APPLICATION FIELD OF THE INVENTION
[0001] The present finding is directed to the earth-moving machines field, in particular
of the excavators controlled by a hydraulic system comprising at least one sectional
flow-sharing directional control valve having multiple elements or sections (each
element or section being provided with a spool and a compensator), at least one relief
valve, at least one pump, and at least one motor capable of providing the power required.
[0002] More precisely, the present finding finds application in a well-specified and particular
functioning configuration of the machine, i.e., that involving the complete and simultaneous
actuation of at least one section of the directional control valve requiring all the
flow that can be delivered by the pump and of at least another high pressure section.
[0003] An example of that is the case where two sections of the sectional directional control
valve, termed "travel" in the jargon, control the excavator translation while the
third one controls a cylinder: when both said travel sections, which usually require
together the maximum flow, are completely and concurrently actuated, and the third
section is in turn actuated, for example, at the relief valve calibration with the
cylinder at the end of its stroke, the required may come to exceed the one that can
be delivered by the motor, which consequently turns off.
STATE OF THE ART
[0004] In order to avoid exceeding the power that can be delivered by the motor, the current
LS pumps are often provided with a torque limiter that is calibrated so that, if the
required power, that is nothing else than the product of the flow and the pressure,
exceeds that that required can be delivered by the motor, it intervenes by reducing
the power.
[0005] To reduce the required power, the torque limiter has to reduce at least one of the
involved parameters (pressure and/or flow), and particular it intervenes on the flow
by automatically reducing, as a function of the pressure, the maximum inclination
possible of the pump plate and then the maximum flow.
[0006] In so doing, the required power falls back in the limits of the one that can be delivered
by the motor, and the behaviour of the directional control valve, that continues to
be consistent with the flow-sharing functional concepts, is at the maximum pressure
(coincident to that of the relief valve added to the flow losses); and the maximum
flow that is delivered continues to go to the travel sections, however, it being reduced
because of the torque limiter intervention on the pump, the travel sections slow down.
[0007] The result is that upon actuating a third high pressure element, the machine translation
slows down, to then accelerate again when it is released.
[0008] This machine behaviour, even not being a malfunctioning, but the logical consequence
of the system functioning, is not desired by the operator; besides, however, it is
neither acceptable that the system requires a power higher than the one that can be
delivered by the motor.
EXPOSITION AND ADVANTAGES OF THE FINDING
[0009] It is the object of the present discovery to obviate the above-cited drawbacks, i.e.,
the slowdown and acceleration of the machine translation following the actuation of
a further section to that or those already completely actuated and requiring the maximum
flow that can be delivered, by reducing the power required from the motor intervening
on the pressure instead of on the flow, as is typical of the prior art.
[0010] The present invention reduces the maximum pressure to a value such that, when multiplied
by the maximum flow, the required power is always lower than that can be delivered
by the motor, so that the section at the maximum flow (for example, the two travel
sections previously mentioned) is not slowed down in case of the actuation of a third
section at the end of the stroke of the cylinder.
[0011] The pressure increase upon the actuation of a third high pressure section is generated,
as better illustrated in the detailed descriptive part, by the local compensators
of the sections that require the maximum flow (for example, the two travel sections),
which throttle the passage (and so the flow) towards the travels because they are
subjected to the Load Sensing signal coming from the actuated third member.
[0012] By bypassing the local compensators of such sections, the pressure would not increase,
the torque limiter would not intervene, and therefore the travel sections would continue
to work at the maximum speed also during the actuation of a further section at the
end of the stroke; however, in this manner, the travel sections would not act as flow-sharing
with the other ones anymore.
[0013] Instead, by reducing the maximum pressure in each functioning condition of the machine,
the operations requiring high pressures would result to be thereby penalised, such
as, for example, the excavating operation of the excavator; therefore, the optimum
would be to reduce such maximum pressure only when the two travel sections are completely
and concurrently actuate, to then make it to return to the relief valve value when
the two travel sections are no more completely actuated. The present invention, in
the three implementation solutions thereof, looks for a functioning compromise, always
in a flow-sharing logic, to achieve the best functionality of the machine.
[0014] According to a first functioning logic of the finding, which finds application in
the first implementation solution, it is made sure that the compensators "inhibition"
only occurs with the section(s) at the maximum flow being actuated at the end of their
stroke, while the compensator works properly in intermediate positions.
