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EP 0 446 331 B1 |
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EUROPEAN PATENT SPECIFICATION |
| (45) |
Mention of the grant of the patent: |
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01.02.1995 Bulletin 1995/05 |
| (22) |
Date of filing: 04.10.1990 |
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International application number: |
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PCT/BR9000/018 |
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International publication number: |
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WO 9105/164 (18.04.1991 Gazette 1991/09) |
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PISTON PUMP AND PISTON PUMP AND MOTOR ASSEMBLY
KOLBENPUMPE ODER KOLBENPUMPE UND MOTORKONSTRUKTION
POMPE A PISTON, ET ENSEMBLE A POMPE A PISTON ET MOTEUR
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Designated Contracting States: |
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AT BE CH DE DK ES FR GB IT LI LU NL SE |
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Priority: |
03.10.1989 BR 8905019
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Date of publication of application: |
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18.09.1991 Bulletin 1991/38 |
| (73) |
Proprietors: |
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- NASCIMENTO PACHECO, José, Mauricio
13050-Campinas, SP (BR)
- NASCIMENTO PACHECO, Claudio
13023-Campinas, SP (BR)
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Inventors: |
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- NASCIMENTO PACHECO, José, Mauricio
13050-Campinas, SP (BR)
- NASCIMENTO PACHECO, Claudio
13023-Campinas, SP (BR)
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| (74) |
Representative: Everitt, Christopher James Wilders et al |
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F.J. CLEVELAND & COMPANY
40/43 Chancery Lane London WC2A 1JQ London WC2A 1JQ (GB) |
| (56) |
References cited: :
DE-A- 2 746 476
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DE-A- 2 913 688
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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).
|
BACKGROUND OF THE INVENTION
Field of the Invention
[0001] The present invention relates to hydraulic systems and, more specifically, to a piston
pump and to a piston pump motor assembly particularly suitable to be used in the driving
of working units.
Prior Art
[0002] Several types and models of hydraulic pumps are widely known from the state of the
art, which are used in any and all types of hydraulic systems.
[0003] Generally speaking, the pumps can be defined as being one of the basic elements of
the hydraulic systems, together with valves, motors, connections, tubings and others,
and their main objective is to convert electrical, mechanical or even hydraulic energy
received from a motor into dynamic hydraulic energy.
[0004] The hydraulic pumps presently known can be divided or classified in five main types
or groups, according to its operative principle, namely reciprocating pumps, gear
pumps, blade pumps, piston pumps and centrifugal pumps.
[0005] The reciprocating or alternating movement hydraulic pumps have a major disadvantage
in that the same do not produce a continuous flow of hydraulic energy, which prevents
their utilization in hydraulic systems where a continuous flow is needed.
[0006] The gear type hydraulic pumps are capable of producing a continuous flow, with flow
rates of approximately 280 1/min at pressures of 120 kg/cm² (∼120 bar). However, the
main problem with this type of pump is their low efficiency, since a major part of
the received power is used to move its gears and only a small portion of that power
is used to generate energy.
[0007] The blade type pumps, while being capable of producing flow rates similar to those
of the gear pumps with a better efficiency, present the problem of being of complex
construction, with the blades being radially displaceable within a rotor which, in
turn, is eccentrically mounted in a housing, turning these pumps fragile and, therefore,
more susceptible of failure.
[0008] The piston type hydraulic pumps are, up to now, the most resistant and they present
the best efficiency, when the relationship between the power supplied thereto and
the amount of dynamic hydraulic energy produced is considered.
[0009] These pumps can be of the axial type, where the pistons move parallel to the rotor
shaft, or of the radial piston type, in which the pistons move inwardly and outwardly
with regard to a piston eccentrically mounted within a housing, in an operation similar
to those of the blade type pumps.
[0010] Due to their rugged construction, the piston pumps are capable of providing flow
rates up to 1200 1/min of pressures in the range of 700 kg/cm² (∼700 bar), without
prejudice to the safety requirements.
[0011] Finally, the centrifugal pumps are mainly used in hydraulic systems where great volumes
of hydraulic fluid need to be displaced at medium or low pressures, due to its low
resistance to backup pressures, which makes its control more difficult.
[0012] Hydraulic motors using hydraulic energy developed by the pumps, both of the rotary
and piston types, are also widely known from the state of the art.
[0013] The rotary hydraulic motors are rarely used mainly because they can be easily replaced
by electric motors. The piston motors, in turn, have an operating principle similar
to those of the piston pumps, that is to say, the displacement of a piston causes
the displacement of a given volume of hydraulic fluid.
