AU2014200097A1 - Method of and apparatus for repelling aquatic creatures - Google Patents

Method of and apparatus for repelling aquatic creatures Download PDF

Info

Publication number
AU2014200097A1
AU2014200097A1 AU2014200097A AU2014200097A AU2014200097A1 AU 2014200097 A1 AU2014200097 A1 AU 2014200097A1 AU 2014200097 A AU2014200097 A AU 2014200097A AU 2014200097 A AU2014200097 A AU 2014200097A AU 2014200097 A1 AU2014200097 A1 AU 2014200097A1
Authority
AU
Australia
Prior art keywords
charge storage
water
microcontroller
pulse
storage devices
Prior art date
Legal status (The legal status 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 status listed.)
Abandoned
Application number
AU2014200097A
Inventor
Carl Marthinus Becker
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
Individual
Original Assignee
Individual
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
Priority claimed from AU2007305739A external-priority patent/AU2007305739A1/en
Application filed by Individual filed Critical Individual
Priority to AU2014200097A priority Critical patent/AU2014200097A1/en
Publication of AU2014200097A1 publication Critical patent/AU2014200097A1/en
Abandoned legal-status Critical Current

Links

Classifications

    • YGENERAL 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
    • Y02TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
    • Y02ATECHNOLOGIES FOR ADAPTATION TO CLIMATE CHANGE
    • Y02A40/00Adaptation technologies in agriculture, forestry, livestock or agroalimentary production
    • Y02A40/80Adaptation technologies in agriculture, forestry, livestock or agroalimentary production in fisheries management
    • Y02A40/81Aquaculture, e.g. of fish

Landscapes

  • Water Treatment By Electricity Or Magnetism (AREA)

Abstract

A device (10) for controlling aquatic animals in a body of water, comprising: at least one first (108) and one second electrode (109), connected in a circuit, for immersion 5 in a body of water, such that the water, in use, completes the circuit; two or more discretely connected electrical charge storage devices; a charging circuit for charging the charge storage devices from a source of electrical energy; control means for generating control signals; and a controllable switch element for each charge storage device acting under the control of the control means; the control means being 0 configured to switch each switch element sequentially to connect the charge storage devices to the electrodes in response to the control signals, to discharge the charge storage devices sequentially; and further configured to create, with each such discharge, a pulse of electrical current flow in the body of water between the electrodes. i/0s <6 (9q

