The present invention relates to an adhesive-free method for joining two substrates and in particular to a micropump which has been produced in particular by means of the adhesive-free method for joining two substrates.
The prior art has disclosed a wide range of methods for joining a first, second and third substantially two-dimensional layer in particular made from plastic and/or glass and/or substrate and/or metal to one another. By way of example, the first, second and third layers can be joined to one another by means of adhesives, in which case the methods which are known from the prior art in each case use three layers which are of substantially equal size in terms of the extent of their area.
Moreover, the prior art has disclosed micropumps which substantially comprise a housing lower part and a housing upper part, between which there is arranged a valve diaphragm, cf. for example DE-19720482 C2.
The methods for joining three layers which are known from the prior art are generally very complex and expensive, and this equally also applies to the micropumps which are known from the prior art and are produced by the said methods.
Therefore, it is an object of the present invention to provide a micropump of compact design with a high pumping capacity which can be produced even in large numbers using simple and inexpensive production and joining techniques. A further object of the present invention is to provide an inexpensive method for producing a micromechanical component which substantially comprises a two-layer structure with a functional element between the two layers.
The objects are achieved by the features of the independent claims. Advantageous embodiments of the present invention are described in the subclaims and/or the following description, which is accompanied by diagrammatic drawings, in which:
a, b, c and d diagrammatically depict the basic elements of an apparatus according to the invention;
a, b and c each show modifications to the apparatus according to the invention shown in
a shows a diagrammatic plan view of the main components of an apparatus according to the invention in accordance with a first embodiment of the present invention, and
a shows a partial section through components of an apparatus according to the invention, arranged on top of one another, in accordance with a second embodiment of the present invention, and
a shows a diagrammatic partial section through components of an apparatus according to the invention, arranged on top of one another, in accordance with a third embodiment of the present invention, and
a diagrammatically depicts the arrangement of an apparatus according to the invention in accordance with a fourth embodiment of the present invention, and
a and 7b show further diagrammatic illustrations, in the form of an exploded view and in section, respectively, of an apparatus according to the invention in accordance with the first embodiment of the present invention from
The present invention is based on the idea of providing a method for joining a first substrate layer 1, a second substrate layer 2 and a functional element 3, with the functional element 3 being elastic in form and/or being designed to be very much thinner than the first substrate layer 1 and the second substrate layer 2, and the functional element being arranged in sandwich fashion between the first substrate layer 1 and the second substrate layer 2, and the first layer 1 and second layer 2 being joined together by means of pressure, so that the functional element 3 is clamped between the two layers in such a manner that the first layer 1 and second layer 2 are permanently joined to one another and the functional element 3 is arranged permanently between the first layer 1 and the second layer 2. In this case, the first layer 1 and the second layer 2 and the functional element 3 are substantially two-dimensional in form, with the functional element 3 according to the invention having a smaller surface area than the first layer 1 one and the second layer 2.
According to the invention, in this case the pressure and the material of layer 1 and layer 2 are selected in such a manner that layer 1 and layer 2 are permanently joined to one another after the pressure has been removed.
Moreover, the method according to the invention comprises in particular the following steps, in which first of all the functional element 3 is arranged at a predetermined position on one of the layers 1 or 2, for example on the layer 1, and then a suitable solvent is applied to the surface of the layer 1 or 2 which is not covered by the functional element 3, and then the second layer 2 is arranged above the first layer 1 and the functional element 3, and then pressure is exerted on the second layer 2, so that the first layer 1 and second layer 2 are joined to one another and the functional element 3 is clamped between the layers 1 and 2.
According to the invention, in this case the material of the layers 1 and 2 and the solvent and the level and duration of the pressure are selected in such a manner that after the pressure has been removed layers 1 and 2 are permanently joined to one another.
It is appropriate for the functional element to comprise a thin plastic film and/or a metal foil.
The first layer 1 and second layer 2 expediently comprise a substrate layer made from plastic and preferably from polycarbonate and/or PPSU and/or PEI and/or melamine.
A parallel basic concept of the present invention is to provide an apparatus with channel-like structures for transporting and/or storing a liquid and/or gaseous medium, which comprises a first substrate layer 1 and a second substrate layer 2, between which is arranged a functional element 3 which is elastic in form and/or designed to be very much thinner than the first layer 1 and the second layer 2, with the channel-like structures being formed in the first layer 1 and/or the second layer 2, and the first layer 1 and the second layer 2 being fixedly and permanently joined to one another, and the functional element 3 being clamped between the first layer 1 and the second layer 2, so that the channel-like structures in the first layer 1 and/or the second layer 2 are at least partially closed off in a gastight and/or liquid-tight manner by means of the functional element 3.
