Zhang Zhao

Professor   Supervisor of Doctorate Candidates   Supervisor of Master's Candidates

Main positions:Professor in Process Mechanics

Gender:Male

Alma Mater:Dalian University of Technology

Degree:Doctoral Degree

School/Department:Department of Engineering Mechanics, Dalian University of Technology

Discipline:mechanics of manufacturing process. Engineering Mechanics. Computational Mechanics

Business Address:Room 619,Integrated Laboratory building (1#)

Contact Information:+86-411-84708432 zhangz@dlut.edu.cn

E-Mail:zhangz@dlut.edu.cn


Paper Publications

圆环构件增材制造残余应力模拟及尺寸效应分析

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Indexed by:Journal Papers

First Author:葛芃

Co-author:张昭,张少颜,赵国忠

Date of Publication:2019-01-01

Journal:塑性工程学报

Included Journals:PKU

Volume:26

Issue:5

Page Number:249-255

ISSN No.:1007-2012

Key Words:尺寸效应;圆环构件;增材制造;残余应力

Abstract:采用顺序热力耦合有限元模型对圆环构件激光沉积增材制造过程残余应力和残余变形进行数值模拟.在对直板激光沉积增材制造残余应力验证的基础上,对不同激光移动速度、不同尺寸环状构件激光沉积增材制造过程残余应力变化进行了系统的讨论研究.模拟结果表明,激光沉积增材制造后,环形构件残余变形以增材层径向向内弯曲和基板竖向向下弯曲为主;增材层残余应力依然以环向和竖向残余应力为主,最大拉伸残余应力接近材料屈服点.激光移动速度的减小将极大的影响增材层残余应力的分布,提高中间增材层内、外侧环向残余应力,并使得增材层径向向内弯曲量减小.在相同工艺下对不同尺寸环状构件进行激光沉积增材制造,环状构件截面内环向和纵向拉伸残余应力区域均将随构件尺寸的增大而增大,这与构件在经历多次热循环过程中的冷却速度有关.制造过程中可采取提高环境温度、降低冷却速率等方式降低大尺寸构件截面内拉伸残余应力,以提高激光沉积增材制造构件后期服役性能及安全性.

Pre One:INTEGRATED MODELLING OF TOOL WEAR AND MICROSTRUCTURAL EVOLUTION INTERNAL RELATIONS IN FRICTION STIR WELDING WITH WORN PIN PROFILES

Next One:Optimization design of a novel zigzag lattice phononic crystal with holes

Profile

Zhang Zhao, Ph.D., Professor in Process Mechanics.

Editorial member in Coatings (IF:2.881) from 2020 to 2022.

Editorial member in Crystals (IF:2.589) from 2020 to 2022.

Younth editorial member in Journal of Central South University(IF:1.716) from 2020 to 2022.

Professor Zhang has published more than 60 SCI publications with over 1100 citations. He served as reviewers for more than 30 international journals. His main pulications can be found:

https://orcid.org/0000-0001-7181-8617

https://publons.com/researcher/1987190/zhao-zhang/

The scientific research focuses on experimental and numerical works on friction stir welding/processing/additive manufacturing, numerical modelling and simulation of additive manufacuring, topological design of phononic crystals, locomotive and high speed train design.