| (19) |
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(11) |
EP 2 941 545 B1 |
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EUROPEAN PATENT SPECIFICATION |
| (45) |
Mention of the grant of the patent: |
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23.11.2016 Bulletin 2016/47 |
| (22) |
Date of filing: 27.12.2013 |
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International Patent Classification (IPC):
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International application number: |
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PCT/FI2013/051204 |
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International publication number: |
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WO 2014/106681 (10.07.2014 Gazette 2014/28) |
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EXHAUST VALVE ARRANGEMENT AND METHOD FOR CONTROLLING CLOSING OF AN EXHAUST VALVE
ABGASVENTILANORDNUNG UND VERFAHREN ZUR STEUERUNG DES SCHLIESSENS EINES ABGASVENTILS
AGENCEMENT DE SOUPAPE D'ÉCHAPPEMENT ET PROCÉDÉ DE COMMANDE DE FERMETURE DE SOUPAPE
D'ÉCHAPPEMENT
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Designated Contracting States: |
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AL AT BE BG CH CY CZ DE DK EE ES FI FR GB GR HR HU IE IS IT LI LT LU LV MC MK MT NL
NO PL PT RO RS SE SI SK SM TR |
| (30) |
Priority: |
03.01.2013 FI 20135003
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| (43) |
Date of publication of application: |
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11.11.2015 Bulletin 2015/46 |
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Proprietor: Wärtsilä Finland Oy |
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65380 Vaasa (FI) |
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Inventors: |
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- SUNDSTEN, Magnus
FI-65610 Korsholm (FI)
- NIINIKANGAS, Saku
FI-65100 Vaasa (FI)
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Representative: Berggren Oy Ab |
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P.O. Box 16
Eteläinen Rautatiekatu 10A 00101 Helsinki 00101 Helsinki (FI) |
| (56) |
References cited: :
EP-A1- 1 477 638 EP-A1- 2 039 892 WO-A1-2008/000899 WO-A1-2011/135162 DE-A1-102010 011 681 GB-A- 2 478 635 US-A1- 2003 221 644
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EP-A1- 2 019 189 WO-A1-2004/005677 WO-A1-2010/125235 DE-A1- 4 134 657 DE-B3- 10 359 087 US-A- 3 678 906
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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).
|
Technical field of the invention
[0001] The present invention relates to an exhaust valve arrangement for a piston engine
in accordance with the preamble of claim 1. The invention also concerns a method for
controlling closing of an exhaust valve of a piston engine, as defined in the preamble
of the other independent claim.
Background of the invention
[0002] Many internal combustion engines are provided with means for variable intake valve
closing (VIC), which allows different intake valve closing timings for optimizing
the performance of the engine. Recently, also arrangements for variable exhaust valve
closing (VEC) have become more common. VEC arrangements are beneficial especially
in engines utilizing two-stage turbocharging. When the charge pressures can be high,
different scavenging is needed at different loads. When the engine is operated at
a high load, long scavenging time is needed for cooling down components of the engine.
The exhaust valves are thus kept open for a long time during the exhaust stroke. On
the other hand, when the engine is operated at a low load, the pressure of the intake
air is lower than the pressure of the exhaust gases. In order to prevent flow from
the exhaust duct into the intake duct, the exhaust valves need to be closed at the
same time or slightly after the intake valves have been opened. Variable exhaust valve
closing timing is useful also in engines comprising means for cooling recirculated
exhaust gases with water injection. When the water injection is in use, overlap of
the intake and exhaust valves is not needed, but if the water injection needs to be
shut down, longer scavenging is needed for allowing operation of the engine at the
full load. VEC arrangements are often implemented by utilizing a chamber that is arranged
between the exhaust valves and the cam operating the exhaust valves. The exhaust valves
are opened in a conventional manner by the cam. During the opening movement of the
exhaust valves, hydraulic fluid is introduced into the chamber. The closing moment
and closing speed of the exhaust valves depends on the outflow from the chamber. For
instance, a closing delay can be provided by preventing the outflow by a valve. A
problem with this kind of solutions is that in case of malfunction of the system,
closing of the exhaust valve can be prevented and the piston may hit the exhaust valve
causing extensive damage.
Summary of the invention
[0003] An object of the present invention is to provide an improved exhaust valve arrangement
for a piston engine, which arrangement allows a delay in the closing of the exhaust
valve, but prevents the pistons of the engine from hitting the exhaust valves. The
characterizing features of the arrangement according to the invention are given in
the characterizing part of claim 1. Another object of the invention is to provide
an improved method for controlling closing of an exhaust valve of a piston engine.
Characterizing features of the method are given in the characterizing part of the
other independent claim.
[0004] The arrangement according to the invention comprises at least one exhaust valve,
a rotatable cam, force transmission means for transforming the rotating motion of
the cam into linear motion and transmitting it to the exhaust valve at least in the
opening direction of the exhaust valve, a fluid chamber, into which fluid chamber
hydraulic fluid can be introduced during the opening movement of the exhaust valve,
a piston that is arranged in the fluid chamber and connected to the force transmission
means or to the exhaust valve, at least one outlet port for discharging the hydraulic
fluid from the fluid chamber for allowing closing of the exhaust valve, and flow control
means for controlling outflow from the fluid chamber and allowing slowing or delaying
of the closing movement of the exhaust valve. The outlet ports and the flow control
means are configured to allow outflow from the fluid chamber at a rate that allows
the closing curve of the exhaust valve to follow the cam curve at least until the
exhaust valve has moved a certain predetermined distance in the closing direction.
