Nova Patents
EP1599886A2

Electronic disabling device

Abstract

This record has no abstract on file.

Term

Term ended

Projected expiry passed 11 February 2024, 2.6 years ago.

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  2. Filed
  3. Published
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  5. Today

112 claims: 23 independent, 89 dependent

  1. 1
    Claims of equivalent WO 2004073361 A2 CLAIMS What is claimed is:1. An electronic disabling device for disabling a target comprising: a. first and second electrodes to establish first and second spaced apart contact points on the target wherein a high impedance air gap may exist between at least one of the electrodes and the target;and b. a power supply for operating in a first mode to generate a first high voltage, short duration output across the first and second electrodes during a first time interval to ionize the air within the air gap to reduce the high impedance across the air gap to a lower impedance to enable current flow across the air gap at a lower voltage level and for subsequently operating in a second mode to generate a second lower voltage output across the first and second electrodes during a second time interval to maintain the current flow across the first and second electrodes and between the first and second contact points on the target to enable the current flow through the target.
  2. 2
    An electronic disabling device for disabling a target comprising:a. first and second electrodes to establish first and second spaced apart contact points on the target wherein a high impedance air gap may exist between at least one of the electrodes and the target;b. a high voltage power supply for generating an output voltage;and c. a high voltage power output circuit which generates a first high voltage output across the first and second electrodes to ionize the air within the air gap reducing the high impedance across the air gap a lower impedance to enable current flow across the air gap at a lower voltage level and for subsequently enabling a second lower voltage output to cause current to flow across the first and second electrodes and between the first and second contact points on the target allowing current flow through the target.
  3. 3
    An electronic disabling device for disabling a target comprising:a. first and second electrodes to establish first and second spaced apart contact points on the target wherein a high impedance air gap may exist between at least one of the electrodes and the target;b. a high voltage power supply for generating an output voltage;and c. a switchable output circuit for the high voltage power supply for switching into and operating in a first output circuit configuration to generate a first high voltage output across the first and second electrodes during a first time interval to ionize the air within the air gap and reduce the high impedance across the air gap to a lower impedance to enable current flow across the air gap at a lower voltage level and for subsequently switching into and operating in a second output circuit configuration to generate a second lower voltage output across the first and second electrodes during a second time interval to maintain the current flow across the first and second electrodes and between the first and second contact points on the target allowing current flow through the target.
  4. 4
    The electronic disabling device of Claim 3 wherein the switchable output circuit includes:a. a high voltage output circuit for generating a relatively high voltage output across the first and second electrodes during the first time interval;and b. a low voltage output circuit for generating a relatively low voltage output across the first and second electrodes during the second time interval.
  5. 5
    The electronic disabling device of Claim 4 wherein the high voltage output circuit includes:a. a first energy storage capacitor;b. a voltage conversion circuit coupled between the first energy storage capacitor and the first electrode for increasing the energy storage capacitor voltage from a first voltage level to a higher second voltage level;and c. a first switch for closing to couple the high voltage output circuit across the first and second electrodes after the voltage on the first energy storage capacitor reaches a first predetermined level.
  6. 6
    The electronic disabling device of Claim 5 wherein the low voltage output circuit includes:a. a second energy storage capacitor;and b. a second switch for closing to couple the second energy storage capacitor across the first and second electrodes at about the time that the first high voltage output has ionized the air in the air gap.
  7. 7
    The electronic disabling device of Claim 6 wherein the first energy storage capacitor and the second energy storage capacitor each receive a charging current from the high voltage power supply.
  8. 8
    The electronic disabling device of Claim 7 wherein the first switch opens to decouple the high voltage output circuit from the first and second electrodes after the second switch closes.
  9. 9
    The electronic disabling device of Claim 8 wherein closure of the first switch defines a time Ti.
  10. 10
    The electronic disabling device of Claim 9 wherein closure of the second switch defines a time T 2 .