Description

1 METHOD OF AND APPARATUS FOR REPELLING AQUATIC CREATURES Background to the invention [0001] This invention relates to a method of and apparatus for repelling aquatic creatures such as elasmobranchs and sharks in particular. [0002] The invention finds particular application in the protection of surfers (or surfboards) and personal watercraft such as surf skis, paddle skis and the like from shark attack and it will be described with reference to a surfboard application by way of non-limiting example. [0003] US patents no's. 3,686,280 (Holt) and 3,164,172 (Hicks), describe shark repelling devices utilising pulse generators producing an electric field to divert sharks from the proximity of the generating apparatus. These early devices are referred to in US patents no's. 3,822,403 (Hicks), 4,667,431 (Mendicino) and 4,211,980 (Stowell). [0004] The patent to Mendicino describes a device similar to a cattle prod or human crowd control tazor, but unlike these devices which are designed for mammals and which operate on high voltages (up to 40,OOOV) and amperages in the milliamp range, the device described by Mendicino provides a 1-5 Amp, 300V - 1 000V charge in an attempt to repel sharks. [0005] The patent to Stowell describes a method for repelling sharks by creating, about an electrode submerged in salt water, an electric field with a voltage gradient of sufficient magnitude to "overstimulate" (according to the patent) the nervous system of the shark. He describes a system which applies brief DC pulses to electrodes immersed in salt water with a relatively long delay between pulses (0,5 to 1 Oms pulses spaced to a repetition rate of between 6 and 12Hz).
2 [0006] The patent to Hicks describes the use of current pulses to electrodes to create an electric field between the electrodes at a low frequency of approximately 70 cycles per minute. [0007] US Patent No. 5,566,643 - Charter (Natal Sharks Board) is based on the observation that devices that utilise unidirectional current flows, such as the devices described above, tend to develop a positively charged region about the device cathode. Referring to the research of Dr. Kalmijn and others (Dr. Adrianus J Kalmijn - Woods Hole Oceanographic Institution and the US Office of Naval Research) which tends to show that such a positively charged region serves as an attractant to sharks, the Charter patent describes a device that alternates the current flow between electrodes. [0008] The reference to prior art in this specification is not and should not be taken as an acknowledgment or any form of suggestion that the referenced prior art forms part of the common general knowledge in Australia or in any other country. [0009] In the specification the term "comprising" shall be understood to have a broad meaning similar to the term "including" and will be understood to imply the inclusion of a stated integer or step or group of integers or steps but not the exclusion of any other integer or step or group of integers or steps. This definition also applies to variations on the term "comprising" such as "comprise" and "comprises". Summary [0010] According to a first aspect there is provided a device for controlling aquatic animals in a body of water, comprising: at least one first and one second electrode, connected in a circuit, for immersion in a body of water, such that the water, in use, completes the 3 circuit; two or more discretely connected electrical charge storage devices; a charging circuit for charging the charge storage devices from a source of electrical energy; control means for generating control signals; and a controllable switch element for each charge storage device acting under the control of the control means; the control means being configured to switch each switch element sequentially to connect the charge storage devices to the electrodes in response to the control signals, to discharge the charge storage devices sequentially; and further configured to create, with each such discharge, a pulse of electrical current flow in the body of water between the electrodes. [0011] In the device of this aspect each charge storage device suitably discharges one electrical pulse and the number of pulses is determined by the number of charge storage devices. [0012] The control means is suitably constituted by a programmable microcontroller programmed to switch the device circuitry to recharge and discharge the charge storage devices repetitively at a predetermined repetition frequency, thereby to create repeating pulses of electrical current flow in the body of water between the electrodes, the pulses having a repetition frequency equal to the charge and discharge repetition frequency predetermined by the microcontroller. [0013] The microcontroller may be programmed to switch the device circuitry to recharge and discharge at least some of the charge storage devices in groups with predetermined intervals between each discharge, each group so discharged creating a train of pulses of electrical current flow in the body of water between the electrodes, thereby to create repeating pulse trains of electrical current flow in the body of water, the pulse trains having a repetition frequency equal to the charge and discharge repetition frequency predetermined by the microcontroller.