[0015] Therefore, if the maximum pressure that can be delivered by the local compensators
of the sections at the maximum flow (it is reminded that the system is of the flow-sharing
type, with LS functioning) is calculated so that the product of the flow and the pressure
does not make the torque limiter to intervene, then upon actuating the third section
as indicated above, the pump flow does not decrease, therefore the section will have
the whole maximum flow of the pump, thus avoiding the problem described above.
[0016] Said pressure limitation on the local compensators ends as the complete actuation
of the sections, such as, for example, the travel sections, at the maximum flow stops,
thus allowing the system to reach the calibration maximum pressure of the valve.
[0017] According to a further functioning logic of the finding, that finds application in
the second and third implementation solutions, the pressure limitation is also active
in the case of an only partial requirement of flow and not only at the maximum flow
requirement, with the consequence that partial negative effects could possibly occur,
consisting in possible flow increases to the use compared to the desired one, that
are anyway compensated by a considerable constructive simplification of the directional
control valve, as described below.
[0018] Said objects and advantages are all achieved by the method for limiting the maximum
power required by the hydraulic system of an earth-moving machine and by the directional
control valve operating said method, which is the object of the present finding, characterized
in what has been provided for in the claims reported below.
BRIEF DESCRIPTION OF THE FIGURES
[0019] This and other characteristics will result more highlighted by the following description
of some embodiments illustrated, by way of non-limiting example, in the annexed drawings.
- Fig. 1: partial diagram of a mini excavator system comprising a sectional flow-sharing
directional control valve, a pump, motors, a cylinder, and a relief valve, which is
typical of the prior art;
- Fig. 2: section of an element of the flow-sharing directional control valve with the
maximum pressure limiting system that is the object of the present finding (first
implementation solution);
- Fig. 2A: an enlargement of the recess obtained on the spool 2 (first implementation
solution);
- Fig. 3: hydraulic diagram of a mini excavator system comprising the flow-sharing directional
control valve with the maximum pressure limiting system that is the object of the
present finding (first implementation solution);
- Fig. 4: section of an element of the flow-sharing directional control valve with the
maximum pressure limiting system that is the object of the present finding (second
implementation solution);
- Fig. 5: hydraulic diagram of a mini excavator system comprising the flow-sharing directional
control valve with the maximum pressure limiting system that is the object of the
present finding (second implementation solution);
- Fig. 6: section of an element of the flow-sharing directional control valve with the
maximum pressure limiting system that is the object of the present finding (third
implementation solution);
- Fig. 7: hydraulic diagram of a mini excavator system comprising the flow-sharing directional
control valve with the maximum pressure limiting system that is the object of the
present finding (third implementation solution);
- Fig. 8: hydraulic diagram with distribution of the flows and pressures of the flow-sharing
directional control valve that is typical of the prior art, with the 2 travel sections
completely and concurrently actuated;
- Fig. 9: hydraulic diagram with distribution of the flows and pressures of the flow-sharing
directional control valve that is typical of the prior art, upon actuating the third
section with cylinder at the end of the stroke;
- Fig. 10: hydraulic diagram with distribution of the flows and pressures of the flow-sharing
directional control valve that is typical of the prior art, under conditions of complete
flow that is sent to the travels and delivery pressure equal to the relief valve calibration
pressure plus the pump limit;
- Fig. 11: hydraulic diagram with distribution of the flows and pressures of the system
with the flow-sharing directional control valve with the maximum pressure limiting
system that is the object of the present finding (first implementation solution);
- Fig. 12: hydraulic diagram with distribution the flows and pressures of the system
with the flow-sharing directional control valve with the maximum pressure limiting
system that is the object of the present finding (second implementation solution);
- Fig. 13: hydraulic diagram with distribution the flows and pressures of the system
with the flow-sharing directional control valve with the maximum pressure limiting
system that is the object of the present finding (third implementation solution).
DESCRIPTION OF THE FINDING AND NUMERICAL REFERENCES
[0020] With particular reference to Figs. 1, 8, and 9, the functioning characteristics of
an excavator system with the maximum power limiting system that is typical of the
prior art and the problems related thereto are illustrated.
