EXTENDED-RANGE SPRAY APPLICATOR
20210197217 · 2021-07-01
Assignee
Inventors
Cpc classification
C12N7/00
CHEMISTRY; METALLURGY
B05B3/105
PERFORMING OPERATIONS; TRANSPORTING
C12N2760/18134
CHEMISTRY; METALLURGY
B05B7/2416
PERFORMING OPERATIONS; TRANSPORTING
A61K9/06
HUMAN NECESSITIES
B05B9/0894
PERFORMING OPERATIONS; TRANSPORTING
A61K9/0073
HUMAN NECESSITIES
B05B1/28
PERFORMING OPERATIONS; TRANSPORTING
B05B7/2478
PERFORMING OPERATIONS; TRANSPORTING
C12N2770/20034
CHEMISTRY; METALLURGY
A61K39/215
HUMAN NECESSITIES
B05B3/1092
PERFORMING OPERATIONS; TRANSPORTING
B01F2101/2202
PERFORMING OPERATIONS; TRANSPORTING
A61M11/00
HUMAN NECESSITIES
B05B3/1014
PERFORMING OPERATIONS; TRANSPORTING
B01F23/21311
PERFORMING OPERATIONS; TRANSPORTING
International classification
B05B3/10
PERFORMING OPERATIONS; TRANSPORTING
A01K45/00
HUMAN NECESSITIES
A61D1/02
HUMAN NECESSITIES
A61K39/215
HUMAN NECESSITIES
A61K9/00
HUMAN NECESSITIES
A61K9/06
HUMAN NECESSITIES
B05B1/28
PERFORMING OPERATIONS; TRANSPORTING
B05B7/24
PERFORMING OPERATIONS; TRANSPORTING
B05B9/08
PERFORMING OPERATIONS; TRANSPORTING
Abstract
The disclosure relates to an extended-range spray applicator, and methods of making and use thereof, for dosing vaccines and/or probiotics to avian animals at a distance.
Claims
1. An extended-range spray applicator comprising: (a) an air supply means, for providing a flow of air through the spray applicator; wherein the air supply means is configured to connect to (b) a head assembly, configured to attach to the air supply means; wherein the assembly comprises: (i) an air supply means adaptor, for connecting the head assembly to the air supply means; (ii) at least one air guide shroud, to guide the flow of air coming from the air supply means; (iii) a liquid atomizer means, for transforming liquid into sub-millimeter-sized droplets; wherein the atomizer is situated centrally within the shroud; (iv) a mounting means, for attaching the atomizer to the head assembly; (v) a motor, mechanically connected to the atomizer; and optionally (vi) a battery receptacle, for holding a battery, which is electrically connected to the motor.
2. The spray applicator of claim 1, wherein the head assembly, already equipped with a primary shroud, is configured to reversibly attach to a secondary shroud.
3. The spray applicator of claim 2, wherein the mounting means are extenders, and wherein both shrouds comprise slots through which the extenders pass.
4. The spray applicator of claim 3, wherein the atomizer is fixedly connected to the extenders.
5. The spray applicator of claim 3, wherein the atomizer is adjustably connected to the extenders, such that a user may direct the atomizer upward or downward, with respect to the direction of air flow.
6. The spray applicator of claim 5, wherein the adjustable connection also allows the user to position the atomizer laterally, such that it is either nearer to, or farther from, the air supply means.
7. The spray applicator of claim 2, wherein both the primary and secondary shrouds comprise a plurality of spacers, which are configured to allow the shrouds to be reversibly connected to one another.
8. The spray applicator of claim 7, wherein each shroud comprises 4 spacers.
9. The spray applicator of claim 1, wherein the air supply means adapter is cylindrical and comprises a means for lockably attaching the head assembly to the air supply portion of the spray applicator.
10. The spray applicator of claim 2, wherein the air supply means adapter is cylindrical and comprises a means for lockably attaching the head assembly to the air supply portion of the spray applicator.
11. The spray applicator of claim 2, comprising a battery housing, situated atop the head assembly, and configured to receive and house a rechargeable battery, which supplies electricity to the atomizer motor.
12. The spray applicator of claim 2, wherein the atomizing means is a rotary disc atomizer, which is mechanically connected to a disc atomizer motor, which is housed within a motor housing, which is fixedly connected to a disc atomizer assembly frame.
