Showing posts with label energy. Show all posts
Showing posts with label energy. Show all posts

Friday, January 3, 2014

Expanding Commitment to Ensure Reliability and Performance of Electric Transmission and Distribution Systems

LIOS Technology has a rich experience in applying its distributed temperature sensing systems to various industrial applications. Power cable monitoring projects at transmission and distribution levels are an essential part of our business. With more than 10 years of experience and more than 2500 DTS systems in permanent operation world wide LIOS Technology is in a unique position.
EN.SURE is LIOS’ continuous and cost-effective monitoring solution of the electric power transmission and distribution grid and is the key factor for a successful Smart Grid implementation.
Following a global trend also our customers in the USA are expanding their commitment to ensuring the reliability and performance of the transmission and distribution systems they operate. LIOS EN.SURE supports that commitment and is the flexible solution for underground high voltage cables, overhead transmission lines and submarine cables as well as for array cables within on and offshore wind farm installations.
Please find below some examples of recent EN.SURE installations in North America.
 
Utility in the Northwest of the USA, 115kV U/G transmission line
  • 1 circuit of 115kV 2,500kcmil (i.e. 1,250mm²) Cu insulated (XLPE) cable of approximately 4km long
  • DTS monitoring system (4km, 1 channel, multimode 50/125µm) to monitor <1km at="" cable="" li="" of="" this="" time="">
  • Fibre optic sensor cable ( metal free FRNC, 4 multimode fibres ) installed in a separate duct
  • Direct DTS data interface with Virtual Machine for temperature data reading
  • DTS commissioning in June 2012
LIOS EN.SURE Power Cable Monitoring USA Distributed Temperature Sensing DTS LIOS EN.SURE Power Cable Monitoring USA Distributed Temperature Sensing DTS
 
 
 
 
 
 
 
 
 
 
 




PowerSouth in Andalusia, AL, USA
  • 115kV Wolf Bay Crossing U/G transmission line
  • 1 circuit of 115kV 2,500mm² enamelled Cu insulated (XLPE) cable of approximately 2km long
  • 1 DTS monitoring system (2km, 6 channel, multimode 50/125µm) to monitor HDD cable route
  • Fibre optic sensor cable ( FIMT, stainless steel tube, 2 multimode fibres ) embedded in the power cable sheath  (copper wire shielding, corrugated stainless steel sheath)
  • Direct DTS data interface with PowerSouth Virtual Machine for temperature data reading
  • DTS commissioning in June 2013
LIOS EN.SURE Power Cable Monitoring USA Distributed Temperature Sensing DTS LIOS EN.SURE Power Cable Monitoring USA Distributed Temperature Sensing DTS
 


 
 
 
 
 
 
Utility in the Northeast of the USA, 230kV U/G transmission line
  • 2 circuits of 230kV 3,000kcmil (i.e. 1,500mm²) Cu pipe-type (HPFF) route length approximately 10km long.
  • 1 DTS monitoring system (10km, 8 channel, multimode 50/125µm) to monitor ~10km of cable
  • Fibre optic sensor cable (HDPE underground, 2 multimode fibres) installed in separate duct with temperature trees (at each end) for ambient temperature readings
  • Direct DTS data interface with enhanced visualization and  Real Time Thermal Rating (RTTR) with Energy Management System (EMS) via DNP3 protocol
  • DTS/RTTR commissioning in May 2013
  LIOS EN.SURE Power Cable Monitoring USA Distributed Temperature Sensing DTS
 
 
 
 
 
 
 
 

Thursday, April 8, 2010

Introduction to Distributed Temperature Sensing

DTS Distributed Temperature SensingDistributed Temperature Sensing Systems (DTS) are optoelectronic devices which measure temperatures by means of optical fibres functioning as linear sensors. Temperatures are recorded along the optical sensor cable, thus not at points, but as a continuous profile. A high accuracy of temperature determination is achieved over great distances.

