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    Rigid-Flexible Coupling Hoisting Robots

    Modeling, Analysis, and Control

    AvBin Zi,Bin Zhou

    Inbunden, Engelska, 2026

    1 457 kr

    Slutsåld

    Beskrivning

    Comprehensive resource detailing the technology of rigid-flexible coupling robots and their applications Rigid-Flexible Coupling Hoisting Robots: Modeling, Analysis, and Control introduces the configuration and optimization design, mechanics and fundamental mechanical issues, uncertainty analysis, trajectory planning, control, and applications of rigid-flexible coupling hoisting robots. The book also reviews kinematics and dynamics modeling as well as design methods to enhance overall performance including motion decoupling, reconfigurable design, and optimization design. A series of numerical simulations and specific experiments on real prototypes are included to help readers quickly grasp both theory and practical application. Summarizing the numerous achievements the authors have made in the field in recent years, Rigid-Flexible Coupling Hoisting Robots: Modeling, Analysis, and Control includes information on: Fundamental challenges including trajectory planning, tracking control, and force controlMulti-objective optimization design for workspace dexterity and stiffnessKinematic uncertainty analysis with random parameters, narrowly bounded uncertainty, and large-bounded uncertaintyDynamic uncertainty analysis with hybrid-random and interval parametersController design and platform developmentRigid-Flexible Coupling Hoisting Robots: Modeling, Analysis, and Control is an essential reference on the subject for researchers and engineers in the field as well as graduate students in related programs of study.

    Produktinformation

    • Utgivningsdatum:2026-12-02
    • Format:Inbunden
    • Språk:Engelska
    • Antal sidor:320
    • Förlag:John Wiley & Sons Inc
    • ISBN:9781394308941

    Utforska kategorier

    • Maskinteknik och material inom Naturvetenskap och teknik
    • Elektronik och kommunikationer inom Naturvetenskap och teknik

    Mer om författaren

    BIN ZI is currently a Professor with the School of Mechano-Electronic Engineering, Xidian University, Xi’an, China. He has published 5 monographs, more than 200 papers and more than 100 authorized invention patents. His research interests include the theory, technology and equipment of intelligent rigid-flexible coupling robots, and automation of intelligent manufacturing system. BIN ZHOU is currently an Associate Professor with the School of Mechanical Engineering, Hefei University of Technology, Hefei, China. He has authored more than 20 papers and more than 15 authorized invention patents. His research interests include uncertainty analysis and reliability-based optimization design, and intelligent control of rigid-flexible coupling robots.

    Innehållsförteckning

    • Preface viiMain Symbol Table ix1 Introduction 11.1 The Evolution of Rigid–Flexible Coupling Robots 11.2 The History and Development of Rigid–Flexible Coupling Hoisting Robots 81.3 The Applications of RFCHRs in Various Fields 111.4 Scope and Organization of This Book 172 Kinematics and Dynamic Modeling of Rigid–Flexible Coupled Hoisting Robots 272.1 Preamble 272.2 Mechanism Design and Kinematic Analysis of RFCHRs 292.3 Dynamic Modeling of RFCHRs 422.4 Conclusion 493 Motion Decoupling, Reconfigurable Design of Rigid–Flexible Coupling Hoisting Robots 513.1 Preamble 513.2 Motion-decoupling Design for a 7-DOF RFCHR 533.3 Modular and Reconfigurable Mechanism Design of RFCHRs 613.4 Integrated Mechanism Design of Dual-machine Collaborative RFCHRs 653.5 Conclusion 724 Optimization Design of Rigid–Flexible Coupling Hoisting Robots 754.1 Preamble 754.2 Multi-objective Optimization Design for Workspace and Dexterity 764.3 Multi-objective Optimization Design for Reliability, Workspace, and Stiffness 894.4 Experiment and Verification 1094.5 Conclusion 1145 Kinematic Analysis of Rigid–Flexible Coupling Hoisting Robots with Uncertainty 1175.1 Preamble 1175.2 Kinematic Uncertainty Analysis with Random Parameters 1195.3 Kinematic Uncertainty Analysis with Interval Variables 1335.4 Kinematic Uncertainty Analysis Based on Evidence Theory 1435.5 Kinematic Uncertainty Analysis with Hybrid Random and Interval Parameters 1605.6 Conclusion 1776 Dynamic Analysis of Rigid–Flexible Coupling Hoisting Robots with Uncertainty 1816.1 Preamble 1816.2 Static Uncertainty Analysis with Fuzzy Parameters 1836.3 Dynamic Uncertainty Analysis with Hybrid Random and Interval Parameters 2016.4 Conclusion 2387 Trajectory Planning and Tracking Control of Rigid–Flexible Coupling Hoisting Robots 2417.1 Preamble 2417.2 Trajectory Planning for RFCHRs 2447.3 Fuzzy Control for RFCHRs 2647.4 Force Control for RFCHRs 2757.5 Conclusion 2828 Platform Development and Application for Rigid–Flexible Coupling Hoisting Robots 2858.1 Preamble 2858.2 Platform Development and Performance Verification of an RFCHR for Yard Operations 2878.3 Platform Development and Performance Verification for the 7-DOF RFCHR 2938.4 Conclusion 298References 299Index 301