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(11) |
EP 0 455 698 B1 |
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EUROPEAN PATENT SPECIFICATION |
| (45) |
Mention of the grant of the patent: |
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13.04.1994 Bulletin 1994/15 |
| (22) |
Date of filing: 15.01.1990 |
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International Patent Classification (IPC)5: F15B 15/04 |
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International application number: |
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PCT/SE9000/030 |
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International publication number: |
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WO 9008/904 (09.08.1990 Gazette 1990/19) |
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FLUID-POWERED PRECISION OSCILLATOR
FLUIDGETRIEBENER OSZILLATOR
OSCILLATEUR DE PRECISION ACTIONNE PAR FLUIDE
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Designated Contracting States: |
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AT BE CH DE ES FR GB IT LI NL |
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Priority: |
26.01.1989 SE 8900283
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Date of publication of application: |
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13.11.1991 Bulletin 1991/46 |
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Proprietor: ARCOS HYDRAULIK AB |
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S-781 70 Borlänge (SE) |
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Inventors: |
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- ERICSON, Jan
S-781 35 Borlänge (SE)
- AHLANDER, Ulf
S-770 20 Söderbärke (SE)
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| (74) |
Representative: Svanfeldt, Hans-Ake et al |
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DR. LUDWIG BRANN PATENTBYRA AB
P.O. Box 1344 751 43 Uppsala 751 43 Uppsala (SE) |
| (56) |
References cited: :
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- Patent Abstracts of Japan, Vol 10, No 59, M459, abstract of JP 60-205004, publ 1985-10-16
(TOUYOKO KOGYO K.K.)
- Patent Abstracts of Japan, Vol 9, No 290, M430, abstract of JP 60-129409, publ 1985-07-10
(HITACHI SEISAKUSHO K.K.)
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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).
|
[0001] The invention relates to a fluid-powered precision oscillator having a cylindrical
housing, a piston displaceable in the housing and being connected to a piston rod
extended through a front end wall of the housing, and a control means for automatically
reversing the direction of movement of the piston and of the piston rod, wherein the
piston rod is hollow and a screw is rotatably journalled in a rear end wall of the
housing, with a first end thereof extending into the hollow piston rod and engaging
a nut fixed to the piston rod and at a second end thereof carrying a toothed code
disk cooperating with a reading fork for feeding pulses corresponding to the movement
of the piston and of the piston rod to a control circuit which in turn emits signals
for operating the oscillator dependent upon the pulses fed into the circuit.
[0002] In its most general form an oscillator may simply be an automatically returning or
reversing cylinder, and within the prior art such an automatically reversing cylinder
is known being provided with a double-ended piston rod and a valve block attached
directly to the rear end wall of the cylinder. Thereby, the rod extended through the
rear end wall of the housing acts directly as a valve slide in the valve block, for
reversing the direction of movement of the cylinder in its end position. The most
serious limitation inherent in such an automatically reversing cylinder is that it,
as has been mentioned above, returns or reverses at fixed end positions which means
that the stroke length cannot be adjusted.
[0003] As a further development of the above indicated automatically reversing cylinder
having a fixed stroke length, attempts have also been made to employ inductive sensors
along the cylinder for detecting the position of the piston therein. By means of the
inductive sensors, which may be adjustable along the cylinder, the actuating valves
of the cylinder have been controlled for reversing the movement of the cylinder. Although
the stroke length of the oscillating movement may be adjusted with this configuration,
it is not possible to achieve any high accuracy in detecting the position of the piston
and thus not in the adjustment of the stroke length either. Accordingly, it is not
preferable to employ such a prior art structure in cases where the demands for accuracy
are high.
[0004] Although the present invention may be used within many fields, one embodiment thereof
is especially intended for solving the problems encountered in connection with oscillating
spray pipes used at paper mills for cleaning the wire. The spray pipes are tubes provided
with a sequence of bores along their length, through which bores water is sprayed
onto the wire for cleaning the same. The spray pipes are extended transversely in
relation to the wiew and are oscillated back and forth for cleaning the wire across
its full width, and in that connection it is essential for the efficient cleaning,
that the spray pipe is moved with a constant speed.
