COLD PLASMA METHOD AND APPARATUS FOR ERADICATION OF THE TAXONOMIC CLASS INSECTA
20210195885 · 2021-07-01
Inventors
Cpc classification
International classification
Abstract
A system for eradication of insects, insect larvae, and insect eggs includes an applicator, a plurality of nozzles, a gas source, and a cold plasma generator. The applicator is adapted to be moved by the user over an area to be treated. The plurality of nozzles are disposed on the applicator. The cold plasma generator is in electrical communication with a power supply. The cold plasma generator is in fluid communication with the plurality of nozzles and the gas source. The cold plasma generator is configured to generate cold plasma from the gas source and configured to expel a plurality of cold plasma plumes through the plurality of nozzles that forms a cold plasma field. The cold plasma field is generated at a power and a volumetric flow sufficient for the eradication of the insects, the insect larvae and the incents eggs from the area to be treated.
Claims
1. A system for eradication of insects, insect larvae, and insect eggs, comprising: an applicator having a handle configured to be held by a user, the applicator adapted to be moved by the user over an area to be treated; a plurality of nozzles disposed on the applicator, the plurality of nozzles spaced apart from the handle of the applicator and arranged in an array including a plurality of rows of the nozzles and a plurality of columns of the nozzles, the plurality of columns defining multiple radial planes; a gas source; and a cold plasma generator in electrical communication with a power supply, and in fluid communication with the plurality of nozzles and the gas source, the cold plasma generator configured to generate cold plasma from the gas source and to expel a plurality of cold plasma plumes through the plurality of nozzles that combine to form a cold plasma field, the cold plasma field generated at a power and a volumetric flow sufficient for the eradication of at least one of the insects, the insect larvae, and the insect eggs from the area to be treated.
2. The system of claim 1, wherein the power employed to generate the cold plasma field is between 10 W and 40 W.
3. The system of claim 1, wherein the volumetric flow of the cold plasma plumes through the plurality of nozzles to form the cold plasma field is between 1 cfm and 10 cfm.
4. The system of claim 1, wherein each of the cold plasma plumes has a length between 3 mm and 25 mm.
5. (canceled)
6. The system of claim 1, wherein each of the plurality of nozzles is spaced apart from others of the plurality of nozzles by at least 2 mm.
7. The system of claim 1, wherein the gas source is one of a compressed gas container and pump in communication with atmospheric air, and wherein the compressed gas container holds one of helium and argon as gas used to generate the cold plasma.
8. The system of claim 7, wherein the compressed gas container has wheels and is configured to be rolled behind the applicator.
9. The system of claim 8, wherein the atmospheric air is used to generate the cold plasma.
10. The system of claim 1, wherein each of the plurality of nozzles is a venturi nozzle.
11. The system of claim 10, wherein the venturi nozzle is a pipe having an outlet opening with a first diameter, an inlet opening with a second diameter, and a choke having a third diameter, the third diameter less than the first diameter and the second diameter.
12. The system of claim 11, wherein the first diameter of the outlet opening is between 0.1 mm and 5.0 mm.
13. The system of claim 1, wherein the applicator is a wand configured to be manually waved by the user over the area to be treated.
14. (canceled)
15. A system for eradication of insects, insect larvae, and insect eggs, comprising: an applicator having a handle configured to be held by a user, the applicator adapted to be moved by the user over an area to be treated, the applicator having a plurality of wheels and configured to be rolled by the user over the area to be treated; a plurality of nozzles disposed on the applicator, the plurality of nozzles spaced apart from the handle of the applicator, the applicator having a suction device and a suction aperture disposed adjacent to the plurality of nozzles, the plurality of columns defining multiple radial planes; a gas source; and a cold plasma generator in electrical communication with a power supply, and in fluid communication with the plurality of nozzles and the gas source, the cold plasma generator configured to generate cold plasma from the gas source and to expel a plurality of cold plasma plumes through the plurality of nozzles and form a cold plasma field, the cold plasma field generated at a power and a volumetric flow sufficient for the eradication of at least one of the insects, the insect larvae, and the insect eggs from the area to be treated.
