Document 2JxbX0Vzy5b86pzy6d3y9MaLr
ETHYL CORPORATION REPORTS RESULTS OP ROAD AND LABORATORY EVALUATIONS OF THE 4th ML OP TEL
Ret>orta Related to Engine Durability and Deposit Effects
1. Report No. PR-24, "The 4th MI of TEL"
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This report summarizes a large number of data accumulated
since 1954. It covers the antiknock effectiveness and
. economics, as well as the durability and deposit effects,
of high TEL concentrations. For convenience it is divided
. into three sections: Antiknock Effectiveness, Engine
' Durability, and Deposit Effects.
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The results reported in the Engine Durability and Deposit Effects sections are based on over 4,000,000 miles of vehicle testing in light and medium passenger car service ' and in heavy duty truck service. In addition to this,
12,0 0 0 hours of testing was done in two farm tractor fleets
plus several thousand hours of dynamometer testing. In all cases, the comparison was made between engines operated on
3-17 gms Pb per gallon and 4.23 gas Pb per gallon.
The results of many tests, in various types of engines and service conditions, indicate that higher TEL concentrations can. be used without deleterious effects on valve life and engine wear. There may be a slight increase in wear of
some engine components when 4.23 gm3 Pb is used. However,
this increase is not critical, since the wear rates are well within acceptable limits. Also, data indicate that engine cleanliness may be improved by higher TEL
concentrations. -
Dynamometer and road tests have shown that the 4th ml of
. TEL decreased the miles to spark-plug fouling in some
engines, but the decrease was small compared to the
variations in plug life among engines of different makes.
These tests also showed that the 4th ml of TEL does not
significantly affect stabilized knock or surface-ignition
requirements.
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2. Report No. IR 6l-4, "Deposit Effects with Lead Antiknocks"
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The type of combustion chamber deposits that are formed in
-light-duty passenger c el t service, such as prolonged driving
in city and suburban areas, may cause surface ignition if
the vehicle is suddenly accelerated to relatively high
speeds. In high compression engines, surface ignition is
often accompanied by objectionable noise, generally termed
rumble.
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` Such deposit-effects are influenced by fuel and lubricant - composition as well as by engine design. TEL and TML were
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compared at each of two lead concentrations and with each
of two scavenger formulations. The lend concentrations
were 317
4.23 gas per gallon. The scavengers were
those used in Motor Mix and Aviation Mix.
Differences were observed between TEL end T.4L and between Motor Mix and Aviation Mix; but no significant differences were found between the two lead concentrations.
3. Report Io. T3-177, "Field Service Experience of Vehicles Operating on High Lead Content Fuels"
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A survey was conducted on 34 fleets representing 555
commercial vehicles, with gross weights (GW) ranging
, between 4000 and 78*500 pounds, which have operated for the ' past two years on fuels containing on the average 3*38 gh
to 4.23 ga Fb per gallon. Daring the two or three years
prior to this the average yearly level of the fuels cn which
these fleets operated was 2.55 to 3*17 gn per gallon. The
records of maintenance practices by these fleets indicate
valve life, piston ring life, cylinder bore wear, bearing
life and spark plug life have not materially changed
during the past four or five years. The discussions with
the Maintenance Superintendents of these fleets also have
confirmed this.
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I ' Daring the past year periodic contacts have been made with
the Service Departments of the various automobile companies,
' the Engineering and Service Departments of the commercial
r vehicle manufacturers, and with the Engineering and Service
Departments of the tractor companies for discussions
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' concerning engine durability problems. We have not found
any evidence that field problems which might he related
to fuel utilization are greater in any specific geographic
areas than in others. This suggests field service problems
- in all areas, whether the vehicles are operating on high or
low lead content gasolines, are being handled satisfactorily
by the dealers.
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4. Report Ho. ER-436, "Effect of 4th 141 TEL on Engine Performance and Durability-- Continental MS-330 Engineer Corps Engines"
. The test program was conducted using two Continental MS-330 Engineer Corps engines operated under a modification of Military Specification MIL-S-112783. The specification was
modified to indicate the possible difference in spark plug
performance of this model engine on fuel containing 3 ml
(3*17 grams Fb) TEL and 4 ml (4.23 grams Fb) TEL per gallon of gasoline.
