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EP 0 245 550 B1 |
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EUROPEAN PATENT SPECIFICATION |
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Mention of the grant of the patent: |
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19.12.1990 Bulletin 1990/51 |
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Date of filing: 14.05.1986 |
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Cylinder head for an internal combustion engine
Zylinderkopf für eine Brennkraftmaschine
Culasse pour moteur à combustion interne
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Designated Contracting States: |
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AT BE CH DE FR GB IT LI LU NL SE |
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Date of publication of application: |
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19.11.1987 Bulletin 1987/47 |
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Proprietor: BOTHWELL, Peter William |
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Stratford-upon-Avon,
Warwickshire CV37 7LR (GB) |
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Inventor: |
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- BOTHWELL, Peter William
Stratford-upon-Avon,
Warwickshire CV37 7LR (GB)
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Representative: Lewis, Samuel H. et al |
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Burnbrae
Nenthorn GB-Kelso, Roxburghshire TD5 7RY GB-Kelso, Roxburghshire TD5 7RY (GB) |
| (56) |
References cited: :
EP-A- 0 063 385 FR-A- 2 466 611 GB-A- 2 166 799
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FR-A- 580 537 GB-A- 2 134 977 US-A- 2 710 602
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| Note: Within nine months from the publication of the mention of the grant of the European
patent, any person may give notice to the European Patent Office of opposition to
the European patent
granted. Notice of opposition shall be filed in a written reasoned statement. It shall
not be deemed to
have been filed until the opposition fee has been paid. (Art. 99(1) European Patent
Convention).
|
[0001] From one aspect, the present invention relates to an internal combustion reciprocating
piston engine. The invention also relates to a cylinder head for use in such an engine.
[0002] In my published United Kingdom Patent Application GB 2 134 977A, there is described
an internal combustion reciprocating piston engine comprising a cylinder head defining
a plurality of valve ports which communicate with a combustion chamber defined between
the cylinder head and a piston, a plurality of poppet valves, one for each port, and
an overhead camshaft for operating the valves, wherein stems of the valves are so
arranged that respective centrelines of the valve stems intersect an axis of rotation
of the camshaft and, as viewed in a direction along the camshaft, one valve stem diverges
from an adjacent valve stem in a direction away from the camshaft.
[0003] In EP-A 0 063 385, there is disclosed an engine having five valve ports per cylinder.
These valves are arranged in three rows, with the lengths of the rows being parallel
to one another. The valves associated with the two ports which constitute a first
of these rows are operated by a first camshaft and are parallel to each other. The
two valves associated with the ports of a second row are operated by a second camshaft
and are also parallel to each other. The first camshaft is parallel to the second
camshaft and parallel to the lengths of the rows of ports. The third row comprises
only a single port and the associated valve is operated by the second camshaft. Accordingly,
the valve of the third row is inclined to the valves of the second row, as viewed
in a direction along the camshaft.
[0004] GB-A 2 134 977 and EP-A 0 063 385 show springs for closing the valves and tapets
for transmitting force from the camshaft to each valve to open the valve. In FR-A
580 537, there is disclosed desmodromic valve gear where a valve is attached to a
follower and the follower is reciprocated positively in valve closing and valve opening
directions by a camshaft.
[0005] According to the present invention, there is provided a cylinder head in or for an
internal combustion engine, the cylinder head having a working face which, in use,
is presented towards a combustion chamber and in which head there are formed at least
three valve ports, the cylinder head having guide means for guiding at least three
valves, one for each port, for movement along respective rectilinear paths, wherein
the guide means defines a longitudinal centreline of each path, said centrelines converge
towards a reference axis which is spaced from said working face in a direction which,
in use of the cylinder head, is away from the combustion chamber, and said centrelines
intersect said reference axis substantially at right angles, characterised in that
said centrelines, as viewed in a direction along the reference axis, radiate in at
least three different directions and in that, as viewed in a direction along the reference
axis, the angle of inclination between respective centrelines of first and second
of said paths differs from the angle of inclination between respective centrelines
of the first and a third of the paths.
