Claims
- 1. Power distribution apparatus, for controlling supply of a current from an electrical power source to at least one load, the apparatus comprising:
a current sensor, which is coupled to provide an indication of a magnitude of the current flowing to the at least one load; and a current limiter, which is adapted, responsive to the indication, to apply a pulse width modulation to the current drawn from the source so as to maintain the magnitude of the current flowing to the at least one load within a predetermined limit.
- 2. Apparatus according to claim 1, wherein the current limiter comprises:
a switch, having an input and an output; a controller, coupled to drive the switch to open and close so as to effectuate the pulse width modulation; and a smoothing circuit, coupled between the output of the switch and the at least one load.
- 3. Apparatus according to claim 2, wherein the switch comprises a transistor, which is driven between cutoff and saturation states thereof in order to effectuate the pulse width modulation.
- 4. Apparatus according to claim 3, wherein the transistor is selected from a group of devices consisting of a MOSFET, an IGBT and a bipolar transistor.
- 5. Apparatus according to claim 2, wherein the controller is adapted, while the magnitude of the current is less than the predetermined limit, to hold the switch constantly closed, so that the current flows to the load substantially without applying the pulse width modulation thereto, and to drive the switch to apply the pulse width modulation to the current drawn from the source when the magnitude exceeds the predetermined limit.
- 6. Apparatus according to claim 5, wherein the current limiter is adapted to apply the pulse width modulation with a duty cycle that is chosen so that the magnitude of the current flowing to the at least one load is approximately equal to or less than the predetermined limit.
- 7. Apparatus according to claim 6, wherein the controller is adapted to drive the switch to apply the pulse width modulation with first and second trial duty cycles during respective first and second trial intervals, the controller being coupled to receive the indication of the magnitude of the current during the first and second trial intervals, the controller further being adapted to estimate, responsive to the indication, a relation between the duty cycles and the current, and to determine, based on the relation, a target duty cycle of the pulse width modulation to be applied by the current limiter so as to cause the magnitude of the current to be approximately equal to or less than the predetermined limit.
- 8. Apparatus according to claim 1, wherein the current sensor is adapted to provide digital samples indicative of the magnitude of the current, and comprising a controller, which is coupled to receive the digital samples and, responsive thereto, to determine a duty cycle of the pulse width modulation to be applied by the current limiter.
- 9. Apparatus according to claim 8, wherein the at least one load comprises a plurality of loads, and
wherein the current limiter comprises a plurality of current limiters, respectively coupled to apply the pulse width modulation to the respective currents, and wherein the controller is coupled to receive the digital samples indicative of the magnitude of each of the respective currents and to determine respective duty cycles for all the current limiters responsive to the respective currents.
- 10. Apparatus according to claim 9, wherein responsive to an overload in the current supplied to one of the loads, the controller is adapted to determine the duty cycle to be applied by the current limiter that is respectively coupled to apply the pulse width modulation to the current supplied to the one of the loads, while substantially no pulse width modulation is applied to the respective currents supplied to others of the loads for which there is no overload.
- 11. Apparatus according to claim 9, wherein the electrical power source is coupled to supply the current to the plurality of loads over a local area network (LAN).
- 12. Apparatus according to claim 11, wherein the current limiter and the current sensor are coupled to the LAN in a mid-span configuration.
- 13. Apparatus according to claim 11, wherein the current limiter and the current sensor are coupled to the LAN together with a switching hub in an end-span configuration.
- 14. Apparatus according to claim 1, wherein the source of electrical power is adapted to supply respective currents to a plurality of loads, and
wherein the current limiter comprises a plurality of current limiters, respectively coupled to apply the pulse width modulation to the respective currents, and wherein the current sampler is adapted to sample each of the loads in alternation, and to supply the indication with respect to the magnitude of each of the respective currents for use in controlling the current limiters.
- 15. Power distribution apparatus, for controlling supply of a current from an electrical power source to at least one load, the apparatus comprising:
a current limiter, which is coupled to controllably reduce a magnitude of the current supplied to the at least one load; a current sensor, which is coupled to provide an indication of a magnitude of the current flowing to the at least one load; and a controller, which is coupled to set the current limiter to an initial setting and to receive the indication from the current sensor of the magnitude of the current, the processor being adapted, responsive to the indication, to determine whether the magnitude of the current at the initial setting exceeds a predetermined maximum and if so, to set the current limiter to operate at first and second settings at which the current passed by the current limiter is less than the current at the initial setting, and to determine, using the current sensor, first and second magnitudes of the current at the first and second settings, respectively, of the current limiter, the controller being further adapted to determine a current limiting characteristic based on the first and second magnitudes, and to select a target setting of the current limiter responsive to the estimated current limiting characteristic, so as to reduce the magnitude of the current to less than the predetermined maximum.