[0005] Presently electrical oscillator in the shape of reversible motors are primarily used
for moving the spray pipes across the width of the wire. One of the most serious disadvantages
of these presently used oscillators, is that when their direction of movement is reversed
they will be at a standstill during a short period of time. However, since the spray
pipe water is ejected having a very high pressure and in a thin jet from the bores
of the spray pipes, a very short standstill, with a duration of one or a few seconds,
may also lead to the fact that the water jets simply cut off threads of the wire.
This means that the wire is worn comparatively quickly and that its effective life
becomes unsatisfactorily short before it has to be replaced.
[0006] Moreover, JP-A-60-129409 describes a pneumatic cylinder having the general structure
as described in the first paragraph of the specification. By means of said structure
this prior art cylinder provides a solution to the problem of obtaining high positioning
accuracy. However, the prior art cylinder employs conventional means for supplying
and discharging high pressure air to and from respectively the cylinder chambers and
is therefore not suitable for use as a precision oscillator which is required to operate
smoothly and without jerks or stops.
[0007] A basic object of the present invention is therefore to provide a fluid-powered oscillator
of the kind indicated in the introduction, which does not stop in the position where
its direction of movement is reversed but reverses without any delay or standstill,
and which simultaneously operates smoothly and without jerks.
[0008] This object is achieved by means of an apparatus having the features indicated in
the characterizing portion of the enclosed claim 1.
[0009] Advantageous further developments and embodiments of the invention are claimed in
the dependent subclaims.
[0010] A preferred embodiment of the invention is described more closely below with reference
to the enclosed drawings, on which:
- Fig. 1
- is a partially schematic plan view, partially in cross-section, of the fluid-powered
oscillator according to the invention,
- Fig. 2
- is an end view of the oscillator according to Fig. 1,
- Fig. 3
- is a longitudinal section through the oscillator according to Figs. 1 and 2, along
the line A-A in Fig. 2,
- Fig. 4
- is a schematic illustration of a pressure fluid circuit for manoeuvring the oscillator,
- Fig. 5
- is a perspective view of the means for detecting the position of the piston and piston
rod of the oscillator according to Figs. 1-3, and
- Fig. 6
- is a schematic operational diagram illustrating the electronics of the control unit.
[0011] Although the invention in its preferred embodiment is especially intended for oscillating
spray pipes, as stated above, it should be emphasized that the invention is in no
way restricted to this specific use, but that the oscillator according to the invention
with the same benefit may be employed in other situations where an oscillating movement
is required.
[0012] With reference to Figs. 1-3, it is evident that the oscillator 1 according to the
invention basically consists of a piston and cylinder assembly 2 having a cylindrical
wall or jacket 3, a front end wall 4, a rear end wall 5 and a valve block 6 which
is protected by means of a cover 6a and which is attached directly to the rear end
wall 5. A piston rod 8 is extended through an aperture 7 in the front end wall 4,
and this piston rod is at its rear end connected to a piston 9 displaceable in the
cylinder 3 (see Fig. 3).
[0013] Moreover, as is clear from Fig. 3, the piston rod 8 is provided with a central bore
13 opening towards the piston 9 and being closed towards the free outer end of the
piston rod. A central tube 14 is centrally mounted in the bore 13 and more specifically
it is mounted with its forward end in connection with the bottom of the bore 13 so
that it is supported in a cantilever manner. The central tube 14 is furthermore mounted
such that its free rear end terminates substantially at a level with the rear surface
of the piston 9 facing the rear end wall 5 of the cylinder assembly. Thus, the piston
9 is likewise provided with a central, through-bore 15 through which the central tube
14 is extended, at a distance from the wall of the bore 15.
[0014] A nut 16 is firmly connected to the free rear end of the central tube and is with
the major portion of its length provided inside the central tube. The nut 16 is preferably
manufactured from a plastic material, and as is illustrated especially in Fig. 5,
a number of slits 16a, preferably three, are provided extending from the forward end
of the nut 16 and along a substantial portion of its length, whereby a number of resilient
sections 16b are formed. A groove 16c is provided adjacent the forward ends of the
resilient sections 16b, and a biasing means, such as an O-ring 17, is provided in
this groove, whereby the O-ring 17 has such a diameter that in its mounted position
it exerts a force against the sections 16b of the nut for pressing the same inwardly
towards each other.