[0021] The system illustrated in Fig. 1 comprises a sectional flow-sharing directional control
valve having 3 sections (A, B, and C), a relief valve D, a load sensing pump PP, and
a motor M; each of the sections A, B, or C of the system flow-sharing valve comprises
a spool 2 and a compensator 1.
[0022] It is assumed that the two A and B sections of the valve control the excavator travels,
that is, the actuation of the feeding means, and that the third section C controls
a cylinder; the sections A and B are conventionally sized so that, when the two travels
are completely and concurrently actuated, they require the maximum flow Q that can
be delivered by the pump PP, and in particular each of the sections A and B requires
half of the maximum flow Q, i.e., Q/2.
[0023] This means that, by completely actuating the two travel sections A and B, the pump
plate PP is inclined at most, thus providing the maximum flow Q
max possible; in such situation, the flows and pressures distribution is represented
in the simplified diagram of Fig. 8.
[0024] The above-reported hypothesis, in its widest meaning, also provides for the actuation
of a single section, A or B, completely actuated so as to require all the maximum
flow Q that can be delivered by the pump PP.
[0025] Referring again to the example reported above, it is assumed that for the actuation
of the travels, which are controlled by the sections A and B, 100 bars are needed,
that the pump PP limit is of 20 bars, and that the flow losses through the fully open
local compensator 1 are null (because the sections A and B are those at the highest
pressure); therefore, there are 100 bars downstream the spools 2, 100 bars in the
LS line, and 120 bars from the pump PP to the spools 2 (delivery pressure).
[0026] When also a third section C is actuated, concurrently to the sections A and B, and
that the cylinder controlled by it is at the end of its stroke, a transient is present,
in which the new flows and pressures distribution is reported in the simplified diagram
of Fig. 9.
[0027] Since the cylinder controlled by the section C is at the end of its stroke, the same
pressure as the delivery - 120 bars - arrives to the signal LS, therefore to the pump
PP, without anyway generating alterations to the state of the pump PP itself, as it
is already at its maximum.
[0028] Therefore, in this situation of maximum flow, the pressure increase is not due to
the signal LS increase to the pump PP, but to the fact that this signal arrives to
the local compensators 1 of the sections A and B.
[0029] The local compensators 1 of the sections A and B then intervene, according to the
known flow-sharing logic, throttling the flow to the travels, and in doing so, it
is they that increase the delivery pressure until arriving to the end situation, in
which all the flow continues to go to the travels, which therefore do not slow down,
but with a delivery pressure that is equal to the relief valve D calibration pressure
plus the pump PP limit, according to the flows and pressures distribution highlighted
in the simplified diagram of Fig. 10.
[0030] Assumed that the relief valve is calibrated at 250 bars, therefore there are, in
the sections A and B, 270 bars from the pump PP to the spools 2 (delivery pressure),
250 bars downstream the spools 2, and 250 bars in the LS line.
[0031] This behaviour will then continue to be controlled according to the flow-sharing
logic.
[0032] Since the machines are usually not equipped with first motors M (generally endothermic)
capable of meeting the requirement of maximum power P
max that there is in the case of the requirement of the maximum flow Q
max at the maximum pressure p
max, that is the relief valve D calibration one, it results that the motor M would turn
off.
[0033] To obviate this problem, the prior art usually uses LS pumps provided with a torque
limiter that is calibrated so that, if the required power P = Q x p exceeds the one
that is generable by the motor M, it intervenes by reducing the required power, i.e.,
by reducing at least one of the two involved parameters; in particular, the pump torque
limiter intervenes on the flow Q by automatically reducing, as a function of the pressure,
the maximum inclination possible of the pump plate, therefore the maximum flow Q
max.
[0034] The result, as previously described, is that upon actuating a third element C at
high pressure, the machine translation slows down, to then accelerate again when it
is released.
DISCLOSURE OF THE INVENTION
[0035] The present finding solves the above-mentioned slowdown/acceleration problem of the
machine translation by intervening on the other power factor, i.e., on the pressure
p; such result is obtained by bypassing the local compensators of the section(s) that
require the maximum flow (for example, of the travel sections) in the instant in which
it/they is/are completely and concurrently actuated relative to a third section with
cylinder at the end of its stroke; said bypassing occurs by imparting a delivery pressure
lower than that imparted by the relief valve D calibration.
