• Fri frakt över 249 kr
  • •
  • Snabba leveranser
  • •
  • Billiga böcker
Kundservice

Du är på sajten för privatpersoner.

Företag, bibliotek eller offentlig verksamhet?

Du handlar på classic.bokus.com, där alla dina funktioner finns intakta.
Till classic.bokus.com
Bokus logotyp. Gå till startsidan.
  • Erbjudanden
  • Nyheter
  • Student
  • Topplistor
  • Barn & ungdom
  • Bokus Play
  • E-böcker
  • Pocketböcker
  • Spel & pussel

10% studentrabatt med kod TERM26

Sidfot

Mina sidor

    Hjälp

    • Kundservice
    • Vanliga frågor och svar
    • Frakt och leverans
    • Retur vid ångerrätt
    • Reklamera vara
    • Betalning
    • Köpvillkor
    • Allmänna villkor
    • Information om webbplatsens tillgänglighet

    Om Bokus

    • Om oss
    • Pressrum
    • För studenter
    • För företag
    • För bibliotek och offentlig verksamhet
    • För leverantörer
    • Hållbarhet

    Populärt

    • Aktuella erbjudanden
    • Presentkort
    • Studentlitteratur
    • Nya böcker
    • Topplistor
    • Signerade böcker
    • Engelska böcker

    Inspiration

    • Boktips
    • BookTok
    • Populära bokserier
    • Barnbokskaraktärer
    • Populära författare
    Logotyp för Bokus
    Följ oss på Facebook (extern länk)Följ oss på Instagram (extern länk)Följ oss på YouTube (extern länk)Följ oss på TikTok (extern länk)
    bokus @ CookiesAnpassa cookiesIntegritetspolicyKöpvillkor
    Till Citymail hemsida (extern länk)Till Budbee hemsida (extern länk)Till Postnord hemsida (extern länk)Till Schenker hemsida (extern länk)Till Early Bird hemsida (extern länk)Till Walleys hemsida (extern länk)
    1. Naturvetenskap och teknik
    2. Teknik och industri
    3. Maskinteknik och material

    Control of Cutting Vibration and Machining Instability

    A Time-Frequency Approach for Precision, Micro and Nano Machining

    AvC. Steve Suh,Meng-Kun Liu

    Inbunden, Engelska, 2013

    1 174 kr

    Tillfälligt slut

    Beskrivning

    Presents new developments on machine tool vibration control based on discontinuous dynamical systemsMachining instability is a topical area, and there are a wide range of publications that cover the topic. However, many of these previous studies have started by assuming that the behavior of the system can be linearised. Meanwhile, there are many recent advances in the fields of signal processing, nonlinear dynamics, and nonlinear control, all of which are relevant to the machining stability problem.  This book establishes the fundamentals of cutting mechanics and machine tool dynamics in the simultaneous time-frequency domain.  The new nonlinear control theory developed by the authors that facilitates simultaneous control of vibration amplitude in the time-domain and spectral response in the frequency-domain provides the foundation for the development of a controller architecture universally viable for the control of dynamic instability including bifurcation and chaos.  Once parameters underlying the coupling, interaction, and evolution of different cutting states and between the tool and workpiece are established, they can then be incorporated into the architecture to create a control methodology that mitigate machining instability and enable robust, chatter-free machine tool design applicable in particular to high speed micro- and nano-machining.  Presents new developments on machine tool vibration control based on discontinuous dynamical systemsProvides a clear and concise approach to the understanding and control of machine tool and workpiece vibrations from an alternative view, contributing to an in-depth understanding of cutting dynamics and robust control of machining instabilityEquips the reader with the knowledge to understand the dynamics of cutting and operation of machine-tool systems in different conditions as well as the concept of cutting instability controlIncludes data examples in MATLAB coding

    Produktinformation

    • Utgivningsdatum:2013-09-24
    • Mått:177 x 252 x 17 mm
    • Vikt:562 g
    • Format:Inbunden
    • Språk:Engelska
    • Antal sidor:264
    • Förlag:John Wiley & Sons Inc
    • ISBN:9781118371824

    Utforska kategorier

    • Maskinteknik och material inom Naturvetenskap och teknik

    Mer om författaren

    Dr C. Steve Suh, Director, Institute for Innovation and Design in Engineering, Department of Mechanical Engineering, Texas A&M University, USA. Dr Suh obtained his PhD in Mechanical Engineering from Texas A&M University in 1997. He has co-authored numerous journals articles and a book, and was Guest Editor of the Journal of Vibration and Control in 2007. Dr Suh’s research interests include Nonlinear control theory; Laser ultrasonic thermometry; Characterization and control of dynamic manufacturing instability; Engineering design theory; MEMS and NEMS fabrication; High-performance 3D microelectronic packaging; Dynamic system diagnostics and prognostics; Wave propagation; Thermo-Elasto-Viscoplastodynamics.Dr Meng-Kun Liu, Lecturer, Department of Mechanical Engineering, Texas A&M University, USA. Dr.Liu obtained his PhD in Mechanical Engineering from Texas A&M University in 2012. He has two-years senior design instructor experience in system engineering, project management and design optimization, and four years hands-on experience in industrial projects with focuses on design innovation. He was the recipient of the 2012 Departmental Graduate Student Teaching Award, and has co-authored numerous journal articles and conference proceedings. This is his first book.

