Device for receiving, dispensing, and moving liquids
11446657 · 2022-09-20
Assignee
Inventors
Cpc classification
B01L2200/16
PERFORMING OPERATIONS; TRANSPORTING
B01L3/502738
PERFORMING OPERATIONS; TRANSPORTING
B01L2400/0688
PERFORMING OPERATIONS; TRANSPORTING
B01L3/502723
PERFORMING OPERATIONS; TRANSPORTING
B01L3/50273
PERFORMING OPERATIONS; TRANSPORTING
B01L2200/0684
PERFORMING OPERATIONS; TRANSPORTING
B01L2400/0481
PERFORMING OPERATIONS; TRANSPORTING
B01L3/52
PERFORMING OPERATIONS; TRANSPORTING
B01L3/502715
PERFORMING OPERATIONS; TRANSPORTING
B01L2400/0638
PERFORMING OPERATIONS; TRANSPORTING
B01L2400/06
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
A microfluidic system comprising a chamber closed by movable elements and connected to at least one channel. The system has at least one structured component and at least one component attached to the structured component. The chamber is used such that the movable element can be moved into the chamber as well as out of the chamber by a movement of the movable element. Liquids or gases can be moved via one or more channels connected to the chamber by the movement and dispensed or received out of the structured component via a connection of the channel. A liquid reagent reservoir is connected to the pump chamber via the sample supply channel. Thus, the system can be used to receive, pump, dilute, mix, and dispense liquids or gases.
Claims
1. A microfluidic system, comprising: a planar structured component being essentially flat or plate-like having one longitudinal extension and a shorter lateral extension, and an other planar component being essentially flat or plate-like, the planar structured component having a chamber and a channel system, wherein the chamber and the channel system are formed as recesses into the planar structured component from a same planar surface, so that the channel system and the chamber are open at said same planar surface, wherein the channel extends in longitudinal direction of the planar structured component and is connected to the chamber, the other planar component being attached to the planar surface of the planar structured component, so that the chamber and the channel system are formed by the planar structured component and the other planar component, so that the chamber and the channel system are liquid-tight closed at the surface of the planar structured component, wherein the chamber is fluidically connected to the outside via the channel system and at least one fluidic interface, wherein the fluidic interface is formed at a lateral side surface of the planar structured component and protrudes as a projection from the lateral side surface of the planar structured component, wherein the other planar component being attached to the planar surface of the planar structured component has a flexible and movable portion at least partially adjacent to the chamber, wherein the flexible and movable portion is adapted to be pushed by a pressure applied by a thumb from outside due to its flexibility into the chamber in a direction perpendicular to the chamber and channel system, so that liquids or gases can be taken in or discharged via the at least one fluidic interface or moved in the microfluidic system, wherein the flexible and movable portion automatically moves back due to its material properties after being pushed into the chamber by actuation of the thumb.
2. The microfluidic system according to claim 1, wherein the flexible and movable portion is formed at least one side wall of the chamber within the structured component.
3. The microfluidic system according to claim 1, wherein the chamber is connected via a further channel system to a further fluidic interface and at least one of the fluidic interfaces is closable with a cap.
4. The microfluidic system according to claim 1, further comprising a venting device for the chamber, wherein the venting device is arranged such that venting can take place via a further channel connected to the outside or a gas-permeable membrane.
5. The microfluidic system according to claim 1, further comprising an inlet channel which has a passive stopping function and is filled either by capillary action or by a change in the chamber volume caused by the flexible and movable portion and receives a defined quantity of liquid.
6. The microfluidic system according to claim 1, further comprising an additional reagent reservoir.
7. The microfluidic system according to claim 6, wherein the additional reagent reservoir is configured as a blister, the additional reagent reservoir comprising: a blister seat having piercing elements configured to pierce the blister fluid-tightly connected above the piercing elements, a flap, which is pushable in a defined manner using guide elements in the blister seat, whereby a defined volume dosage is possible.
8. The microfluidic system according to claim 1, wherein a channel leading to the chamber has widenings.
9. The microfluidic system according to claim 1, which has a cavity for optical readout and/or reaction, and which preferably has different depths.
10. The microfluidic system according to claim 1, comprising a lateral flow strip, the filling of which is enabled by an operation of the chamber, wherein a venting membrane and/or a venting channel is coupled with the lateral flow strip.
