[0001] The invention relates to a device for controlling a piloting pressure, in particular
the piloting pressure of a balance valve.
[0002] The prior art contains hydraulic activating circuits for hydraulic actuators, for
example for a cylinder of an arm of a lifting apparatus, in which a first circuit
branch connects a hydraulic distributor, in turn associated to a pump, with the chamber
of the actuator being associated to the lifting of the load and a second branch connects
the distributor with the chamber associated to the descent of the load. The circuit
is provided with a balance valve predisposed for controlling the fluid flow along
the first branch during the descent stage of the load. A piloting conduit removes
a piloting pressure from the second branch which piloting pressure acts by opening
the balance valve during the descent stage of the load.
[0003] In a circuit of this type instability and oscilation phenomena occur in the balance
valve on activation of the cylinder for the descent of the load or the inversion of
motion thereof. In particular, on lowering the load there can be a frequent succession
of blocks and free-ups of the actuator before stabilisation occurs, which causes dangerous
oscillation of the load.
[0004] To resolve the problem chokes have been placed on the piloting conduit. These chokes
determine a localised load loss by effect of which the increase in the piloting pressure
P
PIL commanding the opening of the balance valve is gradual and controlled with respect
to the increase in pressure P
B in the second branch (i.e. the branch which during the lowering stage of the load
is the delivery branch). In the diagram of figure 1 the curve S approximately represents
the progress of the piloting pressure P
PIL as a function of the pressure P
B in the second branch using a choke.
[0005] A drawback of the above-cited known solution is the delay in the activation of the
cylinder with respect to the operator's command, especially evident when the operating
liquid in the hydraulic circuit is very viscous (for example when cold). This delay
is due to the presence of the choke and can be schematised in figure 1 by observing
that the piloting pressure P
PIL reaches value P
V of opening of the balance valve (a value predetermined by the calibration of the
valve spring) when the delivery pressure P
B to the cylinder has already reached a relatively high level P
S. This means that the activation of the cylinder during the lowering stage starts
from the moment in which the pressure P
B reaches the value P
S. The time required for the pressure P
B to reached value P
S (to which value P
V of the piloting pressure P
PIL corresponds) can be relatively high, which determines the mentioned delay.
[0006] In patent
EP 1178219 the present Applicant provided a satisfactory solution to the technical problem described
above. In that solution, a check valve is located along the piloting conduit, in parallel
with the choke. The valve, normally open, enables passage of the piloting fluid up
to reaching a determined pressure downstream of the valve. On reaching the determined
pressure, the valve closes and the piloting fluid flow continues via the choke. The
presence of the check valve, located in parallel with the choke, enables a rapid increase
of the piloting pressure in the first stages of sending the piloting signal to the
balance valve. In this way, the lowering of the load begins promptly in response to
the lowering command.
[0007] The above-described solution exhibits however a not entirely satisfactory aspect.
The check valve exhibits a certain tendency to closure following pressure peaks or
flow peaks along the piloting conduit. As these pressure or flow peaks are rather
frequent, so are the closures of the check valve, which undesirably slow down the
opening of the balance valve.
[0008] An example of prior art device suffering the same drawback above is given in
JP 59016022. The device comprises a coupling part provided between a load and an actuator. The
coupling part has a gap acting as a backlash. A changeover valve is provided to a
hydraulic driving circuit closer to the actuator, a check valve, pressure reducing
valve and relief valve are provided successively in front of the changeover valve,
and maximum pressure for operating the actuator is set to the relief valve. The load
does not operate on the pressure reducing valve, but enough pressure to operate the
actuator is set.
[0009] The aim of the present invention is to realise a device for control of a piloting
pressure of a balance valve which enables reduction of the delay in response of the
balance valve or, more in general, of a hydraulically-piloted organ.
[0010] An advantage of the invention is that is provides a device which enables prompt and
progressive activation of the piloted organ.
[0011] A further advantage of the invention is to considerably reduce the delay in opening
of the balance valve in an activating circuit for a hydraulic actuator and to prevent
onset of instability and oscillation phenomena of the valve. Further characteristics
and advantages of the present invention will more fully emerge from the detailed description
that follows of some preferred though not exclusive embodiments, which are illustrated
purely by way of example in the accompanying figures of the drawings, in which:
figure 1 is a diagram indicating the piloting pressure PPIL according to the pressure PB in the delivery conduit during the lowering stage of the load,
respectively for a known valve (curve S) and for a valve made according to the invention
(curve T);
figure 2 is a schematic illustration of an embodiment of the invention, combined to
an activating circuit for a hydraulic actuator, wherein a pressure reducer valve is
in an open configuration;
figure 3 shows the device of figure 2 in which the pressure reducer valve is in a
closed configuration;
figures 4 and 5 show a variant of the device illustrated in figures 2 and 3, wherein
the pressure reduction valve is respectively in an open and closed configuration.
