Technical field of the invention
[0001] The present invention relates to a valve lifting arrangement for opening an exhaust
valve of a piston engine in accordance with the preamble of claim 1. The invention
also concerns a method for operating an exhaust valve of a piston engine.
Background of the invention
[0002] Nitrogen oxide (NOx) emissions of internal combustion engines are subject to continuously
tightening regulations. In general, NOx emissions can be reduced by reducing temperature
in the combustion chamber. An effective way to reduce NOx emissions of an internal
combustion engine is to use exhaust gas recirculation (EGR), where part of the exhaust
gases are directed back to the cylinders of the engine. Since the heat capacity of
the recirculated exhaust gas is higher than the heat capacity of air, the same amount
of energy released by combustion leads to lower temperature increase in engines with
EGR. Also the lower oxygen mass inside the cylinders and reduction of combustion speed
help to achieve lower temperature increase. An EGR system can be either external or
internal. In an external EGR system exhaust gases are recirculated from the exhaust
duct into the air intake duct. In an internal EGR system part of the exhaust gas is
trapped within the cylinder or back-flow from the exhaust duct into the combustion
chamber is utilized. Typically, the exhaust valves of a cylinder are opened for a
short period of time after closing of the intake valves. Exhaust pressure needs to
be higher than the pressure in the cylinder in order to get exhaust gases to flow
into the cylinder.
[0003] There are different ways for implementing the exhaust valve opening in internal EGR
systems. Japanese patent application
JP 2001065320 discloses a cam that comprises a second lobe that opens the exhaust valve for EGR.
The second lobe is asymmetrical enabling adjustment of the valve lift by moving the
cam in the camshaft direction.
[0004] Patent application
GB 2442813 A discloses a camshaft assembly comprising a fixed cam and a moveable cam lobe. The
movable cam lobe can be used for an extra exhaust valve opening event for internal
EGR. The movable cam lobe can be moved by hydraulic pressure.
Summary of the invention
[0005] An object of the present invention is to provide an improved valve lifting arrangement
for opening an exhaust valve of a piston engine. The characterizing features of the
valve lifting arrangement according to the invention are given in the characterizing
part of claim 1. Another object of the invention is to provide a method for operating
an exhaust valve of a piston engine, as defined in the characterizing part of the
other independent claim.
[0006] The valve lifting arrangement according to the invention comprises a first exhaust
cam, which is arranged to open at least one exhaust valve for allowing outflow of
exhaust gas from a cylinder of the engine during the exhaust stroke, and a second
exhaust cam, which can be arranged to open the exhaust valve for allowing exhaust
gas recirculation during the intake and/or compression stroke.
[0007] In the method according to the invention, the exhaust valve is opened by means of
a first exhaust cam for allowing outflow of exhaust gas from a cylinder of the engine
during the exhaust stroke, and a second exhaust cam is used for opening the exhaust
valve for allowing exhaust gas recirculation during the intake and/or compression
stroke.
[0008] The valve lifting arrangement is thus provided with two separate exhaust cams. The
first exhaust cam is responsible for the normal opening of the exhaust valve, and
the second exhaust cam is responsible for an additional opening, which is used for
the EGR. The normal opening can thus be partly or completely mechanically implemented,
which makes the system reliable. Also the additional opening is accomplished at least
partly mechanically. The opening and closing timing and the valve lift of the exhaust
valve can be controlled by the shapes of the exhaust cams, which makes the control
fast, reliable and accurate. The valve lifting arrangement can also be used for upgrading
engines already in use.
[0009] According to an embodiment of the invention, the second exhaust cam is arranged to
operate a piston device, which piston device is arranged to pressurize hydraulic fluid
that is used for opening the exhaust valve for exhaust gas recirculation. The piston
device can be arranged to protrude into a first hydraulic fluid chamber, which first
hydraulic fluid chamber is in fluid communication with a second hydraulic fluid chamber,
which second hydraulic fluid chamber is provided with a piston, which piston is in
force transmission connection with the exhaust valve. A hydraulic force transmission
from the second exhaust cam allows flexible positioning of the components of the valve
lifting arrangement. It is also possible to easily add additional control functions
to a partly hydraulic system.