13. A head assembly, for use with the spray applicator of claim 1 or 2, comprising: (a) an air supply means adaptor, for connecting the head assembly to the air supply means; (b) at least one air guide shroud, to guide the flow of air coming from the air supply means; (c) a rotary disc atomizer, for transforming liquid into sub-millimeter-sized droplets; wherein the atomizer is situated centrally within the shrouds; (d) at least two extenders, for attaching the atomizer to the head assembly; (e) a motor, mechanically connected to the atomizer; and (f) a battery receptacle, for holding a battery, which is electrically connected to the motor.
14. The head assembly of claim 13, comprising a primary and secondary shroud, each comprising a slot through which the extenders pass, and wherein the secondary shroud has a conical angle of about 30°.
15. The head assembly of claim 13, wherein at least one shroud is characterized by having at least three diameters, D1, D2 and D3, and at least two angles, A1 and A2.
16. The head assembly of claim 15, wherein D1 is at least about 30% to about 50% smaller than D2; and wherein D2 is about equal to or is about 10% smaller than D3.
17. The head assembly of claim 16, wherein A1 is between about 90° and about 145°; and wherein A2 is between about 130° and 160°.
18. A method of vaccinating avian animals against respiratory pathogens, from at least about 5 or at least about 10 meters away, comprising the step of administering to said avian animals an effective amount of at least one respiratory antigen, carried in the form of uniformly-sized droplets, having diameters of from about 50 μm to about 200 μm, using the extended-range spray applicator of claim 1 or 2, thereby vaccinating said avian animal.
19. The method of claim 18, wherein 10,000 avian animals are vaccinated and/or administered probiotics to in less than about 20 minutes, and/or wherein about 5 L to about 10 L of vaccine is delivered within about 20 minutes.
20. A method of treating birds with a probiotic formulation by dispersing the probiotic formulation in the form of uniformly-sized droplets, having diameters of from about 50 μm to about 200 μm, from a spray applicator of claim 1 or 2, wherein the birds being treated are at least about 5 to at least about 10 meters away from the spray applicator; and allowing the birds to consume the droplets.
21. The method of claim 20, wherein the probiotic formulation is a liquid or liquid-like gel.
22. The method of claim 20, wherein 10,000 birds are treated in less than about 20 minutes, and/or wherein about 5 L to about 10 L of probiotic formulation is delivered within about 20 minutes.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0025] A full and enabling disclosure of the present invention, including the best mode thereof, to one of ordinary skill in the art, is set forth more particularly in the remainder of the specification, including reference to the accompanying figures, wherein:
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DETAILED DESCRIPTION OF THE INVENTION
[0072] The present invention relates to extended-range spray applicator and methods of making and use thereof. The extended-range spray applicator is particularly well-suited to delivering liquid medicament, including vaccines and/or probiotics, via an array of droplets having an average droplet size of from about 50 μM to about 200 μM in diameter. These droplets sizes are particularly useful for vaccinating avian animals, including chickens, against a variety of respiratory pathogens or administering probiotics to birds.
[0073] Unless otherwise defined, all terms (including technical and scientific terms) used herein have the same meaning as commonly understood by one of ordinary skill in the art to which this invention belongs. It will be further understood that terms, such as those defined in commonly used dictionaries, should be interpreted as having a meaning that is consistent with their meaning in the context of the relevant art and this disclosure. To the extent the definitions of terms in the publications, patents, and patent applications incorporated herein by reference are not the same as the definitions set forth in this specification, the definitions in this specification control for the entire specification, including the claims. Any other definitions in the publications, patents, and patent applications incorporated herein by reference that are not explicitly provided in this specification apply only to the embodiments discussed in the publications, patents, and patent applications incorporated herein by reference.
[0074] As used above, and throughout the description of the invention, the following terms, unless otherwise indicated, shall be understood to have the following meanings:
[0075] As used herein, the singular forms “a”, “an” and “the” are intended to include the plural forms as well, unless the context clearly indicates otherwise.
[0076] The term “and/or” as used herein includes any and all combinations of one or more of the associated listed items.