Figure 2 illustrates an activating circuit for a hydraulic actuator 9 which, merely
by way of example, is constituted by a cylinder.
[0012] The hydraulic actuator 9 has a first chamber 10 and a second chamber 11 respectively
associated to the raising and lowering of a load 12.
[0013] The activating circuit comprises a hydraulic distributor 13 in turn connected to
a source of operating fluid under pressure, typically a pump. A first branch 14 connects
the distributor 13 with the first chamber 10, while a second branch 15 connects the
distributor 13 with the second chamber 11. A balance valve 16 is arranged along the
first branch 14 to regulate the flow rate of operating fluid which unloads from the
first chamber 10 during the descent stage of the load 12. A piloting conduit 17 takes
from the second branch 15 a piloting pressure which acts to open the balance valve
16.
[0014] The balance valve 16, of known type, exhibits a first connection which is connected
to the first chamber 10 and a second connection connected to the distributor 13. The
balance valve has a obturator which is mobile between the open position, in which
the first connection is set in communication with the second connection, and a closed
position, wherein the first and the second connections are not in communication with
one another. The obturator of the balance valve 16 is pushed towards the closed position
thereof by means of a spring, while it is pushed towards its open position by the
force exerted thereon by the pressure exerted by the piloting fluid removed from the
second branch 15. The balance valve comprises a single-acting valve connected in parallel
to the obturator for enabling free flow of the piloting fluid from the second to the
first connection.
[0015] The function of the balance valve 16 is to enable, during raising of the load, free
flow of the operating liquid to the first chamber 10 of the actuator 9. During the
descent of the load, the balance valve 16 controls and limits the flow rate of the
operating fluid which unloads from the first chamber 10 towards the distributor 13,
such as to slow down the descent of the load. The device of the present invention,
illustrated in figure 2, is predisposed to be positioned along the piloting conduit
17. It comprises a choke 8, predisposed to be interposed between a piloting fluid
source and an organ 16, in particular the balance valve 16, which is activatable by
the piloting fluid. The device further comprises a pressure reducer valve 2, arranged
in parallel with the choke 8, which is normally open and is predisposed to close when
the piloting fluid pressure reaches a determined level.
[0016] The reducer valve 2 is provided with an obturator 21 which is mobile between an open
position, in which the piloting fluid flow is enabled through the reducer valve 2,
and a closed position, in which the piloting fluid flow is not enabled through the
reducer valve 2. The obturator 21 is pushed towards the open position thereof by effect
of the thrust exerted by an elastic element 25, while it is pushed towards the closed
position thereof by effect of the thrust exerted by the piloting fluid pressure on
a thrust surface 210 of the obturator 21. The thrust surface 210 is defined by the
front section of the obturator 21, i.e. by the area of the circle delimited by the
external edge of the obturator 21.
[0017] The obturator 21 is advantageously conformed and arranged such that the thrust surface
210 is not exposed to the direct flow of the piloting liquid in inlet to the reducer
valve 2. The thrust surface 210 is exposed directly only to the piloting fluid pressure
downstream of the reducer valve 2.
[0018] The conformation of the obturator 21 and the arrangement of the thrust surface 210
are such that any peaks of flow rate and/or pressure of the piloting fluid in inlet
to the reducer valve 2 do not have the effect of nudging the obturator 21 towards
the closed position. The obturator 21 is only subject to the effect of the pressure
present downstream of the reducer valve 2, which pressure also acts on the balance
valve 16. In this way any peaks of flow rate and/or pressure of the piloting fluid
in inlet to the reducer valve 2, as they do not nudge the obturator 21 to closure,
do not slow down the flow of the piloting fluid towards the balance valve 16.