4 [0014] Each charge storage device suitably discharges one electrical pulse and the number of pulses in a pulse train is determined by the number of charge storage devices in the group of charge storage devices discharged as a group. [0015] In a further aspect, the device for controlling aquatic animals includes: a first set of charge storage devices constituted by one or more charge storage devices that, together, have a predetermined charge storage capacity; a second set of charge storage devices constituted by a plurality of charge storage devices, each having the same charge storage capacity as the total charge storage capacity of the first set of charge storage devices; a controllable switch element for the first charge storage device set; a controllable switch element for the second charge storage device set; the control means being adapted to switch the switch element associated with the first charge storage device set to connect the charge storage devices in the first set to the electrodes and, after a predetermined delay, to switch the switch element associated with the second charge storage device set to connect all the charge storage devices in the second set simultaneously to the electrodes, first to discharge the charge storage devices in the first set and, after the predetermined delay, to discharge the charge storage devices in the second set; and to create, with the first discharge, a pulse of electrical current flow between the electrodes in the body of water; and to create, with the second discharge, a higher energy pulse of electrical current flow between the electrodes in the body of water. [0016] In the device described immediately above, the pulse train is suitably a two-pulse train, but the number of pulses per pulse train can be increased by adapting the control means to switch the switch element associated with 5 the second charge storage device set to connect all the charge storage devices in the second set sequentially to the electrodes, to discharge the charge storage devices in the second set sequentially. [0017] The microcontroller is suitably programmed to charge and discharge the charge storage devices with a pre-programmed periodicity. [0018] In the aspect in which a pule amplitude is present, the pulse amplitude may be determined by the charge storage capacity of the charge storage devices, the pulses are separated from one another in pulse trains by a pulse interval determined by the microcontroller programming and the pulse trains are separated from one another by an interval, which interval is repetitive and determined by the microcontroller programming, thereby to determine the pulse train repetition frequency. [0019] The pulse train repetition frequency is suitably adjusted to fall within the known muscular stimulus discomfort range of the target animal and more suitably to maximize the muscle stimulation potential of the pulse train. [0020] The first pulse of each pulse train is suitably followed by a second, higher energy pulse. [0021] The first pulse of each pulse train of the device need not be a high energy pulse. It should simply have enough energy to stimulate the nervous system of the target animal and must be followed rapidly by a second, higher energy pulse. [0022] The device described herein is suitably adapted for installation on a personal watercraft, such as a surfboard, a surf ski, paddle ski or the like. [0023] In this aspect, the device may conveniently includes a pair of housings adapted for permanent installation in or on the watercraft, the 6 housings being connected to one another by a cable tray adapted for permanent installation in or on the watercraft, the cable tray being adapted to house a wiring harness and electrical connectors, one of the housings being adapted for housing a removable module containing the device circuitry; and the other housing being adapted to house a removable module containing the rechargeable power source. [0024] Each housing is suitably supplied with a cover plate that is adapted to serve as an electrode plate. [0025] In addition, the device may include dummy modules adapted to substitute for the circuitry and power source modules when shark protection is not required. [0026] A further aspect includes a method of controlling aquatic animals in a body of water comprising: connecting at least one first and one second electrode in a circuit adapted for immersion in a body of water, such that the water, in use, may complete the circuit; the circuit including two or more discretely connected electrical charge storage devices, a charging circuit for charging the charge storage devices from a source of electrical energy, control means for generating control signals and a controllable switch element for each charge storage device acting under the control of the control means; and programming the control means to switch each switch element sequentially to connect the charge storage devices to the electrodes in response to the control signals, to discharge the charge storage devices sequentially and to create, with each such discharge, a pulse of electrical current flow in the body of water between the electrodes.
7 Brief description of the drawings [0027] The invention will be further described with reference to the accompanying drawings in which: Figure 1 is an under plan view of a surfboard with a shark repellant device according to one aspect of the invention installed in the underside of the board; Figure 2 is a sectional side elevation on a line 2 - 2 in Figure 1; Figure 3 is a waveform diagram of the shark repellant device of one aspect of the invention; Figure 4 is an alternative waveform diagram of the shark repellant device of another aspect of the invention; Figure 5 is yet a further alternative waveform diagram of one aspect of a shark repellant device of the invention; Figure 6 is a schematic circuit diagram of one embodiment of the shark repellant device of the invention; and Figure 7 is a schematic circuit diagram of a second embodiment of the shark repellant device of the invention. Description of embodiments of the invention [0028] The drawings illustrate the installation of the device 10 of Figure 6 on a surfboard 100 as a means of protecting the user of the surfboard 100 against shark attack. [0029] It will be appreciated that the invention will find greater application than merely the protection of surfers (or surfboards) and personal watercraft and, with modification, can be used in a multiplicity of mobile and fixed installations. [0030] Figures 1 and 2 illustrate the device 10 of the invention installed on the underside of a surfboard 