[0077] The term “about,” as used herein, means approximately, in the region of, roughly, or around. When the term “about” is used in conjunction with a numerical range, it modifies that range by extending the boundaries above and below the numerical values set forth. In general, the term “about” is used herein to modify a numerical value above and below the stated value by a variance of 10%. In one aspect, the term “about” means plus or minus 20% of the numerical value of the number with which it is being used. Therefore, about 50% means in the range of 45%-55%. Numerical ranges recited herein by endpoints include all numbers and fractions subsumed within that range (e.g. 1 to 5 includes 1, 1.5, 2, 2.75, 3, 3.90, 4, and 5). It is also to be understood that all numbers and fractions thereof are presumed to be modified by the term “about.”
[0078] The term “effective amount” as used herein means an amount of a composition according to the present invention effective in producing the desired veterinary effect.
[0079] In an aspect, the disclosure provides an extended-range spray applicator substantially as depicted in
[0080] In some embodiments, the extended-range spray applicator comprises:
[0081] (a) an air supply means, for providing a flow of air through the spray applicator; wherein the air supply means is configured to connect to
[0082] (b) a head assembly, configured to attach to the air supply means; wherein the assembly comprises: [0083] (i) an air supply means adaptor, for connecting the head assembly to the air supply means; [0084] (ii) at least one air guide shroud, to guide the flow of air coming from the air supply means; [0085] (iii) a liquid atomizer means, for transforming liquid into sub-millimeter-sized droplets; wherein the atomizer is situated centrally within the shroud; [0086] (iv) a mounting means, for attaching the atomizer to the head assembly; [0087] (v) a motor, mechanically connected to the atomizer; and optionally [0088] (vi) a battery receptacle, for holding a battery, which is electrically connected to the motor.
[0089] In some embodiments of the spray applicator, the head assembly, already equipped with a primary shroud, is configured to reversibly attach to a secondary shroud.
[0090] In some embodiments, the mounting means are extenders, and both shrouds comprise slots through which the extenders pass.
[0091] In some embodiments, the atomizer is fixedly connected to the extenders.
[0092] In other embodiments, the atomizer is adjustably connected to the extenders, such that a user may direct the atomizer upward or downward, with respect to the direction of air flow.
[0093] In some embodiments, the adjustable connection also allows the user to position the atomizer laterally, such that it is either nearer to, or farther from, the air supply means.
[0094] In some embodiments, both the primary and secondary shrouds comprise a plurality of spacers, which are configured to allow the shrouds to be reversibly connected to one another. For example, each shroud may comprise 4 spacers.
[0095] In some embodiments, the air supply means adapter is cylindrical and comprises a means for lockably attaching the head assembly to the air supply portion of the spray applicator.
[0096] In some embodiments, the spray applicator comprises a battery housing, situated atop the head assembly, and configured to receive and house a rechargeable battery, which supplies electricity to the atomizer motor.
[0097] In some embodiments, the atomizing means is a rotary disc atomizer, which is mechanically connected to a disc atomizer motor, which is housed within a motor housing, which is fixedly connected to a disc atomizer assembly frame.
[0098] In another aspect, the disclosure provides a head assembly, for use with the disclosed spray applicator, comprising:
[0099] (a) an air supply means adaptor, for connecting the head assembly to the air supply means;
[0100] (b) at least one air guide shroud, to guide the flow of air coming from the air supply means;
[0101] (c) a rotary disc atomizer, for transforming liquid into sub-millimeter-sized droplets; wherein the atomizer is situated centrally within the shrouds;
[0102] (d) at least two extenders, for attaching the atomizer to the head assembly;
[0103] (e) a motor, mechanically connected to the atomizer; and
[0104] (f) a battery receptacle, for holding a battery, which is electrically connected to the motor.
[0105] In an embodiment, the head assembly may comprise a primary and secondary shroud, each comprising a slot through which the extenders pass. In an advantageous embodiment, the secondary shroud has a conical angle of about 30°.
[0106] In some embodiments of the head assembly, at least one shroud is characterized by having at least three diameters, D1, D2 and D3, and at least two angles, A1 and A2.
[0107] In some embodiments, D1 is at least about 30% to about 50% smaller than D2, and D2 is about equal to or is about 10% smaller than D3.
