WO2003037780A1 - Adjustable nozzle assembly - Google Patents

Adjustable nozzle assembly Download PDF

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Publication number
WO2003037780A1
WO2003037780A1 PCT/NZ2002/000201 NZ0200201W WO03037780A1 WO 2003037780 A1 WO2003037780 A1 WO 2003037780A1 NZ 0200201 W NZ0200201 W NZ 0200201W WO 03037780 A1 WO03037780 A1 WO 03037780A1
Authority
WO
WIPO (PCT)
Prior art keywords
fluid
nozzle
adjustable
pouring apparatus
valve
Prior art date
Application number
PCT/NZ2002/000201
Other languages
French (fr)
Inventor
Neil Barry Ward
Original Assignee
Forlong & Maisey Limited T/A Instrument Supplies
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by Forlong & Maisey Limited T/A Instrument Supplies filed Critical Forlong & Maisey Limited T/A Instrument Supplies
Priority to NZ533140A priority Critical patent/NZ533140A/en
Publication of WO2003037780A1 publication Critical patent/WO2003037780A1/en

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Classifications

    • GPHYSICS
    • G01MEASURING; TESTING
    • G01FMEASURING VOLUME, VOLUME FLOW, MASS FLOW OR LIQUID LEVEL; METERING BY VOLUME
    • G01F11/00Apparatus requiring external operation adapted at each repeated and identical operation to measure and separate a predetermined volume of fluid or fluent solid material from a supply or container, without regard to weight, and to deliver it
    • G01F11/10Apparatus requiring external operation adapted at each repeated and identical operation to measure and separate a predetermined volume of fluid or fluent solid material from a supply or container, without regard to weight, and to deliver it with measuring chambers moved during operation
    • G01F11/26Apparatus requiring external operation adapted at each repeated and identical operation to measure and separate a predetermined volume of fluid or fluent solid material from a supply or container, without regard to weight, and to deliver it with measuring chambers moved during operation wherein the measuring chamber is filled and emptied by tilting or inverting the supply vessel, e.g. bottle-emptying apparatus
    • G01F11/262Apparatus requiring external operation adapted at each repeated and identical operation to measure and separate a predetermined volume of fluid or fluent solid material from a supply or container, without regard to weight, and to deliver it with measuring chambers moved during operation wherein the measuring chamber is filled and emptied by tilting or inverting the supply vessel, e.g. bottle-emptying apparatus for liquid or semi-liquid
    • G01F11/263Apparatus requiring external operation adapted at each repeated and identical operation to measure and separate a predetermined volume of fluid or fluent solid material from a supply or container, without regard to weight, and to deliver it with measuring chambers moved during operation wherein the measuring chamber is filled and emptied by tilting or inverting the supply vessel, e.g. bottle-emptying apparatus for liquid or semi-liquid with valves
    • G01F11/265Apparatus requiring external operation adapted at each repeated and identical operation to measure and separate a predetermined volume of fluid or fluent solid material from a supply or container, without regard to weight, and to deliver it with measuring chambers moved during operation wherein the measuring chamber is filled and emptied by tilting or inverting the supply vessel, e.g. bottle-emptying apparatus for liquid or semi-liquid with valves of the ball type

