[0001] The invention relates to a hydraulic accumulator for hydraulic systems.
[0002] In hydraulic systems used in vehicles, forest machines, sawing equipment and in a
number of other mechanical devices, pressure shocks apperar, due to which components,
structures and pipeworks in the system are subjected to hard stress. Mainly, these
pressure schocks are caused by stroke-like impacts on hydraulic-driven mechanisms.
Since the compression ratio of hydraulic oils is quite small and neither are there
any other elasticities in the other system, it is advantageous to use a hydraulic
accumulator in the pressure system which, properly dimensioned, takes all pressure
peaks and, functioning this way, does not allow the pressure to rise too high in the
system, and even the mechnical stress is smaller, so that the hydraulic systems themselves
as well as mechanisms needing a hydraulic system can be made lighter in using a pressure
accumulator in the hydraulic system.
[0003] The major disadvantage in present pressure accumulators is that several accumulators
are needed in the hydraulic system, whereat the price of the system tends to become
too high. Especially, on using double-acting cylinders and hydraulic turning gears
two accumulators are needed, one for each direction of motion. The development of
double-acting pressure accumulators has been obstructed by technical problems by filling
the pressure chamber. Especially, the use of mass-produced ready-machined tubes has
been problematic, since in order to get overpressure gas into place, needed between
the pistons of a double-acting pressure accumulator, it has been a must to machine
and weld the cylinder mantle in spite of the risk of deformation and, accordingly,
problems of tightness.
[0004] By means of a pressure accumulator as per this invention a crucial improvement of
the above presented disadvantages is achieved. In order to realize this, the pressure
accumulator as per this invention is characterized in what is described in the introductory
chapter of patent claim 1.
[0005] It can be considered the most important advantage of this invention that on using
an accumulator as per this invention for a double-acting working cylinder and turning
gears only one instead of two accumulators is needed. Due to this fact the system
can be purchased at a lower price than before and less space is needed for one accumulator
only, the size of space it takes is only a half of the previous volume. There are
also less service spots in the system. Further, the weight of the system is smaller,
which is of great importance especially for the hydraulic systems of lumber trucks
thanks to saved weight and increased load capacity. An advantage of special significance
is that in a pressure accumulator as per this invention a favourable ready-machined
factory-made cylinder tube can be used that meets the highest demands and whose mantle
must neither be machined nor welded, whereat the risk of tube deformation by machining
or welding is avoided as well as the risk of leaks in the pressure accumulator.
[0006] In the following the invention is disclosed with reference to the enclosed drawing.
Fig. 1 is a schematic representation of a double-acting hydraulic cylinder 20 combined
with pressure accumulator 21.
Fig. 2 is pressure accumulator 21 in resting position.
Fig. 3 is pressure accumulator 21 opened for gas fill.
Fig. 4 is pressure accumulator 21 in operating position so that from the left side
of the accumulator illustrated in the figure working pressure is directed towards
the accumulator.
Fig. 5 is pressure accumulator 21 in operating position so that from the right side
of the accumulator illustrated in the figure working pressure is directed towards
the accumulator.
Fig. 6 is pressure accumulator 21 in operating position so that from both sides of
the accumulator illustrated in the figure working pressure is directed towards the
accumulator.
Fig. 7 is a pressure accumulator in the end of which there is a combination of a service
and pressure connection.
Fig. 8 is a pressure accumulator in the end of which the service connection and the
pressure connection are separated.
[0007] Figure 1 shows a double-acting hydraulic cylinder 20 the pressure connections 22
and 23 corresponding to its working motions in two directions. Accordingly, to these
connections the pressure connections 4 and 10 of the double-acting pressure accumulator
21 are connected. When working pressure enters either of the hydraulic cylinder 20
pressure connections 22 or 23, the same pressure is directected towards pressure connections
4 or 10 in the pressure accumulator and further to pressure chamber 11 or 12 in the
pressure accumulator. When there are pressure shocks on either side of the hydraulic
cylinder, the pressure accumulator 21 will take the shocks absorbing them by yielding
due to the spring effect of the accumulator. The spring effect of the accumulator
is produced in filling the pressure chamber 13 with pressurized gas.
