IP Library › Granted Patent US 9,970,963
Granted Patent B2
US 9,970,963 · App. 14/374,207 · Granted May 15, 2018

Temperature compensated current measurement

Inventors: William Frederick Ray (Long Eaton, GB); Christopher Rene Hewson (Beeston, GB); Joanne Marie Aberdeen (Beeston, GB)
Assignee: Power Electronic Measurements Limited
G01R15/181G01R19/0092G01R19/32
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Quick Facts
Patent No.
US 9,970,963
App. No.
14/374,207
Granted
May 15, 2018
Kind
B2
Abstract

A temperature compensated current measurement device comprises a Rogowski coil having a terminating impedance arranged to adjust the attenuation of the coil to balance changes in coil sensitivity so that the output voltage indicative of measured current remains substantially unchanged, the terminating impedance having different values above and below a threshold frequency.

Claims (19)

1. A current measuring device comprising a conductive coil, said conductive coil being arranged to produce a voltage as a result of a current being measured by the current measuring device, said conductive coil having a temperature-dependent coil sensitivity factor associated therewith;

the device further comprising:

a terminating impedance connected to the conductive coil, said terminating impedance being arranged to attenuate the voltage produced by the conductive coil by a temperature-dependent attenuation factor and to connect the conductive coil to an output circuit, wherein the terminating impedance comprises a combination of a resistor and a capacitor; and

the output circuit, wherein the output circuit includes an active integrator to produce an output voltage indicative of the current being measured;

wherein the terminating impedance has a first impedance value below a predetermined threshold frequency for the output voltage and a second, different impedance value above said predetermined threshold frequency, wherein the first impedance value is arranged so that, when there is a temperature change in the conductive coil which causes a corresponding change in the coil sensitivity factor, the attenuation factor also changes so that the value of the output voltage remains substantially unchanged, and wherein said second impedance value is determined so that it provides damping in the conductive coil.

2. A current measuring device as claimed in claim 1 wherein the conductive coil comprises a Rogowski coil.

3. A current measuring device as claimed in claim 2 wherein the Rogowski coil comprises any of: a clip-around coil, a closed-loop coil, a printed circuit Rogowski coil and a coil wound on a non-conductive former.

4. A current measuring device as claimed in claim 1 wherein, in operation, the terminating impedance behaves like a resistor at least over a predetermined frequency range.

5. A current measuring device as claimed in claim 1 wherein said predetermined frequency threshold is greater than a range of frequencies for the measured current but lower than a natural frequency of the conductive coil.

6. A current measuring device as claimed in claim 1 wherein the conductive coil has an associated coil resistance wherein the value of the coil resistance is less than a value of the terminating impedance at least over part of an operational frequency range of the current measuring device.

7. A current measuring device as claimed in claim 6 wherein a value of the coil resistance associated with the conductive coil is temperature dependent.

8. A current measuring device as claimed in claim 1 wherein the active integrator includes an operational amplifier.

9. A method of measuring a current, comprising:

providing a current measuring device comprising a conductive coil, said conductive coil being arranged to produce a voltage as a result of a current being measured by the current measuring device, said conductive coil having a temperature-dependent coil sensitivity factor associated therewith;

wherein the providing the current measuring device includes:

providing a terminating impedance connected to the conductive coil, said terminating impedance being arranged to attenuate the voltage produced by the conductive coil by a temperature-dependent attenuation factor and to connect the conductive coil to an output circuit, wherein the terminating impedance comprises a combination of a resistor and a capacitor; and

providing an output circuit, wherein the output circuit includes an active integrator to produce an output voltage indicative of the current being measured; and

using the current measuring device to measure the current, wherein the using the current measuring device to measure the current includes:

providing, with the terminating impedance, a first impedance value below a predetermined threshold frequency for the output voltage and a second, different impedance value above said predetermined threshold frequency, wherein the first impedance value is arranged so that, when there is a temperature change in the conductive coil which causes a corresponding change in the coil sensitivity factor, the attenuation factor also changes so that the value of the output voltage remains substantially unchanged, and wherein said second impedance value is determined so that it provides damping in the conductive coil.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Oct 8, 2014
From: RAY, WILLIAM FREDERICK; HEWSON, CHRISTOPHER RENE; ABERDEEN, JOANNE MARIE
To: POWER ELECTRONIC MEASUREMENTS LTD.
Reel/Frame 033915/0151 →
Priority Claims (1)
GB 1201992.3 · Feb 3, 2012 · national
Continuity (1)
Related Publication 20150015244A1 · Jan 15, 2015