16. The system of claim 1, wherein the power supply is one of a 120 V and a 230 V power supply.
17. The system of claim 1, wherein a temperature of the cold plasma plumes is between 70° F. and 120° F.
18. A system for eradication of insects, insect larvae, and insect eggs, comprising: an applicator having a handle configured to be held by a user, the applicator adapted to be moved by the user over an area to be treated; a plurality of nozzles disposed on the applicator, the plurality of nozzles spaced apart from the handle of the applicator and arranged in an array including a plurality of rows of the nozzles and a plurality of columns of the nozzles, the plurality of columns defining multiple radial planes; a side nozzle disposed on the applicator oriented orthogonally in comparison to the plurality of nozzles; a gas source; and a cold plasma generator in electrical communication with a power supply, and in fluid communication with the plurality of nozzles and the gas source, the cold plasma generator configured to generate cold plasma from the gas source and to expel a plurality of cold plasma plumes through the plurality of nozzles that combine to form a cold plasma field, the cold plasma field generated at a power and a volumetric flow sufficient for the eradication of the insects from the area to be treated, wherein the power employed to generate the cold plasma field is between 10 W and 40 W, wherein the volumetric flow of the cold plasma plumes through the plurality of nozzles to form the cold plasma field is between 1 cfm and 10 cfm, wherein each of the cold plasma plumes has a length between 3 mm and 25 mm, wherein the plurality of nozzles is arranged in an array including a plurality of rows of the nozzles and a plurality of columns of the nozzles, wherein each of the plurality of nozzles is spaced apart from others of the plurality of nozzles by at least 2.5 mm, wherein the gas source is one of a compressed gas container and pump in communication with atmospheric air, wherein each of the plurality of nozzles is a venturi nozzle, wherein the venturi nozzle is a pipe having an outlet opening with a first diameter, an inlet opening with a second diameter, and a choke having a third diameter, the third diameter less than the first diameter and the second diameter, and wherein the first diameter of the outlet opening diameter is between 0.1 mm and 5.0 mm.
19. A method for eradication of insects, insect larvae, and insect eggs, the method comprising the steps of: providing an applicator having a handle configured to be held by a user, the applicator adapted to be moved by the user over an area to be treated, a plurality of nozzles disposed on the applicator, the plurality of nozzles spaced apart from the handle of the applicator and arranged in an array including a plurality of rows of the nozzles and a plurality of columns of the nozzles, the plurality of columns defining multiple radial planes, a gas source, and a cold plasma generator in electrical communication with a power supply, and in fluid communication with the plurality of nozzles and the gas source, the cold plasma generator configured to generate cold plasma from the gas source and to expel a plurality of cold plasma plumes through the plurality of nozzles that combine to form a cold plasma field, the cold plasma field generated at a power and a volumetric flow sufficient for the eradication of the insects from the area to be treated; generating the cold plasma field with the cold plasma generator; and moving the applicator adjacent the area to be treated, whereby the cold plasma field is caused to contact and kill at least one of the insects, the insect larvae, and the insect eggs.
20. The method of claim 19, wherein the area to be treated is disposed beneath a layer of material, and the applicator is moved above the layer of material, whereby the cold plasma field extends to beneath the layer of material.
21. The method of claim 1, wherein the plurality of columns defining multiple radial planes include a first adjacent plane and a second adjacent plane that define complementary angles.
22. The method of claim 1, wherein each angle of the complementary angles is between about 25 degrees and about 65 degrees.
Description
DRAWINGS
[0021] The above, as well as other advantages of the present disclosure, will become readily apparent to those skilled in the art from the following detailed description, particularly when considered in the light of the drawings described herein.
[0022]
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DETAILED DESCRIPTION
[0032] The following detailed description and appended drawings describe and illustrate various embodiments of the invention. The description and drawings serve to enable one skilled in the art to make and use the invention and are not intended to limit the scope of the invention in any manner. In respect of the methods disclosed, the order of the steps presented is exemplary in nature, and thus, is not necessary or critical unless otherwise disclosed.
[0033] As used herein, the term “cold plasma” refers to a partially ionized gas comprising ions, electrons, ultraviolet photons and reactive neutrals such as radicals, excited and ground state molecules.
[0034] As used herein, the term “insect” broadly refers to insects, insect larvae, and insect eggs. In particular examples, the insects are from the Cimicidae insect family (i.e., bed bugs). However, it should be appreciated that the eradication of insects from other insect families is also contemplated and may therefore be included within the scope of this disclosure.
