IP Library Granted Patent US 12,566,197
Granted Patent B2
US 12,566,197 · App. 17/072,805 · Granted Mar 3, 2026

Method and apparatus for monitoring power transmission

Inventor: Paal Even Gaarder (Oslo, NO)
Assignee: Live Power Intelligence Company NA, LLC
G01R21/133
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Quick Facts
Patent No.
US 12,566,197
App. No.
17/072,805
Granted
Mar 3, 2026
Kind
B2
Abstract

An apparatus for measurement of power in an electric power transmission line is disclosed. The apparatus comprises a magnetic field sensor for measuring the magnetic field at the electric power transmission line and transmitting magnetic field data to a processor. The magnetic field sensor is arranged at a minimum threshold distance from the electric power transmission line. The apparatus also has a voltage sensor arranged distally from the magnetic field sensor for transmitting voltage waveform data to the processor and a transfer function calculator for calculating the relationship between the transmitted voltage waveform data at the voltage sensor and transmission line voltage waveform data.

Claims (73)

1 . An apparatus for measuring power flowing in an electric power transmission line of a power grid, the apparatus comprising:

a processor;

at least one magnetic field sensor configured to measure time-dependent magnetic fields generated by a current flowing in the electric power transmission line and to predict a plurality of magnetic field values based at least in part on a statistical and trend analysis of a plurality of measured magnetic fields, wherein measuring the magnetic field comprises obtaining one or more time-dependent magnetic field values, and wherein the at least one magnetic field sensor comprises a timing unit configured to receive a timing signal, determine a period associated with the current, and record a time-dependent magnetic field value using the timing signal to indicate the time at which the time-dependent magnetic field value was obtained; and

at least one voltage sensor configured to measure a time-dependent voltage in the power grid at a low voltage part of the power grid, wherein the voltage of the low voltage part of the power grid is reduced by a transformer relative to the voltage of the electric power transmission line, the at least one voltage sensor further configured to predict a plurality of voltage values based at least in part on a statistical and trend analysis of a plurality of measured voltages, wherein measuring the time-dependent voltage comprises obtaining one or more time-dependent voltage values, and wherein the at least one voltage sensor comprises a timing unit configured to receive the timing signal, and record a time-dependent voltage value using the timing signal to indicate the time at which the time-dependent voltage value was obtained;

wherein the processor is configured to:

calculate a phase relationship between the magnetic field and the voltage, and wherein calculating the phase relationship is based at least in part on comparing the period associated with the current, a period associated with the voltage, the time at which the time-dependent magnetic field value was obtained, and the time at which the time-dependent voltage value was obtained, and

calculate the power flowing in the electric power transmission line from the time-dependent magnetic field value, the time-dependent voltage value, and the phase relationship,

wherein, prior to transmitting the magnetic field values, the at least one magnetic field sensor is configured to:

obtain a plurality of magnetic field values based at least in part on measuring magnetic field values associated with the magnetic field generated by the current flowing in the electrical power transmission line;

compare each of the plurality of magnetic field values with a corresponding predicted magnetic field value; and

identify at least one of the obtained magnetic field values to include in the magnetic field values transmitted to the processor based on determining the at least one of the obtained magnetic field values deviates from a corresponding predicted magnetic field value.

2 . The apparatus of claim 1 , wherein the at least one magnetic field sensor is arranged within 1 kilometer from the electric power transmission line.

3 . The apparatus of claim 1 , wherein the at least one voltage sensor and the electric power transmission line are connected to a same AC network of the power grid.

4 . The apparatus of claim 1 , wherein the at least one voltage sensor and the processor are placed in a same facility, and wherein the at least one magnetic field sensor is arranged between 25 meters and 400 meters from the electric power transmission line.

5 . The apparatus of claim 1 , wherein the at least one voltage sensor is located in an office, near a centralized computer, or at a position chosen dependent on a noise on the voltage in the electric power transmission line.