[0005] In the method according to the invention, hydraulic fluid is introduced into a fluid
chamber during the cam-controlled opening movement of the exhaust valve, and outflow
from the fluid chamber is controlled for affecting the movement of a piston that is
arranged in the fluid chamber and connected to the exhaust valve or to force transmission
means between a cam and the exhaust valve and for allowing slowing or delaying of
the closing movement of the exhaust valve. Outflow from the fluid chamber is allowed
at a rate that allows the closing curve of the exhaust valve to follow the cam curve
at least until the exhaust valve has moved a certain predetermined distance in the
closing direction.
[0006] The expression "closing curve" means the lift of the exhaust valve as a function
of crank angle. The expression "cam curve" means the movement of a cam follower as
a function of the crank angle. When a delay function is not in use and the lift of
the exhaust valve is determined by the shape of the cam, the closing curve of the
exhaust valve thus corresponds the cam curve. With the arrangement and method according
to the invention, the closing of an exhaust valve can be delayed or slowed down without
the risk of a piston of the engine hitting the exhaust valve. When the closing movement
of the exhaust valve starts, the outflow from the fluid chamber is not restricted.
Only after the valve has moved a certain distance, throttling of the outflow takes
place. The distance is determined so that the valve lift at the moment when the throttling
starts is smaller than the distance between a closed exhaust valve and the piston
of the engine in the respective cylinder at top dead center. The closing curve of
the exhaust valve corresponds thus first the cam curve, but after the throttling starts,
the slope of the closing curve can be less steep than the slope of the cam curve.
[0007] There are many alternative ways to control the outflow from the fluid chamber. For
instance, the piston in the fluid chamber can be arranged to throttle the flow. The
end part of the piston can have smaller diameter than the rest of the piston. When
the exhaust valve is fully open, also the outlet ports of the fluid chamber are fully
open. When the piston has moved the predetermined distance, it covers one or more
outlet ports, and outflow from the fluid chamber is allowed through a small gap that
is formed between the piston and the wall of the fluid chamber.
[0008] Another option is to provide the fluid chamber with two or more outlet ports, which
are at different heights, i.e. at different distances from the end of the fluid chamber.
When the exhaust valve is fully open, also all the outlet ports are fully open. When
the piston has moved the predetermined distance, it blocks at least one of the outlet
ports and the outflow is thus restricted. Some of the outlet ports or outlet ducts
in connection with the outlet ports can be provided with throttles. The throttles
can be adjustable. It is also possible to provide some of the outlet ports or ducts
with a valve, which allows adjustment of the outflow.
Brief description of the drawings
[0009] Embodiments of the invention are described below in more detail with reference to
the accompanying drawings, in which
Fig. 1 shows an exhaust valve opening mechanism with a VEC-function,
Fig. 2 shows an exhaust valve arrangement according to an embodiment of the invention,
Fig. 3 shows a second embodiment of the invention,
Fig. 4 shows a third embodiment of the invention,
Fig. 5 shows a fourth embodiment of the invention,
Fig. 6 shows a fifth embodiment of the invention,
Fig. 7 shows valve lifts when VEC-function is switched off, and
Fig. 8 shows valve lifts when VEC-function is switched on.
Description of embodiments of the invention
[0010] The exhaust valve arrangement according to the invention is especially suitable for
large internal combustion engines, such as main or auxiliary engines of ships or engines
that are used at power plants for producing electricity. The invention is particularly
useful in engines with two-stage turbocharging and in engines where water cooling
of recirculated exhaust gases is used. However, the arrangement can also be used in
other types of engines.
[0011] In figure 1 is shown an example of a valve opening mechanism for an exhaust valve
13. In the case each cylinder of the engine is provided with more than 1 exhaust valve
13, the valve opening mechanism can be used for controlling all the exhaust valves
13 of one cylinder. The exhaust valve 13 is arranged in a cylinder head 18 for opening
and closing fluid communication between a cylinder 16 of the engine and an exhaust
duct 17. A spring 15 is arranged around the stem of the exhaust valve 13 to keep the
exhaust valve 13 closed when it is not actuated. The valve opening mechanism is provided
with a VEC-function for delaying the closing of the exhaust valve 13. The valve opening
mechanism comprises a cam 1, which is part of a camshaft. The cam 1 is provided with
a base circle 1 a and a lobe 1 b extending radially outwards from the base circle
1 a. A cam follower wheel 2a of a cam follower unit 2 is constantly engaged with the
cam 1. The arrangement can be provided with a spring, which presses the cam follower
wheel 2a against the cam 1. The opening of the exhaust valves 13 works in a conventional
manner. When the cam follower wheel 2a becomes engaged with the lobe 1 a of the cam
1, the cam follower unit 2 is pushed away from the rotation axis of the cam 1, i.e.
upwards in figure 1. The cam follower unit 2 forms part of force transmission means
2, 3, 14, 19, which transform the rotating motion of the cam 1 into linear motion
and further transmit the movement to the exhaust valves 13. The force transmission
means further comprise a first push rod 3, a second push rod 19 and a rocker arm 14.