[0014] Both the pumps and the piston motors can be of the single action type, when the piston
produces work only in a single direction of its stroke, or of the double action type,
when the piston produces work in both directions of its stroke.
SUMMARY OF THE INVENTION
[0015] The objective of the present invention is to provide a hydraulic pump and motor assembly,
more particularly a piston pump and motor, connected in a closed hydraulic circuit,
in which the power developed by the said pump unit is sufficient for driving the said
motor, which generates an output power for driving an independent working unit.
[0016] According to the present invention, this objective is achieved by the provision of
a piston pump of the type comprising at least a double action piston, the pump having
driving means for receiving an input power, a first pair of crank arms rotatively
driven by the driving means, a second pair of crank arms coupled to a movable driven
shaft, a pair of connecting rods coupling, in an intercrossed manner, the first and
second pairs of crank arms and connecting means coupling the movable driven shaft
to the piston, whereby upon each revolution of the driving means the piston carries
out four strokes of hydraulic fluid volumetric displacement.
[0017] Still in accordance with the present invention, this objective is achieved by the
provision of a piston pump and motor assembly of the type comprising at least a double
action piston, the assembly having a pump unit with driving means for receiving an
input power, a first pair of crank arms rotatively driven by the driving means, a
second pair of crank arms coupled to a movable driven shaft, a pair of connecting
rods coupling in an intercrossed manner the crank arms of the first and second pairs
of arms, connecting means coupling the movable driven shaft to the piston of said
pump, whereby upon each revolution of the driving means, the pump piston carries out
four strokes of hydraulic fluid volumetric displacement, means for directing the hydraulic
fluid displaced by the pump piston for driving the driving means and a motor unit
having cam means integral with the driving means and cam follower means coupled to
the pistons of the motor.
BRIEF DESCRIPTION OF THE DRAWINGS
[0018] The present invention will be described in greater details in a non-limitative and
exemplified manner making reference to its presently preferred embodiment, which is
illustrated in the attached drawings, wherein:
Figure 1 is a cross-section view of a piston pump and motor assembly which embodies
the present invention;
Figure 2 is cross-section view of the motor unit of the assembly illustrated in figure
1, taken along line II-II in figure 1;
Figure 3 is a cross-section view of the motor unit shown in figure 1, taken along
line III-III of figure 1;
Figure 4 is a cross-section view of the pump unit of the assembly shown in figure
1, taken along line IV-IV of figure 1;
Figure 5 is a cross-section view of a second embodiment of the piston pump and motor
assembly which embodies the invention;
Figure 6 is a cross-section view of the motor unit of the assembly shown in figure
5, taken along line VI-VI of figure 5;
Figure 7 is cross-section view of the pump unit of the assembly shown in figure 5,
taken along line VII-VII of figure 5;
Figure 8 is a cross-section view of another embodiment of the pump unit shown in figure
7;
Figure 9 is a cross-section view of the pump unit shown in figure 8; and
Figure 10 is a schematic view of the basic hydraulic circuit of the piston pump and
motor assembly of the present invention.
DESCRIPTION OF THE PREFERRED EMBODIMENT
[0019] Making reference to the drawings, a piston pump and a piston pump and motor assembly
which embody the present invention are illustrated in the attached drawings, which
are intended to illustrate the presently preferred embodiments of the invention and
are not intended to limit its scope.
[0020] Figure 1 is a cross-section view of a piston pump and motor assembly which embodies
the present invention comprising a box or housing 1 having a suitable shape, driven
by a pulley 2 fixed to a driving shaft 3 by means of a key 4 or the like.
[0021] The driving shaft 3 freely rotates within the box 1 supported on ball bearings 5
and a retainer 6 is placed in a housing 7 of the box 1, adjacent to the pulley 2,
so as to prevent any hydraulic fluid leakage therefrom. Additionally, the shaft is
also provided with a counterbalance wheel 8 near to one of its ends.
[0022] The counterbalance wheel 8 and two cams 9, 10, intended to drive the driving pistons
11, 12 of the motor unit are also secured to the driving shaft 3 by means of the keys
4, as can be seen from the cross-section illustration showing details of its connecting
portions to the shaft 3 and also from figures 2 and 3.
[0023] The rotational movement of the cams 9, 10 is converted into alternate movement of
the pistons 11, 12 by cam follower rollers 13 fixed to the lower ends of the pistons
11, 12, by means of U shaped fixing elements 14, which legs are formed with transpassing
rolls within which are received the central shafts 16 of the ball bearings 17, around
which the rollers 13 freely rotate.