11. The microfluidic system according to claim 1, having at least two chambers, the at least two chambers being directly connected to one another via a channel system.
12. The microfluidic system according to claim 1, further comprising attachments on the flexible and movable portion, which are located outside the chamber or extend into the chamber.
13. The microfluidic system according to claim 1, said chamber having reagents therein.
14. The microfluidic system according to claim 1, further comprising movable elements inserted in the chamber for mixing.
15. The microfluidic system according to claim 1, wherein a mixing of liquids within the chamber is achieved by a manual movement of the microfluidic system and/or by a mixing device.
16. The microfluidic system according to claim 1, wherein the channel system has alignment marks, or is provided with alignment marks next to, below or above the channel system, allowing volume indication.
17. The microfluidic system according to claim 1, configured for multiple liquid intake or multiple liquid discharge.
18. The microfluidic system according to claim 1, having fluidic interfaces pointing in different directions or leaving the microfluidic system at a predetermined angle.
19. The microfluidic system according to claim 1, wherein an intake or discharge of liquids is controllable via rotary valves.
20. The microfluidic system according to claim 1, wherein the intake or discharge of liquids is controllable via membrane valves.
21. The microfluidic system according to claim 5, wherein the passive stopping function is provided in the form of a capillary stop valve, a channel taper or a surface modification.
22. The microfluidic system according to claim 6, wherein the additional reagent reservoir is formed as a blister.
23. The microfluidic system according to claim 7, wherein a configuration of the guide elements enables multi-stage volume dosing.
24. The microfluidic system according to claim 7, wherein a fluid-tight closure of the fluidic interface for the liquid intake is formed as a cap.
25. The microfluidic system according to claim 3, the cap having a flexible portion adapted to be pushed in or pulled out after attachment to thereby move the liquid in the channel system.
26. The microfluidic system according to claim 4, wherein the venting device is closable.
27. The microfluidic system according to claim 11, wherein the at least two chambers are arranged in one or more planes.
28. The microfluidic system according to claim 14, wherein the movable elements are formed as balls or rods.
29. The microfluidic system according to claim 14, wherein structural elements are formed in the structured component to enhance mixing.
30. The microfluidic system according to claim 1, the fluidic interface further comprising an outlet, wherein by means of a geometry of the outlet the volume of a discharged drop of liquid is preset.
31. The microfluidic system according to claim 1, further comprising a cap, the cap being fluid-tightly mounted on the fluidic interface.
32. The microfluidic system according to claim 1, wherein a fluidic interface is formed as an inlet of the microfluidic system and a fluidic interface is formed as an outlet of the microfluidic system, and the inlet and outlet are arranged on one side of the system, wherein a cap is fixed to the microfluidic system, preferably to the structured component, wherein the cap can be fitted either to the inlet or to the outlet, thus enabling a liquid to be received at the inlet or a liquid to be discharged at the outlet.
33. The microfluidic system according to claim 1, further comprising a plurality of fluidic interfaces which are connected to a distribution system, wherein the plurality of fluidic interfaces are selectively controllable.
34. The microfluidic system according to claim 1, wherein an independent liquid intake into the microfluidic system is enabled by means of capillary forces of the channel system at the fluidic interface.
35. The microfluidic system according to claim 1, further comprising a reservoir interface by means of which a liquid reservoir is connectable to the structured component.
36. The microfluidic system according to claim 35, wherein the reservoir interface is fluidically connected to the channel system and/or to the chamber.
37. The microfluidic system according to claim 1, wherein the channel system has valves, whereby the intake of defined liquid volumes is enabled.
38. The microfluidic system according to claim 37, wherein the valve function is generated or enhanced by surface functionalization.
39. The microfluidic system according to claim 1, wherein dry reagents are incorporated in the channel system of the structured component, wherein the dry reagents are absorbed into the flowing liquids and mixed therewith.
40. The microfluidic system according to claim 1, wherein a reagent is placed at a defined position in or at the channel system and colours liquid flowing over it so that a reaching of the position and thus a reaching of a certain volume or a defined dwell time is indicated.
41. The microfluidic system according to claim 1, wherein a magnifying device is arranged at least one defined position above or below the channel system or the chamber, so that a reaching of at least one specific position in the channel system can be detected by liquid and/or colour reactions.