[0010] According to an embodiment of the invention, the arrangement comprises an outlet
duct, which outlet duct is connected to the first hydraulic fluid chamber and provided
with a valve. The valve can be a fast acting solenoid valve. The outlet duct can be
connected to a pressure accumulator. The use of a valve allows switching the EGR function
on and off. If hydraulic fluid is conducted from the first hydraulic fluid chamber
into the outlet duct instead of the second hydraulic fluid chamber, the exhaust valve
is not opened for the EGR. If the valve is fast enough, it can also be used for controlling
the opening and closing timing and lift of the exhaust valve when the exhaust valve
is opened for the EGR.
[0011] According to another embodiment of the invention, there is mechanical force transmission
connection between the first exhaust cam and the exhaust valve. This is a reliable
solution, but the force transmission connection can also be partly hydraulic.
[0012] According to another embodiment of the invention, the first exhaust cam and the second
exhaust cam are attached to a common camshaft.
Brief description of the drawings
[0013] Embodiments of the invention are described below in more detail with reference to
the accompanying drawings, in which
Fig. 1 shows schematically a valve lifting arrangement according to an embodiment
of the invention,
Fig. 2 shows the embodiment of figure 1 with a VEC-function, and
Fig. 3 shows a valve lifting arrangement according to another embodiment of the invention.
Description of embodiments of the invention
[0014] In figure 1 is shown a valve lifting arrangement according to an embodiment of the
invention. The valve lifting arrangement is used for opening an exhaust valve 5 of
a piston engine. The exhaust valve 5 opens and closes fluid communication between
an exhaust port and a cylinder 17 of the engine. In the figure only one exhaust valve
5 is shown, but each cylinder 17 of the engine can be provided with more than one
exhaust valves 5, and the valve lifting arrangement can be used for operating all
the exhaust valves 5 of one cylinder 17. The engine is a large internal combustion
engine, such as a main or an auxiliary engine of a ship or an engine that is used
at a power plant for producing electricity. However, the invention could also be applied
to other types of engines.
[0015] The valve lifting arrangement comprises a first exhaust cam 1, which can be of conventional
design. The first exhaust cam 1 comprises a base circle 1 a and a lobe 1 b extending
radially away from the base circle 1 a. The first exhaust cam 1 is attached to a rotating
camshaft. The valve lifting arrangement is further provided with a first cam follower
3. The first cam follower 3 comprises a cam follower wheel 3a, which is engaged with
the cam profile of the first exhaust cam 1. The first cam follower 3 forms part of
force transmission means, which transform the rotating motion of the first exhaust
cam 1 into a linear motion and transmit it to the exhaust valve 5 at least in the
opening direction of the exhaust valve 5. In the embodiment of the figure, the force
transmission means further comprises a rocker arm 6, a push rod 8 and a piston 9.
One end of the rocker arm 6 is arranged to push the exhaust valve 5 in its opening
direction when the rocker arm 6 is turned around its shaft 7. The push rod 8 is arranged
to push the other end of the rocker arm 6 for opening the exhaust valve 5. The piston
9 is arranged between the first cam follower 3 and the push rod 8 and it is thus in
force transmission connection with the exhaust valve 5. When the cam follower wheel
3a is engaged with the lobe 1 b of the first exhaust cam 1, the first cam follower
3 is forced away from the rotating axis of the first exhaust cam 1. The first cam
follower 3 pushes the piston 9, which in its turn moves the push rod 8. The push rod
8 turns the rocker arm 6 around the shaft 7 of the rocker arm 6, and the exhaust valve
5 is opened. When the cam follower wheel 3a returns to the base circle 1 a of the
first exhaust cam 1, the exhaust valve 5 is closed. This is the normal opening and
closing sequence of the exhaust valve 5, i.e. the way in which the valve lifting arrangement
works when the exhaust valve 5 is opened during the exhaust stroke for allowing outflow
of the exhaust gases from the cylinder 17. The valve lifting arrangement can be provided
with one or more springs for facilitating the closing of the exhaust valve 5 and for
keeping the first cam follower 3 engaged with the first exhaust cam 1. Part of the
force transmission means between the first exhaust cam 1 and the exhaust valve 5 could
also be hydraulic. For instance, the rocker arm 6 could be replaced by two hydraulic
pistons.
