Skip to main navigation Skip to main content
  • E-Submission

JKSPE : Journal of the Korean Society for Precision Engineering

OPEN ACCESS
ABOUT
BROWSE ARTICLES
EDITORIAL POLICIES
FOR CONTRIBUTORS
REGULAR

DED 공정을 이용한 직선형 손상부 보수 시 기저부 끝단 길이와 경사각에 따른 보수부 인근 잔류 응력 및 변형 특성 분석

A Study on the Effects of Edge Length and Substrate Slope on Residual Stress and Deformation Characteristics in the Vicinity of the Repaired Region for Straight Damaged Region Repair Using a DED Process

Journal of the Korean Society for Precision Engineering 2023;40(7):581-589.
Published online: July 1, 2023

1 조선대학교 기계공학부

1 School of Mechanical Engineering, Chosun University

#E-mail: smart@chosun.ar.kr, TEL: +82-62-230-7234
• Received: March 2, 2023   • Revised: May 5, 2023   • Accepted: May 23, 2023

Copyright © The Korean Society for Precision Engineering

This is an Open-Access article distributed under the terms of the Creative Commons Attribution Non-Commercial License (http://creativecommons.org/licenses/by-nc/3.0) which permits unrestricted non-commercial use, distribution, and reproduction in any medium, provided the original work is properly cited.

  • 21 Views
  • 0 Download
  • 1 Crossref
  • 1 Scopus
prev next

Citations

Citations to this article as recorded by  Crossref logo
  • Artificial Intelligence Technologies and Applications in Additive Manufacturing
    Selim Ahamed Shah, In Hwan Lee, Hochan Kim
    International Journal of Precision Engineering and Manufacturing.2025; 26(9): 2463.     CrossRef

Download Citation

Download a citation file in RIS format that can be imported by all major citation management software, including EndNote, ProCite, RefWorks, and Reference Manager.

Format:

Include:

A Study on the Effects of Edge Length and Substrate Slope on Residual Stress and Deformation Characteristics in the Vicinity of the Repaired Region for Straight Damaged Region Repair Using a DED Process
J. Korean Soc. Precis. Eng.. 2023;40(7):581-589.   Published online July 1, 2023
Download Citation

Download a citation file in RIS format that can be imported by all major citation management software, including EndNote, ProCite, RefWorks, and Reference Manager.

Format:
Include:
A Study on the Effects of Edge Length and Substrate Slope on Residual Stress and Deformation Characteristics in the Vicinity of the Repaired Region for Straight Damaged Region Repair Using a DED Process
J. Korean Soc. Precis. Eng.. 2023;40(7):581-589.   Published online July 1, 2023
Close

Figure

  • 0
  • 1
  • 2
  • 3
  • 4
  • 5
  • 6
  • 7
  • 8
  • 9
  • 10
  • 11
A Study on the Effects of Edge Length and Substrate Slope on Residual Stress and Deformation Characteristics in the Vicinity of the Repaired Region for Straight Damaged Region Repair Using a DED Process
Image Image Image Image Image Image Image Image Image Image Image Image
Fig. 1 Schematics of the repairing model
Fig. 2 FE models for different edge lengths and slopes
Fig. 3 Boundary conditions of FE model (θ = 30° and L = 3 mm)
Fig. 4 Natural convection coefficients for different edge length
Fig. 5 Forced convection coefficient
Fig. 6 Equivalent heat loss coefficient
Fig. 7 1st principal stress distributions for different edge lengths and slopes of the substrate
Fig. 8 Excessively stressed regions for different edge lengths and slopes of the substrate
Fig. 9 Effects of the edge length and the slope of the substrate on the maximum value of the 1st principal stress
Fig. 10 Time histories of 1st principal stress distributions at the occurrence location of the maximum value for different edge lengths and slops of the substrate
Fig. 11 Displacement distributions at times of maximum displacement for points A and B
Fig. 12 Maximum displacements at points A and B for different edge lengths and slopes
A Study on the Effects of Edge Length and Substrate Slope on Residual Stress and Deformation Characteristics in the Vicinity of the Repaired Region for Straight Damaged Region Repair Using a DED Process

Deposited areas for different shapes

[mm2]

L [mm] 3 5 7 9
θ = 30° 24.9 32.6 40.4 48.3
θ = 45° 19.8 27.6 35.4 43.2

Characteristics data for deposited bead [7,18] Adapted from Refs. 7, 18 on the basis of OA

P [W] V [m/min] r [mm] r(z) [mm] G [l/min] F [l/min]
500 1,000 0.5 ≈ r ≈ 10 ≈ 4

Conditions for 2D FE analysis [7] Adapted from Ref. 7 on the basis of OA

Width of bead [μm] Thickness of layer [μm] Hatch distance [μm]
1,000 ≈150 750

Number of layers for s1p,m at the occurrence location of the maximum value and maximum residual stress after cooling stage

θ [°] L [mm] Number of layers for s1p,m s1p,m after cooling stage [MPa]
30 3 4 388
5 2 392
7 1 397
9 1 410
45 3 3 425
5 3 426
7 3 433
9 1 436

Times of maximum deformation and finishing times of deposition for different edge lengths and slopes

θ [°] L [mm] Time of maximum deformation [s] Finishing time of deposition
Point A Point B
30 3 328 30,000 629
5 342 30,000 834
7 363 30,000 1012
9 364 30,000 1195
45 3 343 30,000 517
5 370 30,000 698
7 372 30,000 906
9 378 30,000 1,080
Table 1 Deposited areas for different shapes [mm2]
Table 2 Characteristics data for deposited bead [7,18] Adapted from Refs. 7, 18 on the basis of OA
Table 3 Conditions for 2D FE analysis [7] Adapted from Ref. 7 on the basis of OA
Table 4 Number of layers for s1p,m at the occurrence location of the maximum value and maximum residual stress after cooling stage
Table 5 Times of maximum deformation and finishing times of deposition for different edge lengths and slopes