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EP 1 299 622 B1 |
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EUROPEAN PATENT SPECIFICATION |
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Mention of the grant of the patent: |
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03.09.2008 Bulletin 2008/36 |
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Date of filing: 10.07.2001 |
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International Patent Classification (IPC):
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International application number: |
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PCT/SE2001/001598 |
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International publication number: |
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WO 2002/004790 (17.01.2002 Gazette 2002/03) |
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PRESSURE PULSE GENERATOR
DRUCKWELLENGENERATOR
GENERATEUR D'IMPULSIONS DE PRESSION
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Designated Contracting States: |
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AT BE CH CY DE DK ES FI FR GB GR IE IT LI LU MC NL PT SE TR |
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Priority: |
10.07.2000 SE 0002597 28.09.2000 SE 0003473
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Date of publication of application: |
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09.04.2003 Bulletin 2003/15 |
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Proprietor: Cargine Engineering AB |
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258 38 Helsingborg (SE) |
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Inventor: |
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- HEDMAN, Mats
S-640 34 Sparreholm (SE)
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Representative: Fröderberg, Anders Oskar |
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BRANN AB
Västgötagatan 2
P.O. Box 17192 104 62 Stockholm 104 62 Stockholm (SE) |
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References cited: :
WO-A1-99/61828 US-A- 2 339 353 US-A- 5 638 781 US-A- 6 044 815
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DE-A- 19 931 129 US-A- 5 058 857 US-A- 6 024 060
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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
[0001] The present invention relates to a pressure pulse generator that comprises a circuit
filled with pressure fluid, and at least one communication channel that is connected
to the circuit and via which the pressure fluid can flow into and out of the circuit,
with a pressure pulse generator element and a method of controlling the pressure pulse
generator, as well as use of the pressure pulse generator for operating a valve in
an internal combustion engine (see
US-A-5058857).
[0002] The invention is applicable to all types of technical areas in which pressure pulses
are to be generated. In particular, it is applicable to applications that poses high
requirements on the speed with which the pulses can be generated and on the duration
period of the individual pulses.
[0003] Internal combustion engines define such a field in which pressure pulses can be used
in order to control and operate the movement of the valves of the combustion engine
instead of operating and controlling the valve movements by means of a conventional
transmission of the piston movement of the engine to the valves via a cam shaft.
[0004] Therefore, the invention will be described by way of example, but not in a delimiting
way, with reference to the application in which it is used for controlling and operating
the valves to the combustion chamber of a combustion engine.
BACKGROUND OF THE INVENTION
[0005] Since many years, the designers of internal combustion engines have seen a need of
being able to vary the valve periods during the operation of the engine, as this would
result in great advantages with respect to, amongst others, fuel economy and emissions.
[0006] Therefore, extensive efforts have been made in order to replace conventional cam
shaft systems for the opening and closing of engine valves by systems that are based
on the use of electromagnetism for controlling and operating the valves of the engine.
The disadvantage of such solution is that the high requirements on the speed by which
the valves can be operated will result in high requirements on the electromagnets
that are used. The mass that each electromagnet has to bring into motion corresponds
to the mass of the valve. The valve must comprise a suitable magnetic material in
order to be displaced by the action of one or more electromagnets, and such materials
contribute to an increase of the mass of conventional valves. This often results in
a evil circle in which an improvement of the valve from a magnetic point of view will
result in a weight increase that, in its turn, results in a need of larger and more
powerful electromagnets. Accordingly, in this way, it will be difficult to achieve
an economically and practically good solution to the problem of obtaining a sufficiently
fast control and operation of the valves of the engine. Moreover, it is well known
that electromagnets will require a certain time for magnetising and demagnetising.
[0007] There are also efforts being made to obtain the requested movements of the engine
valves by means of hydraulics. Today, such systems are tested by, amongst others,
vehicle manufacturers. The pressure fluid, here the hydraulic liquid, is in this case
used in order to effect the engine valve movement. Thereby, it is required that the
pressure pulse generator that is used has an ability to deliver the pressure pulses
that cause the valve movements rapidly and with high precision. The present inventor
does not know any pressure pulse generator according to prior art that has the performance
required to satisfyingly cope with the valve control at the rotations per minute of
the engine that is used today in two-stroke and, in particular, four-stroke combustion
engines. An obstacle to the accomplishing of such a pressure pulse generator may be
the difficulty to achieve sufficiently rapid opening/closing movement of the valve
or valves that is/ are required in such a pressure pulse generator. Here, it should
be mentioned that valves are often replaced by ports in modern two-stroke engine constructions,
but that the present invention results in the possibility of using valve technology
in two-stroke engines in a way corresponding to that of four-stroke engines.
[0008] In this context, it should also be mentioned that the pressure pulse generators that
may come in question should be compact and occupy only a small space in combustion
engine applications.
THE OBJECT OF THE INVENTION
[0009] An object of the present invention is to provide a pressure pulse generator that
is able to deliver pressure pulses of short duration and of variable length with high
time precision and rapidity in order to effect any object. A further object is to
provide a method that makes it possible to deliver pressure pulses with high time
precision and rapidity.
SUMMARY OF THE INVENTION
[0010] The object of the invention is achieved by means of a pressure pulse generator in
accordance with claim 1.
[0011] As the valves of the pair of valves are electrically controlled, the opening and
closing of the valves can be controlled with high precision. The movements of the
valves included in a pair of valves can be co-ordinated in such a way that they occur
somewhat displaced in time, whereby reduced opening/closing times can be obtained.
[0012] The valves of the pressure pulse generator are preferably slide valves arranged to
be displaced cross-wise a channel in the pressure fluid circuit that they are provided
to close or open for passage of the pressure fluid. The valves of the pair of valves
are, preferably, electromagnetically controlled, as such valves have the advantage
of being able to operate both with high speed and precision.
[0013] According to a preferred embodiment the valves of each pair of valves are interconnected
by two separate, parallel channels that lead from a first valve of the pair of valves
to a second valve of the pair of valves, each valve being arranged to execute a closing
or opening of each channel. This construction promotes a further refined control of
the opening and closing of each individual pair of valves in a way that will be described
more in detail later.
