Field of the Invention
[0001] The present invention relates to a coil retainer in use for an engine valve, and
further a process of manufacturing the coil retainer. The coil retainer has a specific
composition of aluminum based alloy, and can be manufactured only by the specific
process comprising special treatments.
Description of the Prior Art
[0002] A conventionally used coil retainer in use for an internal engine valve is as shown
in FIG. 1 (prior art).
[0003] Referring to FIG. 1, there is shown a partial view in partial section of an internal
engine valve 1 of which the end is mounted through a pair of cotters 3, 3 on a coil
retainer 2, on which a spring coil 4 is stemmed within a hollow of the valve 1 against
a cylinder head (not shown).
[0004] The valve 1 is driven by movement of a cam 7 pressing the upper surface of a shim
6 embedded in a tappet 5 of the valve 1.
[0005] Such engine provided with a direct movement type valve has smaller numbers of members
therefor, and therefore the allowable number of revolution of the engine can be improved
so as to raise a power performance of the engine.
[0006] One of the obstacles for the allowable number of revolution of the engine to raise
is a weight of a moving valve assembly. When the weight of the valve assembly increases,
the inertial mass of the valve will be increased so as to lose a follow-up character
to the movement of the cam, thereby affecting efficiency of suction and exhaust valve
to lower the power of the engine.
[0007] Recently, there has been used an aluminum alloy in place of iron, for a retainer
2 to be mounted on a tappet 5 and a valve spring coil 4, thereby reducing the inertial
mass of the valve assembly.
[0008] However, the retainer 2 must be exposed to repetition of high weight loading at the
contact portion with the end of the coil 4, and therefore, the retainer made of the
aluminum based alloy which has less abrasion resistance than that of iron will be
more abraded at the contact portion 2 with the coil 4, to cause some trouble on durability
of the engine.
[0009] There have been proposed the use of an aluminum alloy for a light- weighted retainer;
and the use of a titanium alloy is described in Japanese (Unexamined) Patent Laid-open
application No. 4-171206/1992, and the use of other light metal alloy for a retainer.
However, there has been found several disadvantages such as lack of abrasion durability
and lack of permanent set in fatigue.
[0010] In order to overcome such disadvantages, the prior art aluminum alloy retainer uses
a metal lining embeded in the contact portion with the coil (e.g. Japanese (Unexamined)
Patent Laid-open application No. 63-50613/1988, Japanese (Unexamined) Utility Model
Laid-open application No. 63-34312/1988), and further, there is proposed use of a
fiber reinforced aluminum alloy with a plated coating layer on the surface thereof
(Japanese (Unexamined) Patent Laid-open application No.62-45915/1987) to improve the
abrasion resistance of the contact portion with the coil, and further alumitization
(making alumite surface layer) of surface layer, i.e. surface treatment of the aluminum
alloy to improve abrasion resistance, and dispersion of hard material such as ceramic
powder in the aluminum alloy to impart abrasion proof. Such improvement or rearrangement
of the surface of the alloy will raise the cost of manufacture of the retainer.
Summary of the Invention
[0011] It is an object of the present invention to provide a coil retainer for an engine
valve with highly competitive performance at a substantial cost saving.
[0012] It is other object of the present invention to provide an aluminum based alloy with
highly competitive performance without need of additional reinforcing fibers to be
incorporated.
[0013] It is another object of the present invention to provide an aluminum based alloy
with light weight as well as high abrasion durability.
[0014] It is other object of the present invention to provide an aluminum based alloy composition
without need of additional plating step, which comprises only relatively uncostly
ingredients.
[0015] The further object of the present invention will be understood from the below description.
[0016] A more detailed description of the invention is facilitated by reference to the drawings
which form a part of this specification and wherein:
BRIEF DESCRIPTION OF THE DRAWINGS
[0017]
FIG. 1 is a fragmentary elevational view in partial section of a coil retainer and
engine valve and a spring coil mounted on the engine valve
FIG. 2 is a graph showing a relationship between Si content and working limit of pressing
or forging of the aluminum based alloy composition being used as a coil retainer.
Detailed Description of Preferred Embodiments
[0018] The prior art retainer needs a different metal member such as a surface hard layer,
and an additional step of binding such metal member to the retainer, to increase a
manufacturing cost. Further, the weight of the retainer will raise because of the
different metal member.
