论文标题
圆柱体链带的物理信息的离散元素建模
Physics-informed discrete element modeling for the bandgap engineering of cylinder chains
论文作者
论文摘要
我们提出了一种有效的方法来构建简单的离散元素模型(DEM),该模型(DEM)准确地模拟了连续束的振荡。 DEM基于细长圆柱构件的Timoshenko光束理论及其在组装中相应的波动力学。该物理知识的DEM解释了构成光束元素的多种振动模式。我们构建了模仿圆柱体链的各种DEM,并将其波动力学与在实验中测量的波动动力学进行比较以验证所提出的方法。此外,我们构建了一个渐变的细长圆柱体的木桩链。我们通过实验和数字研究系统的频率带镜,并通过连续超过各个长度的圆柱体产生的多个停止频段来证明构建宽带隙的可能性。该系统通过利用圆柱体的局部共振产生的振动隔离效应来阻止传播波。提出的DEM方法可有效地以有效而准确的方式研究和设计复杂的振动系统。此外,可以利用操纵频率带隙的设计方法来开发振动过滤器和影响缓解设备。
We propose an efficient method to build a simple discrete element model (DEM) that accurately simulates the oscillation of a continuum beam. The DEM is based on the Timoshenko beam theory of slender cylindrical members and their corresponding wave dynamics in assembly. This physics-informed DEM accounts for multiple vibration modes of the constituting beam elements in wide frequency ranges. We construct various DEMs mimicking cylinder chains and compare their wave dynamics with those measured in experiments to validate the proposed method. Furthermore, we construct a graded woodpile chain of slender cylinders. We experimentally and numerically investigate the frequency bandgaps of the system and demonstrate the possibility of constructing a wide bandgap by consecutively superposing multiple stop bands generated from cylinders of various lengths. This system is highly efficient in blocking propagating waves by leveraging the vibration isolation effect stemming from the local resonance of the cylinders. The proposed DEM method can be useful for investigating and designing complex vibration systems in an efficient and accurate manner. Moreover, the design approach of manipulating the frequency bandgap can be exploited for developing vibration filters and impact mitigation devices.