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Application of stochastic finite element approaches to wood-based products

机译:随机有限元方法在木制品中的应用

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Due to the natural growing process of wood, the mechanical properties of wooden boards are subject to high variability, mainly introduced by knots and the resulting deviation of the wood fibre directions around them. This variability has a great impact on the serviceability limit state performance of wood-based products, such as glued-laminated timber, and thus should be considered within design concepts. Numerous applications of random process models for numerically representing the fluctuation of the mechanical properties along wooden boards can be found in the literature. But, the corresponding mechanical probabilistic investigation, however, is limited almost exclusively to Monte Carlo simulations so far. For this reason, the focus of this work is laid on alternative probabilistic approaches, in particular the perturbation and the spectral stochastic finite element method. Both methods are combined with several discretization methods for the random process, programmed in a consistent environment, and compared to the Monte Carlo simulation, regarding computational effort as well as quality of results. For this purpose, the second-order moments (mean and standard deviation) of the system response of a glued-laminated timber beam with random lamination stiffness are computed. The performance of the different approaches is compared and, in particular, the influence of the variability of the 'raw' material on the structural response is shown. Well-known effects, such as the decrease in the variability of effective properties of GLT with increasing number of lamellas, are numerically reproduced and quantified. Moreover, a significant influence of the correlation length, specifying the rate of material property fluctuation within each lamella, on the effective stiffness of the resulting glued-laminated timber beams is demonstrated.
机译:由于木材的自然生长过程,木板的机械性能容易发生变化,主要是由结引起的,以及由此导致的木质纤维方向的偏差。这种变化对诸如胶合层压木材之类的木质产品的使用寿命极限状态性能有很大影响,因此应在设计概念中加以考虑。可以在文献中找到随机过程模型的大量应用,以数字方式表示沿木板的机械性能的波动。但是,到目前为止,相应的机械概率研究几乎仅限于蒙特卡洛模拟。因此,这项工作的重点放在其他概率方法上,特别是扰动和频谱随机有限元方法。两种方法都与随机过程的几种离散化方法相结合,并在一致的环境中进行编程,并在计算量和结果质量方面与蒙特卡洛模拟进行了比较。为此,计算了具有随机层压刚度的胶合层压木梁的系统响应的二阶矩(均值和标准偏差)。比较了不同方法的性能,特别是显示了“原始”材料的可变性对结构响应的影响。数字复制和量化众所周知的效果,例如随着薄片数量的增加,GLT有效特性的可变性降低。此外,证明了相关长度的显着影响,确定了每个薄片内的材料特性波动的速率,对所得胶合层压木梁的有效刚度产生了影响。

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