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Prediction of bendig load capacity of timber beams by finite element method simulation of knots and grain deviation

机译:节理和颗粒偏差的有限元模拟预测木梁的弯曲载荷能力

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摘要

A finite element model was used to simulate timberbeams with defects and predict their maximum load in bending. Taking into account the elastoplastic constitutive law of timber, the prediction of fracture load gives information about the mechanisms of timber failure, particularly with regard to the influence of knots, and their local graindeviation, on the fracture. A finite element model was constructed using the ANSYS element Plane42 in a plane stress 2D-analysis, which equates thickness to the width of the section to create a mesh which is as uniform as possible. Three sub-models reproduced the bending test according to UNE EN 408: i) timber with holes caused by knots; ii) timber with adherent knots which have structural continuity with the rest of the beam material; iii) timber with knots but with only partial contact between knot and beam which was artificially simulated by means of contact springs between the two materials. The model was validated using ten 45 × 145 × 3000 mm beams of Pinus sylvestris L. which presented knots and graindeviation. The fracture stress data obtained was compared with the results of numerical simulations, resulting in an adjustment error less of than 9.7%
机译:有限元模型用于模拟有缺陷的木梁并预测其最大弯曲载荷。考虑到木材的弹塑性本构关系,对断裂载荷的预测可以提供有关木材破坏机理的信息,尤其是关于结的影响及其局部晶粒偏斜对断裂的影响。在平面应力2D分析中,使用ANSYS元素Plane42构建了有限元模型,该模型将厚度等于截面的宽度,以创建尽可能均匀的网格。根据UNE EN 408,三个子模型复制了弯曲测试:i)带有打结的孔的木材; ii)带有结节的木材,与其余梁材料具有结构上的连续性; iii)带有结的木材,但结和梁之间只有部分接触,这是通过两种材料之间的接触弹簧人工模拟的。使用十个45×145×3000 mm的樟子松光束对模型进行了验证,该光束呈现出节状和晶粒偏斜。将获得的断裂应力数据与数值模拟结果进行比较,得出的调整误差小于9.7%

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