[0008] Figure 2 shows schematically the pressure accumulator 21, where it has two separate
end chambers 11 and 12. The pressure of the hydraulic system is conveyed to these
end chambers from two different spots in the system. Pressure chamber 13 contains
high-pressure gas. Pressure chamber 13 is separated from end chambers 11 and 12 by
pistons 2 and 5 which are fitted with pressure packings 3 and 6. Piston 5 has a hole
14 running throuhg the piston and joining pressure chamber 13 and pressure chamber
12 together. Into hole 14 the gas filling tube 9 and valve 8 are fitted, through which
pressure chamber 13 is filled with pressure gas. End part 7 of pressure accumulator
21 is detachable for filling.
[0009] Figure 3 shows schematically the pressure accumulator 21, where the end part, illustrated
in figure 2, has been detached for refill of pressure chamber 13 with pressurized
gas. For gas refill the gas hose of the filling equipment is connected to filling
tube 9. Valve 8 is then opened and a proper quantity of gas is let in into chamber
13 and then valve 8 is closed and the end part 7 as per fig. 2 reassembled.
[0010] Figure 4 shows schematically the pressure accumulator 21 so that in a hydraulic system
furnished with pressure accumulator 21, pressure prevails in that part of the system
which is connected to end chamber 12 of pressure accumulator 21. Due to pressure piston
5 has moved towards pressure chamber 13 making the gas in the pressure chamber to
compress and the pressure to rise further. Due to the spring effect of compressed
gas in pressure chamber 13 the hydraulic fluid pressure variations will be received
in a favourable way so that the impacts of the shocks get effectively softened and
absorbed.
[0011] Figure 5 shows schematically the pressure accumulator 21 so that in a hydraulic system
furnished with pressure accumulator 21, pressure prevails in that part of the system
which is connected to the end chamber 11 of pressure accumulator 21. Due to pressure
the piston 2 has moved towards pressure chamber 13 making the gas in the pressure
chamber to compress and the pressure to rise further. Due to the spring effect of
compressed gas in pressure chamber 13 the hydraulic fluid pressure variations will
be received in a favourable way so that the impacts of the shocks get effectively
softened and absorbed.
[0012] Figure 6 shows schematically the pressure accumulator 21 so that in any hydraulic
system furnished with pressure accumulator 21, pressure prevails in both the system
parts whhich are connected to end chamber 11 and 12 of pressure accumulator 21. Due
to the pressure piston 2 and piston 5 have moved towards pressure chamber 13 making
the gas in the pressure chamber to compress and the pressure to rise further. Due
to the spring effect of compressed gas in pressure chamber 13 the hydraulic fluid
pressure variations will be received in a favourable way so that the impacts of the
shocks get effectively softened and absorbed.
[0013] In figure 7 the end part 7 of the illustrated pressure accumulator 21 is furnished
with a closing, leak-proof acces hole 16, through which service of the accumulator
can be carried out, its function checked and pressure chamber 13 refilled without
detaching end part 7 and the pressure pipes. End part 7 is fixed to the end of a tubular
pressure connection 10 and the real pressure joint 17 arranged in the side face of
this pressure connection 10.
[0014] In figure 8 the closing access hole 16 and the pressure connection are fixed separately
from each other in the end part 7 of the illustrated pressure accumulator 21.
[0015] Especially, it is worth noting that a pressure accumulator according to this invention
can be accomplished as a piston accumulator as well as a membran accumulator. Instead
of the double-acting accumulator presented in the introductory chapter, the accumulator
can be a multifunction unit. Anyhow, it is worth noting that the above presentation
of the invention is made with reference to only one of its advantageous embodiments.