An apparatus according to the invention comprises in particular a functional element 3 which is designed as a movable element, in such a manner that a channel-like structure in the first layer 1 and/or second layer 2 can be opened and/or closed by means of the functional element 3, it being possible for the functional element 3 in particular to have a valve function.
An apparatus according to the invention expediently provides a micropump, in which case the functional element 3 includes at least one valve flap 31 and the apparatus moreover comprises a dynamic drive element 4 which is suitable for altering the volume of a cavity formed in the apparatus.
An apparatus according to the invention expediently comprises a first layer 1, in which a first channel 10 is formed, and a second layer 2, in which a second channel 20 is formed, so that a connection is produced between the first channel 10 and the second channel 20. Moreover, a valve flap 31 of the functional element 3 is arranged in such a manner that the connection between the first channel 10 and the second channel 20 is opened or closed. In an apparatus according to the invention, in particular and expediently the first channel 10 and second channel 20 are arranged substantially parallel, in which case the connection between the first channel 10 and second channel 20 includes an angle α from 5° to 80°, preferably from 15° to 50°, with the first channel 10 and second channel 20, so that a tangential transition between the first channel 10 and second channel 20 is provided by means of the connection between the first channel 10 and second channel 20. Moreover, the valve flap 31 of the functional element 3 is expediently arranged at the location of the connection between the first channel 10 and second channel 20.
In particular and expediently, the first channel 10 has a first width 10b, the second channel 20 has a second width 20b and the valve flap 31 has a third width 31b, in which case the first width 10b≦third width 31b≦second width 20b, and in which case a drive element 4, as seen in the direction of flow 132, is connected upstream (4, 132) and/or downstream (132, 4) of the valve flap 31, thereby providing a pump structure (I).
According to a modified embodiment of the present invention, in particular and expediently an apparatus is provided having a first channel 10 with a first width 10b, a second channel 20 with a second width 20b and a valve flap 31 with a third width 31b, in which case the second width 20b≦the third width 31b≦the first width 10b, and in which case a drive element 4 is connected upstream (4, 231) and/or downstream (231, 4) of the valve flap 31, as seen in the direction of flow 231, thereby providing a pump structure (II) according to the invention.
According to the invention, a multiplicity of micropump structures (I) and/or (II) may be formed in combination in an apparatus according to the invention. In particular and expediently, an apparatus according to the invention comprises a central drive element 4, with at least one first valve flap 31, in accordance with pump structure (I), connected upstream (4, 132) of it, as seen in the direction of flow 132, and moreover with at least one second valve flap 31, in accordance with pump structure (II), connected downstream (231, 4) of it, as seen in the direction of flow (231), and an apparatus according to the invention also comprises in particular a third valve flap 31, in accordance with pump structure I, which is connected downstream (132, 4) of the drive element 4, as seen in the direction of flow 132, and is connected upstream of the second valve flap 31, and moreover a fourth valve flap 31, in accordance with pump structure II, which is connected upstream (231, 4) of the drive element 4, as seen in the direction of flow 231, and is connected downstream of the first valve flap 31. In this case, in particular and expediently the valve flaps 31 are formed in this arrangement in the direction of flow in a plastic film 3, and moreover a recess 30, which is connected to a cavity interacting with the drive element 4, is formed between the third and fourth valve flaps 31.
According to one particularly advantageous embodiment of the present invention, an apparatus according to the invention comprises a series connection of pump structures (I), (II), (I) and (II) with an associated first, second, third and fourth valve flap 31 in this order in the direction of flow, with a central drive element 4 and a cavity (pump chamber) arranged between the middle pump structures (II) and (I). In this case, in particular and expediently the valve flaps 31 are formed in this arrangement in the direction of flow in a functional element 3. Moreover, a recess 30, which interacts with the pump chamber and the drive element 4, is formed between the two middle valve flaps 31.
According to an advantageous embodiment of the functional element 3 according to the invention, a hole structure 30′ with a filter action may be provided instead of the recess 30, in which case the functional element 3 is expediently formed in a thin plastic film.
