This invention relates to an apparatus for printing and dispensing fluids. In particular, the invention relates to the piezoelectric device for accurately dispensing small volumes of liquids into a container or onto a surface.
In the fields of chemistry and biological sciences, piezoelectric devices are commonly used to accurately dispense small quantities of liquids into a container or onto a surface. Present applications include dispensing reagents onto protein arrays for protein analysis, chemical printing for peptide mass finger printing, and oligonucleotide array printing. Existing piezoelectric devices can control dispensing with an accuracy of +/−100 picolitres. A typical piezoelectric device comprises a glass tube which defines a narrow through bore or capillary. The glass tube is surrounded by a ceramic collar which expands and contracts under the influence of a changing electric potential applied to the collar which causes a sonic wave in the bore. In use, a vacuum/pressure source is applied to one (non-dispensing) end of the bore. Using the well known “dip and suck” process, the dispensing end of the tube is dipped in a liquid reagent to be dispensed. A vacuum/reduced pressure is applied to suck the liquid reagent into the bore. The pressure/vacuum in the device is adjusted to retain the reagent in the tube and ensure that the meniscus at the dispensing end of the bore is flat. A changing electric potential is then applied to precisely dispense one or more drops of reagent from the dispensing end of the tube, as desired.
There are a number of problems with existing piezoelectric dispensing devices. One problem is the presence of particulate matter in the fluid being dispensed, which may block the bore of the piezoelectric device.
A further problem is that when dispensing some liquids, a slight pressure must be applied to the solution in order to produce a droplet at the orifice of the device.
Further, when dispensing liquids having a high viscosity or high visco-elasticity, the use of pressure and/or vacuum may be required.
An aim of the present invention is to address and alleviate any problems of the prior art discussed above.
Any discussion of documents, acts, materials, devices, articles or the like which has been included in the present specification is solely for the purpose of providing a context for the present invention. It is not to be taken as an admission that any or all of these matters form part of the prior art base or were common general knowledge in the field relevant to the present invention as it existed before the priority date of each claim of this application.
Throughout this specification the word “comprise”, or variations such as “comprises” or “comprising”, will be understood to imply the inclusion of a stated element, integer or step, or group of elements, integers or steps, but not the exclusion of any other element, integer or step, or group of elements, integers or steps.
In a first broad aspect, the present invention provides a piezoelectric dispensing apparatus including:
a removable reservoir for containing liquid for dispensing from the apparatus;
a piezoelectric dispensing tube defining a bore in fluid communication with the reservoir; and
means for applying a vacuum and/or pressure to the contents of the reservoir when the reservoir is located in the apparatus.
One advantage of the present invention is that reagent can simply be loaded into the apparatus in the reservoir eliminating the existing and time consuming and occasionally messy “dip and sip” technique.
Typically the top of the reservoir will be open to allow liquids to be poured into the reservoir. Most preferably the top of the reservoir will be outwardly flared. The means for applying a vacuum and/or pressure to the contents of the reservoir when the reservoir is located in the apparatus will include a plunger which is shaped and configured to abut with and seal the top of the reservoir. The plunger preferably defines a through bore to permit the application vacuum and or pressure to the reagent vessel through the bore.
In a second broad aspect, the present invention provides a reagent vessel for use with a piezoelectric device which provides filtering within the vessel.
In particular, there is provided a reservoir assembly for containing liquid for dispensing from a piezoelectric dispensing apparatus characterised by the assembly including a primary and a secondary filter means.
The primary filter takes out most of the particles in solution. The secondary filter preferably has a pore size smaller than the primary filter and removes any particulate matter not removed by the primary filter and particulate material below the primary filter. Where the reservoir is removable from the vessel and also from the piezoelectric dispensing tube the secondary filter may be located between the reservoir and the non-dispensing end of the piezoelectric dispensing tube to prevent particulate matter collected on the underside of the reservoir from entering the tube.
In a further aspect of the present invention there is provided a piezoelectric dispensing apparatus including:
a reservoir for containing liquid for dispensing from the apparatus defining an outlet;
a piezoelectric dispensing tube defining a bore; 4
means for removable attaching the piezoelectric dispensing tube in fluid communication with the reservoir; characterised by
closure means such as a valve or septum disposed at the base of the reservoir which closes the outlet of the reservoir until the reservoir is attached to a removable secondary filter attached to a piezoelectric dispensing tube.
Preferably the base of the reservoir defines an annular foot portion on which the reservoir may be rested with the valve spaced from the surface on which the foot rests.
A specific embodiment of the invention will now be described by way of example only, and with reference to the accompanying drawings in which:
a is a schematic front view of a dispensing apparatus embodying the present invention;
b is a schematic side view of the dispensing apparatus of
a is a schematic side view of a reagent vessel for use in the dispensing apparatus of
b is a schematic front end view of a reagent vessel for use in the dispensing apparatus of
c illustrates a secondary filter assembly;
Referring to the drawings,
A reagent vessel 20 is shown in more detail in
The reservoir 20a is generally rotationally symmetrical having a flared upper end 28 so that it resembles an upturned bell. The upper end 20b of the reservoir is open so that liquids may be poured directly into the reservoir.
