Nova Patents
EP1032964A2

Universal power supply

Abstract

This record has no abstract on file.

EP1032964A2, drawing sheet 1
Sheet 1 of 5

Term

Term ended

Projected expiry passed 17 November 2018, 7.9 years ago.

  1. Priority
  2. Filed
  3. Published
  4. Projected expiry
  5. Today

521 claims: 15 independent, 506 dependent

  1. 1
    Claims of equivalent WO 9926330 A2 CLAIMS I claim:1. A power supply for delivering electrical power to an electrical device, comprising: a first input for receiving a source of electrical power;a second input for receiving a power signal directed to a power input port of the electrical device, the electrical device being operated by power delivered to the power input port;a regulator, connected to the first input, for outputting a regulated source of electrical power;and a processor for processing the power signal and for controlling an output of the regulator;wherein the processor determines power requirements of the electrical device from the power signal and controls the regulator so that a required power output is delivered to the power input port of the electrical device.
  2. 55
    A network for providing power to a plurality of electrical devices that may have unknown and varied requirements of power, comprising:a plurality of power supplies, wherein: each power supply is connectable to at least one electrical device and is for providing power to each connected electrical device, each power supply receives a control input, and each power supply adjusts its power output based on the control input;means connected to each of the electrical devices for receiving power control signals, the power control signals representing desired power demanded at each electrical device;a master control unit for receiving the power control signals, for determining a desired power output of each power supply, and for generating the control input for each power supply so that the power supply adjusts its power output to the desired power output.
  3. 81
    A method of delivering electrical power to an electrical device, comprising:receiving a source of electrical power;capturing a power signal directed to a power input port of the electrical device, the electrical device being operated by power delivered to the power input port;determining power requirements of the electrical device from the power signal;adjusting an output of a power supply based on determined power requirements to a desired power output;and providing the desired power output to the electrical device.
  4. 91
    94. A computer-readable medium for storing software used in delivering power to an electrical device, the software being executable by a computer and is used in performing a method of:receiving a query concerning power requirements of the electrical device;determining desired power requirements for the electrical device;generating a power control signal reflecting the desired power requirements;and transmitting the power control signal;wherein the power control signal is used in adjusting an output of the power supply so that the output provides the desired power output to the electrical device.
  5. 94
    97. The computer- readable medium as set forth in claim 94, wherein the determining includes reading data regarding the electrical device.
  6. 121
    124. The power supply as set forth in claim 121. wherein the part of the power supply is a retractable power cord along for delivering power from the power supply to the electrical device.
  7. 126
    129. The network as set forth in claim 126, wherein the power-related information signals are power signatures for the electrical devices.
  8. 150
    153. A method of isolating an electrical device from its battery, the isolating also providing a separate power supply to deliver its power to the electrical device without delivering electrical power to the battery, comprising:providing a connector assembly which is configurable by manipulating the activation of its contact and dielectric elements;inserting the connector assembly into an existing electrical circuit of a battery and its electrical device;attaching to the connector assembly a power supply capable of varying its power output;providing at least one controller means which will: determine the power output of the power supply;manipulate the connector assembly in a first and second configuration;manipulating a first time the dielectric and contacts of the connector assembly;receiving at the power supply power-related signals traveling along conductors attached to the connector;determining the power output of the power supply from the received power-related signals;manipulating a second time the contacts and dielectric of the connector assembly;wherein the battery is isolated so that the power output of the power supply travels along conductors attached to the connector and then only to the electrical device, and wherein the battery cannot be charged while the electrical device is in use. said battery always being charged when a separate power supply is attached to the traditional external power port of said electrical device, said battery charging activity not always being desirable.
  9. 153
    156. The method set forth in claim 153, wherein the configuring includes connecting a second source of power via conductors attached to a set of contacts of the connector assembly.
  10. 167
    170. The method set forth in claim 167, wherein the configuring includes a switch controlled by a power signal.
  11. 170
    173. The method set forth in claim 170, wherein the configuring includes a gate array as a switch.
  12. 189
    192. The method set forth in claim 189, wherein the controller means includes a processor and an analog-to-digital converter.
  13. 201
    204. The method set forth in claim 201 , wherein the first time manipulating includes a first insertion or removal of a jumper assembly.
  14. 216
