BACKGROUND OF THE INVENTION
1. Field of the Invention
[0001] This invention relates in general to improving the corrosion resistance of chemical
conversion coated aluminum, and more specifically to a method for treating deoxidized
aluminum prior to conversion coating which improves the ability of the aluminum to
pass rigid corrosion resistant requirements.
2. Discussion of the Prior Art
[0002] Conversion coated aluminum has been used by airframe and other manufacturers, including
the military, to improve aluminum's corrosion resistance and paint adhesion properties.
In the prior art, the aluminum is deoxidized using a chromated deoxidizer, and then
coated in the conversion process with a coating resistant to corrosion. When coated
aluminum is manufactured for use in military applications, a stringent corrosion resistant
test must be met as outlined in Military Specifications MIL-C-5541 and MIL-C-81706.
These tests require subjecting the finished aluminum product to a salt spray for a
lengthy period of time, such as 164 to 328 hours, respectively.
[0003] Prior to the present invention, it was extremely difficult to pass the salt spray
requirement imposed by the military for aluminum hardware. Special conversion coatings
were developed, and various deoxidizers used. In general, the aluminum was treated
using a chromated deoxidizer to etch away the natural and heat-treat oxide so that
the finished product has a uniform color and texture. A chemical conversion coating
is applied to the aluminum. One typical coating is "Alodine 1200S" manufactured by
the Amchem Products, Inc., Ambler, PA. This conversion coating consists of a corrosion
resistant brown iridescent layer. This film has potentially good resistance to normal
corrosion; however, in highly corrosive environments such as that required by the
salt spray test, the film may succumb to corrosion and not meet military specifications.
In general, the prior art relied upon chromated deoxidizers to meet the stringent
corrosion requirement tests. Non-chromated deoxidizers were tested, but failed to
meet the military specification requirements after being chemically conversion coated.
Deoxidizers containing the chromate ion, although producing better results in salt
spray test requirements, have a pollution problem due to the effluent stream. Heavy
metals, such as chrome, are highly toxic to the environment, and are therefore undesirable
for release into closed or open bodies of water. Previous to the present invention,
a workable non-chromated treatment process prior to chemical conversion coating aluminum
was lacking if salt spray requirements were to be consistently met.
[0004] A search of the prior art disclosed the following patents to be of potential interest:

[0005] None of these patents singularly or in combination anticipate the present invention.
Taking each of the above individually, U.S. Patent No. 2,351,465 issued to Wachter
deals with the use of sodium nitrite as an inhibitor to corrosion inside steel pipelines
carrying petroleum distillates. This invention, specifically, needed to protect the
pipelines from distillates containing hydrocarbon oils; and not salt spray as the
present invention. Ferguson, in U.S. Patent No. 2,671,717 teaches the use of sodium
nitrite in brightening aluminum, not for corrosion resistance. Hulpert, in U.S. Patent
No. 2,883,371 teaches a chromated deoxidizer which the present invention would eliminate
as a pollution problem. A non-chromated aluminum deoxidizer is disclosed in U.S. Patent
No. 3,140,203 issued to Grunwald; however, this patent does not teach the applicability
and compatability of this deoxidizer with a conversion coating. U.S. Patent No. 3,275,562,
issued to Smith, shows one formulation of a non-chromated aluminum de-smutter, and
does not teach the method of the present invention. Hatch, in U.S. Patent No. 3,335,096,
deals with a corrosion protective chemical in a closed system which protects the metal
surface only while in contact with the surface, and does not anticipate the present
invention. As in the previously cited patent, Thornhill (
U.S. Patent No. 3,340,001) teaches a composition for protecting metal from corrosion
which is constantly in contact with the metal. This composition contains sodium nitrite;
however, it is not obvious from Thornhill that this compositon would have good results
when combined with chemical conversion coating. Shick, in
U.S. Patent No. 3,433,577, uses a composition containing sodium nitrite for protecting
metal parts from corrosion. The purpose of this composition is for vapor phase corrosion
inhibitors during storage, and does not anticipate or is applicable to the present
invention.
