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The effect of elevated temperature exposure on the fracture toughness of solid wood and structural wood composites

机译:高温暴露对实木和结构木复合材料断裂韧性的影响

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摘要

Fracture toughness of wood and wood composites has traditionally been characterized by a stress intensity factor, an initiation strain energy release rate (G_(init)) or a total energy to fracture (G_f). These parameters provide incomplete fracture characterization for these materials because the toughness changes as the crack propagates. Thus, for materials such as wood, oriented strand board (OSB), plywood and laminated veneer lumber (LVL), it is essential to characterize the fracture properties during crack propagation by measuring a full crack resistant or R curve. This study used energy methods during crack propagation to measure full R curves and then compared the fracture properties of wood and various wood-based composites such as, OSB, LVL and plywood. The effect of exposure to elevated temperature on fracture properties of these materials was also studied. The steady-state energy release rate (G_(ss)) of wood was lower than that of wood composites such as LVL, plywood and OSB. The resin in wood composites provides them with a higher fracture toughness compared to solid lumber. Depending upon the internal structure of the material, the mode of failure also varied. With exposure to elevated temperatures, G_(Ss) for all materials decreased while the failure mode remained the same. The scatter associated with conventional bond strength tests, such as internal bond and bond classification tests, renders any statistical comparison using those tests difficult. In contrast, fracture tests with R curve analysis may provide an improved tool for characterization of bond quality in wood composites.
机译:传统上,木材和木材复合材料的断裂韧性以应力强度因子,起始应变能释放速率(G_(init))或断裂总能量(G_f)为特征。这些参数为这些材料提供了不完全的断裂特征,因为韧性随着裂纹的扩展而变化。因此,对于诸如木材,定向刨花板(OSB),胶合板和层压单板木材(LVL)之类的材料,必须通过测量全抗裂性或R曲线来表征裂纹扩展过程中的断裂性能。这项研究在裂纹扩展过程中使用能量方法测量了完整的R曲线,然后比较了木材和OSB,LVL和胶合板等各种木质复合材料的断裂性能。还研究了暴露于高温对这些材料的断裂性能的影响。木材的稳态能量释放速率(G_(ss))低于LVL,胶合板和OSB等木材复合材料的稳态能量释放速率。与实木相比,木材复合材料中的树脂为它们提供了更高的断裂韧性。取决于材料的内部结构,失效模式也不同。暴露于高温下,所有材料的G_(Ss)均降低,而失效模式保持不变。与常规粘结强度测试(例如内部粘结和粘结分类测试)相关的分散性使得使用这些测试进行统计比较变得困难。相比之下,具有R曲线分析的断裂测试可以为表征木材复合材料的粘结质量提供改进的工具。

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  • 来源
    《Wood Science and Technology》 |2012年第6期|p.1127-1149|共23页
  • 作者单位

    Department of Wood Science and Engineering, Oregon State University, Corvallis, OR, USA;

    Department of Wood Science and Engineering, Oregon State University, Corvallis, OR, USA;

    Department of Wood Science and Engineering, Oregon State University, Corvallis, OR, USA;

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