[0019] The obturator 21 is sealedly slidable along a longitudinal axis x internally of a
seating 22. The seating 22 exhibits at least an inlet opening 23, predisposed to be
connected to the piloting conduit 17, and at least an outlet opening 24 predisposed
to be connected to the balance valve 16. The obturator 21 is mobile between at least
an open position (figure 2), in which the inlet opening 23 and the outlet opening
24 are in communication and the piloting fluid can flow from the inlet opening to
the outlet opening, and at least a closed position (figure 3), in which communication
between the inlet opening and the outlet opening is prevented. An elastic element
25, preferably a helical spring possible provided with a calibrating organ 26 is predisposed
to push the obturator 21 towards the open position. Differently, the pressure downstream
of the outlet opening 24, which unloads on the thrust surface 210, pushes the obturator
21 towards the closed position.
[0020] The obturator 21 exhibits a communicating conduit 211 arranged longitudinally and
parallel to the sliding direction of the obturator 21. The communicating conduit 211
is provided with a first opening 212 and a second opening 213.
[0021] The second opening 213 is set in communication with the outlet opening 24 of the
reducer valve 2. The first opening 212, in the open position of the obturator 21,
is in communication with the inlet opening 23 of the reducer valve 2, such that the
inlet opening 23 is in communication with the outlet opening 24 via the first opening
212, the communicating conduit 211 and the second opening 213. In the closed position
of the obturator 21, the first opening 212 is not in communication with the inlet
opening 23 of the reducer valve 2. To this end, the first opening 212 is arranged
at an annular groove 214 located on the lateral surface of the obturator 21. The annular
groove 214 delimits, in cooperation with the internal wall of the seating 22, an annular
chamber into which the first opening 212 opens.
[0022] In the open position of the obturator 21, the annular chamber at least partly faces
the inlet opening 23 of the reducer valve 2, while in the closed position of the obturator
21 the annular chamber is not in communication with the inlet opening 23. The first
opening 212 develops perpendicular to the communicating conduit 211, such that the
piloting fluid coming from the inlet opening 23 of the reducer valve 2 flows internally
of the communicating conduit 211 from a transversal direction with respect to the
longitudinal development of the communicating conduit 211. In this way, the dynamic
effect due to the flow of the piloting fluid in inlet to the communicating conduit
211 is directed perpendicular to the sliding direction of the obturator 21, and the
obturator 21 is therefore not pushed to slide.
[0023] The inlet opening 23 and the first opening 212 are substantially facing in the same
direction. The outlet opening 24 and the second opening 213 are reciprocally aligned.
The directions of orientation of the inlet opening and the first opening are in turn
perpendicular to the orientation direction of the outlet opening and the second opening.
[0024] As already mentioned herein above, the special conformation of the obturator 21 is
such that the obturator 21 does not suffer from any pressure or flow rate peaks on
opening the inlet 23 of the reducer valve 2. The displacement of the obturator 21
towards the closed position is determined only by the pressure present at the outlet
opening 24 of the reducer valve 2. In this way, the reducer valve 2 does not perform
undesired and unexpected closures, but closes only when the pressure present at the
outlet opening 24 reaches a determined value, in particular a value determined by
the force exerted by the elastic element 25.
[0025] The elastic element 25 or spring is housed in a low-pressure chamber 27. In particular
the chamber 27 of the spring 25 is set in communication with the first branch 14 of
the circuit connecting the distributor 13 with the first chamber 10 of the actuator
9, which chamber 10 is associated to the raising of the load. During the stages of
supporting and lowering the load, this branch is normally at low pressure, and the
spring chamber of the reducer valve is also at low pressure. The eventual presence
of pressure in the chamber 27 would raise the calibration value of the reducer valve
2, i.e. the pressure required for determining the displacement of the obturator 21
towards the closed position. This might effectively occur by effect of a pressurised
oil flow present in the first branch 14 of the circuit during the descent. In this
condition the calibration of the reducer valve 2, i.e. the pressure required for displacing
the obturator 21 towards the closed position, would increase slightly and, consequently,
the pressure transmitted to the piloting of the balance valve would also increase,
in this way facilitating the opening of the valve. Alternatively to the connection
with the first branch 14, the chamber 27 containing the spring 25 might also be ventilated
by air.
[0026] A single-acting valve 3 can be interposed between the reducer valve 2 and the balance
valve 16, which single-acting valve 3 has a function of enabling flow of the fluid
only from the reducer valve 2 towards the piloting of the balance valve 16, while
reverse flow is prevented. In this way all unexpected back-flow of the piloting fluid
in outlet from the piloting of the balance valve 16 is prevented. This unexpected
flow might obtain in a case of a pressure drop in the second branch 15 of the circuit,
and might lead to an undesired closing of the balance valve 16.