[0036] The present finding can be applied both to hydraulic systems in which the LS pump
is provided with a torque limiter, and to systems in which the pump is not provided
with it.
[0037] The avobe-mentioned delivery pressure is calculated so that the power required is:
Less than or equal to the power that can be delivered by the motor M, if the system
pump PP is not provided with a torque limiter;
or, alternatively,
less than the power at which the torque limiter is tripped, if the system pump PP
is provided with a torque limiter.
[0038] Assuming that, at the maximum flow, the torque limiter operates upon reaching 190
bars, the local compensators intervention should have to be calibrated so that they
create a delivery pressure not higher than 180 bars.
[0039] In this manner, upon actuating the third section C, the pump PP flow does not decrease,
therefore the travels do not slow down (i.e., the sections at the maximum flow continue
to operate in such configuration), thus avoiding the previously described problem.
[0040] Three possible embodiments of the invention in order to limit the maximum pressure
are described herein below.
FIRST EXEMPLARY EMBODIMENT
[0041] With particular reference to Figs. 2, 3, and 11 the first constructive solution of
the maximum pressure limiting system that is the object of the present finding is
described.
[0042] A first method for limiting the maximum pressure in the case of completely actuated
travels A and B together with a third section C is to make so that the spools 2 of
the sections A and B, at the end of their stroke, open a passage 3 between the two
areas upstream 4 and downstream 5 the compensator 1 thereof, so as to bypass the same.
[0043] Said passage 3 is a recess that is obtained on the spool 2 of section A, B, as illustrated
in detail in Fig. 2A.
[0044] Said passage 3 has to be such that, at the delivery pressure of 180 bars calculated
before, all the maximum flow Q (Q/2 per travel) passes through it, and not through
the compensator 1, that is practically shut out. By doing so, when the spools 2 of
the travels A and B are completely actuated, and a third section C is actuated, the
maximum flow Q (which, in the example, is divided in Q/2 per part) continues to go
entirely to the travels A and B, the delivery pressure does not reach the calibration
pressure value of the relief valve D, but only the set pressure value (the above-mentioned
180 bars).
[0045] At this pressure value, the torque limiter is tripped, therefore the travels do not
slow down, thus obviating the problem reported above.
[0046] As illustrated in the simplified diagram of Fig. 11, the flows and pressures distribution
is as follows: 180 bars from the pump PP to the spools 2 (delivery pressure), 160
bars downstream the spools 2, and 180 bars in the LS line.
SECOND EXEMPLARY EMBODIMENT
[0047] With particular reference to Figs. 4, 5, and 12, the second constructive solution
of the maximum pressure limiting system that is the object of the present finding
is illustrated.
[0048] A second method for limiting the maximum pressure consists in opening a passage 2E,
practically, a hole, between the two areas upstream 4 and downstream 5 the compensator
1 directly in the section A and B.
[0049] Said passage 2E is calculated so that, at the delivery pressure of 180 bars calculated
before, all the flow Q (Q/2 per travel) passes through it, thus bypassing the compensator
1.
[0050] As illustrated in the simplified diagram of Fig. 12, the flows and pressures distribution
is as follows: 180 bars from the pump PP to the spools 2 (delivery pressure), 160
bars downstream the spools 2, and 180 bars in the LS line.
[0051] With the through hole 2E obtained directly in the sections A and B, the pressure
limiting is, however, active also in the case of only partial requirement of the flow,
and not only at the maximum requirement, with the consequence that, when the travels
sections A, B are partially actuated, flow increases to the use compared to that desired
can occur, which translate in acceleration phenomena.
[0052] However, on the other hand, the solution cost is lower, it being constructively easier.
THIRD EXEMPLARY EMBODIMENT
[0053] With particular reference to Figs. 6, 7, and 13, the third constructive solution
of the maximum pressure limiting system that is the object of the present finding
is illustrated.
[0054] A third method for limiting the maximum pressure consists in using a compensator
1A that is designed so that, at the end of the stroke, it leaves a passage 2G open,
through which all the flow Q passes (Q/2 per travel) at the previously calculated
pressure of 180 bars.
[0055] Said passage 2G is obtained by limiting the compensator stroke so as not to let it
completely close, or through a recess obtained on the same compensator.
