Antenna connectivity with shielded twisted pair cable

Information

  • Patent Grant
  • 11313895
  • Patent Number
    11,313,895
  • Date Filed
    Tuesday, September 24, 2019
    4 years ago
  • Date Issued
    Tuesday, April 26, 2022
    2 years ago
Abstract
A sensor system for an electric power asset includes a sensor instrument coupleable to sensors associated with the electric power asset to receive sensor signals therefrom, and an antenna connection cable coupled to the sensor instrument. The antenna connection cable includes a cable sheath and a plurality of twisted pair signal carriers contained within the cable sheath to carry sensor signals received from the electric power asset. A first subset of the plurality of twisted pair signal carriers carry antenna signals and a second separate subset of the plurality of twisted pair signal carriers carry signals for partial discharge monitoring.
Description
FIELD

The present disclosure relates generally to radio frequency antenna connectivity, and more specifically, to use of shielded twisted pair cabling to carry multiple antenna signals including partial discharge monitoring signals for electric power assets.


BACKGROUND

Antenna connections typically use coaxial cable. In a coaxial cable, the outer conductor is typically connected to a case ground. For coaxial cable, the outer conductor of the cable is effectively an antenna when common mode signals are present. This antenna injects common mode signals into a system and can lead to problems with radio frequency interference (RFI). Therefore, coaxial cables have a poor common mode RFI immunity. This RFI is typically high when the environment involves high amounts of interference, especially those running motors, generators, and fast switching circuits. In addition to RFI, coaxial cables also transmit common mode signals and some reflected signals from poorly connected equipment or antennas, causing problems with electromagnetic radiated emissions compliance.


For example, wireless sensor systems used for sensing in electric power systems have a noise floor that is limited by common mode RFI injection. For the cable lengths used in electric power assets, the outer conductor of coaxial cable acts as a common mode antenna, leading to additional problems with RFI. Common mode signals are very common when cables connect different pieces of equipment in power plants and other electric power applications.


Electric power assets are often monitored for partial discharge. Partial discharge events may be determined in a variety of ways, including on UHF channels for detection. Such partial discharge becomes very difficult to detect above the noise floor, which is affected negatively by the poor common mode RFI immunity of coaxial cables, and the operation of the outer conductor of such cables as an antenna injecting common mode signals into the system. Electric power assets are also often monitored for the temperature of high voltage conductors using passive, wireless sensors. Passive, wireless, surface acoustic wave (SAW) sensors benefit from extremely low noise floors and would benefit from the improved RFI immunity of such cables. Silicon RFID sensors benefit from high effective transmitter power that is needed to energize the RFID element without contact.


Coaxial cables also do not lend themselves to multiple sensor types within a sensor interface, or for the use of multiple feed points within an antenna.


SUMMARY

In one embodiment, a sensor system for an electric power asset includes a sensor instrument coupleable to sensors associated with the electric power asset to receive sensor signals therefrom, and an antenna connection cable coupled to the sensor instrument. The antenna connection cable includes a cable sheath and a plurality of twisted pair signal carriers contained within the cable sheath to carry sensor signals received from the electric power asset. A first subset of the plurality of twisted pair signal carriers carry antenna signals and a second separate subset of the plurality of twisted pair signal carriers carry signals for partial discharge monitoring.


Implementations may include one or more of the following features. The sensor system where the first subset of twisted pair signal carriers include balanced radio frequency antenna signals between an external instrument and an antenna of the electric power asset. The sensor system where the first subset of twisted pair signal carriers carries signals to allow diversity antenna operation between an external instrument and an antenna of the electric power asset. The sensor system where each of the first subset of twisted pair signal carriers carries a signal between an external instrument and a different feed point for an antenna of the electric power asset. The sensor system where each of the first subset of twisted pair signal carriers carries a signal between an external instrument and an antenna feeding a different frequency band for an antenna of the electric power asset. The sensor system where each of the first subset of twisted pair signal carriers carries a signal having a different polarization between an external instrument and an antenna of the electric power asset. The sensor system where each of the first subset of twisted pair signal carriers carries a signal using a different resonance for an antenna of the electric power asset. The sensor system where each of the first subset of twisted pair signal carriers carries a signal from a different type of radiator for an antenna of the electric power asset. The sensor system where the sensor instrument includes different coupler types for different connections to the electric power asset. The sensor system where at least one twisted pair of the second subset of twisted pair signal carriers carries a photodetection signal from a photoelectric partial discharge monitor of the electric power asset. The sensor system where at least one twisted pair of the second subset of twisted pair signal carriers carries an audio signal from a microphone-based partial discharge monitor of the electric power asset. The sensor system where at least one twisted pair of the second subset of twisted pair signal carriers carries a humidity signal. The sensor system where at least one twisted pair of the second subset of twisted pair signal carriers carries an ambient temperature signal.