The lower end 30 of the reservoir is closed by the valve 24. The valve comprises a rubber cup which depends from a flanged rim 24a. An elongate slit 24b which is normally closed as shown in
The foot portion 26 located below the reservoir, has an annular cross section, the base of which defines a circular base or foot 32. The foot portion also defines a internal flange 34 which supports the flanged rim 24a of the valve 24. The filter 22 is located above the valve 24 to capture particulates from solutions contained in the reservoir and prevent them from passing into a piezoelectric dispensing device, which in use, is located below the reservoir.
The foot portion 32 serves two functions. It allows the reagent vessel to be placed on a laboratory bench and prevents the valve 24 from touching the bench surface and opening. It also acts a sealing surface between the reagent vessel and a secondary filter holder shown in
Two rupture lines (of which one 40 is shown in
Also shown in
The secondary filter holder 50 is shown in
A generally cylindrical outwardly flared aperture 56 is defined in the top surface of the secondary filter assembly. This aperture 56 is sufficiently shallow, and the size and shape of the aperture are such that when the secondary filter assembly is attached to the reagent vessel 20, the base of the valve 24 in the reagent vessel will push against the hole and open.
The lower part of the secondary filter assembly defines a bore in fluid communication with the aperture 56. The bore has a first diameter and a second relatively narrower diameter 58 which is threaded. A piezoelectric dispensing tube may be threaded into the narrow diameter bore 58. A standard piezoelectric dispensing tube 70 comprising a glass tube which defines a narrow through bore or capillary surrounded by a ceramic PZT material collar 72 which expands and contracts under the influence of a changing electric potential applied to the collar is used. The tube 70 secondary filter holder 50 and reagent vessel 20 are assembled together as shown in
With reference to
The plunger is then lowered and the head of the plunger locates in the flared portion of the reservoir. An O ring extending around the plunger head, provides a seal and locks the reagent vessel into the dispensing apparatus.
As illustrated in
As shown in
On completion of dispensing, the reagent vessel may be released from the apparatus by means of a small downward motion of the plunger initiated by the pressing of a release button. The additional pressure on the flared portion causes the breaking of the rupture lines 40 preventing re-use of the reagent vessel. The plunger then rises as shown in
Alternatively, the plunger may simply rise, leaving the vessel intact.
The operation of the plunger is illustrated in more detail in
The plunger is also held in its rest position by a spring. When the plunger is depressed, a drive pin attached to it travels downwards and engaging a lobe of the cam causes it to turn. As the plunger is further depressed, the cam turns sufficiently to allow the detent to engage the next index position. At this point, the cam ceases to be driven by the plunger, rather it is the force applied by the detent mechanism that causes it to continue turning. This rotation means that the next lobe of the cam to bear on the drive pin and depress the plunger further. This action is sufficient to complete the loading of the reaction vessel and is arranged so that with the vessel in place, some force is still exerted by the detent on the cam. This ensure that the cam is able to apply sufficient pressure to the plunger to maintain a seal with the reagent vessel. This condition is maintained until the release mechanism is actuated. The release lever acts on the pivoting arm depressing it causing the cam and arm assembly to slide aside releasing the drive pin and allowing the plunger to return to its rest position. The pivoting of the arm is arranged so that on route to release the plunger, is forced further downwards providing the extra travel required to rupture the vessel.
The secondary filter holder 150, is similar to the filter holder 50 of the first embodiment. It comprises two threaded metal parts 150a, 150b that are screwed together with a secondary filter 152 clamped between the two sections. The secondary filter captures any particulates located below the primary filter 22. Part 150a to which the piezoelectric tube is attached is identical to part 50a. Part 150b defines two differences from part 50b. There is no external O-ring 54 and the secondary filter holder 150b defines an upwardly protruding hollow needle 151, of a length which pierces the septum 121 when the secondary filter assembly is screwed to the base of the reservoir, but does not reach or pierce the filter 122. This obviates the need to have a valve at the base of the reservoir and reduces manufacturing costs. The hollow needle is in fluid communication with a chamber 156.
The lower part 150a of the secondary filter assembly 150 defines a bore 158 in fluid communication with the chamber 156 via the secondary filter 152. The bore 158 has a first diameter and a second relatively narrower diameter 158 which is threaded. A piezoelectric dispensing tube may be threaded into the narrow diameter bore 58. A standard piezoelectric dispensing tube 70 as shown in
With reference to
There may be an array of greater or fewer than four piezoelectric dispensing devices in the apparatus. The use of micro-arrayed solid state piezoelectric ceramic may permit closely arrayed multiple channels and up to possibly one hundred solution streams.
It will be appreciated by persons skilled in the art that numerous variations and/or modifications may be made to the invention as shown in the specific embodiments without departing from the spirit or scope of the invention as broadly described. The present embodiments are, therefore, to be considered in all respects as illustrative and not restrictive.
| Number | Date | Country | Kind |
|---|---|---|---|
| 2003901513 | Mar 2003 | AU | national |
| Filing Document | Filing Date | Country | Kind | 371c Date |
|---|---|---|---|---|
| PCT/AU04/00393 | 3/29/2004 | WO | 7/17/2006 |