Definitions

  • This invention relates to an adjustable nozzle assembly.
  • the present invention relates to an adjustable nozzle assembly for pouring a desired volume of fluid.
  • the under-dosing of an animal can lead to the application being ineffective and could even result in the pathogens that were intended to be eradicated building up a resistance to the chemicals being used which would lead to further problems in the eradication of these pathogens in the future.
  • the most basic form of measuring the amount of fluid required for the application to an animal is the pouring of the fluid into a measuring jug from the container and then applying the contents of the measuring jug to the animal.
  • Another drawback associated with this system is the time it takes as quite often some of the contents of the measuring jug will need to be poured back into the container or additional material will need to be poured from the container into the jug once the level of the jug has been ascertained.
  • These systems generally are constructed of a fluid reservoir connected to a hand piece which may or may not have a wand attached to the outlet of the hand-piece and the fluid from the fluid container fills a chamber in the hand-piece and when the hand-piece is inverted this amount of fluid is passed from the hand-piece onto the animal.
  • an adjustable pouring apparatus for a fluid including
  • the fluid inlet is configured to be adjustable so as to regulate the amount of fluid flowing through the nozzle from the fluid inlet to the fluid outlet before the valve closes, and after the nozzle has been placed into its pouring position.
  • fluid inlet should be understood to mean the aperture through which fluid from the reservoir to which the apparatus is connected flows in order to be able to enter the valve.
  • fluid outlet should be understood to mean the point at which the fluid leaves the valve assembly.
  • valve assembly should be understood to mean an automatically closing valve that operates a period of time after the nozzle has been placed into its pouring position - the time taken is dependent on the viscosity of the fluid being dispensed - and that will automatically return to its fully open position once the nozzle has been returned to a generally upright position.
  • the nozzle assembly described within the present specification should be understood to contain a connector for joining the nozzle assembly to a source of fluid so that the fluid can be dispensed through the nozzle assembly.
  • a pouring position used within the present specification should be understood to mean that the fluid outlet is inclined below the fluid inlet so that fluid flow will occur from the present invention and that at least one valve assembly will move to its fully closed position.
  • the required dose will be in the range of 1 millilitre to 200 millilitres.
  • an adjustable pouring apparatus for fluid including
  • valve assembly that contains a fluid chamber
  • the fluid chamber of the valve is configured to be adjustable so as to regulate the amount of fluid flowing through the nozzle from the fluid inlet to the fluid outlet before the valve closes and after the nozzle has been placed into its pouring position.
  • valve assembly is constructed in a manner that allows the volume of the fluid chamber to be adjusted so as to alter the time taken for the valve to move from the open position to the closed position.
  • valve assembly is constructed of a fluid chamber containing a ball that moves along the fluid chamber for a preset distance until it blocks the flow of fluid from the fluid inlet to the fluid outlet.
  • the time taken to close the valve once the nozzle is in its pouring position is governed by the viscosity of the fluid being dispensed in order to ensure that the same volume is dispensed irrespective of the viscosity.
  • the fluid chamber contains a balance hole with the ball positioned between the balance hole and the fluid outlet, this configuration controls the speed at which the ball moves to the valve's closed position as fluid entering the balance hole allows the ball to move forward along the fluid chamber.
  • the balance hole also controls the rate at which the valve returns to its fully open position by allowing the fluid that has collected behind the ball to exit from the fluid chamber back into the fluid supply container.
  • a second ball valve is fitted in fluid connection to the balance hole and is configured in such a manner that the second ball valve is closed during the pouring cycle and is open during the reset cycle in order to allow for a faster reset time than would otherwise be achievable.
  • the main fluid chamber is constructed with a "shoulder" in order to delay the movement of the ball when the nozzle assembly is placed into the pouring position, so that the second ball valve has adequate time to close the second balance hole before the first ball commences moving towards the fluid outlet.
  • the amount of fluid flowing through the nozzle is regulated by rotating the outer casing of the nozzle with respect to the main valve assembly.