[0027] The functioning of the reducer valve 2 and the activating circuit of the hydraulic
actuator 9 are as follows.
[0028] On starting the load lowering stage, i.e. when the distributor 13 is brought into
a configuration in which the operating fluid is sent to the second chamber 11 of the
actuator 9 through the second branch 15, the pressure P
B is in the second branch 15 is raised, and therefore also in the piloting conduit
17. The piloting pressure P
PIL on connection of piloting of the balance valve 16 reaches the predetermined value
for the opening of the valve in a relatively brief time. This pressure increases rapidly
up to the predetermined calibrated pressure of the reducer valve 2, which is normally
open. On reaching the predetermined calibrated pressure P
X of the reducer valve 2, the obturator 21 displaces into the closed position and the
piloting fluid flow proceeds through the choke 8, such that the piloting pressure
P
PIL further increases through the choke up to reaching the value P
V at which the balance valve 16 opens. Thereafter, on closure of the reducer valve
2, the piloting pressure P
PIL increases from value P
X to value P
V at a smaller inclination with respect to a situation in which the reducer valve 2
is open, as shown by the curve T of figure 1. This smaller inclination depends on
the pressure drop caused by the choke 8.
[0029] The curve S of figure 1 denotes the progress of the piloting pressure P
PIL for a control device comprising only the choke 8 but not the reducer valve 2. The
curve S clearly shows how the piloting pressure P
PIL reaches the start value P
V of the opening of the balance valve 16 when the pressure P
B in the second branch 15 is at a decidedly greater value than the curve T. This means
that, thanks to the device of the invention, the balance valve 16 opens decidedly
before, such that the lowering of the load follows very rapidly on from the operator's
descent command.
[0030] It has further been observed that the choke 8, which has the task of stabilising
the functioning of the actuator 9 during the descent stage of the load, effectively
performs this task even where the passage section is relatively large. In particular,
the choke 8 of the device of the invention can be decidedly more open with respect
to a stabilising choke in a device lacking the reducer valve 2. Consequently it can
be seen from figure 1 that the inclination of the curve S, relative to a more accentuated
choke, is less than the inclination of the second tract of the curve T, which relates
to the choke used in the present device, in which P
PIL is greater than P
X. This enables the operator to have an even more direct and immediate control of the
actuator 9, as the response of the actuator 9 is even more prompt for each positional
variation of the distributor 13.
[0031] During the descent manoeuvre it can happen that the load has to be sharply halted,
either by a command of the operator or following an eventual fault or breakage of
a tube. In order to enable rapid halting, the balance valve 16, the obturator of which
has been piloted, i.e. pushed, into the open position by the piloting fluid, has to
return to the closed position, sending at least a part of the piloting fluid in discharge.
[0032] For closure of the balance valve 16, the piloting fluid can be discharged only passing
through the choke 8, due to the presence of the single-acting valve 3. This might
cause an undesired delay in the closure of the obturator of the balance valve 16,
and therefore an excessive delay in the halting of the load.
[0033] To obviate this delay, the device of the present invention, as illustrated in figures
4 and 5, can advantageously be provided with a pressure limiter valve 4 arranged in
parallel with the choke 8 and the reducer valve 2. The limiter valve is provided with
an obturator which is mobile between an open position, in which the operating fluid
flow through the valve is enabled, and a closed position, in which the flow is not
enabled. The obturator is pushed towards the closed position by effect of the thrust
exerted by an elastic means, while it is pushed towards the open position by the piloting
fluid pressure. The limiter valve 4 enables the piloting fluid flow only from the
balance valve 16 to the second branch 15, while it prevents the reverse flow, and
enables flow only if the piloting fluid pressure rises above a determined value corresponding
to the thrust exerted by the elastic means. At least a part of the piloting fluid
can be rapidly discharge through the limiter valve 4, such as to enable the obturator
of the balance valve 16 to displace rapidly towards the closed position thereof, at
least for a considerable part of the run towards the closed position. Although the
above description relates to the use of the device in combination with a balance valve,
the device of the invention can be used for controlling the piloting pressure towards
any hydraulically-piloted organ, with the aim of having a very rapid start-up of the
piloted organ in response to an external command supplied via the piloting pressure
supply. The device obviates delays in start-up of the hydraulically-piloted organ
while at the same time preventing instability phenomena in the functioning of the
piloted organ after start-up.
