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Analytical Analysis of Distribution of Bending Stresses in Layers of Plywood with Numerical Verification

机译:胶合板各层弯曲应力分布的解析分析与数值验证

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The study presents methods for accurate estimation of bending stresses in the 3-point flexural bending test of plywood, i.e. a wood-based laminate with an alternate crosswise ply configuration. The characteristic bending strength (MOR) and mean modulus of elasticity (MOE) of standard beech plywood was determined using European Standard bending tests EN 310. Correlations were determined between empirically determined bending moduli of the plywood and material moduli of the veneer layer. Calculations were conducted based on the classical plate theory for thin panels comprising the theory of elasticity including the Kirchhoff-Love hypothesis. Rigidity of individual layer was established theoretically in the axial configuration of transformed rigidity matrix values. Numerical laminate models were developed and simulation tests were conducted. Results of experimental and analytical studies were verified using the Finite Element Method (FEM). Analyses were performed in two plywood cross-band arrangement variants. An analysis of the distribution of stresses in individual layers of plywood used an analytical and numerical method assuming the plywood specimen to be a rhombic-anisotropic material. It was found that the bending load capacity of plywood depends on the configuration of individual layers (veneers). Values of stresses originating from bending do not only depend on the distance of the considered plywood layer from the middle layer but also on stiffness in the direction of operating stresses. Bending strength varies in individual directions of the plywood panel. Therefore, the distribution of stresses in individual layers differs from that resulting from the stress distribution for homogeneous isotropic materials. Results are presented in the form of tables, bitmaps, graphs and photographs. The tests were conducted based on the BFU-BU-18 standard beech plywood thickness of 18 mm.
机译:这项研究提出了在胶合板的三点弯曲弯曲试验中准确估计弯曲应力的方法,即三层弯曲交替的木质层压板。使用欧洲标准弯曲测试EN 310确定标准榉木胶合板的特征弯曲强度(MOR)和平均弹性模量(MOE)。凭经验确定胶合板的弯曲模量与饰面板的材料模量之间的相关性。基于经典平板理论对薄板进行了计算,包括弹性理论,其中包括Kirchhoff-Love假设。理论上,在变换后的刚度矩阵值的轴向配置中确定了各个层的刚度。开发了数值层压板模型并进行了仿真测试。实验和分析研究的结果使用有限元方法(FEM)进行了验证。在两个胶合板跨谱带排列变体中进行了分析。假设胶合板样本为菱形各向异性材料,则使用分析和数值方法对胶合板各层中的应力分布进行分析。已经发现,胶合板的弯曲负荷能力取决于各个层(胶合板)的构型。源自弯曲的应力值不仅取决于所考虑的胶合板层与中间层的距离,还取决于在工作应力方向上的刚度。弯曲强度在胶合板的各个方向上有所不同。因此,各个层中的应力分布与均质各向同性材料的应力分布不同。结果以表格,位图,图形和照片的形式呈现。根据BFU-BU-18标准榉木胶合板厚度为18 mm进行测试。

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