
Closer Look at Milling Machines and Processes
Description
Alles über E-Books | Antworten auf Fragen rund um E-Books, Kopierschutz und Dateiformate finden Sie in unserem Info- & Hilfebereich.
More details
Other editions
Additional editions

Content
- Intro
- Contents
- Preface
- Chapter 1
- Milling Mechanics and Dynamics
- Abstract
- Introduction
- Basic Cutting Mechanism
- Material Removal Rate
- Immersion Angles
- Chip Geometry
- Coordinate Frames
- Tool Angles
- Modeling of Cutting Forces
- Cutting Coefficients
- Edge Force Coefficients
- Identification of Cutting Coefficients
- More Recent Techniques
- Milling Force Simulation
- Dynamics of the Milling Process
- Periodic Nature of Milling Process
- Dynamic Chip Thickness
- Delay Parameter
- Dynamic Forces
- A Note on Process Damping
- Digitalizing the Machine Tool into an Equation of Motion
- Zero Order Approximation (ZOA)
- Discrete-Time Solution
- Setting the Time Step Size ( )
- Modeling the Surface Location Error (SLE)
- Conclusion
- Appendix
- A. Details of Obtaining the State Transition Equation
- References
- Chapter 2
- Machine Tool Design, Simulation and Dynamics
- Abstract
- List of Abbreviations
- Fundamentals
- Design Process
- Dynamics
- Dynamic Effects
- Description of The Machine Tool
- Linear Stiffness
- Damping and Energy Dissipation
- Structural Damping
- Drive Unit Damping
- Position-Dependent Behavior
- Simulation
- Finite Element Component Models
- General Joint Models
- Ball Screw Drive Joint Models
- Linear Damping Models
- Nonlinear Damping Models
- Flexible Multibody Simulation
- Model Order Reduction
- Static Reduction
- Modal Reduction
- Component Mode Synthesis
- Overall Mechatronic Model
- Applications
- Position-Dependent Dynamics
- Damping Distribution
- Control Influences
- Conclusion
- References
- Chapter 3
- Motion Control for Milling Process
- Abstract
- Introduction
- Configuration of CNC Servo System
- Basic Configuration and Processing Flow
- Servo System
- Position Control Block
- Velocity Control Block
- Motor Current Control Block
- Feedforward Control Block
- Command Generation
- Interpolation
- Acceleration Processing
- Position Compensation
- Tuning of Motion
- Tuning Process and Model
- Velocity Feedback Control
- Position Feedback Control
- Case of Semi-Closed Loop
- Case of Full-Closed Loop
- Feedforward Control
- Acceleration Processing
- Multi-Axes Motion Control (XY Motion Case)
- Advanced Controller
- Generalized 2-DOF Controller for Feed Drives
- Disturbance Observer
- Basic Configuration
- Issues in Cutting Load Estimation by Disturbance Observer
- Appendix
- A. Response Radius in Circular Motion and Compensation by Velocity Feedforward
- B. Model Reference Feedforward Controller (Nagaoka 2009)
- References
- Chapter 4
- Spindle Dynamics
- Abstract
- Introduction
- Modeling of Spindle Dynamics
- Angular Contact Ball Bearing Model
- Bearing Assembly
- Spindle Model
- Spindle-Holder Interface
- Thermo-Mechanical Model of Spindle
- Thermal Issue
- Coupled Thermo-Mechanical Model
- Thermal Task
- Mechanical Task
- Ball Bearing Heat Generation Models
- Harris Frictional Torque Model
- Torque due to Rolling Resistance
- Torque due to Viscous Friction
- Torque due to Spinning Motion of Rolling Elements
- Gyroscopic Pivotal Motion
- Houpert Frictional Torque Model
- Hydrodynamic Rolling Resistance
- Elastic Rolling Resistance
- Curvature and Pivoting Effects
- Final Bearing Torque of the Houpert Model
- Semi-Analytical Modeling Based on Receptance Coupling Technique
- Analytical Modeling of the Holder and Tool
- Experimental Identification of Spindle Dynamics
- Classical Modal Testing
- Non-Contact Excitation Methods
- Inverse Stability Method
- Variations of Spindle Dynamics and Its Impact on Chatter Stability
