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International Research Journal of Engineering and Technology (IRJET) e-ISSN: 2395-0056
Volume: 06 Issue: 06 | June 2019 www.irjet.net p-ISSN: 2395-0072
© 2019, IRJET | Impact Factor value: 7.211 | ISO 9001:2008 Certified Journal | Page 460
CORROSION BEHAVIOUR OF CERAMIC COATED AND UNCOATED
ALUMINIUM ALLOYS Al 6061, Al 6068, Al 7075 IN 3.5% Nacl SOLUTION
M. Beniyel1, S. Selva prabhu2, S. Maran3, M. Sathish Kumar4
---------------------------------------------------------------------***----------------------------------------------------------------------
Abstract - We have perform the project about corrosion
studies of aluminium alloys coated with polyurethane
aluminium oxide. Aluminium6061, Aluminium 6068 and
Aluminium 7075 alloy is generally extremely low in copper,
and as such is much more mechanical behaviour than the
more traditional alloys used. But corrosion study of those
alloys very few paper only find. The corrosion behaviour of
Al alloys very poor consider than ferrous metals. The
premise of this paper is to show how to improve aluminium
alloys with economy process to specific alloy and control
wear and corrosion, as it is to regulate that the combination
of alloy and polymer (Polyurethane) ceramic (Al2O3) coating
meet specified wear and corrosion test requirements. The
polymer coating has been done by Polyurethane and
ceramic powder (Al2O3). The protective layer of resin coated
surface resist corrosion from Nacl solution. So the polymer
based coating is provide optimal corrosion resistance than
cast alloys.
Key Words: Aluminium Alloys, Hardness, Corrosion,
Vickers, Behaviour, Ceramic, Aluminium Oxide, Polymer,
Resin, Polyurethane, Coating. etc….
1. INTRODUCTION
The chemical element aluminium (symbol Al) is a metal,
which in its pure, bulk form is relatively soft, light and
abundant - 8.07% of the Earth’s crust compared, for
example, with the familiar metal iron at 5.06%. Only
oxygen and silicon (as sand) are more abundant in the
Earth’s crust, and yet it was only a century ago that
aluminium was discovered as the most common of metals.
We are all familiar with the bronze and iron ages that
considerably predate the discovery of aluminium - so why
was aluminium so late in appearing on the scene? The
answer, as for the pre-historic copper and bronze ages
(bronze is a metallic mixture of copper and tin) and later
iron and steel (a mixture of iron and a small quantity of
carbon), relates to man’s technological capability not only
to extract the material from the Earth’s crust but also to
process the material into a useful product.
The great affinity of oxygen for aluminium (which
produces a chemical compound, alumina Al2O3) means
that the element aluminium is present in the Earth’s crust
incorporated in a mineral, Bauxite ore. The technical
challenge at the end of the last century was to extract
aluminium metal from Bauxite. The solution - the “Hall –
Héroult” process was the development of an electrolytic
process, which is still used today. A large quantity of
electricity is required, and it was the development of
cheaper electricity (particularly hydroelectric power) at
the turn of the last century, that made the industrial
production of aluminium a commercial proposition. The
incentive to recycle aluminium is considerable because,
compared with the energy required for primary
electrolytic extraction, only a few percent of that energy
level is required to remelt scrap material. Nonetheless, as
a general rule, aluminium is more expensive than steel;
hence, for a given application, the selection of aluminium
over steel (or any other competitive material) will rely
upon one or more of the many attributes of aluminium
which make it a better choice for a particular application.
Lightness in weight, the characteristic to be readily formed
into useful shapes, good corrosion resistance, and high
electrical and heat conductivities are just some of the
potentially valuable attributes.
1.1 Experimental Details
The aluminium alloys surface property studied by Vickers
hardness. The hardness specimen’s planes were polished
upto 1500 Grit papers. The Aluminium alloys Al-6061, Al-
6068, Al-7075 Specimen prepared for the Immersion
Corrosion test. The specified Specimens size are 12 X 12 in
mm. All the six faces of materials doesn’t expose in the
solution, so the five faces masked by polymer based paint.
These masking paint will protect surfaces from corrosion.
1.2 Corrosion Test
The Nacl solution preparation is 3.5 % concentration.
The distilled water and sodium chloride added as per the
weight fraction by digital weighing. The immersion time is
24 hours to 168 hours. Coated specimens tested as the
same condition. The solution is 3.5% mol in water and the
room temperature is 34 oC. Before and after the corrosion
the specimens are weighted in digital weighing machine.