100, the device 10 consisting of a pair of 8 housings 102, 104 connected to one another by a cable tray 106. One of the housings 102, 104 is used to house the device circuitry which will be described below and the other of the housings 102, 104 is used to house a rechargeable power source. [0031] Each housing 102, 104 is supplied with a cover plate that doubles as an electrode plate 108, 109. [0032] A wiring harness located within the cable tray 106 connects the battery to the device circuitry. [0033] The battery and circuitry of the device are each constituted by separate, removable waterproof modules that can be inserted and locked into the housings 102, 104 installed in the surfboard 100 and connected in circuit with one another by way of suitable connectors on the modules and the wiring harness. When shark protection is not required, such as when the user is using the device in protected or safe water, the circuitry and battery modules can be substituted with lighter dummy modules that simply close up the housings 102, 104 in the board. [0034] The cable tray 106 and wiring harness are dimensioned to permit the electrode plates 108 109 an electrode spacing sufficient to provide an efficient discharge of electrical energy into the water in use. [0035] Figure 6 is a schematic circuit diagram or wiring diagram of one example of a shark repellant device 10 according to the invention which is intended for installation in or on a water craft, preferably a personal watercraft such as a surfboard, surf ski, paddle ski, kayak or the like. [0036] The electronic circuitry of the device 10 will be encapsulated in a waterproof housing, one example of which is described above and the device is intended for immersion in the water in which the water craft will be used, thereby to protect the user of the craft from shark attack.
9 [0037] The device circuitry can be categorised into functional blocks, which are described individually below. Energy source [0038] The circuitry of the repellant device 10 includes a source of energy such as a battery 12 connecting to power supply circuitry 14 by way of a connector 16. The battery 12 may be a Lithium Ion, Lithium Polymer, Nickel Cadmium or Nickel Metal Hydride cell or cell array with an output voltage of the order of 3 to 24 Volts. Power supply [0039] The power supply circuit 14 is constituted, in its simplest form, by a linear voltage regulator or a switch mode power supply 18 fed by the battery voltage. The power supply 18 regulates and generates the voltages required by the rest of the electronic circuitry to operate and function correctly. A voltage divider network is connected via resistors R1, R2 (22, 24) to an analog to digital (A/D) channel of a microcontroller 28 forming part of the microntroller circuitry of the device 10, to feed a battery state signal MEAS2 (26) to the microcontroller 28, thereby to allow the microcontroller 28 to monitor the state of the battery 12. Microcontroller and associated circuitry [0040] The microcontroller 28 constitutes the central control unit for the device circuitry. It provides the logic and control signals for all aspects of operation of the repellant device 10. [0041] After a reset, whether it is by battery replacement or by a forced reset by any means, the microcontroller 28 is programmed to set all the control signals to an initial reset state, determine whether there has been 10 any prior operation before reset and synchronize operations accordingly. [0042] A standard reset/brownout protection device 30 is included in the microntroller circuitry which can be used to force the microcontroller 28 into a reset state should the battery voltage drop below a predetermined operational threshold or if the battery is removed and another (recharged or new) battery 12 is connected in circuit. Capacitor charge circuitry [0043] In the embodiments illustrated in the drawings, the charge storage devices are constituted by capacitors. [0044] Referring first to Figure 6, the capacitor charging circuitry 32 includes four capacitors C2, C3, C4 and C5 (34, 36, 38, 40). [0045] After initial reset, the microcontroller 28 is programmed to continually charge the capacitors C2, C3, C4 and C5 (34, 36, 38, 40) to their working voltage, which is in the region of 25V to 90V. [0046] The capacitors C2, C3, C4, C5 (34, 36, 38, 40) are charged up by the microcontroller 28 switching ON transistor Q1 (42) which, in turn, switches field effect transistor FET-3 (44) ON by pulling its gate to CV. The microcontroller 28 drives the FET low side driver circuit 46 which, in turns drives the gate of FET-4 (48), which is turned OFF and ON with a pre programmed periodicity to charge the capacitors C2, C3, C4, C5 (34, 36, 38, 40) by means of the inductor Li (50). This arrangement of FET-4 (4) and inductor Li (50) forms the basis of a boost regulator circuit. [0047] A fast diode D2 (52) regulates the direction of charge into the capacitors C2, C3, C4, C5 (34, 36, 38, 40). [0048] The signal MEAS1 (58) formed by the resistors R4 and R6 (54, 56), 11 is applied to another of the A/D channels of the microcontroller 28. [0049] The microcontroller 28 terminates the process of charging the capacitors C2, C3, C4, C5 (34, 36, 38, 40) and turns FET-3 (44) OFF when the signal MEAS1 (58) reaches the required threshold, indicating that the capacitors C2, C3, C4, C5 (34, 36, 38, 40) are fully charged. This threshold value is programmed into the microcontroller 28. [0050] With the capacitors C2, C3, C4, C5 (34, 36, 38, 40) charged and the battery 12 connected, the capacitor charge circuitry 32 maintains a minimal charge of about 6V across the electrode connectors 68 (to which the device electrodes - not shown in Figure 6 - are connected) by keeping N-channel FET-1 (60) ON. [0051] With the device 10 not immersed in water, the device maintains an "out-of-water" state in which the charge across the electrode connectors 68 gives rise to a measurable current drain