1. A device for controlling a piloting pressure, comprising: a choke (8), predisposed
to be interposed between a piloting fluid source and an organ (16) actuatable by the
piloting fluid; a valve (2), arranged in parallel to the choke (8), which valve (2)
is normally open and is predisposed to close when the piloting fluid pressure reaches
a determined value said valve (2) being a pressure reducer valve provided with an
obturator (21);
the obturator (21) being mobile between an open position, in which a piloting fluid
flow is enabled through the reducer valve (2), and a closed position, in which the
piloting fluid flow is not enabled through the reducer valve (2), the obturator being
pushed towards the open position thereof by effect of a thrust exerted by an elastic
element (25), the obturator being pushed towards the closed position thereof by effect
of the thrust exerted by the piloting fluid pressure on a thrust surface (210) of
the obturator (21); characterised in that the obturator (21) is conformed and arranged such that the thrust surface (210) is
not exposed to the direct flow of the piloting liquid in inlet to the reducer valve
(2), the thrust surface (210) being exposed directly only to the piloting fluid pressure
downstream of the reducer valve (2).
2. The device of one of the preceding claims, wherein the obturator (21) is sealedly
slidable along a seating (22) which exhibits at least an inlet opening (23) predisposed
to receive the piloting fluid, and at least an outlet opening (24), through which
the piloting fluid can be sent to the organ (16).
3. The device of claim 2, wherein the obturator (21) is mobile between at least an open
position, in which the inlet opening (23) and the outlet opening (24) are in mutual
communication and the piloting fluid can flow from the inlet opening to the outlet
opening, and at least a closed position, in which the communication between the inlet
opening and the outlet opening is prevented.
4. The device of claim 3, wherein: the obturator (21) exhibits a communicating conduit
(211) provided with a first opening (212) and a second opening (213); the second opening
(213) is set in communication with the outlet opening (24) of the reducer valve (2);
the first opening (212), in the open position of the obturator (21), is in communication
with the inlet opening (23), such that the inlet opening (23) is in communication
with the outlet opening (24) via the first opening (212), the communicating conduit
(211) and the second opening (213); in the closed position of the obturator (21),
the first opening (212) is not in communication with the inlet opening (23).
5. The device of claim 4, wherein: the inlet opening (23) and the first opening (212)
substantially face in a same direction; the outlet opening (24) and the second opening
(213) are aligned to one another; the orientation direction of the inlet opening (23)
and the first opening (212) are perpendicular to the alignment direction of the outlet
opening (24) and the second opening (213).
6. The device of claim 5, wherein: the first opening (212) is arranged at an annular
channel (214), afforded on the lateral surface of the obturator (21), which delimits,
in cooperation with the internal wall of the seating (22), an annular chamber in which
the first opening (212) opens; in the open position of the obturator (21), the annular
chamber at least partly faces the inlet opening (23); in the closure position of the
obturator (21) the annular chamber is not in communication with the inlet opening
(23).
7. The device of one of the preceding claims, wherein the elastic element or spring (25)
is housed in a low-pressure chamber (27).
8. The device of claim 7, wherein the chamber (27) of the elastic element (25) is open
to air.
9. The device of one of the preceding claims, comprising a single-acting valve (3) arranged
downstream of the reducer valve (2), which is predisposed to enable flow of the piloting
fluid from the reducer valve (2) towards the organ to be piloted (16) and to prevent
a reverse flow.
10. The device of one of the preceding claims, comprising a pressure limiter valve (4),
arranged in parallel to the choke (8) and to the reducer valve (2), which is predisposed
to enable the piloting fluid flow in discharge from the organ (16) and to prevent
a reverse flow.
11. An activating circuit for a hydraulic actuator (9), comprising: a hydraulic cylinder;
a first branch (14) predisposed to connect the distributor (13) with a first chamber
(10) of the hydraulic actuator (9); a second branch (15) predisposed to connect the
distributor (13) with a second chamber (11) of the hydraulic actuator (9); wherein
the organ is a balance valve, said balance valve (16) is arranged along the first
branch (14) in order to regulate the operating fluid flow in outlet from the first
chamber (10) during a lowering stage of the load (12); a choke (8) interposed between
the second branch (15) and the balance valve (16); characterised in that it comprises a device for controlling the piloting pressure as in one of the preceding
claims, arranged in parallel to the choke (8) between the second branch (15) and the
balance valve (16).
