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Flow-Induced Vibration Handbook for Nuclear and Process Equipment
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Страница 1
Table of Contents
List of Tables
List of Illustrations
Guide
Pages
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1 Introduction and Typical Vibration Problems
1.1 Introduction
1.2 Some Typical Component Failures
1.3 Dynamics of Process System Components 1.3.1 Multi‐Span Heat Exchanger Tubes
1.3.2 Other Nuclear and Process Components
References
Notes
2 Flow‐Induced Vibration of Nuclear and Process Equipment: An Overview
2.1 Introduction
2.1.1 Flow‐Induced Vibration Overview
2.1.2 Scope of a Vibration Analysis
2.2 Flow Calculations
2.2.1 Flow Parameter Definition
2.2.2 Simple Flow Path Approach
2.2.3 Comprehensive 3‐D Approach
2.2.4 Two‐Phase Flow Regime
2.3 Dynamic Parameters
2.3.1 Hydrodynamic Mass
2.3.2 Damping
Heat Exchanger Tubes in Gases
Heat Exchanger Tubes in Liquids
Damping in Two‐Phase Flow
2.4 Vibration Excitation Mechanisms
2.4.1 Fluidelastic Instability
Single‐Phase Cross Flow (Gas or Liquid)
Two‐Phase Flow
2.4.2 Random Turbulence Excitation
Single‐Phase Cross Flow
Two‐Phase Cross Flow
2.4.3 Periodic Wake Shedding
2.4.4 Acoustic Resonance
2.4.5 Susceptibility to Resonance
2.5 Vibration Response Prediction
2.5.1 Fluidelastic Instability
2.5.2 Random Turbulence Excitation
2.5.3 Periodic Wake Shedding
2.5.4 Acoustic Resonance
2.5.5 Example of Vibration Analysis
2.6 Fretting‐Wear Damage Considerations
2.6.1 Fretting‐Wear Assessment
2.6.2 Fretting‐Wear Coefficients
2.6.3 Wear Depth Calculations
2.7 Acceptance Criteria
2.7.1 Fluidelastic Instability
2.7.2 Random Turbulence Excitation
2.7.3 Periodic Wake Shedding
2.7.4 Tube‐to‐Support Clearance
2.7.5 Acoustic Resonance
2.7.6 Two‐Phase Flow Regimes
References
Note
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