The text which follows provides a detailed description of advantageous embodiments of the present invention with reference to the accompanying drawings.
a, b, c and d diagrammatically depict the basic elements of an apparatus according to the invention; these figures also illustrate the underlying principle of the method according to the invention. In the method according to the invention for joining a first substrate layer 1, a second substrate layer 2 and a functional element 3 which is elastic in form and is expediently designed to be very much thinner than the first substrate layer 1 and second substrate layer 2. Moreover, the functional element 3 is arranged in sandwich fashion between the first substrate layer 1 and second substrate layer 2, the functional element 3 having a smaller surface area than the first layer 1 and second layer 2 and expediently being arranged at a predetermined position on the first substrate layer 1. Then, a suitable solvent is applied to the surface of the substrate layer 1 which is not covered by the functional element 3. Then, the second substrate layer 2 is arranged above the first layer 1 and the functional element 3 and pressure is exerted on the second substrate layer 2, so that the first substrate layer 1 and second substrate layer 2 are joined and the functional element 3 is clamped between the substrate layers 1 and 2, with the result that the first substrate layer 1 and second substrate layer 2 are permanently joined to one another and the functional element 3 is arranged permanently between the first substrate layer 1 and the second substrate layer 2.
In this case, the material of substrate layers 1 and 2 and the solvent and the level and duration of the pressure are selected in such a manner that layers 1 and 2 are permanently joined to one another after the pressure has been removed.
As is diagrammatically depicted in
According to the invention, the functional element 3 is substantially in the form of a two-dimensional layer which is elastic in form and expediently designed to be very much thinner than the first substrate layer 1 and second substrate layer 2, and moreover the functional element 3 has a smaller surface area than the first substrate layer 1 and second substrate layer 2, and furthermore the first substrate layer 1 and second substrate layer 2 are formed from a material which can be joined by means of a suitable solvent and pressure and moreover has a sufficient elasticity for it to be possible for the functional element 3 to be clamped between the first substrate layer 1 and second substrate layer 2 by means of pressure while the surfaces of the first substrate layer 1 and second substrate layer 2 are in contact with and joined to one another and are permanently joined to one another after the pressure has been removed. In this case, the functional element 3 can be clamped between the two substrate layers 1 and 2 in such a manner that no cavities x are formed at its edges.
It is expedient for the first substrate layer 1 and second substrate layer 2 to be formed from plastic and preferably from polycarbonate and/or PPSU and/or PEI and/or melamine, and the functional element 3 is expediently a thin plastic film and/or a metal foil and is in particular formed from plastic and preferably from a polyimide.
a, b and c diagrammatically depict the basic elements of an apparatus according to the invention and in each case modifications to the apparatus according to the invention shown in
b shows the basic components of a further modification to the apparatus according to the invention shown in
c diagrammatically depicts the main components of a further modification to an apparatus according to the invention, in which case a suitable recess is formed in the second substrate layer 2 as well, in a corresponding position to the recess in the substrate layer 1 and the functional element 3. In the embodiment shown in
It will be clear that further modifications to an apparatus according to the invention and the method according to the invention can also be provided by combinations of the embodiments shown in
The following figures diagrammatically depict the main components of an apparatus according to the invention in accordance with further embodiments of the present invention, with a basic arrangement of the embodiment shown in
a shows a plan view of the main components of an apparatus according to the invention in accordance with a first embodiment of the present invention, and
The first embodiment of the present invention as shown in
According to the invention, the layers 1 and 2 are now arranged one above the other, and moreover the functional element 3 is arranged in sandwich fashion between the substrate layers 1 and 2, in such a manner that the channel 10 is connected to a cavity interacting with a drive element 4 by means of the opening 30 and 20, and moreover the channel 10 can be opened and/or closed by means of the valve flap 31, so as to provide a pump structure according to the invention.