    219. The method set forth in claim 216, wherein the receiving includes digital signals being sent from the electrical device via a communications link that is not related to the connector assembly, said digital signals being received by the power supply that includes a processor capable of receiving such digital signals, and software to implement said signals.
  15. 231
    234. The method set forth in claim 231 , wherein the second time manipulating includes the second configuring of the positions of a switch by a controller means.
  16. 241
    244. A method of delivering a nominal voltage signal to power an electrical device for which an associated battery source of power is not available, comprising:connecting conductors from the output of a power supply not associated with the electrical device to an input power port of the electrical device;configuring the power supply to vary its output voltage;increasing the variable output voltage of the power supply in an upward progression continuously from the lowest to the highest voltage;repeating the progression of the power supply's variable output voltage in a continuous loop;setting an ON/OFF power switch of the electrical device to the ON position;monitoring changes in current flowing along the conductors from the output of the power supply and to the input power port of the electrical device;signaling the power supply to stop increasing its variable output voltage when a change in current is detected;continuing the monitoring of changes in current flow and output voltage along the conductors from the power supply to the electrical device;signaling the power supply to make at least one incremental increase in output voltage based on monitored changes in current flow and output voltage;and halting the power supply's incremental increases in output voltage when the power supply is delivering a nominal voltage signal to the electrical device.
  17. 244
    247. The method set forth in claim 244, wherein the configuring of the power supply includes a power supply that can vary its output voltage upon commands received from a source of logic.
  18. 265
    268. A method of delivering a sustainable voltage signal to power an electrical device which has a rechargeable battery and an associated charging circuit, comprising:connecting conductors from the output of a power supply not associated with the electrical device to an input power port of the electrical device;configuring the power supply to vary its output voltage;increasing the variable output voltage of the power supply in an upward progression from the lowest to the highest voltage;monitoring changes in current flowing along the conductors from the output of the power supply to the input power port of the electrical device;signaling the power supply to stop increasing its variable output voltage when a change in current is detected, as an option;signaling the power supply to make at least one incremental increase in output voltage, as an option;and halting the power supply's incremental increases in output voltage when the power supply is delivering a sustainable voltage signal to the electrical device, as an option.
  19. 268
    271. The method set forth in claim 268, wherein the configuring of the power supply includes a power supply that can vary its output voltage upon commands received from a source of logic.
  20. 290
    293. A method of delivering a sustainable voltage signal to power an electrical device which has an associated rechargeable battery and charging circuit, without charging the battery, comprising:configuring a set of conductors from a power supply not associated with the electrical device to a rechargeable battery;configuring a set of conductors from the power supply to the electrical device;capturing power related values;calculating a voltage value appropriate to powering the electrical device;setting the output voltage of a power supply;reconfiguring the set of conductors from the power supply to isolate the rechargeable battery;reconfiguring the set of conductors from the power supply to the electrical device, thus delivering a sustainable voltage signal to power an electrical device which has an associated rechargeable battery and charging circuit, without charging the battery.
  21. 293
    296. The method set forth in claim 293. wherein the configuring a set of conductors from a power supply not associated with the electrical device to a rechargeable battery includes a connector having a second set of contacts for being electrically connected to at least one terminal of the electrical device.
  22. 341
    344. A method of creating a look-up table for use with a processor- controllable-output-voltage power supply based on observable power characteristics of hardware devices within an electrical device, said look-up table being used to assist in determining the optimal output voltage of a connected power supply, and to determine battery charging activity in an electrical device in order to prevent said battery charging, comprising:configuring a power supply to vary its output voltage by using a source of logic;turning on an electrical device by supplying voltage from the processor- controlled power supply;monitoring changes in current-load along a set of conductors from the output of the power supply to an input power port of the electrical device;capturing detected changes in current-load during a predicted sequence of hardware events occurring within the electrical device;logging the acquired current values to a first look-up table in the order each of the associated hardware events occur;comparing the values in the first look-up table to known equivalent historical values;determining if there is battery charging activity, based on values captured and compared;issuing a first warning whenever battery charging activity is detected, causing the removing of the battery associated with the electrical