[0024] The cams 9 and 10 are preferably discs having a contour defined by the Archimedes
spiral curve equation, so that its rotational movement, when converted into movement
of the pistons 11, 12 causes this piston movement to be uniform in both directions
so as to prevent pressure peaks in the hydraulic fluid being pumped.
[0025] Referring now more particularly to figure 4, the hydraulic pump unit for fluids of
the pump and motor assembly is shown driven by the driving shaft 3 through a gear
18 connected thereto by a key 4, which engages another gear 19 fixed to a driven shaft
20 having two crank arms 21 connected thereto by means of keys 4.
[0026] The driven shaft 20 freely rotates supported by ball bearings 22 received in support
columns 23 and each one of the crank arms 21 is provided with a ball bearing 24 in
its distal end for rotational coupling with a pair of intercrossed connecting rods
25 which transmit the rotary movement of the driven shaft 20 to an upper driven shaft
26 movable by means of a similar assembly of ball bearings 27 provided in the distal
ends of the crank arms 28 secured to the movable driven shaft 26 by means of keys
4.
[0027] The movable upper driven shaft 26 freely rotates supported by bearings 29 secured
to a fixing element 30. An anti-backup mechanism 31 such as a sprocket is coupled
to the movable upper driven shaft 26, so as to prevent rotation thereof in a direction
contrary to a desired one.
[0028] The inter-crossed disposition of the connecting rods 25 causes each revolution of
the driving shaft 3, or of the lower driven shaft 20, to be transformed into two vertical
displacements of the movable driven shaft 26, and accordingly, of the shaft 32 to
which the fixing element 30 is secured and which has a piston 33 secured at its end,
whereby this piston 33 moves four times within the cylinder 34 upon each revolution
of the driving shaft 3, while in a normal crank arm system this piston would only
move twice.
[0029] This allows the piston 33 to carry out a hydraulic fluid volumetric displacement
within the cylinder 34 allowing the piston pump and motor assembly to generate an
output power for a separate operating unit.
[0030] Since this piston 33 is of the double action type, unidirectional valves 35, 36,
37, 38, are disposed in the ends of the cylinder 34, connecting the fluid supply lines
39 and the fluid discharge line 40 thereto.
[0031] Referring again to figure 1, the piston pump and motor assembly has a rotary directional
valve 41, of high flow rate and speed, having a box 42 provided with inlet/outlet
openings for hydraulic fluid 43 within which is a conversion and distribution bushing
44 formed with four openings 45, which area corresponds to the area of each inlet/outlet
opening 43, so as to prevent interruption of the hydraulic fluid flow due to clogging.
[0032] A distribution rotor 46 is disposed within the bushing 44 so as to control the distribution
of the hydraulic fluid in the system, which rotor is driven by means of a gear 47
coupled thereto through a fine adjust means 48, which will not be described herein
in greater details since it is not part of the present invention.
[0033] Two bearings 49 support the distribution rotor 46 within the bushing 44, so that
the rotor can freely rotate when driven by the gear 47 which, in turn, is directly
driven by a gear 50 secured to the driving shaft 3 by means of a key 4.
[0034] In this manner, the rotary directional valve 41 permits the circulation of the hydraulic
fluid from a pressure accumulator 51 to a pressurized reservoir 52 in a closed hydraulic
circuit as represented by figure 10.
[0035] Figures 5, 6 and 7 illustrate a second embodiment of the present invention, in which
the piston pump and motor assembly is shown having pairs of pistons.
[0036] A box 53, having a suitable shape receives a driving shaft 54 which freely rotates
on bearings 55 secured to the box, with a retainer 56 being disposed in a housing
57 of the box to prevent any hydraulic fluid leakage. Again, a pulley 58 is secured
by means of a key 59 to the end of the shaft 54, for transmitting/receiving a torque.
[0037] A gear 60 and a counterbalance wheel 61 are fixed to the shaft 54 by means of a key
59, which gear 60 engages a second gear 62 connected to a second shaft 63 parallel
to the driving shaft 54 by means of a key 59, which simultaneously fixes a second
counterbalance wheel 64.
[0038] The second shaft 63 freely rotates within the box 53 supported on bearings 65 and
projects into the pump compartment of the assembly, for driving the pump mechanism
as it will be described in greater details below.
[0039] Each one of the shafts 54, 63 has a cam disc 66 attached thereto by means of keys
67.
[0040] As above mentioned, the cams 66 have profiles defined according to the Archimedes
spiral curve, so that the transformation of the rotational movement of the shafts
in an alternate movement of the pistons results in a uniform and constant displacement
for avoiding pressure peaks of the hydraulic fluid.