The first push rod 3 is in mechanical contact with the cam follower unit 2 at least
in the opening direction of the exhaust valves 13. The second push rod 19 is connected
to a rocker arm 14. The rocker arm 14 transmits the movement of the second push rod
19 to the exhaust valves 13. Also many other types of force transmission means could
be used. For instance, part of the force transmission path could be hydraulic.
[0012] For slowing down or delaying the closing movement of the exhaust valves 13, the valve
opening mechanism is provided with a fluid chamber 4, into which hydraulic fluid can
be introduced during the opening movement of the exhaust valves 13. The fluid chamber
4 is connected to an inlet duct 5 through an inlet port 5a. Hydraulic fluid can be
introduced into the fluid chamber 4 through the inlet duct 5 and the inlet port 5a.
The arrangement could also be provided with two or more inlet ports 5a and/or ducts
5. The inlet duct 5 is provided with a check valve 6, which allows flow into the fluid
chamber 4 but not out of the chamber 4. Instead of the check valve 6, or in addition
to it, the inlet duct 5 can be provided with a closing valve for selectively allowing
or preventing flow into the fluid chamber 4. The closing valve allows the VEC-function
to be switched on and off. If the closing valve is closed, flow into the fluid chamber
4 is not allowed, and the VEC-function is switched off. The valve opening mechanism
works then in the same way as a conventional cam-controlled exhaust valve opening
mechanism. Figure 7 shows the valve lifts when the VEC is switched off. The hatched
area shows the overlap of the exhaust and the intake valves.
[0013] A piston 7 is arranged in the fluid chamber 4. The piston 7 delimits the fluid chamber
4 and the hydraulic fluid is introduced between the piston 7 and the camshaft end
of the fluid chamber 4. In the embodiment of figure 1, the piston 7 is connected to
the first push rod 3 and the second push rod 19, i.e. the piston is between the first
push rod 3 and the second push rod 19. The first push rod 3 transmits the movement
of the cam follower unit 2 to the piston 7 in the opening direction of the exhaust
valves 13 and the second push rod 19 transmits the movement of the piston 7 to the
rocker arm 14. However, the fluid chamber 4 and the piston 7 could also be located
in many other ways. In principle, the fluid chamber 4 could be arranged inside the
cylinder head 18 and the piston 7 could be connected to the stem of the exhaust valve
13, but this may be impractical. However, the piston 7 can be connected to some other
part of the force transmission means than the first push rod 3 and the second push
rod 19. The piston 7 always moves together with the exhaust valves 13.
[0014] When the cam follower wheel 2a becomes engaged with the lobe 1a of the cam 1, the
piston 7 is moved together with the first push rod 3. If the closing valve is open,
the movement of the piston 7 sucks hydraulic fluid from the inlet duct 5 into the
fluid chamber 4. The first push rod 3 remains engaged with the cam follower unit 2.
When the cam 1 has rotated so that the cam follower wheel 2a is engaged with the tip
of the lobe 1 a, the exhaust valves 13 are fully open. When the cam follower wheel
1 a enters the descending ramp of the lobe 1a, the exhaust valves 13 start closing.
When the closing movement of the exhaust valves 13 starts, the exhaust valves 13 first
follow the cam curve. By limiting the outflow from the fluid chamber 4, the closing
speed of the exhaust valves can be slowed down. In figure 8, the lift of the exhaust
valve 13 is shown with a solid line and the cam curve is shown with a broken line.
The hatched area shows the overlap of the exhaust 13 and the intake valves.
[0015] In figure 2 is shown one arrangement for limiting outflow from the fluid chamber
4 of the valve opening mechanism of figure 1. In the embodiment of figure 2, the fluid
chamber 4 is provided with one outlet port 8 and an outlet duct 9 that is in connection
with the outlet port 8. The outlet port 8 and the outlet duct 9 are dimensioned so
that maximum flow rate through the outlet port 8 is adequate for allowing the piston
7 to follow the cam curve at the beginning of the closing movement of the exhaust
valves 13. When the exhaust valves 13 and the piston 7 have moved a certain predetermined
distance in the closing direction of the exhaust valves 13, the piston 7 starts to
throttle the flow out of the fluid chamber 4. This happens when the camshaft end of
the piston 7 is at the level of the outlet port 8, i.e. in phase 3 of figure 2. The
diameter of the piston 7 at the camshaft end of the piston 7 is slightly smaller than
the diameter of the rest of the piston 7. The piston 7 does thus not block the outlet
port 8 completely, but a small gap is formed between the piston 7 and the wall of
the fluid chamber 4. The hydraulic fluid can flow through this gap to the outlet port
8. However, the flow is throttled so that the piston 7 is not able to follow the cam
follower unit 2. The piston 7 thus works as a flow control means and slows down the
closing speed of the exhaust valves 13 so that a gap is formed between the first push
rod 3 and the cam follower unit 2, as shown in phase 4 of figure 2. As can be seen
in figure 8, the slope of the closing curve of the exhaust valves 13 is less steep
than the cam curve and the closing movement of the exhaust valves 13 continues when
the cam follower wheel 2a has already returned to the base circle 1a of the cam 1.