1. Vorrichtung zur Steuerung eines Vorsteuerdrucks, umfassend eine Drossel (8), die ausgelegt
ist, um zwischen eine Quelle des Vorsteuerfluids und ein durch das Vorsteuerfluid
zu betätigendes Organ (16) gelagert zu werden, wobei ein parallel zur Drossel (8)
angeordnetes Ventil (2) normalerweise offen und ausgelegt ist, um zu schließen, wenn
der Druck des Vorsteuerfluids einen bestimmten Wert erreicht, wobei das Ventil (2)
ein Druckminderventil ist, das mit einem Verschluss (21) versehen ist;
wobei der Verschluss (21) zwischen einer offenen Stellung, in der ein Vorsteuerfluidfluss
durch das Druckminderventil (2) gelassen wird, und einer geschlossenen Stellung, in
der der Vorsteuerfluidfluss nicht durch das Druckminderventil (2) gelassen wird, beweglich
ist, wobei der Verschluss durch die Wirkung eines Schubs, der von einem elastischen
Element (25) ausgeübt wird, in seine offene Stellung gedrückt wird, wobei der Verschluss
durch die Wirkung des Schubs, der vom Vorsteuerfluiddruck auf eine Schubfläche (210)
des Verschlusses (21) ausgeübt wird, in seine geschlossene Position gedrückt wird;
dadurch gekennzeichnet, dass der Verschluss (21) so ausgebildet und angeordnet ist, dass die Schubfläche (210)
nicht dem im Einlass zum Druckminderventil (2) befindlichen direkten Fluss des Vorsteuerfluids
ausgesetzt ist, wobei die Schubfläche (210) dem Vorsteuerfluiddruck erst nach dem
Druckminderventil (2) direkt ausgesetzt ist.
2. Vorrichtung nach einem der vorangehenden Ansprüche, wobei der Verschluss (21) abschließend
entlang einem Sitz (22) verschiebbar ist, der mindestens eine Einlassöffnung (23),
die ausgelegt ist, um das Vorsteuerfluid zu empfangen, und mindestens eine Auslassöffnung
(24), durch die das Vorsteuerfluid zum Organ (16) geleitet werden kann, aufweist.
3. Vorrichtung nach Anspruch 2, wobei der Verschluss (21) zwischen mindestens einer offenen
Stellung, in der die Einlassöffnung (23) und die Auslassöffnung (24) miteinander in
Verbindung stehen und das Vorsteuerfluid von der Einlassöffnung zur Auslassöffnung
fließen kann, und mindestens einer geschlossenen Position, in der die Verbindung zwischen
der Einlassöffnung und der Auslassöffnung verhindert wird, beweglich ist.
4. Vorrichtung nach Anspruch 3, wobei der Verschluss (21) eine Verbindungsleitung (211)
aufweist, die mit einer ersten Öffnung (212) und einer zweiten Öffnung (213) ausgestattet
ist, wobei die zweite Öffnung (213) mit der Auslassöffnung (24) des Druckminderventils
(2) in Verbindung steht, wobei die erste Öffnung (212) in der offenen Stellung des
Verschlusses (21) mit der Einlassöffnung (23) in Verbindung steht, sodass die Einlassöffnung
(23) mit der Auslassöffnung (24) über die erste Öffnung (212), die Verbindungsleitung
(211) und die zweite Öffnung (213) in Verbindung steht, wobei in der geschlossenen
Position des Verschlusses (21) die erste Öffnung (212) nicht in Verbindung mit der
Einlassöffnung (23) steht.
5. Vorrichtung nach Anspruch 4, wobei die Einlassöffnung (23) und die erste Öffnung (212)
im Wesentlichen in eine selbe Richtung zeigen, wobei die Auslassöffnung (24) und die
zweite Öffnung (213) aneinander ausgerichtet sind, wobei die Orientierungsrichtung
der Einlassöffnung (23) und der ersten Öffnung (212) lotrecht zur Ausrichtungsrichtung
der Auslassöffnung (24) und der zweiten Öffnung (213) sind.