[0041] Two cam follower rollers 68 interconnected by a rocker arm 69 are coupled to a first
piston 70 by means of a link shaft 71 for the rocker arm, while the opposed piston
74 is also driven by two cam follower rollers 72 interconnected by a rocker arm 73
secured to the piston 74 by means of a link pin 75.
[0042] This constructive disposition of the present invention allows a perfect balance of
all the force components, while still providing a greater volumetric displacement
due to the utilization of pairs of pistons.
[0043] Within the pump compartment, the second shaft 63 has a gear 76 attached thereto by
means of a key 59, which cooperates with a second gear 77 integral with an intermediate
shaft 78 for transmitting a rotational movement to the gears 79 which cause the pumping
system to rotate.
[0044] The gears 79 are fixed to shafts 80, respectively, and each shaft has a first pair
of crank arms 81 attached thereto by means of keys 59. Similar to the preceding embodiment,
the shafts 81 rotate on bearings 82 disposed in supports 83.
[0045] The distal ends of the crank arms 81 are connected to the distal ends of a second
pair of crank arms 84 by means of intercrossed connecting rods 85, whereby the shafts
86, which freely rotate on bearings 87 having a sprocket system 88 coupled to each
one thereof, are vertically displaced upon rotational movement of the shafts 81.
[0046] The vertical displacement of the shafts 86 causes a displacement of the pistons 89
coupled thereto by connecting members 90. Thus, the pistons 89 move four times upon
each rotation of the shafts 81.
[0047] Again, in order that the pistons function as double action pistons, admission 91
and discharge 92 unidirectional valves are coupled to the ends of the cylinders 93
within which the pistons move.
[0048] Figures 8 and 9 illustrate a second embodiment of the composite pump unit disclosed
in figure 7, particularly suitable for direct coupling to a motor assembly. Due to
the similarity between this embodiment and the embodiment shown in figure 7, similar
reference numbers were given to the same component parts.
[0049] Shaft 63 having a gear 76 attached thereto by means of a key 59 within the housing
94, supported by bearings 95 and a retainer 96, received in a housing 97 of the box
94, serve to prevent any hydraulic fluid leakage out of the box.
[0050] Gear 76 directly engages gear 79, without the intermediate gear 77 and respective
shaft 78, whereby the rotation of the shaft 63 is transmitted to the shafts 80 by
the gears 76 and 79, with the shafts 80 rotating in opposite directions.
[0051] As already explained with regard to figures 5, 6 and 7, the shafts 80 rotate on bearings
82 in columns 83, thus defining a synchronized stationary dual assembly by means of
gears.
[0052] The crank arms 81 fixed to each one of the respective shafts 80 have their distal
ends connected to the distal ends of the similar crank arms 84 by means of the respective
pairs of intercrossed connecting rods 85, whereby the rotational movement of the lower
shafts 80 is transformed into a vertical displacement movement of the shafts 86 to
which the crank arms 84 are attached.
[0053] These shafts 86, in turn, rotate on bearings 87, with a gear mechanism 88 being used
for preventing its displacement in a direction contrary to the desired one, and its
alternate movement is transmitted to the cylinders 89 by means of connecting members
90.
[0054] According to the present invention there are provided a piston pump and a piston
pump and motor assembly which are capable of producing an output power for driving
an independent separate operating unit.
[0055] Figure 10 schematically illustrates the basic hydraulic system of the present invention,
comprising, besides the above-mentioned pressure accumulator 51 and pressurized reservoir
52, a pump unit B, a motor unit M, the high speed directional valve 42, the conventional
hydraulic control valves V and an oil cooler R.
1. A piston pump of the type comprising at least a double action piston, comprising driving
means (2,3,4) for receiving an input power, characterized by a first pair of crank
arms (21) rotatively actuated by said driving means (2,3,4), a second pair of crank
arms (28) coupled to a movable driven shaft (26), a pair of connecting rods (25) coupling
in an intercrossed manner said first (21) and second (28) pairs of crank arms, and
connecting means (29,30,31) coupling said movable driving shaft (26) to said piston
(33), whereby upon each revolution of said driving means said piston carries out fours
strokes of hydraulic fluid volumetric displacement.
2. A piston pump in accordance with claim 1,wherein said driving means comprise a driving
shaft (3) having a driving pulley (2) attached thereto by means of a key (4).
3. A piston pump in accordance with claim 2, wherein said driving shaft (3) has a gear
(18) integral therewith and engaging a second gear (19) integral with a second driven
shaft (20).
4. A piston pump in accordance with claim 3, wherein said first pair of crank arms (21)
is integral with said second driven shaft (20)
5. A piston pump in accordance with claim 4, wherein each one of the crank arms (21)
of said first pair is coupled to an end of each crank arm (25) of the said pair.