In another embodiment, an antenna for an electric power asset includes an antenna connection cable coupled to a sensor instrument. The antenna connection cable includes a cable sheath and a plurality of twisted pair signal carriers contained within the cable sheath to carry sensor signals between the electric power asset and an external sensor interface. A first subset of the plurality of twisted pair signal carriers carries antenna signals and a second separate subset of the plurality of twisted pair signal carriers carry signals for partial discharge monitoring.


Implementations may include one or more of the following features. The antenna may be used with a sensor system for the electric power asset, including at least one integrated sensor for at least one of environmental signals and partial discharge monitoring of the electric power asset, said at least one integrated sensor interfaced to at least one of said twisted pairs. The integrated sensor further includes humidity or ambient temperature sensors, and the antenna connection cable carries humidity or ambient temperature signals of the humidity or ambient temperature sensors on individual twisted pairs of the second separate subset of the plurality of twisted pair signal carriers. The antenna where at least one twisted pair of the second subset of twisted pair signal carriers carries a photodetection signal from a photoelectric partial discharge monitor of the electric power asset. The antenna where at least one twisted pair of the second subset of twisted pair signal carriers carries an audio signal from a microphone-based partial discharge monitor of the electric power asset. The antenna further includes a sensor system for the electric power asset, including at least one integrated sensor for at least one of environmental signals and partial discharge monitoring of the electric power asset, the at least one integrated sensor communicating wirelessly using at least one antenna element coupled to at least one twisted pair. The antenna where the first subset of twisted pair signal carriers include balanced radio frequency antenna signals for the antenna of the electric power asset.


In another embodiment, a method of monitoring an electric power asset for partial discharge includes receiving partial discharge signals on a multiple-pair, shielded twisted pair cable having a plurality of twisted pair signal carriers. Receiving includes receiving partial discharge radio frequency emission signals on a first subset of the plurality of twisted pair signal carriers. The method of monitoring also includes transmitting control signals and receiving sensor signals for partial discharge monitoring on a second separate subset of the plurality of twisted pair signal carriers.


Implementations may include a method where transmitting antenna signals further includes transmitting balanced radio frequency antenna signals for an antenna of the electric power asset to allow diversity antenna operation for an antenna of the electric power asset.





BRIEF DESCRIPTION OF DRAWINGS


FIG. 1A is a cutaway view of a shielded twisted pair cable on which embodiments of the present disclosure may be practiced.



FIG. 1B is a cutaway view of another shielded twisted pair cable on which embodiments of the present disclosure may be practiced.



FIG. 2 is a graph showing power/frequency curves for various cables.



FIG. 3 is a diagram of a sensor system according to an embodiment of the present disclosure.



FIG. 4 is a partial circuit diagram of a system according to another embodiment of the present disclosure.



FIG. 5 is a partial circuit diagram of a system according to another embodiment of the present disclosure.



FIG. 6 is a flow chart of a method according to another embodiment of the present disclosure.





DETAILED DESCRIPTION

Embodiments of the present disclosure provide multiple-pair, shielded twisted pair (STP) cables, and a sensor suite, the sensor suite for monitoring sensors interrogated via antenna signals and for partial discharge monitoring of an electric power asset, either by antenna signals or by conductively coupled sensors. The sensor suite may include radio frequency antenna signals including using multiple feed points, different polarizations, and the like. The sensor suite may also include partial discharge detection sensors such as an ultraviolet photodiode and/or an ultrasonic microphone. All signals are carried in the single multiple-pair STP bundle. Antenna signals may be passively monitored for very high frequency (VHF) or ultrahigh frequency (UHF) partial discharge detection or may be transceiver signals for interrogation of passive, wireless sensors in the sensor suite.


Shielded twisted pair (STP) cables combine good RFI rejection with shielding that is not a part of the signal transmission path. This contrasts with coaxial cable. In addition, STP cable has a smaller signal loss than typical low-loss coaxial cables of similar cross-section. Crosstalk between twisted pairs in a multiple-STP cable is also small. Examples of STP that provide low loss and balanced signals within a shield that is not part of the transmission path include by way of example only and not by way of limitation, CAT7A and better STP cables.


STP cables allow for the use of multiple independent signals within a single cable, which is also not available using coaxial cabling. The ability to provide multiple radio frequency (RF) and broadband signals over a single cable improves partial discharge analysis within a system employing such cables.


STP cable offers transmission bandwidths exceeding 1 GHz with losses at 433 MHz that are more than 10% lower than low-loss coaxial cable of comparable per-signal cross-section. The reduced losses offer better noise figure and better sensitivity for small signal detection. They also offer increased radiated power under a given conducted power limitation and better read range for a passive, wireless sensor. The use of balun transformers at an instrument side of a cable run using twisted pair cabling provides a balanced line with significantly reduced common mode interference even without using a shield. Using a shield that is not a part of the transmission circuit further improves the reduction in common mode interference.


The comparatively low losses of shielded twisted pair cables can also offer lower noise figure (NF) and higher sensitivity for radio receivers, higher effective radiated power (ERP) under a given conducted power limitation, reduced spurious emissions levels from the cable, further read range, and better interrogation reliability for silicon RFID.