- Conclusion
- References
- Chapter 5
- Mechanics and Dynamics of Thin-Wall Milling Process
- Abstract
- Introduction
- Modelling of the Static Cutting Forces and Form Errors in the Thin-Wall Milling Process
- Structural Model of the Thin-walled Workpiece and the Tool
- Prediction and Control of Form Errors in the Milling Process of the Thin-walled Workpiece
- Verification Example
- Prediction of Chatter in the Thin-Wall Milling
- Model of Vibrations at Cutting Zone
- Cutting Force Calculation for Peripheral Milling of Curved Surfaces
- Prediction of the IPW Dynamics Considering the Material Removal Effect
- Schematic Illustration of the Variation in the FRFs and SLDs of the Thin-Walled Workpiece during the Process
- Machining of Al 7075 Alloy Plate
- Machining of Al 7075 Blade
- Basic Theory for Suppressing Chatter in the Milling of the Thin-Walled Workpieces
- Design of a Tunable Passive DVA-Based Damper for Suppressing Chatter in the Thin-Wall Milling
- Suppressing the Vibration in the Milling-Trimming of the Plate-Like Workpiece by Using DVA
- Optimization Objective for Suppressing the Vibrations in the Milling-Trimming of the Plate-Like Workpiece
- Analytical Solution of the Governing Equation of the Milling-Trimming Process
- Solution of the Optimization Objective Function
- Verification of the Method for Suppressing Chatter in the Milling-Trimming Process of the Plates by Using DVA
- Chatter Suppression in the Milling of the Thin-Walled Workpiece through a Moving Fixture
- Mathematical Modeling of the Dynamic Milling Process with the Moving Fixture
- Experimental Verification of the Chatter Suppressing Method by Using the Moving Fixture
- Conclusion
- Acknowledgments
- References
- Chapter 6
- Special Milling Tools for Improving Productivity
- Abstract
- Introduction
- Variable Pitch End Mills
- Variable Helix End Mills
- Serrated End Mills
- Geometry of Serrated End Mills
- Cutting Force Model
- Impact of Serration Parameters on the Performance of the Serrated Tools
- Crest-Cut End Mills
- Geometry of Crest-Cut End Mills
- Stability Analysis of Crest-cut End Mills
- Impact of Edge Wave Parameters on the Performance of the Crest-Cut Tools
- Conclusion
- References
- Chapter 7
- Thermal Analysis of Milling Operations
- Abstract
- Introduction
- Temperature Effects in Milling
- Surface Integrity in Milling
- Residual Stresses in Milling
- Tool Wear in Milling
- Heat Generation in Metal Cutting
- Heat Sources and Mechanistic Approach to Heat Generation
- Heat Flux Distribution on the Rake Face by Dual Zone Model
- Modeling of the Primary Shear Zone
- Modeling of the Secondary Shear Zone and Heat Flux at the Rake Face
- Heat Partition
- Blok Heat Partition Principle
- Nonuniform Heat Partition Distribution
- Iterative Techniques for Heat Partition
- Transient Thermal Analysis of Milling Operation
- Analytical Temperature Analysis of the Cutting Tool
- Numerical Temperature Analysis of the Cutting Tool
- A Hybrid Model for Milling Tool Temperatures
- Temperature Measurement in Milling
- Embedded Thermocouples
- Infrared Thermography
- Thermal Errors in Milling
- Conclusion
- References
- Chapter 8
- Milling Tool Wear
- Abstract
- Introduction
- Geometry, Forces, and Temperature
- Cutting Geometry
- Cutting Forces
- Chip Temperature
- Tool Life
- Wear Mechanisms
- Tool Life Modeling
- Cutting Fluids
- Case Study
- Conclusion
- References
- Chapter 9
- Effective Application of Coated Tools in Milling Considering Coating Fatigue Mechanisms
- Abstract
- Introduction
- Coatings on Cutting Tools
- Coating's Wear Evolution and Mechanisms
- Characteristic Coating's Wear Mechanisms in Milling
- Wear Mechanisms Due to Insufficient Coating Adhesion and Measures for Their Avoidance
- Coating Structure Degradation Induced by Chemical Reactions or Diffusions
