吉林大学学报(工学版) ›› 2026, Vol. 56 ›› Issue (1): 140-149.doi: 10.13229/j.cnki.jdxbgxb.20240657

• 材料科学与工程 • 上一篇    下一篇

AH36船舶钢激光焊接热源模拟优化与残余应力仿真分析

谌伟1,2(),郭嘉兴1,2,殷乐3   

  1. 1.高性能船舶技术教育部重点实验室(武汉理工大学),武汉 430063
    2.武汉理工大学 船海与能源动力工程学院,武汉 430063
    3.中国舰船研究设计中心,武汉 430000
  • 收稿日期:2024-06-13 出版日期:2026-01-01 发布日期:2026-02-03
  • 作者简介:谌伟(1986-),男,副教授,博士.研究方向:结构安全性与可靠性评估,船体结构健康监测,先进复合材料结构.E-mail: shenwei_abc@163.com
  • 基金资助:
    国家自然科学基金项目(51609185)

Simulation optimization of laser welding heat source and residual stress simulation analysis of AH36 marine steel

Wei SHEN1,2(),Jia-xing GUO1,2,Yue YIN3   

  1. 1.Key Laboratory of High Performance Ship Technology(Wuhan Universityof Technology),Ministry of Education,Wuhan 430063,China
    2.School of Naval Architecture,Ocean and Energy Power Engineering,Wuhan University of Technology,Wuhan 430063,China
    3.China Ship Research and Design Center,Wuhan 430000,China
  • Received:2024-06-13 Online:2026-01-01 Published:2026-02-03

摘要:

针对船舶制造过程中激光焊接的热源狭窄且深长,在提高焊接穿透力和焊接率的同时更容易造成热量聚集和残余应力集中的不足,本文以AH36高强钢为研究对象,通过有限元模拟对激光焊接的熔池形状展开研究,选取并定义10种移动热源形式,分别得出各个热源模型达到稳定焊接状态时的剖面形状图,并将其与激光焊接实际形成的熔池形状进行对照,优选出最适用于对接接头激光焊接的热源模型。此外,通过热力耦合的方式模拟得到激光焊接对接板的焊接变形和残余应力分布,并与试验所得数据进行对比。结果表明,残余应力的有限元仿真结果与试验结果在数值量级及趋势上吻合较好,可以为后续激光焊接工艺优化和激光焊接结构疲劳评估奠定理论基础。

关键词: 激光焊接, 热源模型, AH36高强钢, 残余应力, 疲劳评估, 熔池形状

Abstract:

In shipbuilding, the laser-welding heat source is intrinsically narrow and deep; while this favors penetration depth and travel speed, it also promotes localized heat accumulation and residual-stress concentration. Focusing on AH36 high-strength steel, this study employs finite-element simulation to characterize the melt-pool geometry in laser welding. Ten moving-heat-source patterns are selected and defined; the cross-sectional shapes at steady-state welding are extracted for each model and compared with the actual melt-pool profile observed in laser welds, allowing the optimum heat-source model for butt-joint laser welding to be identified. Furthermore, thermo-mechanical coupling simulations are performed to predict the welding distortion and residual-stress distribution in laser-welded butt plates, and the predictions are validated against experimental measurements. Good agreement is achieved in both magnitude and trend, providing a reliable theoretical basis for subsequent optimization of laser-welding procedures and fatigue assessment of laser-welded structures.

Key words: laser welding, heat source model, AH36 high-strength steel, residual stress, fatigue evaluation, weld pool shape

中图分类号: 

  • U663.9

表1

组合热源公式"

热源名称热源密度分布公式
高斯(Gaussian)热源q(x,y,z,t)=q0?exp-3(x2+y-vt2)R2q0=3πR2?Q
高斯旋转体热源q(x,y,z,t)=q(0,0)?exp-3cslghz(x2+y-vt2)
双椭球热源qf(x,y,z,t)=63ffQabcfπ3/2?exp-3x2a2+y2b2+z-vt2cf2qr(x,y,z,t)=63frQabcrπ3/2?exp-3x2a2+y2b2+z-vt2cr2
双高斯圆柱热源q1(x,y,z,t)=Q1πR12h1?exp-(x2+y-vt2)R12uzq2(x,y,z,t)=Q2πR22h2?exp-(x2+y-vt2)R22uz
高斯圆柱热源q(x,y,z,t)=QπR2h?exp-(x2+y-vt2)R2uz
高斯圆锥热源(Ⅰ)q(x,y,z,t)=QπR2h?exp-(x2+y2+z-vt2)R21-zd
高斯圆锥热源(Ⅱ)q(x,y,z,t)=Q?exp-x2+z-vt2r0y2r0y=re+ri+reyi-yey-ye
圆锥吸收系数热源q(x,y,z,t)=αQ1-Rreflect2πR2?exp-(x2+y-vt2)2πR2-αz
圆锥光束热源q(x,y,z,t)=αQ1-Rreflectπσxσy?exp-x22σx2-y22σy2-αz
抛物线热源q(x,y,z,t)=Q?exp-3x2+z-vt2r0yr0y=R?y+hh

图1

激光焊接对接板试样"

表2

AH36材料性能参数"

温度/

密度/

(kg·m-3

弹性模量/

105 MPa

泊松比

导热系数

/(W·m-1·℃-1

热膨胀

系数/℃

比热容

/(J·kg-1·℃-1

屈服

强度/MPa

227 8802.100.27501.15480400
1007 8802.000.27451.20500340
2007 8802.000.28401.30520315
4007 8001.700.28361.42650230
6007 7600.800.29341.45750110
8007 6000.350.30251.451 00030
1 0007 5200.200.31261.451 20025
1 2007 3900.150.32281.451 40020
1 4007 3000.100.32571.451 60018
1 5507 2500.100.32671.451 70015
1 8007 1800.100.322151.451 77010
2 0007 1800.100.322801.451 80010

图2

焊缝尺寸及有限元模型网格示意图"

图3

激光焊接示意图"

图4

空气对流换热系数曲线"

图5

双椭球热源温度场分布云图"

图6

温度-时间变化曲线"

图7

垂直于焊缝(X)方向典型节点的温度-时间变化曲线"

图8

厚度(Y)方向典型节点的温度-时间变化曲线"

图9

沿焊缝(Z)方向典型节点的温度-时间变化曲线"

图10

不同热源模型的温度-时间变化曲线"

表3

不同热源的剖面形状"

热源类型XY剖面热源类型XY剖面
高斯热源

高斯圆锥

热源(Ⅰ)

高斯旋转

体热源

高斯圆锥

热源(Ⅱ)

双椭球

热源

圆锥吸收

系数热源

高斯圆柱

热源

圆锥光束

热源

双高斯

圆柱热源

抛物线

热源

实际试样

图11

测点位置示意图"

图12

B型应变片及贴片示意图"

图13

应力场计算边界条件示意图"

图14

试验与仿真残余应力结果对照曲线"

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