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- Chemical Activity Toward Copper of Universal Gea...
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- Calcium in Lubricating Oil
- Thermal Oxidation Stability of Gear Lubricants
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January
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Showing posts with label metals. Show all posts
Showing posts with label metals. Show all posts
Wednesday, January 2, 2013
Monday, December 31, 2012
Chemical Analysis for Metals in Lubricating oils
Posted by
Gear lubricants
,
at
8:36 PM
These methods of chemical analysis are intended for the
determination of barium, tin, silica, zinc, aluminum, calcium,
magnesium, sodium and potassium in
new and used lubricating
oils. Other metallic elements, sulfur, phosphorus and chlorine in
amounts commonly found
in lubricating oils do not
interfere in this method.
Essentially, the method
consists of igniting
the sample, dissolving the residue
in mineral acid and then
separating the various metals by
conventional methods.
Friday, November 23, 2012
Radioactive Tests for Metals in Oils
Posted by
Gear lubricants
,
at
4:37 AM
Tests in which the
radioactivity of metals or their compounds is used as a means of determining their
presence or concentration are largely confined to experimental investigations.
This is true because, first activated metals or compounds must be present
and this is not true of commercial
lubricants and second, the life
of some of the isotopes used
is short so that after prolonged service the activity would almost
disappear.
Friday, November 16, 2012
The Navy Gear Wear Tester
Posted by
Gear lubricants
,
at
2:45 AM
The Navy Gear Wear Tester is
described in Federal Methods 791, Methods 335. The equipment
makes use of
small brass and steel
gears, but Ninos
has also used
mating gears of other metals, such as
brass on stainless steel, Phosphor Bronze, and
ST Aluminum on SAE
4130 steel and SAE B-1112
steel against stainless
steel.
In the
test two helical
gears of dissimilar
metals, each approximately one half inch
in diameter are rotated
together as the driving
motor delivers a simple harmonic motion of 4.0
inches amplitude and 40
cycles per minute, through a crack to
the upper brass gear. This gear oscillates
approximately one revolution while a torque load of about three
and one half inch pounds is applied to
the test gears by
means of a seven pound
weight. The gears are
oscillated for the desired
number of cycles, or until gear tooth
failure due to
excessive wear occurs. At the completion of the test, the
gears are removed from the fixture, cleaned as before, and reweighed to determine weight loss. The wear rate in mg
for 10,000 cycles is then calculated permitting a comparison of different
lubricants. New test gears
are used for
each run even though
there is virtually
no wear of the steel
gear as compared
to the brass gear.
Both fluid products and
lubricating greases can be tested as gear lubricants on this apparatus.
Indications are that
with increase in viscosity
of gear oils
the gear wear decreases. No speculations are given
as to how much of
the wear might
be due to abrasion which is due
to particles from the gears.
Wednesday, May 30, 2012
Minimum action of gear oils on components of mechanisms
Posted by
Gear lubricants
,
at
10:41 AM
Well refined mineral
lubricating oils have little if any action on most metals, particularly ferrous
metals. It is only upon prolonged use at elevated temperatures that such oils
may from compounds which will act upon metals. Since such oil changes can be retarded
or almost completely arrested by the use of oxidation inhibitors and also metal
deactivators or pacifiers can be included, there should be little concern about
the action of straight mineral oils upon the metal components with
which they come in contact.
What we are concerned with
here is the action on parts made from other materials, such as paper, plastics,
rubber, etc. Seals are likely to be made from rubber, either artificial or
natural, and any deterioration of the compositions due to the lubricant should
be at a minimum. Many seals consist of compounded materials, such as
“neoprene,” and it is found that oils high in aniline points, as are most high
V.I. oils, will have little effect on this compound.
Automatic transmission
mechanisms may be found to contain paper and “Nylon” parts. In future devices
which will require transmission fluids, a greater variety of components may be
used. The safest course when supplying oils for contact with unusual materials
is to have the fluids pretested to determine their suitability.
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