[0016] For allowing exhaust gas recirculation, i.e. exhaust gas flow from the exhaust port
into the cylinder 17 during the intake stroke and/or compression stroke, the valve
lifting arrangement is provided with a second exhaust cam 2, which is separate from
the first exhaust cam 1. The additional opening of the exhaust valve 5 for the EGR
can begin during the intake stroke, usually after the intake valves have been closed,
and the exhaust valve 5 can be closed at the beginning of the compression stroke.
When the exhaust pressure is higher than the pressure in the cylinder 17, exhaust
gas flows from the exhaust port into the cylinder 17. The second exhaust cam 2 can
be arranged on the same camshaft as the first exhaust cam 1, or a separate camshaft
can be used for rotating the second exhaust cam 2. The first exhaust cam 1 and the
second exhaust cam 2 are arranged in a suitable angular position in relation to each
other for achieving correct timing for the additional exhaust valve opening. The valve
lifting arrangement comprises a second cam follower 4, which is provided with a cam
follower wheel 4a. The cam follower wheel 4a of the second cam follower 4 is engaged
with the cam profile of the second exhaust cam 2. Also the second exhaust cam 2 comprises
a base circle 2a and a lobe 2b extending radially away from the base circle 2a. The
lobe 2b of the second exhaust cam 2 is lower than the lobe 1 b of the first exhaust
cam 1, i.e. the radius of the lobe 2b of the second exhaust cam 2 is smaller. Also,
the length of the lobe 2b of the second exhaust cam 2 is shorter than the length of
the lobe 1 b of the first exhaust cam 1. The lobe 2b of the second exhaust cam 2 thus
extends over a smaller angle than the lobe 1 b of the first exhaust cam 1. When the
cam follower wheel 4a of the second cam follower 4 is engaged with the lobe 2b of
the second exhaust cam 2, the second cam follower 4 is pushed away from the rotation
axis of the second exhaust cam 2.
[0017] The second cam follower 4 is arranged to move a piston device 12, which protrudes
into a first hydraulic fluid chamber 13. The piston device 12 can be used for pressurizing
hydraulic fluid, which is used for opening the exhaust valve 5 for exhaust gas recirculation.
A hydraulic duct 11 connects the first hydraulic fluid chamber 13 to a second hydraulic
fluid chamber 10, which is arranged around the piston 9, which forms part of the force
transmission means between the first exhaust cam 1 and the exhaust valve 5. When hydraulic
fluid is introduced from the first hydraulic fluid chamber 13 into the second hydraulic
fluid chamber 10, the piston 9 is moved. The piston 9 is not fixed to the first cam
follower 3, and the cam follower wheel 3a thus remains in contact with the base circle
1 a of the first exhaust cam 1. The piston 9 moves the push rod 8, which turns the
rocker arm 6 opening the exhaust valve 5. When the cam follower wheel 4a of the second
cam follower 4 returns to the base circle 2a of the second exhaust cam 2, the piston
device 12 retracts from the first hydraulic fluid chamber 13 and hydraulic fluid is
allowed to flow from the second hydraulic fluid chamber 10 back into the first hydraulic
fluid chamber 13. Also the piston 9 can thus move back to its original position and
the exhaust valve 5 is closed.