  • This rotary action will adjust the size of the fluid inlet and thereby control the fluid flow rate into the fluid chamber of the valve assembly.
  • the fluid inlet size will be adjusted to one of a set of predetermined flow rates by rotating the outer casing until it locks into one of a set of stepped increments wherein each increment is commensurate with a different flow rate.
  • the shape of at least one side of the fluid inlet can be any desired shape from a smooth curve to a set of (staircase) steps.
  • the outer casing is secured to the main body of the apparatus by the use of one or more O-rings in order to form a fluid-tight seal between the outer casing and the main body of the apparatus.
  • a nozzle assembly containing an outer casing and at least one set of indicia
  • an adjustable pouring apparatus for a fluid including
  • a nozzle assembly containing an outer casing and at least one set of indicia
  • the nozzle assembly will have at least one set of numerals or indicia located in a position such that the amount of fluid able to be dispensed at that point is clearly shown.
  • the connector assembly between the present invention and the fluid container will be a threaded section of the present invention that will be located securely in a leak proof connection with the fluid container.
  • the adjustable pouring apparatus assembly will contain at least one flexible exterior rib in order that a section of the present invention can be pushed into the neck of the fluid container in order to make a leak proof connection.
  • the most significant advantage is that the operator will be able to repetitively administer the correct dose, no matter how many animals have to be treated.
  • a further advantage is that no adjustments are necessary when a different viscosity fluid is dispensed as the valve design ensures the dose administered remains the same volume.
  • Figure la is a diagrammatical representation of the main body of one preferred embodiment of the present invention.
  • Figure lb is a cross sectional diagram of the outer casing of one preferred embodiment of the present invention.
  • Figure lc is a combination of figures la and lb showing their interrelationship
  • Figure 2 is a diagrammatical representation of a plan view of the main assembly of one preferred embodiment of the present invention with the valve ball omitted for clarity;
  • Figure 3a is a cross sectional representation of one preferred embodiment of the present invention incorporating two balls within the valve, in the open position;
  • Figure 3b is a cross sectional representation of one preferred embodiment of the present invention incorporating two balls within the valve in the closed position.
  • the adjustable nozzle assembly consists of a main assembly (2) that fits in a fluid- tight connection inside an outer sleeve (3).
  • the main assembly (2) is fitted with a number of o-ring seals (4) in order to provide a fluid-tight seal against the outer sleeve (3).
  • Figure 2 shows a plan view of the main assembly (2) of the present invention and clearly shows a number of voids (5) that allow fluid from a reservoir to which the nozzle is attached to flow into the space between the main assembly (2) and the outer sleeve (3).
  • the outer sleeve (3) contains a central section (10) that contains a contoured face (11) (as described in the disclosure section of this document) in order that when the outer sleeve (3) is rotated with respect to the main assembly (2) the curved section (11) will alter the amount of the fluid inlet (7) that is exposed to the space between the main assembly (2) and the outer sleeve (3).
  • the outer casing (3) is rotated with respect to the main assembly (2) until the desired flow rate is shown on the indicia (not shown).
  • the adjustable nozzle assembly (1) is then placed into its pouring position in order that fluid from a reservoir can enter the assembly (1) via the voids (5) and flow through the fluid inlet (7) into the fluid chamber (8) and then out of the assembly (1) through the fluid outlet (9).
  • the main assembly (2) has a shoulder (13) fitted to the fluid chamber (8) in order to momentarily stall the valve (12) to give the reset valve (14) time to reach its closed position. This action will ensure the correct timing of the valve.
  • the primary balance hole (15) equalises the pressure behind the valve (12) with that in the fluid chamber (8) so that the valve (12) is then able to descend through the fluid chamber (8) until it reaches its closed position.
  • the adjustable nozzle assembly (1) can be replaced into its non-pouring position i.e. fluid outlet (9) is vertically higher than the fluid inlet (7).
  • the reset valve (14) will move away from the second balance hole (6) so that fluid contained within the fluid chamber (8) behind the valve (12) will be able to exit the fluid chamber (8) and flow back to the reservoir through a second balance hole (6) as well as through the primary balance hole (15) in order to accelerate the resetting of the valve (12) into its open position.

