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作者:

Chang, B.H. (Chang, B.H..) | Shi, Y.W. (Shi, Y.W..) | Dong, S.J. (Dong, S.J..)

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Scopus

摘要:

Using a three-dimensional finite element analysis (FEA) method, the effect of elastic modulus and thickness of adhesives on the stress distribution in weld-bonded joints was studied to address the role of adhesive layer. Normal stress and shear stress distributed at the edges of a spot weld and in the lap region were computed for weld-bonded joints made with adhesives of different elastic moduli or thicknesses. The results showed great stress concentration at the edge of the spot weld in weld-bonded joints when the adhesive layer was thick or had a low elastic modulus. Shear stress values in adhesive layers were low under the same circumstances. Stress concentration around the spot weld was reduced and the shear stress in the adhesive layer was increased by increasing the elastic modulus or decreasing the thickness of the adhesive layer. An adhesive layer with appropriate thickness and elastic modulus is necessary to obtain reasonable distribution of stresses in the whole lap region of a weld-bonded joint. A thin adhesive layer of high elastic modulus is favorable to the fatigue properties of weld-bonded joints, and it is recommended on certain conditions.

关键词:

Adhesive bonding; AISI 1010; Analysis stress distribution; Elastic modulus; Fem stress; Finite element method; Joint strength; Resistance welding; Weld bonding

作者机构:

  • [ 1 ] [Chang, B.H.]School of Mechanical Engineering, Xi'An Jiaotong University, Xi'an, China
  • [ 2 ] [Chang, B.H.]Materials Department, Hubei Automotive Industries Institute, Shiyan, China
  • [ 3 ] [Shi, Y.W.]Materials Department, Hubei Automotive Industries Institute, Shiyan, China
  • [ 4 ] [Dong, S.J.]School of Materials Science and Engineering, Beijing Polytechnic University, Beijing, China

通讯作者信息:

  • [Chang, B.H.]Materials Department, Hubei Automotive Industries Institute, Shiyan, China

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来源 :

Welding Journal (Miami, Fla)

ISSN: 0043-2296

年份: 1999

期: 8

卷: 78

页码: 275-S-279-S

2 . 2 0 0

JCR@2022

ESI学科: MATERIALS SCIENCE;

JCR分区:3

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