The present invention relates to a machine for displacing fluid according to the preamble of claim 1.
A machine of this type is known from U.S. Pat. No. 958,404 which discloses a machine comprising a partition wall which is arranged between the displacement members which are connected to one another. This partition wall is a circular disc which is clamped between the halves of the housing which are divided by this separating plane. A dividing plate for sealing the annular chamber extends in a reciprocating manner through an opening in the dividing plate. It is very difficult to provide guidance for such a dividing plate and the structure which is produced as a result is complicated.
U.S. Pat. No. 2,997,000 discloses a pump or motor in which a displacement body is connected to a support by means of a complicated bearing structure.
U.S. Pat. No. 277,648 describes a further rocking piston engine, and so does DE 466,916.
To date, such devices have not found widespread application.
This is partly due to their complicated design. It requires a very large number of machining steps and sealing the various parts forms a problem.
It is an object of the present invention to provide a relatively simple structure which can compete with other kinds of pumps or motors.
This object is achieved in an above-described machine with the features of claim 1.
As the separating plane is at right angles to the partition wall and, more particularly, the separating plane comprises the axis of rotation of the drive (that is to say for the eccentric), it is possible to provide a particularly simple construction of the housing parts. More particularly, it is possible to embody the partition wall between the displacement bodies to be integral with a housing part and more particularly to provide each housing part with a corresponding part of the partition wall. As a result thereof, it is simply possible to achieve automatic sealing of the partition wall parts when sealing the housing parts. In addition, the present invention makes it possible in a simple manner to provide space for the reciprocating sealing plate between the housing parts. This can be realized for one or both separating planes.
According to a particular embodiment of the invention, the inlets and outlets are arranged directly in the housing in a particularly simple manner. This means that it no longer requires complicated ducts to provide a connection between the first or second chamber and the surroundings. With the machine according to the invention, the chambers are connected in parallel in such a manner that a pulsing of the fluid stream into or out of the first chamber is compensated as much as possible by an opposite pulsing of the fluid stream into or out of the second chamber.
According to a further advantageous embodiment of the invention, the two displacement members are of symmetrical embodiment. According to an advantageous embodiment, the displacement body effectively consists of a single body provided with a central continuous groove.
According to a further advantageous embodiment, such a groove is tapering and extends towards the centre of the displacement body, that is to say the distance between the displacement members decreases near the centre of the displacement body.
The pivoting movement of the displacement body can be produced in many ways and/or it is possible to make effective use of the pivoting movement of the pivoting body in many ways. Thus, it is possible to arrange a number of actuators and/or generators along the outer periphery of the displacement body which produce the pivoting movement and/or take off the power generated in this way. According to an advantageous embodiment of the invention, the pivoting movement is produced by means of a rotary movement which is converted into a pivoting movement with an eccentric. With this advantageous variant of the invention, if the machine is operated as a motor, the pivoting movement is converted into a rotary movement by means of an eccentric.
According to a further advantageous embodiment, a coating which seals the chamber and/or the partition wall is arranged between the displacement member and the partition wall. Thus, after the fluid has been used or changed, it is possible to provide optimum conditions without cleaning, only by replacing this coating. In addition, this coating may be embodied as a tube or hose, thus resulting in a peristaltic pump. In this case, such a hose may be bounded by two film/foil parts which are placed on top of one another. In order to carry out the peristaltic movement, it is important that the resultant tube or hose is either resilient or that said tube or hose is (temporarily) connected to a housing which is provided around the latter. This makes it also possible to displace sensitive fluids, such as blood, at a precisely controlled speed and without extreme pressure peaks. In addition, it is thus possible to displace other substances, such as nutrients. It is also possible to meter fluids very accurately. On the other hand, it is possible to drive the machine by means of relatively dangerous substances in order to use it as a generator.
According to a further advantageous embodiment of the invention, the inlet and/or outlet are provided near the partition wall of the chambers. In this way, the fluid stream can be supplied in a particularly compact manner.
It is possible to embody the displacement body as a sphere which moves inside a correspondingly spherical chamber. A continuous groove is then provided centrally in this sphere which, together with the above-described partition wall, delimits the respective chambers with variable volume. By using a sphere of this type, mounting and sealing can be provided in a particularly simple way.
