Apparatus for Rejection / Control of Pests for Areas, and the Use Thereof
20180070556 ยท 2018-03-15
Inventors
Cpc classification
A01M29/26
HUMAN NECESSITIES
A01M19/00
HUMAN NECESSITIES
Y02A40/81
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
A01K61/60
HUMAN NECESSITIES
A01M1/24
HUMAN NECESSITIES
International classification
A01K3/00
HUMAN NECESSITIES
A01M29/26
HUMAN NECESSITIES
A01K61/60
HUMAN NECESSITIES
A01M19/00
HUMAN NECESSITIES
Abstract
It is disclosed a device for controlling and/or euthanizing vermin or pests for preventing such vermin or pests from entering into a geographical area or into a building, wherein the device comprises at least one completely or partially uninsulated electrically conducting wire or conductor connected to an electrical current source, providing controlled electrical pulses to said conductor or wire in the form of pulses or pulse trains. The device may be used in a method for controlling the access of pests/vermin to a geographical location, building or property wherein the electrically conducting wire(s) lead(s) an electrical current with an amperage of not less than 0.0001 A. The device and method is particularly suited for removing/controlling pests/vermin on land.
Claims
1. A process to be performed on land for controlling the proliferation of pests/vermin in a geographical area, building or property by using an electrical device comprising a source for electrical energy and at least one uninsulated wire conducting said electrical energy, wherein the voltage in said electrically conducting wire is selected in such a way that there is established an electrical field between said wire and the ground or between said electrically conducting wire and at least one second wire with an opposite polarity than the first electrically conducting wire or zero charge (ground), and wherein the distance between said first electrically conducting wire and the grounded item with zero charge (ground) or opposite polarity is selected in such a way that any introduction of a potentially electrically conducting body between said first wire and said grounded object or said second wire with opposite polarity establishes a spark travelling between said electrical first wire and the grounded item or between said first electrically conducting wire and said second wire with opposite polarity.
2. The process according to claim 1, wherein said electrically conducting wire(s) is/are placed at ground level.
3. The process according to claim 1, wherein the distance between said electrically conducting wire(s) and said grounded object or wire with opposite polarity is selected from intervals up to 7 m.
4. The process according to claim 1, wherein said electrically conducting wire(s) lead(s) an electrical current with an amperage of not less than 0.0001 A.
5. The process according to claim 4, wherein said current is a direct current (DC) type.
6. The process according to claim 5, wherein said current originates from a battery or from a solar cell panel.
7. The process according to claim 4, wherein said current is of an alternating current (AC) type.
8. The process according to claim 7, wherein said alternating current has a voltage of about 110 V, 220 V or 400 V.
9. The process according to claim 8, wherein the electrical current has a frequency of about 50-60 Hz.
10. The process according to claim 4, wherein the current is pulsed at a maximum current strength at regular intervals of up to 10,000 pulses per minute.
11. The process according to claim 10, wherein the electrical pulses per minute is in the range of 0-10, 10-20 or 30-50 pulses per minute, or from 50 to 200 pulses per minute, or from 700 to 1000 pulses per minute.
12. The process according to claim 4, wherein the current is pulsed with a pulse variation of up to 120 pulses per minute, from 10 to 60 pulses per minute, from 10 to 40 pulses per minute, from 30 to 40 pulses per minute or from 50 to 60 pulses per minute, wherein the pulses each have a duration of 2.8 sec.
13. The process according to claim 12, wherein the electrical pulses are conducted in pulse trains.
14. The process according to claim 13, wherein the duration between each pulse train is from 2 seconds and above.
15. The process according to claim 14, wherein the number of pulses in a pulse train is within the range 3-50 pulses per train.
16. The use of the process according to claim 1 for preventing rodents from entering said geographical area on land, said building and/or said property.
17. The use according to claim 16, wherein said rodents are rats.
18. The use of the process according to claim 1 for preventing insects from entering said geographical area on land, said building and/or said property.