Shielded twisted pair cables allow a dense collection of multiple signal types, including radio transmitter, radio receiver, monostatic and bistatic radio transceivers, analog signals, and digital signals.



FIG. 1A is a block diagram showing a multiple-pair STP cable 100 showing unshielded twisted pairs 104, 106, 108, and 110, and having an outer foil cable shield 102. Such a multiple twisted pair cable is referred to as an F/UTP (foil outer/unshielded twisted pair) cable. CAT8/8.1 cables typically use F/UTP construction.



FIG. 1B is a block diagram a multiple-pair STP cable 150 showing twisted pairs 154, 156, 158, and 160 having foil shielding 155, 157, 159, 161, respectively, and having an outer braided cable shield 152. Such a multiple twisted pair cable is referred to as an S/FTP (braided shield outer/foil shielded twisted pair) cable. Cables in which the outer shield is foils are sometimes called F/FTP. CAT7A and CAT8.2 cables typically use S/FTP construction or F/FTP construction. Each of the cable types is suitable for use with embodiments of the present disclosure, provided the overall level of the cable is CAT7A or better. S/FTP cables are expected to better shield against cross-talk between pairs and offer pair to pair protection from certain high voltage transients of limited energy such as electrostatic discharge and electrical fast transients.


Such multiple-pair STP cables, in one embodiment of the present disclosure, allow an antenna for assets such as electric assets to use a single cable, while providing diversity antenna operation within the antenna connection cable. This significantly simplifies installation of sensor suites and reduces wiring mistakes. Such diversity antenna operation includes in one embodiment the use of multiple feed points that are independently connected. Such multiple feed points allow for improvement of overall bandwidth in one embodiment by having different feed points access different portions of the spectrum. Alternatively, the multiple pairs of the multiple-pair STP may be used to drive different polarizations electromagnetic waves, providing diversity properties to overcome standing wave nulls that are common in metal enclosed electric power assets. In yet another embodiment, one or more pairs of the STP cable may be used to carry alternate signals for use in partial discharge monitoring, such as ultraviolet photodiode signals of ultrasonic sensor signals. Such additional signals allow for a more complete sensor suite to be used in certain applications such as partial discharge monitoring, all within a single cable. In yet another embodiment, one or more pairs of the STP cable may be used to carry alternate signals for monitoring ambient conditions such as air temperature and humidity.


The use of STP cables having multiple twisted pairs allows for the alternate sensor signals to be electrically isolated from the antenna. STP has very good electromagnetic compatibility properties. Therefore, line to line protection, which is required in some application, may be performed to reduced levels or even eliminated within the STP. Further, line to earth common mode surge requirements are also reduced, in one embodiment to half that of asymmetric lines in standards such as IEC61000-6-5.



FIG. 2 is a chart 200 showing power versus frequency for CAT7A, CAT8, and coaxial LMR-100 cables. Curve 202 shows performance of CAT7A STP cabling. Curve 204 shows performance of CAT8 STP cabling. Curve 206 shows performance of LMR-100 coaxial cable. Curves 208 and 210 show power for CAT8 and LMR-100 cables, respectively. For performance, a CAT7A cable with a 10 meter length has 1 dB less loss than LMR-100 coaxial cable at 433 MHz, and 2 dB less loss than LMR-100 at 1600 MHz. CAT8 cables have similar performance to CAT7A cables, but operate to higher frequencies, 2 GHz or more. Converting from the external balanced lines to unbalanced lines typical of electronic circuits at RF, such as with baluns, reduces common mode conducted interference into the circuit or unwanted common mode emissions out of the circuit.


A sensor system 300 for an electric power asset is shown in block diagram form in FIG. 3. System 300 comprises, in one embodiment, a sensor instrument 302 coupleable to sensors associated with, placed within, or affixed upon an electric power asset 360 to receive sensor signals therefrom, and an antenna connection cable(s) 304 coupled to the sensor instrument 302 and an antenna 320. The antenna connection cable 304 in one embodiment includes a cable sheath 306, and a plurality of twisted pair signal carriers 308 contained within the cable sheath 306. The sheath is in one embodiment conductively coupled to the metal earth grounds of the electrical power asset and of the instrument. The twisted pair signal carriers 308 carry sensor signals transmitted to or received from the electric power asset. In one embodiment, the cable 304 couples to the sensor interface using a CAT6A or similar Ethernet connector 310. Sensor instrument 302 is coupleable to at least one power asset, or to various signals from a power asset, using suitable connectors 312.


Preferably antenna 320 comprises an antenna or an antenna array and conductively connected sensors are integrated into the antenna or antenna array. Optionally, conductively coupled sensors may connect to connectors 312. Optionally, passive wireless sensors 340 measuring the properties of electrical asset 360 are interrogated by signals transmitted by antenna element 314 with the interrogation result received by antenna element 314. When transmitting and receiving occur simultaneously, as in typical RFID systems, the transceiver is monostatic. When transmission ends and reception occurs after a delay, as is typical of radar systems and passive SAW sensors, the transceiver is bistatic. Optionally, at least one passive, wireless sensor 341 is embedded within antenna 320. Optionally a receive-only functionality within the sensor instrument is coupled by a twisted pair to an antenna element 316 which monitors for radio emissions from partial discharge arcs 350 within the electrical power asset 360.