The duration of the scavenging time is longer than in case the VEC is switched off.
When the piston 7 is close to the camshaft end of the fluid chamber 4, the thicker
part of the piston 7 partly blocks the outlet port 8, as shown in phase 5 of figure
2. The closing speed of the exhaust valves 13 is thus further decreased for allowing
smooth closing. Eventually the fluid chamber 4 is emptied and the first push rod 3
becomes engaged with the cam follower unit 2 again, as can be seen in phase 6 of figure
2. The piston 7 can have more than two different diameters to allow the closing speed
of the exhaust valves 13 to change gradually, or the diameter of the piston 7 can
decrease steplessly.
[0016] In figure 3 is shown another embodiment of the invention. The operating principle
of this embodiment is the same as in the embodiment of figure 1. Also in the arrangement
of figure 3, hydraulic fluid is introduced into a fluid chamber 4 during the opening
movement of the exhaust valves 13 and the piston 7 works as a flow control means.
When the cam follower wheel 2a enters the descending ramp of the lobe 1 a of the cam
1, the exhaust valves 13 can first move freely. The fluid chamber 4 is provided with
a first outlet port 8a, a second outlet port 8b and a third outlet port 8c and with
respective outlet ducts 9a, 9b, 9c. The second outlet duct 9b is provided with a valve
10, which can be used for preventing flow in the second outlet duct 9b. The valve
10 works as an additional flow control means. At the beginning of the closing movement
of the exhaust valves 13, the hydraulic fluid can flow out of the fluid chamber through
all the outlet ports 8a, 8b, 8c. The outlet ports 8a, 8b, 8c and ducts 9a, 9b, 9c
are dimensioned so that the exhaust valves 13 are able to follow the cam curve when
the first and the third outlet ports 8a, 8c are free. This ensures that an adequate
closing speed is achieved even if the valve 10 of the second outlet duct 9b is closed.
When the piston 7 has moved a certain distance, it blocks the first outlet port 8a
and the outflow from the fluid chamber 4 is restricted. When the piston 7 moves even
closer to the camshaft end of the fluid chamber 4, the piston 7 blocks also the second
outlet port 8b, and the hydraulic fluid can flow out of the fluid chamber 4 only through
the third outlet port 8c. This ensures that the exhaust valves 13 are closed smoothly.
The valve 10 in the second outlet duct 9b can be used for preventing flow through
the second outlet port 8b even earlier.
[0017] In the embodiment of figure 4, the arrangement is provided with two outlet ports
8a, 8b and outlet ducts 9a, 9b. At the beginning of the closing movement of the exhaust
valves 13, the hydraulic fluid can flow out of the fluid chamber 4 through both the
first outlet port 8a and duct 8b and the second outlet port 9a and duct 9b. The outlet
ports 8a, 8b and ducts 9a, 9b are dimensioned so that the exhaust valves 13 can follow
the cam curve when both outlet ports 8a, 8b are open. After the piston 7 has moved
a certain distance, it blocks the first outlet port 8a and the outflow is restricted.
The second outlet duct 9b is provided with an adjustable throttle 11, which works
as an additional flow control means. With the throttle 11, different closing curves
can be achieved. The throttle 11 can also be used to restrict the outflow more at
the end of the closing movement of the exhaust valves 13 to ensure smooth closing.
[0018] The embodiment of figure 5 is similar to the embodiment of figure 4. In this embodiment,
the second outlet duct 9b is not provided with a throttle, but the second outlet duct
9b is connected to a second chamber 12, in which the cam follower unit 2 is arranged
to move. When the cam follower wheel 2a is on the lobe 1 b of the cam 1, the cam follower
unit 1 blocks the other end of the second outlet duct 9b. At the beginning of the
closing movement of the exhaust valves 13, the hydraulic fluid can freely flow out
of the fluid chamber 4 through the first outlet port 8a. The first outlet port 8a
and the first outlet duct 9a are dimensioned so that the flow rate through the first
outlet port 8a is adequate to allow the exhaust valves 13 to follow the cam curve.
When the exhaust valves 13 have moved a certain distance in the closing direction
of the valves 13, the piston 7 blocks the first outlet port 8a. Outflow from the fluid
chamber 4 is thus prevented. When the cam follower wheel 2a enters the base circle
1a of the cam 1, fluid flow through the second outlet port 8b into the second chamber
12 is allowed. However, the emptying of the fluid chamber 4 does not happen instantly,
and the closing of the exhaust valves 13 is thus delayed.
[0019] Also figure 6 shows an embodiment, where the arrangement is provided with two outlet
ports 8a, 8b and outlet ducts 9a, 9b. The second outlet duct 9b is provided with a
quick-closing valve 10, which can be operated for example electrically or hydraulically.
