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Modeling of deformation behavior of metal matrix composites in laser forming.

机译:激光成形中金属基复合材料变形行为的建模。

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摘要

Laser forming is a cost-effective rapid prototyping technique which bends the work piece by thermal stresses induced by laser irradiations without the assistance of an external force. A considerable amount of experimental and numerical work has been carried out to investigate the process. However, most of the work still focuses on monolithic alloys, and relatively little has been done on laser forming of composite materials.; In this project, the deformation behavior of the Al6092/25SiCp composite is experimentally and theoretically investigated. The experimental results reveal that the composite can be deformed to a large bending angle despite the poor thermo-physical properties of its aluminum matrix. A linear relationship between the bending angle and the number of laser irradiations is observed and no pronounced strain hardening is found in the composite. An analytical model is developed to predict the bending angle of the composite sheet by laser forming based on Vollertsen's two-layer model. It is found that the trend of the predictions is in good agreement with the experimental results, and a higher bending angle is observed for the composite sheet than for its matrix material. By modeling the changes of the thermo-physical properties of the composite including absorption coefficient, coefficient of thermal expansion (CTE), specific heat, thermal conductivity, yield stress and elastic modulus, the effect of reinforcements on the final bending angle is also analyzed.; In order to further investigate the deformation behavior of composite materials in laser forming, a new microstructure integrated finite element model is developed. A unit cell model is built up to obtain thermo-physical properties of the composite with the assumptions that particles are linearly elastic materials, the matrix is an elastic-plastic material, and the interface is perfectly bonded. Based on the predicted thermo-mechanical properties of the composite, the thermal and structural fields of the composite in laser forming are modeled. The simulated bending angles show a reasonable agreement with the experimental results, and the factors leading to the discrepancies are discussed. In the project, the effect of volume fraction, morphology, and distribution of reinforcement on the deformation behavior of the composite in laser forming is also studied. With the consideration of the effect of interface debonding on the deformation behavior of the composite in laser forming, a new damage-coupled finite element model is further developed. A periodic multi-particle cell model is used to determine the damage evolution of interfacial decohesion under uniaxial tensile loading, where the onset of damage is assumed to follow a maximum normal stress criterion. The simulation results are shown to be in reasonably good agreement with the experimental findings, and it is found that interfacial decohesion has a significant effect on the deformation behavior of the composite in laser forming.; The present project is an important attempt to carry out an in-depth investigation of laser forming on composite materials. The findings of the present project may open up a potential industrial application for laser forming, and will lead to better understanding of deformation mechanisms of composites in laser forming.
机译:激光成型是一种经济高效的快速成型技术,该技术无需借助外力即可通过激光辐照引起的热应力使工件弯曲。已经进行了大量的实验和数值工作来研究该过程。但是,大部分工作仍集中在整体式合金上,而在复合材料的激光成型方面所做的工作相对较少。在该项目中,对Al6092 / 25SiCp复合材料的变形行为进行了实验和理论研究。实验结果表明,尽管铝基体的热物理性能较差,但它仍可以变形到较大的弯曲角度。观察到弯曲角度和激光照射次数之间的线性关系,并且在复合物中未发现明显的应变硬化。基于沃尔勒森的两层模型,开发了一种分析模型来预测通过激光成型复合片的弯曲角度。结果表明,预测趋势与实验结果吻合良好,复合片材的弯曲角大于基体材料。通过模拟复合材料的热物理性质的变化,包括吸收系数,热膨胀系数(CTE),比热,导热系数,屈服应力和弹性模量,还分析了增强材料对最终弯曲角度的影响。 ;为了进一步研究复合材料在激光成形中的变形行为,建立了一种新的微结构集成有限元模型。假设粒子是线性弹性材料,基体是弹塑性材料,并且界面是完美结合的,则建立了晶胞模型以获取复合材料的热物理性质。基于预测的复合材料的热机械性能,对复合材料在激光成型过程中的热场和结构场进行建模。模拟的弯曲角度与实验结果显示出合理的一致性,并讨论了导致差异的因素。在该项目中,还研究了体积分数,形态和配筋分布对复合材料在激光成形中变形行为的影响。考虑到界面剥离对复合材料在激光成形过程中变形行为的影响,进一步建立了新的损伤耦合有限元模型。周期性的多颗粒细胞模型用于确定单轴拉伸载荷下界面脱粘的损伤演化,其中假定损伤的发生遵循最大法向应力准则。仿真结果表明与实验结果相当吻合,并且发现界面脱粘对复合材料在激光成形中的变形行为有重要影响。本项目是对复合材料上的激光成型进行深入研究的重要尝试。本项目的发现可能会为激光成型开辟潜在的工业应用,并将使人们更好地理解激光成型中复合材料的变形机理。

著录项

  • 作者

    Liu, Fu-Rong.;

  • 作者单位

    Hong Kong Polytechnic University (Hong Kong).;

  • 授予单位 Hong Kong Polytechnic University (Hong Kong).;
  • 学科 Engineering Materials Science.
  • 学位 Ph.D.
  • 年度 2007
  • 页码 233 p.
  • 总页数 233
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 工程材料学;
  • 关键词

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