6 . The apparatus of claim 1 , wherein the calculating the power comprises calculating one or more of a magnitude of the power, a direction of the power flowing in the electric power transmission line, a power factor, an active power, and a reactive power.

7 . The apparatus of claim 1 , wherein the at least one magnetic field sensor is arranged at a distance that is at least 25 meters from the electric power transmission line.

8 . The apparatus of claim 1 , wherein the processor is connected to a look-up table, in which estimated values of phase relationships between voltages and magnetic fields are stored, and wherein the calculating of the phase relationship is based at least in part on estimating a transfer function between different physical locations of the voltage sensor and the magnetic field sensor.

9 . A method for measuring power flowing in an electric power transmission line of a power grid, the method comprising:

receiving a timing signal;

measuring a magnetic field generated by a current flowing in the electric power transmission line, wherein measuring the magnetic field comprises obtaining one or more magnetic field values using a magnetic field sensor configured to predict a plurality of magnetic field values based at least in part on a statistical and trend analysis of a plurality of measured magnetic fields;

time-tagging times when the magnetic field values were obtained using the timing signal;

measuring a time period associated with the current;

obtaining a plurality of voltage values on a low voltage part of the power grid using a voltage sensor configured to predict a plurality of voltage values based at least in part on a statistical and trend analysis of a plurality of measured voltages, wherein the voltage of the low voltage part of the power grid is reduced by a transformer relative to the voltage of the power transmission line;

time-tagging times when the voltage values were obtained using the timing signal;

measuring a time period associated with the voltage;

calculating a phase relationship between the one or more magnetic field values and the one or more voltage values, wherein calculating the phase relationship is based at least in part on the time period associated with the current, the time period associated with the voltage, the times when the magnetic field values were obtained, and the times when the voltage values were obtained; and

calculating the power, flowing in the electric power transmission line, from at least the magnetic field values, the voltage values, and the phase relationship,

wherein the magnetic field is measured proximate the transmission line, and

wherein, prior to transmitting the voltage values, the at least one voltage sensor is configured to:

obtain a plurality of voltage values based at least in part on measuring voltage values associated with the voltage in the electrical power transmission line;

compare each of the plurality of voltage values with a corresponding predicted voltage value; and

identify at least one of the obtained voltage values to include in the voltage values transmitted to the processor based on determining the at least one of the obtained voltage values deviates from a corresponding predicted voltage value.

10 . The method of claim 9 , wherein the calculating of the phase relationship comprises using a transfer function between different physical locations relative to the transmission line where the magnetic field is measured and the location on the power grid where the voltage is measured.

11 . The method of claim 10 , wherein the using the transfer function comprises using the measured magnetic field values as excitation data and the measured voltage values as response data in a network analysis.

12 . The method of claim 9 , wherein the calculating the power comprises transmitting to a processor the magnetic field values, the voltage values, the time period associated with the current, the time period associated with the voltage, and the phase relationship, and wherein the calculating the power comprises calculating one or more of a magnitude of the power, a direction of the power flowing in the electric power transmission line, a power factor, an active power, and a reactive power.

13 . The method of claim 9 , wherein, prior to transmitting the magnetic field values, the at least one magnetic field sensor is configured to:

obtain a plurality of magnetic field values based at least in part on measuring magnetic field values associated with the magnetic field generated by the current flowing in the electrical power transmission line;

compare each of the plurality of magnetic field values with a corresponding predicted magnetic field value; and

identify at least one of the obtained magnetic field values to include in the magnetic field values transmitted to the processor based on determining the at least one of the obtained magnetic field values deviates from a corresponding predicted magnetic field value.

14 . The method of claim 9 , wherein one or more of:

the at least one magnetic field sensor is configured to preclude transmission of one or more obtained magnetic field values in the magnetic field values transmitted to the processor; and

the at least one voltage sensor is configured to preclude transmission of one or more obtained voltage values in the voltage values transmitted to the processor.

