Fluidic valve device
11098824 · 2021-08-24
Assignee
Inventors
- Charlotte Parent (Grenoble, FR)
- Yves Fouillet (Grenoble, FR)
- Nicolas Verplanck (Grenoble, FR)
- Arthur Vauquelin (Grenoble, FR)
Cpc classification
F16K99/0015
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16K25/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16K11/22
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16K99/0046
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16K11/24
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16K31/0641
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16K2099/008
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F16K11/22
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16K31/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16K31/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16K99/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16K11/24
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A fluidic valve device intended to be arranged in a fluidic circuit, the device notably including a first switching assembly including a first compartment defining a first internal space and a first permanent magnet arranged with the freedom to slide in the first internal space, a second switching assembly including a second compartment defining a second internal space and a second permanent magnet arranged with the freedom to slide in the second internal space, the first permanent magnet and the second permanent magnet being arranged relative to one another in such a way as to be in a first state of magnetic interaction, making it possible to obtain a first stable mechanical configuration or in a second state of magnetic interaction, it possible to obtain a second stable mechanical configuration.
Claims
1. A fluidic valve device to be arranged in a fluidic circuit, said device comprises: a first fluidic connection and a second fluidic connection, first opening/closing means designed to open or close the first fluidic connection, and second opening/closing means designed to open or close the second fluidic connection, switching means collaborating with said first opening/closing means and said second opening/closing means, said switching means comprising: a first switching assembly comprising a first compartment defining a first internal space and a first permanent magnet arranged with the freedom to slide in a main direction in said first internal space, between a first stable position for closing the first fluidic connection and a second stable position for opening the first fluidic connection, a second switching assembly comprising a second compartment defining a second internal space and a second permanent magnet arranged with the freedom to slide in said main direction in said second internal space, between a first stable position for closing the second fluidic connection and a second stable position for opening the second fluidic connection, the first permanent magnet and the second permanent magnet being oriented magnetically the same way round, in said main direction, and offset in said main direction by a non-zero distance that is sufficient to generate a magnetic gap in a direction transverse to said main direction, the first permanent magnet and the second permanent magnet being arranged relative to one another in such a way as to be in a first state of magnetic interaction, in order to obtain a first stable mechanical configuration wherein the first permanent magnet and the second permanent magnet are held respectively in their first position and in their second position by the magnetic effect alone or in a second state of magnetic interaction, in order to obtain a second stable mechanical configuration in which the first permanent magnet and the second permanent magnet are held respectively in their second position and in their first position by the magnetic effect alone.
2. The device according to claim 1, wherein the first permanent magnet and the second permanent magnet are identical.
3. The device according to claim 1, comprising at least one magnetic control member designed to move between a first position and a second position in order to modify the magnetic interaction between the first permanent magnet and the second permanent magnet.
4. The device according to claim 3, wherein the magnetic control member is a permanent magnet.
5. The device according to claim 1, wherein said distance is defined as a function of the magnetic strength of each permanent magnet, of the pressure of the fluid injected into the fluidic circuit, and/or of the size of each permanent magnet.
6. The device according to claim 1, wherein each compartment is defined by a cylinder wherein the permanent magnet can move in sliding like a piston.
7. The device according to claim 1, wherein the first opening/closing means and the second opening/closing means consist of a flexible membrane that can be deformed mechanically under the action of either the first permanent magnet or the second permanent magnet.
8. The device according to claim 1, wherein said device is produced by an assembly of several superposed layers.
9. A fluidic system comprising a fluidic board on which there is created the fluidic circuit having several fluidic valve devices as defined in claim 3, wherein said fluidic system comprises control means integrating each control member, said control means taking the form of a board on which the control members are dispersed, each control member being positioned in such a way as to coincide with its fluidic valve device during a sequence of relative movement of said board with respect to the fluidic circuit.
10. A method of controlling the fluidic circuit with the fluidic valve device as defined in claim 1, said fluidic circuit comprising a fluidic inlet, a first fluidic outlet and a second fluidic outlet, said method comprising connecting, via the first fluidic connection, said fluidic inlet exclusively to said first fluidic outlet, and connecting, via the second fluidic connection, said fluidic inlet exclusively to said second fluidic outlet.
Description
BRIEF DESCRIPTION OF THE FIGURES
(1) Further features and advantages will become apparent from the detailed description which follows, which is given with reference to the attached figures listed hereinbelow:
(2)
(3)
(4)
(5)
(6)
DETAILED DESCRIPTION OF AT LEAST ONE EMBODIMENT
(7) The invention relates to a fluidic valve device.
(8) The fluidic valve device of the invention is advantageously of the bistable type. It will be perfectly suited to operating according to the principle of a 3/2 (three ports and two positions) type valve. As depicted in
(9) With reference to
(10) For that, the fluidic valve device 2 according to the invention uses a magnetic solution with two permanent magnets 20, 21, which are both able to move between two positions and are synchronized by the magnetic effect alone.
(11) The device 2 may comprise first opening/closing means intended to open or close a first fluidic connection between the fluidic inlet 10 and the first fluidic outlet 11 and second opening/closing means intended to open or close a second fluidic connection between the fluidic inlet 10 and the second fluidic outlet 12.
(12) The first fluidic connection may comprise a first port and a second port and the first opening/closing means may comprise a first membrane made of a flexible material designed to move between a closed first state in which it closes off at least one of the two ports (or even both), interrupting the first fluidic connection, and an open second state in which it uncovers the two ports, allowing the first fluidic connection between the first port and the second port.