19. The use according to claim 18, wherein said insects are ants, beetles, grasshoppers and/or wasps.
20. A process to be performed at sea for controlling the proliferation of pests/vermin in a geographical area or property by using an electrical device comprising a source for electrical energy and at least one uninsulated wire conducting said electrical energy, wherein the voltage in said electrically conducting wire is selected in such a way that there is established an electrical field between said wire and the surrounding water or between said electrically conducting wire and at least one second wire with an equal or opposite polarity as the first electrically conducting wire, and wherein the distance between said first electrically conducting wire and the other wire(s) is selected in such a way that any introduction of a potentially electrically conducting body between said first wire and said object or said second wire establishes a spark travelling between said electrically conducting first wire and said second wire with opposite polarity.
21. The process according to claim 20, wherein the distance between said electrically conducting wire(s) and wire with equal or opposite polarity is selected from intervals up to 7 m.
22. The process according to claim 20, wherein said electrically conducting wire(s) lead(s) an electrical current with an amperage of not less than 0.0001 A.
23. The process according to claim 22, wherein said current is a direct current (DC) type.
24. The process according to claim 23, wherein said current originates from a battery or from a solar cell panel.
25. The process according to claim 22, wherein said current is of an alternating current (AC) type.
26. The process according to claim 25, wherein said alternating current has a voltage of about 110 V, 220 V or 400 V.
27. The process according to claim 25, wherein the electrical current has a frequency of about 50-60 Hz.
28. The process according to claim 22, wherein the current is pulsed at a maximum current strength at regular intervals of up to 10,000 pulses per minute.
29. The process according to claim 28, wherein the electrical pulses per minute is in the range of 0-10, 10-20 or 30-50 pulses per minute, or from 50 to 200 pulses per minute, or from 700 to 1000 pulses per minute.
30. The process according to claim 22, wherein the current is pulsed with a pulse variation of up to 120 pulses per minute from 10 to 60 pulses per minute, from 10 to 40 pulses per minute, from 30 to 40 pulses per minute or from 50 to 60 pulses per minute, wherein the pulses each have a duration of 2.8 sec.
31. The process according to claim 30, wherein the electrical pulses are conducted in pulse trains.
32. The process according to claim 31, wherein the duration between each pulse train is from 2 seconds and above.
33. The process according to claim 32, wherein the number of pulses in a pulse train is within the range 3-50 pulses per train.
34. The use of the process according to claim 20 for preventing salmon lice from entering said area at sea.
35. The use of the process according to claim 20 for preventing barnacles from fastening to the hulls of ships.
36. The use of the process according to claim 20 for preventing sharks from entering said area at sea.
Description
DESCRIPTION OF ACCOMPANYING DRAWINGS
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[0081] In all figures like reference numerals refer to like elements of the device of the invention unless something else is specifically indicated. Reference symbols + and refers to the possible polarization of energized power lines (if DC is used). By alternating the polarization shift, so that the reference symbols + and by AC only shows polarization in the facility at a given time.
DETAILED DESCRIPTION OF EMBODIMENTS OF THE INVENTION
[0082] Example 1: This example refers to a device which is shown in
[0083] The experienced electrical impulses are perceived as a danger to rodents and other pests/insects. Animals are more sensitive to electricity than humans. If people or larger animals still bump into the product, they will get an electric shock from the device. This is neither dangerous for children/people or pets, but it will be perceived as uncomfortable. It is also possible to add protection at the front of the electrical wiring so that it reduces the risk of children and pets get an electrical shock.
[0084] Example 2: The wiring map for live wires in the embodiment shown in this example refers to
[0085] For both Example 1 and Example 2 it may be noted that any contact with either bare wire with electrical access to ground (4) and touch of at least two bare wires (1, 2, 3) at the same time will give an electrical shock.
[0086] Example 3: The wiring map for electric wires (1) is in the embodiment shown in this example the same as in examples 1 and 2, and refer to
[0087] Example 4: This example refers to the embodiment shown in
[0088] Example 5: This example refers to the embodiment shown in
[0089] It is also possible to design obstacles (7) as electric fences that are connected to electrical activators of the electrical grids (1, 2, 3). This embodiment is also intended to prevent pests from infiltrating, for example, an industrial area.