U.
S. Patent No. 3,445,400 issued to Everhart contains a chromated formulation which the
present invention seeks to avoid. Bland et al, in U.S. Patent No. 3,510,430 discloses
a ferric sulfate non-chromated deoxidizer which would not satisfactorily meet salt
spray tests. The nitrites in this formulation are used to prevent pitting during deoxidization
which is different from the function in the present invention. U.S. Patent No. 3,802,973
teaches an oxidizing agent to uniformly etch aluminum in an alkaline solution for
the purpose of hiding surface defects, and does not directly relate to the present
invention. Harris et al, in U.S. Published Patent Application 265,369, shows a metal
exposed continuously to a rust inhibitor as others in the search have shown, and again
does not anticipate the present invention.
SUMMARY OF THE INVENTION
[0006] The present invention discloses a method for treating aluminum metal to enhance corrosion
resistance, and especially to meet salt spray test requirements imposed by the military.
The method includes deoxidizing the aluminum with deoxidizing means, rinsing the aluminum
and exposing the aluminum to a sodium nitrite solution with a pH lower than 5. The
aluminum is then rinsed and coated with a chemical conversion coating such as "Alodine
1200S" and dried by suitable drying means such as warm air. The present invention
teaches that the sodium nitrite treatment is especially effective if that solution
is maintained at a pH between 3 and 4. Further, it is preferable to use a deoxidizing
solution of 25% to 50% nitric acid. Drying temperatures in the range of 110°F and
130°F give the best results.
[0007] It is, therefore, the object of the present invention to provide a method for treating
aluminum which uses a non-chromated deoxidizer and a chemical conversion coating with
the final product able to withstand the salt spray requirements of the military specification.
[0008] Another object of the present invention is to provide a method for treating aluminum
which eliminates an effluent stream containing chromate.
[0009] A further object of the present invention is to allow aluminum to be conversion coated
without the use of a chromated deoxidizer.
[0010] These and other objects and advantages will become more apparent from the following
detailed description of the invention, incudin
g tables and examples.
Detailed Description of the Preferred Embodiment
[0011] The present invention may be practiced on the following sequence of operation:
1) vapor degreasing the aluminum;
2) alkaline cleaning the aluminum;
3) rinsing the aluminum with water;
4) deoxidizing the aluminum, preferably with a non-chromated deoxidizer;
5) rinsing the deoxidized aluminum with water;
6) exposing the aluminum to a sodium nitrite solution;
7) rinsing the aluminum with water;
8) chemical conversion coating the aluminum; and
9) drying the aluminum.
[0012] Vapor degreasing of the aluminum metal can be performed by standard techniques known
to one skilled in the art. Similarly, alkaline cleaning and rinsing of the aluminum
are steps commonly known to those skilled in the aYt and insure a clean aluminum surface
prior to deoxidization.
[0013] The deoxidization step which is the next step is preferably produced with a non-chromated
deoxidizer. A chromated deoxidizer is undesirable from a pollution standpoint since
chrome or chrome ions are toxic, and the effluent stream may be released to open bodies
of water. The invention can be practiced, however, using a chromated deoxidizer if
desired and the resulting product will readily meet the salt spray requirements of
the military. A non-chromated deoxidizer that can be used for beneficial results,
by way of example, a nitric acid solution containing the fluoride ion. In the preferred
embodiment of the invention, the fluoride ion would be present in the deoxidizing
solution in an adequate and normally practical amount to obtain an etch rate of the
aluminum surface of up to approximately 0.6 mils/side/hr. The fluoride ion could be
obtained from hydrofluoric acid or any suitable salt containing the ion. Nitric acid
can typically be used in a concentration of 25% to 50% HN0
3 to inhibit the redeposit or copper, commonly called "smut."