The pump structure described above is diagrammatically depicted in
Expediently and advantageously, it is also possible for a hole structure 30′, which has a filter action and effectively prevents any contaminating or dirt particles contained in a liquid that is to be pumped from entering the cavity or the pump chamber, to be formed in the functional element 3 instead of the opening 30. An advantageous hole structure 30′ of this type is diagrammatically depicted in
a shows a partial section through components of an apparatus according to the invention, arranged on top of one another, in accordance with a second embodiment of the present invention, and
The second embodiment of the present invention as shown in
The functional element 3 of the embodiment shown in
The first channel 10 and the second channel 20 and the functional element 3 with the valve flap 31 according to the invention are now designed in such a manner that the valve flap 31 is arranged at the location of the connection between the first channel 10 and the second channel 20, in such a manner that the connection between the first channel 10 and the second channel 20 is opened or closed by interaction with a drive element 4 which may be connected upstream and/or downstream of the valve flap 31. According to the invention, the first channel 10, the second channel 20 and the valve flap 31 are designed in such a manner that the first channel 10 has a first width 10b, the second channel 20 has a second width 20b and the valve flap 31 has a third width 31b, so that the first width 10b≦the third width 31b, and the third width 31b≦the second width 20b. Moreover, it is expedient for the valve flap 31 to be arranged and formed in such a manner that a pump structure with a direction of flow (arrow direction) from the first channel 10 to the second channel 20 is provided, it being possible for the drive element 4 to be connected upstream (4, 132) and/or downstream (132, 4) of the valve flap 31, as seen in the direction of flow 132. The embodiment described above in accordance with
a shows a partial section through components, arranged on top of one another, of an apparatus according to the invention in accordance with a third embodiment of the present invention, and
The third embodiment of the present invention shown in
For both embodiments of the present invention, namely the embodiments shown in
a diagrammatically depicts the arrangement of an apparatus according to the invention in accordance with a fourth embodiment of the present invention.
According to the invention, in the fourth embodiment of the present invention shown in
c diagrammatically depicts the arrangement of an apparatus according to the invention in accordance with a fifth embodiment of the present invention, in which likewise, as in the fourth embodiment of the present invention from
When the fifth embodiment of the present invention shown in
In the fifth embodiment of the present invention shown in
An advantageous functional element 3 of this type is diagrammatically depicted in
a, by way of example, diagrammatically depicts an apparatus according to the invention of the first embodiment of the present invention having a channel 10, which is formed in the first substrate layer 1, and a functional element 3 with a continuous recess 30 or a hole structure 30′, with a valve flap 31 connected upstream of it, and a second substrate layer 2 with a continuous recess 20, which interacts with a cavity 410 formed in a third substrate layer 41. The structure and action of the embodiment shown in
Forming the cavity 410 in a substrate layer 41, which is arranged above the second substrate layer 20, and the advantageous arrangement thereof, have been described by way of example on the basis of the embodiment shown in
Moreover, it will be clear that the above-described second to fifth embodiments of the present invention can advantageously be combined in a corresponding way with a drive element 43 and the further elements or layers 4, 41, 410, 42 and 43 in accordance with
The drive element 4 may expediently be a thin piezo diaphragm.
The present invention may in particular be produced at low cost, even in industrial series production, in miniaturized form by means of microstructuring techniques.
The above-described advantageous hole structure 30′ of the functional element 3 particularly advantageously interacts with a multiple valve arrangement in accordance with
The advantageous series connection of the pump structures (I), (II), (I) and (II) in this order in the direction of flow F, with the respective valve flaps 31 and the associated channel structures 10 and 20 in the upper substrate layer 1 and lower substrate layer 2 and the central drive element 4 arranged between the middle pump structures (II) and (I) and having the central pump chamber promotes a particularly efficient pump capacity in particular on account of the arrangement at an angle α with in particular a tangential transition between the channel structures 10 and 20.
In particular the single-piece formation of the functional element 3 and its multi-functional role as a filter and with a plurality of differently designed and similar valve flaps 31 is particularly advantageous since it is particularly efficient in terms of performance and action in particular with suitable channel structures 10 and 20, and moreover it can be produced and assembled in miniaturized form in a simple and inexpensive way even in large numbers.
A first to fifth embodiment, as described above, of a micropump according to the invention, and in particular the fourth and fifth embodiments of the invention, are particularly suitable for delivering liquids and gases even in extremely small metered quantities, and given a suitably miniaturized formation may have a particle tolerance up to a particle diameter of approx. 40 μm. On account of the structure of the fluid channel according to the invention with gradual angles and the integrated valve flaps, moreover only an extremely minor pressure loss can occur in operation.
Moreover, it will be clear that a micropump according to the invention can be used in many sectors, for example for the metering of fluids in chemical, biological and medical analysis, for example for sampling, e.g. in environmental analysis, and also, for example, in the food industry, for cooling systems, for transport purposes for example in lubricating systems or for dispensing purposes, etc.
Number | Date | Country | Kind |
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103 60 709.9 | Dec 2003 | DE | national |
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/EP04/14505 | 12/20/2004 | WO | 2/23/2006 |