  11. 11
    The electronic disabling device of Claim 8 wherein the second switch is configured to open when the second energy storage capacitor voltage falls below a predetermined level and defines a time T 3 .
  12. 12
    The electronic disabling device of Claim 10 wherein the relationship between the open and closed states of the first and second switches is defined by the following table:
  13. 13
    The electronic disabling device of Claim 12 wherein the first and second switches include voltage activated switches.
  14. 14
    The electronic disabling device of Claim 13 wherein the first and second voltage activated switches include spark gaps and wherein the breakdown voltage of the first spark gap is less than the breakdown voltage of the second spark gap.
  15. 15
    The electronic disabling device of Claim 14 wherein the capacitance rating of the first energy storage capacitor is substantially greater than the capacitance rating of the second energy storage capacitor.
  16. 16
    The electronic disabling device of Claim 12 further including:a. a trigger switch for activating and deactivating the electronic disabling device;and b. a controller for sensing the configuration of the trigger switch and for controlling the operation of the high voltage power supply.
  17. 17
    The electronic disabling device of Claim 16 wherein closure of the trigger switch defines a time To and causes the controller to activate the voltage conversion stage of the high voltage power supply.
  18. 18
    The electronic disabling device of Claim 17 wherein second the controller deactivates the voltage conversion stage of the high voltage power supply at time T 3 .
  19. 19
    The electronic disabling device of Claim 18 wherein the controller maintains the deactivated state of the high voltage power supply voltage conversion stage until a time T to maintain a fixed pulse repetition rate corresponding to a preset pulse repetition rate.
  20. 20
    The electronic disabling device of Claim 19 wherein the controller repeatedly activates and deactivates the high voltage power supply to maintain the fixed pulse repetition rate.
  21. 21
    The electronic disabling device of Claim 7 wherein voltage conversion circuit comprises a voltage multiplier.
  22. 22
    The electronic disabling device of Claim 21 wherein the voltage multiplier includes a step-up transformer.
  23. 23
    The electronic disabling device of Claim 22 wherein the step-up transformer includes a primary winding and a secondary winding and wherein the primary winding is coupled in series with the discharge path of the first energy storage capacitor.
  24. 24
    The electronic disabling device of Claim 23 wherein the step-up transformer secondary winding is coupled in series with the discharge path of the second energy storage capacitor.
  25. 25
    The electronic disabling device of Claim 7 further including a third energy storage capacitor having a first lead coupled to the output of the high voltage power supply voltage conversion stage and a second lead coupled to the second electrode.
  26. 26
    The electronic disabling device of Claim 12 wherein the T - T 3 time interval approximates 1.5 microseconds and wherein the T 2 - T 3 time interval approximates 50 microseconds.
  27. 27
    The electronic disabling device of Claim 14 wherein the breakdown voltage of the first spark gap approximates 2000 volts and wherein the breakdown voltage of the second spark gap approximates 3000 volts.
  28. 28
    The electronic disabling device of Claim 7 wherein the capacitance rating of the first energy storage capacitor approximates 0.14 microfarads and wherein the capacitance rating of the second energy storage capacitor is substantially equal to or less than about 0.02 microfarads.
  29. 29
    An electronic disabling device for disabling a target comprising:a. first and second electrodes to establish first and second spaced apart contact points on the target wherein a high impedance air gap may exist between at least one of the electrodes and the target;b. a high voltage power supply having a voltage conversion stage for receiving a low voltage DC input and for generating at an output terminal a substantially increased DC output voltage;c. a high voltage output circuit coupled to the voltage conversion stage output terminal for generating a high voltage output across the first and second electrodes during a time interval Ti - T 2 ;and d. a low voltage output circuit coupled to the voltage conversion stage output terminal for generating a lower voltage output across the first and second electrodes during a time interval T 2 — T 3 .