In one embodiment, the cable 304 has four twisted pairs 308 therein. Configuration for the signals carried by the four twisted pairs may take various configurations. In one embodiment, the twisted pair signal carriers contained within the cable sheath carry sensor signals transmitted to or received from the electric power asset. A subset of the twisted pair signal carriers carries signals for diversity antenna operation. In one embodiment, two twisted pairs are used to carry signals from two different feeds for different polarizations or frequency bands and are used for a diversity antenna configuration. In one embodiment, a first subset of the twisted pair signal carriers carries antenna signals such as for antenna functions. Pairs within the first subset receive signals and may optionally transmit signals. Some of the received signals may be related to radio frequency detection of partial discharge within an electrical asset while others may be related to the sensors in the sensor system. An optional second separate subset of the plurality of twisted pair signal carriers carry signals for alternate partial discharge monitoring. These antenna connections may provide partial discharge monitoring by receiving signals from an antenna feed point or may interrogate passive, wireless sensors by transmitting interrogation signals and receiving interrogation responses. In that embodiment, the two remaining twisted pair signal carriers carry alternative signals for partial discharge monitoring. The alternative partial discharge monitoring signals may include signals from various partial discharge monitoring sensors such as an ultraviolet photodiode and an ultrasonic microphone to monitor partial discharge events or additional antenna elements offering added frequency or spatial diversity. In order to provide proper matching of impedances and isolation from, for example, discharge or other interference events, suitable matching and protection circuitry may also be employed, as one of ordinary skill in the art will recognize and understand.


In another embodiment, an antenna for an electric power asset is part of a sensor system for the electric power asset, the sensor system having a number of sensors coupled to antenna signals and further transferring signals for partial discharge monitoring of the electric power asset onto the cable coupling the antenna to the sensor instrument of the sensor system. A sensor instrument is coupleable to the antenna to receive sensor signals therefrom.



FIG. 4 shows an example of a system 400 such as that described above with respect to FIG. 3, having an antenna side 402 and an instrument side 404 connected via a multiple pair STP cable 406. Connectors 408 and 410 couple the cable 406 to the antenna and instrument sides, respectively. In one embodiment, an antenna such as antenna 320 is employed having additional sensor connections, as described above. In another embodiment, the conductively coupled sensors are enclosed within the antenna 402.


In the embodiment of FIG. 4, two ultrahigh frequency RF channels 412, 414 are each coupled to a twisted pair of cable 406 for UHF antenna activity. These channels may have different feed points, different polarizations, or different frequency bands for diversity antenna operation or may serve different functions. In FIG. 4 antenna element 412 transmits and receives interrogation signals for passive, wireless sensors 340, which may be SAW sensors, RFID sensors, or other sensors, while antenna element 414 passively detects UHF emissions from partial discharge arc 350. The channels are balanced and isolated at instrument side 404 by suitable balancing and protection circuitry 424. It should be understood that different balancing and protection schemes may be employed without departing from the scope of the disclosure. Such balancing and protection schemes are known to those of ordinary skill in the art and are not further described herein.


Also in FIG. 4, channel 416 couples an ultraviolet photodiode sensor 420 to a third twisted pair of cable 406. Channel 418 couples an ultrasonic microphone (e.g., a micro-electro-mechanical “MEMS” sensor) 422 to a fourth twisted pair of cable 406. The channels 416 and 418 are used in this embodiment for partial discharge monitoring using photodiode 420 and microphone 422. Suitable matching and protection circuitry 426 for the partial discharge detection/monitoring elements is employed. It should be understood that different balancing and protection schemes may be employed without departing from the scope of the disclosure. Such balancing and protection schemes are known to those of ordinary skill in the art and are not further described herein.



FIG. 5 shows an example of a system 600 using a cable such as that described above with respect to FIGS. 1-2, having a long (on the order of 100-200 meters) STP cable connecting electrical assets that employ partial distance monitoring, but that do not have an ability to locally place electronics and an instrumentation panel. In the example as shown in FIG. 6, industrial explosion-proof requirements may place an abnormal cost burden on locating a powered device. The embodiment of FIG. 5 provides two converters, sending unit 602 located at an electric power asset, and receiving unit 604 located near a reader. Each unit 602, 604 has three RF ports 606, 608. The receiving unit 604 uses DC power and transmits power over a UL/ATEX (Underwriters Laboratory/atmosphères explosibles) rated barrier to the remote sending unit 602. Explosion-proof interfaces are provided between the RF ports 606, 608 and a shielded-twisted pair (STP) link cable 610 connected via suitable connectors 611 (in one embodiment, RJ-45 connectors). The sending unit 602 provides DC power to RF preamplifiers 612 (one shown), amplifies partial discharge signals received from the asset through RF ports 606 to mitigate cable losses over the STP link cable 610, and balances with balun 614. With a 20 dB gain preamplifier, cable 610 may extend to lengths of up to 200 meters (assuming 0.1 dB/m attenuation), using attenuators 616 (one shown) at the receiving unit 604 to balance the net gain to 0 dB.


