{"title":"重新设计战略,使子系统发挥动态减震器的功能","authors":"Masami Matsubara, Kohei Takahashi, Kohei Furuya, Akira Saito, Shozo Kawamura","doi":"10.1177/10775463241272924","DOIUrl":null,"url":null,"abstract":"In the design of a typical dynamic absorber, the components corresponding to the dynamic vibration absorber (DVA) should be reduced to a lumped constant system model comprising a mass, spring, and damper. The equivalent mass and stiffness must be determined and linked to design coefficients. However, no studies on the dynamic design of a main structure (main system) and an attached DVA (sub-system) based on an FE model without constructing a reduced-order equivalent model with a few DOFs have been conducted. This study proposes a new method of extracting and simplifying the design of a sub-system to function as a DVA using the state of a finite element (FE) model. We established the relationship between the condition of the sub-system functioning as a DVA and the modal parameter of the entire system. According to a survey, the modal kinetic energies, which were calculated from the partial mass matrix and mode vectors, of the main system and sub-system are approximately equal. We used this relationship to redesign the sub-system. As the modal kinetic energy was used as a design index, the FE model could be redesigned without constructing an equivalent lumped parameter model consisting of two or three degrees of freedom (DOFs) as in the conventional DVA design. We demonstrated the relationship between the modal kinetic energies of the main system and sub-system when it functions as a DVA for a 2-DOF lumped mass model and discussed how to distinguish the sub-system from the entire system (multi-DOF system). Considerable improvement was found in re-designing at FE model, validating the proposed method. 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引用次数: 0
摘要
在设计典型的动态减震器时,应将与动态减震器(DVA)相对应的部件简化为由质量、弹簧和阻尼器组成的整块恒定系统模型。必须确定等效质量和刚度,并将其与设计系数联系起来。然而,基于有限元模型对主体结构(主系统)和附属 DVA(子系统)进行动态设计,而不构建具有少量 DOF 的降阶等效模型的研究尚未开展。本研究提出了一种新方法,利用有限元 (FE) 模型的状态提取并简化子系统的设计,使其发挥 DVA 的功能。我们确定了作为 DVA 运行的子系统的状态与整个系统的模态参数之间的关系。根据一项调查,主系统和子系统的模态动能(由部分质量矩阵和模态矢量计算得出)大致相等。我们利用这一关系重新设计了子系统。由于模态动能被用作设计指标,因此可以重新设计 FE 模型,而无需像传统 DVA 设计那样构建一个由两个或三个自由度(DOF)组成的等效整块参数模型。我们展示了主系统和子系统的模态动能之间的关系,当主系统作为二维自由度块状质量模型的 DVA 时,并讨论了如何将子系统与整个系统(多维自由度系统)区分开来。在对 FE 模型进行重新设计时,发现了显著的改进,验证了所提出的方法。所提出的方法可用于重新设计与动态吸收器行为相似的部件,以有效减少 FE 分析结果中的振动,而无需将系统建模为一个块状常数系统。
Re-designing strategy to enable a sub-system to function as a dynamic vibration absorber
In the design of a typical dynamic absorber, the components corresponding to the dynamic vibration absorber (DVA) should be reduced to a lumped constant system model comprising a mass, spring, and damper. The equivalent mass and stiffness must be determined and linked to design coefficients. However, no studies on the dynamic design of a main structure (main system) and an attached DVA (sub-system) based on an FE model without constructing a reduced-order equivalent model with a few DOFs have been conducted. This study proposes a new method of extracting and simplifying the design of a sub-system to function as a DVA using the state of a finite element (FE) model. We established the relationship between the condition of the sub-system functioning as a DVA and the modal parameter of the entire system. According to a survey, the modal kinetic energies, which were calculated from the partial mass matrix and mode vectors, of the main system and sub-system are approximately equal. We used this relationship to redesign the sub-system. As the modal kinetic energy was used as a design index, the FE model could be redesigned without constructing an equivalent lumped parameter model consisting of two or three degrees of freedom (DOFs) as in the conventional DVA design. We demonstrated the relationship between the modal kinetic energies of the main system and sub-system when it functions as a DVA for a 2-DOF lumped mass model and discussed how to distinguish the sub-system from the entire system (multi-DOF system). Considerable improvement was found in re-designing at FE model, validating the proposed method. The proposed method can be used to redesign components that behave similarly to dynamic absorbers to effectively reduce vibration from the results of FE analysis, without modeling the system as a lumped constant system.
期刊介绍:
The Journal of Vibration and Control is a peer-reviewed journal of analytical, computational and experimental studies of vibration phenomena and their control. The scope encompasses all linear and nonlinear vibration phenomena and covers topics such as: vibration and control of structures and machinery, signal analysis, aeroelasticity, neural networks, structural control and acoustics, noise and noise control, waves in solids and fluids and shock waves.