SlideShare a Scribd company logo
SEMINAR ON
UNDERGROUND TRANSMISSION
LINES FOR HIGH POWER AC AND
DC TRANSMISSION
DONE BY
VISHNU ARAVIND
S7 EEE
UEANEEE030
CONTENTS
• Underground cables
• Why Underground cables
• Underground Power Transmission Systems
• Types of Underground Electric Transmission
Cables
• Gas Insulated Transmission Lines
• Basic layout of GIL
• Main Components
• Installation Of GIL
• Technical Data of GIL
2UEC,Vallivattom 13-Feb-17
• Advantages Of GIL
• Dis advantages Of GIL
• Applications
• References
3UEC,Vallivattom 13-Feb-17
UNDERGROUND
CABLES
• An underground cable consists of one or more
conductors covered with some suitable insulating
material and surrounded by a protecting cover .
• The cable is laid underground for the transmission of
electric power.
4UEC,Vallivattom 13-Feb-17
Why Underground
cables ?
The underground system of Electrical distribution and
transmission of power is increasingly being adopted in
modern countries, although it is costly system of
distribution as compared to over head system. It ensures
the continuity of supply apart rom the following features
• It ensures non-interrupted continuity of supply
• Its maintenance is less
• It has a long life
• Its appearance is good
• It eliminates hazards of electrocution due to breakage
of over head conductors.
5UEC,Vallivattom 13-Feb-17
UNDERGROUND POWER
TRANSMISSION SYSTEMS
• New York City- no overhead since 1890’s
• Singapore- 100% underground
• Netherland-Distribution occurs 100% underground
• Denmark- Replaced six 132 KV OH lines with two new
400KV underground cables
• France- Due to frequent storms 25% of OH cables are
transferred to underground cables.
6UEC,Vallivattom 13-Feb-17
Types of Underground
Electric Transmission Cables
The common types of underground cable construction
include:
 High-pressure, fluid-filled pipe (HPFF)
 High-pressure, gas-filled pipe (HPGF)
 Self-contained fluid-filled (SCFF)
 Solid cable, cross-linked polyethylene (XLPE)
7UEC,Vallivattom 13-Feb-17
1. High-Pressure, Fluid-Filled Pipe-Type Cable
• It consists of a steel pipe that contains three high-
voltage conductors.
• Each conductor is made of copper or aluminum;
insulated with high-quality, oil-impregnated kraft paper
insulation; and covered with metal shielding (usually
lead)
• Three conductors are surrounded by a dielectric oil at
200psi act as insulator.
• The fluid is usually static and removes heat by
conduction.
Disadvantage:
• Maintenance issues and
possible contamination of surrou
nding soils and groundwater due to
leaking oil.
8UEC,Vallivattom 13-Feb-17
2.High-Pressure, Gas-Filled Pipe-Type Cable
• Its a variation of the HPFF pipe-type, Instead of a
dielectric oil, pressurized nitrogen gas is used to
insulate the conductors.
• The conductors’ insulation is about 20 percent
thicker than the insulation in fluid-filled pipes.
• In case of a leak or break in the cable system, the
nitrogen gas is easier to deal with than the
dielectric oil in the surrounding environment.
Disadvantage:
• Nitrogen gas is less effective than dielectric fluids
at suppressing electrical discharges and cooling.
9UEC,Vallivattom 13-Feb-17
3.Self-Contained, Fluid-Filled Pipe-Type
• It is used for underwater transmission construction
• The conductors are hollow and filled with an
insulating fluid that is pressurized to 25 to 50 psi.
• The three cables are independent of each other.
They are not placed together in a pipe.
Disadvantages:
• This type of construction reduces the risk of a total
failure, but the construction costs are much higher
than the single pipe used to construct the HPFF or
HPGF systems.
10UEC,Vallivattom 13-Feb-17
4. Solid Cable, Cross-Linked Polyethylene
• It is the standard for underground electric transmission
lines less than 200 kV
• It requires little maintenance.
• It requires three separate cables, similar to the three
conductors required for aboveground transmission lines
11UEC,Vallivattom 13-Feb-17
• Each cable consists of a copper or aluminum
conductor and a semi-conducting shield at its core.
12UEC,Vallivattom 13-Feb-17
GAS INSULATED
TRANSMISSION LINES
• Gas Insulated Line invented in 1965 by Massachusetts
Institute of Technology
• GIL consists Aluminum conductor surrounded by mixture of
N2 and SF6 inside the enclosure.
• GIL system first installation in Black Forest as long ago as
1975 of about 4km. length.
• GIL system can be used both in above & below ground
13UEC,Vallivattom 13-Feb-17
BASIC LAYOUT OF GIL
14UEC,Vallivattom 13-Feb-17
MAIN COMPONENTS
• Conductors and
enclosures
• Post Insulators
• Particle traps
• Insulating gas
15UEC,Vallivattom 13-Feb-17
INSTALLATION OF GIL
1. Aboveground Installation
• GIL are unaffected by high
ambient temperatures,
intensive solar radiation or
severe atmospheric
pollution.
• High transmission power can
be achieved with
aboveground installation.
• Corrosion protection is not
required.
16UEC,Vallivattom 13-Feb-17
2. Tunnel Installation
• With this method of
installation the land above the
tunnel can be fully restored to
agricultural use.
• The system stays accessible for
easy inspection and high
transmission capacity is
ensured.
3. Vertical Installation
• Top solution especially for
cavern hydropower plants.
• GIL systems pose no fire risk,
they can be installed in a
tunnel
17UEC,Vallivattom 13-Feb-17
4. Direct burial Installation
• These systems are coated
with a continuous
polyethylene to safeguard
corrosion resistant
Aluminum alloy.
• The land can be returned
to agricultural use with
very minor restrictions.
18UEC,Vallivattom 13-Feb-17
TECHNICAL DATA OF GIL
19UEC,Vallivattom 13-Feb-17
ADVANTAGES OF GIL
• High transmission capacity
• Low capacitance
• Low transmission losses
• High reliability
• High operational safety (no fire risk, no external impact
in case of internal failures).
• No practical ageing of components
• Very low external magnetic field
• No interference with the communication systems
20UEC,Vallivattom 13-Feb-17
DISADVANTAGES OF GIL
• Length of each GIL section is limited.
• Particle contamination lower the insulating reliability of GIL.
• Breakdown of insulator.
• Earthquake resistant design must be considered.
• SF6 gas is harmful to ozone.
21UEC,Vallivattom 13-Feb-17
APPLICATIONS
 Installation in tunnels
 Ideal for environments that are
sensitive to electro-magnetic
fields.
 Suitable for metropolitan areas
where high energy rate is
required.
 Well suited for high power
transmission.
22UEC,Vallivattom 13-Feb-17
REFERENCES
• Koch H.,Kumar A., Christl N., Lei X., Povh D.,
Retzmann D., Advanced Technologies for Power
Transmission and Distribution – Benefits and Impact of
Innovations, Siemens Brochure, 2010
• Giebel G., Nielson H., Hurley B., Bigger transmission
distance with lower load factors: the European dilemma,
Modern Power System, 10/2005.
• Benato R., Fellin L, Marzenta D., Paolucci A., Gas-
Insulated Transmission Lines: excellent performance
and low environmental impact, Vol.1 pp. 385–405,
Napoli, Italia, 12.–18. May 2000.
23UEC,Vallivattom 13-Feb-17
THANK YOU
24UEC,Vallivattom 13-Feb-17