device by a user, thus preventing further battery charging;issuing a second warning whenever battery charging activity is detected, said warning advising a user of the electrical device that the output of the power supply will be discontinued if the battery pack is not removed, so that the user responds to this warning by removing the battery, thus preventing further battery- charging;issuing an alert to the battery or its charging system whenever battery charging activity is detected, said alert causing the charging circuit to shut down, thus preventing further battery charging. optional supplementing of the first look-up table with a software utility in the electrical device that is capable of operating associated hardware devices in the electrical device;running the software utility in the electrical device to turn ON and OFF in a pre- determined series known to equivalent software in the processor-equipped power supply;communicating the turning ON and OFF of associated hardware devices within the electrical device so that the processor associated with the power supply monitors the sequence of turnings ON and OFF;capturing at the processor detected changes in current-load during the turning ON and OFF of associated hardware devices within the electrical device;logging the captured current-load values to a second look-up table in the order each of the associated hardware events occur;comparing the second look-up table to the first look-up table;comparing the second and first look-up tables to known equivalent historical values;updating known historical values, if necessary;applying the results of the comparing of all look-up tables to the power supply, thus optimizing the output voltage of the power supply;applying the results of the comparing of all look-up tables, thus determining whether the battery charging circuit in the electrical device is active;issuing a first warning whenever battery charging activity is detected, causing the removing of the battery associated with the electrical device by a user, thus preventing further battery charging;issuing a second warning whenever battery charging activity is detected, said warning advising a user of the electrical device that the output of the power supply will be discontinued if the battery pack is not removed, so that the user responds to this warning by removing the battery, thus preventing further battery charging;issuing an alert to the battery or its charging system whenever battery charging activity is detected, said alert causing the charging circuit to shut down, thus preventing further battery charging. monitoring the ongoing activities of hardware devices in the electrical device;comparing of the current-loads generated by the ongoing hardware activities to values in all look-up tables, thus determining whether the battery charging circuit later becomes active;reactivating software on the electrical device, if necessary, to re-capture baseline data to be logged into additional updated look-up tables, as an optional means;issuing a first warning whenever battery charging activity is detected, causing the removing of the battery associated with the electrical device by a user. thus preventing further battery charging;issuing a second warning whenever battery charging activity is detected, said warning advising a user of the electrical device that the output of the power supply will be discontinued if the battery pack is not removed, so that the user responds to this warning by removing the battery, thus preventing further battery charging;issuing an alert to the battery or its charging system whenever battery charging activity is detected, said alert causing the charging circuit to shut down, thus preventing further battery charging.
  23. 344
    347. The method set forth in claim 344, wherein turning on an electrical device includes depressing the ON/OFF switch of the supplied device until a sustainable voltage from the power supply is reached, and the electrical device turns ON.
  24. 408
    41 1. A system for providing power to an electrical device associated with a battery, comprising:a connector for isolating the battery from the electrical device, the connector having: a first set of contacts for being electrically connected to at least one terminal of the battery;a second set of contacts for being electrically connected to at least one terminal of the electrical device;and a dielectric for isolating the first set of contacts from the second set of contacts;and a power supply having: a first input for receiving a source of electrical power;a second input for receiving a power signal from the connector;a regulator for adjusting its power output based on a control signal;and a processor for receiving the power signal from the connector and for determining power requirements of the electrical device, the processor generating the control signal so that the power output from the regulator meets the power requirements of the electrical device.
  25. 411
    414. The system as set forth in claim 411, wherein the processor controls the switch so that the power output from the regulator is provided to both the battery and to the electrical device.
  26. 421
    424. A system for providing power to an electrical device associated with a battery, comprising:a connector for isolating the battery from the electrical device, the connector having: a first set of contacts for contacting at least one terminal of the battery;a second set of contacts for contacting at least one terminal of the electrical device;and a dielectric for isolating the first set of contacts from the second set of contacts;a power supply having: a first input for receiving a source of electrical power;a second input for receiving a power signal from the connector;and a regulator for adjusting its power output based on a control signal;and a processor for receiving the power signal from the connector and for determining power requirements of the electrical device, the processor generating the control signal and providing the regulator with the control signal so that the power output from the regulator meets the power requirements of the electrical device.