that, in turn, gives rise to a measurable, relatively constant decay of the signal MEAS1 (58). This rate of decay is programmed into the microcontroller 28 which measures the signal MEAS1 (58) continuously. If the device 10 is immersed or placed in water, the current drain across the electrodes value of the signal MEAS1 drops substantially and much faster than the pre-programmed rate. [0052] The microcontroller 28 is programmed to interpret this signal strength reduction as an indication that the device 10 has been immersed in water and, in response, switches the device 10 to an "in-water state" in which the device begins to operate normally. [0053] When the converse of the above occurs, that is when the signal decay at MEAS1 (58) reduces to normal (within the pre-programmed band), the microcontroller 28 switches the device 10 back to an "out-of-water state". In the out-of-water state, the device power requirement is minimal in order to maximise battery life.
12 Electrode discharge FET driver [0054] In the in-water state of the device and with the capacitors C2, C3, C4, C5 (34, 36, 38, 40) charged to the required voltage, the microcontroller 28 discharges capacitor C2 (34) by firing the FET high side driver 62 connected to N-channel FET-1 (60). [0055] With the water in which the device 10 is immersed completing the circuit, a pulse of electrical current is discharged between the electrodes connected to the electrode connectors 68, thereby to establish an electrical energy field in the body of water in which the device 10 is immersed for the duration of the pulse. [0056] This is a first pulse and between 1 ms (one millisecond) and 1 0Oms (one hundred milliseconds) after the firing of the first pulse, the microcontroller 28 discharges the capacitors C3, C4 and C5 (36, 38, 40) simultaneously by firing FET high side driver 64 connected to N-channel FET-2 (66) to discharge a second pulse of electrical current between the electrodes. This secondary pulse contains more energy than the first pulse, being the combined discharge energy of capacitors C3, C4 and C5 (36, 38, and 40). [0057] The microcontroller 28 is programmed to switch the device circuitry to recharge and discharge the capacitors C2, C3, C4, C5 (34, 36, 38, 40) repetitively at a predetermined repetition frequency, thereby to create repeating trains of pulses of electrical current flow in the body of water between the electrodes, the pulse trains having a repetition frequency equal to the charge and discharge repetition frequency predetermined by the microcontroller 28. [0058] The microcontroller 28 controls the device circuitry to continually charge the capacitors C2, C3, C4 and C5 (34, 36, 38, 40) to their working 13 voltage after every discharge and, with the device 10 in the in-water state, the cycle of charging and discharging of the capacitors C2, C3, C4, C5 (34, 36, 38, 40) simply repeats itself. As a result, the device 10 repeatedly discharges a train of pulses of electrical current through the electrodes to establish a pulsed electrical energy field in the water in which the device is immersed. [0059] In the device 10 described immediately above, the pulse train is a two-pulse train, but depending on power availability, the number of pulses per pulse train can be increased. [0060] This is illustrated in the pulse emission waveform diagrams of Figures 3 and 5. [0061] Figure 3 illustrates the normal mode two-pulse train referred to above and shows a series of pulse trains 70, made up of individual pulses 72 of electrical energy discharged between the electrodes of the device 10. The pulse amplitude is determined by the capacity of the capacitors C2, C3, C4, C5 (34, 36, 38, 40) and the pulses 72 are separated from one another by a pulse interval 74 determined by the microcontroller 28 programming which sets the firing time between firing of the capacitor C2 (34) and the capacitors C3, C4, C5 (36, 38, 40). The pulse trains 70 are separated from one another by an interval, which interval is repetitive and determined by the microcontroller 28 programming, thereby to determine the pulse train repetition frequency 76. [0062] The pulse train repetition frequency 76 is possibly not critical, as long as it is within the muscular stimulus discomfort range of the target animal. [0063] It is suggested however, that the delay between pulses 72 in a pulse train 70 (the pulse interval 74) should be timed to maximise the muscle stimulation potential of the proposed pulse train.
14 [0064] In this regard it is understood that, like all animals, the myo-neural physiology of elasmobranchs and sharks in particular, which is not fully researched as yet, operates on the basis that an increased pulse repetition rate (rather than an increase in the pulse amplitude) is used to transmit intensity of nervous system stimulation. [0065] This is the reason for the use of pulse trains 70 rather than single pulses. [0066] It is further understood that current thinking in respect of myo-neural physiology and nerve cell electrochemistry is to the effect that electrical nerve stimulation only commences when a certain threshold or nerve cell action potential is reached, at which point a membrane channel or gate opens briefly to allow sodium ions into the neuron. As this sodium gate closes, a similar membrane channel or potassium gate opens, releasing positively charged potassium ions and returning the cell to a negative charge. Since the potassium gate closes slowly, the cell becomes more negative than it was before the action potential, which keeps it from firing again for a brief period which is referred to as the refractory period. [0067] With this in mind, it is suggested that the first pulse 72 of each pulse train 70 of the device 10 need not be a high energy pulse. It should simply have enough energy to stimulate the nervous system of the target animal to start the opening the nerve cell sodium gates. The first pulse 72 must be followed rapidly by a second, higher energy pulse 72, preferably within the period in which the sodium gate is open. On the understanding that the nerve cell sodium gate "open time" is around 1 ms, it is suggested that the interval 72 between pulses in a pulse train should be about 1 ms. [0068] It is thought, however, that a pulse interval greater than 1 ms and anything up to about 1 0Oms, will not lead to any significant decrease in the stimulus potential of the second pulse 72.