[0014] The valves of the pair of valves are arranged to occupy a first position in which
they close a first channel of said channels and open a second one of said channels,
and a second position in which they open the first channel and close the second channel.
In order to make the pair of valves able to close, the first valve of each respective
pair of valves is arranged to move towards and occupy its first position at the same
time as the second valve moves towards and occupies its second position. Preferably,
the channels are branches of a single pressure fluid conduit in the pressure fluid
circuit, said branches being arranged upstream and downstream each individual pair
of valves. However, it should be realised that a large number of alternative embodiments
of the very pressure fluid circuit and the conduit system included therein are within
the scope of the invention.
[0015] According to the invention, the pressure pulse generator comprises means for controlling
the transition of the valves between their first and second positions, said control
means being arranged to mutually displace, in time, the transition between the first
and second position for the valves of the respective pair of valves. By means of a
displacement in time of the activation of the movement of the valves included in a
pair of valves between their respective positions, the time during which it is possible
to keep any one of the two channels that connect the valves open for pressure fluid
passage in connection to the change of the positions of the two valves can be varied.
[0016] Preferably, the control means comprise an electronic device arranged to control the
activation or deactivation of one or more electromagnets for the purpose of affecting
and moving the valves of the pair of valves, i.e. the valve bodies (slides), between
their closing and opening positions, respectively. Preferably, the control means may
be arranged to receive input from, for instance, sensors or the like and adjust the
time displacement based on such input. The means may also comprise a program sequence
in a computer program for controlling and emitting control signals to the valves of
the pressure pulse generator, or, more precisely, to the electromagnets that operate
the movements of the valves.
[0017] According to a preferred embodiment, the pressure pulse generator also comprises
a cylinder unit and a piston that is displaceably arranged in the cylinder unit, said
at least one communication channel being connected to the cylinder unit in such a
way that the pressure fluid in the circuit can flow into and out of the interior of
the cylinder through said communication channel in order to accomplish a displacement
of the piston in the cylinder unit. A piston return means, for example, compression
spring, is preferably provided in order to apply a pressure on the piston in a direction
opposite to the one in which the piston is displaced when a pressure pulse is generated
as a pressure fluid with a higher pressure is permitted to pass the first, upstream
pair of valves. The piston return means is permitted to contribute to a return of
the piston to a start position by letting the second, downstream pair of valves be
opened for pressure fluid passage during a sequence following the flow sequence described
above. The movement of the piston can, in its turn, be used for controlling or operating
any mechanical device.
[0018] According to one embodiment, the piston is connected to a valve of a combustion engine
and the movement of the piston is transmitted to an opening or closing movement of
the valve of the combustion engine. The control means mentioned above thereby preferably
control the activation and deactivation of said electromagnets based on the position
of a crank shaft of the combustion engine.
[0019] The invention also relates to the initially defined method for controlling a pressure
pulse generator, said method being in accordance with claim 12.
[0020] The fact that the valves are arranged in pairs and that the opening and closing of
the individual valves is performed in accordance with a predetermined sequence may
be taken advantage of in order to shorten the time required for the opening and subsequent
closing of a pair of valves for the passage of a pulse of the pressure fluid, as in
comparison to when only individual valves are arranged instead of said pair of valves.
Preferably, the pair of valves comprise two active valves or valve bodies that are
moved in opposite directions in order to simultaneously, during a short moment, permit
passage of a pressure fluid through one or more parallel channels that form the portion
of the pressure fluid circuit conduit where the valves are arranged.
[0021] The valves of the first pair of valves are controlled, during a first period, to
open for a flow of the pressure fluid in a direction out of the circuit through the
communication channel, while at least one of the valves of the second pair of valves
is kept closed in order to prevent fluid from passing the second pair of valves. During
a second period, the valves of the second pair of valves are opened for permitting
a flow of the pressure fluid back to the circuit via the communication channel and
to pass at least one of these valves, while at the same time at least one of the valves
of the first pair of valves is kept closed in order to prevent fluid from passing
the first pair of valves. In that way, a pressure pulse is permitted to affect any
object or any mechanical device to perform a back and forth movement.
[0022] The valves of each pair of valves are connected by two separate, parallel channels
that lead from a first valve of the pair of valves to the second valve of the pair
of valves, and a first one of the pair of valves is opened for passage of fluid through
a first one of these channels and closed for passage of fluid in the second channel
while, at the same time, the second valve is opened for fluid passage in the second
channel but is kept closed for preventing passage of fluid in the first channel. The
change of the positions of the two valves is preferably controlled in such a way that
the valves, simultaneously during a short period, hold one of the two channels open
for passage of the pressure fluid. As the valves, preferably electromagnetically controlled
slide valves, thereby move in opposite directions, said period can be made very short.
[0023] During the change of the position of the respective valves of the pair of valves,
the moment at which an electrical signal is given for activation of a first electromagnet,
that operates a displacement of the first one of the valves, is controlled in relation
to the moment at which a second electrical signal is emitted for activation of a second
electromagnet that operates a displacement of the second valve, based on the requested
length of time of the pressure fluid pulse that is thereby generated via the open
channel.
[0024] Further features and advantages of the invention will be seen in the following detailed
description and in the enclosed patent claims.
BRIEF DESCRIPTION OF THE DRAWINGS
[0025] Hereinafter, the invention will be described by way of example with reference to
the annexed drawings, on which
Fig. 1 is a schematic view of a first embodiment of the pressure pulse generator according
to the invention;
Fig. 2 is an enlarged cross-section of a pressure pulse generator element of the pressure
pulse generator in Fig. 1, in a first position;
Fig. 3 is an enlarged cross-section of the pressure pulse generator element according
to Fig. 2, in a second position;
Fig. 4 is a schematic cross-section of a further development of the embodiment according
to Fig. 1;
Fig. 5 is a schematic cross-section of another embodiment of the invention, in a first
operative position; and
Fig. 6 shows the embodiment according to Fig. 5 in a second operative position.
DETAILED DESCRIPTION OF THE INVENTION
[0026] Fig. 1 is a schematic cross-section which shows a pressure pulse generator according
to the invention, the pressure pulse generator being connected to a valve 1 in a combustion
engine. One of the cylinders of the engine is slightly suggested in the Figure and
has been given the reference numeral 2. The valve 1 may be an intake or exhaust valve.