- Coating Wear Mechanisms in Milling Induced by Fatigue
- Methods for Determining Coating's Mechanical and Fatigue Properties
- Determination of the Coating's Mechanical Strength Properties
- Determination of The Coating's Fatigue Endurance at Various Impact Durations
- Wear of Coated Tools in Milling Induced by Coating Fatigue Phenomena
- Effect of Coating Strain and Strain-Rate on the Wear Evolution in Milling at Various Contact Geometries between Tool and Workpiece
- Examples of Coated Tools Wear Evolution in Milling at Various Coating Strain, Strain-Rate Combinations Developed due to Different Cutting Kinematics and Tool-Workpiece Contact Conditions
- Determination of Coating-Substrate Strain Fields, Cutting Edge Entry Impact Durations and Related Strain-Rates in Milling
- Wear Predictive Model for Milling Considering Coating Fatigue Mechanisms
- Conclusion
- References
- Chapter 10
- Milling Process Monitoring and Control with Virtual Model Integration
- Abstract
- Introduction
- Measurement and Prediction of Milling Process States
- Static Compensation for CNC Internal Sensors
- Dynamic Compensation of the Signal Transmission Path
- System Identification
- State Observer Design
- Kinematic Compensation for Process State Transformation
- Experimental Validation
- Case 1 - Predictions from Feed Drive Current Measurements
- Case 2 - Predictions from Spindle Drive Current Measurements
- Case 3 - Predictions from External Accelerometers
- Virtual Model Assisted Milling Process Monitoring and Control
- Integration of Virtual Process Model and Online Application
- Chatter Detection and Suppression
- Tool Breakage Monitoring
- Adaptive Control of Milling Forces
- References
- Chapter 11
- Mechanics and Dynamics of Turn-Milling Operation
- Abstract
- Introduction
- Mechanics and Kinematics of Turn-Milling
- Introduction
- Kinematics of Turn-Milling
- Chip Thickness & Mechanical Model of Turn-Milling
- Feed Vectors and Static Chip Thickness Distribution
- Prediction of Cutter-Workpiece Engagement Geometry in Turn-Milling
- Static Force Model
- Experimental Validations of Mechanics Model of Turn-Milling
- Dynamics and Stability Model of Turn-Milling Operation
- Introduction
- Dynamics of Turn-Milling Operation
- Dynamic Chip Thickness Model
- Time Delay Model
- Stability of Turn-Milling Operations
- Experimental Validation of Stability Model of Turn-milling Process
- Surface Form Error in Turn-Milling
- Effect of Eccentricity and Minor Edge Length on Cusp Formation
- Conclusion
- References
- Index
- Blank Page
System requirements
File format: PDF
Copy-Protection: Adobe-DRM (Digital Rights Management)
System requirements:
- Computer (Windows; MacOS X; Linux): Install the free reader Adobe Digital Editions prior to download (see eBook Help).
- Tablet/smartphone (Android; iOS): Install the free app Adobe Digital Editions or the app PocketBook before downloading (see eBook Help).
- E-reader: Bookeen, Kobo, Pocketbook, Sony, Tolino and many more (only limited: Kindle).
The file format PDF always displays a book page identically on any hardware. This makes PDF suitable for complex layouts such as those used in textbooks and reference books (images, tables, columns, footnotes). Unfortunately, on the small screens of e-readers or smartphones, PDFs are rather annoying, requiring too much scrolling.
This eBook uses Adobe-DRM, a „hard” copy protection. If the necessary requirements are not met, unfortunately you will not be able to open the eBook. You will therefore need to prepare your reading hardware before downloading.
Please note: We strongly recommend that you authorise using your personal Adobe ID after installation of any reading software.
For more information, see our eBook Help page.