The results of these 2000-hour tests showed that increasing TEL from 3 to 4 ml per gallon produced:
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1. No change ia valve life.
2. No change in power loss due to deposits.
3. No change in spark plug life if the plugs had teen
serviced according to the MIL-E-112783 Military
Specification. This is further explained in the
. discussion of test results. 4. An 18$ increase in combustion chamber deposit weight.
5. A 14$ decrease in piston-top deposit weight.
5. Report No. ER-437, "Effect of 4th Ml TEL on Engine Performance and Durability-- Military Standard Engines Model 2.'M)l6-2 i!
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The test program was conducted using four Model 2A016-2,
Military Standard engines. These engines were operated
4 under a modification of the Military Specification MIL-2 U 278B. The specification was modified to indicate the
possible difference in spark plug performance of this model
engine on fuel containing 3 nl (317 grams Fo) TEL and 4 nl
(4.23 grams Pb) TEL per gallon of gasoline. Two engines
were operated 1000 hours on each lead concentration.
The results of these 1000-hour te3ts showed that:
. 1. No valve failures occurred in any engine.
2. Exhaust valve lash los3 was not affected by increas
ing lead concentration from 317 ga bo 4.23 gn per
gallon.
. 3 Power loss due to deposits was negligible at both
.
, lead concentrations*
. ,4 ,Total combustion chamber deposits were 15p less in
.. engines operated on 4.23 gni Pb than in engines "
operated on.3.17 gm Pb.
- 5 No differences in spark plug performance would have
been noted if the plugs had been serviced in
- . ' accordance with MIL-E-1127SB. However, no plug
. . servicing was done, and the plugs were left in the
engines until failure occurred. Under this procedure,
spark plug life was 2$$ less at the higher lead
concentration.
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. 6 . She difference In performance and durability arc
greater between engines operated on the same TEL
. concentration than between engines using different
. TEL concentrations.
II. Reports Related to Miscellaneous Aspects, of Higher Lead Concentrations
1. Paper No. 57-10* "Particulate Lead Compounds in Automobile Exhaust C-as"
by D.A. Kirschler, L.P. Gilbert, F.W. Lamb, and
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L.M. Niebylski
This paper presents the results of a comprehensive study of the amount, composition, and particle sise distribution of
the lead compounds present in the exhaust gases of automobile engines operated on fuels containing tetraathyllead. It was found that city-type driving tends to exhaust considerably less lead than is burned by the car and that the excess lead which deposits on exhaust system surfaces tend to be exhausted under higher speed or higher lead conditions. The data also show the amount of lead exhausted, expressed as a percent of lead burned, is the sans for both
the .0 and 4.0 nl TSL/golloa concentrations.
2. Report PR-24A, "The Effect of 4th Ml TEL on Lubricating Oil Performance in 'M3' Tests"
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There was no significant difference between the "MS" test , results obtained with 317 gn and 4.23 gn Fh. This is in ' spite of the fact that the teats were run with a commercial --- 10T.i-39 motor oil which had a MEL-L-21Q4A additive treatneau'
instead of the usual Supplement 1 level of additive treatment. Thus, the 4th ml of TEL does not contribute to varnish or sludge deposits, rusting, wear, oil ring clogging, or oil screen clogging in the "MS" Sequences I, II, III, and V.
The foregoing results of the "no effect" of 4th nl of TEL
on engine deposits are in agreement with those previously observed in EL-2, EX-3, and L-4 tests (Reported in PR-24).
It is concluded that increasing fuel lead content from
3 .17 gm to 4,23 gm per gallon \rill have an insignificant
effect on the performance of lubricating oils.
III. Resorts Related to Antiknock Effectiveness and Economics
1. Report Bo. PR-24, "The 4th Ml of TEL"
'
This report summarizes a large number of data accumulated
since 1954 It covers the antiknock effectiveness end
economics, ns well as the durability and deposit effects
of high TEL concentrations. For convenience' it is divided
into three sections: Antiknock Effectiveness, Engine
Durability, and Deposit Effects.
.
A comparison of tetraethyllead with refinery processing as a means of producing gasoline octane number indicates several possible advantages for TEL. For example, it has . - .been observed that the resulting increase in Research Octane number alone does not adequately reflect the practical benefits stemming from higher TEL content. Motor octane number, usually a better criterion of the high-speed high . .power output and part-throttle road antiknock performance of a fuel, often is increased more than the Research octane number when TEL is used. . Thus, with TEL, antiknock quality , can be raised without increasing fuel sensitivity.