[0015] It is also clear from Fig. 3 that the rear end 5 of the oscillator is likewise provided
with a central aperture 10 in which a screw 11 is rotatably journalled by means of
roller bearings 18 which are only schematically illustrated. The screw 11 is provided
with a finished, for instance polished, worm thread having a suitable pitch and extends
with its forward end into the hollow piston rod 8, thereby engaging the nut 16 which
is provided with a corresponding thread. It is obvious that through the compressive
force supplied by the O-ring 17 the resilient sections 16b of the nut 16 will be firmly
pressed against the screw 11, whereby an engagement substantially free from play is
achieved between the threads of the nut and the screw. A guide tube 19 is firmly supported
in the rear end wall 5, surrounding the central aperture 10 therein. Accordingly,
the guide tube 19 is likewise extended inside the hollow piston rod 8 and terminates
with its free end at a short distance from the bottom of the bore 13, when the piston
rod is in its rear position. This means that the guide tube 19 surrounds the central
tube 14 with a small gap 12 therebetween, and also surrounds the nut 16 and the screw
11 situated within the central tube 14. It will be understood that the purpose of
the guide tube 19 is to stabilize the structure by acting as a guide for the nut 16
and the central tube 14. The outer periphery of the guide tube 19 is sealed relative
to the bore 15 of the piston 9 by means of seals 20 for preventing pressure fluid
rearward of the piston to enter the interior of the piston rod.
[0016] The screw 11 extends with its rear, non-threaded end outside the rear end wall 5
and into a recess 21 provided in the valve block 6. Adjacent its rear end the screw
is likewise sealed in relation to the central opening 10 by means of seals which are
not illustrated in detail, and these seals are provided in order to prevent exit of
lubricant used for lubricating the screw and the nut. At the rear end of the screw
11, in the recess 21, the screw is provided with a code disk 22 which at its outer
circumference, is provided with a great number of evenly distributed teeth 23, as
illustrated in Fig. 5. It must be pointed out that for the sake of clarity the teeth
23 of the code disk 22 are illustrated in Fig. 5 being slightly enlarged and having
exaggerated gaps between the teeth, compared to the configuration suitable for achieving
highly accurate stroke length adjustment. In the recess 21 there is also provided
a reading fork or head 24 of a conventional structure and comprising a light emitting
diod in one leg and a photocell in the other leg. The reading fork is positioned such
that it straddles the code disk, and when the screw is rotated the toothed outer circumference
of the code disk 22 will therefore effect pulsing of the light emitted from the light
emitting diod and detected by the photocell. Through a block terminal 25 these pulses
are conducted to an electronic control circuit 39 illustrated schematically in Fig.
6 and briefly described below.
[0017] Figs. 1-3 and Fig. 4 schematically illustrate that the valve block 6 comprises an
inlet 26 for pressure fluid supplied from a pressure fluid source 27, and an outlet
28 for discharging pressure fluid to a pressureless reservoir 29. A pressure limiting
or reducing valve 30 is provided in connection with the pressure fluid inlet 26 and
serves to keep the working pressure at a constant, predetermined level. From the pressure
limiting valve 30 the pressure fluid is conducted to a flow regulator valve 31 provided
for adjusting the pressure fluid flow and thereby the translational velocity of the
oscillator. The valve block 6 is furthermore provided with two two-way valves or on/off
valves 32, 33 operating in the manner illustrated in the pressure fluid diagram of
Fig. 4. The actual connecting bores of the valve blocks 6 are not illustrated but
may be formed in a manner obvious to a man skilled in the art for achieving the circuit
schematically illustrated in Fig. 4.
[0018] With reference to the pressure fluid diagram it is clear that regulated pressure
fluid is continuously conducted to a first working port 34 (compare also with Fig.