The specimens were cleaned after the took out from the
Nacl solution
2. RESULT
HARDNESS TEST
The Hardness specimens were tested on Vickers
Hardness apparatus.
Specimens Size: 12 X 12 mm.
Load: 5N
International Research Journal of Engineering and Technology (IRJET) e-ISSN: 2395-0056
Volume: 06 Issue: 06 | June 2019 www.irjet.net p-ISSN: 2395-0072
© 2019, IRJET | Impact Factor value: 7.211 | ISO 9001:2008 Certified Journal | Page 461
Indenter Angle: 136 o
Table-1: Hardness Results (Uncoated Al Alloys)
SL No Specimens Vickers
Hardness
1 S1 (Al-6061) 107
2 S2 (Al-6068) 86
3 S3 (Al-7075) 154
Table-2: Hardness Results (coated Al Alloys)
SL No Specimens Vickers
Hardness
1 S1 (Al-6061) 94
2 S2 (Al-6068) 92
3 S3 (Al-7075) 93
CORROSION
Sodium Chloride Solution Corrosion test
(Without Ceramic coating)
Parameters:
Hours : 48
Solution %: 3.5 Nacl (crystal form)
Temperature: 33 oC
Sl. No Weight %
of Before
Corrosion
Weight %
of After
Corrosion
Weight
Loss
S1 (Al-6061) 2.816 2.782 0.034
S2 (Al-6068) 2.675 2.652 0.023
S3 (Al-7075) 2.633 2.624 0.009
Parameters:
Hours : 96
Solution %: 3.5 Nacl (crystal form)
Temperature: 33 oC
Sl. No Weight %
of Before
Corrosion
Weight %
of After
Corrosion
Weight
Loss
S1 (Al-6061) 3.204 3.121 0.083
S2 (Al-6068) 2.567 2.517 0.05
S3 (Al-7075) 3.284 3.264 0.02
Sodium Chloride Solution Corrosion test
(Coated Al Alloys)
Parameters:
Hours : 48
Solution %: 3.5 Nacl (crystal form)
Temperature: 33 oC
Sl. No Before
Coating
Weight
Weight %
of Before
Corrosion
Weight %
of After
Corrosion
Weight
Loss
S1 (Al-
6061)
3.489 6.459 6.459 0
S2 (Al-
6068)
3.651 5.816 5.816 0
S3 (Al-
7075)
3.002 6.005 6.005 0
Parameters:
Hours : 168
Solution %: 3.5 Nacl (crystal form)
Temperature: 33 oC
Sl. No Before
Coating
Weight
Weight %
of Before
Corrosion
Weight %
of After
Corrosion
Weight
Loss
S1 (Al-
6061)
3.489 6.459 6.441 0.018
S2 (Al-
6068)
3.651 5.816 5.807 0.009
S3 (Al-
7075)
3.002 6.005 6.001 0.004
SURFACE CHARACTERIZATION
Uncoated Al 6061 surface
International Research Journal of Engineering and Technology (IRJET) e-ISSN: 2395-0056
Volume: 06 Issue: 06 | June 2019 www.irjet.net p-ISSN: 2395-0072
© 2019, IRJET | Impact Factor value: 7.211 | ISO 9001:2008 Certified Journal | Page 462
Uncoated Al 6068 surface
Uncoated Al 7075 surface
Coated Surface of Aluminium Alloys
Al-6061
Al-6068
Al-7075
3. CONCLUSION
We have tested the project in corrosion studies of
aluminium alloys coated with polyurethane aluminium
oxide. Al6061, Al 6068 and Al 7075 alloy is generally
International Research Journal of Engineering and Technology (IRJET) e-ISSN: 2395-0056
Volume: 06 Issue: 06 | June 2019 www.irjet.net p-ISSN: 2395-0072
© 2019, IRJET | Impact Factor value: 7.211 | ISO 9001:2008 Certified Journal | Page 463
extremely low in copper. The corrosion behaviour of Al
alloys very poor consider than ferrous metals. The
premise of this paper is to show the improve aluminium
alloys with economy process to specific alloy and control
wear and corrosion, as it is to regulate that the
combination of alloy and polymer (Polyurethane) ceramic
(Al2O3) coating meet specified wear and corrosion test
requirements. The polymer coating has been done by
Polyurethane and ceramic powder (Al2O3) in 50:50 weight
fraction. Therefore, this paper the results of a Hardness,
and corrosion test performed on both Al alloys (Al6061, Al
6068 and Al 7075 alloy) as homogeneous and coated with
polymer (Polyurethane) and ceramic(Al2O3). The coated
materials long-lasting more than uncoated alloys. So the
coating will provide optimal performance in corrosion.