[0018] The valve lifting arrangement further comprises an outlet duct 18, which is connected
to the first hydraulic fluid chamber 13 and to a pressure accumulator 16. In the embodiment
of the figure, the outlet duct 18 is branched from the hydraulic duct 11. A valve
14 is arranged between the first hydraulic fluid chamber 13 and the pressure accumulator
16 for selectively opening and closing the fluid communication between the first hydraulic
fluid chamber 13 and the pressure accumulator 16. When the valve 14 is closed, no
fluid can flow from the first hydraulic fluid chamber 13 into the pressure accumulator
16. The fluid must thus flow from the first hydraulic fluid chamber 13 into the second
hydraulic fluid chamber 10 when the hydraulic fluid is pressurized by the piston device
12. The exhaust valve 5 is thus opened every time the cam follower wheel 4a of the
second cam follower 4 is engaged with the lobe 2b of the second cam 2. This means
that the EGR function of the valve lifting arrangement is switched on when the valve
14 is closed. When the valve 14 is open, hydraulic fluid can flow from the first hydraulic
fluid chamber 13 into the pressure accumulator 16 and move the piston 15 of the pressure
accumulator 16. When the piston device 12 protrudes into the first hydraulic fluid
chamber 13, the fluid does not flow into the second hydraulic fluid chamber 10, but
it is stored in the pressure accumulator 16. The exhaust valve 5 remains closed even
when the cam follower wheel 4a of the second cam follower 4 is engaged with the lobe
2b of the second exhaust cam 2. The EGR function is thus switched off when the valve
14 is open.
[0019] If the valve 14 is fast enough, it can also be used for adjusting the valve lift
and the duration of the time the exhaust valve 5 remains open during the EGR opening.
If the valve 14 is kept open when the cam follower wheel 4a of the second cam follower
4 enters the lobe 2b of the second exhaust cam 2, the opening of the exhaust valve
5 does not start until the valve 14 is closed. The opening of the exhaust valve 5
during the EGR operation can thus be delayed and also the maximum valve lift becomes
smaller. If the valve 14 is opened when the cam follower wheel 4a of the second cam
follower 4 is still engaged with the lobe 2b of the second exhaust cam 2, part of
the hydraulic fluid flows from the second hydraulic fluid chamber 10 into the pressure
accumulator 16 and the exhaust valve 5 is closed faster.
[0020] Figure 2 shows a valve lifting arrangement that is similar to the arrangement of
figure 1. However, the valve lifting arrangement of figure 2 is provided with an additional
function for variable exhaust valve closing (VEC). The VEC-function allows delaying
or slowing of the closing movement of the exhaust valve 5 during the normal opening
of the exhaust valve 5. The valve lifting arrangement is provided with a second piston
19, which is in force transmission connection with the exhaust valve 5. The second
piston 19 is arranged in the second hydraulic fluid chamber 10 between the first cam
follower 3 and the first piston 9. However, the arrangement could also be provided
with a separate chamber for the second piston 19, and the second piston 19 could be
arranged in a different place in the force transmission path between the first exhaust
cam 1 and the exhaust valve 5. When the exhaust valve 5 opens, Hydraulic fluid can
be introduced behind the second piston 19, i.e. into the space that grows when the
second piston 19 moves in the opening direction of the exhaust valve 5. By limiting
outflow from the space when the cam follower wheel 3a of the first cam follower 3
is on the descending slope of the lobe 1 b of the first cam 1, closing of the exhaust
valve 5 can be delayed or slowed down. For instance a throttle or a valve can be used
for the flow limitation. The second piston 19 is not fixed to the first cam follower
3, and the cam follower wheel 3a can thus follow the cam profile of the first exhaust
cam 1 even when the VEC-function is in use.
[0021] In figure 3 is shown a valve lifting arrangement according to another embodiment
of the invention. In this arrangement, the force transmission between the first exhaust
cam 1 and the exhaust valve 5 is partly hydraulic. The first cam follower 3 is arranged
to operate a third piston 21, which protrudes into a third hydraulic fluid chamber
20. The third hydraulic fluid chamber 20 is via a second hydraulic duct 22 in fluid
communication with the second hydraulic fluid chamber 10. In this embodiment, the
second hydraulic fluid chamber 10 is arranged in connection with the exhaust valve
5. The piston 9, which is used for the additional opening of the exhaust valve 5,
is also used for the normal opening of the exhaust valve 5. The piston 9 is connected
to the exhaust valve 5. When the cam follower wheel 3a of the first cam follower 3
becomes engaged with the lobe 1b of the first exhaust cam 1, the third piston 21 pressurizes
the hydraulic fluid in the third hydraulic fluid chamber 20. The hydraulic fluid is
conducted through the second hydraulic duct 22 to the second hydraulic fluid chamber
10, where the piston 9 is moved and the exhaust valve 5 opens. The exhaust valve 5
can be provided with a spring for closing the valve 5 when the cam follower wheel
3a of the first cam follower 3 returns to the base circle 1 a of the first exhaust
cam 1. The additional opening of the exhaust valve 5 for the EGR works in the same
way as in the embodiment of figures 1 and 2. The hydraulic duct 11 is connected to
the second hydraulic duct 22 for conducting the hydraulic fluid from the first hydraulic
fluid chamber 13 into the second hydraulic fluid chamber 10 or vice versa. The arrangement
is further provided with an inlet duct 23, which comprises a check valve 24. Via the
inlet duct 23, hydraulic fluid can be supplied into the system for compensating leakages.