[0019] In accordance with the present invention, a coil retainer for an engine valve to
be mounted thereon can be manufactured from an aluminum based alloy composition consisting
essentially of
Silicon : 8 to 17 weight percent;
Copper : 2 to 5 weight percent ;
Magnesium : 0.2 to 10 weight percent ;
Manganese : less than 1.5 weight percent ;
balancing aluminium and inevitable amount of impurities,
only by forging the above aluminum based alloy; followed by special heat treatment
to convert it into an alloy material having a dendrite arm spacing value less than
15 micrometer.
[0020] Such aluminum based alloy has not been known. An aluminum base alloy of JIS standard
No. 4032 comprises 11 to 13.5 weight percent of silicon, 0.50 to 1.5 weight percent
of copper, 0.8 to 1.3 weight percent of magnesium, 0 weight percent of manganese.
An aluminum alloy moulding and die casting respectively of JIS standard No. AC 8B
and AC 8C comprise 8.5 to 10.5 weight percent of silicon, 1.0 weight percent of iron,
2.0 to 4.0 weight percent of copper, 0.50 weight percent of manganese, 0.50 to 1.5
weight percent of magnesium, 0.50 weight percent of zinc.
[0021] What is critically important is that the aluminum based alloy for the coil retainer
formed for an engine valve spring coil thereon contain the following ingredients in
the proportion below:
Silicon : 8 to 17 weight percent;
Copper : 2 to 5 weight percent ;
Magnesium : 0.2 to 10 weight percent ;
Manganese : less than 1.5 weight percent ;
balancing aluminium and inevitable amount of impurities.
The dendrite arm spacing value of the aluminum based alloy should be less than 15
micrometer.
[0022] The blank of the retainer having the above aluminum based alloy composition is forged
especially at a cold temperature.
[0023] Therefore, the retainer of the present invention has significant economy, because
of saving cost of starting material (not use of costly metals), and of saving steps
(without need of additional steps).
[0024] The reasons for the limitation of each ingredient in the aluminum based alloy composition
in use for the preparation of the coil retainer are as follows:
[0025] Silicon is added so as to ensure hardness and abrasion resistance of the prepared
retainer at the desired levels.
[0026] The content of silicon ranges from 8 % by weight to 17 % by weight. The hardness
and the abrasion resistance cannot be afforded enough to be used as a coil retainer,
when the content of silicone is less than 8 % by weight. Further, when the content
of silicon exceed 17 % by weight, the workability ( work limit of the material) is
dramatically reduced, and thereby, the strength and fatigue limit are significantly
decreased.
[0027] The content of copper ranges from 2 to 5 % by weight. When the content of copper
is up to 2 % by weight, the strength of the retainer cannot be afforded at the desired
sufficient level. Further, when the content of copper exceeds 5 % by weight, the strength
of the aluminum alloy will drop.
[0028] The content of magnesium ranges from 0.2 to 2.5 % by weight. When the content of
magnesium is higher than 0.2 % by weight, the initiation of Si crystallization is
restrained to improve the strength, but when the content of magnesium exceeds 2.5
% by weight, the workability of the aluminum alloy will be lowered.
[0029] The content of manganese is less than 1.5 % be weight. Within such range, manganese
can be effective to maintain the strength high even at high temperature.
[0030] Preferably, the DAS (dendrite arm spacing) value of the aluminum alloy should be
less than 15 micrometer. When the DAS value exceeds 15 micrometer, the forging workability
will drastically drop until it is difficult to forge into a desired shape.
[0031] The aluminum based alloy is used to forge into the retainer blank, and then, the
blank is exerted to the following specific thermal treatment to impart practical performance
of a retainer for an engine valve.
Thermal treatment.
[0032] The retainer blank as forged is heated at the temperature ranging 450 to 540 °C to
melt partially, and then maintained at the temperature of 150 to 200 °C for one to
six hours for aging.
[0033] Further, the blank is heated to melt partially, thereby homogenizing the structure
of the aluminum alloy. This heating temperature should be 480 to 540 °C. When the
temperature is up to 450°C, the heating to melt partially is not sufficient, and when
the temperature is above 540°C, the blank is excessively heated. The partially melting
means melting partially, especially at the margin or the boundary or the inner surface
of the grains in the aluminium based alloy being used as a blank for the coil retainer.
[0034] The treated blank is further heated at a certain temperature for aging treatment.