[0006] There is also provided in accordance with the invention an internal combustion engine
embodying a cylinder head in accordance with the invention, together with a camshaft
mounted in the cylinder head with its axis of rotation coinciding with said reference
axis, a combustion chamber defined between the cylinder head and a piston of the engine
and a respective poppet valve in each of said paths, the poppet valves being mounted
in the cylinder head for operation by the camshaft for opening the valve ports.
[0007] An axis defined by the combustion chamber and extending in the direction of movement
of the piston preferably intersects the axis of rotation of the camshaft.
[0008] The piston may be circular. Alternatively, the piston may be elongated, as viewed
in the direction of its movement. In the latter case, the longest dimension of the
piston is preferably parallel to the camshaft axis.
[0009] Respective centres of heads of the valves may be so positioned that, when all of
the valves are viewed in a direction transverse to the length of the camshaft and
transverse to the length of the valve stems, the centres of the heads of these valves
are spaced apart in the direction of the length of the camshaft.
[0010] The cylinder head of an engine in accordance with the invention may define at least
four valve ports which communicate with the combustion chamber. In this case, there
are four valves arranged for closing respective ones of the ports, respective stems
of first and second of these valves are mutually inclined, as viewed along the camshaft,
at a first angle, respective stems of third and fourth of the valves are mutually
inclined, as viewed along the camshaft, at a second angle and respective angles included
between the first and second valve stems and between the third and fourth valve stems
are bisected by a plane containing a longitudinal axis of the camshaft.
[0011] Examples of engines embodying the present invention will now be described, with reference
to the accompanying drawings, wherein:
FIGURE 1 shows diagrammatically a cross-section through a part of an engine, in a
plane which contains an axis of a cylinder and is perpendicular to an axis of rotation
of a camshaft;
FIGURE 2 shows the underside of a part of a cylinder head of the engine of Figure
1;
FIGURE 3 is a view similar to Figure 2 showing a part of the cylinder head of a further
engine;
FIGURE 4 is a diagrammatic representation of components of an alternative cam follower;
FIGURE 5 illustrates the alternative cam follower in association with a part of a
cylinder head; and
FIGURE 6 shows diagrammatically a cam structure for use with the follower of Figure
5.
[0012] The engine illustrated in Figure 1 is a reciprocating piston, internal combustion
engine which may comprise a single cylinder or a plurality of cylinders, although
only a single cylinder and parts associated therewith are illustrated. The engine
comprises a cylinder block 10 defining a cylindrical bore 11 containing a piston 12
connected with a crankshaft (not shown) in the usual way. On the block 10, there is
mounted a cylinder head 13 defining four valve ports communicating with a combustion
chamber 14 defined between the cylinder head and the piston. The piston presents a
cavity to the combustion chamber. Alternatively, the piston could present a flat face
to the combustion chamber.
[0013] The cylinder head 13 further defines three inlet ducts, one of which is shown at
15, and three exhaust ducts, one of which is shown at 16. There are mounted in the
cylinder head three inlet valves 17, 18 and 19 and three exhaust valves 20, 21 and
22. The inlet valves control respective ports at which the inlet ducts terminate and
the exhaust valves control respective ports at which the exhaust ducts terminate.
All of these ports communicate with the combustion chamber 14.
[0014] For each valve, there is provided in the cylinder head 13 a respective valve guide.
The valve guides for the valves 18 and 21 are shown at 23 and 24 respectively. The
valve guides define respective longitudinal centrelines which coincide with the longitudinal
centrelines of the stems of the valves. These centrelines intersect at respective
positions an axis 25 of a camshaft 26 supported in the cylinder head 13 and arranged
to be driven from the crankshaft in a known manner.
[0015] For the purpose of illustration, the valves 18 and 21 are shown in Figure 1 as having
their respective centrelines lying in the same plane. In fact, these centrelines lie
in respective planes which are spaced apart in a direction along the camshaft axis
25.
[0016] The angle at which the valves, as viewed in a direction along the camshaft axis 25,
converge is within the range 10
° to 30
°, preferably in the region of 15
° to 20
°. Accordingly, the cylinder head has a mild form of "inverse pentroof" presented to
the combustion chamber 14.