Corrosion will be restricted with economy processing
methods and will get optimal performances.
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IRJET- Corrosion Behaviour of Ceramic Coated and Uncoated Aluminium Alloys Al 6061, Al 6068, Al 7075 In 3.5% Nacl Solution

  • 1. International Research Journal of Engineering and Technology (IRJET) e-ISSN: 2395-0056 Volume: 06 Issue: 06 | June 2019 www.irjet.net p-ISSN: 2395-0072 © 2019, IRJET | Impact Factor value: 7.211 | ISO 9001:2008 Certified Journal | Page 460 CORROSION BEHAVIOUR OF CERAMIC COATED AND UNCOATED ALUMINIUM ALLOYS Al 6061, Al 6068, Al 7075 IN 3.5% Nacl SOLUTION M. Beniyel1, S. Selva prabhu2, S. Maran3, M. Sathish Kumar4 ---------------------------------------------------------------------***---------------------------------------------------------------------- Abstract - We have perform the project about corrosion studies of aluminium alloys coated with polyurethane aluminium oxide. Aluminium6061, Aluminium 6068 and Aluminium 7075 alloy is generally extremely low in copper, and as such is much more mechanical behaviour than the more traditional alloys used. But corrosion study of those alloys very few paper only find. The corrosion behaviour of Al alloys very poor consider than ferrous metals. The premise of this paper is to show how to improve aluminium alloys with economy process to specific alloy and control wear and corrosion, as it is to regulate that the combination of alloy and polymer (Polyurethane) ceramic (Al2O3) coating meet specified wear and corrosion test requirements. The polymer coating has been done by Polyurethane and ceramic powder (Al2O3). The protective layer of resin coated surface resist corrosion from Nacl solution. So the polymer based coating is provide optimal corrosion resistance than cast alloys. Key Words: Aluminium Alloys, Hardness, Corrosion, Vickers, Behaviour, Ceramic, Aluminium Oxide, Polymer, Resin, Polyurethane, Coating. etc…. 1. INTRODUCTION The chemical element aluminium (symbol Al) is a metal, which in its pure, bulk form is relatively soft, light and abundant - 8.07% of the Earth’s crust compared, for example, with the familiar metal iron at 5.06%. Only oxygen and silicon (as sand) are more abundant in the Earth’s crust, and yet it was only a century ago that aluminium was discovered as the most common of metals. We are all familiar with the bronze and iron ages that considerably predate the discovery of aluminium - so why was aluminium so late in appearing on the scene? The answer, as for the pre-historic copper and bronze ages (bronze is a metallic mixture of copper and tin) and later iron and steel (a mixture of iron and a small quantity of carbon), relates to man’s technological capability not only to extract the material from the Earth’s crust but also to process the material into a useful product. The great affinity of oxygen for aluminium (which produces a chemical compound, alumina Al2O3) means that the element aluminium is present in the Earth’s crust incorporated in a mineral, Bauxite ore. The technical challenge at the end of the last century was to extract aluminium metal from Bauxite. The solution - the “Hall – Héroult” process was the development of an electrolytic process, which is still used today. A large quantity of electricity is required, and it was the development of cheaper electricity (particularly hydroelectric power) at the turn of the last century, that made the industrial production of aluminium a commercial proposition. The incentive to recycle aluminium is considerable because, compared with the energy required for primary electrolytic extraction, only a few percent of that energy level is required to remelt scrap material. Nonetheless, as a general rule, aluminium is more expensive than steel; hence, for a given application, the selection of aluminium over steel (or any other competitive material) will rely upon one or more of the many attributes of aluminium which make it a better choice for a particular application. Lightness in weight, the characteristic to be readily formed into useful shapes, good corrosion resistance, and high electrical and heat conductivities are just some of the potentially valuable attributes. 