15 [0069] Having regard to the refractory period of nerve cells referred to above, it is suggested that the pulse repetition frequency 76 must be greater than the refractory period, since no or substantially less nervous system stimulation will be possible within the refractory period. [0070] The device 10 of the invention can be scaled up to increase the number of pulses 72 in each pulse train 70 by simply increasing the number of capacitors beyond the capacitors C2, C3, C4, C5 (34, 36, 38, 40) illustrated. By incorporating additional capacitors or banks of capacitors, the device 10 can be adapted, for instance, to emit a five pulse pulse train 70.1 such as that illustrated in Figure 5. [0071] It will be appreciated that such a scaled up device will require substantially more electrical energy than the device described above, but on larger watercraft and in fixed installations, the supply of electrical energy need not be a limiting factor. Accelerometer and warning buzzer [0072] The device 10 is fitted with accelerometer and warning buzzer circuitry 78 which includes a warning buzzer 80 that is intended to provide an audible warning to indicate to the user that battery replacement or recharge is necessary. [0073] An accelerometer 82 is included to provide the microcontroller 28 with a form of motion sensing and is set to signal the microcontroller 28 in the event that the device 10 is subjected to motion above a pre programmed threshold, which would normally be indicative of the watercraft surfing a wave. In such a situation, shark attack is unlikely and the microcontroller 28 can be programmed to slow down the repetitive firing rate of the device 10 to conserve battery power.
16 [0074] This is illustrated in Figure 4 where the device is, at first, shown in an "active mode" with the electrodes emitting pulse trains 70 at the preprogrammed frequency 76. [0075] On receipt of the accelerometer signal, the microcontroller 28 switches the device 10 to a "passive mode" in which the microcontroller 28 switches the capacitors C2, C3, C4, C5 (34, 36, 38, 40) to emit single pilot pulses 84. The pilot pulses 84 can be emitted at a reduced pulse repetition frequency 70. [0076] As soon as the craft is at rest, indicating the user paddling or at rest in the water, the accelerometer signal to the microcontroller 28 will indicate that the device is subjected to motion below the pre-programmed threshold, in which event the microcontroller 28 will switch the device 10 back into active mode, thereby switching the microcontroller 28 to emit the preprogrammed pulse trains 70 at the preprogrammed frequency 76. Alternative device [0077] The device 110 illustrated and described with reference to Figure 7 is very similar to the device 10 illustrated and described with reference to Figures 1 to 6 and similar elements will not be described. Only the differences between the two circuits will be described in any detail. [0078] In the device 10 of Figure 6 the device circuitry and the battery are connected by at least 3 wires, which could create problems during insertion and removal of the battery and device circuitry. It also requires more complex (and therefore costly) manufacturing and assembly processes. [0079] This problem is rectified in the circuitry illustrated in Figure 7 by means of the additional circuitry 111 labelled "IN BOARD BATTERY CHARGE ENABLE".
17 [0080] The most important function of the IN BOARD BATTERY CHARGE ENABLE circuitry 111 however, is that it permits in situ or on-board charging of the battery 112 thereby obviating the need for removal of the battery 112 during bad weather or on sandy beaches, which provides opportunity for the ingress of sand or water and possible incorrect fitting of the battery 112. [0081] To permit on-board charging of the battery 112, the electrode plates 108, 109 on the surfboard 100 are formed with charging sockets 113, 115 that are unequally shaped or sized to prevent accidental incorrect charger connection. The charger (not shown) is fitted with two fly leads with banana-type plugs on the end of each of the leads. The banana plugs are unequally shaped or sized, complementally to the charging sockets 113, 115 to prevent accidental incorrect charger connection. To achieve this object, the fly leads and charging sockets 113, 115 are simply provided with different diameters, so that the negative lead cannot be inserted in the positive electrode and vice versa. [0082] The IN BOARD BATTERY CHARGE ENABLE circuit 111 is implemented such that a charger connected to the electrodes 108, 109 is given direct access to the battery 112 if the battery is flat, by supplying an electrical path directly to the battery. A diode D1 0 (117) provides a forward bias condition for the charging path directly from the electrode. FET -6 (119), by virtue of a biasing resistor, will be ON if the battery 112 is flat and act as a switch, thereby providing a direct electrical path to facilitate charging of the battery 112. [0083] When the device 110 is turned ON (when it is immersed in water) it is necessary to switch FET-6 (119) OFF so that energy pulses discharged at the electrodes 168 are not applied to and damage the battery 112. This is achieved by FET-7 (121) and an optical isolator or optocoupler 123. With the device 110 operating under normal conditions, the microcontroller 18 128 turns FET-7 (121) ON which turns the optocoupler 123 ON so that it acts as a switch that shorts the gate of FET-6 (119) to its drain, which ensures