The valve body itself, which is provided to be bearing on a valve seat (not shown)
when in its closed position, is connected via a shaft 3 to a piston 4 that is arranged
in a second cylinder 5, which, preferably, is arranged outside and adjacent the cylinder
2.
[0027] The pressure pulse generator comprises a first and a second pressure pulse generator
element 6, 7. Each such element 6, 7 comprises a first and a second valve 8, 9 and
10, 11, respectively, and is arranged in a pressure fluid circuit 12. The pressure
fluid circuit is constituted by one or more conduits for conducting and transporting
a pressure fluid therein.
[0028] Preferably, the pressure fluid circuit 12 is generally closed, and a pressure generating
member 14 is arranged to generate a pressure of a pressure fluid accommodated in the
circuit. The pressure generating member 14 may be a compressor or any other type of
pump member suitable for this objective. In the circuit, the pressure fluid is flowing
from the high pressure side of the pressure generating member, where pressure P1 exists,
to the low pressure side thereof, where pressure P2 exists, and P1>P2. P2 may be atmospheric
pressure, and the circuit may, if requested, be open downstream the second pressure
pulse generating element 7. The invention also includes the possibility of keeping
the circuit 12 open or closed depending on outer factors such as the rpm or load of
the combustion engine.
[0029] Preferably, the pressure fluid is a gas or a gas mixture. In the disclosed, preferred
embodiment, the pressure fluid is at least to a major part comprised by air. The pressure
pulse generator thereby defines a pneumatic pressure pulse generator.
[0030] Via a communication channel 15, the circuit 12 is connected to a chamber 13 inside
the cylinder 5, said chamber being provided on the opposite side of the piston 4 in
relation to the shaft 3. The pressure pulse from the circuit that results in pressure
fluid being delivered to the chamber 13 will result in a displacement of the piston
4 and, accordingly of the valve 1. Such a pulse is created when the positions of the
valves 8, 9 of the first pressure pulse generator element 6 are changed, as will be
described more in detail later.
[0031] With reference to Figs. 1 to 3, the principle of generating a pressure pulse by means
of a pressure pulse generating element 6, 7 according to the invention will now be
described. The principle for generating a positive pulse by the opening of the first
element 6 is also relevant for the opposite case, that is, that a negative pulse will
be generated by means of opening the second element 7.
[0032] Each pressure pulse generator element 6, 7 comprises a first and a second channel
16, 17, said channels being arranged in parallel and formed by a local branching of
the main conduit of the circuit 12 at the site of the pressure pulse generating element.
Each pair of valves is arranged at the region of the parallel channels 16, 17, and
each individual valve is arranged to permit the passage of pressure fluid through
one of the channels while at the same time preventing passage through the other one
of said channels. The valves or valve bodies 8-11 comprise a magnetic material and
are controlled by means of electromagnets that are suggested in Fig. 1 and have been
given reference numerals 18-21. The valve bodies are displaceably arranged in a direction
cross-wise to the channels 1. In this embodiment, they are designed as discs that
comprise at least one hole 22 that, in a first position of the valve is positioned
in front of and opens for pressure fluid passage in a first channel of said channels
16, 17, and, in a second position, closes for preventing flow through the first channel
16 but being positioned in front of and opening for passage of a pressure fluid in
the second of said channels 16, 17.
[0033] The valves are bistable, which means that they will rest in the first or second position
if there is no activation of any of the electromagnets 18-21. One valve or valve body
8-11 of a pair of valves 6, 7 is arranged to move towards and occupy the first position
while the other valve moves towards and occupies a second position. A pressure pulse
is generated as the positions of the two valves 8, 9 and 10, 11 respectively are changed
such that, during a short moment, a passage of fluid is permitted through one of the
channels 16, 17. By means of a time displacement of the movement of the valve bodies
in connection to such a change, it is possible to let the valve bodies keep any one
of the channels 16, 17 open for a shorter or longer period of time. In that way, the
duration of the pressure pulse can be controlled to be longer than if no simultaneous
opening of any one of the channels is performed during the change. The amount of pressure
fluid delivered is, apart from the amount due to any simultaneous opening of any channel,
also depending on the volume in each channel between the valve bodies. The invention
includes a time displacement of the initiation of the movements of the valve bodies
8-11 in order to control the pulse length. In the case when the pressure pulse generator
is connected to and controls the movement of one or more valves in a combustion engine,
the time displacement is based on any suitable operation parameter of the engine,
such as the rotational speed of the engine. Preferably, the volume of the channels
is minimised to enable a pressure fluid consumption as low as possible.
[0034] The pulse lengths can also be varied by means of the inventive pressure pulse generator
through a mutual displacement of the moment at which the two valves 8-11 of a pair
of valves are activated. The activation is performed by emitting a signal that initiates
the magnetising of one of the electromagnets 18-21, thereby accomplishing a displacement
of the valve body 8-11. The signal can be emitted from any control means, and, in
this case, it is based on the position of a crank case belonging to the combustion
engine.
[0035] A means 23 for returning the piston 4 to its upper position or start position is
provided in accordance with the invention. The displacement of the piston 4 requires
that the pressure of the pulse of fluid generated through the change of positions
of the valve bodies 8, 9 of the first pressure generating element 6 is sufficient
in order to make the force that is applied by the pressure fluid on the side of the
piston 4 that is directed towards the chamber 13 exceed the force applied by the piston
return means 23 on the piston 4 in an opposite direction. The piston return means
23 is, in Fig. 1, a compression spring but may comprise a gas accommodated in the
chamber 24 in the cylinder 5 arranged on the opposite side of the piston 4 with regard
to the chamber 13. Preferably, the cylinder 5 should, in such a case, be connected
to a gas container or the like in order to enable a variable pressurising of the gas
contained in the cylinder 5.
