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沙坪坝车站站房的振动传递研究
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作者 罗云柯 李小珍 +3 位作者 高慰 郭镇 洪闰林 周小杰 《噪声与振动控制》 CSCD 2018年第A02期440-444,共5页
以重庆沙坪坝车站站房为研究对象,通过现场锤击试验,探讨站房的振动传递规律。对实测的振动信号进行时程与1/3倍频成分析,然后,将锤击作用下的站房振动与结构本底振动进行对比,得到站房结构的振动敏感频段,最后,基于有限元软件ANSYS建... 以重庆沙坪坝车站站房为研究对象,通过现场锤击试验,探讨站房的振动传递规律。对实测的振动信号进行时程与1/3倍频成分析,然后,将锤击作用下的站房振动与结构本底振动进行对比,得到站房结构的振动敏感频段,最后,基于有限元软件ANSYS建立站房结构有限元模型,计算站房的自振特性,并与试验数据进行对比。结果表明:人为锤击激励有限,在分析锤击引起的站房振动时不可忽略本底振动的影响;站房的本底振动优势频段为1 Hz^3.15Hz,峰值频段均为2 Hz;人为锤击激励在1 Hz^100 Hz均可激起较大的振动,覆盖本文探讨的所有频段;对轨道施加人为锤击激励时,站房与站台的振动敏感频段大致为31.5 Hz^80 Hz;高频振动沿传递路径衰减明显,锤击点不宜距测量点过远;计算得到站房前10阶自振频率在1 Hz^3 Hz,与实测的本底振动频率基本一致。 展开更多
关键词 动与波 锤击试验 动传递 敏感频段 车站站房 自振模态
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组合结构的三维地震响应分析(英文) 被引量:2
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作者 魏德敏 李联彬 《华南理工大学学报(自然科学版)》 EI CAS CSCD 北大核心 2002年第12期67-70,共4页
应用有限元程序对某高速公路收费站的主体结构进行了三维建模和地震响应分析 ,得出前五个自振频率及其相应的模态 。
关键词 三维地震响应 组合结构 空间网架 钢筋混凝土 有限元法 自振频率 自振模态
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Output Voltage Model and Mechanical-Magnetic Design of Magnetostrictive Vibration Energy Harvester with a Rotating Up-Frequency Structure1
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作者 Huang Wenmei Xue Tianxiang +2 位作者 Feng Xiaobo Weng Ling Li Mingming 《电工技术学报》 EI CSCD 北大核心 2024年第24期7639-7650,共12页
A vibration energy harvester can harvest vibration energy in the environment and convert it into electrical energy to power the sensors in the Internet of Things.Human walking contains high-quality vibration energy,wh... A vibration energy harvester can harvest vibration energy in the environment and convert it into electrical energy to power the sensors in the Internet of Things.Human walking contains high-quality vibration energy,which serves as the energy source for vibration energy harvesters due to its abundant availability,high energy conversion efficiency,and environmental friendliness.It is difficult to harvest human walking vibration due to its low frequency.Converting the low-frequency vibration of human walking into high-frequency vibration has attracted attention.In previous studies,vibration energy harvesters typically increase frequency by raising excitation frequency or inducing free vibration.When walking frequency changes,the up-frequency method of raising the excitation frequency changes the voltage frequency,resulting in the best load resistance change and reducing the output power.The up-frequency method of inducing free vibration does not increase the external excitation frequency,which has relatively low output power.This paper designs a magnetostrictive vibration energy harvester with a rotating up-frequency structure.It consists of a rotating up-frequency structure,a magnetostrictive structure,coils,and bias magnets.The main body of the rotating up-frequency structure comprises a torsion bar and a flywheel with a dumbbell-shaped hole.The magnetostrictive structure includes four magnetostrictive metal sheets spliced by Galfenol and steel sheets.The torsion bar and flywheel interact to convert low-frequency linear vibration into rotating high-frequency excitation vibration of the flywheel.The flywheel plucks the magnetostrictive metal sheet with a high excitation frequency to generate free vibration.The vibration energy harvester increases the excitation frequency while inducing free vibration,which can effectively improve the output power.To characterize the excitation vibration and free vibration,based on the theory of Euler-Bernoulli beam theory,the vibration equation of the magnetostrictive metal sheet after being excited is given.According to the classical machine-magnetic coupling model and the Jiles-Atherton physical model,the relationship between stress and magnetization strength is derived.Combined with Faraday's law of electromagnetic induction,the distributed dynamic output voltage model is established.This model can predict the output voltage at different excitation frequencies.Based on this model,the mechanical-magnetic structural parameter optimization design is carried out.The parameters of the magnetostrictive metal sheet,the bias magnet,and the rotating up-frequency structure are determined.A comprehensive experimental system is established to test the device.The peak-to-peak voltage and output voltage signal by the proposed model are compared.The average relative deviation of the peak-to-peak voltage and the output voltage signal is 4.9%and 8.2%,respectively.The experimental results show that the output power is proportional to the excitation frequency.The optimum load resistance is always 800Ωas the excitation frequency changes,simplifying the impedance-matching process.The maximum peak-to-peak voltage of the device is 58.60 V,the maximum root mean square(RMS)voltage is 9.53 V,and the maximum RMS power is 56.20 mW.The magnetostrictive vibration energy harvester with a rotating up-frequency structure solves the problem of impedance matching,which improves the output power.The proposed distributed dynamic output voltage model can effectively predict the output characteristics.This study can provide structural and theoretical guidance for up-frequency structure vibration energy harvesters for human walking vibration. 展开更多
关键词 Vibration energy harvester MAGNETOSTRICTIVE rotating up-frequency dynamic model free vibration
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