6. Vorrichtung nach Anspruch 5, wobei die erste Öffnung (212) an einem ringförmigen Kanal
(214) angeordnet ist, der an der Seitenfläche des Verschlusses (21) ausgebildet ist
und gemeinsam mit der Innenwand des Sitzes (22) eine ringförmige Kammer abgrenzt,
in der die erste Öffnung (212) mündet, wobei die ringförmige Kammer in der offenen
Stellung des Verschlusses (21) zumindest zum Teil der Einlassöffnung (23) gegenüberliegt,
wobei die ringförmige Kammer in der Verschlussstellung des Verschlusses (21) nicht
mit der Einlassöffnung (23) in Verbindung steht.
7. Vorrichtung nach einem der vorangehenden Ansprüche, wobei das elastische Element bzw.
die Feder (25) in einer Niederdruckkammer (27) aufgenommen ist.
8. Vorrichtung nach Anspruch 7, wobei die Kammer (27) des elastischen Elements (25) durchlässig
für Luft ist.
9. Vorrichtung nach einem der vorangehenden Ansprüche, umfassend ein nach dem Druckminderventil
(2) angeordnetes einfachwirkendes Ventil (3), das ausgelegt ist, um den Fluss des
Vorsteuerfluids vom Druckminderventil (2) zum vorzusteuernden Organ (16) zu ermöglichen
und einen Rücklauf zu verhindern.
10. Vorrichtung nach einem der vorangehenden Ansprüche, umfassend ein Druckbegrenzungsventil
(4), das parallel zur Drossel (8) und zum Druckminderventil (2) angeordnet ist, das
ausgelegt ist, um den vom Organ (16) abzuleitenden Vorsteuerfluidfluss zu ermöglichen
und einen Rücklauf zu verhindern.
11. Antriebskreis für einen hydraulischen Aktuator (9), umfassend einen Hydraulikzylinder;
eine erste Abzweigung (14), die ausgelegt ist, den Verteiler (13) mit einer ersten
Kammer (10) des hydraulischen Aktuators (9) zu verbinden; eine zweite Abzweigung (15),
die ausgelegt ist, den Verteiler (13) mit einer zweiten Kammer (11) des hydraulischen
Aktuators (9) zu verbinden, wobei das Organ ein Ausgleichsventil ist, wobei das Ausgleichsventil
(16) entlang der ersten Abzweigung (14) angeordnet ist, um das im Auslass von der
ersten Kammer (10) befindliche Betriebsfluid während einer Senkungsphase der Ladung
(12) zu regulieren; eine Drossel (8), die zwischen der zweiten Abzweigung (15) und
dem Ausgleichsventil (16) liegt; dadurch gekennzeichnet, dass er eine Vorrichtung zur Steuerung des Vorsteuerdrucks nach einem der vorangehenden
Ansprüche umfasst, die parallel zur Drossel (8) zwischen der zweiten Abzweigung (15)
und dem Ausgleichsventil (16) angeordnet ist.
1. Dispositif de contrôle de la pression de pilotage, comprenant: un étrangleur (8),
prédisposé pour être interposé entre une source de liquide de pilotage et un organe
(16) actionnable par le liquide de pilotage; un clapet (2), disposé parallèlement
à l'étrangleur (8), ledit clapet (2) étant normalement ouvert et étant prédisposé
à se fermer lorsque la pression du liquide de pilotage atteint une valeur établie,
ledit clapet (2) étant un clapet de réduction de pression pourvu d'un obturateur (21)
;
l'obturateur (21) étant mobile entre une position d'ouverture, dans laquelle un écoulement
du liquide de pilotage est habilité à passer à travers le clapet de réduction (2),
et une position fermée, dans laquelle l'écoulement du liquide de pilotage n'est pas
habilité à passer à travers le clapet de réduction (2), l'obturateur étant poussé
vers sa position d'ouverture par l'effet d'une poussée exercée par un élément élastique
(25), l'obturateur étant poussé vers sa position fermée par l'effet d'une poussée
exercée par la pression du liquide de pilotage sur une surface de poussée (210) de
l'obturateur (21); caractérisé en ce que l'obturateur (21) est conçu et disposé de sorte que la surface de pression (210)
ne soit pas exposée à l'écoulement direct du liquide de pilotage en entrée du clapet
de réduction (2), la surface de poussée (210) étant exposée directement uniquement
à la pression du liquide de pilotage en aval du clapet de réduction (2).
