DROPLET DISPENSER
20210276005 · 2021-09-09
Inventors
Cpc classification
B01L2400/0481
PERFORMING OPERATIONS; TRANSPORTING
B05C5/0225
PERFORMING OPERATIONS; TRANSPORTING
G01F11/02
PHYSICS
B01L3/0265
PERFORMING OPERATIONS; TRANSPORTING
B05C5/0212
PERFORMING OPERATIONS; TRANSPORTING
International classification
B05C5/02
PERFORMING OPERATIONS; TRANSPORTING
G01F11/02
PHYSICS
Abstract
A droplet dispenser comprises a chamber (3) with a fluid inlet valve (2) and a fluid outlet valve (4). The chamber (3) is arranged such that the volume of the chamber may be varied in use to cause fluid to be alternately drawn in to the chamber (3) through the inlet valve (2) then subsequently expelled from the chamber through the outlet valve (4) to dispense a droplet. The droplet dispenser is capable of dispensing from an open reservoir and one may change the dispensed drop volume simply and easily. The droplet dispenser can also handle liquids which are normally seen as difficult to dispense, such as cyanoacrylate adhesives.
Claims
1. A droplet dispenser comprising a chamber with a fluid inlet valve and a fluid outlet valve, the chamber being arranged such that the volume of the chamber may be varied in use to cause fluid to be alternately drawn in to the chamber through the inlet valve then subsequently expelled from the chamber through the outlet valve to dispense a droplet, the dispenser further comprising: a control actuator arranged to apply a driving force to the dispenser to change the volume of the chamber and thereby dispense a droplet; and a controller to control the magnitude or duration of the driving force applied by the control actuator to control the size of the droplet that is dispensed by the dispenser.
2. A dispenser according to claim 1, wherein the chamber is defined by two components connected such that they slide relative to one another in order to vary the volume of the chamber.
3. A dispenser according to claim 2, where the chamber-defining two components each contain one each of the inlet valve and the outlet valve.
4. A dispenser according to claim 1, wherein the chamber is defined by walls which comprise elastomeric material such that the chamber volume may be varied by elastic deformation of the elastomeric material.
5. A dispenser according to claim 1, further comprising a fluid reservoir, the inlet valve connected to the fluid reservoir.
6. A dispenser according to claim 1, further comprising a dispensing tip, the outlet valve connected to the dispensing tip.
7. A dispenser according to claim 1, wherein each of the inlet valve and the outlet valve comprises at least one of: a one-way ball valve assembly and an elastomeric slit valve.
8. A dispenser according to claim 1, arranged to dispense fluids having a viscosity ranging from about 1 Cp to about 700 Cp.
9. A dispenser according to claim 1, wherein the actuator comprises a solenoid, a pneumatic actuator, a piezo electric device, an electric motor or a manually actuated spring driven device.
10. A dispenser according to claim 9, wherein the controller is configured to control a drive voltage of said actuator to vary at least one of the duration or magnitude of the driving force applied to the dispenser.
11. A dispenser according to claim 1, wherein said force has a magnitude of between about 25 g and 100 g and a duration of between about 5 ms and 500 ms.
12. A dispenser according to claim 1, wherein the controller is arranged to vary the magnitude of driving force applied by the control actuator to eject the droplet in a non-contact manner.
13. A dispenser according to claim 2, further comprising a fluid reservoir, the inlet valve connected to the fluid reservoir.
14. A dispenser according to claim 2, further comprising a dispensing tip, the outlet valve connected to the dispensing tip.
15. A dispenser according to claim 2, wherein the actuator comprises a solenoid, a pneumatic actuator, a piezo electric device, an electric motor or a manually actuated spring driven device.
16. A dispenser according to claim 2, wherein each of the inlet valve and the outlet valve comprises at least one of: a one-way ball valve assembly and an elastomeric slit valve.
17. A dispenser according to claim 2, wherein said force has a magnitude of between about 25 g and 100 g and a duration of between about 5 ms and 500 ms.
18. A dispenser according to claim 2, wherein the controller is arranged to vary the magnitude of driving force applied by the control actuator to eject the droplet in a non-contact manner.
19. A dispenser according to claim 5, further comprising a dispensing tip, the outlet valve connected to the dispensing tip.
20. A dispenser according to claim 5, wherein the controller is arranged to vary the magnitude of driving force applied by the control actuator to eject the droplet in a non-contact manner.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0010] Examples of the present invention will now be described with reference to the accompanying drawings, in which:
[0011]
[0012]
[0013]
[0014]
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[0016]
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[0018]
DETAILED DESCRIPTION
[0019] Throughout this specification, specific types of valve are described as preferred for various embodiments. The skilled person will appreciate that other forms of valve structure that provide a unidirectional flow are equally applicable to the invention to control the flow of fluid into and out of the chamber.
[0020] Referring to
[0021] The chamber 3 is formed in such a manner that its volume may be altered. By way of example, the chamber may be formed by a movable piston within a cylinder or deformable walls, its volume being changed by elastic deformation of the chamber walls.
[0022] The dispenser system may be mounted on an external control component that can be powered pneumatically, mechanically, electrically or by some other motive force to cause a change in the chamber volume.
[0023] The operation of the dispenser system of the invention will now be described. As the volume of the chamber 3 is increased, fluid 5 is drawn in through the upper valve 2 into the chamber 3, the lower valve 4 remaining closed. When the volume of the chamber is reduced, the upper valve 2 is forces closed and fluid (being incompressible) is forced out through the dispense valve 4. Initiating a rapid change in volume of the chamber by the application of an impulse of energy causes said impulse to be transmitted through the body of the fluid within the chamber. This impulse continues through the outlet valve 4 and onwards to the dispense tip 5 where the impulse caused a droplet of fluid to be ejected from the dispense tip. Varying the magnitude of the impulse of energy enables the size of ejected droplet to be varied in proportion to the size of the impulse. An example of a typical energy impulse is shown in
[0024] One particular embodiment of the dispenser system of the invention is shown in
[0025]
[0026] Some key features of the dispenser are:
[0027] It can be low cost provided by a module connected to the fluid reservoir 11;
[0028] It employs an external actuator/energy input which simplifies construction;
[0029] It can be configured to be one-time use disposable;
[0030] It is easy to set-up and has no priming steps; and
[0031] It can be controlled via either positive displacement or energy input.
[0032] A further example of the invention uses elastomeric slit valves whose relative motion is of a compliant or possibly rolling diaphragm nature. Unlike ball valves the slit valves comprise a single component with no separate moving parts thus enabling the possibility of dispensing difficult materials such as Cyanoacrylates where a sliding seal system would fail and where there is no currently available solution that provides reliable dispensing.
[0033]
[0034] The compliant tubular structure 10 described above may also be incorporated into either of the valves 2, 4 as shown in
[0035] The system, by way of example, may be configured as shown in
[0036] Dispense volume may be controlled by altering the amount of energy input into the system. For example, a wide range of droplet volumes can be created by varying the drive voltage of an actuating solenoid device (not shown) acting as a dispensing control actuator. Effectively, the droplet volume dispensed may be controlled by altering the amount of energy input into the system either through the magnitude or duration of the force applied to the dispenser.
[0037] The system of the invention is capable of non-contacting droplet dispense and thus may deliver droplets over a full range of orientations (vertical, horizontal, inverted).
[0038]
Hand operated mechanically actuated droplet dispenser for eye drops.
Droplet dispenser for medical adhesive sutures, potentially hand operated mechanically actuated or electronically controlled and actuated.
Hand operated mechanically actuated droplet dispenser for consumer adhesive dispensing.