Measuring Principle - Raman Effect
Physical measurement dimensions, such as temperature or pressure and tensile forces, can affect glass fibres and locally change the characteristics of light transmission in the fibre. As a result of the attenuation of the light in the quartz glass fibres through scattering, the location of an external physical effect can be determined so that the optical fibre can be employed as a linear sensor.

Optical fibres are made from doped quartz glass. Quartz glass is a form of silicon dioxide (SiO2) with amorphous solid structure. Thermal effects induce lattice oscillations within the solid. When light falls onto these thermally excited molecular oscillations, an interaction occurs between the light particles (photons) and the electrons of the molecule. Light scattering, also known as Raman scattering, occurs in the optical fibre. Unlike incident light, this scattered light undergoes a spectral shift by an amount equivalent to the resonance frequency of the lattice oscillation.

The light scattered back from the fibre optic therefore contains three different spectral shares:
  • the Rayleigh scattering with the wavelength of the laser source used,
  • the Stokes line components with the higher wavelength in which photons are generated, and
  • the Anti-Stokes line components with a lower wavelength than the Rayleigh scattering, in which photons are destroyed.
The intensity of the so-called Anti-Stokes band is temperature-dependent, while the so-called Stokes band is practically independent of temperature. The local temperature of the optical fibre is derived from the ratio of the Anti-Stokes and Stokes light intensities.

Measuring Principle - OFDR Technology
Latest DTS evaluation units deploy the method of Optical Frequency Domain Reflectometry (OFDR) . The OFDR system provides information on the local characteristic when the backscatter signal detected during the entire measurement time is measured as a function of frequency in a complex fashion, and then subjected to Fourier transformation. The essential benefits of OFDR technology are the quasi continuous wave mode employed by the laser and the narrow-band detection of the optical back scatter signal, whereby a significantly higher signal to noise ratio is achieved than with conventional pulse technology (OTDR). This technical benefit allows the use of affordable semiconductor laser diodes and electronic assemblies for signal averaging.

The optical frequency domain reflectometry has been developed as a high-resolution measurement process for the characterisation of optical wave guides with length dimensions of just a few millimetres. In contrast, its application for the Raman backscatter measurement was introduced and patented by the company LIOS Technology.

Schematic system set up
The temperature measuring system consists of a controller (frequency generator, laser source, optical module, HF mixer, receiver and micro-processor unit) and a quartz glass fibre (fibre optic) as line-shaped temperature sensor.

The design is three-channel, since an additional reference channel is required besides the two measurement channels (Anti-Stokes and Stokes). Corresponding to the OFDR system, the power output of the laser runs through the sinus-shaped frequency starting from a starting frequency in the kilohertz range through the ending frequency in the high megahertz range within a measurement time interval with the help of the High Frequency (HF) modulator. The resulting frequency shift is a direct measurement of the local resolution of the reflectometer. The frequency-modulated laser light is connected to the fibre optic-sensor via the optical module.

The continuously back-scattered Raman light is spectrally filtered in the optical module and converted into electrical signals by means of photo detectors. Then the measurement signals are amplified and mixed in the Low Frequency spectral range (LF range). The Fourier transformation of the averaged LF signals results in the two Raman backscatter curves. The amplitudes of these backscatter curves are proportional to the intensity of the Raman scattering of the viewed location. The fibre temperature along the sensor cable results from the amplitude ratio of the two measurement channels.


High Reliability and Industrial Strength

The semiconductor laser diode has been thoroughly type tested according the Telcordia GR-468 standard. It fulfils telecom standards with a medium lifetime of more than 25 years. The entire system was comprehensively evaluated by various independent international bodies (e.g. the VdS, the association of German asset insurers) including EMC tests as well as endurance tests at accelerated aging environments. Field data of the huge installed base prove the exceptional high reliability of the controllers.

Read more...