[0017] As shown in Figure 2, the head of the valve 18 is somewhat larger than are the heads
of the valves 17, 19, 20 and 22. In the particular example illustrated, the head of
the valve 18 is larger than the head of the valve 21. The head of the valve 18 lies
generally between the heads of the valves 17 and 19. The head of the valve 21 lies
generally between the heads of the valves 20 and 22.
[0018] The heads of the valves 18 and 21 lie on opposite sides of a plane 27 which contains
a central axis 28 of the bore 11 and also contains the camshaft axis 25. The heads
of valves 17 and 20 also lie on opposite sides of the plane 27 but are soemwhat closer
to that plane than are the heads of the valves 18 and 21. Similarly, the heads of
the valves 19 and 22 lie on opposite sides of the plane 27 and are somewhat closer
to that plane than are the heads of the valves 18 and 21. The longitudinal axes of
the stems of valves 17 and 20 are each inclined to the plane 27 at the same angle,
which is a smaller angle than the angle of inclination to the plane 27 of the longitudinal
axis of the -centreline of the stem of each of the valves 18 and 21. The head of valve
17 is somewhat larger than is the head of valve 20, so that the head of valve 17 lies
nearer to the plane 27 than does the head of valve 20. Similarly, the longitudinal
centrelines of the stems of valves 19 and 22 are each inclined to the plane 27 at
the same angle as are the longitudinal centrelines of the stems of valves 17 and 20.
The head of valve 19 is somewhat larger than is the head of valve 22 so that the latter
is spaced further from the plane 27 than is the head of valve 19.
[0019] The heads of all of the valves are spaced from the axis 28 so that there is around
the axis 28 a space in the cylinder head to accommodate a spark plug 29 (not shown
in Figure 1). Thus, the electrodes of the spark plug may be positioned at the centre
of the combustion chamber 14. Alternatively, the spark plug may be spaced from the
centre of the combustion chamber or a plurality of spark plugs may be provided for
the combustion chamber 14. The spark plug may be accommodated in a bore formed in
the cylinder head 13 and lying generally above the exhaust ducts, a bore formed between
adjacent ones of the inlet ducts or a bore terminating between an inlet duct and an
exhaust duct.
[0020] The arrangement illustrated in Figures 1 and 2 may be modified by reducing the number
of valves. For example, two inlet valves and a single exhaust valve may be provided.
The number of inlet and exhaust ducts would be varied accordingly. In a case where
a single exhaust valve is provided, the head of this valve would preferably lie at
one side of the plane 27 whilst the heads of the inlet valves lie at the opposite
side of that plane. The inlet valves would be arranged with longitudinal centrelines
of respective stems inclined to the plane 27 at different angles.
[0021] One only of the six valves shown in Figure 2 may be omitted and the position of the
remining five valves may be adjusted accordingly.
[0022] For operating the valves 17 to 22 of the engine illustrated in Figure 1, there is
provided desmodromic valve gear. For each valve, there is provided a respective follower.
The follower of the valve 21 is indicated in Figure 1 by the reference numeral 30.
The follower has a form approximating to that of an annulus and defines a central
space in which a corresponding part of the camshaft 26 is received. The follower is
guided by the cylinder head 13 for reciprocation along a path parallel to that defined
by the valve guide 24. Such guidance may be provided partly by surfaces 32,33 of the
cylinder head which lie on opposite sides of the camshaft and partly by a bore 34
defined by the cylinder head which lies below the camshaft and receives with sliding
clearance a tappet portion 31 of the follower. If required, further guidance of the
follower may be provided by co-operation between a housing 36 mounted on the cylinder
head and an upward projection 35 on the follower disposed above the camshaft.
[0023] The tappet portion 31 of the follower is coupled with the stem of the valve 21 in
a manner to enable the follower to move the valve downwardly to open the corresponding
valve port and to move the valve upwardly to close the corresponding valve port. The
coupling between the tappet portion and the valve stem may be rigid. Alternatively,
the coupling may provide a small amount of lost motion and incorporate a spring which
is stressed as the follower reaches its uppermost position, so that the force which
holds the valve on its seat is transmitted from the follower to the valve stem via
the spring.