The first outlet port 8a and the first outlet duct 9a are dimensioned so that the
flow rate through the first outlet port 8a is adequate for allowing the exhaust valves
13 to follow the cam curve. This ensures that the fluid chamber 4 is emptied quickly
enough even in case the valve 10 of the second outlet duct 9b does not work. At the
beginning of the closing movement of the exhaust valves 13, outflow from the fluid
chamber 4 is allowed both through the first outlet port 8a and the second outlet port
8b. After the piston 7 has moved a certain distance, the piston 7 blocks the first
outlet port 8a and outflow is allowed only though the second outlet port 8b. The valve
11 in the second outlet duct 9b can be used for controlling the flow through the second
outlet port 8b for achieving the desired exhaust valve closing curve. As a safety
arrangement, the fluid chamber 4 can be provided with a third outlet duct, in which
duct flow is prevented when the cam follower wheel 2a is on the base circle 1 a or
the lobe 1 b of the cam 1. For instance, the other end of the third outlet duct can
be blocked by the cam follower unit 2. The profile of the cam 1 is further provided
with a portion that is below the base circle 1 a of the cam 1. When the cam follower
wheel 2a enters the portion below the base circle 1 a, flow through the third outlet
duct is allowed. By this arrangement emptying of the fluid chamber 4 and closing of
the exhaust valves 13 can be ensured even in the case of malfunction of the valve
11 in the second outlet duct 9b.
[0020] In all the described embodiments, the throttling of the outflow takes place only
after the exhaust valves have 13 been closed enough for preventing the piston of the
cylinder 16 from hitting the exhaust valves 13. When the throttling starts, the exhaust
valve lift is thus smaller than the distance between a closed exhaust valve 13 and
the piston at top dead center, as can be seen in figures 7 and 8, which show also
the movement of the piston around top dead center.
[0021] In all the described embodiments of the invention, the predetermined distance, after
which the throttling of the outflow from the fluid chamber 4 can start, is determined
such that contact between the exhaust valve 13 and the piston in the respective cylinder
of the engine is prevented. The lift of the exhaust valve 13 in the corresponding
position is thus smaller than the distance between a closed exhaust valve 13 and the
respective piston of the engine when the piston is at top dead center.
[0022] It will be appreciated by a person skilled in the art that the invention is not limited
to the embodiments described above, but may vary within the scope of the appended
claims. For instance, features from the different embodiments can be combined.
1. An exhaust valve arrangement for a piston engine, which exhaust valve arrangement
comprises at least one exhaust valve (13), a rotatable cam (1), force transmission
means (2, 3, 14, 19) for transforming the rotating motion of the cam (1) into linear
motion and transmitting it to the exhaust valve (13) at least in the opening direction
of the exhaust valve (13), a fluid chamber (4), into which fluid chamber (4) hydraulic
fluid can be introduced during the opening movement of the exhaust valve (13), a piston
(7) that is arranged in the fluid chamber (4) and connected to the force transmission
means (2, 3, 14, 19) or to the exhaust valve (13), at least one outlet port (8, 8a,
8b, 8c) for discharging the hydraulic fluid from the fluid chamber (4) for allowing
closing of the exhaust valve (13), and flow control means (7, 10, 11) for controlling
outflow from the fluid chamber (4) and allowing slowing or delaying of the closing
movement of the exhaust valve (13), which outlet ports (8, 8a, 8b, 8c) and flow control
means (7, 10, 11) are configured to allow outflow from the fluid chamber (4) at a
rate that allows the closing curve of the exhaust valve (13) to follow the cam curve
at least until the exhaust valve (13) has moved a certain predetermined distance in
the closing direction, characterized in that the outflow from the fluid chamber (4) is unthrottled until the exhaust valve (13)
has moved the predetermined distance and after the exhaust valve (13) has moved the
predetermined distance, throttling of the outflow takes place, and that the distance
is determined so that the valve lift at the moment when the throttling starts is smaller
than the distance between closed exhaust valve (13) and the piston (7) of the piston
engine at top dead center.
2. An arrangement according to claim 1, characterized in that the predetermined distance is determined such that in the corresponding position
of the exhaust valve (13) a contact between the exhaust valve (13) and the piston
of the engine in the respective cylinder is prevented.
3. An arrangement according to claim 1 or 2, characterized in that the piston (7) in the fluid chamber (4) is arranged to throttle outflow from the
fluid chamber (4) after the exhaust valve (13) has moved the predetermined distance.
4. An arrangement according to claim 1 or 2, characterized in that the fluid chamber (4) comprises at least two outlet ports (8, 8a, 8b, 8c) and the
piston (7) is arranged to block at least one of the outlet ports (8, 8a, 8b, 8c) after
the exhaust valve (13) has moved the predetermined distance.
5. An arrangement according to claim 4, characterized in that at least one of the outlet ports (8, 8a, 8b, 8c) or an outlet duct (9, 9a, 9b, 9c)
in connection with the outlet port (8, 8a, 8b, 8c) is provided with a throttle (11).
6. An arrangement according to claim 5, characterized in that the throttle (11) is adjustable.
7. An arrangement according to claim 4, characterized in that at least one of the outlet ports (8, 8a, 8b, 8c) or an outlet duct (9, 9a, 9b, 9c)
in connection with the outlet port 8, (8a, 8b, 8c) is provided with a valve (10).