[0090] Example 6: This example refers to the embodiment shown in
[0091] Alternatively it is in such an embodiment possible to include in the sewage system fans that will remove or dilute toxic and/or explosive gases. In many older sewage systems such fans already exist. The fans may additionally be coupled or linked to gas detectors. Relevant gases may be sulphurous gases (H.sub.2S, SO.sub.2), alkyl gases or fumes such as methane, ethane, propane or other gases such as hydrogen, etc. When such gases are detected the electrical system according to the invention may be deactivated either manually or automatically while the possibly existing fans will be activated.
[0092] Example 7: This example refers to the embodiment shown in
[0093] Example 8: This example refers to an alternative embodiment of the device shown in Example 6, also depicted in
[0094] When using the device of the invention in plants where there may be flammable and/or explosive gases, it is desirable to include a gas meter that monitors the presence of any combustible gas. Upon detection such gas may be removed by using detectors in the actual plant being connected to blowers that can remove the combustible gas before the power is switched on to avoid any fires or explosions.
[0095] The device or system according to the present invention has been explained through the examples and the general disclosure supra. Further examples of locations where the device/system according to the present invention may be used could be the following: [0096] In a sewer system wherein [0097] A short-circuit is established through the sewer fluid, [0098] Detectors checking the gas level are used prior to activating the system, [0099] A direct communication with the user of the system or equipment is established, [0100] The system is connected to fans already existing in the sewage system and being activated when the registered gas level rises beyond a pre-determined level, [0101] May be connected in series and be established in an inter-connected system and may be moved or exist permanently with a voltage of 12 V or 220 V AC or DC. [0102] In an aquatic environment wherein [0103] The system is adapted to being used in the sea and being adjusted in one embodiment to reject or kill jellyfish being an increasing problem, [0104] Establishes a short-circuit through the water euthanizing the jellyfish and being performed by using e.g. a trawler such as a shrimp trawler, [0105] Alternatively for the protection of bathing beach areas where a fence is mounted under water, [0106] The geographical areas mentioned supra are protected from different aquatic animal species, [0107] Sluices for salmon lice may be established with an applied current adjusted for salmon lice. [0108] In gardens and recreational areas such as parks, playgrounds, etc. [0109] The system may reject/dismiss vermin and pests from such areas thereby solving problems associated with waste and food litter being eaten by the pests/vermin, [0110] examples of relevant pests being scorpions, snakes, squirrels, rats, mice, cats, etc. [0111] In existing buildings or buildings under construction for rejecting termites, ants such as carpenter ants, beetles, cockroaches, etc. as well as other land-dwelling pests mentioned supra such as gophers, moles, rats, mice, lemmings, etc. [0112] The system comprising a mesh or netting driven into the ground and including a sprinkler system for keeping the ground wet or moist for providing an improved effect to the system by increasing the electrical conductivity of the ground. [0113] In silos or corn and grain storing facilities for preventing rats and mice from entering such facilities. [0114] In camping and tenting locations for preventing scavengers and wild animals from entering such locations. [0115] In boats for preventing growth or attachment of sea organisms on the boat's hull. [0116] In private or public garbage disposal locations for preventing scavengers such as rats, mice, badgers, raccoons, etc from entering such locations. [0117] In harbors for preventing the infestation of jellyfish, of mollusks or sea-shells, of carbuncles and other growths appearing on under-water structures in harbors an representing a potential possibility of corresponding organisms and offspring thereof to spread to vessels and boats docked at the harbor.
