Tougher environmental legislations related to the usage of hexavalent chrome are forcing industries to search for new alternatives to replace conventional hard chrome plating [1]. In addition to the environmental aspects, the typical requirements of the coatings are smooth surfaces with high resistance to wear and corrosion [2]. Furthermore, to be attractive to any high volume industrial application, a replacement solution must not only have technical, but also cost benefits. High-speed laser cladding is such a process that can replace hard chrome plating [3,4]. If compared to conventional laser cladding, where the layer thickness normally range between 0.5 mm to 1.5 mm, the high-speed laser cladding process can produce layers between 25 µm and 500 µm in thickness. The resulting heat input as well as the dilution with the substrate is very low [4]. Until now, nickel based alloys have mostly been used as hard chrome replacement with high-speed laser cladding [3,5]. However, there is a need for new innovative coating materials. The novel iron based alloy in this study, consisting of 18% Cr and 2.5% Ni, features very good wear properties and high corrosion resistance. In combination with high-speed laser cladding, this alloy delivers an environmentally friendly and cost effective solution with complete metallurgical bonding to the substrate.

1.
European Union
. (
2013
)
COMMISSION REGULATION (EU) No 348/2013 of 17 April 2013 amending Annex XIV to Regulation (EC) No 1907/2006 of the European Parliament and of the Council on the Registration, Evaluation, Authorisation and Restriction of Chemicals (REACH
),
Official Journal of the European Union
56
,
1
5
.
2.
Weil
,
R.
&
Sheppard
,
K.
(
1992
) Electroplated Coatings, Friction, Lubrication, and Wear Technology, in
S.D.
Henry
(ed)
ASM Handbook, ASM International
18
,
834
839
.
3.
Schopphoven
,
T.
,
Gasser
,
A.
&
Wissenbach
,
K.
(
2016
)
Investigations on ultra-high-speed laser material deposition as alternative for hard chrome plating and thermal spraying
,
Journal of Laser Applications
28
,
022501
/9.
4.
Schopphoven
,
T.
,
Gasser
,
A.
&
Backes
,
G.
(
2017
)
EHLA: Extreme High-Speed Laser Material Deposition; Economical and effective protection against corrosion and wear
,
Laser Technik Journal
4
,
26
29
.
5.
Raykis
,
O.
(
2017
)
Alternative with a Future; High-speed laser metal deposition replaces hard chrome plating
,
Laser Technik Journal
1
,
28
30
.
6.
Gnanamuthu
,
D.S.
(
1976
)
United States Patent No. 3
,
952
,
180
.
7.
Steen
,
W.M.
&
Powell
,
J.
(
1981
)
Laser Surface Treatment
,
Materials in Engineering
2
,
157
162
.
8.
Powell
,
J.
(
1983
) Laser Cladding, Ph.D. thesis,
The University of London
9.
Andersson
,
O.
&
Parker
,
K.
(
2014
)
High Power Diode Laser Cladding
,
Fabricating & Metalworking 1
3
,
24
26
.
10.
Küppers
,
W.
,
Backes
,
G.M.
&
Kittel
,
J.
(
2015
)
Patentschrift DE 10 2011 100 456 B4
.
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