[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.
1. A valve lifting arrangement for opening an exhaust valve (5) of a piston engine, the
valve lifting arrangement comprising a first exhaust cam (1), which is arranged to
open at least one exhaust valve (5) for allowing outflow of exhaust gas from a cylinder
(17) of the engine during the exhaust stroke, and a second exhaust cam (2), which
can be arranged to open the exhaust valve (5) for allowing exhaust gas recirculation
during the intake and/or compression stroke, the first exhaust cam (1) and the second
exhaust cam (2) being separate exhaust cams, the first exhaust cam (1) being responsible
for the normal opening of the exhaust valve (5) and the second exhaust cam (2) being
responsible for an additional opening of the exhaust valve (5), which is used for
the exhaust gas recirculation, the second exhaust cam (2) being arranged to operate
a piston device (12), which piston device (12) is arranged to protrude into a first
hydraulic fluid chamber (13) for pressurizing hydraulic fluid that is used for opening
the exhaust valve (5) for exhaust gas recirculation, characterized in that the first hydraulic fluid chamber (13) is in fluid communication with a second hydraulic
fluid chamber (10), the second hydraulic fluid chamber (10) is provided with a piston
(9), which piston (9) is in force transmission connection with the exhaust valve (5),
and the arrangement comprises an outlet duct (18), which outlet duct (18) is connected
to the first hydraulic fluid chamber (13) and provided with a fast acting solenoid
valve.
2. An arrangement according to claim 1, characterized in that the outlet duct (18) is connected to a pressure accumulator (16).
3. An arrangement according to claim 1 or 2, characterized in that there is mechanical force transmission connection between the first exhaust cam (1)
and the exhaust valve (5).
4. An arrangement according to any of claims 1-3, characterized in that the force transmission connection between the first exhaust cam (1) and the exhaust
valve (5) is partly hydraulic.
5. An arrangement according to any of the preceding claims, characterized in that the first exhaust cam (1) and the second exhaust cam (2) are attached to a common
camshaft.
1. Ventilhebeanordnung zum Öffnen eines Auslassventils (5) eines Kolbenmotors, wobei
die Ventilhebeanordnung einen ersten Auslassnocken (1), der zum Öffnen mindestens
eines Auslassventils (5) ausgelegt ist, um eine Ausströmung von Abgas aus einem Zylinder
(17) des Motors während des Auslasstaktes zu ermöglichen, und einen zweiten Auslassnocken
(2) umfasst, der ausgelegt sein kann, das Auslassventil (5) zu öffnen, um eine Abgasrückführung
während des Ansaug- und/oder Verdichtungstaktes zu ermöglichen, wobei der erste Auslassnocken
(1) und der zweite Auslassnocken (2) separate Auslassnocken sind, wobei der erste
Auslassnocken (1) für das normale Öffnen des Auslassventils (5) zuständig ist und
der zweite Auslassnocken (2) für ein zusätzliches Öffnen des Auslassventils (5) zuständig
ist, das für die Abgasrückführung verwendet wird, wobei der zweite Auslassnocken (2)
ausgelegt ist, eine Kolbenvorrichtung (12) zu betätigen, wobei die Kolbenvorrichtung
(12) ausgelegt ist, in eine erste Hydraulikfluidkammer (13) hervorzustehen, um Hydraulikfluid,
das zum Öffnen des Auslassventils (5) zur Abgasrückführung verwendet wird, mit Druck
zu beaufschlagen, dadurch gekennzeichnet, dass die erste Hydraulikfluidkammer (13) mit einer zweiten Hydraulikfluidkammer (10) in
Fluidverbindung steht, wobei die zweite Hydraulikfluidkammer (10) mit einem Kolben
(9) versehen ist, wobei der Kolben (9) in Kraftübertragungsverbindung mit dem Auslassventil
(5) steht und die Anordnung eine Auslassleitung (18) umfasst, wobei die Auslassleitung
(18) mit der ersten Hydraulikfluidkammer (13) verbunden ist und mit einem schnell
wirkenden Magnetventil versehen ist.