[0118] In one embodiment the device according to the present invention includes a strip of cloth with a width of 30 cm and of an arbitrary length, e.g. 7 m. Across the strip and in the longitudinal direction of the strip, there run five evenly spaced electrically conducting wire mesh strips with a width of 4 cm. Along each of the longitudinal edges of the cloth strip there are mounted evenly spaced eye rings for securing the strip to an object, e.g. a foundation for a building, a fence, around a garbage disposal bin or area, as an integrated part of the lower section of a tent, etc. Alternatively, the cloth strip may be secured by other means, e.g. Velcro, magnets, by securing strips, through lacing, etc. The electrically conducting strips of the cloth strip are isolated from on another and may be connected to the positive or negative pole of the relevant electrical source. It is preferred that the electrical strip located closest to the ground is connected to the positive pole of the electrical source since the ground may be considered as a source for free electrons, i.e. a negative pole, having as a consequence that animals touching the ground and the lowest electrically conducting strip or mesh simultaneously, will experience an electrical shock. By alternating the polarity of the electrically conducting strips on the cloth strip, if the animal is not daunted by this initial shock, and continues climbing the cloth strip, it will once again experience a corresponding shock when it connects the lowest and next electrically conducting strip across the cloth strip, etc. until it has reached the top of the cloth strip (presumably the animal has lost its nerve, let go of the strip and fled the location long before).
[0119] If, as an example, the cloth strip is secured to a metal fence around a storage building, a garbage disposal area, a kindergarten or daycare center, etc. and the topmost electrically conductive strip is connected to the metal fence, the metal of the fence will function as an inherent negative pole providing free electrons, and the animal will ultimately get the last electrical shock from the device according to the present invention when departing from the cloth strip.
[0120] One or both of the longitudinally running edges of the cloth strip may in an alternative embodiment, be permanently connected to a metal strip or bar providing a grounding possibility for one or both of the uttermost electrically conducting strips. The cloth strips may be combined lengthwise through clips connecting the oppositely located electrically conducting strips of the individual cloth strips to ach other.
[0121] Example 9: This example relates to placing a device according to the invention in a mouthpiece of a vacuum cleaner. In such a mouthpiece the electrically conducting wires are located around the suction opening of the mouthpiece, e.g. in concentric circles around the suction opening. By pulsing a current through the electrically conducting and non-insulated wires of the device, bugs, mites, and other vermin living or hiding in upholstery, clothing, sheets, etc. that are vacuumed will be euthanized or shocked and will more easily be removed through the vacuuming process. In such a device the current will be regulated to be lethal for the bugs/vermin but barely noticeable to humans.
[0122] Example 10: This example relates to a device for removing salmon lice from cultivated salmonides. The device comprises a number of tubes connecting at least two fish cages/nets to each other. Said tubes are equipped with brushes operating in a location in the tubes wherein a device according to the present invention is positioned for sending a current between the poles of a capasitor. The fish are ion one embodiment pumped from one fish farming net to the next one through said tubes (for gaining control of which fish that have been subjected to the device according to the invention. As explained supra, when fish (infected with salmon lice) pass between the poles of the capacitor, a spark will be passed between the poles of the capasitor on account of the reduced distance between the bodies passing the current and being provided by the fish (and the attached salmon lice) passing between said poles. When a current is passed through the fish, the salmon lice will experience an electric shock as well, and will loosen their grip on the fish. The function of the brushes is thus to remove the stunned salmon lice that have not let go of the fish in the electrocuting process. With this combined electrocuting and brushing action up to 100% of the salmon lice may be removed from the fish. It is in this example important to regulate the amperage and voltage of the current so as not to kill any significant amount of the infected fish. A loss of about 5% of the fish and less is acceptable in view of the situation that a much larger percentage of the fish would have been killed by the salmon lice over time without any treatment. It may also be possible to combine the electrical treatment of the farmed fish against salmon lice with regular chemical treatment for salmon lice. In that case the amount of the toxic substances may be reduced for removing the salmon lice.
[0123] An alternative to this embodiment is shown in
[0124] Another embodiment and use of the device according to the present invention is shown in
[0125] Yet another embodiment of the device according to the present invention is shown in
[0126] In
[0127] Example 11: In this example a device according to the present invention is placed at the surface of a roller to be towed after a vehicle, e.g. a tractor (31). An example of such an embodiment is shown I
[0128] Another way to achieve this goal is to drive electrically conducting poles into the ground in the relevant field/crop field and conduct electrical pulses as the ones explained supra, through the poles. In this way rodents such as moles or gophers will be scared away from the geographical area where the electrical pulses are noticed by the animals.
[0129] In