[0035] One suitable device and method for generating cold plasma was described in U.S. Pat. No. 9,993,282 to Sheperak, the entire disclosure of which is hereby incorporated herein by reference. The Sheperak device has a hollow electrode having a sealed end and an open end, and at least one aperture in the hollow electrode. The electrode is configured to generate an electron beam from the sealed end of the electrode. The electrode is axially disposed within a tube. The tube is configured for establishing a shaped plasma sheath for directing the electron beam formed by the electrode. The at least one aperture in the electrode permits flow of introduced gas through both the electrode and a surrounding gap formed between the electrode and the tube such that the gas flows in a laminar manner to establish a waveguide for the electron beam. A gas supply is connected to the open end of the electrode. A power supply is connected to the electrode for energization of the plasma sheath and establishment of the electron beam such that the plasma sheath contains and directs the electron beam. The power supply is configured to power the device in a power range of from about 5 W to about 30 W. Although use of the Sheperak device is described, it should be understood that other suitable devices and methods for generating cold plasma are contemplated and may also be used within the scope of the present disclosure.
[0036] As shown in
[0037] The applicator 102 is configured to be moved by a user (not shown) over an area to be treated 105. The area to be treated 105 may include common household structures and materials that are infested with the at least one insect 101. Nonlimiting examples of structures and materials include carpets, mattress ticking, sheets, cotton cloths, and other fabrics. It should be appreciated that other structures and materials may be included in the area to be treated 105.
[0038] As will be described in further detail below, the at least one insect 101 is eradicated where the applicator 102 is moved over it by the user, as shown in
[0039] Referring now to
[0040] In some embodiments, the applicator 102 is a wand 138, for example, as shown in
[0041] In other embodiments, the applicator 102 further includes a plurality of wheels 128, for example, as shown in
[0042] While still referring to
[0043] It should be appreciated that the plurality of nozzles 106 are disposed on the applicator 102. Each of the plurality of nozzles 106 is configured to expel a plurality of cold plasma plumes 114 to the area to be treated 105, for example, as shown in
[0044] Now referring to
[0045] In a particular example, as shown in
[0046] In some instances, the distance Y and the distance X are not the same. In more particular instances, the distance Y and the distance X are the same. In most particular instances, the distance X and the distance Y is at least two and one-half millimeters (2.54 mm). Although this distance Y and distance X has been shown to be useful, one skilled in the art may select different distances for the distance Y and the distance X, as desired.
[0047] In other embodiments, as shown in
[0048] With reference to
[0049] While still referring to
[0050] In specific examples, the first diameter D1 of the outlet opening 152 is between one-tenth of a millimeter (0.1 mm) and about five millimeters (5 mm). In more specific examples, the first diameter D1 of the outlet opening 152 is about two millimeters (2 mm). While this first diameter D1 has shown to be useful, a person skilled in the art may select other dimension, as desired.
[0051] The gas source 108 is configured to supply the cold plasma generator 110 to generate cold plasma, as shown in
[0052] In the example of the pump as the gas source 108, the pump may be in communication with atmospheric air, which in turn is used to generate the cold plasma. One skilled in the art may select suitable types of air pumps for use with the system 100, as desired.
[0053] In further examples, an elongate flexible hose 126 is disposed between the gas source 108 and the cold plasma generator 110, for example, as shown in
[0054] While still referencing
[0055] The cold plasma generator 110 is in electrical communication with the power supply 112, as shown in
[0056] In particular examples, the power supply 112 has a power output rating between ten watts (10 W) and forty watts (40 W). In addition, the power supply 112 has a voltage rating between 100 volts (100 V) to 230 volts (230 V). In most particular examples, the power supply 112 has a power output rating of about twenty-five watts (25 W) and a voltage rating of 110 volts (110 V). One skilled in the art may select other suitable power output ratings and other suitable voltage ratings within the scope of the present disclosure.
[0057] The cold plasma generator 110 is configured to generate cold plasma using the gas source 108 and the power supply 112, thereby also expelling the plurality of cold plasma plumes 114 through the plurality of nozzles 106, as shown in
[0058] Desirably, the plurality of cold plasma plumes 114 has a plume temperature that is below the autoignition temperature or kindling point of the common household structures and materials, like cotton or wool, in the area to be treated 105, while still being capable of eradicating the at least one insect 101. This effectively permits the user to dispose the applicator adjacent to the common household structures and materials in the area to be treated 105 without the concern of having the materials and structures ignite, while still eradicating the at least one insect 101.