  30. 30
    The electronic disabling device of Claim 29 wherein:a. the high voltage output circuit includes a first energy storage capacitor coupled to the output terminal of the high voltage power supply voltage conversion stage for receiving a charging current from the high voltage power supply during a time interval T 0 - Ti;and b. the low voltage output circuit includes a second energy storage capacitor coupled in parallel with the output terminal of the high voltage power supply voltage conversion stage for receiving the charging current from the high voltage power supply during the time interval T 0 - Ti.
  31. 31
    The electronic disabling device of Claim 30 wherein the high voltage output stage further includes:a. a voltage multiplier coupled between the first energy storage capacitor and the first electrode for increasing the energy storage capacitor voltage to a high voltage level;and b. a first switch for closing to couple the high voltage output circuit across the first and second electrodes when the voltage on the first energy storage capacitor reaches a first predetermined level.
  32. 32
    The electronic disabling device of Claim 31 wherein the low voltage output circuit further includes a second switch for closing to couple the second energy storage capacitor across the first and second electrodes after the voltage applied by the high voltage output circuit across the first and second electrodes establishes an arc allowing current to flow at a lower voltage.
  33. 33
    The electronic disabling device of Claim 32 wherein the first switch opens to decouple the high voltage output circuit from the first and second electrodes when the second switch closes.
  34. 34
    The electronic disabling device of Claim 33 wherein the first and second switches include spark gap switches.
  35. 35
    The electronic disabling device of Claim 34 wherein the breakdown voltage of the first spark gap switch is less than the breakdown voltage of the second spark gap switch.
  36. 36
    The electronic disabling device of Claim 35 wherein the capacitance rating of the first energy storage capacitor is substantially greater than the capacitance rating of the second energy storage capacitor.
  37. 37
    The electronic disabling device of Claim 32 further including:a. a trigger switch for activating and deactivating the electronic disabling device;and b. a controller for sensing the configuration of the trigger switch and for controlling the operation of the high voltage power supply.
  38. 38
    The electronic disabling device of Claim 37 wherein the voltage multiplier comprises a step-up transformer.
  39. 39
    A method for disabling a target comprising:a. directing a charging current to first and second energy storage capacitors during a first time interval;b. sensing the voltage on the first energy storage capacitor and coupling the first energy storage capacitor to a voltage multiplier when the first energy storage capacitor voltage exceeds a first voltage threshold;c. discharging the first energy storage capacitor through the voltage multiplier during a second time interval to generate a multiplied output voltage across first and second output electrodes while positioning the output electrodes in proximity to the target to establish first and second spaced apart intended contact points on the target wherein a high impedance air gap may exist between at least one of the electrodes and the target;d. establishing a current flow between the first and second electrodes to create a reduced impedance ionized pathway across the air gap to reduce the high impedance previously existing across the air gap to a substantially lower impedance;and e. sensing the voltage applied across the first and second electrodes as the first energy storage capacitor is discharging and coupleing the second energy storage capacitor across the first and second electrodes to discharge current through the reduced impedance ionized pathway established across the air gap to maintain the current flow between the first and second electrodes during a third time interval.
  40. 40
    The method of Claim 39 wherein the first and second energy storage capacitors are charged to substantially equal voltage levels during the first time interval.
  41. 41
    The method of Claim 40 wherein the capacitance rating of the first energy storage capacitor substantially exceeds the capacitance rating of the second energy storage capacitor.
  42. 42
    The method of Claim 39 wherein the voltage multiplier includes a step-up transformer having primary and secondary windings and wherein the discharge current from the first energy storage capacitor passes through the primary transformer winding.
  43. 43
    The method of Claim 39 wherein the multiplied output voltage generated during the second time interval substantially exceeds the first voltage level.
  44. 44
    The method of Claim 39 wherein the duration of the second time interval is substantially shorter than the duration of the third time interval.
  45. 45
    The method of Claim 44 wherein sensing the voltage on the first energy storage capacitor is performed by a first spark gap having a first breakdown voltage substantially equal to the first voltage threshold.