it is turned OFF, providing a high impedance path to prevent energy pulses from reaching the battery 112. [0084] As in the device 10, the microcontroller 128 constitutes the central control unit for the device circuitry. It provides the logic and control signals for all aspects of operation of the device 110. [0085] The capacitor charge circuitry 132 includes three capacitors C2, C3, C4 (134, 136, 138). After initial reset, the microcontroller 128 is programmed to continually charge the capacitors C2, C3, C4 (134, 136, 138) to their working voltage, which is in the region of 15V to 90V. [0086] The capacitors C2, C3, C4 (134, 136, 138) are charged up by the microcontroller 128 switching ON transistor Q1 (142) which, in turn, switches field effect transistor FET-3 (144) ON by pulling its gate to 0V. The microcontroller 128 drives the gate of FET-4 (148), which is turned OFF and ON with a pre-programmed periodicity to charge the capacitors C2, C3, C4 (134, 136, 138) by means of the inductor Li (150). This arrangement of FET-4 (4) and inductor Li (150) forms the basis of a boost regulator circuit. [0087] A fast diode D2 (152) regulates the direction of charge into the capacitors C2, C3, C4 (134, 136, 138). [0088] The signal MEAS1 (158) formed by the resistors R4 and R6 (154, 156), is applied to another of the A/D channels of the microcontroller 128. [0089] The microcontroller 128 terminates the process of charging the capacitors C2, C3, C4 (134, 136, 138) and turns FET-3 (144) OFF when the signal MEAS1 (158) reaches the required threshold, indicating that the capacitors C2, C3, C4 (134, 136, 138) are fully charged. This threshold 19 value is programmed into the microcontroller 128. [0090] In the device 10, the unit charges the discharge capacitors to about 6 Volts and monitors this voltage by turning on one of the discharge FETs. If this voltage sinks very quickly to 0 Volts, it is assumed that the device 10 has been immersed in water and the normal operation of the device 10 is resumed. In the device 110, this operation is replaced with a small bleeding circuit to achieve the same outcome instead of maintaining charge in the capacitors and switching the circuit continually into operational mode, which is a waste of energy if the device 110 is being transported. [0091] To achieve this in the device 110, the accelerometer 182 is used to trigger sampling of a signal MEAS3 (125), which will drop to a value very close to 0 Volts if the device 110 is immersed or submersed in water and which, otherwise (out of the water), will have a measurable value above a threshold. This signal is used to determine if the device 110 is in or out of the water. The MEAS3 signal 125 is formed by feeding the battery voltage through a high value resistor 127 and to a voltage divider network formed by resistors 129, 131. This signal is then fed through diode D8 (133) to the electrode 168.1. Diode D8 (133) provides protection to this circuitry when the device 110 is functioning normally and emitting pulses. [0092] The microcontroller 128 is programmed to interpret the MEAS3 (125) signal strength reduction as an indication that the device 110 has been immersed in water and, in response, switches the device 110 to an "in water state" in which the device 110 begins to operate normally. [0093] When the converse of the above occurs, that is when the signal decay at MEAS3 (125) reduces to normal (within the pre-programmed band), the microcontroller 128 switches the device 110 back to an "out-of water state".
20 [0094] The device 10 of Figure 6 fires a maximum of 2 pulses. In the device 110 of Figure 7, an additional firing stage is included which allows the device 110 to fire from one up to three pulses and any combination thereof. [0095] This is achieved by the inclusion of an additional discharge driver. [0096] In Figure 7 the blocks marked "LEVEL TRANSLATOR" (135, 137, 139) can be any type of switching element capable of ensuring that the P channel FETs (FET-1 (160), FET-2 (161) and FET-5 (163)) are OFF when a specific logic level is fed to them and ON when this logic level is reversed. The LEVEL TRANSLATORS (135, 137, 139) can be transistors, FETs or the like, provided they are capable of providing a bleed current to ensure that the FETs (FET-1 (160), FET-2 (161) and FET-5 (163)) are switched hard OFF and hard ON under control of the microcontroller 128. [0097] If a capacitor is allowed to discharge completely and then recharged, the inrush current (the instantaneous input current drawn by the capacitor when charged up from complete discharge) is substantially greater than the normal capacitor charging current drain. If the capacitor is not discharged below battery voltage, the reduction in the inrush current drain has been found to reduce the battery recharge requirements significantly so that a lot more useful work can be obtained on a single battery charge. [0098] In the device 10 of Figure 6, the microcontroller 28 is used to read the A/D converter during the discharge cycle to determine when to turn OFF the discharge FET in order to reduce the amount of inrush current into the discharge capacitor. [0099] To avoid the unnecessary battery drain caused by inrush current, the device 110 has a bias diode fed into each of the gates of the discharge FETs (FET-1 (160), FET-2 (161) and FET-5 (163)). The diodes D5, D6, D7 21 (165, 167, 169) provide a turn-off voltage to turn OFF each of the FETs (FET-1 (160), FET-2 (161) and FET-5 (163)) off when its source voltage is close to battery voltage, thereby leaving a charge in the capacitor equal to the battery voltage, thereby greatly enhancing battery charge utilisation. [00100] When the device 110 is immersed in water, the water completes the circuit and pulses of electrical current are discharged between the electrodes 168 to establish an electrical energy field in the body of water in which the device 110 is immersed, in a manner similar to that described above.

