There are two laser welding mechanisms, keyhole mode and conduction mode. Keyhole welding is widely used because it produces welds with high aspect ratios and narrow heat affected zones. However keyhole welding can be unstable, as the keyhole oscillates and closes intermittently. This intermittent closure causes porosity due to gas entrapment. Conduction welding, on the other hand, is more stable since vaporisation is minimal and hence there is no further absorption below the surface of the material.

Conduction welds are usually produced using low-power focused laser beams. This results in shallow welds with a low aspect ratio. In this work, high-power CO2 and YAG lasers have been used to produce laser conduction welds on 2mm and 3mm gauge AA5083 respectively by means of defocused beams. Full penetration butt-welds of 2mm and 3mm gauge AA5083 using this process have been produced. It has been observed that in this regime the penetration depth increases initially up to a maximum and then decreases with increasing spot size (corresponding to increase in distance of focus above the workpiece). Results of comparison of tensile strength tests for keyhole and conduction welds are shown.

This process offers an alternative method of welding aluminium alloys, which have a high thermal conductivity.

1.
Ready
,
J.F
, ed.
LIA Handbook of Laser Materials Processing
,
Magnolia Publishing, Inc
.,
2001
2.
Duley
,
W.W.
,
Laser Welding
,
New York
,
John Wiley and Sons, Inc.
,
1998
: Chapter 4
3.
Tsai
,
F.
et al “
Modelling of Conduction Mode Laser welding Process for Feedback control
”,
Transactions of ASME
, Vol.
122
,
2000
, pp.
420
428
4.
Pitscheneder
,
W.
et al., “Numerical and Experimental Investigation of Conduction-Mode Laser Weld Pools”,
Mathematical Modelling of Weld Phenomena
4
, ed
Cerjak
,
H
1998
5.
Pitscheneder
,
W.
et al., “Experimental and Numerical Investigation of Transport Phenomena in Conduction Mode Weld Pools”,
Mathematical Modelling of Weld Phenomena
3
, ed
Cerjak
,
H
,
1997
6.
Esposito
,
C.
,
Duarelio
,
G.
,
Cingolani
,
A.
, “
On the Conduction Welding Process of Steels with CO2 Lasers
”,
Optics and Lasers in Engineering
3
,
1982
, pp.
139
151
7.
Bos
,
J.A.
,
Chen
,
M.A
, “
On the Prediction of Weld Pool Size and Heat affected Zone in Shallow-Pool Welding
”,
Transport Phenomena in Materials Processing and Manufacturing ASME, HTD
Vol.
336
,
1996
8.
Williams
,
S.W
et al “
Direct Diode Laser welding of Aerospace Alloys
”,
LaserOpto
, Vol.
33
, No.
4
,
2001
9.
Nakamura
,
S.
et al “
Detection Technique for Transition between Deep Penetration Mode and Shallow Penetration Mode in CO2 Laser Welding of Metals
”,
J. Phys. D: Appl. Phys.
33
, pp.
2941
2948
,
2000
10.
Russo
,
A.J.
et al “
Two-Dimensional Modelling of Conduction-Mode Laser Welding
”,
L.I.A.
Vol
44
(ICALEO), pp.
8
16
,
1984
11.
Paul
,
A.
and
DebRoy
,
T.
, “
Free Surface Flow and Heat Transfer in Conduction Mode Laser Welding
”,
Metallurgical Transactions B
, Vol.
19B
, pp.
851
858
,
1988
12.
Zhao
,
H.
and
DebRoy
,
T.
, “
Weld Metal Composition Change during Conduction Mode Laser Welding of Aluminium Alloy 5182
”,
Metallurgical Transactions B
, Vol.
32B
, pp.
163
172
,
2001
13.
Matsumura
,
H.
,
Orihashi
,
T.
,
Nakayama
,
S
et al “
CO2 Laser Welding Characteristics of Various Aluminium Alloys
”,
Proceedings of LAMP’92
,
Nagaoka, Japan
, June
1992
14.
Wilson
,
J.
,
Hawkes
,
J.F.B.
,
1987
Lasers
”, (
Prentice Hall
)
15.
Duley
,
W.W.
, CO2 Lasers,
Effect and Applications
,
New York
:
Academic Press
,
1976
16.
Prokhorov
,
A.M.
et al,
Laser Heating of Metals
,
IOP Publishing
,
1990
17.
Verbal Communication with Prof. W.M. Steen
18.
Sun
,
H.
, “
Thin Lens Equation for a Real Laser Beam with Weak Lens Aperture Truncation
”,
Opt. Eng.
37
, No.
11
,
1998
19.
Magee
,
J.
,
Okon
,
P.
and
Dowden
,
J.
, “
The relationship between spot size and penetration depth in laser welding
”,
IIW Doc. IV-764-2000 presented at the International Institute of Welding conference in Florence
,
Italy
in July,
2000
.
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