- 16. Apparatus according to claim 15, wherein the controller is adapted to determine, using the current sensor, a new magnitude of the current at the target setting of the current limiter, and to adjust the setting of the current limiter responsive to the new magnitude until the sampled current converges to a predetermined range.
- 17. Apparatus according to claim 16, wherein the controller is adapted to use the new magnitude of the current determined at the target setting to revise the estimated current limiting characteristic, and to select a new target setting of the current limiter based on the revised estimated characteristic.
- 18. Apparatus according to claim 15, wherein the controller is adapted to determine a temperature of the current limiter while sampling the current, and to save the estimated current limiting characteristic for use in selecting the target setting on a future occasion upon which the current exceeds the predetermined maximum and the current limiter is operating at the determined temperature.
- 19. Apparatus according to claim 15, wherein the controller is adapted to determine, using the current sensor, the magnitude of the current at the target setting, and to restore the initial setting of the current limiter if the current is below a predetermined minimum.
- 20. Apparatus according to claim 19, wherein the controller is adapted to determine the magnitude of the current at the target setting after a predetermined delay, and to control the current limiter so as to shut off the current to the at least one load if the current has not dropped below the predetermined minimum.
- 21. Apparatus according to claim 15, wherein the current limiter comprises a variable-impedance device, and wherein the first and second settings correspond respectively to first and second impedance settings.
- 22. Apparatus according to claim 21, wherein the variable-impedance device comprises a transistor, and comprising a digital/analog converter, which is coupled to receive the first and second impedance settings from the controller and, responsive thereto, to apply respective first and second gate voltages to the transistor.
- 23. Apparatus according to claim 15, wherein the current limiter comprises a pulse width modulator, which is coupled to apply pulse width modulation to the current supplied to the at least one load, and wherein the first and second settings correspond respectively to first and second duty cycles of the pulse width modulation.
- 24. Apparatus according to claim 15, wherein the controller is adapted to determine fitting parameters so as to fit a curve to the first and second magnitudes as a function of the first and second settings.
- 25. Apparatus according to claim 15, wherein the at least one load comprises a plurality of loads, and
wherein the current limiter comprises a plurality of current limiters, respectively coupled to reduce the magnitudes of the respective currents, and wherein the controller comprises a single digital processor, which is adapted to estimate respective current limiting characteristics for two or more of the current limiters.
- 26. Apparatus according to claim 25, wherein the current sensor comprises a single current sensing device, which is coupled to sample the respective currents supplied to the plurality of the loads so as to provide the magnitudes of the respective currents to the digital processor.
- 27. Apparatus according to claim 25, wherein the electrical power source is coupled to supply the current to the plurality of loads over a local area network (LAN).
- 28. Apparatus according to claim 27, wherein the current limiter and the current sensor are coupled to the LAN in a mid-span configuration.
- 29. Apparatus according to claim 27, wherein the current limiter and the current sensor are coupled to the LAN together with a switching hub in an end-span configuration.
- 30. Power distribution apparatus, for controlling supply of respective currents from an electrical power source to multiple loads, the apparatus comprising:
a plurality of current limiters, which are coupled to controllably reduce respective magnitudes of the currents supplied to the loads; a current sensor, which is coupled to measure in alternation the respective currents supplied to all the loads; and a controller, which is coupled to receive measurements of all the respective currents from the current sensor and, responsive thereto, to set the respective current limiters so as to maintain the currents supplied to the loads within a predetermined range.
- 31. Apparatus according to claim 30, wherein the current sensor is coupled to alternate among the multiple loads in a round robin.
- 32. Apparatus according to claim 30, wherein the controller is adapted to select one of the currents to measure, to set the current limiters to interrupt the currents other than the selected current, so that the current sensor measures the selected one of the currents while the other currents are interrupted.