[0024] For co-operation with the follower 30,the camshaft 26 may be provided with three
distinct cam tracks arranged in succession along the camshaft. In this case, the follower
30 would be provided with three internal corresponding follower tracks. The central
one of these cam tracks may co-operate with a corresponding follower track to close
the valve; whilst the cam tracks which are spaced apart by that one cam track may
co-operate with corresponding follower tracks to open the valve. Alternatively, the
pair of cam tracks may be used to close the valve whilst the central cam track is
used to open the valve.
[0025] In a case where the camshaft 26 is provided with three distinct cam tracks for co-operation
with the follower 30, these cam tracks may be presented by separately formed discs
which are mounted adjacent to one another on the camshaft. Similarly, the follower
30 may comprise three separately formed pieces which are assembed together. The tappet
portion 31 may be integral with the remainder of the follower or formed separately
and attached thereto.
[0026] A typical construction of cam follower and cams, which may be used in place of the
follower and cam illustrated in Figure 1, is shown diagrammatically in Figures 4,
5 and 6. The follower comprises a central component 37 having a tappet portion 38
and an upward projection 39. There is formed in the component 37 between the tappet
portion and the projection an opening 40, the boundary surface of which defines a
cam track which controls opening movement of the associated valve. The component 37
is secured between further components 41 and 42 which lie in face-to-face engagement
with the component 37. The components 41 and 42 are formed with respective openings
43 and 44 having the same size and shape. The boundaries of these openings define
cam tracks which control closing movement of the associated valve.
[0027] Each of the components 37, 41 and 42 has a pair of opposite, flat surfaces which
slide on flat surface 45 and 46 defined by the cylinder block, as shown in Figure
5. Whilst the components of the follower are represented in Figure 4 as having generally
square profiles, it will be understood that components having different profiles may
be provided. Nevertheless, each component will generally have opposed flat surfaces
which are co-planar with corresponding surfaces of the other components and which
slide on surfaces of the cylinder head.
[0028] The cam structure for driving the follower of Figures 4 and 5 is shown diagrammatically
in Figure 6. The structure comprises three separate cam elements fixed on a camshaft
47, namely a central element 48 for co-operation with the cam track defined by the
component 37, an outer element 49 for co-operation with the cam track defined by the
component 41 and an outer component 50 for co-operation with the cam track defined
by the component 42. It will be understood that the exact profiles of the cam elements
and of the openings defined by the follower are not shown in Figures 4, 5 and 6.
[0029] As can be seen from Figure 1, the valve gear is compact, is spaced a substantial
distance from the chamber 14 and does not extend far from the plane 27. This enables
almost rectilinear inlet ducts to be provided and enables sharp bends to be avoided
in the exhaust ducts. Furthermore, the valve gear can be readily accessible for inspection
and maintenance.
[0030] It will be understood that alternative formes of desmodromic valve gear may be used
in place of the particular arrangement of cams and followers illustrated in the accommpanying
drawings.
[0031] A modified version of the engine illustrated in Figures 1 and 2 is shown in Figure
3. In this modified version, each combustion chamber is elongated, the longer dimension
being parallel to the axis of the camshaft. The piston has a complementary elongated
shape. There communicate with the combustion chamber through respective ports a number
of ducts which exceeds four and preferably exceeds six. For example, there may be
four inlet ducts and four outlet ducts. Each port is provided with a poppet valve
117-124 and the poppet valves are opeat- ed by a single, overhead camshaft.
[0032] As shown in Figure 3, the valves of the modified engine may be arranged with respective
heads in two rows, each row extending parallel to the camshaft axis. There may be
provided valves having heads of different sizes. Generally, the valve heads will lie
at one or other side of a plane 127 which bisects the combustion chamber and contains
the camshaft axis. Some of the valve heads, for example the valve heads of larger
diameter, may lie nearer to the plane 127 than do other valve heads. The longitudinal
centrelines of the stems of certain of the valves are inclined to the plane 127 at
a first angle, whilst the longitudinal centrelines of stems of further ones of the
valves are inclined to the plane 127 at a different angle. The valves may be driven
by desmodromic valve gear similar to that hereinbefore described with reference to
Figure 1.