3) which continuously supplies pressure fluid to the front side of the piston 9 through
a passage 35 in the rear end wall 5, a connecting pipe 36 and a passage 37 in the
front end wall 4. Pressure fluid for extending the piston rod 8 is conducted to the
rear side of the piston 9 through the first two-way valve 32, a second, not illustrated
working port and a likewise not illustrated passage in the rear end wall 5, when the
first two-way valve 32 is in its open condition. When retracting the piston and piston
rod, with the first two-way valve in its closed condition, pressure fluid is conducted
from the rear side of the piston 9 through the passage (not shown) in the rear end
wall 5, through the second working port in the valve block 6, communicating with the
passage of the rear end wall 5, through the second, open two-way valve 33 and through
the outlet 28 of the valve block 6 and into a reservoar 29. Alternatively the pressure
fluid behind the piston 9 may be discharged through a separate outlet port in the
rear end wall 5 and to the second two-way valve 33 (illustrated by means of a chain-dotted
line in Fig. 4).
[0019] As described above pressure fluid is continuously supplied to the front side of the
piston 9 having a smaller active or effective area than the rear side of the piston,
whereby the oscillator operates with a differential pressure. This is especially advantageous
when the oscillator is employed for driving spray pipes where it is important that
the oscillator does not stop in the position where its direction of movement is reversed.
Due to the above described regulation of the pressure fluid flow and pressure by means
of the valves 30 and 31 and due to the fact that the effective areas of the piston
9 are dimensioned such that the effective area at the rear side of the piston is double
the effective area at the front side of the piston rod, it is furthermore possible
to achieve that the oscillator operates with the same speed in both directions.
[0020] In order to determin the starting point for measuring the stroke length of the oscillator
1 a preferred embodiment of the invention employs an inductive sensor 38 positioned
in the rear end wall 5 and detecting the home position of the piston 9, i.e. the end
position against the rear end wall 5. This inductive sensor 38 is likewise connected
to the electronic control circuit 39 through the block terminal 25. The electronic
control circuit 39 is schematically illustrated in Fig. 6 and comprises a main switch
41 for activating the system, a start pulse switch 42 for starting and a counter unit
43 for counting pulses.
[0021] In the initial position the piston 9 of the oscillator is in its home position, i.e.
against the rear end wall 5, and pressure fluid acts upon the front side of the piston
and the rear side of the piston is unloaded or pressureless due to the fact that the
first two-way valve 32 is in its closed condition and the second two-way valve 33
is in its open condition. When the piston 9 is in its home position the counter unit
43 is reset and may be programmed for a desired stroke length, i.e. a pulse number
corresponding to the desired stroke length, through an operation panel 40. When the
desired stroke length has been programmed a starting pulse is given through the start
pulse switch 42 whereby the first two-way valve 32 opens and the second two-way valve
33 closes so that pressure fluid is introduced at the rear side of the piston 9 and
moves the piston 9 to the left in Fig. 3 against the pressure acting upon the smaller
area at the front side of the piston. As the piston 9 and the piston rod 8 move to
the left the central tube 14 and the nut 16 are also moved to the left, whereby the
screw 11 engaging the nut through its threads, starts to rotate. The rotation of the
screw 11 also causes the code disk 22 to rotate so that its toothed outer circumference
generates pulses in the reading head or fork 24, said pulses being conducted to the
counter unit 43 of the control circuit 39.
[0022] In this connection it shall also be pointed out that through the above described
design of the nut having flexible sections being pressed together by the O-ring 17,
very high accuracy is achieved in the detection of the stroke length, and with a suitable
design of the code disk it is more specifically possible to achieve an accuracy of
up to approximately five hundreds of a millimeter in the detection of the stroke length.
[0023] At this stage it should also be mentioned that the accuracy of the stroke length
adjustment is dependent i.a. upon the toothing of the code disk 22 and the pitch of
the thread of the screw 11 and of the nut 16. When choosing the pitch for the thread
it should also be taken into consideration that the pitch may not be chosen too small
since the resistance to the transmission of the linear movement of the nut 16 to a
rotational movement for the screw 11 increases with the reduction of the pitch, whereas
the accuracy is increased with the reduction of the pitch for the thread, i.e. that
the rotational movement of the screw increases per unit of length of the linear movement
of the nut 16. Accordingly, the pitch must be chosen such as to be optimal with reference
to both these parameters.