[0036] Another possible solution, schematically shown in Fig. 4, includes a second pressure
pulse generator, generally represented by the reference numeral 25 and corresponding
to the first pressure pulse generator that has been described above, and connected
to the chamber 24 and provided to generate pressure pulses for returning the piston
in connection to the release of the pressure fluid from the first chamber 13 through
activation or an opening of the second pair of pressure valves 10, 11. In a corresponding
way, by means of change of position of the valve bodies, as described above, a downstream
pair of valves of this second pressure pulse generator is opened for the purpose of
releasing the pressure fluid from the chamber 24 while the first pressure pulse generator
element 6 is activated for letting in a flow of pressure fluid into the first chamber
13.
[0037] A further embodiment of the invention is shown in Figs. 5 and 6. This embodiment
is a simplification of the embodiment described earlier in the respect that the valve
bodies or discs 8, 9 of each pair of valves 6, 7 are interconnected with one single
channel 26. The valve bodies 8, 9 are arranged to operate principally in the same
way as has been described in the first embodiment, that is, to occupy opposite, closed
and opened positions with respect to passage of fluid through the channel 26. This
more simple embodiment results in a dissymmetry in pulse lengths. If control signals
for position change of the slide valves 8 and 9 are delivered with the same frequency,
a dissymmetry that decreases with a decreased distance between the valve bodies 8,
9 is obtained. The resulting difference may be largely compensated by means of measures
taken in the program software responsible for the frequency control.
[0038] It should be realised that the embodiments described above have been given by way
of example and that a plurality of alternative embodiments will be obvious for men
skilled in the art without thereby leaving the scope of the invention, as the latter
is defined in the enclosed patent claims supported by the description and the drawings.
[0039] For example, the invention includes that the electromagnetic operation of the valve
bodies 8-11 can be supplemented with any further operation. For example, a pilot valve
may be arranged in order to control a pressure fluid, such as air, to contribute to
the operation/position change of the valve bodies between the stabile first and second
positions, and also in order to keep the valve bodies in these positions. The pilot
valve is then preferably operatively connected to the same control means as those
that control the electromagnets 18-21 of the pressure pulse generator.
[0040] The invention also comprises the possibility of controlling the size of the pressure
pulse to control the length of displacement of the valve of a combustion engine based
on any operative parameter of the engine, preferably the load of the engine.
[0041] The invention comprises and also enables transition between two-stroke operation
and four-stroke operation of an internal combustion engine during operation thereof
through a control of the valve movements by means of the inventive pressure pulse
generator and/or one or more of the inventive pressure pulse generator elements.
[0042] It should also be realised that the pressure return means 23 may be arranged on any
side of the piston 4, and that the magnet members 18-21 that are used may be of different
designs and that the number thereof and the position thereof can differ from what
has been shown above without thereby going beyond the invention.
[0043] Further, it should be mentioned that the number of electromagnets, suggested as 18,
19, 20 and 21 in the Figures, could be reduced by 50% but that the symmetry and stability
of the function of the pressure pulse generator elements 6, 7 thereby will be decreased.
Thereby, the pressure pulse generator elements would however be less expensive to
manufacture.
[0044] The 50% reduction can be achieved by associating each valve body 8, 9 to one electromagnet
in order to be activated as a result of an electric signal. The other electromagnet
can be replaced by a return spring, for example made of metal or designed as a gas
spring. The slide valve is still bistable, as it occupies one of two possible positions
in order to enable the generation of pressure pulse when the valve bodies 8, 9 are
connected in series as suggested by the invention. When an electric signal is delivered,
the electromagnet of the respective valve body 8, 9 is activated and a change of position
is initiated. During the change of position energy is stored in the return spring.
The electrical signal, an electric voltage, is applied until a full change of position
has taken place and ever on until the slide valve is to be returned to its first position.
When the electric signal stops, the energy in the return spring is released and a
change of position takes place.
[0045] The lack of symmetry and stability is due to the electromagnet and the return spring
not being able to or only with large difficulty being able to behave similar to each
other during the change of position. Accordingly, there will be a different time for
change of position for the two position changes. This difference may however be compensated
for by means of measures taken in the software that controls and plans the time for
application and removal respectively of the electrical signals to the electromagnets.
By means of more accurate software, the differences can be compensated for to such
a degree that they are of no importance, also when the requirements are very high,
as for example in connection with control of the valve of an international combustion
engine according to the embodiments of the present patent application.
[0046] Finally, it should be mentioned that the pressure pulse generator and the pressure
pulse generator element according to the invention preferably can be used in a fuel
injection system, more precisely direct injection systems, and for direct injection
of any other fuel, for example water or steam, in engines and other devices. The pressure
fluid may, accordingly, be a liquid, such as hydraulic oil or water, as well as air
or a gas, depending on the application field.
[0047] It should be emphasised that the valves in the two pairs of valves, upstream as well
as downstream the communication channel, are active valves, that is, magnetically
activatable valves, and should not be confused with passive valves such as one-way
valves.
1. A pressure pulse generator comprising a pressure fluid circuit (12 with a high pressure
side and a low pressure side, and a pressure pulse generator element (6, 7) arranged
in said pressure fluid circuit (12), said element comprising a pair of electrically
controlled valves (8,9,10,11) that comprises a first valve (8,10) and a second valve
(9,11), the first valve (8,10) and the second valve (9,11) being connected by means
of one single channel (26) or two parallel channels (16,17) that lead from the first
valve (8,10) to the second valve (9,11) of said pair of valves, and that each valve
(8,9,10,11) is arranged to execute a closing and opening of said channel (26) or each
channel of said pair of channels (16,17), the first and second valves (8,9,10,11)
are arranged so as to occupy opposite closed and open positions respectively with
regard to said single channel (26) or each of said pair of channels (16,17), and to
generate a pressure pulse in said pressure fluid circuit (12) through a change of
position of said valves between said open and closed positions, characterised in that the pressure pulse generator comprises an electronic device arranged to control the
activation or deactivation of one or more electromagnets for the purpose of affecting
and moving the valves (8,9,10,11) of the pair of valves between their closing and
opening positions, respectively so that the moment at which an electrical signal is
given for activation of a first electromagnet, that operates a displacement of the
first one (8,10) of the valves (8,9,10,11), is controlled in relation to the moment
at which a second electrical signal is emitted for activation of a second electromagnet
that operates a displacement of the second valve (9, 11), based on the requested length
of time of the pressure fluid pulse that is thereby generated via the open channel
(26; 16,17).
