Device and method to create nano-particle fluid nucleation sites in situ
11052411 ยท 2021-07-06
Inventors
Cpc classification
F25C2500/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25C3/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25C2303/0481
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B05B1/14
PERFORMING OPERATIONS; TRANSPORTING
F25C2303/048
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
C02F1/001
CHEMISTRY; METALLURGY
B05B7/08
PERFORMING OPERATIONS; TRANSPORTING
F25C2303/046
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
B05B7/08
PERFORMING OPERATIONS; TRANSPORTING
B05B1/14
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A nozzle device and method for creating a fluid nucleation in situ, is disclosed. The nozzle has a housing having a hollow interior, an outer cylindrical wall, and inlet and an outlet, and a diffuser disposed in the cylindrical tube at a first end toward the inlet. The diffuser is configured to break bonds between adjoining fluid molecules and create a nucleation event. The nozzle further has a mesh framework disposed in the cylindrical tube and extending longitudinally within the tube in the nucleation zone, and is configured to manipulate the bonding and un-bonding of water molecules within a pressurized environment for the production of snow, clean water or both.
Claims
1. A nozzle for creating a fluid nucleation in situ, the nozzle comprising: a housing having a hollow interior, an outer cylindrical wall, an inlet and an outlet; a radially inner cylindrical tube concentric with the housing wherein the inner cylindrical tube defines a fluid nucleation zone; a diffuser disposed in the cylindrical tube proximate the inlet, wherein the diffuser breaks bonds between adjoining fluid molecules to create a nucleation event; a mesh framework disposed in the cylindrical tube, wherein the mesh framework is spaced from the diffuser, and extends longitudinally within the cylindrical tube in the nucleation zone; and an end plate having a predetermined amount of perforations therein, wherein the end plate is disposed in the cylindrical tube and is spaced from the mesh framework at or near the outlet.
2. The nozzle of claim 1, further comprising a first connection member at the inlet for connection to a fluid source.
3. The nozzle of claim 2, further comprising a second connection member at the outlet, wherein the second connection member is configured for connection to a snow gun, wherein the second connection member comprises a threaded end.
4. The nozzle of claim 1, wherein the diffuser comprises a plurality of orifices thereon, wherein the orifices are configured to create a heat signature to cleanse the fluid of foreign matter by creating a cavitation event, and wherein the orifices each comprise an approximately forty-five degree chamfer.
5. The nozzle of claim 4, wherein the orifices comprise concentric openings having diameter of 0.1562 inches, and wherein the orifices have a depth of 0.5 inches.
6. The nozzle of claim 4, wherein the fluid is water molecules, and the mesh framework comprises a metal alloy mesh.
7. The nozzle of claim 6, wherein the perforations comprises orifices with gauges of approximately 0.156 inches to 0.218 inches.
8. The nozzle of claim 1, wherein the end plate retains the mesh framework, and wherein the end plate is approximately 4 inches in diameter and is 0.125 inches wide.
9. The nozzle of claim 1, wherein the fluid is water, the inlet is attachable to a pump, and the end-plate creates single molecule water particles which instantly freeze to provide nano-clusters, and the outlet is configured to attach to a snow gun.
10. A method for creating a fluid nucleation in situ, comprising the steps of: connecting a nozzle to a fluid source, wherein the nozzle comprises; a housing having a hollow interior, an outer cylindrical wall, an inlet and an outlet; a radially inner cylindrical tube concentric with the housing, wherein the inner cylindrical tube defines a fluid nucleation zone; a diffuser disposed in the cylindrical tube proximate the inlet; a mesh framework disposed in the cylindrical tube; and an end plate having a predetermined amount of perforations therein, wherein the end plate is disposed in the cylindrical tube and is spaced from the mesh framework at or near the outlet, breaking bonds between adjoining fluid molecules and creating a nucleation event using the diffuser; increasing pressure on the fluid molecules at a plurality of orifices of the diffuser to create a heat signature, wherein the heat signature is configured to cleanse the fluid of foreign matter; and creating a partial fusion process by the mesh framework to enable un-bonded fluid molecules to come back together in close proximity.
11. The method of claim 10, further comprising: freezing the un-bonded fluid molecules to provide nano-clusters of fluid molecules, and attaching a snow gun to the outlet of the nozzle.
12. The method of claim 10, further comprising attaching a pump at the inlet and a feedback loop at the outlet to clean pool water.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The present invention is illustrated by way of example, and not by way of limitation, in the figures of the accompanying drawings and in which like reference numerals refer to similar elements and in which:
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DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
(10) The present invention is best understood by reference to the detailed description and examples set forth herein.
(11) Embodiments of the invention are discussed below with reference to the examples. However, those skilled in the art will readily appreciate that the detailed description given herein with respect to these examples is for explanatory purposes as the invention extends beyond these limited embodiments. For example, it should be appreciated that those skilled in the art will, in light of the teachings of the present invention, recognize a multiplicity of alternate and suitable approaches, depending upon the needs of the particular application, to implement the functionality of any given detail described herein, beyond the particular implementation choices in the following embodiments described and shown. That is, there are numerous modifications and variations of the invention that are too numerous to be listed but that all fit within the scope of the invention. Also, singular words should be read as plural and vice versa and masculine as feminine and vice versa, where appropriate, and alternative embodiments do not necessarily imply that the two are mutually exclusive
(12) It is to be further understood that the present invention is not limited to the particular methodology, compounds, materials, manufacturing techniques, uses, and applications, described herein, as these may vary. It is also to be understood that the terminology used herein is used for the purpose of describing particular embodiments only, and is not intended to limit the scope of the present invention. It must be noted that as used herein and in the appended claims, the singular forms a, an, and the include the plural reference unless the context clearly dictates otherwise. Thus, for example, a reference to an element is a reference to one or more elements and includes equivalents thereof known to those skilled in the art. Similarly, for another example, a reference to a step or a means is a reference to one or more steps or means and may include sub-steps and subservient means. All conjunctions used are to be understood in the most inclusive sense possible. Thus, the word or should be understood as having the definition of a logical or rather than that of a logical exclusive or unless the context clearly necessitates otherwise. Structures described herein are to be understood also to refer to functional equivalents of such structures. Language that may be construed to express approximation should be so understood unless the context clearly dictates otherwise.
