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Development of a new finite element and parametric study for plates with compressible constrained layer damping

机译:具有可压缩约束层阻尼的板的新有限元和参数研究的开发

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摘要

Constrained layer damping (CLD) is widely used in many structures for vibration reduction. It is necessary to model CLD structures precisely. Most existing research studies have modeled the structures as beams, which in many cases is not a sufficient approach. These existing models are based on the assumption that shear deformation in the core layer is the only source of damping in the structure. However, previous research has shown that other types of deformation in the core layer, such as deformations from longitudinal extension and transverse compression, can also be important. To more accurately model CLD, a new plate finite element is developed in this study by assuming that there is shear as well as longitudinal and transverse deformations in the damping layer. This model can be used to better predict the structure's dynamic characteristics, such as resonant frequencies and modal loss factors. By comparing the new model to experimental results from the open literature, this newly developed plate finite element model is validated. With all three types of damping included in this new approach, it becomes possible to study the impact of various design parameters, such as the damping layer's thickness. To that end, a parametric study is also conducted using the newly developed finite element for various design parameters.
机译:约束层阻尼(CLD)广泛用于许多结构中以减少振动。有必要对CLD结构进行精确建模。现有的大多数研究都将结构建模为梁,这在许多情况下还不是足够的方法。这些现有模型基于以下假设:芯层中的剪切变形是结构中阻尼的唯一来源。但是,先前的研究表明,芯层中的其他类型的变形(例如来自纵向延伸和横向压缩的变形)也很重要。为了更准确地对CLD建模,本研究通过假设阻尼层中存在剪切以及纵向和横向变形来开发一种新的板有限元。该模型可用于更好地预测结构的动态特性,例如共振频率和模态损耗因子。通过将新模型与开放文献的实验结果进行比较,验证了该新开发的板有限元模型。通过此新方法中包含的所有三种阻尼类型,可以研究各种设计参数(例如阻尼层的厚度)的影响。为此,还使用新开发的有限元对各种设计参数进行了参数研究。

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