42. The microfluidic system according to claim 41, wherein the magnifying device is configured as a lens.
43. The microfluidic system according to claim 1, wherein longer channel elements are incorporated as flow limiters into a fluid path of the channel system in order to enable a controlled liquid intake and liquid discharge.
44. The microfluidic system according to claim 7, wherein a defined ejection of defined volumes is achieved by means of the flap.
45. The microfluidic system according to claim 1, wherein a defined movement of the flexible and movable portion is achieved by means of geometric elements or attachments.
46. The microfluidic system according to claim 45, wherein a flap and the geometric elements or attachments configured as pushing elements are connected, combined or coupled to one another on the flexible and movable portion.
47. The microfluidic system according to claim 1, wherein a distribution system comprising a plurality of channels which open into a corresponding number of fluidic interfaces, enables a simultaneous intake and discharge of liquids.
48. The microfluidic system according to claim 47, wherein a uniform distribution of liquids in the distribution system is supported by integrated passive valves.
49. The microfluidic system according to claim 1, wherein valves enable a selective liquid discharge from individual fluidic interfaces.
50. The microfluidic system according to claim 1, wherein the liquid is taken in passively by the fluidic interface without a movement of the flexible and movable portion.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) In the figures:
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DETAILED DESCRIPTION
(18) The present invention describes a fluidic system including a chamber which has a flexible or movable part, usually the bottom or lid, in particular embodiments also movable walls, which, by lifting or lowering, allows the intake, discharge, displacement, dilution or mixing of liquids or gases which are connected to the chamber via at least one channel or opening.
(19) The chamber and the movable part are configured such that, by a movement of the movable part from its initial position, a predetermined and adjustable volume of the chamber is displaced. In this way, predetermined volumes can be received or discharged in the chamber when the moving part is returned to another position or to the initial position. In other words, the volume is predetermined by the properties of the fluidic system or can be adjusted by the configuration of the fluidic system according to the invention.
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(21) The fluidic system has a structured component 1 including a chamber 2, wherein the chamber 2 is connected to a channel system 3. The structured component 1 is essentially flat or plate-like. In other words, the structured component 1 has a first main side and a second main side which are parallel to each other. The chamber 2 and the channel system 3 are formed on the first main side on the surface of the structured component 1. In other words, the chamber 2 and the channel system 3 are embedded at the main side into the surface of the structured component 1. The chamber 2 and the channel system 3 thus are a recess on the surface of the structured component 1. For example, the first main side is an upper side of the structured component 1, and the second main side is a bottom side of the structured component 1. Side surfaces of the structured component 1 are arranged between the upper side and the bottom side of the structured component 1. The structured component 1 can, for example, be rectangular in shape. The structured component 1 can also be disc shaped. However, the structured component 1 can take on any shape as long as it is essentially flat.
(22) The structured component 1, for example, can be configured as a platform. The structured component 1 can also be referred to as a structured module 1. The structured component 1 can be flat.
(23) The chamber 2 or the channel system 3 thus has an upper side which corresponds to the upper side of the structured component 1. A bottom side of the chamber 2 or the channel system 3 is formed inside the structured component 1. The bottom side of the chamber 2 can also be referred to as a chamber bottom 7. The interior of the chamber 2 is formed between the upper side of the chamber 2 and the bottom side.
(24) The chamber 2 or the channel system 3 can be configured as a recess in the structured component 1, for example on the upper side or the bottom side of the structured component 1. The chamber 2 and the channel system 3 can be configured as recesses of different depths.
(25) The chamber 2 and the channel system 3 are fluidically connected to the outside via a fluidic interface 5. In other words, the fluidic interface 5 is an opening of the channel system on a side surface of the structured component 1. The opening of the fluidic interface 5 can also be arranged on an upper side or lower side of the fluidic system. As can be seen in
(26) The fluidic system may have a plurality of fluidic interfaces 5, each of which is connected to the channel system 3. The fluidic interfaces 5 can be arranged at different surfaces of the structured component 1, for example the top side, bottom side or side surfaces. In other words, the openings of the fluidic interfaces 5 may point in different directions, i.e. they may have different orientations with respect to the centre of the structured component 1.