    Innehållsförteckning

    • Preface ix1 Cutting Dynamics and Machining Instability 11.1 Instability in Turning Operation 21.1.1 Impact of Coupled Whirling and Tool Geometry on Machining 31.2 Cutting Stability 101.3 Margin of Stability and Instability 121.4 Stability in Fine Cuts 231.5 Concluding Remarks 31References 322 Basic Physical Principles 332.1 Euclidean Vectors 332.2 Linear Spaces 342.3 Matrices 362.3.1 Eigenvalue and Linear Transformation 372.4 Discrete Functions 382.4.1 Convolution and Filter Operation 392.4.2 Sampling Theorem 402.4.3 z-Transform 412.5 Tools for Characterizing Dynamic Response 422.5.1 Fourier Analysis 492.5.2 Wavelet Analysis 51References 543 Adaptive Filters and Filtered-x LMS Algorithm 553.1 Discrete-Time FIR Wiener Filter 553.1.1 Performance Measure 563.1.2 Optimization of Performance Function 583.2 Gradient Descent Optimization 603.3 Least-Mean-Square Algorithm 623.4 Filtered-x LMS Algorithm 64References 684 Time-Frequency Analysis 714.1 Time and Frequency Correspondence 724.2 Time and Frequency Resolution 754.3 Uncertainty Principle 764.4 Short-Time Fourier Transform 774.5 Continuous-Time Wavelet Transform 794.6 Instantaneous Frequency 814.6.1 Fundamental Notions 824.6.2 Misinterpretation of Instantaneous Frequency 854.6.3 Decomposition of Multi-Mode Structure 904.6.4 Example of Instantaneous Frequency 944.6.5 Characteristics of Nonlinear Response 97References 1005 Wavelet Filter Banks 1015.1 A Wavelet Example 1015.2 Multiresolution Analysis 1045.3 Discrete Wavelet Transform and Filter Banks 112References 1166 Temporal and Spectral Characteristics of Dynamic Instability 1176.1 Implication of Linearization in Time-Frequency Domains 1186.2 Route-to-Chaos in Time-Frequency Domain 1256.3 Summary 134References 1347 Simultaneous Time-Frequency Control of Dynamic Instability 1377.1 Property of Route-to-Chaos 1377.1.1 OGY Control of Stationary and Nonstationary H´enon Map 1397.1.2 Lyapunov-based Control of Stationary and Nonstationary Duffing Oscillator 1407.2 Property of Chaos Control 1447.2.1 Simultaneous Time-Frequency Control 1457.3 Validation of Chaos Control 155References 1628 Time-Frequency Control ofMilling Instability and Chatter at High Speed 1658.1 Milling Control Issues 1658.2 High-Speed Low Immersion Milling Model 1678.3 Route-to-Chaos and Milling Instability 1688.4 Milling Instability Control 1708.5 Summary 175References 1769 Multidimensional Time-Frequency Control of Micro-Milling Instability 177 9.1 Micro-Milling Control Issues 1779.2 Nonlinear Micro-Milling Model 1799.3 Multivariable Micro-Milling Instability Control 1819.3.1 Control Strategy 1839.4 Micro-Milling Instability Control 1869.5 Summary 193References 19710 Time-Frequency Control of Friction Induced Instability 19910.1 Issues with Friction-Induced Vibration Control 19910.2 Continuous Rotating Disk Model 20110.3 Dynamics of Friction-Induced Vibration 20610.4 Friction-Induced Instability Control 20810.5 Summary 214References 21511 Synchronization of Chaos in Simultaneous Time-Frequency Domain 21711.1 Synchronization of Chaos 21711.2 Dynamics of a Nonautonomous Chaotic System 21911.3 Synchronization Scheme 22211.4 Chaos Control 22311.4.1 Scenario I 22311.4.2 Scenario II 22711.5 Summary 227References 229Appendix: MATLAB® Programming Examples of Nonlinear Time-Frequency Control 231A.1 Friction-Induced Instability Control 231A.1.1 Main Program 232A.1.2 Simulink® Model 236A.2 Synchronization of Chaos 239A.2.1 Main Program 239A.2.2 Simulink® Model 244Index 245