8. A method for controlling closing of an exhaust valve (13) of a piston engine, in which
method hydraulic fluid is introduced into a fluid chamber (4) during the cam-controlled
opening movement of the exhaust valve (13), and outflow from the fluid chamber (4)
is controlled for affecting the movement of a piston (7) that is arranged in the fluid
chamber (4) and connected to the exhaust valve (13) or to force transmission means
(2, 3, 14, 19) between a cam (1) and the exhaust valve (13) and for allowing slowing
or delaying of the closing movement of the exhaust valve (13), in which method outflow
from the fluid chamber (4) is allowed at a rate that allows the closing curve of the
exhaust valve (13) to follow the cam curve at least until the exhaust valve (13) has
moved a certain predetermined distance in the closing direction, characterized in that the outflow is unthrottled until the exhaust valve (13) has moved the predetermined
distance and after the exhaust valve (13) has moved the predetermined distance, throttling
of the outflow takes place, and that the distance is determined so that the valve
lift at the moment when the throttling starts is smaller than the distance between
closed exhaust valve (13) and the piston (7) of the piston engine at top dead center.
9. A method according to claim 8, characterized in that the outflow is restricted by blocking at least one outlet port (8, 8a, 8b, 8c) of
the fluid chamber (4) by the piston (7).
10. A method according to claim 8, characterized in that the outflow is restricted by throttling the flow by the piston (7) after the exhaust
valve (13) has moved the predetermined distance.
11. A method according to claim 8, characterized in that the outflow is restricted by throttling the flow by at least one throttle (11) that
is arranged in connection with an outlet port (8, 8a, 8b, 8c) or an outlet duct (9,
9a, 9b, 9c) of the fluid chamber (4).
12. A method according to claim 8, characterized in that the outflow is restricted by at least one valve (10) that is arranged in connection
with an outlet port (8, 8a, 8b, 8c) or an outlet duct (9, 9a, 9b, 9c).
1. Auslassventilanordnung für einen Kolbenmotor, wobei die Auslassventilanordnung Folgendes
umfasst: mindestens ein Auslassventil (13), einen drehbaren Nocken (1), Kraftübertragungsmittel
(2, 3, 14, 19) zum Umwandeln der Drehbewegung des Nockens (1) in eine lineare Bewegung
und Übertragen auf das Auslassventil (13) mindestens in der Öffnungsrichtung des Auslassventils
(13),
eine Fluidkammer (4), wobei in diese Fluidkammer (4) während der Öffnungsbewegung
des Auslassventils (13) Hydraulikfluid eingeführt werden kann,
einen Kolben (7), der in der Fluidkammer (4) angeordnet und mit den Kraftübertragungsmitteln
(2, 3, 14, 19) oder dem Auslassventil (13) verbunden ist, mindestens eine Auslassöffnung
(8, 8a, 8b, 8c) zum Ablassen der Hydraulikfluids aus der Fluidkammer (4), um das Schließen
des Auslassventils (13) zu ermöglichen,
und Strömungssteuermittel (7, 10, 11) zum Steuern einer Ausströmung aus der Fluidkammer
(4) und Ermöglichen einer Verlangsamung oder Verzögerung der Schließbewegung des Auslassventils
(13), wobei die Auslassöffnungen (8, 8a, 8b, 8c) und die Strömungssteuermittel (7,
10, 11) konfiguriert sind, eine Ausströmung aus der Fluidkammer (4) bei einer Rate
zu ermöglichen, bei der die Schließkurve des Auslassventils (13) der Nockenkurve mindestens
bis zu dem Zeitpunkt folgen kann, bis sich das Auslassventil (13) um einen bestimmten
vorbestimmten Abstand in der Schließrichtung bewegt hat, dadurch gekennzeichnet, dass die Ausströmung aus der Fluidkammer (4) ungedrosselt ist, bis sich das Auslassventil
(13) um den vorbestimmten Abstand bewegt hat, und nachdem sich das Auslassventil (13)
um den vorbestimmten Abstand bewegt hat, eine Drosselung der Ausströmung stattfindet,
und dadurch, dass der Abstand derart bestimmt wird, dass der Ventilhub zu dem Zeitpunkt,
wenn die Drosselung beginnt, geringer ist als der Abstand zwischen dem geschlossenen
Auslassventil (13) und dem Kolben (7) des Kolbenmotors am Totpunktzentrum.
2. Anordnung nach Anspruch 1, dadurch gekennzeichnet, dass der vorbestimmte Abstand derart bestimmt wird, dass in der entsprechenden Position
des Auslassventils (13) ein Kontakt zwischen dem Auslassventil (13) und dem Kolben
des Motors in dem jeweiligen Zylinder verhindert wird.
3. Anordnung nach Anspruch 1 oder 2, dadurch gekennzeichnet, dass der Kolben (7) in der Fluidkammer (4) ausgelegt ist, eine Ausströmung aus der Fluidkammer
(4) zu drosseln, nachdem sich das Auslassventil (13) um den vorbestimmten Abstand
bewegt hat.
4. Anordnung nach Anspruch 1 oder 2, dadurch gekennzeichnet, dass die Fluidkammer (4) mindestens zwei Auslassöffnungen (8, 8a, 8b, 8c) umfasst und
der Kolben (7) ausgelegt ist, mindestens eine der Auslassöffnungen (8, 8a, 8b, 8c)
zu blockieren, nachdem sich das Auslassventil (13) um den vorbestimmten Abstand bewegt
hat.