Claims (2)

  1. 2. The of claim 1, wherein each charge storage device discharges one electrical pulse and the number of pulses are determined by the number of charge storage devices.
  2. 3. The device of claim 1 or claim 2, wherein the control means compromising a programmable microcontroller programmed to switch the device circuitry to recharge and discharge the charge storage devices repetitively at a predetermined repetition frequency, wherein to create repeating pulses of electrical current flow in the body of water between the electrodes, the pulses having a repetition frequency equal to the charge and discharge repetition frequency predetermined by the microcontroller.
AU2014200097A 2006-10-11 2014-01-08 Method of and apparatus for repelling aquatic creatures Abandoned AU2014200097A1 (en)

Priority Applications (1)

Application Number Priority Date Filing Date Title
AU2014200097A AU2014200097A1 (en) 2006-10-11 2014-01-08 Method of and apparatus for repelling aquatic creatures

Applications Claiming Priority (3)

Application Number Priority Date Filing Date Title
ZA2006/08462 2006-10-11
AU2007305739A AU2007305739A1 (en) 2006-10-11 2007-10-11 Method of and apparatus for repelling aquatic creatures
AU2014200097A AU2014200097A1 (en) 2006-10-11 2014-01-08 Method of and apparatus for repelling aquatic creatures

Related Parent Applications (1)

Application Number Title Priority Date Filing Date
AU2007305739A Division AU2007305739A1 (en) 2006-10-11 2007-10-11 Method of and apparatus for repelling aquatic creatures

Publications (1)

Publication Number Publication Date
AU2014200097A1 true AU2014200097A1 (en) 2014-01-23

Family

ID=49956593

Family Applications (1)

Application Number Title Priority Date Filing Date
AU2014200097A Abandoned AU2014200097A1 (en) 2006-10-11 2014-01-08 Method of and apparatus for repelling aquatic creatures

Country Status (1)

Country Link
AU (1) AU2014200097A1 (en)

Cited By (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN113853113A (en) * 2019-09-30 2021-12-28 炎重工株式会社 Device for selecting aquatic organisms

Cited By (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN113853113A (en) * 2019-09-30 2021-12-28 炎重工株式会社 Device for selecting aquatic organisms

Similar Documents

Publication Publication Date Title
US8456310B2 (en) Method of and apparatus for repelling aquatic creatures
AU669806B2 (en) Control of sharks
US5911198A (en) Animal stimulator
DE69434595T2 (en) DEVICE FOR REGENERATING AND STORING LOAD BATTERIES
EP2164152A3 (en) Method for pulsed charging of a battery in a standalone system comprising a supercapacitor
CN102055184B (en) Direct current power supply reversed connection preventing circuit with polarity distinguishing and control method thereof
AU2014200097A1 (en) Method of and apparatus for repelling aquatic creatures
WO2021094764A1 (en) Shark deterrent device and method
WO1996037099A1 (en) Shark repellant devices
US20090029192A1 (en) Method and device for batteries
KR101616741B1 (en) A shark repellent
EP3125686B1 (en) Electronic ice jig with flashing light
SE510437C2 (en) Method and combination for charging sulfated lead accumulators
WO2006121509A3 (en) Method and device for electrochemical rejuvenation of skin and underlying tissue, and muscle building
US10468890B2 (en) Method for self-assessing microbial fuel cell electronics for energy harvesting
DE102012209740A1 (en) Method for operating battery, involves activating determined number of energy store modules based on instantaneous charging power or discharging power of battery so as to reduce power loss
Schlegel et al. Behavioral evidence against possible subaquatic electrosensitivity in the pyrenean Desman Galemys pyrenaicus (Talpidae, Mammalia).
CN2421835Y (en) High power high voltage pulse eletric scare, electric catching, electric fish barrier escape-proof device
CN108834942B (en) Novel bird feeder system
SU242996A1 (en) FOOD METHOD FOR LOADS FROM MULTIPLE CHEMICAL
DE1926551A1 (en) Submarine signaling and warning or triggering device
Trasatti 1786–1986: Bicentennial of Luigi Galvani's most famous experiments
CN111682599A (en) Charging control method, device and system for lithium battery
MXPA96001583A (en) Method for controlling aquatic animals in an extension of a
Seidel et al. In situ experiments with coastal pelagic fishes to establish design criteria for electrical fish harvesting systems

Legal Events

Date Code Title Description
NB Applications allowed - extensions of time section 223(2)

Free format text: THE TIME IN WHICH TO MAKE A FURTHER APPLICATION FOR A DIVISIONAL PATENT HAS BEEN EXTENDED TO 09 JAN2014 .

MK4 Application lapsed section 142(2)(d) - no continuation fee paid for the application