  46. 46
    The method of Claim 45 wherein sensing the voltage applied across the first and second electrodes as the first energy storage capacitor is being discharged is performed by a second spark gap having a second breakdown voltage substantially equal to the second voltage threshold.
  47. 47
    The method of Claim 39 wherein the target is a remote target further including first and second darts coupled by separate lengths of flexible wire to the first and second output electrodes, the wire length being sufficient to span the distance between the output electrodes and the remote target.
  48. 48
    The method of Claim 47 further including propelling the darts from a first location in proximity to the output electrodes toward the remote target.
  49. 49
    The method of Claim 48 wherein the first and second darts include electrically conductive tips coupled to the separate lengths of flexible wire.
  50. 50
    The method of Claim 39 further including coupleing the second energy storage capacitor across the first and second electrodes when the sensed voltage exceeds the second voltage threshold.
  51. 51
    An electronic disabling device for disabling a target comprising:a. first and second electrodes to establish first and second spaced apart contact points on the target;b. a high voltage power supply that generates an output voltage delivered in pulses to the target;and c. a circuit that controls a time between pulses in response to a feedback signal.
  52. 52
    An electronic disabling device for disabling a target comprising:a. first and second electrodes to establish first and second spaced apart contact points on the target;and b. a high voltage power supply that generates a positive voltage with respect to earth ground at the first electrode and a negative voltage with respect to earth ground at the second electrode.
  53. 53
    A method for disabling a target comprising:sourcing at a first voltage a signal to ionize an air gap at the target;and sourcing at a second voltage less in magnitude than the first voltage the signal to continue current flow through the target.
  54. 54
    A battery capacity monitor for a device operated by a battery, the monitor comprising:a. operating mode monitoring means for monitoring an operating mode of a plurality of modes of the device;b. operating time monitoring means for measuring a time that the device operates in each respective operating mode of the plurality;c. a memory that stores indicia of the original battery capacity and indicia of a rate of battery capacity consumption associated with each operating mode of the plurality;and d. means for computing a battery capacity consumed based on data received from the operating mode monitoring means, from the operating time monitoring means and from the memory.
  55. 55
    The battery capacity monitoring system of Claim 54 wherein the electronic device includes an electronic disabling device.
  56. 56
    The battery capacity monitoring system of Claim 55 wherein the electronic disabling device is packaged in a housing having a battery receptacle and wherein the battery is packaged in a removable battery module dimensioned to fit within the electronic disabling device battery receptacle.
  57. 57
    The battery capacity monitoring system of Claim 56 wherein the lookup table is located in the battery receptacle.
  58. 58
    The battery capacity monitoring system of Claim 57 wherein the lookup table is stored in a non-volatile memory device.
  59. 59
    The battery capacity monitoring system of Claim 57 wherein the electronic disabling device and the battery receptacle further include data interface contacts for transferring data between the electronic disabling device and the battery module.
  60. 60
    The battery capacity monitoring system of Claim 54 wherein the lookup table further includes data representing the rate of battery capacity consumption associated with each device operating mode for two or more ambient temperature levels, wherein the electronic disabling device further includes means for measuring the device operating temperature, and wherein the computing means displays data compensated for temperature deviations.
  61. 61
    The battery capacity monitoring system of Claim 54 wherein in a first operating mode an electronic clock is energized by the battery.
  62. 62
    The battery capacity monitoring system of Claim 61 further including a second operating mode wherein the clock and a microprocessor are energized by the battery.
  63. 63
    The battery capacity monitoring system of Claim 62 including a third operating mode wherein the clock, the microprocessor and the device itself are energized by the battery.
  64. 64
    The battery capacity monitoring system of Claim 55 wherein the electronic disabling device includes an electronic clock, a microprocessor and a high voltage power supply and wherein in a first operating mode only the electronic clock is energized by the battery, wherein in a second operating mode the electronic clock and the microprocessor are energized by the battery, and wherein in a third operating mode the clock, the microprocessor and the high voltage power supply are energized by the battery.
