The present invention relates to a microvalve, in particular for a micropump and a method for manufacturing a microvalve and/or a micropump.
Conventional micropumps are used for controlled and highly precise dispensing of conventional insulin. For example, European Patent No. EP 1 651 867 Bi describes a micropump, which is designed as a complex layer system.
Conventional micropumps usually include at least one inlet valve and at least one outlet valve. These micropumps have a valve member, usually piston-shaped, which is adjustable between an open position and a closed position and is in a more or less sealing contact with a stationary valve seat in the closed position. There is the problem in general of suboptimal sealing of a valve in its closed position, which is sometimes manifested in unacceptable leakage rates and/or reduced operating pressures.
An object of the present invention is to provide a microvalve, in particular for a micropump, which has an improved tightness in its closed position. Furthermore, an object is to provide a micropump having a microvalve improved in this way as well as a method for manufacturing such a microvalve and/or such a micropump.
All combinations of at least two features described below or the and/or illustrated in the figures fall within the scope of the present invention. To avoid repetition, such features which are described with regard to an example method according to the present invention should also be considered as described according to the device. Likewise, features described with regard to the example device should also be considered as described with regard to the method.
The unacceptable leakage rates which occur with conventional microvalves are typically attributable to a suboptimal sealing pairing. The sealing pairing in the case of a conventional microvalve manufactured from silicon is usually composed of two hard sealing materials, for example, Si and Si3N4 or Si and glass or Si and SiO2, etc.
In accordance with the present invention, in order to improve the sealing effect of a microvalve, the valve seat which cooperates sealingly with the valve member in the blocked position of the valve member is made of a preferably elastic polymer material. The polymer material here is preferably softer than the valve member material, so that an optimal sealing pairing is achievable with the resulting reduced leakage rate. A microvalve designed according to an example embodiment of the present invention is suitable in particular for use in micropumps, which are ideally suited for administering medication, preferably highly concentrated and easily overdosable medications, such as insulin, morphine, etc., due to the improved microvalve sealing effect.
In a refinement of the present invention, as described above, it is advantageous if the polymer material forming the valve seat is softer than the valve member material to thus further optimize the sealing effect. The polymer material is most preferably an elastic material to maintain the improved sealing effect over the lifetime of the microvalve.
A specific example embodiment of the microvalve, in which it includes at least two, in particular different material layers as a multilayer structure, the valve member, which is adjustable in relation to the valve seat, being formed in a function layer, which is most preferably formed from a semiconductor material. A specific embodiment in which the valve member may be acted upon by spring force with the aid of springs in the direction of the valve seat is particularly preferred, it being additionally preferred if the springs in the function layer forming the valve member are designed as spiral springs, for example.
It is particularly preferred if the valve seat of polymer material is formed by an insert part which is most preferably made completely of a polymer material. The insert part or at least some sections thereof are accommodated in or inserted into a recess in a layer directly or merely indirectly adjacent to the function layer and thus come into sealing contact therewith in the closed position of the valve member. It is particularly preferred if the insert part is at the same time designed as sealing for connecting the microvalve or a micropump equipped with the microvalve to a fluid system, in particular to a fluid block, so the insert part simultaneously fulfills at least two sealing effects, preferably on two sides facing away from one another. The layer having the recess in the multilayer structure having the function layer may be a layer directly adjacent to the function layer or alternatively may be a layer at a distance from the function layer via at least one additional layer. The insert part has at least one channel for supplying fluid to or removing it from the microvalve. It is particularly preferable if the channel opens or begins in an area radially inside the actual valve seat.
A specific example embodiment, in which the layer having the recess for the insert part is designed as a stable carrier layer, which supports the microvalve construction or the function layer having the movable valve member, is most particularly preferred. It is particularly preferred if the stable carrier layer is formed from a harder material than the function layer. For example, the carrier layer having the recess may be made of a glass.
In a refinement of the present invention, it is advantageously provided that the insert part having or forming the valve seat protrudes beyond the recess and thus beyond the layer having the recess, in particular the carrier layer, in the direction of the valve member, preferably having a section in the form of a truncated cone, preferably so that the valve member is placed under prestress, so that the leakage rate and thus the safety of a micropump equipped with such a microvalve, may be further improved.
To allow a defined positioning of the insert part in relation to the adjustable valve member, it is particularly preferred if a stop, preferably formed in the function layer and most particularly preferably a ring-shaped stop is provided for the insert part, limiting the insertion movement of the insert part into the recess in a defined manner.
For easier centering and to ensure a tight connection between the insert part and the at least one layer having the recess, it is particularly preferred if the recess is designed to taper in the direction of the valve member, preferably in the form of a truncated cone, in particular conically, so that at least one section of the insert part should be designed to be congruent in shape to the recess in order to achieve an optimal sealing effect.
To allow an optimal hold of the insert part in the layer having the recess, it is preferable if the insert part is fixedly connected to the layer having the recess, preferably by gluing or welding. Additionally or alternatively, the insert part may be fixedly connected to any layer, preferably an outer layer of the multilayer structure, in particular by welding or gluing.