[0024] When the programmed number of pulses have been detected by the reading fork 24 and
have been transmitted to the counter unit, the latter gives a signal to the oscillator
to reverse, and more specifically this is accomplished by transmitting the signals
to the valves 32, 33 so that the first two-way valve 32 closes and the second two-way
valve 33 opens, whereby pressure fluid at the rear side of the piston 9 is conducted
to the pressureless reservoar 29 and the pressure fluid constantly acting upon the
front side of the piston 9 immediately reverses the direction of movement and starts
to move the piston 9 to the right in Fig. 3, and with a speed corresponding to that
of the movement to the left, since the pressure fluid acts upon an area which is the
same size as the differential area for the movement to the left. The piston 9 and
the piston rod 8 are moved to the right until they reach the home position against
the rear end wall 5, whereby the inductive sensor 38, when detecting the home position,
gives a signal for resetting the counter unit 43 and for opening the first two-way
valve 32 and for closing the second two-way valve 33, whereupon the process is repeated
in such a way that an oscillating movement back and forth is achieved.
[0025] When it is desired to stop the oscillator the main switch 41 is opened, whereby the
oscillator finishes the commenced stroke due to the fact that a relay 50 is connected
in parallel with the main switch 41, said relay being maintained activated as long
as the home position is not detected by the sensor 38. When the oscillator subsequently
reaches the home position the relay 50 releases and the oscillator stops.
[0026] The control circuit may also be provided with a not illustrated movement monitoring
stopping the oscillator after an adjustable delay in the absence of pulsing during
operation. A signal output from the monitoring may for instance be employed for activating
an alarm.
[0027] In view of the above description it should now be obvious that the oscillator 1 suggested
according to the invention permits very accurate setting of the stroke length as well
as the translational velocity of the oscillator, whereby the velocity of the oscillator
is also the same in both directions of movement. A further advantage of specific importance
in connection with oscillating spray pipes is also, as mentioned above, that the oscillator
reverses without any delay or standstill at all.
1. Fluid-powered precision oscillator having a cylindrical housing (3), a piston (9)
displaceable in the housing and being connected to a piston rod (8) extended through
a front end wall (4) of the housing, and a control means (11, 16, 22, 24, 39) for
automatically reversing the direction of movement of the piston and of the piston
rod, wherein the piston rod (8) is hollow and a screw (11) is rotatably journalled
in a rear end wall (5) of the housing (3), with a first end thereof extending into
the hollow piston rod (9) and engaging a nut (16) fixed to the piston rod (8) and
at a second end thereof carrying a toothed code disk (22) cooperating with a reading
fork (24) for feeding pulses corresponding to the movement of the piston (9) and of
the piston rod (8) to a control circuit (39) which in turn emits signals for operating
the oscillator (1) dependent upon the pulses fed into the circuit, characterized by a continuous pressure fluid supply (35, 36, 37) to the front side of the piston
(9) and by a pressure fluid supply to the rear side of the piston (9) controlled by
means of a first two-way valve (32) and a pressure fluid discharge from the rear side
of the piston (9) controlled by means of a second two-way valve (33).
2. Fluid-powered precision oscillator according to claim 1, characterized in that the piston rod (8) is provided with a central bore (13) extending along the
major portion of its length, opening towards the piston (9) but being closed towards
the free outer end of the piston rod (8), in that a central tube (14) is mounted cantilevered
in connection with the bottom of the bore (13), is extended through the bore (13)
substantially up to a position at a level with the surface of the piston (9) facing
the rear end wall (5) and in its free end carries the nut (16), and in that the nut
(16) and the central tube (14) with a small clearance are surrounded by a guide tube
(19) attached to the rear end wall (5) and extended into the bore (13), said guide
tube at its outer circumference being sealed against a central aperture (15) extending
completely through the piston (9), by means of seals (20).
3. Fluid-powered precision oscillator according to claim 1 or 2, characterized by a pressure limiting valve (30) and a flow regulator valve (31) for setting the
pressure and flow respectively of the pressure fluid supplied to the front and rear
side respectively of the piston.