[0014] The fluoride ion is preferred since it is one of the best etching agents of unfinished
aluminum metal, and can etch uniformly without pitting. To supplement the etching
action of the fluoride ion, nitric acid is used to remove undissolved silicon from
the aluminum surface and prevent the formation of smut. Other non-chromated deoxidizers
may be used in the practice of the invention without losing the beneficial effects
of treating aluminum in the manner taught by the inventor. The aluminum may be immersed
in the deoxidizer for approximately 5 minutes to 60 minutes or greater, depending
on the difficulty of scale removal. The nitric acid deoxidizer performs best when
a freshly prepared solution is buffered with some dissolved metallic aluminum.
[0015] After deoxidization, the aluminum is then rinsed with cold water, and a supplemental
treatment, differing from the prior art, is performed to allow the final conversion
coated product to pass salt spray requirements. In this step, the deoxidized aluminum
is rinsed with a sodium nitrite solution. The aluminum may either be immersed in the
solution or sprayed with the solution. The sodium nitrite solution is maintained at
a pH less than 5 and preferably at pH3 or below. Nitric acid can supply the necessary
hydrogen ion concentration. The concentration of sodium nitrite is not critical, assuming
the pH is less than 5, and beneficial results can be obtained with a sodium nitrite
solution of 1%. After the sodium nitrite treatment, a water rinse of the aluminum
is performed prior to chemical conversion coating. It should also be noted that potassium
nitrite may be used in place of sodium nitrite with beneficial results.
[0016] The chemical conversion coating can be done with any of the coating solutions known
to the prior art. It has been found that Alodine 1200S, manufactured by Amchem Products,
Inc., Ambler, PA, works satisfactorily.
[0017] To coat the aluminum,. immersion in the coating solution is allowed to take place
for a relatively short time such as up to five minutes.
[0018] After conversion coating, the aluminum is dried by warm air. In the preferred embodiment
of the invention, the drying temperature will be in the range of 110°F to 130°F with
an optimum at 120
0F. The present invention may be further understood by reference to the following examples
and accompanying tables.
Example 1
[0019] Bare aluminum alloy specimens (10" by 3") were used in this and all other examples.
Table 1 shows the results of this series of samples which illustrates the effect of
sodium nitrite treatment on the salt spray test results. A partially depleted chromate-type
deoxidizer was used called Am Chem 6-17, a product of Amchem Products, Inc., Ambler,
PA. As in all examples, each specimen was first cleaned using an alkaline cleaner
called Turco 2623, a product of the Turco Products Division of Purex Corporation Ltd.,
Wilmington, California. The alkaline cleaning was conducted for 30 minutes at l40
oF. Deoxidation occurred in Amchem 6-17 with the etch rate adjusted to 0.25 mils/side/hr
with hydrogen fluoride. The next processing step for the bottom four specimens on
Table 1 was an immersion in the sodium nitrite solution for 30 minutes. The solution
had a pH of 3 and a concentration of 3%. The top four specimens did not receive a
sodium nitrite immersion. All specimens were then immersed in Alodine 1200S and dried
for 30 minutes at a temperature of 110° - 130°F. It should be noted that all specimens
in all examples were rinsed with tap water after each processing step. Table 1 shows
that only the specimens which were immersed in the sodium nitrite solution passed
the salt spray test, i.e. the top four specimens of Table 1 had one or more corrosion
pits visible to the unaided eye, indicating failure, while the bottom four specimens
had no visible corrosion pits, indicating passing results.
[0020] In this example, as in all other examples, the tests were concluded after one week
of salt spray immersion for visual examination and other evaluation tests.
Example 2
[0021] Bare alloy specimens similar to those used in Example 1 were used in Example 2. The
main difference in the two examples was the use of a non-chromated ferrous ion-type
deoxidizer instead of a chromated deoxidizer. The deoxidizer in this example was Isoprep
184, a product of Allied-Kelite Products Division, Los Angeles, California. It was
used in a 25% concentration with an etch rate of 0.25 mils/side/hr maintained with
hydrogen fluoride addition. The sodium nitrite solution was 2.3% sodium nitrite with
a pH of 3.0. This example illustrates that the only specimens which passed the salt
spray test (no pits visible to the unaided eye) were those immersed in the sodium
nitrite solution.
Example 3
[0022] Example 3 is similar to Examples 1 and 2, differing only in the deoxidizer used.