[0033] As shown in Figure 3, respective centres of adjacent valve heads are off-set from
one another in a direction along the camshaft axis so that successive cams along the
camshaft operate respective valves lying on opposite sides of the plane 127.
[0034] In both the engine illustrated in Figure 1 and the modified engine illustrated in
Figure 3, respective longitudinal centrelines of all of the valve stems preferably
intersect the camshaft axis at right angles.
1. A cylinder head for an internal combustion engine, the cylinder head having a working
face which, in use, is presented towards a combustion chamber and in which there are
formed at least three valve ports, the cylinder head having guide means (23, 24) for
guiding at least three valves (17, 18, 21), one for each port, for movement along
respective rectilinear paths, wherein the guide means defines a longitudinal centreline
of each path, said centrelines converge towards a reference axis which is spaced from
said working face in a direction which, in use, is away from the combustion chamber,
and said centrelines intersect said reference axis substantially at right angles,
characterised in that said centrelines, as viewed in a direction along the reference
axis, radiate in at least three different directions and in that, as viewed in a direction
along the reference axis, the angle of inclination between respective centrelines
of first and second of said paths differs from the angle of inclination between respective
centrelines of the first and a third of the paths.
2. An internal combustion, reciprocating piston engine having a cylinder head as defined
in Claim 1, a combustion chamber (14) defined between the cylinder head and a piston
(12), a respective poppet valve (17 to 22) in each of said paths mounted in the cylinder
head and an overhead camshaft for operating the valves, the camshaft being mounted
in the cylinder head with an axis of rotation of the camshaft coinciding with said
reference axis.
3. An engine according to Claim 2 having valve gear which comprises a respective tappet
(31) connected with each valve stem and a respective follower (30) for each tappet,
the follower being arranged for co-operation with corresponding cams of the camshaft
and for exerting on the tappet a valve-closing force during one part of each operating
cycle of the engine and a valve-opening force during a further part of the operating
cycle.
4. An engine according to Claim 3 wherein there is in the connection between each
tappet and the associated valve stem a resilient element which is stressed when the
valve is closed.
5. An engine according to any one of Claims 2, 3 and 4 wherein the cylinder head (13)
defines at least four valve ports which communicate with the combustion chamber, wherein
four of said valves are arranged for closing respective ones of said ports, wherein
respective stems of first and second of said four valves (18, 21) are mutually inclined,
as viewed along the camshaft, at a first angle, respective stems of third and fourth
of said four valves (17, 20) are mutually inclined, as viewed along the camshaft,
at a second angle and wherein respective angles included between the first and second
valve stems and between the third and fourth valve stems are bisected by a plane containing
a longitudinal axis is of the camshaft (13).
6. An engine according to any one of Claims 2, 3 and 4 wherein the cylinder head defines
at least six valve ports which communicate with the combustion chamber, the plurality
of poppet valves includes one for each of said ports, said valves have respective
stems with longitudinal centrelines which substantially intersect the axis of rotation
of the camshaft at first to sixth intersection positions respectively and wherein
said intersection positions are spaced apart from each other along the camshaft axis.
7. An engine according to any one of Claims 2, 3 and 4 wherein the cylinder head defines
at least five valve ports which communicate with the combustion chamber and wherein,
as viewed in the direction of its movement, the piston is elongated with its length
substantially parallel to the axis of rotation of the camshaft (26) and wherein respective
stems of the five valves associated with said five valve ports, when viewed in a direction
along the camshaft axis, converge towards the camshaft.
8. An engine according to any one of Claims 2 to 7 wherein there is provided for each
valve a follower comprising a central component (37) and further components (41, 42)
between which the central component is secured, each of said components is hollow,
an internal surface of the central component constitutes a cam track which co-operates
with a portion of the camshaft (26) to control longitudinal movement of the associated
valve in one direction and wherein the internal surface of each of said further components
constitutes a respective cam track which co-operates with a corresponding part of
the camshaft to control movement of the associated valve in an opposite direction,
the internal surfaces of said further components having the same size and shape.