In another embodiment, a method of monitoring an electric power asset includes transmitting and receiving radio frequency antenna signals and receiving partial discharge signals on a multiple-pair shielded twisted pair cable having a plurality of twisted pair signal carriers. Transmitting and receiving include transmitting signals from an instrument for an antenna on a first subset of the plurality of twisted pair signal carriers while receiving a return signal from a sensor on the same plurality of twisted pair signal carriers at the instrument from the antenna. Receiving further includes receiving signals for partial discharge monitoring on a second separate subset of the plurality of twisted pair signal carriers at the instrument from the antenna. Optionally, the same antenna element and twisted pair may transmit and receive signals to measure a sensor at some times and passively receive radio signals related to partial discharge at other times.



FIG. 6 is a flow chart diagram of a method 700 for monitoring an electric power asset. The method sequentially performs one or more of tasks 710 “Measure Passive Sensor”, 720 “Monitor Partial Discharge Wirelessly”, and 730 “Monitor Conductively Coupled Sensors”. Task 710 has steps 711 transmitting radio frequency interrogation signals on the twisted pair, 712 radiate interrogation signals from antenna element, 713 reflect response signal from sensor, 714, receive response signal by antenna, and 715 receive response signal on twisted pair. Task 720 has steps 721 wherein partial discharge arc occurs and radio waves are emitted, 724 wherein an antenna receives partial discharge signals, and 725 wherein an instrument receives partial discharge signals on twisted pair. Task 730 has steps 731 to optionally transmit interrogation command and 735 to receive sensor value on twisted pair. Step 731 would not be required for analog sensors that constantly send a measurement or for digital devices that do not require an interrogation command. Interrogated sensors might measure ultraviolet light or ultrasonic emissions of the partial discharge that accompany radio wave emissions or might measure humidity or other operational and environmental conditions.


Transmitting signals for an antenna further comprises in one embodiment transmitting balanced radio frequency antenna signals from an instrument to an antenna of the electric power asset to allow diversity antenna operation for the antenna of the electric power asset. Transmitting signals allowing diversity antenna operation may comprise transmitting signals using a plurality of feed points of an antenna or antenna array of the electric power asset, transmitting signals from a plurality of feed points having different frequency bands for an antenna of the electric power asset, transmitting signals from a plurality of feed points having different polarizations for an antenna or antenna array of the electric power asset, transmitting signals using a different resonance for an antenna of the electric power asset, transmitting signals from a different type of radiator for an antenna of the electric power asset, or the like. In one embodiment, transmitted signals from the instrumentation interrogate passive, wireless sensors. The return signal from such sensors is then received and returned to the instrument.


Receiving signals for partial discharge wireless monitoring further comprises in one embodiment receiving balanced radio frequency antenna signals by the instrument from an element of an antenna of the electric power asset to allow diversity antenna operation for an antenna of the electric power asset. Receiving signals allowing diversity antenna operation may comprise receiving signals using a plurality of feed points of an antenna or antenna array of the electric power asset, receiving signals from a plurality of feed points having different frequency bands for an antenna of the electric power asset, receiving signals from a plurality of feed points having different polarizations for an antenna or antenna array of the electric power asset, receiving signals using a different resonance for an antenna of the electric power asset, receiving signals from a different type of radiator for an antenna of the electric power asset, or the like. Such interrogations may be time-interleaved with transmitting and receiving passive sensor signals or may occur on distinct and separate twisted pairs of the cable.


Partial discharge control signals that may be transmitted and sensor signals that may be received on the second subset of the plurality of twisted pair signal carriers include by way of example only, and not by way of limitation, a photodetection signal from a photoelectric partial discharge monitor of the electric power asset, and/or an audio signal from a microphone-based partial discharge monitor of the electric power asset. Further twisted pairs of the second subset of the plurality of twisted par signal carriers may transmit temperature and humidity signals.


Although the present embodiments have been described with specificity, workers skilled in the art will recognize that changes may be made in form and detail without departing from the scope of the disclosure. Although the subject matter has been described in language directed to specific environments, structural features and/or methodological acts, it is to be understood that the subject matter defined in the appended claims is not limited to the environments, specific features or acts described above as has been held by the courts. Rather, the environments, specific features and acts described above are disclosed as example forms of implementing the claims.


The forgoing discussions address a first and a second subset and it should be obvious to the reader that the order of discussion is immaterial. Throughout the discussion above and the claims below, the first subset that is discussed in the context of that paragraph is the “first subset” and thereafter subsets are described as they appear in the paragraph or claim.