The optical condition for this aging is at the temperature of 150 to 200 °C, and for
the period of 1 to 6 hours.
[0035] When the the aging temperature is up to 150 °C, the necessary period will be longer.
When the aging temperature is above 200 °C, the aging will be excessive. Further,
the aging temperature is more preferably 170 to 190 °C.
[0036] The aging period depending on the aging temperature is preferably 1 to 6 hours. When
the aging period is up to 1 hour, the aging is not enough. When the aging period exceeds
6 hours, the aging will be excessive.
[0037] The retainer blank after forged and treated at high temperature and aged is finished
into a desired shape. The retainer is worked by tumbling, and further treated to impart
rust prevention.
[0038] When the DAS value of the aluminum alloy blank is above 15 micrometer, the forging
limit workability will be significantly decreased to lower the forging workability
of the blank. The DAS value of the aluminum alloy is preferably less than 15 micrometer.
[0039] When the content of silicon increases, the ratio of the area of eutectic phase to
the whole area will increase, thereby decreasing a forging workability to reduce the
workability limit.
[0040] The present invention is further illustrated by the following example to show the
coil retainer of the present invention, but should not be interpreted for the limitation
of the invention.
EXAMPLE
Retainer Preparation.
[0041] Retainer blanks formed from the following aluminum based alloy compositions, and
measuring 30 mm in outer diameter were prepared by a cold forging method.
[0042] The prepared retainer blanks were heated at the temperature of 490 °C, and maintained
at the temperature of 180 °C for two hours for aging treatment. The treated retainers
were used in an internal engine for testing, and the results are shown in Table 1.
The specimen nos. 1 to 3 shown in the table use the composition of the present invention,
and the other specimen nos. 4 to 5 are not within the composition specified by the
present invention.
Table 1
| specimen No. |
Composition ( % by weight) |
abrasion of contact face 1* |
abrasion of contact end 2* |
| |
Si |
Cu |
Mg |
Mn |
Al |
|
|
| 1 |
0.17 |
2.3 |
1.5 |
- |
balace |
0.44 mm |
0.02 mm |
| 2 |
0.11 |
1.5 |
2.4 |
0.07 |
balace |
0.34 mm |
0 mm |
| 3 |
7.6 |
2.6 |
0.58 |
0.02 |
balace |
0.03 mm |
0.03 mm |
| 4 |
11.7 |
4.30 |
0.60 |
0.25 |
balace |
0.01 mm |
0.04 mm |
| 5 |
14.8 |
4.16 |
0.57 |
0.01 |
balace |
0.01 mm |
0.03 mm |
| 6 |
17.0 |
4.46 |
0.56 |
0.01 |
balace |
0 mm |
0 mm |
| 1* indicates an abrasion thickness of contact face in the flange of the retainer with
a spring coil after 50 hours operation. |
| 2* indicates an abrasion thickness of contact end of the retainer with a spring coil
after 50 hours operation. |
[0043] The table 1 shows the following:
[0044] The increase of the silicon content will reduce the abrasion, while the other contents
will effect somehow.
[0045] When the silicon content is higher than 8 % by weight, the abrasion will be reduced
to one tenth. Further, the other specific data was measured if necessary for a coil
retainer.
[0046] When the contents of silicone is changed, the workability limit (%) will change as
shown in FIG. 2. The workability limit will keep constant when the silicon content
changes from 8 weight % to 17 weight %, but the work rate limit will decrease drastically
when the silicone content becomes more than 17 weight %.
[0047] A coil retainer can be manufactured in accordance with the present invention, as
follows: An aluminum based alloy bar of the above mentioned composition is cut into
a blank of a coil retainer and the blank is worked together with a lubricating agent
coated at a cold temperature, and treated at high temperature as the above.
[0048] After the blank of the retainer is treated at high temperature to cause partial melting,
the retainer is maintained at high temperature for aging. Then, it is finished by
tumbling, and is treated to have rust preventive control.
[0049] Accordingly, the coil retainer of the present invention, having a specific composition
of aluminum based alloy can reduce a cost of manufacture as well as light weight of
the product.
[0050] Further, the inventive coil retainer does not need any additional metal layer, neither
any plating layer, and improve abrasion durability.
[0051] It is clear from these test results that the coil retainer of the present invention
is quite competitive in terms of wear and abrasion resistance, under the test conditions
described, to the substantially more expensive structure of the prior art.