9. An engine according to Claim 8 wherein each of said components has a pair of opposite,
substantially flat, external faces, each of said faces of the central component is
substantially co-planar with corresponding faces of the other components and wherein
said faces slide on surfaces of the cylinder head.
1. Zylinderkopf für eine Brennkraftmaschine mit innerer Verbrennung, wobei der Zylinderkopf
eine Arbeitsseite hat, welche in Betrieb gegen eine Brennkammer gerichtet ist und
in welcher mindestens drei Ventilöffnungen ausgebildet sind, wobei der Zylinderkopf
Führungsmittel (23, 24) aufweist zum Führen mindestens dreier Ventile (17, 18, 21),
eines für jede Öffnung, zur Bewegung entsprechender gradliniger Pfade, wobei die Führungsmittel
eine longitudinale Mittellinie eines jeden Pfades festlegen, wobei die Mittellinien
gegen eine Bezugsachse konvergieren, welche von der Arbeitsseite in einer Richtung
beabstandet ist, die in Betrieb von der Brennkammer wegweist, und die Mittellinien
die Bezugsachsen im wesentlichen rechtwinklig schneiden, dadurch gekennzeichnet, daß
die Mittellinien in einer Richtung entlang der Bezugsachse gesehen sich in wenigstens
drei Richtungen strahlenförmig ausbreiten, und daß in einer Richtung entlang der Bezugsachse
gesehen der Neigungswinkel zwischen den entsprechenden Mittellinien eines ersten und
eines zweiten der genannten Pfade sich von dem Neigungswinkel zwischen den entsprechenden
Mittellinien des ersten und eines dritten der Pfade unterscheidet.
2. Hubkolben-Brennkraftmaschine mit innerer Verbrennung mit einem Zylinderkopf nach
Anspruch 1, einer Brennkammer (14), die zwischen dem Zylinderkopf und einem Kolben
(12) ausgebildet; ist, einem entsprechenden Tellerventil (17-22) in jedem der in dem
Zylinderkopf ausgebildenten Pfade und einer obenliegenden Nockenwelle zum Betreiben
der Ventile, wobei die Nockenwelle in dem Zylindekopf derart angeordnet ist, daß die
Rotationsachse der Nockenwelle mit der Bezugsachse koinzidiert.
3. Maschine nach Anspruch 2, mit einem Ventilsteuergestänge, welches einen entsprechenden
Mitnehmer (31) aufweist, der mit jeder Ventilstange und einem entsprechenden Ventilstößel
(30) für jeden Mitnehmer verbunden ist, wobei der Ventilstößel für ein Zusammenwirken
mit entsprechenden Nocken der Nockenwelle und zunn Ausüben einer Ventilschließkraft
während eines Teiles des Betriebszyklus der Maschine und einer Ventilöffnungskraft
während eines weiteren Teiles des Betriebszyklus auf den Mitnehmer ausgelegt ist.
4. Maschine nach Anspruch 3, wobei in der Verbindung zwischen jedem Mitnehmer und
der zugehörigen Ventilstange ein nachgiebiges Element vorgesehen ist, das unter Spannung
gesetzt wird, wenn das Ventil geschlossen wird.
5. Maschine nach einem der Ansprüche 2, 3 und 4, wobei der Zylinderkopf (13) mindestens
vier der Ventilöffnungen festlegt, welche mit der Brennkammer kommunizieren, wobei
vier der Ventile dazu ausgelegt sind, Entsprechende der Öffnungen zu schließen wobei
entsprechende Stangen eines ersten und eines zweiten der vier Ventile (18, 21) entlang
der Nockenwelle gesehen gegeneinander geneigt sind, und zwar mit einem ersten Winkel
dazwischen entsprechende Stangen eines dritten und eines vierten der vier Ventile
(17, 20) entlang der Nockenwelle gesehen gegeneinander geneigt sind, und zwar mit
einem zweiten Winkel dazwischen, und wobei entsprechende Winkel, welche zwischen der
ersten und der zweiten Ventilstange sowie zwischen der dritten und der vierten Ventilstange
ausgebildet sind, von einer Ebene, welche eine Längsachse der Nockenwelle (13) beinhaltet,
halbiert werden.