Claims
  • 1. A sensor system for an electric power asset, comprising: a sensor instrument including a first antenna configured to wirelessly couple to a standing acoustic wave (SAW) sensor associated with the electric power asset to receive sensor signals therefrom and a second antenna configured to receive a radio frequency signal from the electrical power asset indicative of a partial discharge; andan antenna connection cable coupled to the first antenna and the second antenna of the sensor instrument, the antenna connection cable comprising: a cable sheath; anda plurality of twisted pair signal carriers contained within the cable sheath to carry sensor signals received from the electric power asset comprising a first twisted pair coupled to the first antenna and a second twisted pair coupled to the second antenna;wherein a first twisted pair of the plurality of twisted pair signal carriers carry antenna signals from the first antenna and a second separate twisted pair of the plurality of twisted pair signal carriers carry signals from the second antenna for partial discharge monitoring.
  • 2. The sensor system of claim 1, wherein the first twisted pair of twisted pair signal carriers comprise balanced radio frequency antenna signals between an external instrument and an antenna of the electric power asset.
  • 3. The sensor system of claim 1, wherein the first twisted pair of twisted pair signal carriers carries signals to allow diversity antenna operation between an external instrument and an antenna of the electric power asset.
  • 4. The sensor system of claim 3, wherein each of the first twisted pair of twisted pair signal carriers carries a signal between an external instrument and a different feed point for an antenna of the electric power asset.
  • 5. The sensor system of claim 1, wherein each of the first twisted pair of twisted pair signal carriers carries a signal between an external instrument and an antenna feeding a different frequency band for an antenna of the electric power asset.
  • 6. The sensor system of claim 1, wherein each of the first twisted pair of twisted pair signal carriers carries a signal having a different polarization between an external instrument and an antenna of the electric power asset.
  • 7. The sensor system of claim 1, wherein each of the first twisted pair of twisted pair signal carriers carries a signal using a different resonance for an antenna of the electric power asset.
  • 8. The sensor system of claim 1, wherein each of the first twisted pair of twisted pair signal carriers carries a signal from a different type of radiator for an antenna of the electric power asset.
  • 9. The sensor system of claim 1, wherein the sensor instrument comprises different coupler types for different connections to the electric power asset.
  • 10. The sensor system of claim 1, wherein at least one twisted pair of the second twisted pair of twisted pair signal carriers carries a photodetection signal from a photoelectric partial discharge monitor of the electric power asset.
  • 11. The sensor system of claim 1, wherein at least one twisted pair of the second twisted pair of twisted pair signal carriers carries an audio signal from a microphone-based partial discharge monitor of the electric power asset.
  • 12. The sensor system of claim 1, wherein at least one twisted pair of the second twisted pair of twisted pair signal carriers carries a humidity signal.
  • 13. The sensor system of claim 1, wherein at least one twisted pair of the second twisted pair of twisted pair signal carriers carries an ambient temperature signal.
  • 14. A method of monitoring an electric power asset for partial discharge, comprising: receiving partial discharge signals on a multiple-pair, shielded twisted pair cable having a plurality of twisted pair signal carriers, wherein receiving comprises:receiving partial discharge radio frequency emission signals on a first twisted pair of the plurality of twisted pair signal carriers from a first antenna; andwirelessly transmitting control signals and wirelessly receiving sensor signals from a standing wave acoustic sensor for partial discharge monitoring on a second separate twisted pair of the plurality of twisted pair signal carriers coupled to a second antenna.
  • 15. The method of claim 14, wherein transmitting antenna signals further comprises transmitting balanced radio frequency antenna signals for an antenna of the electric power asset to allow diversity antenna operation for an antenna of the electric power asset.