Landscapes

  • Physics & Mathematics (AREA)
  • Fluid Mechanics (AREA)
  • General Physics & Mathematics (AREA)
  • Closures For Containers (AREA)
  • Apparatus For Making Beverages (AREA)
  • Nozzles (AREA)

Abstract

An adjustable pouring apparatus for a fluid, including a fluid inlet, and a fluid outlet, and at least one valve assembly, and nozzle assembly, characterised in that the fluid inlet is configured to be adjustable so as to regulate the amount of fluid flowing through the nozzle from the fluid inlet to the fluid outlet before the valve closes, and after the nozzle has been placed into its pouring position.

Description

ADJUSTABLE NOZZLE ASSEMBLY
TECHNICAL FIELD
This invention relates to an adjustable nozzle assembly.
In particular, the present invention relates to an adjustable nozzle assembly for pouring a desired volume of fluid.
Reference throughout the present specification shall now be made to use of the present invention in relation to the application of pour-on medicaments and drenches for animals.
It should be appreciated however that this should not be seen to be a limitation on the present invention in any way as the present invention may be used for the metering of a controlled amount of any fluid.
BACKGROUND ART
The need for controlling the dose of a medicament or drench for the application to an animal is paramount as the under-dosing or overdosing of the animal can lead to equally disastrous results.
With a lot of the medicaments and drenches that are available for animals overdosing the animal could have detrimental effects on the health of the animal and in some cases could lead to permanent damage or even death.
Likewise, the under-dosing of an animal can lead to the application being ineffective and could even result in the pathogens that were intended to be eradicated building up a resistance to the chemicals being used which would lead to further problems in the eradication of these pathogens in the future. The most basic form of measuring the amount of fluid required for the application to an animal is the pouring of the fluid into a measuring jug from the container and then applying the contents of the measuring jug to the animal.
Whilst on the surface this seems a simple and straightforward procedure it is fraught with problems.
One of the major problems associated with this type of measurement is that the dosing is not particularly accμrate or consistent between animals and there is a high likelihood of spillage of the chemicals either onto the operator or onto the ground, neither of which is desirable.
Another drawback associated with this system is the time it takes as quite often some of the contents of the measuring jug will need to be poured back into the container or additional material will need to be poured from the container into the jug once the level of the jug has been ascertained.
When the operator of this system has a large number of animals that need to be administered to the time taken per dose is very important as it can have a large accumulative effect.
One distinct improvement oVer this system was the advent of a measuring assembly that fitted to the fluid container so that the correct volume of fluid could be measured directly at the container and could then be poured directly onto the animal.
There have been numerous modifications and improvements over the first of these types of systems, resulting in the now common "pour-on drench system".
These systems generally are constructed of a fluid reservoir connected to a hand piece which may or may not have a wand attached to the outlet of the hand-piece and the fluid from the fluid container fills a chamber in the hand-piece and when the hand-piece is inverted this amount of fluid is passed from the hand-piece onto the animal.
Whilst these systems are ideal for a number of applications they do however have severe drawbacks.
The most serious of these drawbacks is that different amounts of fluid are required for animals of different sizes and these pour-on dispensers can only provide a preset volume of fluid with each application.
This again leads to the problems of under or overdosing animals and to an inconsistency of dosing to animals of different sizes.
In order to overcome these problems the operator will need to carry a number of pour-on applicators of different volumes in order to be able to apply the correct controlled doses to each animal.
This is not only costly as these devices can be quite expensive to purchase, but it also means that the operator is less able to be manoeuvrable as he will need a great deal more equipment in order to undertake the task.
Currently the only option open to the operator would to be to purchase an expensive drench gun system such as that disclosed in NZ Patent No. 222692 which has the ability to adjust the dosage applied to the animal.
The main drawback of this type of drench gun is its cost as this puts it outside the range of the small to medium sized operator as they generally would not be able to afford this type of apparatus as the number of animals that they wish to dose does not warrant the extra expenditure.
It is an object of the present invention to address the foregoing problems or at least to provide the public with a useful choice. Further aspects and advantages of the present invention will become apparent from the ensuing description, which is given by way of example only.
DISCLOSURE OF INVENTION,
According to one aspect of the present invention there is provided an adjustable pouring apparatus for a fluid, including
a fluid inlet, and
a fluid outlet, and
at least one valve assembly, and
a nozzle assembly
characterised in that
the fluid inlet is configured to be adjustable so as to regulate the amount of fluid flowing through the nozzle from the fluid inlet to the fluid outlet before the valve closes, and after the nozzle has been placed into its pouring position.
It should be appreciated that throughout the present specification the term "fluid inlet" should be understood to mean the aperture through which fluid from the reservoir to which the apparatus is connected flows in order to be able to enter the valve.
It should also be appreciated that throughout the present specification the term "fluid outlet" should be understood to mean the point at which the fluid leaves the valve assembly.