2. Anordnung nach Anspruch 1, dadurch gekennzeichnet, dass die Auslassleitung (18) mit eine Druckspeicher (16) verbunden ist.
3. Anordnung nach Anspruch 1 oder 2, dadurch gekennzeichnet, dass eine mechanische Kraftübertragungsverbindung zwischen dem Auslassnocken (1) und dem
Auslassventil (5) vorhanden ist.
4. Anordnung nach einem der Ansprüche 1 bis 3, dadurch gekennzeichnet, dass die Kraftübertragungsverbindung zwischen dem ersten Auslassnocken (1) und dem Auslassventil
(5) teilweise hydraulisch ist.
5. Anordnung nach einem der vorhergehenden Ansprüche, dadurch gekennzeichnet, dass der erste Auslassnocken (1) und der zweite Auslassnocken (2) an einer gemeinsamen
Nockenwelle befestigt sind.
1. Ensemble de levage de soupape pour l'ouverture d'une soupape d'échappement (5) d'un
moteur à piston, l'ensemble de levage de soupape comprenant une première came d'échappement
(1) conçue pour ouvrir au moins une soupape d'échappement (5) pour permettre à un
gaz d'échappement de s'écouler hors d'un cylindre (17) du moteur pendant la course
d'échappement, et une deuxième came d'échappement (2) pouvant être conçue pour ouvrir
la soupape d'échappement (5) pour permettre le recyclage du gaz d'échappement pendant
la course d'admission et/ou de compression, la première came d'échappement (1) et
la deuxième came d'échappement (2) étant des cames d'échappement séparées, la première
came d'échappement (1) étant responsable de l'ouverture normale de la soupape d'échappement
(5) et la deuxième came d'échappement (2) étant responsable d'une ouverture supplémentaire
de la soupape d'échappement (5), laquelle est utilisée pour le recyclage du gaz d'échappement,
la deuxième came d'échappement (2) étant conçue pour actionner un dispositif à piston
(12), ledit dispositif à piston (12) étant conçu pour faire saillie dans une première
chambre à fluide hydraulique (13) afin de pressuriser un fluide hydraulique utilisé
pour ouvrir la soupape d'échappement (5) pour le recyclage du gaz d'échappement, caractérisé en ce que la première chambre à fluide hydraulique (13) est en communication fluidique avec
une deuxième chambre à fluide hydraulique (10), la deuxième chambre à fluide hydraulique
(10) étant pourvue d'un piston (9), ledit piston (9) étant en liaison de transmission
de force avec la soupape d'échappement (5), et l'ensemble comprenant un conduit de
sortie (18), ledit conduit de sortie (18) étant relié à la première chambre à fluide
hydraulique (13) et pourvu d'une électrovanne à action rapide.
2. Ensemble selon la revendication 1, caractérisé en ce que le conduit de sortie (18) est relié à un accumulateur de pression (16).
3. Ensemble selon la revendication 1 ou 2, caractérisé en ce qu'il est prévu une liaison de transmission de force mécanique entre la première came
d'échappement (1) et la soupape d'échappement (5).
4. Ensemble selon l'une quelconque des revendications 1-3, caractérisé en ce que la liaison de transmission de force entre la première came d'échappement (1) et la
soupape d'échappement (5) est partiellement hydraulique.
5. Ensemble selon l'une quelconque des revendications précédentes, caractérisé en ce que la première came d'échappement (1) et la deuxième came d'échappement (2) sont fixées
à un arbre à cames commun.