[0108] In some embodiments, A1 is between about 90° and about 145°, and A2 is between about 130° and 160°.
[0109] In some embodiments, the spray applicator is capable of delivering to an avian animal in need thereof a safe and effective amount of a liquid medicament selected from an immunological formulation, a vaccine or probiotic formulation, an antibiotic formulation, an antifungal formulation, an anticoccidial formulation, a feed additive formulation and combinations thereof.
[0110] In some embodiments, the spray applicator is configured to transform the liquid medicament into substantially uniformly sized droplets, with 90% of the droplets having a diameter between about 25 μm and about 200 μm.
[0111] In other embodiments, the spray applicator is capable of propelling fluid/vaccine or probiotic droplets at least about 5 or about 10 meters through the air, to deliver safe and effective amounts of the droplets to the avian animals.
[0112] In some embodiments, the spray applicator comprises:
[0113] (a) an air supply means, which is operably connected to
[0114] (b) a head assembly, which comprises an air supply means adapter, configured to sealably connect the head assembly to the air supply means; comprising: [0115] (i) at least one air shroud guide, for guiding the array of droplets to the avian animals; and [0116] (ii) a liquid medicament atomizing means, for transforming the liquid medicament into a uniform distribution of droplets.
[0117] In some embodiments, the air shroud guide and the air supply means adapter are either a unitary piece or are at least two separate pieces, to accommodate connection of the head assembly to many different types of air supply means.
[0118] In some embodiments, the air supply means is a commercially-available blower, including a leaf blower.
[0119] In some embodiments, the atomizing means is a rotary disc atomiser, which is operably connected to an electric motor. In an alternate embodiment, the rotary disc atomizer is operably connected to an impeller, which is driven by the air flowing from the air supply means, and which turns the rotary disc atomizer in place of an electric motor.
[0120] In some embodiments, the disc assembly comprises a disc atomizer, a washer and a disc fixing screw. The disc atomizer comprises grooves, wherein the spinning of the atomizer by the motor causes liquid to be drawn into and through the grooves, and wherein the force of the spinning causes the liquid to exit the atomizer as an array of droplets dispersed throughout a substantially columnar or conical flow of air.
[0121] In some embodiments, the head assembly shroud is characterized by having at least three diameters, D1, D2 and D3, and at least two angles, A1 and A2.
[0122] In some embodiments, D1 is at least about 30% to about 50% smaller than D2 and D2 is about equal to or is about 10% smaller than D3.
[0123] In some embodiments, A1 is between about 90° and about 145° and A2 is between about 130° and 160°.
[0124] In another aspect, the disclosure provide a method of vaccinating avian animals against respiratory pathogens, from a distance of at least about 5 or about 10 meters away, comprising the step of using the disclosed extended-range spray applicator to administer to said avian animals an effective amount of at least one respiratory antigen, carried in the form of uniformly-sized droplets, having diameters of from about 50 μm to about 200 μm, thereby vaccinating said avian animal.
[0125] In some embodiments, 10,000 avian animals are vaccinated and/or administered probiotics in less than about 20 minutes; and/or about 5 L to about 10 L of vaccine is delivered within about 20 minutes.
[0126] In some embodiments, the disclosure provides a method of treating birds with a probiotic formulation therapeutic agent by dispersing the probiotic formulation in the form of uniformly-sized droplets, having diameters of from about 50 μm to about 200 μm, from a spray applicator of claim 1 or 2, wherein the birds being treated are at least about 5 to at least about 10 meters away from the spray applicator; and allowing the birds to consume the droplets.
[0127] In some embodiments, the probiotic formulation is a liquid or liquid-like gel.
[0128] In other embodiments, 10,000 birds are treated in less than about 20 minutes, and/or about 5 L to about 10 L of probiotic formulation is delivered within about 20 minutes.
DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENT
[0129] Referring now in more detail to the drawings, in which like numerals indicate like parts throughout the several views,
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[0131] As further shown in
[0132] Adjacent to the adapter 21, and situated atop the head assembly 20, is a battery housing 45. The battery housing 45 is configured to receive and house a rechargeable battery, which supplies electricity to an atomizer motor, which is electrically connected to the battery, and which is contained within a housing 25. The motor is operably connected to a disc atomizer 23a, and may be activated by turning on a power switch housed in power switch receptacle 46. The disc atomizer 23a and disc atomizer motor 24 are fixedly connected to a disc atomizer assembly frame 19, which itself is fixedly connected to a disc atomizer fluid supply assembly 36. An external fluid supply may be attached and thereby fluidly connected to the supply assembly 36 via quick-connect 34. Any suitable conduit 39 may be connected to quick-connect 34, and the fluid supply may be under pressure using gravity (i.e. by maintaining a fluid reservoir 40 at a suitable height above the sprayer's point of use) or, by using a suitable pumping means, including a pulsatile pump or other fluid pump.
[0133] The disc atomizer assembly frame 19 is configured to be fixedly or adjustably mounted to the head assembly 20 via disc atomizer assembly extenders 66, which are configured to allow reversible attachment of multiple different primary 22 and secondary 62 shrouds. When the disc atomizer assembly frame 19 is adjustably connected to the extenders 66, the atomizer assembly may be adjusted up or down, to allow the fluid/vaccine to be delivered at either a higher or lower angle, with respect to the stream of air emanating from the air supply means. The frame may also be adjusted to be either nearer to, or farther away from, the air supply portion 90. This adjustability feature allows the user to select multiple different secondary cones 62, each cone providing a different pattern of fluid/vaccine droplet delivery. Furthermore, this adjustability allows a user to fine-tune and/or customize the spray applicator to suit a variety of different field vaccination conditions. For example, the atomizer 23a may be adjusted to point up to direct the vaccine or probiotic droplets to travel higher and farther. Many different combinations and permutations are possible, now that the disclosure has been made.
[0134] Moreover, as shown in
[0135] Accordingly, the spray applicators 1, 100 offer a dramatic improvement in the field of spray vaccination, significantly increasing each of the following delivery parameters: effective range, speed, accuracy and precision.
[0136] As shown in
[0137] In one embodiment, the probiotic formulation may be in the form of a liquid-like gel. A “liquid-like gel” as used herein is a gel that is easily disrupted or thinned, and that liquefies or becomes less gel-like and more liquid-like under stress, such as caused by the gel being drawn into, through and out of the spinning atomizer, but which quickly returns to a gel when the movement or other stress is alleviated or removed, such as when movement of the fluid exiting the spinning atomizer is stopped, as for example when the exiting fluid lands on the targeted bird. The skilled person knows how to make a formulation more the gel-like or liquid-like by adjusting the amount of gelling agent used in the formulation. One type of liquid-like gel suitable for use in delivering probiotics to birds is disclosed in Wright et al, PCT patent publication number WO2001095891. Other suitable liquid-like gels for use to deliver probiotics to birds include GroGel™ by MS BioScience of Madison, Wis., and gel-Pac™ Animal Science Products, Inc. PO Drawer 631408 Nacogdoches, Tex..
[0138] In another embodiment, the liquid-like gel pass through the atomizer disc of the spray applicator and thereby dispersed from the spray applicator in the form of small gel beadlets. The term “beadlet” as used herein refers to small discrete particles, which have a mean particle size from about 50 μM to about 200 μM in diameter and are usually nearly spherical. Beadlets contain one or more probiotics in an encapsulated form.
[0139] While the invention has been described in connection with specific embodiments thereof, it will be understood that it is capable of further modifications and this application is intended to cover any variations, uses, or adaptations of the invention following, in general, the principles of the invention and including such departures from the present disclosure as come within known or customary practice within the art to which the invention pertains and as may be applied to the essential features hereinbefore set forth and as follows in the scope of the appended claims. This invention includes all modifications and equivalents of the subject matter recited in the aspects or claims presented herein to the maximum extent permitted by applicable law.
[0140] It is further noted that it is an object of the invention to not encompass within the invention any previously known product, process of making the product, or method of using the product such that Applicants reserve the right and hereby disclose a disclaimer of any previously known product, process, or method. It is further noted that the invention does not intend to encompass within the scope of the invention any product, process, or making of the product or method of using the product, which does not meet the written description and enablement requirements of the USPTO ((35 U.S.C.)112, first paragraph) or the EPO (Article 83 of the EPC), such that Applicants reserve the right and hereby disclose a disclaimer terms such as “consisting essentially of” and “consists essentially of” have the meaning ascribed to them in U.S. Patent law, e.g., they allow for elements not explicitly recited, but exclude elements that are found in the prior art or that affect a basic or novel characteristic of the invention.