A specific example embodiment in which the insert part includes a section, in particular plate-shaped, which protrudes above the recess radially and is in contact with a layer of the multilayer structure, in particular on the outside of the layer having the recess, is particularly advantageous. At the same time, the plate-shaped section preferably forms a seal for connecting the microvalve to a fluid block or carries such a sealing section. There are several possibilities for manufacturing the insert part, which is preferably made completely of a polymer material. For example, it may be manufactured by hot stamping and/or microinjection molding and/or thermal polymerization and/or UV polymerization, etc. The insert part is ideally provided in a polymer material which is incompletely polymerized, i.e., is post-crosslinkable and may be fully polymerized/crosslinked in the recess during and/or after joining, so that a reliable connection to the layer having the recess, in particular a layer of a silicon compound and/or a glass is manufacturable. The multilayer structure, preferably the layer having the recess, is ideally modified (previously) at the surface for this purpose so that reactive groups are available for the bonding operation. However, the actual valve seat should already be completely polymerized before being joined, or the mating surface of the valve seat of the valve member should be made of a material and/or have a coating which does not enter into any interaction with the valve seat in joining (full polymerization).
In a specific embodiment, which is most particularly preferred, at least two push-in sections for one microvalve are each formed on a plate-shaped section. In other words, the insert part simultaneously forms two valve seats at a distance from one another, preferably for two different microvalves.
The present invention is also directed to a micropump, in particular for dosing highly concentrated easily overdosable medications such as insulin, morphine, etc. Such a micropump is characterized by at least one microvalve as described. The at least one inlet valve as well as the at least one outlet valve of such a micropump are both preferably designed as described previously.
In addition, the present invention is also directed to a method for manufacturing a microvalve, preferably designed as described above, and/or for manufacturing a micropump, preferably designed as described above. According to the method, the valve seat is manufactured from a polymer material, which is preferably softer and/or more elastic than the valve member material.
The valve seat is particularly preferably designed on an insert part, preferably made completely of polymer material, for example, by hot stamping and/or injection molding and/or by a suitably controlled or shaped polymerization. Such an insert part is then inserted into a recess in a multilayer system, preferably designed as a borehole, and is then preferably fixedly connected to the multilayer system.
It is most particularly preferred if the insertion of the insert part is limited in a defined manner by a stop, in particular a ring-shaped stop against which the insert part stops after traveling a defined insertion distance. The stop preferably surrounds the valve member in a radially outside area.
It is particularly preferred if the insert part is not yet completely crosslinked, i.e., is post-crosslinkable, when it is inserted into the recess and if full crosslinking and/or at least a more extensive crosslinking of the insert part takes place, preferably after insertion, preferably in such a way that a bond between the insert part and the at least one layer holding the insert part is formed at the same time. This may be promoted by the fact that the multilayer structure is surface modified in at least some sections in an area to be connected to the insert part, in particular in such a way that reactive groups are available for the bonding and full crosslinking process. The insert part is advantageously already fully polymerized in the area of the actual sealing seat before being inserted into the recess and/or the mating surface of the valve member is made of a material and/or a coating which does not enter into any interaction with the insert part in the full crosslinking process.
Additional advantages, features and details of the present invention may be derived from the description of preferred exemplary embodiments below and on the basis of the figures.
In the figures, the same elements and elements having generally the same function are labeled with the same reference numerals.
Micropump 1 is operable with the help of one, two or three actuators (not shown) situated beneath diaphragm 8. With regard to possible types of modes of operation or triggering options of micropump 1, reference is made to German Patent
Application No. DE 10 2008 00 37 92.3, incorporated herein by reference in its entirety. This German patent application should be considered as disclosed and part of the present patent application, so that at least any one feature of the present patent application may be combined with at least any one feature of German Patent Application No. DE 10 2008 00 37 92.3.
To be able to function as micropump 1, microvalves 3, 4 each lack a first or second valve seat 16, 17 shown in
As shown in
As shown in
Insert part 18 is preferably not yet completely crosslinked in the stage according to
In the exemplary embodiment according to
In addition to the exemplary embodiments shown here, all valve seat shapes, which reduce the valve seat area and therefore increase the surface pressure, are implementable. Such structures are likewise also implementable on the top side of insert part 18 to thereby improve the sealing function between insert part 18 and a fluid block (not shown).
Number | Date | Country | Kind |
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10 2008 042 054 | Sep 2008 | DE | national |
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/EP2009/061518 | 9/7/2009 | WO | 00 | 3/8/2011 |
Publishing Document | Publishing Date | Country | Kind |
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WO2010/029031 | 3/18/2010 | WO | A |
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International Search Report, PCT International Patent Application No. PCT/EP2009/061518, dated Nov. 17, 2009. |
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Number | Date | Country | |
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20110168936 A1 | Jul 2011 | US |