6. Maschine nach einem der Ansprüche 2, 3 und 4, wobei der Zylinderkopf mindestens
sechs Ventilöffnungen festlegt, welche mit der Brennkammer kommunizieren, wobei die
Mehrzahl Tellerventile jeweils eines für jede der Öffnungen beinhaltet, wobei die
Ventile entsprechende Stangen mit longitudinalen Mittellinien umfassen, die im wesentlichen
die Rotationsachse der Nockenwelle an ersten bis sechsten Schnittpunkten schneiden
und wobei die Schnittpunkte entlang der Nockenwellenachse voneinander beabstandet
sind.
7. Maschine nach einem der Ansprüche 2, 3 und 4, wobei der Zylinderkopf wenigstens
fünf Ventilöffnungen festlegt, welche mit der Brennkammer kommunizieren, und wobei
in der Richtung seiner Bewegung gesehen der Kolben in seiner Längsausdehnung im wesentlichen
parallel zu der Rotationsachse der Nockenwelle (26) verlängert ist und wobei entsprechende
Stangen der fünf Ventile, welche den fünf Ventilöffnungen zugeordnet sind, in Richtung
entlang der Nockenwellenachse gesehen gegen die Nockenwelle konvergieren.
8. Maschine nach einem der Ansprüche 2 bis 7, wobei für jedes Ventil ein Ventilstößel
vorgesehen ist, welcher eine zentrale Komponente (37) und weitere Komponenten (41,
42) umfaßt, zwischen denen die zentrale Komponente gesichert ist, wobei jede der Komponenten
hohl ist, wobei eine Innenfläche . der zentralen Komponente eine Nockenspur darstellt,
welche mit einem Teil der Nokkenwelle (26) zusammenwirkt um die Längsbewegung des
zugehörigen Ventils in einer Richtung zu überwachen, und wobei die Innenfläche einer
jeden der weiteren Komponenten eine entsprechende Nockenspur darstellt, welche mit
einem entsprechenden Teil der Nockenwelle zusammenwirkt, um die Bewegung des zugehörigen
Ventils in einer entgegengesetzten Richtung zu überwachen, wobei die Innenflächen
der weiteren Komponenten dieselbe Größe und Form haben.
9. Maschine nach Anspruch 8. wobei eine jede der Komponenten ein Paar einander entgegensetzte
im wesentlichen ebene Außenflächen aufweis. wobei jede der Flächen der zentralen Komponente
im wesentlichen koplanar mit den entsprechenden Flächen der anderen Komponenten liegt
und wobei die Flächen auf Flächen des Zylinderkopfes gleiten.
1. Une culasse de cylindre pour un moteur à combustion interne, cette culasse comportant
une face active qui, en service, est dirigée vers une chambre de combustion et dans
laquelle sont formés au moins trois orifices de soupape, la culasse de cylindre comportant
des moyens de guidage (23, 24) pour guider au moins trois soupapes (17, 18, 21), une
pour chaque orifice, pour qu'elles se déplacent selon des trajectoires rectilignes
correspondantes, dans lequel les moyens de guidage définissent une ligne médiane longitudinale
pou chaque trajectoire, lesdites lignes médianes convergeant vers un axe de référence
qui est placé à distance de ladite face active dans une direction qui, en service,
est à distance de la chambre de combustion, et lesdites lignes médianes coupant ledit
axe de référence sensiblement à angle droit, caractérisée en ce que lesdites lignes
médianes, vues dans la direction de l'axe de référence, sont disposées radialement
selon au moins trois directions différentes et en ce que, vues dans la direction de
l'axe de référence, l'angle d'inclinaison entre les lignes médianes correspondantes
des première et seconde desdites trajectoires diffère de l'angle d'inclinaison entre
les lignes médianes correspondantes de la première et d'une troisième de ces trajectoires.
2. Un moteur à combustion interne à piston à déplacement alternatif, comportant une
culasse de cylindre selon la revendication 1, une chambre de combustion (14) définie
entre la culasse du cylindre et un piston (12), une soupape à plateau correspondante
(17 à 22) dans chacune desdites trajectoires, montée dans la culasse de cylindre et
un arbre à cames en tête pour actionner les soupapes, l'arbre à cames étant monté
dans la culasse du cylindre avec son axe de rotation coïncidant avec ledit axe de
référence.