2. A pressure pulse generator according to claim 1, characterised in that said valves (8,9,10,11) are electromagnetically controlled slide valves.
3. A pressure pulse generator according to any one of claims 1-2, comprising
- at least one communication channel (15) that is connected to the pressure fluid
circuit (12) and through which the pressure fluid can flow into and out of the circuit
(12), characterised in that it comprises
- a first pressure pulse generator element (6) and a second pressure pulse generator
element (7), that are connected in series, and
- that the first pressure pulse generator element (6) is arranged in said circuit
(12) upstream the at least one communication channel (15), and
- that the second pressure pulse generator element (7) is arranged in said circuit
(12) downstream the at least one communication channel (15).
4. A pressure pulse generator according to any one of claims 1-3, characterised in that each of the valves (8,9,10,11) is bistable.
5. A pressure pulse generator according to claim 4, characterised in that said electronic device is arranged for controlling the transition of the valves (8,9,10,11)
between their first and second positions and to displace the moment of transition
between the first and second positions for the valves (8,9,10,11) of the respective
pair of valves.
6. A pressure pulse generator according to any one of claims 1-5,
characterised in that it comprises
- a cylinder unit (5) and
- a piston (4) that is displaceably arranged in the cylinder unit (5), said at least
one communication channel (15) being connected with the cylinder unit (5) in such
a way that the pressure fluid in the circuit (12) can flow into and out of the interior
of the cylinder unit (5) through said communication channel (15) in order to accomplish
a displacement of the piston (4) in the cylinder unit (5).
7. A pressure pulse generator according to claim 6, characterised in that the piston (4) is connected to a valve (1) of a combustion engine, and that the movement
of the piston (4) is transmitted to an opening or closing movement of the valve (1)
of the combustion engine.
8. A pressure pulse generator according to claim 7 and claim 8, characterised in that the electronic device controls the activation and inactivation of said electromagnets
(18-21) based on the position of a crank shaft of the combustion engine.
9. A pressure pulse generator according to any one of claims 1-8, characterised in that the pressure fluid in said circuit (12) comprises a gas or a gas mixture.
10. A pressure pulse generator according to any one of claims 1-9, characterised in that the pressure fluid in said circuit (12) comprises air.
11. A pressure pulse generator according to any one of claims 1-10, characterised in that said circuit (12) is a generally closed circuit.
12. A method for controlling a pressure pulse generator according to claim 1, comprising
- a circuit (12) filled with a pressure fluid, and
- at least one communication channel (15) that is connected to the circuit (12) and
via which the pressure fluid can flow into and out of the circuit (12),
characterised in that comprises
- controlling, by means of electrical signals, the valves of a first and a second
pressure pulse generator element (6, 7) that are connected in series, according to
a certain sequence,
- the fist pressure pulse generator element (6) being arranged in said circuit (12)
upstream the at least one communication channel (15), and
- the second pulse generator element (7) being arranged in said circuit (12) downstream
the at least one communication channel (15).
13. A method according to claim 12, characterised in that, during a first period, the valves (8,9) of the pressure pulse generator element
(6) are controlled to open for a flow of pressure fluid out of the circuit (12) via
the communication channel (15), while, at the same time, at least one valve of the
second pressure pulse generator element (7) is kept closed in order to prevent fluid
from passing past the second pressure pulse generator element (7).
14. A method according to claim 12 or 13, characterised in that, during a second period, the valves of the second pair of valves (10,11) are controlled
to open for a flow of the pressure fluid into the circuit (12) via the communication
channel (15) and past at least one of these valves, while at least one of the valves
of the first pair of valves (8,9) is kept closed in order to prevent fluid from passing
the first pair of valves.
15. A method according to any one of claims 12-14, characterised in that the valves (8,9,10,11) of each pressure pulse generator element (6,7) are connected
by means of two separate, parallel channels (16,17) that lead from a first valve (8,10)
of the pair of valves to a second valve (9,11) of the pair of valves, and that a first
valve (8,10) of the pair of valves is open for fluid passage through a first channel
(16) of these channels and closes for fluid passage in the second channel (17), while,
at the same time, the second valve (9,11) is opened for fluid passage in the second
channel (17) and is kept closed for fluid passage in the first channel (16).
16. A method according to claim 15, characterised in that, during the first and second period, respectively, the positions of the valves (8,9,10,11)
of the pair of valves are interchanged, and in that the interchange is controlled such that both valves, during at least a part of said
time period, will simultaneously open for passage of pressure fluid in one and the
same of the channels (16,17).
17. A method according to claim 16, characterised in that the valves comprise electromagnetically controlled slide valves (8,9,10,11), and
that, at the moment of interchange of the respective positions of the valves (8,9,10,11)
of the pair of valves, the moment at which an electrical signal is emitted for activation
of a first electromagnet (18-21), accomplishing a displacement of the first of the
valves, is controlled in relation to the moment at which a second electrical signal
is emitted for activating the second electromagnet that accomplishes a displacement
of the second valve, based on the requested time length of the pressure fluid pulse
that is thereby generated via the open channel (16 or 17).