Friday, February 5, 2010

On-line registrations for CIGRE 2010 Session are open



International Council on Large Electric Systems

Over 80 years back, and every two years since, CIGRE has brought together electrical engineers from all over the World for a unique event - the CIGRE Session. The reason for the ever growing audience of CIGRE has always been and continues to be the high quality of papers presented and the topical interest of the subjects discussed, of direct concern for the Power Industry. In 2008 the number of attendees increased beyond expectations to reach the record figure of 3000 Delegates.

On-line registrations for CIGRE 2010 Session are open

Session 2010 Paris, France. 22 - 27 August 2010




Should you wish to attend the CIGRE Conference and benefit from early bird rates, you should register before 30/04/2010.

From 01/05 to 31/07/2010 - Registrations: fee 2

From 01/08/2010 - Registrations: fee 3

See for the General Programme, the Technical Programme and Accommodation information CIGRE website.

What you must know about the CIGRE Session?

An event designed to meet the expectations of each and everyone
  • Monday dedicated to 2 Panels on broad topics: “The Need for increased Intelligence in Power Systems”; “Large disturbances”.
  • Tuesday to Friday: 16 “Discussion Meetings” – 4 parallel sessions each day.
  • Tuesday to Thursday: 6 “Poster Sessions” are scheduled for Delegates to meet with paper authors.
  • A Technical Exhibition in the same location.
  • A unique opportunity to interact with more than 4400 delegates and visitors from all over the world, managers and experts from all sectors of the Power Industry.
Discussion Meetings run on a “Special Reporter” System
  • The CD-Rom of Session Papers (approx. 400) is forwarded to the Delegates. For fruitful discussions Delegates are strongly encouraged to read the Papers before the Session as these
  • Papers are not presented by their authors, but discussed in Discussion Meetings.
  • Discussion Meetings are organized on the basis of a “Special Report” which incorporates the gist of the Session Papers and raises a number of questions for discussion.
  • Intended speakers prepare their contributions on the basis of the questions raised (to be sent in a few days in advance or handed in the day before discussion).
  • Contributors are required to meet with Chairmen of Discussion Meetings the day before Discussion.
  • For each Discussion Meeting a “Daily Summary of Discussions” is issued and available the next day.
To make the most of the Session
  • Take a look at the Technical Programme posted on www.cigre.org, links “Events”, “Sessions”
  • Register early so as to have time to read the Papers well ahead of the event
  • See the Special Reports on the web
  • If you plan to present a contribution, prepare it as explained in the “Guide for Discussion Contributors” posted on the web.
What is CIGRE?

CIGRE (International Council on Large Electric Systems) is one of the leading worldwide Organizations on Electric Power Systems, covering their technical, economic, environmental, organisational and regulatory aspects.

A permanent, non-governmental and non-profit International Association, based in France, CIGRE was founded in 1921 and aims to:
  • Facilitate and develop the exchange of engineering knowledge and information, between engineering personnel and technical specialists in all countries as regards generation and high voltage transmission of electricity.
  • Add value to the knowledge and information exchanged by synthesizing state-of-the-art and world practices.
  • Make managers, decision-makers and regulators aware of the synthesis of CIGRE's work, in the area of electric power.
More specifically, issues related to planning and operation of power systems, as well as design, construction, maintenance and disposal of HV equipment and plants are at the core of CIGRE's mission. Problems related to protection of power systems, telecontrol, telecommunication equipment and information systems are also part of CIGRE's area of concern.

TO BE NOTED:
  • The general rule is for participants to register with their National Committee (the list of the 22 National Committees handling registrations is available on the CIGRE website, link "What you must know about the registration process").
  • As from 1st January 2010 CIGRE is no longer liable to VAT; hence a 0% VAT rate applies for CIGRE services, i.e. Session registrations, publications purchased, membership fees: all tariffs are VAT free, for all countries.
    It is recalled that according to European Union regulations the VAT reference number (when there is one) must be supplied as it is mandatory for it to appear on all invoices.
Thank you in advance for your participation in the CIGRE 2010 Session and we look forward to meeting you in Paris (22 > 27 August).
Please forward this note to your colleagues and all persons who may be interested in the conference subjects.
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