4. Fluid-powered precision oscillator according to claim 3, characterized in that the first and second two-way valves (32, 33), the pressure limiting valve
(30) and the flow regulator valve (31) are provided in a valve block (6) attached
directly to the rear end wall (5).
5. Fluid-powered precision oscillator according to any of the preceding claims, characterized in that the ratio of the effective areas at the front and rear side respectively
of the piston is 1:2.
6. Fluid-powered precision oscillator according to any of the preceding claims, characterized in that the control circuit (39) comprises a counter unit (39) programmable with
the pulse number corresponding to the desired stroke length, intended for recording
the pulses detected by the reading fork (24) during the operation of the oscillator
(1) and intended for comparing the detected pulses with the programmed pulse number.
7. Fluid-powered precision oscillator according to claim 6, characterized in that an inductive sensor (38) for detecting the home position of the piston (9)
against the rear end wall (5) and for resetting the counter unit when detecting the
home position is connected to the control circuit (39).
8. Fluid-powered precision oscillator according to any of the preceding claims, characterized in that the nut (16) is provided with a number of, preferably three, slits (16a)
extended from one of its ends and distributed around its circumference, for forming
resilient sections (16b), and in that a groove (16c) is provided around the circumference
of the nut (16) in the region of the resilient sections (16b) and in that a means
biasing the sections (16b) inwardly towards each other is provided in the groove (16c).
9. Fluid-powered precision oscillator according to claim 8, characterized in that the screw (11) is provided with a finished or polished worm thread and in
that the nut is provided with a corresponding internal thread.
1. Fluidangetriebener Präzisionsoszillator mit einem zylindrischen Gehäuse (3), einem
Kolben (9), der in dem Gehäuse verstellbar und mit einer Kolbenstange (8) verbunden
ist, die sich durch die Vorderendwand (4) des Gehäuses erstreckt, und einer Steuereinrichtung
(11, 16, 22, 24, 39) zum automatischen Umkehren der Bewegungsrichtung des Kolbens
und der Kolbenstange, wobei die Kolbenstange (8) hohl und eine Schraube (11) in einer
Hinterendwand (5) des Gehäuses (3) drehbar gelagert ist, wobei sich ein erstes Ende
der Schraube in die hohle Kolbenstange (9) hinein erstreckt und in eine Mutter (16)
eingreift, die an der Kolbenstange (8) befestigt ist, und wobei die Schraube an einem
zweiten Ende eine gezahnte Codescheibe (22) trägt, die mit einer Auslesegabel (24)
zusammenwirkt, um der Bewegung des Kolbens (9) und der Kolbenstange (8) entsprechende
Impulse einem Steuerschaltkreis (39) zuzuführen, der zum Betreiben des Oszillators
(9) seinerseits Signale ausgibt, die von den dem Schaltkreis zugeführten Impulsen
abhängen,
gekennzeichnet durch
eine kontinuierliche Druckfluidzuführung (35, 36, 37) zu der Vorderseite des Kolbens
(9) und durch eine Druckfluidzuführung zu der Rückseite des Kolbens (9), die mittels
eines ersten Zweiwegeventils (32) gesteuert ist, und einen Druckfluidauslaß von der
Rückseite des Kolbens (9), der mittels eines zweiten Zweiwegeventils (33) gesteuert
ist.
2. Fluidangetriebener Präzisionsoszillator nach Anspruch 1,
dadurch gekennzeichnet,
daß die Kolbenstange (8) mit einer zentralen Bohrung (13) versehen ist, die sich längs
des Hauptbereichs ihrer Länge erstreckt, sich zum Kolben (9) öffnet, jedoch zum freien
Außenende der Kolbenstange (8) geschlossen ist, daß ein zentrales Rohr (14) in Verbindung
mit dem Boden der Bohrung (13) frei tragend angebracht ist, sich durch die Bohrung
(13) im wesentlichen bis zu einer Position auf einer Höhe mit der Oberfläche des der
Rückendwand (5) gegenüberliegenden Kolbens (9) erstreckt und in seinem freien Ende
die Schraube (16) trägt, und daß die Schraube (16) und das zentrale Rohr (14) mit
einem kleinen Zwischenraum durch ein Führungsrohr (19) umschlossen sind, das an der
Rückendwand (5) befestigt ist und sich in die Bohrung (13) hinein erstreckt, wobei
das Führungsrohr an seinem Außenumfang mittels Dichtungen (20) gegenüber einer zentralen
Öffnung (15) abgedichtet ist, die sich vollständig durch den Kolben (9) erstreckt.
