The invention concerns micropumps obtained by micromachining and adapted to be activated by means of an actuator such as a piezo-electric element.
These devices generally take the form of a stack, i.e. a support plate, an intermediate layer serving as flexible membrane, a pumping chamber and a closure plate, the pumping chamber communicating with the exterior, for example via the support plate. Part of the membrane is fastened to a piezo-electric element disposed externally of the device. The connection between these two elements is provided by means of at least one element, for example a block produced in the support plate by micromachining.
The problem that the present invention proposes to solve lies in the difficulty of providing an effective connection between a membrane and an actuator that is deformed when it is activated.
In the case of the invention, the solution to the aforementioned problem consists in a micropump taking the form of a stack successively comprising a support plate, an intermediate layer serving as flexible membrane, a pumping chamber and a closure plate, said pumping chamber communicating with the exterior of the micropump, for example via the support plate, said membrane being fastened to an actuator disposed externally of the micropump, the connection being effected via a passage through the support plate.
The actuator may be chosen from piezo-electric bimorph actuators, piezo-electric multimorph actuators, thermal bimorph actuators and shape memory alloy beams.
Despite its small overall size, this type of actuator can exert high forces, typically of the order of 0.1 N to 100 N.
Moreover, this type of actuator may exert a movement of small amplitude along a non-rectilinear trajectory, for example a circular arc. The length of the trajectory may be less than 1 mm.
The invention is characterized in that said membrane is fastened to the actuator via at least one element taking the form of a strip, rigid along its main axis and flexible in the direction perpendicular to its main axis. The stiffness enables transmission of the force of the actuator into a linear movement of the membrane while the flexibility provides the lateral transmission of that force.
The actuator is preferably a piezo-electric bimorph actuator plate.
The actuator advantageously has a fixed end and a free end, the latter being disposed cantilever-fashion at the exit from the passage. One of the ends of the strip is fixed to said free end.
The strip is preferably stuck to the piezo-electric element.
In a variant of the invention, the strip is in direct contact with the membrane. In this configuration, the strip is preferably stuck to the membrane.
In order to reinforce the sticking, the end of the strip that is fixed to the membrane preferably includes holes or has a crenelated contour.
The strip may be constituted of any material enabling the target objective to be achieved. It is advantageously in stainless steel.
According to one embodiment of the invention, the piezo-electric element includes electrical contacts disposed in the vicinity of said fixed end.
A particularly beneficial configuration consists in fixing the micropump to a rigid part, to which part said fixed end of the piezo-electric element is also fixed. The elements constituting this assembly thus form a closed loop.
During the assembly of these elements, variations of geometry or defects of alignment may nevertheless occur, and do so cumulatively, leading to unacceptable errors or hyperstatism when the last fixing is effected.
In this case the sticking of the membrane of the micropump and the flexible element is preferably effected last. In this way these two elements are fixed in their relative position by the other elements and fixings of the loop.
Fixing (for example gluing) them last thus enables variations of geometry to be absorbed and prevents hyperstatism by fixing this relative position.
The invention is described in more detail hereinafter by means of examples illustrated by the following figures:
The following numerical references are used in the present application:
The micropump shown in
A piezo-electric element 5 (not shown in
The electrical voltage applied to the fixed end 8 of a piezo-electric element 5 induces its contraction, which contraction is reflected in a circular movement of its free end 9. The maximum displacement of the piezo-electric element 5 thus occurs at its free end 9. A plurality of electrical contacts 15 are placed in such a manner that by applying a voltage to each of them movement occurs in either one direction or the other and/or increases the movement.
The free end 9 of the piezo-electric element is attached to an upper end 10 of a strip 6 disposed in a vertical direction, inside a passage 7 of cylindrical shape. The strip 6, constituted of stainless steel, for example, thus has a horizontal (lateral) flexibility. It may thus move in this direction when a horizontal force acts on it, which in the present instance is produced by means of the piezo-electric element 5.
It should be noted at this point that prior art systems absorb the horizontal load at pivot points, by integrating parts with rotary movements.
The invention consists mainly in using as the connecting element 6 a strip that is easily deformable horizontally. Moreover, the strip 6 is sufficiently rigid and strong along its main axis to transmit movement of the piezo-electric element to the membrane 2.
The variant shown in
It goes without saying that the invention is not limited to the above examples.
Number | Date | Country | Kind |
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09178168.2 | Dec 2009 | EP | regional |
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/IB10/55310 | 11/19/2010 | WO | 00 | 5/29/2012 |