5. Anordnung nach Anspruch 4, dadurch gekennzeichnet, dass mindestens eine der Auslassöffnungen (8, 8a, 8b, 8c) oder eine Auslassleitung (9,
9a, 9b, 9c) in Verbindung mit der Auslassöffnung (8, 8a, 8b, 8c) mit einer Drossel
(11) versehen ist.
6. Anordnung nach Anspruch 5, dadurch gekennzeichnet, dass die Drossel (11) einstellbar ist.
7. Anordnung nach Anspruch 4, dadurch gekennzeichnet, dass mindestens eine der Auslassöffnungen (8, 8a, 8b, 8c) oder eine Auslassleitung (9,
9a, 9b, 9c) in Verbindung mit der Auslassöffnung (8, 8a, 8b, 8c) mit einem Ventil
(10) versehen ist.
8. Verfahren zum Steuern des Schließens eines Auslassventils (13) eines Kolbenmotors,
wobei in dem Verfahren während der nockengesteuerten Öffnungsbewegung des Auslassventils
(13) Hydraulikfluid in eine Fluidkammer (4) eingeführt wird und eine Ausströmung aus
der Fluidkammer (4) zum Beeinflussen der Bewegung eines Kolbens (7) gesteuert wird,
der in der Fluidkammer (4) angeordnet und mit dem Auslassventil (13) oder Kraftübertragungsmitteln
(2, 3, 14, 19) zwischen einem Nocken (1) und dem Auslassventil (13) zum Ermöglichen
einer Verlangsamung oder Verzögerung der Schließbewegung des Auslassventils (13) verbunden
ist, wobei in dem Verfahren eine Ausströmung aus der Fluidkammer (4) bei einer Rate
ermöglicht wird, bei der die Schließkurve des Auslassventils (13) der Nockenkurve
mindestens bis zu dem Zeitpunkt folgen kann, bis das Auslassventil (13) um einen bestimmten
vorbestimmten Abstand in der Schließrichtung bewegt hat, dadurch gekennzeichnet, dass die Ausströmung ungedrosselt ist, bis sich das Auslassventil (13) um den vorbestimmten
Abstand bewegt hat, und nachdem sich das Auslassventil (13) um den vorbestimmten Abstand
bewegt hat, eine Drosselung der Ausströmung stattfindet, und dass der Abstand derart
bestimmt wird, dass der Ventilhub zu dem Zeitpunkt, wenn die Drosselung beginnt, geringer
ist als der Abstand zwischen dem geschlossenen Auslassventil (13) und dem Kolben (7)
des Kolbenmotors am Totpunktzentrum.
9. Verfahren nach Anspruch 8, dadurch gekennzeichnet, dass die Ausströmung durch Blockieren mindestens einer Auslassöffnung (8, 8a, 8b, 8c)
der Fluidkammer (4) von dem Kolben (7) begrenzt wird.
10. Verfahren nach Anspruch 8, dadurch gekennzeichnet, dass die Ausströmung durch Drosseln der Strömung von dem Kolben (7) begrenzt wird, nachdem
sich das Auslassventil (13) um den vorbestimmten Abstand bewegt hat.
11. Verfahren nach Anspruch 8, dadurch gekennzeichnet, dass die Ausströmung durch Drosseln der Strömung von mindestens einer Drossel (11) begrenzt
wird, die in Verbindung mit einer Auslassöffnung (8, 8a, 8b, 8c) oder einer Auslassleitung
(9, 9a, 9b, 9c) der Fluidkammer (4) angeordnet ist.
12. Verfahren nach Anspruch 8, dadurch gekennzeichnet, dass die Ausströmung von mindestens einem Ventil (10) begrenzt wird, das in Verbindung
mit einer Auslassöffnung (8, 8a, 8b, 8c) oder einer Auslassleitung (9, 9a, 9b, 9c)
angeordnet ist.
1. Ensemble de soupape d'échappement pour un moteur à piston, ledit ensemble de soupape
d'échappement comprenant au moins une soupape d'échappement (13), une came rotative
(1), des moyens de transmission de force (2, 3, 14, 19) destinés à convertir le mouvement
de rotation de la came (1) en un mouvement linéaire et à transmettre celui-ci à la
soupape d'échappement (13) au moins dans la direction d'ouverture de la soupape d'échappement
(13), une chambre à fluide (4), un fluide hydraulique pouvant être introduit dans
ladite chambre à fluide (4) pendant le mouvement d'ouverture de la soupape d'échappement
(13), un piston (7) disposé dans la chambre à fluide (4) et relié aux moyens de transmission
de force (2, 3, 14, 19) ou à la soupape d'échappement (13), au moins un orifice de
sortie (8, 8a, 8b, 8c) destiné à décharger le fluide hydraulique à partir de la chambre
à fluide (4) pour permettre la fermeture de la soupape d'échappement (13), et des
moyens de régulation de flux (7, 10, 11) destinés à réguler le flux sortant de la
chambre à fluide (4) et permettant le ralentissement ou le retardement du mouvement
de fermeture de la soupape d'échappement (13), lesdits orifices de sortie (8, 8a,
8b, 8c) et lesdits moyens de régulation de flux (7, 10, 11) étant configurés pour
permettre l'écoulement hors de la chambre à fluide (4) à une vitesse permettant à
la courbe de fermeture de la soupape d'échappement (13) de suivre la courbe de came
au moins jusqu'à ce que la soupape d'échappement (13) ait parcouru une certaine distance
prédéterminée dans la direction de fermeture, caractérisé en ce que le flux sortant hors de la chambre à fluide (4) s'écoule sans étranglement jusqu'à
ce que la soupape d'échappement (13) ait parcouru la distance prédéterminée, l'étranglement
du flux sortant ayant lieu après que la soupape d'échappement (13) ait parcouru la
distance prédéterminée, et en ce que la distance est déterminée de manière à ce que la levée de soupape au moment où l'étranglement
commence est inférieure à la distance entre la soupape d'échappement (13) fermée et
le piston (7) du moteur à piston au point mort haut.