3. Un moteur selon la revendication 2, comportant une commande de soupape qui comprend
un poussoir correspondant (31) relié à chaque tige de soupape et un guide de soupape
correspondant (30) pour chaque poussoir, ce guide de soupape étant agencé pour coopérer
avec des cames correspondantes de l'arbre à cames et pour exercer sur le poussoir
une force de fermeture de la soupape pendant une partie de chaque cycle de fonctionnement
du moteur et une force d'ouverture de la soupape pendant une autre partie du cycle
de fonctionnement.
4. Un moteur selon la revendication 3, dans lequel est prévu, dans la liaison entre
chaque poussoir et la tige de soupape associée, un élément élastique qui est sollicité
lorsque la soupape est fermée.
5. Un moteur selon l'une quelconque des revendications 2, 3 et 4, dans lequel la culasse
de cylindre (13) définit au moins quatre orifices de soupape qui communiquent avec
la chambre de combustion, dans lequel quatre desdites soupapes sont agencées pour
obturer lesdits orifices correspondants, dans lequel les tiges correspondantes des
première et seconde desdites quatre soupapes (18, 21) sont inclinées l'une par rapport
à l'autre, vues le long de l'arbre à cames, d'un premier angle, les tiges correspondantes
des troisième et quatrième desdites quatre soupapes (17, 20) sont inclinées l'une
par rapport à la l'autre, vues le long de l'arbre à cames, d'un second angle et dans
lequel les angles correspondants entre la première et la seconde tiges de soupape
et entre la troisième et la quatrième tiges de soupape sont coupés par un plan contenant
l'axe longitudinal de l'arbre à cames (13).
6. Un moteur selon l'une quelconque des revendications 2, 3 et 4, dans lequel la culasse
de cylindre définit au moins six orifices de soupape qui communiquent avec la chambre
de combustion, la pluralité des soupapes à plateau comprend une soupape pour chacun
desdites orifices, lesdites soupapes comportant des tiges correspondantes dont les
lignes médianes longitudinales coupent sensiblement l'axe de rotation de l'arbre à
cames sur des première à sixième positions d'intersection correspondantes et dans
lequel lesdites positions d'intersection sont placées à distance l'une de l'autre
le long de l'axe de l'arbre à came.
7. Un moteur selon l'une quelconque des revendi- catoins 2, 3 et 4, dans lequel la
culasse de cylindre définit au moins cinq orifices de soupape qui communiquent avec
la chambre de combustion et dans lequel, vu dans la direction de son déplacement,
le piston présente une forme allongée, sensiblement parallèle dans le sens de la longueur
à l'axe de rotation de l'arbre à cames (26) et dans lequel les tiges correspondantes
des cinq soupapes associées auxdits cinq orifices de soupape, vues dans la direction
de l'axe de l'arbre à cames, convergent vers l'arbre à cames.
8. Un moteur selon l'une quelconque des revendications 2 à 7, dans lequel est prévu
pour chaque soupape un guide comprenant un composant central (37) et d'autres composants
(41, 42) entre lesquels est fixé le composant central, chacun desdits composants étant
creux, dans lequel une surface interne du composant central constitue un profil de
came qui coopère avec une partie de l'arbre à cames (26) pour commander le déplacement
longitudinal de la soupape associée dans une direction et dans lequel la surface interne
de chacun desdites autres composants constitue un profil de came correspondant qui
coopère avec une partie correspondante de l'arbre à cames pour commander le déplacement
de la soupape associée dans une direction opposée, les surfaces internes desdites
autres composants présentant la même taille et la même forme.
9. Un moteur selon la revendication 8, dans lequel chacun desdits composants comporte
deux faces externes opposées sensiblement planes, chacune desdites faces du composant
central étant sensiblement coplanaire aux faces correspondantes des autres composants
et dans lequel lesdites faces glissent sur des surfaces de la culasse du cylindre.