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Numerical modeling and experiments on wood-strand composites .

机译:木线复合材料的数值模拟与实验。

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摘要

In wood-based composites, the glue-line (interface) between wood-strands affects the stress transfer from one member to the next. The glue-line properties determine the rate of load transfer between phases and these properties depend on wood species, surface preparation, glue properties, glue penetration into wood cells, and moisture content of the wood. As a result, the strength and stiffness of the composites are significantly affected by the amount, distribution, and properties of the resin.In the first part of this research, the glue-line stiffness between wood strands was determined by experiments. The interfacial properties were calculated from experimental data on double lap shear (DLS) specimens. The results showed that in both normal and densified wood strands, resin coverage has a positive effect on the interfacial stiffness, and consequently on stiffness properties of wood-based composites. As adhesive coverage increased from discrete droplets (1% coverage) to a continuous bondline (100% or fully glued) the stiffness of the interface increased significantly and could even become stiffer than the wood itself.In the second part of this research, once the mechanical properties of individual strands and interfacial properties were determined by experiment, they were used as input to a numerical model for the mechanical properties of oriented strand board (OSB) panels. Modeling the compression of wood-strands and wood-based composites was done using a numerical method called the material point method (MPM). MPM was used to model wood-strand composite mechanical properties as a function of compaction (densification), compaction rate, strand geometry (strand length and strand size), strand undulations, strand properties, and adhesive properties. In addition, density profiles of the panels as a function of selected variables were studied. The various simulations were for either conventional OSB panels or for OSB panels with densified strands in the surface layers.To demonstrate the importance of glue-line properties and undulating strands, a simple homogenized rule of mixtures (HROM) was developed for OSB and oriented strand lumber (OSL) structures. The results of MPM were compared to the HROM model. The results show that typical glue properties have a significant effect on mechanical properties of OSB. The role of the interface is a consequence of strand undulation in typical OSB structures and the length of the strands. Interfacial properties are most important for composites with short strands or for composites with imperfect alignment such as OSB with undulating or misaligned strands.
机译:在木质复合材料中,木线之间的粘合线(界面)会影响应力从一个构件传递到另一个构件。胶合线的特性决定了相之间的负荷转移速率,这些特性取决于木材的种类,表面处理,胶水性能,胶水渗透到木格中以及木材的水分含量。结果,复合材料的强度和刚度受到树脂用量,分布和性能的显着影响。在本研究的第一部分中,通过实验确定了木条之间的胶合线刚度。界面性质是根据​​双搭接剪切(DLS)样品的实验数据计算得出的。结果表明,无论是普通木丝还是致密木丝,树脂覆盖率都对界面刚度有积极影响,因此对木质复合材料的刚度性能也有积极影响。随着粘合剂的覆盖率从离散的液滴(覆盖率1%)增加到连续的粘合线(100%或完全粘合),界面的刚度显着提高,甚至可能变得比木材本身更坚硬。在本研究的第二部分中,通过实验确定了单股钢的力学性能和界面性能,并将它们用作定向刨花板(OSB)板力学性能数值模型的输入。使用称为材料点法(MPM)的数值方法对木条和木基复合材料的压缩进行建模。 MPM用于模拟木条复合材料的机械性能,它是压实度(致密化),压实率,线束几何形状(线束长度和线束尺寸),线束起伏,线束性能和粘合性能的函数。此外,还研究了面板密度曲线与所选变量的关系。针对传统的OSB面板或表面层中具有致密股线的OSB面板进行了各种模拟。为证明胶合线特性和起伏股线的重要性,针对OSB和定向股线开发了一种简单的均质混合规则(HROM)木材(OSL)结构。将MPM的结果与HROM模型进行比较。结果表明,典型的胶粘性能对OSB的机械性能有重大影响。界面的作用是典型OSB结构中股线起伏和股线长度的结果。界面性能对于短线的复合材料或排列不完善的复合材料(例如,具有起伏的或未排列的线的OSB)最重要。

著录项

  • 作者

    Le, Edward A.;

  • 作者单位

    Oregon State University.;

  • 授予单位 Oregon State University.;
  • 学科 Engineering Industrial.Agriculture Wood Technology.
  • 学位 Ph.D.
  • 年度 2010
  • 页码 181 p.
  • 总页数 181
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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