6. A piston pump in accordance with claim 5, wherein the opposite ends of each crank
arm (25) are coupled in an intercrossed manner to said crank arms (28) of said second
pair.
7. A piston pump in accordance with claim 6, wherein the coupling between said crank
arms (21,28) and said connecting rods (25) comprises bearings (24) therein, integral
with a common shaft.
8. A piston pump in accordance with claim 7, wherein said movable driven shaft (26) is
coupled to said piston (33) by means of a support member (30) having a pair of bearings
(39) on which said shaft (26) freely rotates.
9. A piston pump in accordance with claim 8, wherein said support member (30) comprises
an anti-backup means (31) for securing rotation of the shaft in a single direction.
10. A piston pump in accordance with claim 9, wherein said anti-backup means (31) comprises
a sprocket.
11. A piston pump and motor assembly, of the type comprising a piston pump unit and a
piston motor unit coupled in a closed hydraulic circuit, said pump unit having at
least one double action piston, comprising driving means (2,3,4,54,58,63) for receiving
an input power, characterized by at least a first pair of crank arms (21,81) rotatively
driven by said driving means (2,3,4,54,58,63), at least a second pair of crank arms
(28,84) coupled to at least one movable driven shaft (26,86), at least a pair of connecting
rods (25,85) coupling in a intercrossed manner said first and second pairs of crank
arms (21,28,81,84), connecting means (29,30,32,90) coupling said movable driven shaft
(26,86) to at least one piston (33,89) of said pump unit, whereby upon each revolution
of said driving means said pistons carry out four strokes of hydraulic fluid volumetric
displacement, means (42) for directioning said displaced hydraulic fluid for actuating
said driving means, cam means (9,10,66) integral with said driving means (3,54,58,63)
and cam follower means (13,68,72) coupled to each piston of said motor unit.
12. A piston pump and motor assembly in accordance with claim 11, wherein said driving
means comprise a driving shaft (3,54) having a pulley (2,58) attached thereto by means
of a key (4,59).
13. A piston pump and motor assembly in accordance with claim 12, wherein said driving
shaft (3, 54) has a gear (18,60) integral therewith engaging a second gear (19,62,76)
integral with a second driven shaft (20,63,80).
14. A piston pump and motor assembly in accordance with claim 13, wherein said at least
one first pair of crank arms (21,81) is integral with said second shaft (20,80).
15. A piston pump and motor assembly in accordance with claim 14, wherein each one of
said crank arms (21,81) of said at least one first pair is coupled to an end of each
said crank arm (25,85) of said at least one pair.
16. A piston pump and motor assembly in accordance with claim 15, wherein the opposite
ends of each crank arm (25,85) are coupled in an intercrossed manner to said crank
arms (28,84) of said at least one second pair.
17. A piston pump and motor assembly in accordance with claim 16, wherein said at least
one movable shaft (26,86) is coupled to said at least one piston (33,89) by means
of a support member (30,90) having a pair of bearings (29,87) on which said shaft
(26,86) freely rotates.
18. A piston pump and motor assembly in accordance with claim 17, wherein said support
member (30,90) comprises an anti-backup means (31,88) for securing the rotation of
the shaft in a single direction.
19. A piston pump and motor assembly in accordance with claim 11, wherein said means for
directioning the hydraulic fluid comprises high speed directional valve (42).
20. A piston pump and motor assembly in accordance with claim 11, wherein said cam means
comprise cam discs (10,66).
21. A piston pump and motor assembly in accordance with claim 20, wherein said cam discs
(9,10,66) have a contour defined in accordance with the Archimedes spiral curve.
22. A piston pump and motor assembly in accordance with claim 11, wherein said cam follower
means comprise rollers (13,68,72).
1. Kolbenpumpe in einer zumindest einen doppeltwirkenden Kolben umfassenden Ausführung,
die Antriebsmittel (2, 3, 4) zur Aufnahme einer Eingangsleistung umfaßt, gekennzeichnet
durch ein erstes Paar Kurbelarme (21), die in drehbarer Weise durch die genannten
Antriebsmittel (2, 3, 4) betätigt werden, ein zweites Paar Kurbelarme (28), die mit
einer bewegbaren angetriebenen Welle (26) verbunden sind, ein Paar Verbindungsstangen
(25), die in sich kreuzender Weise die genannten ersten (21) und zweiten (28) Paare
Kurbelarme verbinden, sowie Verbindungsmittel (29, 30, 31), die die genannte bewegbare
antreibende Welle (26) mit dem genannten Kolben (33) verbinden, so daß bei jeder Drehung
der genannten Antriebsmittel der genannte Kolben vier Hübe zur Volumenverdrängung
von Hydraulikmedium durchführt.