  27. 424
    427. The system as set forth in claim 424, wherein the electrical device includes a circuit for recharging the battery and the connector prevents the recharging circuit from recharging the battery.
  28. 425
    428. A system for providing power to an electrical device having a rechargeable battery and a circuit for recharging the battery, comprising:a power supply for outputting a source of electrical power;and an isolation device for electrically isolating the battery from the electrical device;wherein the power supply routes power to the electrical device through the isolation device and wherein the isolation device prevents the recharging circuit from recharging the battery.
  29. 428
    431. The system as set forth in claim 428, wherein the isolation device includes conductors for connecting data terminals of the battery to data lines of the electrical device.
  30. 430
    433. A computer-readable medium for storing software used in delivering power to an electronic device, the software being executable by a source of logic that includes memory and an analog-to-digital converter, and is used in performing a method of:detecting the connecting of the electrical device;receiving a query concerning power requirements of the electronic device, if said power supply is part of a network of power supplies controlled by a master control unit;determining desired power requirements for the electronic device;generating power control signals reflecting the desired power requirements;and transmitting the power-related signals and control signals;wherein the power control signals are used in adjusting an output of the power supply so that the output provides the desired power requirements to the electronic device, whereby the computer-readable medium for storing software enables a system for automatically configuring the power output of a power supply without any prior information about the power requirements of the electrical device, and without any particular skills on the part of the user of said electronic device.
  31. 433
    436. The computer-readable medium as set forth in claim 433, wherein the receiving of the query includes transmitting to the master control unit the detecting of the connection of the electrical device, said master control unit being present only if two or more power supplies are networked.
  32. 454
    457. A power supply for delivering electrical power to an electrical device, comprising:an input for receiving a source of electrical power;an input/output port for receiving a power signal directed to a power input port of the electrical device and for delivering power to the electrical device;a regulator, connected to the input/output port, for receiving a control signal and for adjusting its output based on the control signal;and a logic circuit for processing the power signal and for generating the control signal to control the output of the regulator;wherein the logic circuit determines power requirements of the electrical device from the power signal and adjusts the control signal so that the output of the regulator meets the power requirements of the electrical device.
  33. 457
    460. The power supply as set forth in claim 457, wherein the logic circuit adjusts the control signal and thus the power output from the regulator at least one time before controlling the regulator so that the output of the regulator meets the power requirements of the electrical device.
  34. 458
    461. The power supply as set forth in claim 458, wherein the power signal from the battery comprises a digital data signal.
  35. 486
    489. The power supply as set forth in claim 486, wherein the transceiver comprises a radio frequency transceiver.
  36. 502
    505. The power supply as set forth in claim 502, wherein the circuit related to charging the battery is accessed by the power supply's processor at a connector which carries digital data signals.
  37. 519
    522. The power supply as set forth in claim 519, wherein a controller controls the switch so that the output of the power supply is supplied to the battery and the electrical device simultaneously or independently.
  38. 521
    524. A connector assembly which is configurable by controlling the activation of its contact and dielectric elements, comprising:a first set of contacts;a second set of contacts isolated by a dielectric from the first set of contacts;and a first set of conductors connected to the first set of contacts;a second set of conductors connected to the second set of contacts;a third set of conductors connected to the connector assembly;a controller which manipulates the connector assembly configuration;whereby the connector assembly is configurable by controlling the activation of its contact and dielectric elements to create a conductive path from the third set of conductors to the first or second set of conductors independently, while also being capable of creating conductive paths to both the first and second set of conductors simultaneously, whereby the connector assembly is configurable to create a conductive path to and from a power supply attached to the third set of conductors that receives a power signal from a battery associated with an electrical device attached to the first set of conductors but not from the electrical device attached to the second set of conductors, then the controller reconfigures the connector assembly create a conductive path from the power supply to the electrical device along the second set of conductors for powering the electrical device, but not delivering that power to the battery along the first set of conductors.
Independent claims38