Compressive response and failure of balsa wood

被引:175
作者
Da Silva, Andre [1 ]
Kyriakides, Stelios [1 ]
机构
[1] Univ Texas Austin, Res Ctr Mech Solids Struct & Mat, Austin, TX 78712 USA
基金
美国国家科学基金会;
关键词
balsa wood; compression; kinking failure;
D O I
10.1016/j.ijsolstr.2007.07.003
中图分类号
O3 [力学];
学科分类号
08 [工学]; 0801 [力学];
摘要
Balsa wood is a natural cellular material with excellent stiffness-to-weight and strength-to-weight ratios as well as superior energy absorption characteristics. These properties are derived from the micro structure, which consists of long slender cells (tracheids) with approximately hexagonal crosssections that are arranged axially. Parenchyma are a second type of cells that are radially arranged in groups that periodically penetrate the tracheids (rays). Under compression in the axial direction the material exhibits a linearly elastic regime that terminates by the initiation of failure in the form of localized kinking. Subsequently, under displacement-control led compression, a stress plateau is traced associated with the gradual spreading of crushing of the cells through the material. The material is less stiff and weaker in the tangential and radial directions. Compression in these directions crushes the tracheids laterally but results in a monotonically increasing response typical of lateral crushing of elastic honeycombs. The elastic and inelastic properties in the three directions have been established experimentally as a function of the wood density. The microstructure and its deformation modes under compression have been characterized using scanning electron microscopy. In the axial direction it was observed that in the majority of the tests, failure initiated by kinking in the axial-tangential plane. The local misalignment of tracheids in zones penetrated by rays ranged from 4 degrees to 10 degrees and axial compression results in shear in these zones. Measurement of the shear response and the shear strength in the planes of interest enabled estimation of the kinking stress using the Argon-Budian-sky kinking model. The material strength predicted in this manner has been found to provide a bounding estimate of the axial strength for a broad range of wood densities. The energy absorption characteristics of the wood have also been measured and the specific energy absorption was found to be comparable to that of metallic honeycombs of the same relative density. (c) 2007 Elsevier Ltd. All rights reserved.
引用
收藏
页码:8685 / 8717
页数:33
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