2. Ensemble selon la revendication 1, caractérisé en ce que la distance prédéterminée est déterminée de manière à empêcher, dans la position
correspondante de la soupape d'échappement (13), un contact entre la soupape d'échappement
(13) et le piston du moteur dans le cylindre respectif.
3. Ensemble selon la revendication 1 ou 2, caractérisé en ce que le piston (7) dans la chambre à fluide (4) est arrangé de manière à étrangler le
flux sortant de la chambre à fluide (4) après le déplacement de la soupape d'échappement
(13) sur la distance prédéterminée.
4. Ensemble selon la revendication 1 ou 2, caractérisé en ce que la chambre à fluide (4) comprend au moins deux orifices de sortie (8, 8a, 8b, 8c)
et le piston (7) est arrangé de manière à bloquer au moins l'un des orifices de sortie
(8, 8a, 8b, 8c) après le déplacement de la soupape d'échappement (13) sur la distance
prédéterminée.
5. Ensemble selon la revendication 4, caractérisé en ce qu'au moins l'un des orifices de sortie (8, 8a, 8b, 8c) ou un conduit de sortie (9, 9a,
9b, 9c) en connexion avec l'orifice de sortie (8, 8a, 8b, 8c) est pourvu d'un étrangleur
(11).
6. Ensemble selon la revendication 5, caractérisé en ce que l'étrangleur (11) est réglable.
7. Ensemble selon la revendication 4, caractérisé en ce qu'au moins l'un des orifices de sortie (8, 8a, 8b, 8c) ou un conduit de sortie (9, 9a,
9b, 9c) en connexion avec l'orifice de sortie (8, 8a, 8b, 8c) est pourvu d'une soupape
(10).
8. Procédé pour la commande de la fermeture d'une soupape d'échappement (13) d'un moteur
à piston, ledit procédé comprenant l'introduction de fluide hydraulique dans une chambre
à fluide (4) pendant le mouvement d'ouverture de la soupape d'échappement (13) commandé
par came, ainsi que la régulation du flux sortant hors de la chambre à fluide (4)
pour influencer le mouvement d'un piston (7) disposé dans la chambre à fluide (4)
et relié à la soupape d'échappement (13) ou à des moyens de transmission de force
(2, 3, 14, 19) entre une came (1) et la soupape d'échappement (13), et pour permettre
le ralentissement ou le retardement du mouvement de fermeture de la soupape d'échappement
(13), ledit procédé permettant au flux sortant de la chambre à fluide (4) de s'écouler
à une vitesse permettant à la courbe de fermeture de la soupape d'échappement (13)
de suivre la courbe de came, au moins jusqu'à ce que la soupape d'échappement (13)
ait parcouru une certaine distance prédéterminée dans la direction de fermeture, caractérisé en ce que le flux sortant s'écoule sans étranglement jusqu'à ce que la soupape d'échappement
(13) ait parcouru la distance prédéterminée, l'étranglement du flux sortant ayant
lieu après que la soupape d'échappement (13) ait parcouru la distance prédéterminée,
et en ce que la distance est déterminée de manière à ce que la levée de soupape au moment où l'étranglement
commence est inférieure à la distance entre la soupape d'échappement (13) fermée et
le piston (7) du moteur à piston au point mort haut.
9. Procédé selon la revendication 8, caractérisé en ce que le flux sortant est restreint en bloquant au moins l'un des orifices de sortie (8,
8a, 8b, 8c) de la chambre à fluide (4) à l' aide du piston (7).
10. Procédé selon la revendication 8, caractérisé en ce que le flux sortant est restreint en étranglant le flux à l'aide du piston (7) une fois
que la soupape d'échappement (13) a parcouru la distance prédéterminée.
11. Procédé selon la revendication 8, caractérisé en ce que le flux sortant est restreint en étranglant le flux à l'aide d'au moins un étrangleur
(11) arrangé en connexion avec un orifice de sortie (8, 8a, 8b, 8c) ou un conduit
de sortie (9, 9a, 9b, 9c) de la chambre à fluide (4) .
12. Procédé selon la revendication 8, caractérisé en ce que le flux sortant est restreint par au moins une soupape (10) arrangée en connexion
avec un orifice de sortie (8, 8a, 8b, 8c) ou un conduit de sortie (9, 9a, 9b, 9c).