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波傳播法解析結(jié)構(gòu)振動(dòng)(英文版 精)

波傳播法解析結(jié)構(gòu)振動(dòng)(英文版 精)

定 價(jià):¥1090.00

作 者: 吳崇建 著
出版社: 哈爾濱工程大學(xué)出版社
叢編項(xiàng):
標(biāo) 簽: 暫缺

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ISBN: 9787566127464 出版時(shí)間: 2020-11-01 包裝: 精裝
開本: 16開 頁數(shù): 267 字?jǐn)?shù):  

內(nèi)容簡介

  本書中文名為《波傳播法解析結(jié)構(gòu)振動(dòng)》,波傳播法(WPA法)以四階微分方程為基礎(chǔ),在方程推導(dǎo)和重構(gòu)解析環(huán)節(jié),始終采用時(shí)域空間指數(shù)函數(shù),建立了解析結(jié)構(gòu)振動(dòng)的統(tǒng)一框架。本書聚焦結(jié)構(gòu)“間斷點(diǎn)”,分析波的傳播、反射、衰減和波形轉(zhuǎn)換。結(jié)合功率流理論,本書力圖從梁、板、周期結(jié)構(gòu)、TMD和激勵(lì)源等基礎(chǔ)單元入手,從結(jié)構(gòu)波的微觀視角開展結(jié)構(gòu)動(dòng)力學(xué)研究。WPA法是解析法的一種補(bǔ)充。本書閱讀對象包括希望深入學(xué)習(xí)結(jié)構(gòu)噪聲、功率流理論和振動(dòng)噪聲控制等領(lǐng)域的本學(xué)生、研究生和工程設(shè)計(jì)人員。閱讀本書需要具備一定的振動(dòng)噪聲基礎(chǔ)理論知識(shí)和工程實(shí)踐經(jīng)驗(yàn)。

作者簡介

  吳崇建,1960年10月生,博導(dǎo),中國船舶集團(tuán)減振降噪領(lǐng)域首席技術(shù)專家,我國某型常規(guī)潛艇總設(shè)計(jì)師,中國力學(xué)學(xué)會(huì)特邀理事,曾在英國南安普頓大學(xué)ISVR做訪問學(xué)者/助理研究員,對減振降噪基礎(chǔ)理論和工程應(yīng)用有較深入的研究,獲國家科技進(jìn)步特等獎(jiǎng)、一等獎(jiǎng)各一次,獲得“船舶設(shè)計(jì)大師”等榮譽(yù)稱號。

圖書目錄

1 The Basic Theory of Structure-Borne Noise
1.1 The Vibration Modes of Beams
1.1.1 Basic Equations
1.1.2 MATLAB Examples
1.2 The Vibration Modes of Plates
1.2.1 Basic Equations
1.2.2 Calculation Examples for Plates
1.2.3 The Natural Frequencies of Plates
1.3 Sound Pressure, Sound Power, and Sound Radiation Efficiency
1.3.1 Far-Field Sound Pressure
1.3.2 The Wave Number Transform Solution
1.3.3 Volume Velocity and Sound Pressure
1.4 Sound Power and Sound Radiation Efficiency
1.4.1 Basic Equations for the Radiation Mode Theory
1.4.2 Examples of Beam and Plate Structures
1.4.3 Radiation Efficiency in Terms of Radiation Modes
1.4.4 Radiation Efficiency in Terms of Structural Modes
1.4.5 Examples of the Calculation of Radiation Efficiency
References
2 Basic Theory of WPA
2.1 Challenges and Evolution of Analytical Method
2.2 Mathematical Description of WPA
2.2.1 Development History of WPA
2.2.2 Characteristic Function Expressed by Exponential Function
2.2.3 Coefficients of Response Function of Point Harmonic Force
2.2.4 Coefficients of Point Harmonic Bending Moment Response Function
2.2.5 Boundary Conditions
2.2.6 Analytical Reconstruction of Finite Beam
2.3 WPA for Analysis of Finite Simple Structures
2.3.1 WPA Expressions of Displacement, Shear Force, and Bending Moment
2.3.2 S-S Beam
2.3.3 C-C Beam
2.3.4 C-F Beam
2.3.5 Comparison Between WPA and Classical Analytical Method
2.4 Traceability and Characteristic Analysis of WPA
2.4.1 Traceability of WPA
2.4.2 Characteristics of WPA
2.5 Introduction to the Various Parameters in WPA
2.5.1 WPA and Mechanism Analysis
2.6 Shortcomings of WPA
2.7 Summary
References
3 Analysis of Plate Structure Using WPA Method
3.1 Introduction
3.2 Bending Vibration and Wave of Uniform Plate
3.3 Response of Infinite Plate Under Harmonic Force (Moment)
3.3.1 Response of an Infinite Plate Under Harmonic Force
3.3.2 Response of Infinite Plate Under Harmonic Moment
3.4 Wave Propagation in Infinite Plate at the Vertical Incidence of Bending Wave in Discontinuous Interface
3.4.1 Plate Simply Supported at the Middle
3.4.2 Plate Simply Supported at One End
3.4.3 Plate Firmly Supported at One End
3.4.4 Plate Free at One End
3.5 Wave Propagation When Bending Wave of Infinite Plate Is Incident on Discontinuous Interface
3.6 Forced Vibration of a Rectangular Plate with Both Ends Simply Supported
3.7 Analytical Solution Example for Vibration of a Plate Using WPA
3.8 WPA Method for Solving Structure Power Flow of Plate
3.9 Summary
References
4 WPA for Analyzing Complex Beam Structures
4.1 Research History and Methods of Complex Beam Structures
4.2 WPA Analysis of Elastic Coupled Beams
4.2.1 Establishment of WPA Expression
4.2.2 Boundary Conditions and Consistency Conditions
4.2.3 Vibration Response of Elastic Coupled Beam
4.3 Finite Arbitrary Multi-Supported Elastic Beam
4.3.1 Mechanical Model and WPA Expression
4.3.2 WPA Superposition Under Multi-Harmonic Force Excitation
4.4 Dynamic Response and Stress of Four-Supported Mast
4.4.1 Mechanical Model and WPA Expression
4.4.2 Analysis of Dynamic Stress of Four-Supported Mast
4.5 Periodic and Quasi-Periodic Structures
4.5.1 Properties of Periodic Structure
4.5.2 Properties of Quasi-Periodic Structure
4.6 Energy Transmission Loss Due to Flexible Tubes
4.6.1 Establishment of WPA Expression
4.6.2 Boundary Conditions and Consistency Conditions
4.6.3 Analysis of Dynamic Characteristics of Pipe Sections with Flexible Tubes
4.7 Double-Stage Vibration Isolation Device for Pipeline
4.7.1 Establishment of WPA Expression
4.7.2 Boundary Conditions and Consistency Conditions
4.8

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