Precision CNC Machining for High-Performance Gears Theory and Technology.

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Bibliographic Details
Main Author Wang, Shilong
Other Authors Li, Guolong, Ma, Chi
Format Electronic eBook
LanguageEnglish
Published San Diego : Elsevier, 2023.
Subjects
Online AccessFull text
ISBN9780443160578
0443160570
Physical Description1 online resource (394 p.)

Cover

Table of Contents:
  • Intro
  • Precision CNC Machining for High-Performance Gears
  • Copyright
  • Contents
  • Preface
  • Acknowledgments
  • Chapter 1: Introduction
  • 1.1. Overview of high-performance gear
  • 1.1.1. Current state of Chinese gear industry
  • 1.1.2. High-performance gear
  • 1.2. High-performance gear CNC machining technology
  • 1.2.1. High-performance gear CNC machining
  • 1.2.1.1. Gear hobbing
  • 1.2.1.2. Worm wheel gear grinding
  • 1.2.1.3. Profile grinding
  • 1.2.2. Gear machining error modeling and compensation techniques
  • 1.2.2.1. Current research on tool error modeling and compensation technology
  • 1.2.2.2. Current research on machine tool geometric error modeling and compensation
  • 1.2.2.3. Current research on force-induced error
  • 1.2.2.4. Current research on the thermal-induced error
  • 1.2.3. Research status of temperature field control technology
  • 1.2.4. Research status of core component design
  • 1.2.4.1. Spindle system of the CNC gear making machine tool
  • 1.2.4.2. Rotary table
  • 1.2.5. Optimization of gear grinding and hobbing process parameters
  • 1.3. Status and development trend of CNC machining technology of high-performance gear
  • 1.3.1. CNC gear hobbing machine
  • 1.3.1.1. Status and development trend of CNC gear hobbing machine
  • 1.3.1.2. Structure and function module of numerical control gear hobbing machine
  • 1.3.2. CNC gear grinding machine
  • 1.3.2.1. Current development and future trends of CNC gear grinding machine
  • 1.3.2.2. Introduction to the structure and function modules of the gear grinding machine
  • 1.4. Current situation and development trends of typical gear making machines
  • 1.5. Opportunities and challenges
  • 2.2.1.2. Description of the point-vector family for three-dimensional (3D) space surfaces
  • 2.2.2. Motion trajectory of the point vector
  • 2.2.3. Enveloping process for families of point vectors
  • 2.2.4. Point vector approximation algorithm
  • 2.2.5. Point-vector discrete method for the end surface profile of a modified gear
  • 2.3. First envelope calculation of point-vector family for a modified tooth profile
  • 2.3.1. Coordinate transformation of point vector
  • 2.3.2. Projection of point vector
  • 2.3.3. First envelope process of point vector
  • 2.3.4. Profile calculation of forming tools