Throughout the present specification the term "valve assembly" should be understood to mean an automatically closing valve that operates a period of time after the nozzle has been placed into its pouring position - the time taken is dependent on the viscosity of the fluid being dispensed - and that will automatically return to its fully open position once the nozzle has been returned to a generally upright position.
The nozzle assembly described within the present specification should be understood to contain a connector for joining the nozzle assembly to a source of fluid so that the fluid can be dispensed through the nozzle assembly.
The term "a pouring position" used within the present specification should be understood to mean that the fluid outlet is inclined below the fluid inlet so that fluid flow will occur from the present invention and that at least one valve assembly will move to its fully closed position.
It is envisaged that within the majority of applications required of the present invention the required dose will be in the range of 1 millilitre to 200 millilitres.
This should not however be taken to be a limitation on the present invention in any way as in other embodiments the required dose can be outside of this range.
According to another aspect of the present invention there is provided an adjustable pouring apparatus for fluid, including
a fluid inlet, and
a fluid outlet, and
a valve assembly that contains a fluid chamber, and
a nozzle assembly
characterised in that
the fluid chamber of the valve is configured to be adjustable so as to regulate the amount of fluid flowing through the nozzle from the fluid inlet to the fluid outlet before the valve closes and after the nozzle has been placed into its pouring position.
In some preferred embodiments of this aspect of the present invention the valve assembly is constructed in a manner that allows the volume of the fluid chamber to be adjusted so as to alter the time taken for the valve to move from the open position to the closed position.
In preferred embodiments of the present invention the valve assembly is constructed of a fluid chamber containing a ball that moves along the fluid chamber for a preset distance until it blocks the flow of fluid from the fluid inlet to the fluid outlet.
It should be appreciated that in preferred embodiments of the present invention the time taken to close the valve once the nozzle is in its pouring position is governed by the viscosity of the fluid being dispensed in order to ensure that the same volume is dispensed irrespective of the viscosity.
The fluid chamber contains a balance hole with the ball positioned between the balance hole and the fluid outlet, this configuration controls the speed at which the ball moves to the valve's closed position as fluid entering the balance hole allows the ball to move forward along the fluid chamber.
The balance hole also controls the rate at which the valve returns to its fully open position by allowing the fluid that has collected behind the ball to exit from the fluid chamber back into the fluid supply container.
In some preferred embodiments of the present invention a second ball valve is fitted in fluid connection to the balance hole and is configured in such a manner that the second ball valve is closed during the pouring cycle and is open during the reset cycle in order to allow for a faster reset time than would otherwise be achievable. In preferred embodiments of the present invention the main fluid chamber is constructed with a "shoulder" in order to delay the movement of the ball when the nozzle assembly is placed into the pouring position, so that the second ball valve has adequate time to close the second balance hole before the first ball commences moving towards the fluid outlet.
In preferred embodiments of the present invention the amount of fluid flowing through the nozzle is regulated by rotating the outer casing of the nozzle with respect to the main valve assembly.
This rotary action will adjust the size of the fluid inlet and thereby control the fluid flow rate into the fluid chamber of the valve assembly.
It is envisaged that in some preferred embodiments of the present invention the fluid inlet size will be adjusted to one of a set of predetermined flow rates by rotating the outer casing until it locks into one of a set of stepped increments wherein each increment is commensurate with a different flow rate.
This should not be seen to be a limitation on the present invention in any way as the shape of at least one side of the fluid inlet can be any desired shape from a smooth curve to a set of (staircase) steps.
In preferred embodiments of the present invention the outer casing is secured to the main body of the apparatus by the use of one or more O-rings in order to form a fluid-tight seal between the outer casing and the main body of the apparatus.
However, this should not be seen to be a limitation on the present invention in any way as in other embodiments other leak-proof designs such as ridges or other embossments onto the surface of either the outer casing or the main valve apparatus may be used. According to a further aspect of the present invention there is provided a method of operating an adjustable pouring apparatus for a fluid, including
a fluid inlet, and
a fluid outlet, and
at least one valve assembly, and
a nozzle assembly containing an outer casing and at least one set of indicia,
characterised by the steps of
a) adjusting the size of the fluid inlet so as to regulate the amount of fluid flowing through the nozzle from the fluid inlet to the fluid outlet before the valve closes and after the nozzle has been placed into its pouring position, and
b) placing the nozzle into its pouring position until the fluid ceases to flow out of the nozzle, and
c) resetting the valve into its open position by replacing the nozzle into its non- pouring position.
According to a further aspect of the present invention there is provided a method of operating an adjustable pouring apparatus for a fluid, including
a fluid inlet, and
a fluid outlet, and
at least one valve assembly, and
a nozzle assembly containing an outer casing and at least one set of indicia,