[0141] The invention will now be further described by way of the following non-limiting examples.
EXAMPLES
[0142] Below disclose the development of the extended-range spray applicator, up to and including the present preferred embodiment, which is detailed above.
Example 1
Shroud Version 1
[0143] During development of the first shroud version, the goal was to define an optimum angle for the spinning disk atomizer 23a relative to the air supply/blower tube 11, to provide optimal operation of the spinning disc atomizer 23a. Testing demonstrated that the angle between the tip of the spinning disc and the tube needed to be about 240° to allow the fluid to be siphoned out correctly and to prevent leakage during normal operation. During testing of this first shroud version
Example 2
Shroud Version 2
[0144] In Version 2 (
Example 3
Shroud Version 3
[0145] In Version 3 (
Example 4
Shroud Version 4
[0146] In Version 4 (
Example 5
Shroud Version 5
[0147] In Version 5 (
Example 6
Shroud Versions 6 and 7
[0148] In Version 6, an advantageous single-shroud embodiment (
[0149] In Version 7, Applicants have taken all the effective functional elements (e.g. two-piece design, shape, diameters, angles, etc.) of the Version 7 assembly 20, and adapted it to provide for the addition of secondary shrouds 62 having different geometries (as discussed above). The primary shroud 22 now comprises a slot 69 through which can pass the atomizers extenders 66. Without the extenders 66, or a suitable functional replacement therefor, it would not have been mechanically practical to add an additional shroud. Once the secondary shroud 62 was added to the spray applicator 100, Applicants found surprisingly that an even greater percentage of vaccine or probiotic droplets were being effectively delivered to the birds. This finding could not have been predicted in advance of the present disclosure, and was only made possible by the non-routine experimentation disclosed herein.
[0150] Having thus described in detail preferred embodiments of the present invention, it is to be understood that the invention defined by the above paragraphs is not to be limited to particular details set forth in the above description as many apparent variations thereof are possible without departing from the spirit or scope of the present invention.
Example 7
High Speed Video and Drop Size Characterization Confirms Uniform and Acceptable Droplet Size is Maintained up to at Least 20 feet.
[0151] High-speed video and drop size characterization of two droplet dispersion devices used in a vaccine delivery application was conducted. The two rotary atomizers evaluate are: 1 Micron ULVAFAN/ULVAPAK-MK2
[0152] Test Setup. An Olympus i-SPEED TR high-speed video camera was used for capturing video during this test. This camera is designed for research and development usage where the objective is to capture high quality video images for subsequent review and analysis. With an acquisition rate of up to 2,000 frames per second at a full resolution of 1280×1024, and a top speed of 10,000 fps, the camera is suitable for the vast majority of spray analysis and research testing. The test setup consisted of fabricating a holding bracket for the ULVAFAN/ULVAPAK-MK2 for high-speed ideograph. The extended-range spray applicator was held in place with a four-inch pipe clamp on a three-axis traverse. Three-axis traverse allowed final adjustments to achieve clean field of view for high-speed ideograph
[0153] Drop Size Measurement. The Sympatec HELOS Particle Analyzer was used to acquire drop size measurements for this test
[0154] The reservoir level was filled to full at the beginning of each test to reduce the pressure-head changes introduced by water displaced during testing. The battery was charged to full status indicated as solid green on the extended-range spray applicator charger.
[0155] For drop size characterization of ULAVPAK/Hybrid Assembly extended-range spray applicator, the Grey shroud was used. The tank level was filled to full before each test to reduce the gravity pressure—head changes by water displaced during testing. An external 12V DC power source with an on/off toggle switch fabricated by Spraying Systems Co® and used to power the spinning disc atomizer. The D.sub.v0.1, D.sub.v0.5, and D.sub.v0.9 diameters as defined below were used to evaluate the drop size data in microns μm. The drop size terminology is defined below, and more information can be found in Understanding Drop Size, Bulletin 459c, available at the following link: www.spray.com/literature_pdfs/B459C_Understanding_Drop_Size.pdf.