- 33. Apparatus according to claim 30, wherein the controller is adapted to select one of the currents to measure, to make a first measurement of all the currents together using the current sensor, and then to set the current limiters to interrupt the selected current and to make a second measurement of all the currents together using the current sensor while the selected current is interrupted, and to measure the selected current by taking a difference between the first and second measurements.
- 34. Apparatus according to claim 30, wherein the current limiters comprise variable-impedance devices, and wherein the controller is adapted to set the respective current limiters by causing respective impedance settings to be applied to the devices.
- 35. Apparatus according to claim 30, wherein the current limiters comprise pulse width modulators, which are coupled to apply pulse width modulation to the respective currents supplied to the loads, and wherein the controller is adapted to set respective duty cycles of the pulse width modulators.
- 36. Apparatus according to claim 30, wherein the electrical power source is coupled to supply the current to the multiple loads over a local area network (LAN).
- 37. Apparatus according to claim 36, wherein the current limiters and the current sensor are coupled to the LAN in a mid-span configuration.
- 38. Apparatus according to claim 36, wherein the current limiters and the current sensor are coupled to the LAN together with a switching hub in an end-span configuration.
- 39. A method for controlling supply of power to at least one load, comprising:
measuring a magnitude of the current flowing from a power source to the at least one load; and responsive to the measured magnitude, applying a pulse width modulation to the current drawn from the at least one load so as to maintain the magnitude of the current flowing to the at least one load within a predetermined limit.
- 40. A method according to claim 39, wherein applying the pulse width modulation comprises inputting the current to a switch, opening and closing the switch so as to effectuate the pulse width modulation, and smoothing an output of the switch.
- 41. A method according to claim 40, wherein the switch comprises a transistor, and wherein opening and closing the switch comprises driving the transistor between cutoff and saturation states thereof.
- 42. A method according to claim 40, wherein applying the pulse width modulation comprises, while the magnitude of the current is less than the predetermined limit, holding the switch constantly closed, so that the current flows to the at least one load substantially without applying the pulse width modulation thereto, and driving the switch to apply the pulse width modulation when the magnitude exceeds the predetermined limit.
- 43. A method according to claim 42, wherein applying the pulse width modulation comprises driving the switch with a duty cycle that is chosen so that the magnitude of the current flowing to the at least one load is approximately equal to or less than the predetermined limit.
- 44. A method according to claim 43, wherein applying the pulse width modulation comprises:
controlling the switch so as to apply the pulse width modulation with first and second trial duty cycles during respective first and second trial intervals; measuring the magnitude of the current during the first and second trial intervals; estimating, responsive to the measured magnitude during the first and second trial intervals, a relation between the duty cycles and the current; and determining, based on the relation, a target duty cycle of the pulse width modulation to be applied by the switch so as to cause the magnitude of the current to be approximately equal to or less than the predetermined limit.
- 45. A method according to claim 39, wherein applying the pulse width modulation comprises determining a duty cycle of the pulse width modulation responsive to the measured magnitude.
- 46. A method according to claim 45, wherein the at least one load comprises a plurality of loads, and the current comprises respective currents supplied to the loads, and wherein measuring the magnitude of the current comprises determining the magnitude of each of the respective currents, and wherein determining the duty cycle comprises determining respective duty cycles for all the currents using a single digital processor.
- 47. A method according to claim 46, wherein determining the duty cycle comprises, responsive to an overload in the current flowing to one of the loads, determining the duty cycle to be applied to the one of the loads, while substantially no pulse width modulation is applied to the currents supplied to others of the loads for which there is no overload.
- 48. A method according to claim 46, wherein the current is supplied to the plurality of loads over a local area network (LAN).
- 49. A method according to claim 39, wherein the at least one load comprises a plurality of loads, and the current comprises respective currents supplied to the loads, and wherein measuring the magnitude of the current comprises determining a respective magnitude of the current flowing to each of the loads in alternation using a single current sampling device, and wherein applying the pulse width modulation comprises modulating each of the currents responsive to the respective magnitude.
- 50. A method for controlling supply of power to at least one load, comprising:
supplying a current to the at least one load through a current limiter at an initial setting of the current limiter; sampling the current to determine whether an initial magnitude of the current exceeds a predetermined maximum; if the current exceeds the predetermined maximum, sampling the current to determine first and second magnitudes thereof at first and second settings, respectively, of the current limiter, at which first and second settings the current passed by the current limiter is less than the current at the initial setting; estimating a current limiting characteristic based on the first and second magnitudes; and selecting a target setting of the current limiter responsive to the estimated current limiting characteristic, so as to reduce the magnitude of the current to less than the predetermined maximum.