  65. 65
    The battery capacity monitoring system of Claim 64 wherein in a fourth operating mode the clock, the microprocessor and a laser target designator are energized by the battery.
  66. 66
    The battery capacity monitoring system of Claim 64 wherein in a fifth operating mode the clock, the microprocessor and a flashlight are energized by the battery.
  67. 67
    A method for monitoring the battery capacity of a battery powered electronic device having two or more operating modes with a different current level associated with each operating mode comprising:a. monitoring the electronic device operating mode;b. measuring the time that the electronic device operates in each different operating mode;c. storing data representing the original battery capacity and rate of battery capacity consumption associated with each device operating mode;and d. computing the battery capacity consumed based on the device operating mode, the time that the electronic device has operated in each different operating mode and the data representing the original battery capacity and the rate of battery capacity consumption associated with each device operating mode and displaying data indicating either the battery capacity consumed or the battery capacity remaining.
  68. 68
    The method of Claim 67 wherein the battery powered electronic device includes an electronic disabling device.
  69. 69
    The method of Claim 67 further including storing data representing the rate of battery capacity consumption associated with each device operating mode for two or more ambient temperature levels.
  70. 70
    The method of Claim 69 further including measuring the device operating temperature and computing the battery capacity consumed based on the appropriate temperature-related stored battery capacity consumption data.
  71. 71
    A method for disabling the muscles of a target comprising:a. providing first and second electrodes to establish first and second spaced apart contact points on the target wherein a high impedance air gap may exist between at least one of the electrodes and the target;b. applying a first high voltage, short duration output across the first and second electrodes during a first time interval to ionize the air within the air gap to reduce the high impedance across the air gap to a lower impedance to enable current to flow across the air gap at a lower voltage level;c. subsequently applying a second lower voltage output across the first and second electrodes during a second time interval to maintain the current flow across the first and second electrodes and between the first and second contact points on the target to enable the current flow through the target;d. providing a battery to supply the power required to generate the first high voltage output and the second lower voltage output;and e. accessing stored data representing the original battery capacity, computing the battery capacity consumed as a function of operating time, and displaying data indicating either the battery capacity consumed or the battery capacity remaining.
  72. 72
    An electronic disabling device for disabling a target comprising:a. first and second electrodes to establish first and second spaced apart contact points on the target wherein a high impedance air gap may exist between at least one of the electrodes and the target;b. a power supply for operating in a first mode to generate a first high voltage, short duration output across the first and second electrodes during a first time interval to ionize the air within the air gap to reduce the high impedance across the air gap to a lower impedance to enable current flow across the air gap at a lower voltage level and for subsequently operating in a second mode to generate a second lower voltage output across the first and second electrodes during a second time interval to maintain the current flow across the first and second electrodes and between the first and second contact points on the target to enable the current flow through the target;c. operating mode monitoring means for monitoring the electronic disabling device operating mode;d. operating time monitoring means for measuring the time that the electronic disabling device has operated in each different operating mode;e. a battery for supplying electrical energy to the electronic disabling device;f. a lookup table for storing data representing the original battery capacity and the rate of battery capacity consumption associated with each device operating mode;and g. means for computing the battery capacity consumed based on the data received from the operating mode monitoring means, from the operating time monitoring means and from the data stored in the lookup table and displaying data indicating either the battery capacity consumed or the battery capacity remaining.
  73. 73
    The battery capacity monitoring system of Claim 72 wherein the electronic disabling device is packaged in a housing having a battery receptacle and wherein the battery is packaged in a removable battery module dimensioned to fit within the electronic disabling device battery receptacle.
  74. 74
    The battery capacity monitoring system of Claim 73 wherein the lookup table is located in the battery receptacle.