US Referenced Citations (87)
Number Name Date Kind
3938034 Japenga Feb 1976 A
4904996 Fernandes Feb 1990 A
4937763 Mott Jun 1990 A
5063931 Leavitt Nov 1991 A
5602709 Al-Dabbagh Feb 1997 A
5612930 Hazony et al. Mar 1997 A
5815352 Mackenzie Sep 1998 A
5933012 Bengtsson et al. Aug 1999 A
6002260 Lau et al. Dec 1999 A
6124680 Shoji et al. Sep 2000 A
6172862 Jonnatti et al. Jan 2001 B1
6297642 Shibahara et al. Oct 2001 B1
6424162 Rokunohe et al. Jul 2002 B1
6483316 Kato et al. Nov 2002 B2
6577138 Zuercher et al. Jun 2003 B2
6774639 Unsworth Aug 2004 B1
7071701 Roman et al. Jul 2006 B2
7577535 Anderson et al. Aug 2009 B2
7676333 Younsi et al. Mar 2010 B2
7912660 Anderson et al. Mar 2011 B2
8271213 Xu et al. Sep 2012 B2
8466690 Stewart et al. Jun 2013 B2
8929036 Nayak et al. Jan 2015 B2
9322881 Sakurai et al. Apr 2016 B2
9372221 Bierman Jun 2016 B1
9383402 Fukasawa et al. Jul 2016 B2
9733285 Kennedy et al. Aug 2017 B2
9753080 Andle et al. Sep 2017 B2
10379151 Daoudi et al. Aug 2019 B2
10444273 Ikegami et al. Oct 2019 B2
20030093390 Onoda et al. May 2003 A1
20040109269 Kawate et al. Jun 2004 A1
20040193303 Fore, Sr. et al. Sep 2004 A1
20050035768 Rabach et al. Feb 2005 A1
20050194979 Roman et al. Sep 2005 A1
20060095220 Vrba et al. May 2006 A1
20070059986 Rockwell Mar 2007 A1
20070121261 Sung May 2007 A1
20070272827 Heo et al. Nov 2007 A1
20080133154 Krauss Jun 2008 A1
20080204950 Zhou et al. Aug 2008 A1
20080309351 Steward et al. Dec 2008 A1
20090119035 Younsi et al. May 2009 A1
20090251308 Schweitzer, III et al. Oct 2009 A1
20100072355 Schweitzer, III et al. Mar 2010 A1
20100114392 Lancaster May 2010 A1
20100271152 Sabah et al. Oct 2010 A1
20100315065 Durston Dec 2010 A1
20110234215 Ausserlechner Sep 2011 A1
20110234362 Koehler et al. Sep 2011 A1
20110249370 Nayak et al. Oct 2011 A1
20120134058 Pamer et al. May 2012 A1
20120185185 Bae et al. Jul 2012 A1
20130039377 Kagiwada et al. Feb 2013 A1
20130192376 Zhou et al. Aug 2013 A1
20130226479 Grosjean Aug 2013 A1
20130234726 Hobelsberger Sep 2013 A1
20140270205 Miller Sep 2014 A1
20140336479 Ando Nov 2014 A1
20140347069 Krumpholz et al. Nov 2014 A1
20150015303 Sakurai et al. Jan 2015 A1
20150043310 Maas et al. Feb 2015 A1
20150160098 Noda et al. Jun 2015 A1
20150204936 Fukasawa et al. Jul 2015 A1
20150253362 Louzir et al. Sep 2015 A1
20150260778 Park et al. Sep 2015 A1
20150301102 Daoudi et al. Oct 2015 A1
20150317229 Wada et al. Nov 2015 A1
20160003900 Narayanan et al. Jan 2016 A1
20160116520 De Stefano et al. Apr 2016 A1
20160161543 Andle Jun 2016 A1
20160209454 McCammon et al. Jul 2016 A1
20160209459 Tozzi et al. Jul 2016 A1
20160231375 Roemer et al. Aug 2016 A1
20170038424 Ikegami et al. Feb 2017 A1
20170074920 Di Stefano Mar 2017 A1
20170168024 Dehghan Niri Jun 2017 A1
20170193252 Ehrhardt et al. Jul 2017 A1
20180062003 Luan et al. Mar 2018 A1
20180097531 Kummaraguntla Apr 2018 A1
20180114688 Qian Apr 2018 A1
20180115144 Murnane Apr 2018 A1
20180159310 Yang Jun 2018 A1
20180252760 Andle et al. Sep 2018 A1
20180356357 Samarao Dec 2018 A1
20190250198 Kubena et al. Aug 2019 A1
20190383872 Andle et al. Dec 2019 A1
Foreign Referenced Citations (52)
Number Date Country
2 192 856 Sep 2000 CA
2 455 206 May 2012 CA
2 821 795 Jul 2012 CA
1407345 Apr 2003 CN
102193052 Sep 2011 CN
203025311 Jun 2012 CN
102621377 Aug 2012 CN
202502197 Oct 2012 CN
102934308 Feb 2013 CN
103913663 Jul 2014 CN
104914358 Sep 2015 CN
106199362 Dec 2016 CN
205880182 Jan 2017 CN
106461721 Feb 2017 CN
106772170 May 2017 CN
107238811 Oct 2017 CN
211653042 Oct 2020 CN
26 41 047 Mar 1978 DE
10 2015 113804 Feb 2017 DE
0 061 254 Oct 1985 EP
1 566 646 Aug 2005 EP
1 222 472 Aug 2006 EP
2 063 276 May 2009 EP
2 437 075 Apr 2012 EP
2 324 364 May 2012 EP
2 608 338 Jun 2013 EP
2 763 259 Jun 2014 EP
3 121 610 Jan 2017 EP
3 141 911 Mar 2017 EP
1 181 357 Jun 1959 FR
2 321 713 May 1998 GB
5-107301 Apr 1993 JP
3082132 Aug 2000 JP
2002-131366 May 2002 JP
2004-61358 Feb 2004 JP
2011-095036 May 2011 JP
4840050 Dec 2011 JP
10-2013-0060442 Jun 2013 KR
10-1280763 Jul 2013 KR
10-1285146 Jul 2013 KR
2 483 315 May 2013 RU
201 340 135 Oct 2013 TW
WO 2007070942 Jun 2007 WO
WO 2013038210 Mar 2013 WO
WO 2013124886 Aug 2013 WO
WO 2013131948 Sep 2013 WO
WO 2013136793 Sep 2013 WO
WO 2013139131 Sep 2013 WO
WO 2014053187 Apr 2014 WO
WO 2017053187 Apr 2014 WO
WO 2014189975 Nov 2014 WO
WO 2017029415 Feb 2017 WO