3. Fluidangetriebener Präzisionsoszillator nach Anspruch 1 oder 2,
gekennzeichnet durch
ein Druckbegrenzungsventil (30) und ein Durchflußregulierventil (31) zum Einstellen
des Drucks und des Durchflusses des der Vorder- und Rückseite des Kolbens zugeführten
Druckfluids.
4. Fluidangetriebener Präzisionsoszillator nach Anspruch 3,
dadurch gekennzeichnet,
daß die ersten und zweiten Zweiwegeventile (32, 33), das Druckbegrenzungsventil (30)
und das Durchflußregulierventil (31) in einem Ventilblock (6) vorgesehen sind, der
direkt an der Rückendwand (5) befestigt ist.
5. Fluidangetriebener Präzisionsoszillator nach einem der vorangehenden Ansprüche,
dadurch gekennzeichnet,
daß das Verhältnis der effektiven Flächen an der Vorder- und Rückseite des Kolbens
1 : 2 ist.
6. Fluidangetriebener Präzisionsoszillator nach einem der vorangehenden Ansprüche,
dadurch gekennzeichnet,
daß der Steuerschaltkreis (39) eine Zählereinheit (39) umfaßt, die mit der der gewünschten
Hublänge entsprechenden Impulsanzahl programmierbar und dazu bestimmt ist, die durch
die Auslesegabel (24) während des Betriebs des Oszillators (1) erfaßten Impulse aufzuzeichnen
sowie dazu, die erfaßten Impulse mit der progammierten Impulsanzahl zu vergleichen.
7. Fluidangetriebener Präzisionsosziallator nach Anspruch 6,
dadurch gekennzeichnet,
daß ein Induktionssensor (38) zum Erfassen der Ruheposition des Kolbens (9) gegenüber
der Rückendwand (5) und zum Zurücksetzen der Zählereinheit, wenn die Ruheposition
erfaßt wird, an den Steuerschaltkreis (39) angeschlossen ist.
8. Fluidangetriebener Präzisionsoszillator nach einem der vorangehenden Ansprüche,
dadurch gekennzeichnet,
daß die Mutter (16) mit einer Anzahl von vorzugsweise drei Schlitzen (16a) versehen
ist, die sich von einer ihrer Enden erstrecken und um ihren Umfang herum verteilt
sind, um federnde Bereiche (16b) zu bilden, und daß eine Nut (16c) um den Umfang der
Mutter (16) herum in dem Bereich der federnden Bereiche (16b) vorgesehen ist, und
daß in der Nut (16c) eine Einrichtung zum Vorspannen der Bereiche (16b) nach innen
aufeinander zu vorgesehen ist.
9. Fluidangetriebener Präzisionsoszillator nach Anspruch 8,
dadurch gekennzeichnet,
daß die Schraube (11) mit einem feingearbeiteten oder polierten Schneckengewinde versehen
ist, und daß die Mutter mit einem entsprechenden Innengewinde versehen ist.
1. Oscillateur de précision alimenté par un fluide et possédant un boîtier cylindrique
(3), un piston (9) déplaçable dans le boîtier et raccordé à une tige de piston (8)
traversant une paroi d'extrémité frontale (4) du boîtier, et des moyens de commande
(11, 16, 22, 24, 39) pour inverser de façon automatique le déplacement du piston et
de la tige de piston, et dans lequel la tige de piston (8) est creuse et une vis (11)
est tourillonnée de manière à pouvoir tourner dans une paroi d'extrémité arrière (5)
du boîtier (3), une première extrémité de la vis pénétrant dans une tige de piston
creuse (9) et engrenant avec un écrou (16) fixé à la tige de piston (8), tandis que
la vis porte, à une seconde extrémité, un disque de codage denté (22), qui coopère
avec une fourche de lecture (24) servant à envoyer des impulsions correspondant au
déplacement du piston (9) et de la tige de piston (8) à un circuit de commande (39),
qui à son tour envoie des signaux pour faire fonctionner l'oscillateur (1) en fonction
des impulsions envoyées dans le circuit, caractérisé par une alimentation continue
en fluide sous pression (35, 36, 37) au côté avant du piston (9) et par une alimentation
en fluide sous pression envoyée au côté arrière du piston (9) commandé au moyen d'une
première soupape à deux voies (32) et d'un refoulement du fluide sous pression à partir
du côté arrière du piston (9), commandée au moyen d'une seconde soupape à deux voies
(33).