  75. 75
    The battery capacity monitoring system of Claim 74 wherein the lookup table is stored in a non- volatile memory device.
  76. 76
    The battery capacity monitoring system of Claim 74 wherein the electronic disabling device and the battery receptacle further include data interface contacts for transferring data between the electronic disabling device and the battery module.
  77. 77
    The battery capacity monitoring system of Claim 72 wherein the lookup table further includes data representing the rate of battery capacity consumption associated with each device operating mode for two or more ambient temperature levels, wherein the electronic disabling device further includes means for measuring the device operating temperature, and wherein the computing means displays battery capacity data compensated for temperature variations.
  78. 78
    A warranty control system for an electronic device including a microprocessor, comprising a. a lookup table for storing data representing the duration of a manufacturer's warranty;b. warranty activation means for setting the device warranty expiration date;and c. a display for providing a visual readout of the warranty expiration date.
  79. 79
    The warranty control system of Claim 78 wherein the warranty activation means sets and records the warranty expiration date upon detecting the initial activation of the device.
  80. 80
    The warranty control system of Claim 79 wherein the warranty activation means sets and records the warranty expiration date upon detecting the initial activation of the device by a purchaser.
  81. 81
    The warranty control system of Claim 78 wherein the microprocessor includes a calendar date time keeping function and the warranty expiration date is displayed as a calendar-based data readout.
  82. 82
    The warranty control system of Claim 81 wherein the warranty expiration date is displayed as the month and year of the warranty expiration date.
  83. 83
    The warranty control system of Claim 82 wherein the display includes two digital display segments for displaying the month and year elements of the warranty expiration date as two digit data elements.
  84. 84
    The warranty control system of Claim 83 wherein the display sequentially displays the month and year components of the warranty expiration date.
  85. 85
    The warranty control system of Claim 81 wherein the warranty activation means sets the warranty expiration date by adding the stored warranty duration data to the current calendar date.
  86. 86
    The warranty control system of Claim 78 wherein the electronic device is energized by a battery housed in a removable warranty extension battery module interconnectable to the electronic device by power and data interface contacts, and wherein the battery module includes a data module having stored warranty expiration data.
  87. 87
    The warranty control system of Claim 86 wherein the warranty activation means includes the capability of receiving warranty extension data from the warranty extension battery module and resetting the warranty expiration date based on that data.
  88. 88
    The warranty control system of Claim 78 wherein the electronic device includes a data interface for interconnecting the microprocessor with an external data source and wherein the warranty activation means includes the capability of receiving warranty extension data from the external data source and resetting the warranty extension date based upon the warranty extension data.
  89. 89
    The warranty control system of Claim 88 wherein the data interface includes a USB port.
  90. 90
    The warranty control system of Claim 88 wherein the data interface includes a wireless data interface.
  91. 91
    The warranty control system of Claim 88 wherein the data interface includes means for , establishing an Internet connection.
  92. 92
    A replaceable battery module configured to supply electrical energy through a power input connector to an electronic device having at least first and second operating modes, where each operating mode consumes battery capacity at a different rate and the electronic device includes the capability of monitoring the operating time corresponding to each device operating mode, the battery module comprising:a. a chamber within the battery module for holding at least one battery having positive and negative output terminals;b. a power output connector for interfacing with the electronic device power input connector when the battery module is attached to the electronic device to transfer power from the battery output terminals to the electronic device;c. a lookup table for storing data representing the original battery capacity and the rate of battery power consumption associated with each different device operating mode;and d. a data transfer system for transferring the data stored in the battery module lookup table to the electronic device to enable the electronic device to compute the battery capacity based on the operating time corresponding to each device operating mode and the data stored in the battery module lookup table.
  93. 93
    The battery module of Claim 92 wherein the lookup table stores data representing the original battery capacity and the rate of battery capacity consumption associated with each device operating mode for at least two different device operating temperatures to enable the electronic device to compute temperature-compensated battery capacity consumption data.