2. Kolbenpumpe nach Anspruch 1, wobei die genannten Antriebsmittel eine antreibende Welle
(3) umfassen, die eine mit Hilfe eines Keiles (4) daran befestigte Antriebsscheibe
(2) aufweist.
3. Kolbenpumpe nach Anspruch 2, wobei die genannte antreibende Welle (3) ein damit integral
verbundenes Zahnrad (18) aufweist, das in ein mit einer zweiten angetriebenen Welle
(20) integral verbundenes zweites Zahnrad (19) eingreift.
4. Kolbenpumpe nach Anspruch 3, wobei das genannte erste Paar Kurbelarme (21) mit der
genannten zweiten angetriebenen Welle (20) integral verbunden ist.
5. Kolbenpumpe nach Anspruch 4, wobei jeder einzelne der Kurbelarme (21) des genannten
ersten Paares mit einem Ende eines jeden Kurbelarmes (25) des genannten Paares verbunden
ist.
6. Kolbenpumpe nach Anspruch 5, wobei die gegenüberliegenden Enden eines jeden Kurbelarmes
(25) in sich kreuzender Weise mit den genannten Kurbelarmen (28) des genannten zweiten
Paares verbunden sind.
7. Kolbenpumpe nach Anspruch 6, wobei die Verbindung zwischen den genannten Kurbelarmen
(21, 28) und den genannten Verbindungsstangen (25) darin vorgesehene Lager (24) umfaßt,
die mit einer gemeinsamen Welle integral verbunden sind.
8. Kolbenpumpe nach Anspruch 7, wobei die genannte bewegbare angetriebene Welle (26)
mit dem genannten Kolben (33) über ein Stützelement (30) verbunden ist, das ein Paar
Lager (39) umfaßt, auf denen die genannte Welle (26) sich frei dreht.
9. Kolbenpumpe nach Anspruch 8, wobei das genannte Stützelement (30) ein Antirücklaufmittel
(31) umfaßt, um eine Drehung der Welle in nur einer Richtung sicherzustellen.
10. Kolbenpumpe nach Anspruch 9, wobei das genannte Antirücklaufmittel (31) einen Zahnkranz
umfaßt.
11. Kolbenpumpen- und -motoraggregat in einer Ausführung, die eine Kolbenpumpeneinheit
und eine Kolbenmotoreinheit umfaßt, die in einem geschlossenen Hydraulikkreis miteinander
verbunden sind, wobei die genannte Pumpeneinheit mit zumindest einem doppeltwirkenden
Kolben Antriebsmittel (2, 3, 4, 54, 58, 63) zur Aufnahme einer Eingangsleistung umfaßt,
gekennzeichnet durch zumindest ein erstes Paar Kurbelarme (21, 81), die in drehbarer
Weise durch die genannten Antriebsmittel (2, 3, 4, 54, 58, 63) angetrieben werden,
zumindest ein zweites Paar Kurbelarme (28, 84), die mit zumindest einer bewegbaren
angetriebenen Welle (26, 86) verbunden sind, zumindest ein Paar Verbindungsstangen
(25, 85), die in sich kreuzender Weise die genannten ersten und zweiten Paare Kurbelarme
(21, 28, 81, 84) verbinden, Verbindungsmittel (29, 30, 32, 90), die die genannte bewegbare
angetriebene Welle (26, 86) mit zumindest einem Kolben (33, 89) der genannten Pumpeneinheit
verbinden, so daß bei jeder Drehung der genannten Antriebsmittel die genannten Kolben
vier Hübe zur Volumenverdrängung von Hydraulikmedium durchführen, Mittel (42) zur
Zuführung des genannten verdrängten Hydraulikmediums, um die genannten Antriebsmittel
zu betätigen, Nockenmittel (9, 10, 66), die mit den genannten Antriebsmitteln (3,
54, 58, 63) integral verbunden sind, sowie Nockenstößelmittel (13, 68, 72), die mit
jedem Kolben der genannten Motoreinheit verbunden sind.
12. Kolbenpumpen- und -motoraggregat nach Anspruch 11, wobei die genannten Antriebsmittel
eine antreibende Welle (3, 54) umfassen, die eine mit Hilfe eines Keiles (4, 59) daran
befestigte Antriebsscheibe (2, 58) aufweist.