In Example 3, a nitric acid - fluoride ion type non-chromate deoxidizer was used.
The specimens were processed in the same manner as Examples 1 and 2. The deoxidizer
consisted of 40
% by volume of concentrated nitric acid (technical grade) with a sufficient fluoride
ion concentration to produce an etch rate of 0.25 mils/side/hr. The sodium nitrite
solution was of a 2.3% concentration with a pH of 3.3 The results outlined in the
table show that the specimens passing the salt spray test were those which were t
immersed in sodium nitrite. The specimens which were not immersed in the sodium nitrite
solution failed the test.
Example 4
[0023] In Example 4, a nitric acid - fluoride ion type non-chromated deoxidizer was used
as in Example 3. Instead of immersion in a sodium nitrite solution after this processing
step, a potassium nitrite solution of 2.3% concentration with a 3.0 pH was used. The
results show that the specimens which were not immersed in the potassium nitrite solution
failed to pass the salt spray test. The specimens that were immersed in potassium
nitrite, however, passed the salt spray test.
Example 5
[0024] Example 5 uses Isoprep 184, a ferrous ion-type non-chromated deoxidizer as did Example
2. Instead of sodium nitrite, potassium nitrite was used in the next processing step.
The solution was of 2.3% concentration with a pH of 3.0. As seen in Table 5, the only
specimens passed were those treated with potassium nitrite.
Example 6
[0026] The invention may be embodied in other forms without departing from the spirit or
essential characteristics thereof. The present embodiments are, therefore, to be considered
in all respects as illustrative and not restrictive, the scope of the invention being
indicated by the appended claims rather than by the foregoing description, and all
changes which come within the meaning and range of equivalency of the claims are therefore
intended to be embraced therein.
1. A method for treating aluminum to enhance corrosion resistance of its surface,
which includes:
a. deoxidizing the aluminum surface with deoxidizing means;
b. exposing the aluminum surface to a solution containing the nitrite ion and having
a pH below 5;
c. coating the aluminum surface with a chemical conversion solution; and
d. drying the aluminum with drying means.
2. The method of claim 1 wherein said deoxidizing means is a non-chromated deoxidizer.
3. The method of claim 2 wherein said non-chromated deoxidizer is a nitric acid solution
with a concentration of nitric acid of at least 10% by volume of a 100% solution.
4. The method of claim 2 wherein said deoxidizing means contains a sufficient concentration
of fluoride ion to etch the aluminum surface at a rate of at least .05 mil/hr.
5. The method of claim 1 wherein the pH of said nitrite solution is 3 or less.
6. The method of claim 1 wherein the drying is performed at a temperature between
110°F and 130 F.
7. The method of claim 1 wherein the nitrite ion in said solution is substantially
contributed by sodium nitrite.
8. The method of claim 1 wherein the nitrite ion in said solution is substantially
contributed by potassium nitrite.
9. The method of claim 1 wherein the nitrite ion in said solution is substantially
contributed by a mixture of sodium and potassium nitrite.
10. In a process of treating the surface of aluminum metal to enhance corrosion resistance
which includes deoxidizing the surface with a deoxidizer and conversion coating the
aluminum surface, the improvement of exposing the aluminum surface to a nitrite solution
with a pH below 5 after deoxidizing the aluminum with said deoxidizer and before said
conversion coating of the aluminum surface.
11. The improvement claimed in claim 10 which further includes drying the aluminum
surface after said conversion coating at a temperature between 110°F and 130°F.
12. In a process of cleaning the surface of aluminum metal, which process includes
deoxidizing with deoxidizing means, the improvement of exposing the aluminum surface
to a nitrite solution with a pH below 5 after deoxidizing the aluminum with the deoxidizing
means.
13. The method of claim 2 wherein the non-chromated deoxidizer is nitric acid in a
concentration of 15 to 25 percent by volume based on 100 percent nitric acid.
14. The method of claim 2 wherein the non-chromated deoxidizer is nitric acid in a
concentration of 30 percent to 50 percent based on commercial grade nitric acid.