Application and optimization design of non-obstructive particle damping-phononic crystal vibration isolator in viaduct structure-borne noise reduction

IF 3.7 2区 材料科学 Q1 METALLURGY & METALLURGICAL ENGINEERING
Duo-jia Shi, Cai-you Zhao, Xin-hao Zhang, Jun-yuan Zheng, Na-chao Wei, Ping Wang
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引用次数: 0

Abstract

The problems associated with vibrations of viaducts and low-frequency structural noise radiation caused by train excitation continue to increase in importance. A new floating-slab track vibration isolator-non-obstructive particle damping-phononic crystal vibration isolator is proposed herein, which uses the particle damping vibration absorption technology and bandgap vibration control theory. The vibration reduction performance of the NOPD-PCVI was analyzed from the perspective of vibration control. The paper explores the structure-borne noise reduction performance of the NOPD-PCVIs installed on different bridge structures under varying service conditions encountered in practical engineering applications. The load transferred to the bridge is obtained from a coupled train-FST-bridge analytical model considering the different structural parameters of bridges. The vibration responses are obtained using the finite element method, while the structural noise radiation is simulated using the frequency-domain boundary element method. Using the particle swarm optimization algorithm, the parameters of the NOPD-PCVI are optimized so that its frequency bandgap matches the dominant bridge structural noise frequency range. The noise reduction performance of the NOPD-PCVIs is compared to the steel-spring isolation under different service conditions.

无阻碍粒子阻尼-声子晶体隔振器在高架桥结构降噪中的应用与优化设计
由列车激振引起的高架桥振动和低频结构噪声辐射问题日益突出。本文提出了一种新型浮置板轨道隔振器--非阻尼颗粒阻尼-声子晶体隔振器,它采用了颗粒阻尼吸振技术和带隙振动控制理论。从振动控制的角度分析了 NOPD-PCVI 的减振性能。本文探讨了安装在不同桥梁结构上的 NOPD-PCVI 在实际工程应用中遇到的不同使用条件下的结构降噪性能。考虑到桥梁的不同结构参数,通过列车-FST-桥梁耦合分析模型获得传递到桥梁上的载荷。振动响应采用有限元法获得,而结构噪声辐射则采用频域边界元法进行模拟。利用粒子群优化算法,对 NOPD-PCVI 的参数进行了优化,使其频带隙与桥梁结构噪声的主要频率范围相匹配。在不同的使用条件下,将 NOPD-PCVI 的降噪性能与钢弹簧隔振进行了比较。
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来源期刊
Journal of Central South University
Journal of Central South University METALLURGY & METALLURGICAL ENGINEERING-
CiteScore
6.10
自引率
6.80%
发文量
242
审稿时长
2-4 weeks
期刊介绍: Focuses on the latest research achievements in mining and metallurgy Coverage spans across materials science and engineering, metallurgical science and engineering, mineral processing, geology and mining, chemical engineering, and mechanical, electronic and information engineering
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