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      Mechanical Vibration and Shock Analysis, Specification Development

      AvChristian Lalanne

      Inbunden, Engelska, 2014

      Del i serien Mechanical Vibration and Shock Analysis

      2 366 kr

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      E-bok

      2 840 kr

      E-bok

      2 840 kr

      Beskrivning

      Everything engineers need to know about mechanical vibration and shock...in one authoritative reference work!This fully updated and revised 3rd edition addresses the entire field of mechanical vibration and shock as one of the most important types of load and stress applied to structures, machines and components in the real world. Examples include everything from the regular and predictable loads applied to turbines, motors or helicopters by the spinning of their constituent parts to the ability of buildings to withstand damage from wind loads or explosions, and the need for cars to maintain structural integrity in the event of a crash. There are detailed examinations of underlying theory, models developed for specific applications, performance of materials under test conditions and in real-world settings, and case studies and discussions of how the relationships between these affect design for actual products.Invaluable to engineers specializing in mechanical, aeronautical, civil, electrical and transportation engineering, this reference work, in five volumes is a crucial resource for the solution of shock and vibration problems.This volume focuses on specification development in accordance with the principle of tailoring. Extreme response and the fatigue damage spectra are defined for each type of stress (sinusoidal vibration, swept sine, shock, random vibration, etc.). The process for establishing a specification from the life cycle profile of equipment which will be subject to these types of stresses is then detailed. The analysis takes into account the uncertainty factor, designed to cover uncertainties related to the real-world environment and mechanical strength, and the test factor, which takes account of the number of tests performed to demonstrate the resistance of the equipment.

      Produktinformation

      • Utgivningsdatum:2014-03-28
      • Mått:163 x 239 x 33 mm
      • Vikt:930 g
      • Format:Inbunden
      • Språk:Engelska
      • Serie:Mechanical Vibration and Shock Analysis
      • Antal sidor:554
      • Upplaga:3
      • Förlag:ISTE Ltd and John Wiley & Sons Inc
      • ISBN:9781848216488

      Utforska kategorier

      • Maskinteknik och material inom Naturvetenskap och teknik

      Mer om författaren

      Christian Lalanne is a Consultant Engineer who previously worked as an expert at the French Atomic Energy Authority and who has specialized in the study of vibration and shock for more than 40 years. He has been associated with the new methods of drafting testing specifications and associated informatic tools.