15 . The method of claim 9 , further comprising:

predicting a plurality of magnetic field values, based at least in part on a statistical and trend analysis of the measured magnetic field values; and

predicting a plurality of voltage values, based at least in part on a statistical and trend analysis of the measured voltage values.

16 . The method of claim 15 , further comprising:

obtaining a plurality of magnetic field values based at least in part on measuring magnetic field values data associated with the magnetic field generated by the current flowing in the electrical power transmission line;

comparing each of the plurality of magnetic field values with a corresponding predicted magnetic field value; and

identifying at least one of the obtained magnetic field values to include in the magnetic field values transmitted to a processor based on determining the at least one of the obtained magnetic field values deviates from a corresponding predicted magnetic field value.

17 . The method of claim 16 , further comprising:

obtaining a plurality of voltage values based at least in part on measuring voltage values associated with the voltage in the electrical power transmission line;

comparing each of the plurality of voltage values with a corresponding predicted voltage value; and

identifying at least one of the obtained voltage values to include in the voltage values transmitted to a processor based on determining the at least one of the obtained voltage values deviates from a corresponding predicted voltage value.

18 . The method of claim 17 , wherein at least one of:

one or more obtained magnetic field values are excluded from the magnetic field values transmitted to the processor; and

one or more obtained voltage values are excluded from the voltage values transmitted to the processor.

19 . A method for measuring power flowing in an electric power transmission line of a power grid, the method comprising:

receiving a timing signal;

measuring a magnetic field generated by a current flowing in the electric power transmission line, wherein measuring the magnetic field comprises obtaining one or more magnetic field values;

time-tagging times when the magnetic field values were obtained using the timing signal;

measuring a time period associated with the current;

measuring voltages in the electric power transmission line, wherein measuring the voltages comprises obtaining one or more voltage values;

time-tagging times when the voltage values were obtained using the timing signal;

measuring a time period associated with the voltage;

calculating a phase relationship between the one or more magnetic field values and the one or more voltage values, wherein calculating the phase relationship is based at least in part on the time period associated with the current, the time period associated with the voltage, the times when the magnetic field values were obtained, and the times when the voltage values were obtained;

calculating the power, flowing in the electric power transmission line, from at least the magnetic field values, the voltage values, and the phase relationship;

predicting a plurality of magnetic field values, based at least in part on a statistical and trend analysis of the measured magnetic field values;

predicting a plurality of voltage values, based at least in part on a statistical and trend analysis of the measured voltage values;

obtaining a plurality of voltage values on a low voltage part of the power grid, wherein the voltage of the low voltage part of the power grid is reduced by a transformer relative to the voltage of the power transmission line;

comparing each of the plurality of voltage values with a corresponding predicted voltage value; and

identifying at least one of the obtained voltage values to include in the voltage values transmitted to a processor based on determining the at least one of the obtained voltage values deviates from a corresponding predicted voltage value,

wherein the magnetic field is measured proximate the transmission line and the voltages are measured on a portion of the power grid operating at a voltage lower than a voltage of the transmission line.

Assignments (3)
ASSIGNMENT OF SECURITY INTEREST IN INTELLECTUAL PROPERTY COLLATERAL Recorded Aug 15, 2025
From: PNC BANK, NATIONAL ASSOCIATION
To: HPS INVESTMENT PARTNERS, LLC, AS SUCCESSOR COLLATERAL AGENT
Reel/Frame 072491/0204 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Sep 27, 2022
From: GAARDER, PAAL EVEN
To: LIVE POWER INTELLIGENCE COMPANY NA, LLC
Reel/Frame 061552/0422 →
SECURITY INTEREST Recorded Aug 10, 2022
From: LIVE POWER INTELLIGENCE COMPANY NA, LLC
To: PNC BANK, NATIONAL ASSOCIATION, AS THE COLLATERAL AGENT
Reel/Frame 060772/0216 →
Continuity (4)
Continuation 16810479 · Mar 5, 2020
Continuation 12678272
Provisional Application 60973046 · Sep 17, 2007
Related Publication 20210033651A1 · Feb 4, 2021
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