1. A coil retainer for an engine valve to be mounted thereon,
said retainer prepared by forging of an aluminum-based alloy, followed by a special
heat treatment to convert said forged Al-based alloy into an alloy material having
a dendrite arm spacing value less than 15 micrometer;
the composition of said aluminum-based alloy consisting essentially of
Silicon : 8 to 17 weight percent;
Copper : 2 to 5 weight percent ;
Magnesium : 0.2 to 10 weight percent ;
Manganese : less than 1.5 weight percent ;
balancing aluminum and inevitable amount of impurities.
2. The coil retainer defined in claim 1,
wherein the special heat treatment is heating to melt partially and then treatment
for aging.
3. A coil retainer for an engine valve to be mounted thereon,
said retainer prepared by forging of an aluminum-based alloy, followed by a special
heat treatment to convert said forged Al-based alloy into an alloy material having
a dendrite arm spacing value less than 15 micrometer; and then heating the temperature
of 150 to 200 °C to melt partially and especially at the boundary of the grains in
the alloy, and maintaining that temperature for one to six hours for aging, and further
finish-working;
the composition of said aluminum-based alloy consisting essentially of
Silicon : 8 to 17 weight percent;
Copper : 2 to 5 weight percent ;
Magnesium : 0.2 to 10 weight percent ;
Manganese : less than 1.5 weight percent ;
balancing aluminium and inevitable amount of impurities.
4. A process of manufacturing of a coil retainer for an engine valve to be mounted thereon,
which comprises the steps of
forging of an aluminum-based alloy, followed by a special heat treatment to convert
said forged Al-based alloy into an alloy material having a dendrite arm spacing value
less than 15 micrometer; and then heating the temperature of 150 to 200 °C to melt
partially and especially at the boundaries of the grains in the alloy, and maintaining
that temperature for one to six hours for aging, and further finish-working;
the composition of said aluminum-based alloy consisting essentially of
Silicon : 8 to 17 weight percent;
Copper : 2 to 5 weight percent ;
Magnesium : 0.2 to 10 weight percent ;
Manganese : less than 1.5 weight percent ;
balancing aluminium and inevitable amount of impurities.
1. Ventilfederteller für ein Motorventil, das an demselben zu befestigen ist,
wobei der Federteller hergestellt ist durch Schmieden einer Legierung auf Aluminium-Basis,
gefolgt von einer speziellen Wärmebehandlung, um die geschmiedete Legierung auf Aluminium-Basis
in ein Legierungsmaterial umzuwandeln, das einen Dendritenarm-Abstandswert aufweist,
der kleiner als 15 Mikrometer ist;
wobei die Zusammensetzung der Legierung auf Aluminium-Basis im wesentlichen aus
Silicium: 8 bis 17 Gewichtsprozent;
Kupfer: 2 bis 5 Gewichtsprozent;
Magnesium: 0,2 bis 10 Gewichtsprozent;
Mangan: weniger als 1,5 Gewichtsprozent;
Aluminium, das den Rest ausmacht, und einer unvermeidlichen Menge Verunreinigungen
besteht.
2. Ventilfederteller nach Anspruch 1, bei dem die spezielle Wärmebehandlung aus einem
Erwärmen zum teilweisen Schmelzen und darauf einer Behandlung zur Alterung besteht.
3. Ventilfederteller für ein Motorventil, das an demselben zu befestigen ist,
wobei der Federteller hergestellt ist durch Schmieden einer Legierung auf Aluminium-Basis,
gefolgt von einer speziellen Wärmebehandlung, um die geschmiedete Legierung auf Aluminium-Basis
in ein Legierungsmaterial umzuwandeln, das einen Dendritenarm-Abstandswert aufweist,
der kleiner als 15 Mikrometer ist; und dann Erwärmen bei der Temperatur von 150 bis
200°C, um teilweise und insbesondere an den Grenzen der Körner in der Legierung zu
schmelzen, und Halten dieser Temperatur über eine bis sechs Stunden zur Alterung und
weiter Fertigbearbeiten;
wobei die Zusammensetzung der Legierung auf Aluminium-Basis im wesentlichen aus
Silicium: 8 bis 17 Gewichtsprozent;
Kupfer: 2 bis 5 Gewichtsprozent;
Magnesium: 0,2 bis 10 Gewichtsprozent;
Mangan: weniger als 1,5 Gewichtsprozent;
Aluminium, das den Rest ausmacht, und einer unvermeidlichen Menge Verunreinigungen
besteht.
