the time and the processing parameters on the thermal stress field in wall-shape metal part is also studied. The calculation results are consistent with experimental results in tendency.

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A set of new formula of energy functions for ferroelectrics was proposed, and then the new basic equations were derived in this paper. The finite element formulation based on the new basic equations was improved to avoid the equivalent nodal load produced by remnant polarization. With regard to the fundamentals of mathematics and physics, the new energy functions and basic equations are reasonable for the material element of ferroelectrics in finite element analysis.

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The evaluation of the interfacial adhesion of coating system has always been a rough task. In this paper, a special testing method of cross-sectional indentation is applied on a model coating system, i.e. electroplated chromium on a steel substrate which is generally regarded as an example of materials pair with strong adhesion. Based on fractography analysis with SEM and interfacial stress simulation with FEM, it is found that interfacial shear stress may induce coating spalling. More interestingly, spalling location is sensitive to substrate pretreatment process. This shows the feasibility of cross-sectional indentation to distinguish interfacial strength at a high level.

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利用OM及FEM研究了铁基合金Nd:YAG脉冲激光熔凝区的几何形态及其变化规律、以及熔凝的热物理过程;利用OM、SEM、TEM、X-射线衍射仪及磨损实验机,研究了两种铁基热模具材料脉冲激光熔凝组织及其时效组织结构,以及熔凝区规则离散分布规律对材料抗磨损性能的影响。在10~5~10~7W/cm~2的脉冲激光平均功率密度范围内,可得到热传导型和深熔型两类强化区,当临界平均功率密度大于5 * 10~5W/cm~2,同时临界激光作用时间大于2ms时,热传导型强休区向深熔型强休区转变。熔化过程中,在熔池中形成上部以对流传热为主,底部以导热为主的传热模式,流场、温度场和压力场均随脉冲激光作用时间变化,最大流速、压力和温度梯度分别可达100m/s、数个大气压和10~(8-9) ℃C/m量级。凝固过程中,固液界面上的最大温度梯度、凝固速率和冷却速度时间和空间位置变化,分别可达10~(8-9) ℃/m量级、10~(-1)m/s量级和10~(7-8) ℃/s量级,其中冷却速度得到实验验证。亚共晶合金铸铁脉冲激光熔凝组织为δ-铁素体与M_3C的层片状共晶组织,还含有部分γ-奥氏体和少量的高碳孪晶马氏体组织,δ-铁素体和γ-奥氏体中均存在高密度位错亚结构。5CrMnMo钢脉冲激光熔凝组织由板条马氏体及少量的孪晶马氏体构成,马氏体中也存在高密度位错亚结构。上述两种组织经高温时效后,仍保持较细的晶粒,并有大量细小均匀弥散分布的碳化物析出,其中铸铁熔凝组织析出M_(23)C_6碳化物,M_(23)C_6可在M_3C/γ-奥氏体相界面或M_3C内部原位形核,亦可在δ-铁素体中弥散析出。两种材料的熔凝组织及其时效组织的显微硬度均明显高于相应的原始组织,也高于激光连续扫描熔凝的结果。脉冲激光规则离散熔凝加工在材料表面形成软硬相间的“原位”功能层,能显著降低裂纹形成的敏感性,提高材料表层的抗磨粒磨损性能,时效后仍具有较好的抗磨损性能。以熔凝强化区直径作为中心间距进行规则离散熔凝处理可使材料表面获得最佳抗磨损性能。

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海底管线的稳定性是保证油气输送管道正常运行的关键。本文通过研制开发计算管土相互作用的有限元程序,对管土相互作用进行数值模拟,分析管道在自重和环境荷载作用下在砂质海床中的沉降发展,分析影响土体对管道的侧向阻力的各种因素,以便为管道稳定性设计提供参考。采用二维非线性有限元计算技术,计算管道在自重、静水压力和环境荷载的作用下土体的静态响应,以土的临界破坏状态作为管土系统的稳定性的极限状态,分析管道-土体这一对类似挡土结构-土体力学系统在临界状态时的相互作用。通过对计算结果的分析和有关文献试验结果的比较,证明了该程序基本上能够正确地完成关于土的非线性特征、管道自沉降的发展过程和管土系统的相互作用等数值模拟任务,从而为深入研究管土的非线性相互作用和管土相互作用对管道的在位稳定性的影响提供了思路和有力的分析工具。

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本文以连续激光辐照下靶目标的变形与破坏等热力学响应特征为研究对象,采用了量纲分析、解析求解以及有限元方法等手段进行了较为系统的研究,得到了一些典型的靶结构变形与破坏的演化过程、主控参量和临界曲线。全文的工作主要包括,1.总结和评述了近四十年来国内外在此领域取得的重要进展,包括如下几方面:研究的背景和需求;不同激光参数下材料所表现出的破坏模态;激光辐照下靶目标温度场和变形场的实验和理论研究状况;热力耦合破坏机理的建立与应用等。并在此基础上,确定了本文的研究方向和路线。2.从π定理和基本控制方程入手,对连续激光在靶目标中引起的硬破坏效应进行了量纲分析,得以了8个具有明确物理背景的主控参量。这一工作有利于增强数值模拟工作的目的性,减少计算量。3.在不考虑材料参数温度依赖的前提下,利用热弹性板理论分析了承受横向载荷的薄板在激光辐照下的响应。通过特殊函数理论和级数解法的应用,得到了板中温度场和应力场的解析解。并将该解析解与数值解进行了对照和验证。4.利用ANSYS程序,数值模拟了平板和柱壳两种典型结构在连续激光辐照下的热力学响应。本工作的特色在于:一是在考虑了几何/材料非线性的条件下,利用3D实体单元,研究了机械载荷对激光诱导的变形和破坏过程的影响;二是首次获得了典型靶结构激光破坏的演化过程;三是在靶材料固定的前提下,得到了激光参数-载荷参数组成的临界破坏曲线。另外,我们在有限元分析模型的建立与单元网格的临界破坏曲线。另外,我们在有限元分析模型的建立与单元网格的划分上也进行了一些有益的探索和尝试。5.利用掌握的数值模拟方法,对含涂层结构的热冲击等问题进行了分析,为将来抗激光加固技术的数值研究奠定了一定的基础。最后,作者在总结全文内容的基础上,对相关领域中亟待发展和研究的课题进行了展望。

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We demonstrate the influence of the relative humidity (RH) on the wavelength of fiber Bragg grating sensors (FBGS), performing tests with five FBGS at different humidity and temperature conditions. These tests were performed in a climate chamber whose RH changes according to a scheduled profile from 30% to 90%, in steps of 10%. These profiles were repeated for a wide range of temperatures from to , in steps of . Two different types of instrumentation methods have been tested, spot welding and epoxy bonding, in two different materials, steel and carbon fiber reinforced polymer (CFRP). We discuss the results for each type of sensor and instrumentation method by analyzing the linearity of the Bragg wavelength with RH and temperature.