1. Druckimpulsgenerator, der einen Druckfluidkreislauf (12) mit einer Hochdruckseite
und einer Niederdruckseite und ein Druckimpulsgeneratorelement (6, 7) aufweist, das
im Druckfluidkreislauf (12) angeordnet ist, wobei das Element ein Paar elektrisch
gesteuerter Ventile (8,9,10,11) aufweist, das ein erstes Ventil (8,10) und ein zweites
Ventil (9,11) aufweist, wobei das erste Ventil (8,10) und das zweite Ventil (9,11)
mittels eines einzigen Kanals (26) oder zweier paralleler Kanäle (16,17) verbunden
sind, die vom ersten Ventil (8,10) zum zweiten Ventil (9,11) des Ventilpaars führen,
und jedes Ventil (8,9,10,11) eingerichtet ist, ein Schließen und Öffnen des Kanals
(26) oder jedes Kanals des Kanalpaars (16,17) durchzuführen, wobei die ersten und
zweiten Ventile (8,9,10,11) eingerichtet sind, jeweils entgegengesetzte geschlossene
und offene Stellungen hinsichtlich des einzelnen Kanals (26) oder jedem des Paares
der Kanäle (16,17) einzunehmen und durch eine Änderung der Stellung der Ventile zwischen
den offenen und geschlossenen Stellungen einen Druckimpuls im Druckfluidkreislauf
(12) zu erzeugen, dadurch gekennzeichnet, daß der Druckimpulsgenerator eine elektronische Vorrichtung aufweist, die eingerichtet
ist, die Aktivierung oder Deaktivierung eines oder mehrerer Elektromagnete zum Zweck
der Beeinflussung und des Bewegens der Ventile (8,9,10,11) des Ventilpaars zwischen
ihren schließenden bzw. öffnenden Stellungen so zu steuern, daß der Moment, an dem
ein elektrisches Signal zur Aktivierung eines ersten Elektromagneten abgegeben wird,
das eine Verstellung des ersten (8,10) der Ventile (8,9,10,11) bewirkt, in Beziehung
zu dem Moment, an dem ein zweites elektrisches Signal zur Aktivierung eines zweiten
Elektromagneten abgegeben wird, das eine Verstellung des zweiten Ventils (9, 11) bewirkt,
beruhend auf der angeforderten Dauer des Druckfluidimpulses gesteuert wird, der dadurch über den offenen Kanal (26; 16, 17) erzeugt wird.
2. Druckimpulsgenerator nach Anspruch 1, dadurch gekennzeichnet, daß die Ventile (8,9,10,11) elektromagnetisch gesteuerte Schieber sind.
3. Druckimpulsgenerator nach einem der Ansprüche 1-2, der aufweist:
- mindestens einen Verbindungskanal (15), der mit dem Druckfluidkreislauf (12) verbunden
ist und durch den das Druckfluid in und aus dem Kreislauf (12) strömen kann, dadurch gekennzeichnet, daß
- er ein erstes Druckimpulsgeneratorelement (6) und ein zweites Druckimpulsgeneratorelement
(7) aufweist, die in Reihe geschaltet sind, und
- daß das erste Druckimpulsgeneratorelement (6) im Kreislauf (12) stromaufwärts des
mindestens einen Verbindungskanals (15) angeordnet ist, und
- daß das zweite Druckimpulsgeneratorelement (7) im Kreislauf (12) stromabwärts des
mindestens einen Verbindungskanals (15) angeordnet ist.
4. Druckimpulsgenerator nach einem der Ansprüche 1-3, dadurch gekennzeichnet, daß jedes der Ventile (8,9,10,11) bistabil ist.
5. Druckimpulsgenerator nach Anspruch 4, dadurch gekennzeichnet, daß die elektronische Vorrichtung eingerichtet ist, den Übergang der Ventile (8,9,10,11)
zwischen ihren ersten und zweiten Stellungen zu steuern und den Moment des Übergangs
zwischen den ersten und zweiten Stellungen für die Ventile (8,9,10,11) des jeweiligen
Ventilpaars zu verschieben.
6. Druckimpulsgenerator nach einem der Ansprüche 1-5,
dadurch gekennzeichnet, daß er aufweist:
- eine Zylindereinheit (5) und
- einen Kolben (4), der verschiebbar in der Zylindereinheit (5) angeordnet ist, wobei
der mindestens eine Verbindungskanal (15) in einer solchen Weise mit der Zylindereinheit
(5) verbunden ist, daß das Druckfluid im Kreislauf (12) durch den Verbindungskanal
(15) in und aus dem Inneren der Zylindereinheit (5) strömen kann, um eine Verstellung
des Kolbens (4) in der Zylindereinheit (5) durchzuführen.
7. Druckimpulsgenerator nach Anspruch 6, dadurch gekennzeichnet, daß der Kolben (4) mit einem Ventil (1) eines Verbrennungsmotors verbunden ist, und daß
die Bewegung des Kolbens (4) auf eine Öffnungs- oder Schließbewegung des Ventils (1)
des Verbrennungsmotors übertragen wird.
8. Druckimpulsgenerator nach Anspruch 7 und 8, dadurch gekennzeichnet, daß die elektronische Vorrichtung die Aktivierung und Deaktivierung der Elektromagnete
(18-21) beruhend auf der Stellung einer Kurbelwelle des Verbrennungsmotors steuert.
9. Druckimpulsgenerator nach einem der Ansprüche 1-8, dadurch gekennzeichnet, daß das Druckfluid im Kreislauf (12) ein Gas oder ein Gasgemisch aufweist.
10. Druckimpulsgenerator nach einem der Ansprüche 1-9, dadurch gekennzeichnet, daß das Druckfluid im Kreislauf (12) Luft aufweist.
11. Druckimpulsgenerator nach einem der Ansprüche 1-10, dadurch gekennzeichnet, daß der Kreislauf (12) ein im wesentlichen geschlossener Kreislauf ist.
12. Verfahren zur Steuerung eines Druckimpulsgenerators nach Anspruch 1, der aufweist
- einen Kreislauf (12), der mit einem Druckfluid gefüllt ist, und
- mindestens einen Verbindungskanal (15), der mit dem Kreislauf (12) verbunden ist
und über den das Druckfluid in und aus dem Kreislauf (12) strömen kann,
dadurch gekennzeichnet, daß es aufweist:
- Steuern, mittels elektrischer Signale, der Ventile eines ersten und eines zweiten
Druckimpulsgeneratorelements (6, 7), die in Reihe geschaltet sind, gemäß einer bestimmten
Abfolge,
- wobei das erste Druckimpulsgeneratorelement (6) im Kreislauf (12) stromaufwärts
des mindestens einen Verbindungskanals (15) angeordnet ist, und
- wobei das zweite Impulsgeneratorelement (7) im Kreislauf (12) stromabwärts des mindestens
einen Verbindungskanals (15) angeordnet ist.