(27) A second component 4 seals the channel system 3 and the chamber 2 liquid- and gas-tight, so that the supply and discharge of liquids and gases can only take place via the fluidic interface 5. In other words, the second component 4 is arranged at the surface of the structured component 1 in such a way that it closes the chamber 2 and the channel system 3 on the upper side of the structured component 1. The second component 4 can, for example, be glued to the structured component 1 or welded to the structured component 1.
(28) In other words, at the top side of the chamber 2, the interior of the chamber 2 is bounded by the bottom side of the second component 4. The chamber 2 may have an essentially flat oval, rectangular or round shape. The chamber 2 or the interior of the chamber 2 is thus defined on the one hand by the structured component 1 and on the other hand by the second component 4.
(29) The second component 4 is flexible or the second component 4 has a flexible or movable portion 6. As shown in
(30) The second component 4 can be for example a foil or strip and can be made of plastic or metal.
(31) Alternative embodiments of the fluidic system are shown in
(32) Another alternative embodiment is shown in
(33) The structured component 1 is preferably configured with a cover foil, which has sufficient flexibility for pushing in and lifting above or below the chamber 2.
(34) Preferably, the chamber 2 is configured in such a way that the flexible portion(s) 6, 7, 9 do not fill the entire chamber 2 when pushing into the chamber 2. In other words, if the flexible portion 6, 7, 9 is pressed into the chamber 2, the flexible portion will not be flush with the chamber bottom. This means that liquid or gas in the chamber 2 is not completely discharged from the chamber 2 by pushing in the flexible portion 6, 7, 9. Furthermore, a tight sealing of the flexible portions 6, 7, 9 with the chamber bottom or the adjacent channel systems 3 is not necessary for the functionality.
(35) An exemplary operation of the embodiment shown in
(36) Liquid intake: In order to take liquids/gases into the fluidic system, or more precisely into the chamber 2 of the fluidic system, the flexible portion 6 is pushed downwards from the initial position manually or by hand, for example with a finger of a user, or by means of an operating device. In other words, the flexible portion 6 is moved from its initial position into the chamber 2 by pressure. This means that the flexible portion 6 is pushed from the top side into the interior of the chamber 2. By pushing the flexible portion 6 into the chamber 2, the interior space of the chamber 2 is reduced. Subsequently, the fluidic interface 5 is immersed in a liquid. The flexible portion 6 moves either automatically, due to the material properties of the flexible portion 6, partially or completely back to the initial position, or is moved back to the initial position by a movement of the operating device, for example suction or lifting off. In other words, the interior of the chamber 2 is enlarged again by moving the flexible portion 6 back to its initial position. By increasing the volume of the interior space, a negative pressure is created in the chamber 2 or in the adjacent channel system 3, which is connected to the liquid via the fluidic interface. This means that liquid is drawn into the fluidic system by the under pressure. In other words, a part of the liquid is first drawn into the channel system 3 by the negative pressure and then, if the negative pressure is sufficiently high, also into the chamber 2. Liquid is thus taken into the fluidic system. By adjusting the volume of the interior of the chamber 2 displaced by pressing down the flexible portion 6 and/or by returning the flexible portion 6 to its initial position in a defined manner, the volume of the received liquid or the positioning of the liquid in the channel system 3 or in the chamber 2 of the fluidic system can be adjusted.
(37) Mixing liquids: The received liquid is mixed by first drawing liquid into the chamber 2, that means liquid is first taken into the fluidic system. Then either the flexible component 6 is moved or the fluidic system itself is moved. The fluidic system is moved, for example, by tilting the fluidic system several times. A fast shaking should be avoided to avoid the generation of air bubbles in the received liquid.