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TEL also Give3 gasoline better road performance than would
be anticipated, from laboratory engine ratings. The trend toviard acre aromatics and fewer olefins will increase this
"road bonus" in the future. A 3 compared with processing, .
additional TEL shows an advantage at full-throttle at the average speed for maximum knock, and this superiority tends to increase at higher speeds. Additional TEL is particularly effective under part-throttle knock conditions.
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t The inherent flexibility that TEL provides In refining operations is another distinct advantage. By using TEL to produce competitive octane numbers, refiners can better schedule refinery operations and capital investment for processing equipment. Since each refiner's operation is unique in itself, no attempt has been made to show the
; effects of increased lead in all types of fuels.
2. * Report Bo. BT-97* "Hoad Octane Correlations for Premium. Gasolines - lg-cO"
3. Beport Eo. RT-98, "Road Octane Correlations for Regular Gasolines - l$-o"
h. Report Ho. RT-99, "Part-Throttle Road Octane Correlations for Premium Gasolines - i960"
5. Report Bo* ST-111, "Road Rating Fuels in the General Motors E3-59 Test Engine"
6 . Report Ho. RT-113,"TEL Road Bonus"
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7 Report Ho. RT-130> "Prediction S y s t e m for Road Antiknock Quality of
- Premium Gasolines - 19 6 1"
The above reports present the results of programs conducted to develop correlation equations for predicting road antiknock
performance of. commercial gasolines from laboratory inspection - data. Previous studies,, conducted at a constant tetraethyllead
' (TEL) level, have shown that laboratory Research and Motor octane numbers and hydrocarbon-type content are satisfactory variable^ for: predicting the road behavior of fuels.
Continuing investigations have indicated that the inclusion .
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of tetraethyllead content (TEL) significantly increases the
' . - .accuracy of such equations when TEL is a variable. Equations
. of the (folloving general form were selected:
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. Road O.H. m a + b (R) + c (M) + d,(0) + e (TEL) -> f (A)
... where S * Research octane number
M m Motor octane number
0 Olefins, Vol.$
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. A * Aromatics, Vol.$
,, TEL m Tetraethyllead, ^il/gal
- 5- / < 0 0G7DV8
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The coefficients for TSL in standard production, automobiles
have shown average values a3 high as 0.4S3 (Report Ho. ET-113)
at some speeds and throttle settings. This
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these conditions, when two gasolines have the cane Research
and Motor octane numbers and the came
1 hydrocarbon- :
type concentrations, the one with the higher TEL content
will on the average, rate 0.4S3 octane numbers letter on the
road for each ml TEL (1.057 ga Pc) difference. The coefficient
for TEL in' the experimental General iiotors EE-59 Test Engine
at 12.1 to 1 compression ratio (Report Ho. ET-lli) was as
high as 1.155 under one set of operating conditions.
S. Report Ho. ST-112, "Hoad and Laboratory Antiknock Data on Lead Alkyls"
9. Report Ho. RT-132, "Road and Laboratory Antiknock Data on Lead Alkyls
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in the General Motors E3-52 Test Engine"
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The results included in these reports are from programs designed to evaluate the performance of the various lead alkyl antiknock compounds in a variety of fucl3 (representive of 57$ of U.S. production) run in both regular and premium requirement cars. Lead content ranged between 1.53 ga Fb and 370 ga Pc/gallon and the reports deal primarily with data presentation. The data indicate the lead level significantly contributes to road octane quality when rated by the Modified Uniontown method; l.e., the average lead coefficient was as high as 0.3$f-.
10. .Paper Ko. 6l-10, "Economics of Antiknock Selection" by W.W. Sabin and
C.J Wolf. 1Western Petroleum Refiners Association
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(now HERA) San Antonio, Texas, April 10, lpol.
- Material la this paper serves to demonstrate that changes in refinery gasoline composition can often result in significant savings to the refiner when full advantage can be taken of the flexibility permitted by the various lead antiknock available. The advantages to the refiner of the flexibility of operation permitted by higher lead contents (37 ga Pc/ gallon) are shown also* . . .