13. Verfahren nach Anspruch 12, dadurch gekennzeichnet, daß während einer ersten Periode die Ventile (8,9) des Druckimpulsgeneratorelements (6)
so gesteuert werden, daß sie sich für einen Strom des Druckfluids aus dem Kreislauf
(12) über den Verbindungskanal (15) öffnen, während gleichzeitig mindestens ein Ventil
des zweiten Druckimpulsgeneratorelements (7) geschlossen gehalten wird, um zu verhindern,
daß Fluid am zweiten Druckimpulsgeneratorelement (7) vorbeiströmt.
14. Verfahren nach Anspruch 12 oder 13, dadurch gekennzeichnet, daß während einer zweiten Periode die Ventile des zweiten Ventilpaars (10,11) so gesteuert
werden, daß sie sich für einen Strom des Druckfluids in den Kreislauf (12) über den
Verbindungskanal (15) und an mindestens einem dieser Ventile vorbei öffnen, während
mindestens eines der Ventile des ersten Ventilpaars (8,9) geschlossen gehalten wird,
um zu verhindern, daß Fluid am ersten Ventilpaar vorbeiströmt.
15. Verfahren nach einem der Ansprüche 12-14, dadurch gekennzeichnet, daß die Ventile (8, 9,10,11) jedes Druckimpulsgeneratorelements (6,7) mittels zweier
getrennter, paralleler Kanäle (16,17) verbunden sind, die von einem ersten Ventil
(8,10) des Ventilpaars zu einem zweiten Ventil (9,11) des Ventilpaars führen, und
daß ein erstes Ventil (8,10) des Ventilpaars für einen Fluiddurchgang durch einen
ersten Kanal (16) dieser Kanäle offen ist und sich für einen Fluiddurchgang im zweiten
Kanal (17) schließt, während gleichzeitig das zweite Ventil (9,11) für einen Fluiddurchgang
im zweiten Kanal (17) geöffnet wird und für einen Fluiddurchgang im ersten Kanal (16)
geschlossen gehalten wird.
16. Verfahren nach Anspruch 15, dadurch gekennzeichnet, daß während der ersten bzw. zweiten Periode die Stellungen der Ventile (8,9,10,11) des
Ventilpaars vertauscht werden, und daß die Vertauschung so gesteuert wird, daß sich
beide Ventile während mindestens eines Teils der Zeitperiode zum Durchgang von Druckfluid
in ein und demselben der Kanäle (16,17) gleichzeitig öffnen werden.
17. Verfahren nach Anspruch 16, dadurch gekennzeichnet, daß die Ventile elektromagnetisch gesteuerte Schieber (8,9, 10,11) aufweisen, und daß
im Moment der Vertauschung der jeweiligen Stellungen der Ventile (8,9,10,11) des Ventilpaars
der Moment, an dem ein elektrisches Signal zur Aktivierung eines ersten Elektromagneten
(18-21) abgegeben wird, das eine Verstellung des ersten der Ventile durchführt, in
Beziehung zu dem Moment, an dem ein zweites elektrisches Signal zur Aktivierung des
zweiten Elektromagneten abgegeben wird, das eine Verstellung des zweiten Ventils durchführt,
beruhend auf der angeforderten Dauer des Druckfluidimpulses gesteuert wird, der dadurch über den offenen Kanal (16 oder 17) erzeugt wird.
1. Générateur d'impulsions de pression comprenant un circuit de fluide de pression (12)
avec un côté de pression élevée et un côté de pression faible, et un élément de générateur
d'impulsions de pression (6, 7) agencé dans ledit circuit de fluide de pression (12),
ledit élément comprenant une paire de valves électriquement commandées (8, 9, 10,
11) qui comprend une première valve (8, 10) et une seconde valve (9, 11), la première
valve (8, 10) et la seconde valve (9, 11) étant reliées au moyen d'un canal unique
(26) ou de deux canaux parallèles (16, 17) qui conduisent de la première valve (8,
10) à la seconde valve (9, 11) de ladite paire de valves, et que chaque valve (8,
9, 10, 11) est agencée pour exécuter une fermeture et une ouverture dudit canal (26)
ou de chaque canal de ladite paire de canaux (16, 17), les première et seconde valves
(8, 9, 10, 11) sont agencées de manière à occuper des positions fermée et ouverte
opposées respectivement par rapport audit canal unique (26) ou chacun de ladite paire
de canaux (16, 17), et à générer une impulsion de pression dans ledit circuit de fluide
de pression (12) par un changement de position desdites valves entre lesdites positions
ouverte et fermée, caractérisé en ce que le générateur d'impulsions de pression comprend un dispositif électronique agencé
pour commander l'activation ou la désactivation d'un ou plusieurs électroaimants dans
le but d'avoir un effet sur et de déplacer les valves (8, 9, 10, 11) de la paire de
valves entre leurs positions de fermeture et d'ouverture, respectivement de sorte
que le moment auquel un signal électrique est donné pour l'activation d'un premier
électroaimant, qui actionne un déplacement de la première (8, 10) des valves (8, 9,
10, 11), est commandé en rapport avec le moment auquel un second signal électrique
est émis pour l'activation d'un second électroaimant qui actionne un déplacement de
la seconde valve (9, 11) sur la base de la longueur requise de temps de l'impulsion
du fluide de pression qui est ainsi générée par l'intermédiaire du canal ouvert (26
; 16, 17).
2. Générateur d'impulsions de pression selon la revendication 1, caractérisé en ce que lesdites valves (8, 9, 10, 11) sont des distributeurs à tiroir électromagnétiquement
commandés.
3. Générateur d'impulsions de pression selon l'une quelconque des revendications 1 à
2, comprenant
au moins un canal de communication (15) qui est relié au circuit de fluide de pression
(12) et à travers lequel le fluide de pression peut s'écouler dans et hors du circuit
(12),
caractérisé en ce qu'il comprend
- un premier élément de générateur d'impulsions de pression (6) et un second élément
de générateur d'impulsions de pression (7), qui sont reliés en série, et
- en ce que le premier élément de générateur d'impulsions de pression (6) est agencé dans ledit
circuit (12) en amont du au moins un canal de communication (15), et
- en ce que le second élément de générateur d'impulsions de pression (7) est agencé dans ledit
circuit (12) en aval du au moins un canal de communication (15).