Non-Patent Literature Citations (35)
Entry
“Partial Discharge Theory and Applicants to Electrical Systems”, by G. Paoletti et al., IEEE IAS Pulp and Paper Industry Conference in Seattle, WA, 1999.
“Advantages of Continuous Monitoring of Partial Discharges in Rotating Equipment and Switchgear”, by C. Kane et al., 8 pgs.
“Continuous Partial Discharge Monitoring with Assessed Condition Trending System (ACTS)”, by C. Wendel et al., Cigre-Mexico, 2001.
“Ubiquitous UHF Monitoring System for Partial Discharge Detection and Trending”, by J. Andle et al., IEEE, 2015.
Oil, Gas, and Petrochemicals Users Group Meeting, 2012, 2 pgs.
Notification of Transmittal of the International Search Report and the Written Opinion of the International Searching Authority from PCT/US2018/020585, dated Jun. 25, 2018.
“Ubiquitous, On-Line, Partial Discharge Trending”, by J. Andle et al., Electrical Insulation Conference (EIC) San Antonio, TX, Jun. 2018, IEEE, 6 pgs.
“Using Continuous Temperature Monitoring to Avoid Critical Asset Failure” by J. Andle et al., Electric Light & Power, Jul. 2015, 7 pgs.
“Partial Discharge Testing: A Progress Report” by V. Warren, PD Progress Report, IRMC 2013, 11 pgs.
“Ameren Illinois Smart Grid Test Bed Evaluation”, by B. Snyder et al., Quanta Technology, LLC, 2017, 30 pgs.
“Analytics Use Cases and Foundational Components”, IEEE BDA Webinar Series: Big Data & Analytics for Power Systems, Dec. 8, 2017, 12 pgs.
Invitation to Pay Additional Fees from PCT/US2018/057461, dated Jan. 23, 2019.
“Preventing Transmission Line Damage Caused by Ice with Smart On-Line Conductor Monitoring”, by N. Gubeljak et al., IEEE, 2016, 10 pgs.
“Dynamic Thermal Ratings Realize Circuit Load Limits”, by D. Douglass et al., IEEE Computer Applications in Power, 2000, 8 pgs.
“Real-Time Monitoring and Dynamic Thermal Rating of Power Transmission Circuits”, by D. Douglass et al., IEEE Transactions on Power Delivery, vol. 11, No. 3, Jul. 1996, 12 pgs.
“Network Planning Evaluation Implementing Time Varying Thermal Ratings”, by A. Kapetanaki et al., IEEE, 2014, 6 pgs.
“Electothermal Coordinating in Cable Based Transmission Grids”, by R. Olsen et al., IEEE Transactions on Power Systems, vol. 28, No. 4, Nov. 2013, 8 pgs.
Notification of Transmittal of the International Search Report and the Written Opinion of the International Searching Authority from PCT/US2015/064385, dated Mar. 30, 2016.
“Advanced Measuring System for the Analysis of Dielectric Parameters including PD Events”, by Lemke et al., Electrical Insulation Conference and Electrical Manufacturing & Coil Winding Conference, Oct. 1999.
Office Action from U.S. Appl. No. 14/961,321 dated Jan. 10, 2017.
Notification of Transmittal of the International Search Report and the Written Opinion of the International Searching Authority from PCT/US2018/057461, dated Apr. 18, 2019.
Notification of Transmittal of the International Search Report and the Written Opinion of the International Searching Authority from PCT/US2019/018392, dated Jun. 3, 2019.
Notification of Transmittal of the International Search Report and the Written Opinion of the International Searching Authority from International Application No. PCT/US2019/027669, dated Jul. 23, 2019.
Communication from European Patent Application No. 18712051.4, dated Sep. 18, 2019.
Office Action from Chinese Patent Application No. 201920428356.3, dated Nov. 7, 2019.
Notification of Transmittal of the International Search Report and the Written Opinion of the International Searching Authority from International Application No. PCT/US2019/053726, dated Dec. 17, 2019.
Office Action from U.S. Appl. No. 16/227,478, dated Feb. 5, 2020.
Office Action (including translation) from Chinese Application No. 201920428356.3, dated Apr. 10, 2020.
Office Action from Chinese Patent Application No. 201880000347.2, dated May 28, 2020 including partial translation.
Office Action from Chinese Patent Application No. 201880000347.2, dated Feb. 2, 2021, English Summary.
Office Action from Chinese Patent Application No. 201910256390.1, dated Apr. 2, 2021.
Office Action from U.S. Appl. No. 16/232,194, dated Apr. 27, 2021.
Office Action from Chinese Patent Application No. 201910256390.1, dated Aug. 12, 2021.
Office Action from Chinese Patent Application No. 201880000347.2, dated Aug. 4, 2021.
Office Action from U.S. Appl. No. 15/910,106, dated Jul. 27, 2021.
Related Publications (1)
Number Date Country
20210088572 A1 Mar 2021 US