(38) Discharge of liquids: Liquids are discharged from the fluidic system by pushing the flexible component 6 or the flexible components into the chamber 2. In other words, the volume of the interior of the chamber 2, which is bounded by the flexible component, is reduced by pushing the flexible component. The liquid, which is either in the chamber 2 or in the channel system 3, is discharged from the fluidic system according to the volume displaced by the movement of the flexible portion 6, i.e. by pressing the flexible portion 6 into the chamber 2. This means that the displaced liquid is discharged from the chamber 2 via the channel system 3 through the fluidic interface 5. The volume of the liquid discharged may correspond to the volume of the interior of the chamber 2 by which the chamber 2 is shrunk by pushing in the flexible portion. In this case, liquid volumes can be discharged several times. Multiple discharging can be achieved by pushing the flexible portion 6, 7, 9 step by step further into the chamber 2 or the interior of the chamber 2. Multiple discharging can also be achieved by first pressing the flexible portion 6, 7, 9 into the chamber 2 once and then moving the flexible portion 6, 7, 9 out of the chamber 2 by itself or by moving it out of the chamber 2 with the aid of an operating device as described above. The outward movement is accompanied by a backflow of at least part of the liquid in the channel system 3 connected to the chamber 2. The outward movement is followed by a repeated push of the flexible portion 6, 7, 9 into the chamber 2 for another liquid discharge. In other words, by repeatedly and alternately pushing into the chamber 2 and moving out of the chamber 2 of the flexible portion 6, 7, 9, a pumping movement or pumping functionality is performed. This leads to a repeated and alternating liquid intake and liquid discharge.
(39) Closure of the fluidic interface 5 for sampling: A cap 14 closes the fluidic interface 5 for sampling. The configuration of this cap 14 also allows the volume in the channel system 3 to be displaced by integrated projections.
(40) Preferably, one fluidic interface 5 is configured as an inlet 5.1 of the fluidic system, and another fluidic interface 5 is configured as an outlet 5.2 of the fluidic system. The inlet 5.1. and the outlet 5.2 are preferably formed at the structured components 1. The two fluidic interfaces 5.1 and 5.2 are formed on one side, preferably at an end face or narrow side of the chip (fluidic system). This means that the inlet and the outlet are arranged on one side of the system. This makes it possible to close the inlet and outlet with a cap 14, also known as a jumper.
(41) The cap 14 is preferably attached to the fluidic system, preferably to the structured component 1. One or more caps 14 may be attached.
(42) In a preferred configuration, only one cap 14 is provided, which can be attached to either the inlet 5.1 or the outlet 5.2. This can then be used to selectively take in liquid at the inlet or discharge liquid at the outlet.
(43) The one or more caps 14 are attached to the chip by a flap 44.
(44) Addition of liquid: The complete or partial emptying of a liquid reservoir 16 transports the collected sample through a liquid and allows dilution or addition of reagents.
(45) The flexible portion 6 can thus be pushed below a plane defined by the top side of the structured component 1 into the chamber 2, or more precisely into the interior of the chamber 2, by external pressure due to its flexibility. On the other hand, the flexible portion 6 can be pulled out of the interior of the chamber 2 again by pulling from the outside, for example by means of a negative pressure or an attached device. This means that it can be moved beyond the plane defined by the top side of the structured component 1.
(46) From these basic functionalities, i.e. the intake of liquid into the fluidic system, the discharge of liquid from the fluidic system and the mixing of liquid in the fluidic system, the following characteristics result for the fluidic system:
(47) The intake, dilution, discharge, dosing or transport of liquids is possible. Liquid that has been taken into the fluidic system can be transported and stored using the fluidic system. A multiple intake and multiple discharge of liquids is possible. Mixing of liquids is possible.
(48) The fluidic system can be used as a pipette with functions of liquid intake, liquid discharge and multiple intake and discharge of liquids, due to the configuration of the fluidic system according to the above-described embodiments and by the configuration of the chamber 2 and the flexible portion 6, 7, 9. The pipette can be operated completely manually without any further aids or by means of an operating device.
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(52) As shown in
(53) The liquid reservoir 16 can also be referred to as a reagent reservoir or liquid reagent reservoir, and can contain any type of liquid.
(54) The liquids can be mixed by moving the fluidic system, moving the flexible portion 6, 7, 9, or by inserting mixing elements. The mixing elements, for example balls made of silicone, can be moved by manual movement of the fluidic system. Alternatively, or additionally, the mixing can be carried out by means of elements made of magnetic materials, which are moved from the outside by a device for mixing.
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(56) Furthermore, the volume of the received liquid can be determined by means of passive valves in channel system 3, for example capillary stop valves and channel tapers 41, see
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(60) The seat 17 can also be referred to as reservoir interface.
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(64) A further option for extending the chamber functionality is the insertion of a lateral flow strip 23, as shown in
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(69) In general, the following applies to the fluidic system according to the present invention: all processes described for the use of liquids are equivalent to gases and a combination of liquid and gaseous substances is also possible with this fluidic system, for example the systematic supply of gases to liquids.