characterised by the step of rotating the outer casing of the nozzle with respect to the main valve assembly in order to adjust the aperture size of the fluid inlet until the desired volume to be dispensed is shown on the indicia.
It is envisaged that the nozzle assembly will have at least one set of numerals or indicia located in a position such that the amount of fluid able to be dispensed at that point is clearly shown.
It is envisaged that in some preferred embodiments of the present invention the connector assembly between the present invention and the fluid container will be a threaded section of the present invention that will be located securely in a leak proof connection with the fluid container.
It is also envisaged that in some embodiments of the present invention the adjustable pouring apparatus assembly will contain at least one flexible exterior rib in order that a section of the present invention can be pushed into the neck of the fluid container in order to make a leak proof connection.
It is clear from the foregoing description that the present invention has significant advantages over the current "pour-on" systems.
The most significant advantage is that the operator will be able to repetitively administer the correct dose, no matter how many animals have to be treated.
A further advantage is that no adjustments are necessary when a different viscosity fluid is dispensed as the valve design ensures the dose administered remains the same volume.
Yet another advantage is that the nozzle assembly is easy to operate correctly and is very cost effective as there are no complicated or delicate parts. BRIEF DESCRIPTION OF DRAWINGS
Further aspects of the present invention will become apparent from the following description which is given by way of example only and with reference to the accompanying drawings in which:
Figure la is a diagrammatical representation of the main body of one preferred embodiment of the present invention; and
Figure lb is a cross sectional diagram of the outer casing of one preferred embodiment of the present invention; and
Figure lc is a combination of figures la and lb showing their interrelationship; and
Figure 2 is a diagrammatical representation of a plan view of the main assembly of one preferred embodiment of the present invention with the valve ball omitted for clarity; and
Figure 3a is a cross sectional representation of one preferred embodiment of the present invention incorporating two balls within the valve, in the open position; and
Figure 3b is a cross sectional representation of one preferred embodiment of the present invention incorporating two balls within the valve in the closed position.
BEST MODES FOR CARRYING OUT THE INVENTION
With reference to the Figures there is illustrated an adjustable nozzle assembly generally indicated by arrow 1.
The adjustable nozzle assembly consists of a main assembly (2) that fits in a fluid- tight connection inside an outer sleeve (3).
The main assembly (2) is fitted with a number of o-ring seals (4) in order to provide a fluid-tight seal against the outer sleeve (3).
Figure 2 shows a plan view of the main assembly (2) of the present invention and clearly shows a number of voids (5) that allow fluid from a reservoir to which the nozzle is attached to flow into the space between the main assembly (2) and the outer sleeve (3).
When the outer sleeve (3) is rotated with respect to the main assembly (2) it will eventually reach a point where a part of the fluid inlet (7) will be exposed to the area between the outer sleeve (3) and the main assembly (2) so that fluid from this area can flow through the fluid inlet (7) into the fluid chamber (8) and then out of the nozzle assembly (1) through the fluid outlet (9).
The outer sleeve (3) contains a central section (10) that contains a contoured face (11) (as described in the disclosure section of this document) in order that when the outer sleeve (3) is rotated with respect to the main assembly (2) the curved section (11) will alter the amount of the fluid inlet (7) that is exposed to the space between the main assembly (2) and the outer sleeve (3).
It is envisaged that a set of indicia markings will be apparent on the outer surface of the adjustable nozzle assembly (1) in order that the operator can see how much fluid will be allowed to flow through the fluid inlet (7) before the valve (12) reaches its closed position.
When the adjustable nozzle assembly (1) is desired to be used, the outer casing (3) is rotated with respect to the main assembly (2) until the desired flow rate is shown on the indicia (not shown). The adjustable nozzle assembly (1) is then placed into its pouring position in order that fluid from a reservoir can enter the assembly (1) via the voids (5) and flow through the fluid inlet (7) into the fluid chamber (8) and then out of the assembly (1) through the fluid outlet (9).
The main assembly (2) has a shoulder (13) fitted to the fluid chamber (8) in order to momentarily stall the valve (12) to give the reset valve (14) time to reach its closed position. This action will ensure the correct timing of the valve.
Once the adjustable nozzle assembly (1) is placed in its pouring position the primary balance hole (15) equalises the pressure behind the valve (12) with that in the fluid chamber (8) so that the valve (12) is then able to descend through the fluid chamber (8) until it reaches its closed position.
Once the required dose of fluid from the adjustable nozzle assembly (1) has been administered and no more fluid exists from the fluid outlet (9) the adjustable nozzle assembly (1) can be replaced into its non-pouring position i.e. fluid outlet (9) is vertically higher than the fluid inlet (7).
Once the assembly (1) is placed into its non-pouring position the reset valve (14) will move away from the second balance hole (6) so that fluid contained within the fluid chamber (8) behind the valve (12) will be able to exit the fluid chamber (8) and flow back to the reservoir through a second balance hole (6) as well as through the primary balance hole (15) in order to accelerate the resetting of the valve (12) into its open position.
Aspects of the present invention have been described by way of example only and it should be appreciated that modifications and additions may be made thereto without departing from the scope thereof as defined by the appended claims.