[0156] D.sub.v0.1: A value where 10% of the total volume or mass of liquid sprayed is made up of drops with diameters smaller or equal to this value.
[0157] D.sub.v0.5: Volume Median Diameter also known as VMD. A means of expressing drop size in terms of the volume of liquid sprayed. The VMD is a value where 50% of the total volume or mass of liquid sprayed is made up of drops with diameters larger than the median value and 50% smaller than the median value. This diameter is used to compare the change in drop size on average between test conditions.
[0158] D.sub.32: Sauter Mean Diameter also known as SMD is a means of expressing the fineness of a spray in terms of the surface area produced by the spray. The Sauter Mean Diameter is the diameter of a drop having the same volume to surface area ratio as the total volume of all the drops to the total surface area of all the drops.
[0159] D.sub.v0.9: A value where 90% of the total volume or mass of liquid sprayed is made up of drops with diameters smaller or equal to this value.
[0160] D.sub.v0.99: A value where 99% of the total volume or mass of liquid sprayed is made up of drops with diameters smaller or equal to this value.
[0161] Test Results & Analysis. High-speed video was acquired near the exit of the spinning disk atomizer to visualize the formation of droplets and the interaction of the droplets with the airstream. Sympatec drop size testing was conducted at multiple downstream distances to assess the drop size characteristics as well as the relative density of the spray cloud. All testing data was collected at one speed for ULVAFAN/ULVAPAK MK2 atomizer with the onboard on/off switch. For the extended-range spray applicator Hybrid Assembly, data was collected with the blower fan triggered to max with the atomizer powered by an external 12V DC power with 200 milliamps. Representative screen shots of the high-speed video recording of ULVAFAN/ULVAPAK MK2
[0162] The second phase of the tests was to characterize the ULVAFAN/ULVAPAK MK2 and the ULVAPAK/Hybrid Assembly for drop size using the Sympatec laser diffraction instrument at many downstream distances from the atomizers. The maximum distance of data collection depended on each blower fan's ability to push a sufficient quantity of droplets downstream. The spray plume was scanned a minimum of two times for data collected at each distance. A straight average method was used to obtain the final results, which are provided in Table 2.
[0163] All drop size measurements acquired for the ULVAFAN/ULVAPAK MK2 atomizer were at constant speed, a step of a half-foot over a maximum distance of five feet was collected Table 2. The MVD data recorded under 100 μm for ULVAFAN/ULVAPAK MK2 is consistent over several distances, a low concentration of droplets at further distances provided a maximum measurement distance of 5 feet
[0164] For drop size collection of ULVAPAK/Hybrid Assembly, the blower fan trigger was pressed at maximum speed, with power supplied directly to the atomizer. The system was allowed to stabilize for few seconds prior each scan for drop size data collection.
TABLE-US-00002 TABLE 2 High Speed Videography Data Gravity Feed Water Spray Supply Distance Nozzle Name Height in ft D.sub.v0.1 D.sub.32 D.sub.V0.5 D.sub.V0.99 Micron Onboard 0.5 52 81 90 142 UlvaFan/ Tank 1 50 78 84 141 UlvaPak-MK2 Attached 1.5 48 73 78 128 2 47 71 76 125 2.5 46 71 77 127 3 46 71 77 131 3.5 47 72 79 130 4 46 71 78 127 4.5 46 72 78 129 5 47 74 81 135 Extended-range 6″ from 1 86 124 135 197 spray applicator nozzle 2 80 115 125 184 hybrid blower inlet 3 77 115 128 187 tilted up 18° 4 73 110 124 181 5 69 107 121 177 Extended-range 6″ from 1 95 133 141 201 spray applicator nozzle 2 90 128 135 201 hybrid blower inlet 3 83 119 127 191 tilted up 18° 4 80 115 123 188 5 78 113 121 187 6 75 109 119 186 7 69 108 123 184 8 73 110 121 191 9 70 106 115 184 10 76 113 124 195
[0165] During data collection, it was observed that the angled nozzle on the shroud assembly was generating an obstruction at the blower exit. The majority of the forced air was directed so that it was concentrated over the lower-half portion of the spray plume. The top half portion of the spray was unaffected by the forced air which allowed some particles to follow their natural path to ground.