(13) The second fluidic connection has the same features and may comprise a first port and a second port and the second opening/closing means may comprise a second membrane made of a flexible and deformable material designed to move between a closed first state in which it closes off at least one of the two ports (or even both), interrupting the second fluidic connection, and an open second state in which it uncovers the two ports, allowing the second fluidic connection between the first port and the second port.
(14) According to one particular aspect of the invention, the first membrane and the second membrane may be combined into the one same flexible and deformable membrane 3 comprising two distinct operating zones for each of the two series of two ports. It will be seen hereinafter that this single-membrane 3 solution may offer advantages in terms of the manufacture of the device.
(15) In order to actuate the first opening/closing means and the second opening/closing means, the device comprises switching means.
(16) The switching means comprise two distinct switching assemblies, a first switching assembly dedicated to switching the first opening/closing means, and a second switching assembly dedicated to switching the second opening/closing means.
(17) The first switching assembly and the second switching assembly are synchronized in operation so as to adopt a first state in which the first opening/closing means are open and the second opening/closing means are closed, and a second state in which the first opening/closing means are closed and the second opening/closing means are open. In the first state, the fluidic inlet 10 is therefore connected only to the first fluidic outlet 11, and in the second state, the fluidic inlet 10 is connected only to the second fluidic outlet 12.
(18) According to one particular aspect of the invention, the synchronization between the first switching assembly and the second switching assembly is achieved through the magnetic effect alone.
(19) The first switching assembly comprises a first cylinder 40 defining a first closed internal space and a first permanent magnet 20 housed in this first cylinder and arranged with the freedom to slide in the said internal space of the cylinder 40, so as to form a first piston. The translational movement of the first permanent magnet 20 in the first cylinder 40 takes place in a direction defined by an axis (X).
(20) The second switching assembly comprises a second cylinder 41 defining a closed internal space and a second permanent magnet 21 housed in the second cylinder 41 and arranged with the freedom to slide in the said internal space of the second cylinder 41, forming a second piston. The translational movement of the second permanent magnet 21 in the second cylinder 41 takes place in a direction parallel to the aforementioned axis (X).
(21) Advantageously, the two cylinders 40, 41 are identical and the two permanent magnets 20, 21 have identical shapes and magnetic “strengths”.
(22) In each switching assembly, the permanent magnet 20, 21 can move in sliding in its cylinder between two distinct stable mechanical positions referred to as the first position and second position.
(23) In their first position, each permanent magnet 20, 21 collaborates with the membrane 3 to place it in its closed state. In their second position, the membrane 3 is released by the permanent magnets to adopt its open state.
(24) The first cylinder and the second cylinder 40, 41 are preferably close enough together that the two permanent magnets 20, 21 are in magnetic interaction.
(25) Thus are defined a first state of magnetic interaction, making it possible to obtain a first stable mechanical configuration in which the first permanent magnet 20 is in its first stable position and the second permanent magnet 21 in its second stable position, and a second state of magnetic interaction, making it possible to obtain a second stable mechanical configuration in which the first permanent magnet 20 is in its second stable position and the second permanent magnet 21 is in its first stable position. The two magnets are each held in their respective position by the magnetic effect alone.
(26) Advantageously, in order to make the transition from the first state of magnetic interaction to the second state of magnetic interaction, the device may comprise a control member of magnetic type. This control member may comprise a permanent magnet 50. When a change in state is commanded, this permanent magnet 50 is brought close enough to magnetically interact (attract or repel) just one of the two permanent magnets 20, 21 (the first permanent magnet 20 or the second permanent magnet 21). The sliding movement of the controlled permanent magnet (the permanent magnet 20 in
(27) According to one particular aspect of the invention depicted in
(28) According to one particular aspect of the invention, the two permanent magnets are arranged in such a way as to create between them a magnetic gap E (
(29) A sufficient distance Z has in fact to be left between the two permanent magnets 20, 21 so as to ensure each state of magnetic interaction between the two magnets, namely when one of the two magnets is in its first position and the other in its second position. Each state of magnetic interaction is created with north pole or south pole of the first permanent magnet 20 in front with respectively a south pole or a north pole of second permanent magnet 21, in the transversal direction with respect to (X), the two opposite poles being separated by a non-zero distance corresponding to said magnetic gap E. Said magnetic gap E is created by the shortest strength segment following the orthogonal direction to the translation direction (X) of the two magnets 20, 21.
(30)
(31) In this figure, it can be seen that: when the permanent magnets are only slightly offset (Z<0.5 mm), the level of magnetic interaction is weak; when the permanent magnets are excessively offset (Z>2.5 mm), the level of magnetic interaction is likewise weak;
(32) Between these two distances, the level of magnetic interaction is satisfactory, allowing the two permanent magnets 20, 21 to be held stably in their respective position.
(33) Of course, the choice of the distance Z between the two magnets 20, 21 will depend on various factors, notably the size of the permanent magnets, their shape, their magnetic strength, the material of which they are made, etc.
(34)
(35) In
(36) In
(37) In
(38) By applying the principle of operation of the switching means described above to the fluidic valve device for controlling a fluidic circuit like that of
(39) Likewise, as mentioned above, it will be appreciated that the device according to the invention will also be perfectly suited to managing the control of two independent fluidic connections in parallel, each of these connections comprising an inlet and an outlet, in a circuit like the one depicted in
(40) According to an alternative form of embodiment, the opening/closing means may be secured to each permanent magnet. They may, for example, be a part made of rubber fixed to each magnet in order to seal the fluidic connection closed.
(41) With reference to
(42) According to one particular embodiment, when the one same microfluidic system 7 comprises a microfluidic circuit bearing several fluidic valve devices 2 (indicated by a spot in