[0059] In specific examples, the plume temperature of the plurality of cold plasma plumes 114 is between about seventy degrees Fahrenheit (70° F.) and about 120 degrees Fahrenheit (120° F.). In more specific examples, the plume temperature of the plurality of cold plasma plumes 114 is about ninety-five degrees Fahrenheit (95° F.). While this plume temperature has been shown to be useful, it should be appreciated that plume temperature is scalable by a skilled artisan, as desired.
[0060] Now referencing
[0061] Conveniently, the cold plasma field 116 can be utilized to eradicate the at least one insect 101, even where the common household structures and materials are between the at least one insect 101 and the applicator 102, as shown in
[0062] The cold plasma field 116 is generated at a volumetric flow sufficient to eradicate the at least one insect 101. In particular examples, the volumetric flow of the plurality of cold plasma plumes 114 through the plurality of nozzles 106 to form the cold plasma field 116 is between one cubic foot per minute (1 cfm) and ten cubic feet per minute (10 cfm). In more particular examples, the volumetric flow is about five cubic feet per minute (5 cfm). It should be appreciated that a skilled artisan may adjust the volumetric flow for a given application.
[0063] Without being bound to a particular belief, it is believed that a lethal combination of at least one of the charged particles, the free radicals, the UV radiation of the cold plasma field 116, the volumetric flow of the cold plasma field 116, and the plume temperature of the plurality of cold plasma plumes 114 is capable of eradicating the at least one insect 101. It should be appreciated that the at least one insect may be eradicated immediately upon contact with the cold plasma.
[0064] Referring now to
[0065] While still referring to
[0066] Desirably, the applicator 102 is safe to use on the common household structures and materials in the area to be treated 105, such as wool and cotton. This is because the plume temperature of the plurality of cold plasma plumes 114 is below the kindling point of such common household materials and structures.
[0067] In addition, and as mentioned previously, the cold plasma field 116 can pierce through the common household structures and materials in the area to be treated 105, as shown in
[0068] The following examples are presented for the purposes of illustrating the invention.
EXPERIMENTAL
[0069] A test of the system 100 and the method 200 was conducted to determine if the cold plasma field 116 was effective in eradicating adult bed bugs, as shown below in TABLE 1. The test was conducted with the gas source 108 having a gas flow between five cubic feet per minute (5 cfm) and ten cubic feet per minute (10 cfm). Also, the power supply 112 had a power rating between twenty-five watts (25 W) and thirty-five (35 W). In addition, the venturi nozzle 148 was a distance away from the adult bed bugs. This distance was between three centimeters (3 cm) to twenty-five millimeters (25 mm).
TABLE-US-00001 TABLE 1 Test Number Material Results 1 Carpet Killed 2 Through cotton Killed 3 Mattress ticking Killed 4 Through glass Killed 5 Through glass tube Killed 6 Through plastic tube Killed 7 Through carpet Killed 8 Through mattress ticking Killed
[0070] As shown in TABLE 1, the cold plasma field 116 with the venturi nozzle 148 was effective at killing bed bugs immediately following treatment, more specifically, none of bed bugs survived the exposure. Advantageously, the cold plasma field 116 was able to kill the bed bugs through several different materials. In addition, the cold plasma did not ignite the different materials.
[0071] Another test of the system 100 and method 200 was conducted to determine how effective the cold plasma field 116 was at killing bed bug eggs, as shown below in TABLE 2. The beg bug eggs were treated with the cold plasma field 116, and then subsequently checked to determine how many still were able to hatch.
TABLE-US-00002 TABLE 2 Treatment Type Number of eggs Number of eggs hatched Control 18 17 Cold plasma 16 0 Cold plasma 7 0 Cold plasma 17 0 Cold plasma 13 1
[0072] With reference to TABLE 2, the cold plasma field 116 was very effective at preventing the bed bugs eggs from hatching. Only one (1) out of fifty-three (53) eggs were able to still hatch. Desirably, this demonstrates that the cold plasma field 116 is not only useful at destroying adult bed bugs, but also useful at preventing beg bugs from hatching.
[0073] Advantageously, the system 100 and method 200 eradicates the at least one insect 101, even where the common household structures and materials are disposed between the at least insect 101 and the applicator 102. In addition, and desirably, the plurality of cold plasma plumes 114 and the associated cold plasma field 116 do not ignite the common household structures and materials in the area to be treated 105, thereby militating against risk of harm to humans and pets.
[0074] While certain representative embodiments and details have been shown for purposes of illustrating the invention, it will be apparent to those skilled in the art that various changes may be made without departing from the scope of the disclosure, which is further described in the following appended claims.