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    1. Naturvetenskap och teknik
    2. Teknik och industri
    3. Tillverkningsteknik

    Grinding of Single-Crystal Superalloys

    Fundamentals and Technologies

    AvWenfeng Ding,Qing Miao

    Inbunden, Engelska, 2026

    1 561 kr

    Beställningsvara. Skickas inom 5-8 vardagar. Fri frakt över 249 kr.

    Beskrivning

    Comprehensive reference on state-of-the-art aerospace materials, reviewing the latest developments in the field and providing guidance on machining challenges Grinding of Single-Crystal Superalloys provides a comprehensive understanding of grinding technology for single-crystal nickel-based superalloys. It explores and analyzes grinding mechanisms and characteristics using both theoretical and simulation approaches. Grinding behavior in conventional and micro grinding processes are evaluated and compared. The book assesses the surface integrity of single-crystal nickel-based superalloys under different grinding conditions. Simulation and theoretical models for predicting temperature and residual stresses in profile grinding, facilitating optimization, and control are summarized and validated. Grinding of Single-Crystal Superalloys discusses sample topics including: Friction coefficient, wear volume, and wear rate during frettingInfluence of material anisotropy and different crystal orientationsResidual stress fields in grinding of single-crystal turbine blade rootsYield and failure criterionAnalysis of formation mechanisms in nanostructuresGrinding of Single-Crystal Superalloys is an essential reference for industry professionals and researchers seeking to understand the machining theory and practice of this important type of material, especially in the field of aerospace components manufacturing.

    Produktinformation

    • Utgivningsdatum:2026-01-21
    • Mått:170 x 244 x 15 mm
    • Vikt:680 g
    • Format:Inbunden
    • Språk:Engelska
    • Antal sidor:272
    • Förlag:Wiley-VCH Verlag GmbH
    • ISBN:9783527355228

    Utforska kategorier

    • Tillverkningsteknik inom Naturvetenskap och teknik
    • Maskinteknik och material inom Naturvetenskap och teknik
    • Flyg- och rymdteknik inom Naturvetenskap och teknik

    Mer om författaren

    Prof. Wenfeng Ding dedicated his research in the field of advanced manufacturing theory and technologies.Dr. Qing Miao dedicated his research in the field of advanced material microstructure characterization and high-quality and high-efficiency grinding technology of nickel-based superalloys.Dr. Yao Sun researches basic theory and technology of the grinding process of difficult-to-machine materials, intelligent manufacturing, and micro-scale machining.Dr. Ning Qian dedicated his research in the field of advanced and sustainable manufacturing theory and technologies.Dr. Biao Zhao dedicated his research in the field of high-efficiency and precision manufacturing technologies, high-performance tools, and machining process optimization.Prof. Yadong Gong dedicated his research in the field of grinding and precision machining, intelligent manufacturing and equipment, micro-scale processing and additive/subtractive manufacturing.Prof. Jiuhua Xu dedicated his research in the field of advanced and intelligent manufacturing theory and technologies.

    Innehållsförteckning

    • Foreword xiPreface xiiiPart I Grinding Mechanism of Single-crystal Nickel Alloy 11 Introduction 31.1 Development and Practical Application of Single-crystal Nickel Alloy 31.2 Advantages of Grinding Technology of Single-crystal Nickel Alloy 51.3 High-efficiency Grinding Technology Development of Single-crystal Nickel Alloy 71.4 Micro-grinding Technology Development of Single-crystal Nickel Alloy 181.5 Contents of this book 292 Removal Mechanism of Single-crystal Nickel Alloy in High-efficiency Grinding 332.1 Yield Criterion and Failure Criterion of Single-crystal Nickel Alloy 332.2 Simulation Model and Experiment Conditions 342.3 Simulation Results on Material Removal by Multi-abrasive Grains 342.4 Experimental Verification of Simulation Results 413 Plastic Deformation Mechanism of Single-crystal Nickel Alloy in Micro-grinding 453.1 Verification of Plastic Deformation Mechanism in Micro-grinding Materials 453.2 Microscale Debris in Micro-grinding of Single-crystal Nickel Alloy 49Part II Grindability of Single-crystal Nickel Alloys 554 Grinding Force Evaluation 574.1 Grinding Force in Surface Grinding 574.2 Grinding Force in Profile Grinding 634.3 Grinding Force in Micro-grinding 675 Grinding Temperature Evaluation 775.1 Grinding Temperature in Surface Grinding 775.2 Grinding Temperature in Profile Grinding 815.3 Grinding Temperature in Micro-grinding 836 Grinding Wheel Wear Evaluation 936.1 Grinding Wheel Wear in Surface Grinding 936.2 Grinding Wheel Wear in Profile Grinding 1026.3 Grinding Wheel Wear in Micro-grinding 111Part III Surface Integrity by High-efficiency Grinding 1297 Surface and Subsurface Microstructures in High-efficiency Grinding 1317.1 Surface Microstructure and Surface Roughness in Surface Grinding 1317.2 Subsurface Microstructure in Surface Grinding 1337.3 Surface Microstructure and Surface Roughness in Profile Grinding 1357.4 Subsurface Microstructure in Profile Grinding 1388 Subsurface Nanostructures in High-efficiency Grinding 1478.1 Subsurface Nanostructures in Profile Grinding 1478.2 Analysis on Formation Mechanism of Nanostructures 1528.3 Plastic Deformation and Microstructure Evolution of Single-crystal Nickel Superalloy 1579 Microhardness and Residual Stresses in High-efficiency Grinding 1679.1 Microhardness in Surface Grinding 1679.2 Microhardness in Profile Grinding 1679.3 Residual Stresses in Profile Grinding 16910 Fretting Wear Behavior of the Machined Surface in High-efficiency Grinding 17110.1 Friction Coefficient, Wear Volume, and Wear Rate During Fretting 17110.2 Surface and Subsurface Microstructure During Fretting 17410.3 Analysis of Fretting Wear Evolution on the Ground Surface 176Part IV Surface Integrity in Micro-grinding 17911 Surface Roughness in Micro-grinding 18111.1 Theoretical Model of Surface Roughness 18111.2 Influence of Grinding Parameters 18411.3 Influence of Material Anisotropy of Nickel-based Single-crystal Superalloy 18811.4 Influence of Different Crystal Orientations of Nickel-based Single-crystal Superalloy 19111.5 Influence of Grinding Methods 19412 Ground Surface and Subsurface Damage in Micro-grinding 19712.1 Influence of Grinding Parameters 19712.2 Influence of Working Fluid 20013 Subsurface Microstructure and Recrystallization in Micro-grinding 20313.1 Subsurface Microstructure in the Micro-grinding Process 20313.2 Subsurface Recrystallization in Micro-grinding 210Part V Simulation, Optimization, and Control in Grinding of Single-crystal Turbine Blade Root 21914 Temperature Field in Grinding of Single-crystal Turbine Blade Root 22114.1 FE Model for Grinding Temperature Simulation 22114.2 Thermal Analysis for Grinding Temperature Simulation 22314.3 Experimental Validation of Grinding Temperature 22514.4 Temperature Simulation Results and Analysis 22715 Residual Stress Field in Grinding of Single-crystal Turbine Blade Root 23315.1 Mechanical Analysis for Residual Stress Simulation 23315.2 Experimental Verification of Residual Stresses 23815.3 Residual Stress Simulation Results and Analysis 23915.4 Collaborative Manufacturing of Structure Shape and Surface Integrity 243References 244Index 247