2. Dispositif selon l'une des revendications précédentes, dans lequel l'obturateur (21)
peut coulisser en étant étanche le long d'un logement (22) qui présente au moins une
ouverture d'entrée (23) prédisposée à recevoir le liquide de pilotage, et au moins
une ouverture de sortie (24), à travers laquelle le liquide de pilotage peut être
envoyé à l'organe (16).
3. Dispositif selon la revendication 2, dans lequel l'obturateur (21) est mobile entre
au moins une position d'ouverture, dans laquelle l'ouverture d'entrée (23) et l'ouverture
de sortie (24) sont en communication réciproque et le liquide de pilotage peut s'écouler
de l'ouverture d'entrée vers l'ouverture de sortie, et au moins une position fermée,
dans laquelle la communication entre l'ouverture d'entrée et l'ouverture de sortie
est empêchée.
4. Dispositif selon la revendication 3, dans lequel: l'obturateur (21) présente un conduit
de communication (211) pourvu d'une première ouverture (212) et d'une seconde ouverture
(213); la seconde ouverture (213) est mise en communication avec l'ouverture de sortie
(24) du clapet de réduction (2); la première ouverture (212), dans la position d'ouverture
de l'obturateur (21), est en communication avec l'ouverture d'entrée (23), de sorte
que l'ouverture d'entrée (23) soit en communication avec l'ouverture de sortie (24)
par le biais de la première ouverture (212), le conduit de communication (211) et
la seconde ouverture (213); dans la position fermée de l'obturateur (21), la première
ouverture (212) n'est pas en communication avec l'ouverture d'entrée (23).
5. Dispositif selon la revendication 4, dans lequel: l'ouverture d'entrée (23) et la
première ouverture (212) s'orientent substantiellement dans la même direction; l'ouverture
de sortie (24) et la seconde ouverture (213) sont alignées l'une par rapport à l'autre;
la direction d'orientation de l'ouverture d'entrée (23) et de la première ouverture
(212) sont perpendiculaires à la direction d'alignement de l'ouverture de sortie (24)
et de la seconde ouverture (213).
6. Dispositif selon la revendication 5, dans lequel: la première ouverture (212) est
disposée au niveau d'un canal annulaire (214), réalisé sur la surface latérale de
l'obturateur (21) qui délimite, en coopération avec la paroi interne du logement (22),
une chambre annulaire dans laquelle la première ouverture (212) s'ouvre; dans la position
d'ouverture de l'obturateur (21), la chambre annulaire fait face au moins partiellement
à l'ouverture d'entrée (23); dans la position de fermeture de l'obturateur (21), la
chambre annulaire n'est pas en communication avec l'ouverture d'entrée (23) .
7. Dispositif selon l'une des revendications précédentes, dans lequel l'élément élastique
ou ressort (25) est logé dans une chambre basse pression (27).
8. Dispositif selon la revendication 7, dans lequel la chambre (27) de l'élément élastique
(25) est à l'air libre.
9. Dispositif selon l'une des revendications précédentes, comprenant un clapet à simple
effet (3) disposé en aval du clapet de réduction (2), qui est prédisposé pour activer
l'écoulement du liquide de pilotage du clapet de réduction (2) vers l'organe à pilotager
(16) et pour empêcher un refoulement.
10. Dispositif selon l'une des revendications précédentes, comprenant un clapet limiteur
de pression (4) disposé parallèlement à l'étrangleur (8) et au clapet de réduction
(2) qui est prédisposé pour activer l'écoulement du liquide de pilotage libéré de
l'organe (16) et pour empêcher un refoulement.
11. Un circuit d'activation pour un actionneur hydraulique (9), comprenant: un cylindre
hydraulique; une première branche (14) prédisposée pour relier le distributeur (13)
à une première chambre (10) de l'actionneur hydraulique (9); une seconde branche (15)
prédisposée pour relier le distributeur (13) à une seconde chambre (11) de l'actionneur
hydraulique (9); dans lequel l'organe est un robinet d'équilibrage, ledit robinet
d'équilibrage (16) est disposé le long de la première branche (14) afin de régler
l'écoulement du fluide de commande en sortie de la première chambre (10) lors d'une
étape de diminution de la charge (12); un étrangleur (8) interposé entre la seconde
branche (15) et le robinet d'équilibrage (16); caractérisé en ce qu'il comprend un dispositif de contrôle de la pression de pilotage selon l'une des revendications
précédentes, disposé parallèlement à l'étrangleur (8) entre la seconde branche (15)
et le robinet d'équilibrage (16).