      Innehållsförteckning

      • Foreword to Series xiiiIntroduction xviiList of Symbols xxiChapter 1 Extreme Response Spectrum of a Sinusoidal Vibration 11.1 The effects of vibration 11.2 Extreme response spectrum of a sinusoidal vibration 21.3 Extreme response spectrum of a swept sine vibration 13Chapter 2 Extreme Response Spectrum of a Random Vibration 212.1 Unspecified vibratory signal 222.2 Gaussian stationary random signal 232.3 Limit of the ERS at the high frequencies 492.4 Response spectrum with up-crossing risk 502.5 Comparison of the various formulae 622.6 Effects of peak truncation on the acceleration time history 662.7 Sinusoidalvibration superimposed on a broadband random vibration 682.8 Swept sine superimposed on a broadband random vibration 832.9 Swept narrowbands on a wideband random vibration 85Chapter 3 Fatigue Damage Spectrum of a Sinusoidal Vibration 893.1 Fatigue damage spectrum definition 893.2 Fatigue damage spectrum of a single sinusoid 923.3 Fatigue damage spectum of a periodic signal 963.4 General expression for the damage 983.5 Fatigue damage with other assumptions on the S-N curve 983.6 Fatigue damage generated by a swept sine vibration on a single-degree-of-freedom linear system 1023.7 Reduction of test time 1213.8 Notes on the design assumptions of the ERS and FDS 124Chapter 4 Fatigue Damage Spectrum of a Random Vibration 1254.1 Fatigue damage spectrum from the signal as function of time 1254.2 Fatigue damage spectrum derived from a power spectral density 1274.3 Simplified hypothesis of Rayleigh's law 1324.4 Calculation of the fatigue damage spectrum with Dirlik's probability density 1384.5 Up-crossing risk fatigue damage spectrum 1404.6 Reduction of test time 1444.7 Truncation of the peaks of the "input" acceleration signal 1494.8 Sinusoidal vibration superimposed on a broadband random vibration 1524.9 Swept sine superimposed on a broadband random vibration 1614.10 Swept narrowbands on a broadband random vibration 162Chapter 5 Fatigue Damage Spectrum of a Shock 1655.1 General relationship of fatigue damage 1655.2 Use of shock response spectrum in the impulse zone 1675.3 Damage created by simple shocks in static zone of the response spectrum 169Chapter 6 Influence of Calculation Conditions of ERSs and FDSs 1716.1 Variation of the ERS with amplitude and vibraiton duration 1716.2 Variation of the FDS with amplitude and duration of vibration 1756.3 Should ERSs and FDSs be drawn with a linear or logarithmic frequency step? 1756.4 With how many points must ERSs and FDSs be calculated? 1776.5 Difference between ERSs and FDSs calculated from a vibratory signal according to time and from its PSD 1806.6 Influence of the number of PSD calculation points on ERS and FDS 1876.7 Influence of the PSD statistical error on ERS and FDS 1926.8 Influence of the sampling frequency during ERS and FDS calculation from a signal on time 1936.9 Influence of the peak counting method 2026.10 Influence of a non-zero mean stress on FDS 206Chapter 7 Tests and Standards 2177.1 Definitions 2177.2 Types of tests 2187.3 What can be expected from a test specification? 2237.4 Specification types 2247.5 Standards specifying test tailoring 235Chapter 8 Uncertainty Factor 2438.1 Need - definitions 2438.2 Sources of uncertainty 2478.3 Statistical aspect of the real environment and of material strength 2498.4 Statistical uncertainty factor 272Chapter 9 Aging Factor 2939.1 Purpose of the aging factor 2939.2 Aging functions used in reliability 2939.3 Method for calculating the aging factor 2969.4 Influence of the aging law's standard deviation 2999.5 Influence of the aging law mean 300Chapter 10 Test Factor 30110.1 Philosophy 30110.2 Normal distributions 30310.3 Log-normal distributions 31510.4 Weibull distributions 31810.5 Choice of confidence level 320Chapter 11 Specification Development 32111.1 Test tailoring 32111.2 Step 1: analysis of the life-cycle profile. Review of the situations 32211.3 Step 2: determination of the real environmental data associated with each situation 32411.4 Step 3: determination of the environment to be simulated 32511.5 Step 4: establishment of the test program 35611.6 Applying this method ot the example of the "round robin" comparative study 36311.7 Taking environment into account in project mamagement 366Chapter 12 Influence of Calculation Conditions of Specification 37512.1 Choice of the number of points in the specification (PSD) 37512.2 Influence of the Q factor on specification (outside of time reduction) 37812.3 Influence of the Q factor on specification when duration id reduced 38212.4 Validity of a specification established for a Q factor equal to 10 when the real structure has another value 38712.5 Advantage in the consideration of a variable Q factor for the calculation of ERSs and FDSs 38812.6 Influence of the value of parameter b on the specification 39012.7 Choice of the value of parameter b in the case of material made up of several components 39412.8 Influence of temperature on parameter b and constant C  39512.9 Importance of a factor of 10 between the specification FDS and the reference FDS (real environment) in a small frequency band 39612.10 Validity of a specification  established by reference to a one-degree-of-freedom system when real structures are multi-degree-of-freedom systems 398Chapter 13 OPther Uses of Extreme Response, Up-Crossing Risk and Fitigue Damage Spectra 39913.1 Comparisons of the severity of different vibrations 39913.2 Swept sine excitation - random vibration transformation 40313.3 Definition of a random vibration with the same severity as a series of shocks 40813.4 Writing a specification only from an ERS (or an URS) 41313.5 Establishment of a swept sine vibration specification 418Appendix 421Formulae 457Bibliography 481Index 497
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