13. Kolbenpumpen- und -motoraggregat nach Anspruch 12, wobei die genannte antreibende
Welle (3, 54) ein damit integral verbundenes Zahnrad (18, 60) aufweist, das in ein
mit einer zweiten angetriebenen Welle (20, 63, 80) integral verbundenes zweites Zahnrad
(19, 62, 76) eingreift.
14. Kolbenpumpen- und -motoraggregat nach Anspruch 13, wobei das genannte zumindest eine
erste Paar Kurbelarme (21, 81) mit der genannten zweiten Welle (20, 80) integral verbunden
ist.
15. Kolbenpumpen- und -motoraggregat nach Anspruch 14, wobei jeder einzelne der genannten
Kurbelarme (21, 81) des genannten zumindest einen ersten Paares mit einem Ende eines
jeden der genannten Kurbelarme (25, 85) des genannten zumindest einen Paares verbunden
ist.
16. Kolbenpumpen- und -motoraggregat nach Anspruch 15, wobei die gegenüberliegenden Enden
eines jeden Kurbelarmes (25, 85) in sich kreuzender Weise mit den genannten Kurbelarmen
(28, 84) des genannten zumindest einen zweiten Paares verbunden sind.
17. Kolbenpumpen- und -motoraggregat nach Anspruch 16, wobei die genannte zumindest eine
bewegbare Welle (26, 86) mit dem genannten zumindest einen Kolben (33, 89) über ein
Stützelement (30, 90) verbunden ist, das ein Paar Lager (29, 87) umfaßt, auf denen
die genannte Welle (26, 86) sich frei dreht.
18. Kolbenpumpen- und -motoraggregat nach Anspruch 17, wobei das genannte Stützelement
(30, 90) ein Antirücklaufmittel (31, 88) umfaßt, um eine Drehung der Welle in nur
einer Richtung sicherzustellen.
19. Kolbenpumpen- und -motoraggregat nach Anspruch 11, wobei die genannten Mittel zur
Zuführung des Hydraulikmediums ein Hochgeschwindigkeitswegeventil (42) umfassen.
20. Kolbenpumpen- und -motoraggregat nach Anspruch 11, wobei die genannten Nockenmittel
Nockenscheiben (10, 66) umfassen.
21. Kolbenpumpen- und -motoraggregat nach Anspruch 20, wobei die genannten Nockenscheiben
(9, 10, 66) eine nach der Archimedischen Spirale definierte Kontur aufweisen.
22. Kolbenpumpen- und -motoraggregat nach Anspruch 11, wobei die genannten Nockenstößelmittel
Rollen (13, 68, 72) umfassen.
1. Une pompe à piston du type comprenant au moins un piston à double action, comprenant
des moyens de commande (2, 3, 4) pour recevoir une puissance d'entrée, caractérisée
par une première paire de bras de manivelle (21) entraînée de façon rotative par lesdits
moyens de commande (2, 3, 4), une deuxième paire de bras de manivelle (28) couplée
à un arbre mené mobile (26), une paire de bielles (25) accouplant d'une manière entrecroisée
lesdites première (21) et deuxième (28) paires de bras de manivelle, et des moyens
de raccordement (29, 30, 31) accouplant ledit arbre mené mobile (26) audit piston
(33), ledit piston effectuant quatre courses de déplacement volumétrique de fluide
hydraulique pour chaque révolution desdits moyens de commande.
2. Une pompe à piston suivant la revendication 1, dans laquelle lesdits moyens de commande
comprennent un arbre d'entraînement (3) ayant une poulie de commande (2) attachée
à celui-ci au moyen d'une clavette (4).
3. Une pompe à piston suivant la revendication 2, dans laquelle ledit arbre d'entraînement
(3) a un engrenage (18) intégré à celui-ci et engageant un deuxième engrenage (19)
intégré à un deuxième arbre mené (20).
4. Une pompe à piston suivant la revendication 3, dans laquelle ladite première paire
de bras de manivelle (21) est intégrée audit deuxième arbre mené (20).
5. Une pompe à piston suivant la revendication 4, dans laquelle chacun des bras de manivelle
(21) de ladite première paire est couplé à une extrémité de chaque bras de manivelle
(25) de ladite paire.
6. Une pompe à piston suivant la revendication 5, dans laquelle les extrémités opposées
de chaque bras de manivelle (25) sont couplées d'une manière entrecroisée auxdits
bras de manivelle (28) de ladite deuxième paire.
7. Une pompe à piston suivant la revendication 6, dans laquelle le couplage entre lesdits
bras de manivelle (21, 28) et lesdites bielles (25) comprennent des paliers (24) dans
celles-ci, intégrés à un arbre commun.