(13) Unless defined otherwise, all technical and scientific terms used herein have the same meanings as commonly understood by one of ordinary skill in the art to which this invention belongs. Preferred methods, techniques, devices, and materials are described, although any methods, techniques, devices, or materials similar or equivalent to those described herein may be used in the practice or testing of the present invention.
(14) Referring now to
(15) The housing 102 may be formed of metals, metal alloys, or ceramics. However, optional embodiments, any material with a hardness that will stand up to the effects of cavitation may be use.
(16) In one embodiment, the radially inner cylindrical tube 112 is concentrically positioned inside the housing 102. The inner cylindrical tube 112 defines a fluid nucleation or cavitation zone. In one embodiment, the diffuser 114 is disposed in the cylindrical tube 112 at a first end toward the inlet 108. The diffuser 114 comprises a plurality of orifices 116, which may be sized according to end use. The diffuser 114 is configured to break apart the water molecule clusters and provide nano-particles. In one embodiment, the mesh framework 118 is disposed in the cylindrical tube 112. The mesh framework extends longitudinally within the tube 112 in the nucleation zone. In some embodiments, the mesh framework 118 may be held or retained by a series of baffles disposed between diffuser 114 and end plate 120 in the hollow interior 104 of the cylindrical tube 112. In some embodiments, the mesh framework 118 may be held or retained by a pair of baffles at the top portion and a pair of baffles at the bottom portion of the hollow interior 104 of the cylindrical tube 112 therein.
(17) The mesh framework 118 may be formed of copper together with other metals, and is formed as a fibrous network akin to that of the appearance of steel wool. The copper has a pH balancing effect on the fluid while the other stronger metals it may be used with provides enhanced strength. The mesh framework 118 is configured to suspend the water molecules that have been fissured by the diffuser. In one embodiment, the end plate 120 is disposed in the cylindrical tube 112, and comprises a predetermined amount of perforations 122. In one embodiment, the end plate 120 is located at or near the outlet 110.
(18) In another embodiment, device 100 further comprises a first connection member 130 at the inlet 108. In another embodiment, the first connection member 130 comprises a threaded end configured to connect to a fluid source. In yet another embodiment, device 100 further comprises a second connection member 132 at the outlet 110. In one embodiment, the second connection member 132 comprises a threaded end, which is configured to connect to a snow gun 124 (shown in
(19) Referring to
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(22) In one embodiment, the end plate 120 comprises a combination of holes or perforations 122 having a diameter of 0.25 inches aligned in a concentric circle.
(23) In an embodiment shown in
(24) In one embodiment, the mesh framework 118 is a metal alloy mesh. In some embodiments, the mesh network 118 is a combination copper/metal mesh network. In embodiments, the end plate 120 comprises perforations 122 with gauges of approximately 5/32 inches to 7/32 inches, though could be larger or smaller depending upon application. The end plate 120 is configured to create a partial fusion process in which the water molecules come back together in close proximity but un-bonded. Then, end plate 120 is configured to create single molecule water particle, which instantly freeze providing nano-clusters of snow particles 126 and the outlet 110 is configured to attach to a snow gun 124, as shown in
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(26) Advantageously, the present device provides an intermediary device or nozzle 100 that is positioned within the flow of water and functions by the pressure created from a pump or other device to increase the pressure of water flow through a confined space such as a hose or pipe. The present device further provides a fission process that breaks the surface tension and bond between adjoining fluid molecules. The present device further creates a heat signature that forces the water molecules apart in a hydrophobic environment, and burns off any foreign matter, thereby cleansing the fluid molecule. The present device further provides a mesh framework 118 that creates a partial fusion process in which the un-bonded fluid molecules come back together in close proximity. The device 100 is provided with an ability to manipulate the bonding and un-bonding of water molecules within a pressurized environment.
(27) Further, multiple results and outcomes could be achieved by varying the number of perforations 122 or orifices 116 that enhance the ability to utilize a collective source of fluid or water molecules in a variety of applications. The device 100 further provides water free of bacteria, algae, and other foreign matter and contaminants while maintaining a balanced pH level, for example, the device 100 could be incorporated in a swimming pool. In another application, the device 100 could provide a larger water crystal or snow particles when the individual water molecule is exposed to freezing temperatures.
(28) While the present invention has been described in connection with what are presently considered to be the most practical and preferred embodiments, it is to be understood that the present invention is not limited to these herein disclosed embodiments. Rather, the present invention is intended to cover all of the various modifications and equivalent arrangements included within the spirit and scope of the appended claims.
(29) Although specific features of various embodiments of the invention may be shown in some drawings and not in others, this is for convenience only. In accordance with the principles of the invention, the feature(s) of one drawing may be combined with any or all of the features in any of the other drawings. The words including, comprising, having, and with as used herein are to be interpreted broadly and comprehensively and are not limited to any physical interconnection. Moreover, any embodiments disclosed herein are not to be interpreted as the only possible embodiments. Rather, modifications and other embodiments are intended to be included within the scope of the appended claims.