4. Générateur d'impulsions de pression selon l'une quelconque des revendications 1 à
3, caractérisé en ce que chacune des valves (8, 9, 10, 11) est bistable.
5. Générateur d'impulsions de pression selon la revendication 4, caractérisé en ce que ledit dispositif électronique est agencé pour commander la transition des valves
(8, 9, 10, 11) entre leurs première et seconde positions et pour déplacer le moment
de transition entre les première et seconde positions pour les valves (8, 9, 10, 11)
de la paire respective de valves.
6. Générateur d'impulsions de pression selon l'une quelconque des revendications 1 à
5,
caractérisé en ce qu'il comprend
- une unité de cylindre (5) et
- un piston (4) qui est agencé de façon mobile dans l'unité de cylindre (5), ledit
au moins un canal de communication (15) étant relié à l'unité de cylindre (5) d'une
manière telle que le fluide de pression dans le circuit (12) peut s'écouler dans et
hors de l'intérieur de l'unité de cylindre (5) à travers ledit canal de communication
(15) afin d'accomplir un déplacement de piston (4) dans l'unité de cylindre (5).
7. Générateur d'impulsions de pression selon la revendication 6, caractérisé en ce que le piston (4) est relié à une valve (1) d'un moteur à combustion et en ce que le mouvement du piston (4) est transmis à un mouvement d'ouverture ou de fermeture
de la valve (1) du moteur à combustion.
8. Générateur d'impulsions de pression selon la revendication 7 et la revendication 8,
caractérisé en ce que le dispositif électronique commande l'activation et l'inactivation desdits électroaimants
(18 à 21) sur la base de la position d'un vilebrequin du moteur à combustion.
9. Générateur d'impulsions de pression selon l'une quelconque des revendications 1 à
8, caractérisé en ce que le fluide de pression dans ledit circuit (12) comprend un gaz ou un mélange de gaz.
10. Générateur d'impulsions de pression selon l'une quelconque des revendications 1 à
9, caractérisé en ce que le fluide de pression dans ledit circuit (12) comprend de l'air.
11. Générateur d'impulsions de pression selon l'une quelconque des revendications 1 à
10, caractérisé en ce que ledit circuit (12) est un circuit généralement fermé.
12. Procédé pour commander un générateur d'impulsions de pression selon la revendication
1, comprenant
- un circuit (12) rempli d'un fluide de pression, et
- au moins un canal de communication (15) qui est relié au circuit (12) et par l'intermédiaire
duquel le fluide de pression peut s'écouler dans et hors du circuit (12),
caractérisé en ce qu'il comprend
- la commande, au moyen de signaux électriques, des valves d'un premier et d'un second
élément de générateur d'impulsions de pression (6, 7) qui sont reliés en série, selon
une certaine séquence,
- le premier élément de générateur d'impulsions de pression (6) étant agencé dans
ledit circuit (12) en amont du au moins un canal de communication (15), et
- le second élément de générateur d'impulsions de pression (7) étant agencé dans ledit
circuit (12) en aval du au moins un canal de communication (15).
13. Procédé selon la revendication 12, caractérisé en ce que, pendant une première période, les valves (8, 9) de l'élément de générateur d'impulsions
de pression (6) sont commandées pour s'ouvrir pour un écoulement de fluide de pression
hors du circuit (12) par l'intermédiaire du canal de communication (15), tandis que,
au même moment, au moins une valve du second élément de générateur d'impulsions de
pression (7) est maintenue fermée afin d'empêcher le fluide de passer au-delà du second
élément de générateur d'impulsions de pression (7).
14. Procédé selon la revendication 12 ou 13, caractérisé en ce que, pendant une seconde période, les valves de la seconde paire de valves (10, 11) sont
commandées pour s'ouvrir pour un écoulement de fluide de pression dans le circuit
(12) par l'intermédiaire du canal de communication (15) et au-delà d'au moins une
de ces valves tandis qu'au moins l'une des valves de la première paire de valves (8,
9) est maintenue fermée afin d'empêcher le fluide de passer la première paire de valves.
15. Procédé selon l'une quelconque des revendications 12 à 14, caractérisé en ce que les valves (8, 9, 10, 11) de chaque élément de générateur d'impulsions de pression
(6, 7) sont reliées au moyen de deux canaux parallèles séparés (16, 17) qui conduisent
d'une première valve (8, 10) de la paire de valves à une seconde valve (9, 11) de
la paire de valves et en ce qu'une première valve (8, 10) de la paire de valves est ouverte pour le passage de fluide
à travers un premier canal (16) de ces canaux et se ferme pour le passage de fluide
dans le second canal (17), tandis que, au même moment, la seconde valve (9, 11) est
ouverte pour le passage de fluide dans le second canal (17) et est maintenue fermée
pour le passage de fluide dans le premier canal (16).
16. Procédé selon la revendication 15, caractérisé en ce que, pendant les première et seconde périodes, respectivement, les positions des valves
(8, 9, 10, 11) de la paire de valves sont interchangées et en ce que l'échange est commandé de sorte que les deux valves, pendant au moins une partie
de ladite période de temps, s'ouvriront simultanément pour le passage de fluide de
pression dans un seul et même des canaux (16, 17).
17. Procédé selon la revendication 16, caractérisé en ce que les valves comprennent des distributeurs à tiroir électromagnétiquement commandés
(8, 9, 10, 11) et en ce que, au moment de l'échange des positions respectives des valves (8, 9, 10, 11) de la
paire de valves, le moment auquel un signal électrique est émis pour l'activation
d'un premier électroaimant (18 à 21), accomplissant un déplacement de la première
des valves, est commandé en rapport avec le moment auquel un second signal électrique
est émis pour l'activation du second électroaimant qui accomplit un déplacement de
la seconde valve, sur la base de la longueur de temps requise de l'impulsion de fluide
de pression qui est ainsi générée par l'intermédiaire du canal ouvert (16 ou 17).
REFERENCES CITED IN THE DESCRIPTION
This list of references cited by the applicant is for the reader's convenience only.
It does not form part of the European patent document. Even though great care has
been taken in compiling the references, errors or omissions cannot be excluded and
the EPO disclaims all liability in this regard.
Patent documents cited in the description