[0056] Also in this case, as in the second constructive solution, the limitation of the
maximum pressure is active also in the case of only partial requirement of flow, and
not only at the maximum requirement, therefore in intermediate positions of the spool
2 of the travels A and B, acceleration phenomena can occur; however, such disadvantages
are compensated by the simplicity of the solution.
[0057] This functionality is always valid when the power required P, given by the maximum
flow absorbed by the travels for the maximum pressure delivered by a third use C with
the cylinder at the end of its stroke, exceeds the maximum power that can be delivered
by the motor M, independently from the presence or not of the torque limiter.
[0058] The optional absence of the torque limiter does not rise the motor turning off problem,
since this is avoided by limiting the maximum pressure as described before.
[0059] The same applies also if the pump PP is not LS, and a compensator is then comprised
on the flow-sharing directional control valve side.
1. A method for limiting the maximum power required by the hydraulic system of an earth-moving
machine, such hydraulic system being composed 5 of a sectional flow-sharing directional
control valve having multiple sections (A, B, C), each section comprising a local
compensator (1) and a spool (2), with one section (A) or (B) or both the sections
(A) and (B) requiring the 10 maximum flow and at least one additional section (C)
designed for actuating a work function of the machine, a pump (PP) with or without
torque limiter, a motor (M) and a relief valve (D),
characterized in that it includes the step of bypassing the local compensators 15 (1) of the section and/or
sections (A, B) requiring the maximum flow when they are fully actuated at the same
time as the third section (C), to impart a lower delivery pressure than that of the
relief valve (D), and calculated so that the power required (the product 20 of flow
and pressure) is:
• less than or equal to the power that can be delivered by the motor (M), if the pump
(PP) has no torque limiter or
• less than the power at which the torque limiter is tripped, if the pump (PP) has
one whereby the flow is not reduced.
2. The method as claimed in claim 1, characterized in that it includes the step of bypassing the local compensator (1) of the section and/or
sections (A, B) requiring the maximum flow, by opening a passage (3) between the two
areas upstream (4) and downstream (5) from the compensator (1); said passage (3) being
directly opened by the spool/s (2) of the section/s (A, B) at the end of their stroke
; said passage (3) being calculated so that, with the delivery pressure appropriately
calculated as claimed in claim 1, all the maximum flow passes through it and not through
the compensator (1).
3. The method as claimed in claim 1, characterized in that it includes the step of bypassing the local compensator (1) of the section and/or
sections (A, B) 10 requiring the maximum flow, by opening a passage (2E) between the
two areas upstream (4) and downstream (5) from the local compensator (1), directly
machined into the sections (A, B) requiring the maximum flow; said passage (2E) being
calculated so that, with the delivery pressure appropriately calculated as claimed
in claim 1, all the maximum flow passes through it and bypasses the compensator (1).
4. The method as claimed in claim 1, characterized in that it includes the step of bypassing the local compensator (1) of the section and/or
sections (A, B) requiring the maximum flow, by opening a passage (2G) that is left
open by the local compensator (1) itself at the end of its stroke, said passage (2G)
being calculated so that, with the delivery pressure appropriately calculated as claimed
in claim 1, all the flow passes through it and bypasses the compensator (1).
5. A sectional flow-sharing directional control valve having multiple sections (A, B,
C), each section comprising a local compensator (1) and a spool (2), a pump (PP) with
or without a torque limiter, a motor (M) and a relief valve (D), characterized in that the section/s (A, B) designed to operate at the maximum flow open a passage (3, 2E,
2G) to bypass the local compensator (1) if a third section (C) is actuated;
said passage (3, 2E, 2G) being calculated so that, with the delivery pressure appropriately
calculated as claimed in claim 1, all the flow passes through such passage (3, 2E,
2G).
6. The directional control valve as claimed in claim 5, characterized in that said passage (3) is directly opened by a recess formed on the spool (2) at the end
of its stroke, between the two areas upstream (4) and downstream (5) from the local
compensator (1).
7. The directional control valve as claimed in claim 5, characterized in that said passage (2E) is a hole formed between the two areas upstream (4) and downstream
(5) from the local compensator (1), directly machined in the section/s (A, B) requiring
the maximum flow.
8. The directional control valve as claimed in claim 5, characterized in that said passage (2G) is opened directly by the local compensator (1) itself at the end
of its stroke.