(70) A further embodiment form is shown in
(71) A further embodiment is shown in
(72) A further embodiment is shown in
(73) As shown in
(74)
(75) The channel system 3 incorporates a flow limiter 43, which is formed in a meander shape and/or can contain channel tapers, with which the flow velocity of the liquid can be controlled or reduced. A reservoir interface 17 having a liquid reservoir 16 is connected to the channel system 3.
(76) The inlet and the outlet can be closed with a cap 14, which is attached to the chip by a flap 44. Preferably, only one cap 14 is provided, which can be fitted alternately on the inlet or the outlet to selectively enable the chip to receive liquids when the inlet is open, i.e. without the cap 14, and the outlet 5.2 is closed with a cap 14. Thus, a required negative pressure can be built up to take in a liquid via the fluidic interface 5.1 (inlet). After the intake and corresponding analysis in the chip, the liquid should be discharged again. To this end, the cap 14 is placed on the inlet and the inlet is sealed fluid-tight. The liquid can then be discharged via the outlet 5.2. Thus, the cap 14 can be used to switch between two functions of the chip.
(77) In a further configuration, it is possible to attach several caps 14 to the chip, for example to allow the chip to be transported or stored, wherein either the inside of the chip is protected from contamination and/or leakage of liquids present inside is prevented.
(78) The following is a list of examples: 1. A fluidic system comprising a structured component (1) having a chamber (2) and a channel system (3), wherein at least the chamber (2) is closed in a fluid-tight manner by a component (4) and is fluidically connected to the outside via the channel system (3) and a fluidic interface (5), wherein the component (4) has a flexible or movable portion (6) which can be moved at least into a portion of the chamber (2) or beyond a plane of the chamber (2), wherein by a movement of the flexible or movable portion (6) liquids or gases can be taken in or discharged through the fluidic interface (5) or moved in the fluidic system, and wherein the flexible or movable portion (6) is movable by hand or with an operating device, and a pushing or an elevating of the flexible or movable portion (6) is possible. 2. A fluidic system comprising: a structured component (1) having a chamber (2) and a channel system (3), wherein the chamber (2) and the channel system (3) are closed in a fluid-tight manner by a component (4), wherein the chamber (2) is fluidically connected to the outside via the channel system (3) and the fluidic interface (5), and wherein the structured component (1) has a flexible or movable portion (6) forming side walls of said chamber (2). 3. A fluidic system comprising: a structured component (1) having a chamber (2) and a channel system (3), a component (4) which closes the chamber (2) and the channel system (3) in a fluid-tight manner, wherein the chamber (2) is connected to the outside via the channel system (3) and a fluidic interface (5), and wherein the structured component (1) is configured such that a bottom of the chamber (7) is flexibly configured and pressable. 4. A fluidic system according to one of the examples 1 to 3, wherein the chamber (2) is connected via a further channel system (3) to a further fluidic interface (5) and at least one of the fluidic interfaces (5) can be closed with a cap (14). 5. A fluidic system according to one of the examples 1 to 4, further including a venting device for the chamber (2), wherein the venting device is arranged such that venting can take place via an additional channel (25) connected to the outside or a gas-permeable membrane (24). 6. A fluidic system according to one of the examples 1 to 5, further including an inlet channel which has a passive stopping function and is filled either by capillary action or by a change in the chamber volume caused by the flexible or movable components and takes in a defined quantity of liquid. 7. A fluidic system according to one of the examples 1 to 6, further including an additional regent reservoir (16). 8. A fluidic system according to example 7, wherein the additional reagent reservoir (16) is configured as a blister (16), wherein the reagent reservoir (16) comprises: a blister seat (17) having piercing elements (18) adapted to pierce the blister (16) fluid-tightly connected above the piercing elements (18), a flap (19), which is pushable in a defined manner using guide elements (20) in the blister seat (17), whereby a defined volume dosage is possible. 9. A fluidic system according to one of the examples 1 to 8, wherein a channel (3) leading to the chamber (2) has widenings (22). 10. A fluidic system according to one of the examples 1 to 9, which has a cavity (21) for optical readout and/or reaction, and which preferably has different depths. 