8. Une pompe à piston suivant la revendication 7, dans laquelle ledit arbre mené mobile
(26) est couplé audit piston (33) au moyen d'un élément de support (30) ayant une
paire de paliers (39) sur laquelle ledit arbre (26) tourne librement.
9. Une pompe à piston suivant la revendication 8, dans laquelle ledit élément de support
(30) comprend des moyens (31) anti-recul pour assurer la rotation de l'arbre dans
une seule direction.
10. Une pompe à piston suivant la revendication 9, dans laquelle lesdits moyens anti-recul
(31) comprennent une dent.
11. Une pompe à piston et un assemblage de moteur, du type comprenant une unité de pompe
à piston et une unité de moteur à piston couplées dans un circuit hydraulique fermé,
ladite unité de pompe ayant au moins un piston à double action, comprenant des moyens
de commande (2, 3, 4, 54, 58, 63) pour recevoir une puissance d'entrée, caractérisé
par au moins une première paire de bras de manivelle (21, 81) entraînée de façon rotative
par lesdits moyens de commande (2, 3, 4, 54, 58, 63), au moins une deuxième paire
de bras de manivelle (28, 84) couplée à au moins un arbre mené mobile (26, 86), au
moins une paire de bielles (25, 85) accouplant d'une manière entrecroisée lesdites
première et deuxième paires de bras de manivelle (21, 28, 81, 84), des moyens de raccordement
(29, 30, 32, 90) accouplant ledit arbre mené mobile (26, 86) à au moins un piston
(33, 89) de ladite unité de pompe, ledit piston effectuant quatre courses de déplacement
volumétrique de fluide hydraulique pour chaque révolution desdits moyens de commande,
des moyens (42) pour diriger ledit fluide hydraulique déplacé pour entraîner lesdits
moyens de commande, des moyens de came (9, 10, 66) intégrés auxdits moyens de commande
(3, 54, 58, 63) et des moyens suiveurs de came (13, 68, 72) couplés à chaque piston
de ladite unité de moteur.
12. Une pompe à piston et un assemblage de moteur suivant la revendication 11, dans lesquels
lesdits moyens de commande comprennent un arbre d'entraînement (3, 54) ayant une poulie
(2, 58) attachée à celui-ci au moyen d'une clavette (4, 59).
13. Une pompe à piston et un assemblage de moteur suivant la revendication 12, dans lesquels
ledit arbre d'entraînement (3, 54) a un engrenage (18, 60) intégré à celui-ci engageant
un deuxième engrenage (19, 62, 76) intégré à un deuxième arbre mené (20, 63, 80).
14. Une pompe à piston et un assemblage de moteur suivant la revendication 13, dans lesquels
ladite au moins une première paire de bras de manivelle (21, 81) est intégrée audit
deuxième arbre (20, 80).
15. Une pompe à piston et un assemblage de moteur suivant la revendication 14, dans lesquels
chacun desdits bras de manivelle (21, 81) de ladite au moins une première paire est
couplé à une extrémité de chacun desdits bras de manivelle (25, 85) de ladite au moins
une paire.
16. Une pompe à piston et un assemblage de moteur suivant la revendication 15, dans lesquels
les extrémités opposées de chaque bras de manivelle (25, 85) sont couplées d'une manière
entrecroisée auxdits bras de manivelle (28, 84) de ladite au moins une deuxième paire.
17. Une pompe à piston et un assemblage de moteur suivant la revendication 16, dans lesquels
ledit au moins un arbre mobile (26, 86) est couplé audit au moins un piston (33, 89)
au moyen d'un élément de support (30, 90) ayant une paire de paliers (29, 87) sur
laquelle ledit arbre (26, 86) tourne librement.
18. Une pompe à piston et un assemblage de moteur suivant la revendication 17, dans lesquels
ledit élément de support (30, 90) comprend des moyens anti-recul (31, 88) pour assurer
la rotation de l'arbre dans une seule direction.
19. Une pompe à piston et un assemblage de moteur suivant la revendication 11, dans lesquels
lesdits moyens pour diriger le fluide hydraulique comprennent une vanne directionnelle
à grande vitesse (42).
20. Une pompe à piston et un assemblage de moteur suivant la revendication 11, dans lesquels
lesdits moyens de came comprennent des disques de came (10, 66).
21. Une pompe à piston et un assemblage de moteur suivant la revendication 20, dans lesquels
lesdits disques de came (9, 10, 66) ont un profil défini en conformité avec la courbe
de la spirale d'Archimède.
22. Une pompe à piston et un assemblage de moteur suivant la revendication 11, dans lesquels
lesdits moyens suiveurs de came comprennent des galets (13, 68, 72).