Claims

WHAT WE CLAIM IS:
1. An adjustable pouring apparatus for a fluid, including
a fluid inlet, and
a fluid outlet, and
at least one valve assembly, and
a nozzle assembly,
characterised in that
the fluid inlet is configured to be adjustable so as to regulate the amount of fluid flowing through the nozzle from the fluid inlet to the fluid outlet before the valve closes, and after the nozzle has been placed into its pouring position.
2. An adjustable pouring apparatus as claimed in claim 1 wherein the amount of fluid poured will be in the range of 1ml to 200ml.
3. An adjustable pouring apparatus for a fluid, including
a fluid inlet, and
a fluid outlet, and
a valve assembly that contains a fluid chamber, and
a nozzle assembly
characterised in that
the fluid chamber of the valve is configured to be adjustable so as to regulate the amount of fluid flowing through the nozzle from the fluid inlet to the fluid outlet before the valve closes and after the nozzle has been placed into its pouring position.
4. An adjustable pouring apparatus as claimed in claim 3 wherein the valve assembly is constructed in a manner that allows the volume of the fluid chamber to be adjusted so as to alter the time taken for the valve to move from the open position to the closed position.
5. An adjustable pouring apparatus as claimed in any previous claim wherein the valve assembly is constructed of a fluid chamber containing a ball that moves along the fluid chamber for a preset distance until it blocks the flow of fluid from the fluid inlet to the fluid outlet.
6. An adjustable pouring apparatus as claimed in any previous claim wherein the time taken to close the valve once the nozzle is in its pouring position is governed by the viscosity of the fluid being dispensed in order to ensure that the same volume is dispensed irrespective of the viscosity.
7. An adjustable pouring apparatus as claimed in claims 3 to claim 6 wherein the fluid chamber contains a balance hole with the ball positioned between the balance hole and the fluid outlet.
8. An adjustable pouring apparatus as claimed in claims 3 to claim 7 wherein a second ball valve is fitted in fluid connection to the balance hole and the second ball valve is closed during the pouring cycle and is open during the reset cycle.
9. An adjustable pouring apparatus as claimed in any of claims 3 to claim 8 wherein the main fluid chamber is constructed with a shoulder.
10. An adjustable pouring apparatus as claimed in any previous claim wherein the size of the fluid inlet is regulated by rotating the outer casing of the nozzle with respect to the main valve assembly.
11. An adjustable pouring apparatus as claimed in claim 10 wherein the size of the fluid inlet is adjusted to one of a set of predetermined flowrates by rotating the outer casing into it locks into one of a set of stepped increments wherein each increment is commensurate with a different flow rate.
12. An adjustable pouring apparatus as claimed in either claim 10 or 11 wherein the outer casing is secured to the main body of the apparatus by the use of one or more o-rings.
13. An adjustable pouring apparatus as claimed in either claim 10 or 11 wherein the outer casing is secured to the main body of the apparatus by the use of ridges or other embossments on the surface of either the outer casing or the main valve assembly.
14. A method of operating an adjustable pouring apparatus as claimed in any previous claim wherein the nozzle assembly has at least one set of numerals or indicia located in a position such that the amount of fluid able to be dispensed at that point is clearfy shown.
15. An adjustable pouring apparatus as claimed in any previous claim wherein the pouring apparatus contains a connector assembly for joining the adjustable pouring apparatus to a fluid container in a secure and leak-proof connection.
16. An adjustable pouring apparatus as claimed in claim 15 wherein the pouring apparatus contains a threaded connector assembly.
17. An adjustable pouring apparatus as claimed in claim 15 wherein the pouring apparatus contains a bayonet-style connector assembly.
18. An adjustable pouring apparatus as claimed in any of claim 1 to claim 14 wherein the adjustable pouring apparatus has at least one flexible exterior rib that is used to facilitate the securing of at least part of the present invention into the neck of a fluid container in a leak-proof connection.
19. A method of operating an adjustable pouring apparatus for a fluid, including
a fluid inlet, and
a fluid outlet, and
at least one valve assembly, and
a nozzle assembly containing an outer casing
characterised by the steps of
a) adjusting the size of the fluid inlet so as to regulate the amount of fluid flowing through the nozzle from the fluid inlet to the fluid outlet before the valve closes and after the nozzle has been placed into its pouring position, and
b) placing the nozzle into its pouring position until the fluid ceases to flow out of the nozzle, and
c) resetting the valve into its open position by replacing the nozzle into its non-pouring position.
20. A method of operating an adjustable pouring apparatus for a fluid, including
a fluid inlet, and
a fluid outlet, and at least one valve assembly, and
a nozzle assembly containing an outer casing and at least one set of indicia,
characterised by the step of
rotating the outer casing of the nozzle with respect to the main valve assembly in order to adjust the aperture size of the fluid inlet until the desired volume to be dispensed is shown on the indicia.
21. An adjustable pouring apparatus substantially as herein described with reference to and indicated by the accompanying drawings.
22. A method of operating an adjustable pouring apparatus substantially as herein described with reference to and as indicated by the accompanying drawings.
PCT/NZ2002/000201 2001-10-31 2002-09-30 Adjustable nozzle assembly WO2003037780A1 (en)