  94. 94
    The battery module of Claim 93 wherein the lookup table stores battery capacity and power consumption data corresponding to multiple different device operating temperatures.
  95. 95
    The battery module of Claim 92 wherein the electronic device includes a housing having a battery module receptacle dimensioned to receive the battery module.
  96. 96
    The battery module of Claim 95 wherein the housing battery module receptacle is configured to mechanically retain or to selectively release the battery module.
  97. 97
    The battery module of Claim 96 wherein the housing battery module receptacle comprises an internal receptacle.
  98. 98
    The battery module of Claim 97 wherein the housing includes a handgrip section and the internal battery module receptacle is positioned within the hand grip section.
  99. 99
    The battery module of Claim 92 further including a battery module data interface for interfacing with an electronic device data interface for enabling the electronic device to access the data stored in the battery module lookup table.
  100. 100
    The battery module of Claim 92 further including a second battery coupled to the first battery.
  101. 101
    The battery module of Claim 100 wherein the first battery is coupled in series with the second battery.
  102. 102
    The battery module of Claim 92 wherein the lookup table also stores warranty expiration data to enable the electronic device to compute and display a computed, device specific warranty expiration date.
  103. 103
    An electronic disabling device having a first high voltage transformer for creating an arc and a second transformer with a lower output voltage to maintain current flow across the arc to disable a subject.
  104. 104
    An electronic disabling device for disabling a target comprising:a. first and second electrodes to establish first and second spaced apart contact points on the target;b. high voltage power supply for generating an output voltage delivered in a series of electrical pulses to the target;c. a battery system including i. a battery;ii. a digital memory device for storing information related to the amount of battery power consumed or remaining;iii. a data interface for communicating between the battery system and the device to adjust the amount of power consumed recorded in the battery system;and d. a display for indicating to the user the battery capacity status.
  105. 105
    An electronic disabling device for disabling a target comprising:a. first and second electrodes to establish first and second spaced apart contact points on the target;b. a high voltage power supply for generating an output voltage delivered in a pre- timed series of electrical pulses to the target;and c. a display for indicating to the user the amount of time remaining in each pulse sequence.
  106. 106
    An electronic disabling device for disabling a target comprising:a. first and second electrodes to establish first and second spaced apart contact points on the target;b. a high voltage power supply for generating an output voltage delivered in a pre- timed series of electrical pulses to the target;c. a trigger mechanism to initiate the pre-timed series of electrical pulses;and d. a mechanism for allowing the user to extend the duration of the pre-timed series of electrical pulses.
  107. 107
    An electronic disabling device for disabling a target comprising:a. first and second electrodes to establish first and second spaced apart contact points on the target;and b. a high voltage power supply for generating an output voltage delivered across the first and second contact points on the target to generate a positive voltage potential at one electrode and a negative voltage potential at the other electrode.
  108. 108
    A method for disabling a target comprising:providing from a first stored energy device a first signal to the target to ionize an air gap at the target;and providing from a second stored energy device a second signal to the target to continue a current through the gap and through the target.
  109. 109
    A device for disabling a target comprising:means for providing from a first stored energy device a first signal to the target to ionize an air gap at the target;and means for providing from a second stored energy device a second signal to the target to continue a current through the gap and through the target.
  110. 110
    A method for monitoring battery capacity for a device operated by a battery, the method comprising:a. monitoring an operating mode of a plurality of modes of the device;b. measuring a time that the device operates in each respective operating mode of the plurality;c. storing indicia of the original battery capacity and indicia of a rate of battery capacity consumption associated with each operating mode of the plurality;and d. computing a battery capacity consumed based on data received from the operating mode monitoring means, from the operating time monitoring means and from the memory.
  111. 111
    A warranty information system for a device, the system comprising:a. means for storing indicia of a duration of a warranty;b. means for storing a start time for the warranty;and c. means for providing power for operating the device.
Independent claims111