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热轧工艺数字化仿真与智能化设计(英文) 版权信息
- ISBN:9787502494476
- 条形码:9787502494476 ; 978-7-5024-9447-6
- 装帧:一般胶版纸
- 册数:暂无
- 重量:暂无
- 所属分类:>
热轧工艺数字化仿真与智能化设计(英文) 内容简介
随着材料信息技术的发展和材料基因工程提出,模拟仿真技术开始在研发过程中得到越来越广泛的应用。相对于传统研发模式的“实验试错”,通过模拟仿真计算实现快速、低成本的“数字试错”,对研发效率的提升作用越来越显著。数字化工艺仿真模型及平台逐渐成为了钢铁产品研发不可或缺的重要工具。本书通过对热轧产品生产从加热、轧制到冷却各工序的工艺过程及微观组织演变的数字化仿真建模方法研究,以及对全流程仿真模型的集成技术及仿真平台设计方法的探讨,充实和形成热轧产品生产工艺的数字化仿真理论及应用技术,为辅助热轧产品的数字化研发、生产工艺优化、仿真平台建设提供技术支撑。 本书可供相关企业、研究院工程技术人员参考,也可供高等院校材料成形专业师生参考。
热轧工艺数字化仿真与智能化设计(英文) 目录
Chapter 1 Introduction
1.1 Technological development of material R&D
1.1.1 Materials genome engineering
1.1.2 Material computation and simulation
1.1.3 Materials information technology
1.1.4 Material database
1.2 Digital R&D of steel
1.2.1 Performance quality of steel
1.2.2 Digital R&D method of steel
References
Chapter 2 Introduction to Hot Rolling Process
2.1 Production of hot-rolled strip steel
2.1.1 Conventional strip hot rolling process flow
2.1.2 Thin slab casting and rolling process flow
2.2 Steel plate production
2.2.1 Typical process flow
2.2.2 Critical procedure of structure and performance control
2.3 Production of hot-rolled long steel products
2.3.1 Hot-rolled bar production process and equipment configuration
2.3.2 Wire production process and equipment configuration
2.3.3 H-section steel production process and equipment configuration
References
Chapter 3 Digital Simulation of Heating Process
3.1 Production process of heating furnace for steel rolling
3.2 Temperature field simulation of steel slab heating
3.2.1 Assumed conditions for modeling
3.2.2 Basic equation of heat conduction
3.2.3 Treatment of boundary conditions
3.2.4 Thermophysical parameters of steel slabs
3.2.5 Simulation software development
3.2.6 Verification of discharge temperature simulation results
3.2.7 Optimization of heating process simulation
3.3 Furnace atmosphere simulation
3.3.1 Determination of coal gas composition
3.3.2 Conversion of calorific value of coal gas
3.3.3 Determination of air consumption and air-fuel ratio
3.3.4 Flue gas composition simulation and computation
3.3.5 Application of furnace atmosphere simulation
3.4 Decarbonization behavior simulation of steel slab
3.4.1 Steel surface decarbonization mechanism
3.4.2 Mathematical model for computation of carbon diffusion
3.4.3 Fundamental assumptions
3.4.4 Material model
3.4.5 Simulation result verification and analysis
References
Chapter 4 Digital Simulation of Rolling Process
4.1 Analysis method for metal deformation during the hot rolling
4.1.1 Plane deformation theory
4.1.2 Slip line method
4.1.3 Energy method
4.1.4 Finite element method
4.2 Finite element simulation of hot rolling process of steel plates
4.2.1 Creation of finite element model
4.2.2 Determination of boundary condition
4.2.3 Material properties
4.2.4 Redivision of grid
4.2.5 Rolled piece temperature and head and end shape simulation results
4.3 Analysis of influence of chamfer of continuously cast slab on rolling spread
4.3.1 Finite element computation model of slab deformation duringthe rough rolling
4.3.2 Analysis of influence of chamfer shape on rolling spread
4.3.3 Influence of slab chamfer on dog bone spread
4.3.4 Influence of slab chamfer on natural spread
4.4 Finite element simulation of bar and wire rolling process
4.4.1 Basic assumptions
4.4.2 Establishment of finite element model
4.4.3 Simulation result analysis
References
Chapter 5 Digital Simulation of Cooling Process
5.1 Post-rolling cooling temperature simulation of strip
5.1.1 Principle of laminar cooling
5.1.2 Heat transfer computation model of laminar cooling
5.1.3 Phase transformation computation model of laminar cooling
5.1.4 Example of computation of temperature field during laminar cooling
5.2 Post-rolling water cooling temperature simulation of bars and wires
5.2.1 Water cooling process and equipment of bars and wires
5.2.2 Heat transfer computation model of water cooling of bars and wires
5.2.3 Finite difference solution
5.2.4 Case of temperature field simulation of bars and wires during through-water cooling
5.3 Stelmor air cooling sim
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