4. Verfahren zur Herstellung eines Ventilfedertellers für ein Motorventil, das an demselben
zu befestigen ist, welches die Schritte umfaßt
Schmieden einer Legierung auf Aluminium-Basis, gefolgt von einer speziellen Wärmebehandlung,
um die geschmiedete Legierung auf Aluminium-Basis in ein Legierungsmaterial umzuwandeln,
das einen Dendritenarm-Abstandswert aufweist, der kleiner als 15 Mikrometer ist; und
dann Erwärmen bei einer Temperatur von 150 bis 200°C, um teilweise und insbesondere
an den Grenzen der Körner in der Legierung zu schmelzen, und Halten dieser Temperatur
über eine bis sechs Stunden zur Alterung und weiter Fertigbearbeiten;
wobei die Zusammensetzung der Legierung auf Aluminium-Basis im wesentlichen aus
Silicium: 8 bis 17 Gewichtsprozent;
Kupfer: 2 bis 5 Gewichtsprozent;
Magnesium: 0,2 bis 10 Gewichtsprozent;
Mangan: weniger als 1,5 Gewichtsprozent;
Aluminium, das den Rest ausmacht, und einer unvermeidlichen Menge Verunreinigungen
besteht.
1. Organe de retenue de bobine pour une soupape de moteur à monter sur celle-ci, ledit
organe de retenue étant réalisé en forgeant un alliage à base d'aluminium, suivi d'un
traitement thermique spécial pour convertir ledit alliage à base d'aluminium en une
matière ayant une valeur d'écartement de la ramification dendritique inférieure à
15 micromètres:
la composition de l'alliage à base d'aluminium consistant essentiellement en :
silicium : 8 à 17 pour-cent en poids;
cuivre : 2 à 5 pour-cent en poids;
magnésium : 0,2 à 10 pour-cent en poids;
manganèse : moins de 1,5 pour-cent en poids;
le reste étant constitué d'aluminium et d'une quantité inévitable d'impuretés.
2. Organe de retenue défini dans la revendication 1,
dans lequel le traitement thermique spécial consiste à chauffer jusqu'à une fusion
partielle suivi d'un traitement de recuit.
3. Organe de retenue de bobine pour une soupape de moteur à monter sur celle-ci,
ledit organe de retenue étant réalisé en forgeant un alliage à base d'aluminium, suivi
d'un traitement thermique spécial pour convertir ledit alliage à base d'aluminium
en une matière ayant une valeur d'écartement dc la ramification dendritique inférieure
à 15 micromètres; suivi d'un chauffage à une température de 150 à 200°C pour fondre
partiellement, et en particulier aux interfaces des grains de l'alliage, et maintenir
cette température entre une et six heures pour effectuer un recuit suivi d'une finition,
la composition de l'alliage base d'aluminium consistant essentiellament en :
silicium : 8 à 17 pour-cent en poids;
cuivre : 2 à 5 pour-cent en poids;
magnésium : 0,2 à 10 pour-cent en poids;
manganèse : moins de 1,5 pour-cent en poids;
le reste étant constitué d'aluminium et d'une quantité inévitable d'impuretés.
4. Procédé de fabrication d'un organe de retenue de bobine pour une soupape de moteur
à monter sur celle-ci, comportant le étapes consistant à
forger un alliage à base d'aluminium, suivi d'un traitement thermique spécial pour
convertir ledit alliage à base d'aluminium en une matière ayant une valeur d'écartement
de la ramification dendritique inférieure à 15 micromètres; suivi d'un chauffage à
une température de 150 à 200°C pour fondre partiellement, et en particulier aux interfaces
des grains de l'alliage, et maintenir cette température entre une et six hourcs pour
effectuer un recuit suivi d'une finition;
la composition de l'alliage à base d'aluminium consistant essentiellement en :
silicium : 8 à 17 pour-cent en poids:
cuivre : 2 à 5 pour-cent en poids;
magnésium : 0,2 à 10 pour-cent en poids;
manganèse : moins de 1,5 pour-cent en poids;
le reste étant constitué d'aluminium et d'une quantité inévitable d'impuretés.