1.1 Experimental Details The aluminium alloys surface property studied by Vickers hardness. The hardness specimen’s planes were polished upto 1500 Grit papers. The Aluminium alloys Al-6061, Al- 6068, Al-7075 Specimen prepared for the Immersion Corrosion test. The specified Specimens size are 12 X 12 in mm. All the six faces of materials doesn’t expose in the solution, so the five faces masked by polymer based paint. These masking paint will protect surfaces from corrosion. 1.2 Corrosion Test The Nacl solution preparation is 3.5 % concentration. The distilled water and sodium chloride added as per the weight fraction by digital weighing. The immersion time is 24 hours to 168 hours. Coated specimens tested as the same condition. The solution is 3.5% mol in water and the room temperature is 34 oC. Before and after the corrosion the specimens are weighted in digital weighing machine. The specimens were cleaned after the took out from the Nacl solution 2. RESULT HARDNESS TEST The Hardness specimens were tested on Vickers Hardness apparatus. Specimens Size: 12 X 12 mm. Load: 5N
  • 2. International Research Journal of Engineering and Technology (IRJET) e-ISSN: 2395-0056 Volume: 06 Issue: 06 | June 2019 www.irjet.net p-ISSN: 2395-0072 © 2019, IRJET | Impact Factor value: 7.211 | ISO 9001:2008 Certified Journal | Page 461 Indenter Angle: 136 o Table-1: Hardness Results (Uncoated Al Alloys) SL No Specimens Vickers Hardness 1 S1 (Al-6061) 107 2 S2 (Al-6068) 86 3 S3 (Al-7075) 154 Table-2: Hardness Results (coated Al Alloys) SL No Specimens Vickers Hardness 1 S1 (Al-6061) 94 2 S2 (Al-6068) 92 3 S3 (Al-7075) 93 CORROSION Sodium Chloride Solution Corrosion test (Without Ceramic coating) Parameters: Hours : 48 Solution %: 3.5 Nacl (crystal form) Temperature: 33 oC Sl. No Weight % of Before Corrosion Weight % of After Corrosion Weight Loss S1 (Al-6061) 2.816 2.782 0.034 S2 (Al-6068) 2.675 2.652 0.023 S3 (Al-7075) 2.633 2.624 0.009 Parameters: Hours : 96 Solution %: 3.5 Nacl (crystal form) Temperature: 33 oC Sl. No Weight % of Before Corrosion Weight % of After Corrosion Weight Loss S1 (Al-6061) 3.204 3.121 0.083 S2 (Al-6068) 2.567 2.517 0.05 S3 (Al-7075) 3.284 3.264 0.02 Sodium Chloride Solution Corrosion test (Coated Al Alloys) Parameters: Hours : 48 Solution %: 3.5 Nacl (crystal form) Temperature: 33 oC Sl. No Before Coating Weight Weight % of Before Corrosion Weight % of After Corrosion Weight Loss S1 (Al- 6061) 3.489 6.459 6.459 0 S2 (Al- 6068) 3.651 5.816 5.816 0 S3 (Al- 7075) 3.002 6.005 6.005 0 Parameters: Hours : 168 Solution %: 3.5 Nacl (crystal form) Temperature: 33 oC Sl. No Before Coating Weight Weight % of Before Corrosion Weight % of After Corrosion Weight Loss S1 (Al- 6061) 3.489 6.459 6.441 0.018 S2 (Al- 6068) 3.651 5.816 5.807 0.009 S3 (Al- 7075) 3.002 6.005 6.001 0.004 SURFACE CHARACTERIZATION Uncoated Al 6061 surface
  • 3. International Research Journal of Engineering and Technology (IRJET) e-ISSN: 2395-0056 Volume: 06 Issue: 06 | June 2019 www.irjet.net p-ISSN: 2395-0072 © 2019, IRJET | Impact Factor value: 7.211 | ISO 9001:2008 Certified Journal | Page 462 Uncoated Al 6068 surface Uncoated Al 7075 surface Coated Surface of Aluminium Alloys Al-6061 Al-6068 Al-7075 3. CONCLUSION We have tested the project in corrosion studies of aluminium alloys coated with polyurethane aluminium oxide. Al6061, Al 6068 and Al 7075 alloy is generally
  • 4. International Research Journal of Engineering and Technology (IRJET) e-ISSN: 2395-0056 Volume: 06 Issue: 06 | June 2019 www.irjet.net p-ISSN: 2395-0072 © 2019, IRJET | Impact Factor value: 7.211 | ISO 9001:2008 Certified Journal | Page 463 extremely low in copper. The corrosion behaviour of Al alloys very poor consider than ferrous metals. The premise of this paper is to show the improve aluminium alloys with economy process to specific alloy and control wear and corrosion, as it is to regulate that the combination of alloy and polymer (Polyurethane) ceramic (Al2O3) coating meet specified wear and corrosion test requirements. The polymer coating has been done by Polyurethane and ceramic powder (Al2O3) in 50:50 weight fraction. Therefore, this paper the results of a Hardness, and corrosion test performed on both Al alloys (Al6061, Al 6068 and Al 7075 alloy) as homogeneous and coated with polymer (Polyurethane) and ceramic(Al2O3). 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