- 51. A method according to claim 50, and comprising sampling the current at the target setting to determine a new magnitude of the current, and adjusting the setting of the current limiter responsive to the new magnitude until the sampled current converges to a predetermined range.
- 52. A method according to claim 51, wherein adjusting the setting comprises using the new magnitude of the current determined at the target setting to revise the estimated current limiting characteristic, and selecting a new target setting of the current limiter based on the revised estimated characteristic.
- 53. A method according to claim 50, and comprising determining a temperature of the current limiter while sampling the current, and saving the estimated current limiting characteristic for use in selecting the target setting on a future occasion upon which the current exceeds the predetermined maximum and the current limiter is operating at the determined temperature.
- 54. A method according to claim 50, and comprising sampling the current at the target setting, and restoring the initial setting of the current limiter if the current is below a predetermined minimum.
- 55. A method according to claim 54, wherein sampling the current comprises sampling the current after a predetermined delay, and comprising shutting off the current to the load if the current has not dropped below the predetermined minimum.
- 56. A method according to claim 50, wherein the current limiter comprises a variable-impedance device, and wherein the first and second settings correspond respectively to first and second impedance settings.
- 57. A method according to claim 56, wherein the variable-impedance device comprises a transistor, and wherein the first and second impedance settings correspond respectively to first and second gate voltages applied to the transistor.
- 58. A method according to claim 50, wherein the current limiter comprises a pulse width modulator, which is coupled to apply pulse width modulation to the current supplied to the load, and wherein the first and second settings correspond respectively to first and second duty cycles of the pulse width modulation.
- 59. A method according to claim 50, wherein estimating the current limiting characteristic comprises determining fitting parameters so as to fit a curve to the first and second magnitudes as a function of the first and second settings.
- 60. A method according to claim 50, wherein supplying the current comprises supplying respective currents to a plurality of loads through respective current limiters, and wherein estimating the current limiting characteristic comprises using a single digital processor to estimate respective current limiting characteristics for two or more of the current limiters.
- 61. A method according to claim 60, wherein sampling the current comprises sampling the respective currents supplied to the plurality of the loads using a single current sensing device to determine and provide the magnitudes of the respective currents to the digital processor.
- 62. A method according to claim 60, wherein supplying the respective currents comprises supplying the currents to the plurality of loads over a local area network (LAN).
- 63. A method for supplying power to multiple loads, comprising:
coupling a power supply to supply respective currents to all the loads through respective current limiters; measuring the respective currents in alternation using a common current sensor for all the loads; and setting the respective current limiters responsive to the measured currents, so as to maintain the currents supplied to the loads within a predetermined range.
- 64. A method according to claim 63, wherein measuring the respective currents comprises alternating among the multiple loads in a round robin.
- 65. A method according to claim 63, wherein measuring the respective currents comprises:
selecting one of the currents to measure; interrupting the currents other than the selected current; and measuring the current using the common current sensor while the other currents are interrupted.
- 66. A method according to claim 63, wherein measuring the respective currents comprises:
selecting one of the currents to measure; making a first measurement of all the currents together using the common current sensor; interrupting the selected current; making a second measurement of all the currents together using the common current sensor while the selected current is interrupted; and taking a difference between the first and second measurements in order to measure the selected current.
- 67. A method according to claim 63, wherein the current limiters comprise variable-impedance devices, and wherein setting the respective current limiters comprises applying respective impedance settings to the devices.
- 68. A method according to claim 63, wherein the current limiters comprise pulse width modulators, which are coupled to apply pulse width modulation to the respective currents supplied to the loads, and wherein setting the respective current limiters comprises setting respective duty cycles of the pulse width modulators.
- 69. A method according to claim 63, wherein coupling the power supply comprises supplying the currents to the multiple loads over a local area network (LAN).
CROSS-REFERENCE TO RELATED APPLICATION
[0001] This application claims the benefit of U.S. Provisional Patent Application No. 60/292,811, filed May 22, 2001, which is incorporated herein by reference.
Provisional Applications (1)
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Number |
Date |
Country |
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60292811 |
May 2001 |
US |