It should be understood that the choice of sealing depends on the fluid to be displaced. Thus, it is possible to provide contactless sealing if various parts are produced with a very high degree of accuracy and a slight amount of leakage is acceptable.
It should be understood that the machine illustrated here can be embodied in many ways. It is possible for the housing to be fixed with respect to the outside world and the displacement body to pivot reciprocally or vice versa. A combination of both is likewise possible. The shape of the faces of the displacement members which roll along the partition wall can be chosen as desired and does not necessarily have to have the above-described conical shape.
The invention will be explained in more detail below with reference to exemplary embodiments illustrated in the drawing, in which:
The pump 1 comprises a housing composed of housing parts 2 and 3 (see also
Inside the housing, a pivoting body 4 is accommodated which is pivotable about an axis 20 (
The pivoting body 4 comprises two discs 5 and 6 which are located at a distance from one another and are fixedly connected to one another by means of a core 10. The inner surfaces of the discs 5 and 6 are formed by substantially conical surfaces. The pivoting body effectively consists of a solid part which is provided with a V-shaped groove.
The core 10 is spherical and fits in the hollow part 26 which forms the free end of the partition wall 9, so that a seal can be provided with respect to a body/partition wall 9 which forms part of the housing.
Each of the discs 5 and 6 is provided at its periphery with an edge 27 which is embodied in such a manner that it is in sealing engagement with the inner wall 23 of the housing.
In addition, a sealing plate 11 is present which, as can be seen in
Horizontal separation is understood to mean a separation as illustrated in the figures, that is to say that in which the partition plane of the housing parts is at right angles to (the centre plane of) the partition wall 9. More particularly, such a partition wall comprises a division, that is to say that the partition wall 9 comprises two partition wall parts being divided in accordance with the abovementioned separating plane.
A space is left in either one or both housing parts 2, 3 for sealing plate 11. As a result of the structure of the separating plane, the sealing plate may be situated close to the separation between the housing parts 2 and 3.
Reference numerals 21 and 22 denote chambers which are delimited between the respective conical faces of disc 5 and disc 6 and the partition wall 9 and more particularly the sides 24 and 25 thereof.
The figures show that the eccentric arrangement and the pivoting/tilting of the pivoting body 4, respectively, is performed in such a way that there is always line contact between disc 5 and 6, respectively, and the conical face. This line contact moves during the pivoting/tilting action, resulting in a displacement volume which results the desired pumping action. As a result of this rolling movement, the volume becomes increasingly smaller towards partition 21, as a result of which fluid is pressed out. The respective fluids are displaced by means of inlet 19 and outlet 18.
The drawing and more particularly
Reference numeral 36 denotes a double pack which in each case comprises two film/foil parts 37 and 38, in which a hose 39 is bounded between the film/foil parts. An opening 40 is present. Each pack 36 can be placed in the space between the housing parts 31, 32 and 32, 33, respectively. The dimensions of the discs 34, 35 with respect to the housing parts is such that there is sufficient space for accommodating this pack 36. After the pack 36 has been inserted and the pump is driven, the discs perform a sliding movement along “hose” 39, thus resulting in a kind of hose pump. The latter treats the pumped fluid particularly gently, which may come from container 43.
In contrast to the exemplary embodiment illustrated above, driving is not effected by means of rotation. As
In addition, in this embodiment, the eccentric drive is provided on single sided. A single input shaft 66 is present having a single eccentric plate 65, as a result of which the rotating movement of said shaft is converted into a pivoting and tilting movement. Eccentric pin 71 is accommodated in pivoting body 54 and 55 so as to be slidably rotatable. The other end of the eccentric pin 71 is accommodated in eccentric 15 by means of a ball-and-socket joint. Shaft 66 is mounted in the housing 52 by means of a sliding bearing (if desired directly). Reference numeral 68 denotes a sealing ring. Arrow 70 denotes the flow of fluid in
In a manner which is not illustrated in any more detail, the feed stream can be divided and the discharge stream from both outlets can be combined.
As is clear from the above, many variants of the present invention are possible. In addition to a pump or generator, the device can be constructed in many different ways. Those skilled in the art will immediately be able to think of further variants after reading the above description, which are all covered by the scope of the claims.
Number | Date | Country | Kind |
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2000749 | Jul 2007 | NL | national |
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/NL2008/050474 | 7/14/2008 | WO | 00 | 4/1/2010 |