It is by no means meant to confine the invention to this design only but several modifications
are possible within the inventional concept determined in the following patent claims.
1. A multifunction pressure accumulator (21) comprised of a pressure-proof reservoir
having at least two hydraulic pressure connections (4,10) and at least two leak-proof
partition walls (2),(5) moving or flexing due to hydraulic pressures conveyed to the
reservoir and a pressure chamber (13) formed by means of said partition walls and
filled with gas, whereby for refilling of the gas pressure chamber (13) a gas filling
channel (14) is equipped with a valve (8) and is taken to the pressure chamber side
at least through one partition wall, and whereby the accumulator (21) reservoir body
(7) comprises an access hole (16) through which the pressure in the chamber (13) can
be measured and the gas filling to said chamber can be carried out along the channel
(14) running through the partition wall.
2. An accumulator according to claim 1 characterized in that an end part (7) of the accumulator's reservoir comprises separately the access hole
(16) and a pressure hole (17).
3. An accumulator according to claim 1 and 2 characterized in that an end part (7) of the reservoir can be detached from the reservoir body (15).
1. Ein Drucksammler (21) für mehrere Zwecke bestehend aus einem druckbeständigen Behälter,
versehen mit wenigstens zwei Anschlüssen (4,10) für den hydraulischen Druck, und wenigstens
von zwei dichten, durch Wirkung der aus dem Behälter übertragenen hydraulischen Drücken
beweglichen oder elastischen Zwischenwänden (2,(5), und von einem, mit Hilfe der erwähnten
Wänden geformten und mit Gas gefüllten Druckkammer (13), wobei, um Gas nachzufüllen,
der Druckkammer einen Nachfüllungskanal (14) hat, der mit einem Ventil (8) versehen
und wenigsten durch einer Zwischenwand auf die Seite des Druckammers genommen ist,
und wobei der Behälterkörper (7) des Drucksammlers (21 ) eine Zugangsöffnung hat,
durch die der Druck im Kammer (13) gemessen werden kann, und Nachfüllen vom Gas in
den erwähnten Kammer entlang dem, durch die Zwischenwand laufenden Kanal (14) geschehen
kann.
2. Ein Drucksammler gemäss Patentanspruch 1 gekennzeichnet dadurch, dass ein Teil am Ende des Drucksammlerbehälters gesondert mit Zugangsöffnung (16) und
mit einer Drucköffnung (17) versehen ist.
3. Ein Drucksammler gemäss Patentanspruch 1 und 2 gekennzeichnet et dadurch, dass ein Endteil (7) des Behälters vom Behälterkörper (15) losgemacht werden kann.
1. Un accumulateur de pression (21) multifonctions comprenant un réservoir résistant
à la pression muni d'au moins deux raccords pression hydrauliques (4; 10) et d'au
moins deux parois de séparation étanches (2), (5), mobiles ou flexibles sous l'influence
des pressions hydrauliques véhiculées vers le réservoir, et une chambre de pression
(13) formée au moyen desdites parois de séparation et remplie de gaz, où, dans le
but de recharger la chambre de pression (13), une conduite de remplissage de gaz (14)
est munie d'une soupape (8) et amenée du côté de la chambre de pression au moins à
travers l'une des parois de séparation, et où un trou d'accès (16) a été prévu dans
le corps (7) du réservoir de l'accumulateur (21) permettant de mesurer la pression
dans la chambre (13) et d'effectuer le remplissage en gaz de ladite chambre le long
la conduite (14) traversant la paroi de séparation.
2. Un accumulateur selon la revendication 1, caractérisé en ce qu'une extrémité (7) du réservoir de l'accumulateur comprend et un trou d'accès (16)
et un trou pour mesurer la pression (17).
3. Un accumulateur selon les revendications 1 et 2, caractérisé en ce qu'une extrémité (7) du réservoir peut être détâchée du corps du réservoir (15).