2. Oscillateur de précision alimenté par un fluide selon la revendication 1, caractérisé
en ce que la tige de piston (8) comporte un perçage central (13) qui s'étend sur la
majeure partie de sa longueur, est ouvert en direction du piston (9), mais est fermé
en direction de l'extrémité extérieure libre de la tige de piston (8), en ce qu'un
tube central (14) est monté en console en liaison avec le fond du perçage (13), traverse
le perçage (13) essentiellement jusque dans une position située de niveau avec la
surface du piston (9) tourné vers la paroi d'extrémité arrière (5) et porte, dans
son extrémité libre, l'écrou (16), et en ce que l'écrou (16) et le tube central (14)
séparés par un faible jeu sont entourés par un tube de guidage (19) fixé à la paroi
d'extrémité arrière (5) et pénétrant dans le perçage (13), ledit tube de guidage étant
étanchéifié, au niveau de sa circonférence extérieure, par rapport à une ouverture
centrale (15) qui traverse complètement le piston (9), à l'aide de joints d'étanchéité
(20).
3. Oscillateur de précision alimenté par un fluide selon la revendication 1 ou 2, caractérisé
par une soupape de limitation de pression (30) et une soupape de régulation de débit
(31) servant à régler respectivement la pression et le débit du fluide sous pression
envoyé respectivement au côté avant et au côté arrière du piston.
4. Oscillateur de précision alimenté par un fluide selon la revendication 3, caractérisé
en ce que les première et seconde soupapes à deux voies (32, 33), la soupape de limitation
de pression (30) et la soupape de régulation de débit (31) sont prévues dans un bloc
de soupapes (6) fixé directement à la paroi d'extrémité arrière (5).
5. Oscillateur de précision alimenté par un fluide selon l'une quelconque des revendications
précédentes, caractérisé en ce que le rapport des surfaces effectives présentes respectivement
au niveau du côté avant et du côté arrière du piston est égal à 1:2.
6. Oscillateur de précision alimenté par un fluide selon l'une quelconque des revendications
précédentes, caractérisé en ce que le circuit de commande (39) comprend une unité
de comptage (39) programmable au moyen du nombre d'impulsions correspondant à la longueur
de course désirée, et prévue pour l'enregistrement des impulsions détectées par la
fourche de lecture (24) pendant le fonctionnement de l'oscillateur (1) et servant
à comparer les impulsions détectées au nombre programmé d'impulsions.
7. Oscillateur de précision alimenté par un fluide selon la revendication 6, caractérisé
en ce qu'un capteur inductif (38) servant à détecter la position de repos du piston
(9) contre la paroi d'extrémité arrière (5) et à régler l'unité de comptage lors de
la détection de la position de repos, est raccordé au circuit de commande (39).
8. Oscillateur de précision alimenté par un fluide selon l'une quelconque des revendications
précédentes, caractérisé en ce que l'écrou (16) comporte un certain nombre de fentes
(16a), de préférence trois, qui s'étendent à partir de l'une de ses extrémités et
sont réparties autour de sa circonférence, pour former des sections élastiques (16b),
et en ce qu'une gorge (16c) est prévue sur la circonférence de l'écrou (16), dans
la région des sections élastiques (16b) et en ce que des moyens servant à repousser
les sections (16b) vers l'intérieur en direction les unes des autres et disposées
dans la gorge (16).
9. Oscillateur de précision alimenté par un fluide selon la revendication 8, caractérisé
en ce que la vis (11) comporte un filet de vis sans fin fini ou poli et en ce que
l'écrou comporte un taraudage correspondant.