Priority Applications (1)

Application Number Priority Date Filing Date Title
NZ533140A NZ533140A (en) 2001-10-31 2002-09-30 Adjustable nozzle assembly

Applications Claiming Priority (2)

Application Number Priority Date Filing Date Title
NZ51517901A NZ515179A (en) 2001-10-31 2001-10-31 Adjustable nozzle assembly
NZ515179 2001-10-31

Publications (1)

Publication Number Publication Date
WO2003037780A1 true WO2003037780A1 (en) 2003-05-08

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Family Applications (1)

Application Number Title Priority Date Filing Date
PCT/NZ2002/000201 WO2003037780A1 (en) 2001-10-31 2002-09-30 Adjustable nozzle assembly

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NZ (1) NZ515179A (en)
WO (1) WO2003037780A1 (en)

Cited By (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
WO2004061398A1 (en) * 2003-01-03 2004-07-22 Forlong & Maisey Limited T/A Instrument Supplies Improved adjustable nozzle assembly
CN109625583A (en) * 2018-12-29 2019-04-16 珠海经济特区美司达实业有限公司 A kind of Dumpage type quantifies adjustable liquid distributor

Citations (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
EP0768275A1 (en) * 1995-10-11 1997-04-16 Anthony Charles Espezel An adaptor for a dispensing device to a bottle
DE20007149U1 (en) * 2000-04-18 2000-07-06 Girlinger, Johann, Ing., Putzleinsdorf Liquid portioner, in particular for dispensing beverages

Patent Citations (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
EP0768275A1 (en) * 1995-10-11 1997-04-16 Anthony Charles Espezel An adaptor for a dispensing device to a bottle
DE20007149U1 (en) * 2000-04-18 2000-07-06 Girlinger, Johann, Ing., Putzleinsdorf Liquid portioner, in particular for dispensing beverages

Cited By (3)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
WO2004061398A1 (en) * 2003-01-03 2004-07-22 Forlong & Maisey Limited T/A Instrument Supplies Improved adjustable nozzle assembly
CN109625583A (en) * 2018-12-29 2019-04-16 珠海经济特区美司达实业有限公司 A kind of Dumpage type quantifies adjustable liquid distributor
CN109625583B (en) * 2018-12-29 2023-09-15 珠海经济特区美司达实业有限公司 Dumping type quantitative adjustable liquid distributor

Also Published As

Publication number Publication date
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