Three-dimensional modeling and bandgap performance of a rotating phononic crystal pipe conveying fluid

IF 3.4 2区 工程技术 Q1 ENGINEERING, MECHANICAL Journal of Fluids and Structures Pub Date : 2024-09-04 DOI:10.1016/j.jfluidstructs.2024.104172
{"title":"Three-dimensional modeling and bandgap performance of a rotating phononic crystal pipe conveying fluid","authors":"","doi":"10.1016/j.jfluidstructs.2024.104172","DOIUrl":null,"url":null,"abstract":"<div><p>Vibration and noise reduction of motional structures is a conventional challenge in a variety of industrial realms due to synchronous spatial motions present. In this case, optimizing structure design could provide a promising way for solution. Motivated by the idea of wave manipulation via phononic crystals (PCs), this paper aims to control three-dimensional (3D) vibration transmission of a rotating pipe by introducing an axial periodic design. The pipe is arranged as a composite structure comprised of alternate materials along the axial direction, and a constant fluid flows inside the pipe. Based on the Rayleigh beam theory, a set of 3D doubly-gyroscopic equations governing in-plane, out-of-plane flexural and axial motions of the pipe is established, which accounts for rotation gyroscopic force and fluid gyroscopic force. The spectral element technology is applied in such multi-dimensional system for solution. Following a validation by the finite element (FE) simulation, the band structure, frequency response function (FRF) and elastic wave shapes are presented to elucidate the 3D bandgap (BG) mechanism of the rotating PC pipe. The results obtained demonstrate the superior effectiveness of the proposed model for the 3D vibration suppression. Extensive parametric discussions reveal that the rotating motion, flowing fluid and geometry of the pipe all have significant impacts on the BG performance of the present rotating PC pipe system.</p></div>","PeriodicalId":54834,"journal":{"name":"Journal of Fluids and Structures","volume":null,"pages":null},"PeriodicalIF":3.4000,"publicationDate":"2024-09-04","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":null,"platform":"Semanticscholar","paperid":null,"PeriodicalName":"Journal of Fluids and Structures","FirstCategoryId":"5","ListUrlMain":"https://www.sciencedirect.com/science/article/pii/S0889974624001075","RegionNum":2,"RegionCategory":"工程技术","ArticlePicture":[],"TitleCN":null,"AbstractTextCN":null,"PMCID":null,"EPubDate":"","PubModel":"","JCR":"Q1","JCRName":"ENGINEERING, MECHANICAL","Score":null,"Total":0}
引用次数: 0

Abstract

Vibration and noise reduction of motional structures is a conventional challenge in a variety of industrial realms due to synchronous spatial motions present. In this case, optimizing structure design could provide a promising way for solution. Motivated by the idea of wave manipulation via phononic crystals (PCs), this paper aims to control three-dimensional (3D) vibration transmission of a rotating pipe by introducing an axial periodic design. The pipe is arranged as a composite structure comprised of alternate materials along the axial direction, and a constant fluid flows inside the pipe. Based on the Rayleigh beam theory, a set of 3D doubly-gyroscopic equations governing in-plane, out-of-plane flexural and axial motions of the pipe is established, which accounts for rotation gyroscopic force and fluid gyroscopic force. The spectral element technology is applied in such multi-dimensional system for solution. Following a validation by the finite element (FE) simulation, the band structure, frequency response function (FRF) and elastic wave shapes are presented to elucidate the 3D bandgap (BG) mechanism of the rotating PC pipe. The results obtained demonstrate the superior effectiveness of the proposed model for the 3D vibration suppression. Extensive parametric discussions reveal that the rotating motion, flowing fluid and geometry of the pipe all have significant impacts on the BG performance of the present rotating PC pipe system.

查看原文
分享 分享
微信好友 朋友圈 QQ好友 复制链接
本刊更多论文
旋转声子晶体管输送流体的三维建模和带隙性能
由于存在同步空间运动,运动结构的减振降噪是各种工业领域面临的传统挑战。在这种情况下,优化结构设计不失为一种可行的解决方案。受通过声子晶体(PC)操纵波的思想启发,本文旨在通过引入轴向周期性设计来控制旋转管道的三维(3D)振动传播。管道沿轴向布置为由交替材料组成的复合结构,管道内有恒定的流体流动。基于雷利梁理论,建立了一套三维双陀螺方程,用于控制管道的平面内、平面外挠曲和轴向运动,其中考虑了旋转陀螺力和流体陀螺力。在这种多维系统中采用了谱元技术进行求解。经过有限元(FE)模拟验证后,提出了频带结构、频率响应函数(FRF)和弹性波形,以阐明旋转 PC 管道的三维带隙(BG)机制。所获得的结果证明了所提出的模型在三维振动抑制方面的卓越功效。广泛的参数讨论表明,旋转运动、流动流体和管道的几何形状都会对现有旋转 PC 管道系统的带隙性能产生重大影响。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
求助全文
约1分钟内获得全文 去求助
来源期刊
Journal of Fluids and Structures
Journal of Fluids and Structures 工程技术-工程:机械
CiteScore
6.90
自引率
8.30%
发文量
173
审稿时长
65 days
期刊介绍: The Journal of Fluids and Structures serves as a focal point and a forum for the exchange of ideas, for the many kinds of specialists and practitioners concerned with fluid–structure interactions and the dynamics of systems related thereto, in any field. One of its aims is to foster the cross–fertilization of ideas, methods and techniques in the various disciplines involved. The journal publishes papers that present original and significant contributions on all aspects of the mechanical interactions between fluids and solids, regardless of scale.
期刊最新文献
Rapidly deployable hulls and on-demand tunable hydrodynamics with shape morphing curved crease origami Global stability analysis of flow-induced-vibration problems using an immersed boundary method Hydroelastic wave interaction with a circular crack of an ice-cover in a channel Editorial Board Three-dimensional modeling and bandgap performance of a rotating phononic crystal pipe conveying fluid
×
引用
GB/T 7714-2015
复制
MLA
复制
APA
复制
导出至
BibTeX EndNote RefMan NoteFirst NoteExpress
×
×
提示
您的信息不完整,为了账户安全,请先补充。
现在去补充
×
提示
您因"违规操作"
具体请查看互助需知
我知道了
×
提示
现在去查看 取消
×
提示
确定
0
微信
客服QQ
Book学术公众号 扫码关注我们
反馈
×
意见反馈
请填写您的意见或建议
请填写您的手机或邮箱
已复制链接
已复制链接
快去分享给好友吧!
我知道了
×
扫码分享
扫码分享
Book学术官方微信
Book学术文献互助
Book学术文献互助群
群 号:481959085
Book学术
文献互助 智能选刊 最新文献 互助须知 联系我们:info@booksci.cn
Book学术提供免费学术资源搜索服务,方便国内外学者检索中英文文献。致力于提供最便捷和优质的服务体验。
Copyright © 2023 Book学术 All rights reserved.
ghs 京公网安备 11010802042870号 京ICP备2023020795号-1