11. A fluidic system according to one of the examples 1 to 10, including a lateral flow strip (23), the filling of which is made possible by an operation of the chamber, wherein a venting membrane (24) and/or a venting channel (25) is coupled to the lateral flow strip (23). 12. A fluidic system according to one of the examples 1-11, having at least two chambers (2), wherein the at least two chambers 2 are directly connected to one another via a channel system 3. 13. A fluidic system according to one of the examples 1 to 12, including attachments (11, 12, 13) on the flexible or movable component (6), which are either located outside the chamber (2) or extend into the chamber (2). 14. A fluidic system according to one of the examples 1-13, wherein chamber 2 has reagents therein. 15. A fluidic system according to one of the examples 1 to 14, further comprising movable elements introduced into the chamber (2) for mixing. 16. A fluidic system according to one of the examples 1-15, wherein mixing of liquids takes place within the chamber 2 by a manual movement of the fluidic system and/or by a mixing device. 17. A fluidic system according to one of the examples 1 to 16, wherein the channel system (3) has alignment marks, or alignment marks are attached next to, below or above the channel system (3), which enable a volume indication. 18. A fluidic system according to one of the examples 1 to 17, with which a multiple liquid intake or liquids discharge takes place. 19. A fluidic system according to one of the examples 1 to 18, having fluidic interfaces (5) which point in different directions, are arranged on different sides of the fluidic system or leave the fluidic system at a predetermined angle. 20. A fluidic system according to one of the examples 1 to 19, wherein an intake or discharge of liquids is controllable using rotary valves (28). 21. A fluidic system according to one of the examples 1 to 20, wherein the intake or discharge of liquids is controllable using membrane valves (27). 22. A fluidic system according to one of the examples 6 to 21, where the passive stopping function is configured as a capillary stopping valve, a channel tapering or a surface modification. 23. A fluidic system according to one of the examples 7 to 22, wherein the reagent reservoir (16) is configured as a blister. 24. A fluidic system according to one of the examples 8 to 23, wherein the guide elements (20) enable multi-stage volume dosing. 25. A fluidic system according to one of the examples 8 to 24, wherein a fluid-tight closure of the fluidic interface (5) for the liquid intake is configured as a cap (14). 26. A fluidic system according to one of examples 4 to 25, wherein the cap (14) has a flexible portion configured to be pushed in or pulled out after being put on, thereby moving the liquid in the channel system (3). 27. A fluidic system according to one of the examples 5 to 26, wherein the venting device is closable. 28. A fluidic system according to one of the examples 12 to 27, wherein the at least two chambers (2) are arranged in one or more planes. 29. A fluidic system according to one of the examples 15 to 28, wherein the movable elements are configured as balls or rods. 30. A fluidic system according to one of the examples 15 to 29, wherein structural elements are formed in the structured component (1) to enhance mixing. 31. A fluidic system according to one of examples 1 to 30, the fluidic interface (5) further comprising an outlet (10), wherein by means of a geometry of the outlet (10) the volume of a discharged drop of liquid is preset. 32. A fluidic system according to one of the examples 1 to 31, further comprising a cap (14), wherein the cap (14) is placed fluid-tightly on the fluidic interface (5). 33. A fluidic system according to one of the examples 1 to 32, further comprising a plurality of fluidic interfaces (5) which are connected to a distribution system (26), wherein the plurality of fluidic interfaces (5) can be selectively controlled. 34. A fluidic system according to one of the examples 1 to 33, wherein an independent liquid intake into the fluidic system is carried out by means of capillary forces of the channel system (3) at the fluidic interface (5).
(79) TABLE-US-00001 List of reference numerals: 1 structured module/structured component 2 chamber 3 channel system/channel 4 component 5 fluidic interface 5.1 inlet 5.2 outlet 6 flexible or movable portion (on component 4) 7 flexible or movable portion (on structured component 1) 8 second component 9 flexible or movable portion (on second component 8) 10 outlet (of the fluidic interface 5) 11, 12, 13 pushing elements, geometric elements, attachments 14 cap 16 liquid reservoir 17 seat/reservoir Interface 18 piercing elements 19 flap 20 latching lugs 21 detection chamber 22 widening 24 membrane 25 ventilation channels 26 distribution system 27 membrane valve 28 rotary valve 28a rotary valve seat 28b rotary valve body 29 distribution channel 41 capillary stop valves/channel tapers 42 magnifying device 43 flow limiter 44 flap