More Related Content

What's hot

Extra High Voltage Underground Power Cable
Extra High Voltage Underground Power CableExtra High Voltage Underground Power Cable
Extra High Voltage Underground Power Cable
Leonardo ENERGY
 
Power cable technology in cesc ltd
Power cable technology in cesc ltdPower cable technology in cesc ltd
Power cable technology in cesc ltd
Aritra Sarkar
 
substation automation
substation automationsubstation automation
substation automation
Mahbub Rashid
 

What's hot (20)

Extra High Voltage Underground Power Cable
Extra High Voltage Underground Power CableExtra High Voltage Underground Power Cable
Extra High Voltage Underground Power Cable
 
OPGW Optical Ground Wire
OPGW Optical Ground WireOPGW Optical Ground Wire
OPGW Optical Ground Wire
 
Power cable technology in cesc ltd
Power cable technology in cesc ltdPower cable technology in cesc ltd
Power cable technology in cesc ltd
 
Transmission & distribution of electrical power
Transmission & distribution of electrical powerTransmission & distribution of electrical power
Transmission & distribution of electrical power
 
Smart grid
Smart gridSmart grid
Smart grid
 
Design and construction of underground cable transmission line
Design and construction of underground cable transmission lineDesign and construction of underground cable transmission line
Design and construction of underground cable transmission line
 
Electric substation
Electric substation Electric substation
Electric substation
 
Impacts of Distributed Generation on Power Quality
Impacts of Distributed Generation on Power QualityImpacts of Distributed Generation on Power Quality
Impacts of Distributed Generation on Power Quality
 
Transmission lines of Electrical powe
Transmission lines of Electrical poweTransmission lines of Electrical powe
Transmission lines of Electrical powe
 
Distribution boards and Protection devices ppt
Distribution boards and Protection devices  pptDistribution boards and Protection devices  ppt
Distribution boards and Protection devices ppt
 
Aerial cables
Aerial cablesAerial cables
Aerial cables
 
GIS 400kv substation
GIS  400kv substationGIS  400kv substation
GIS 400kv substation
 
Presentation on power distribution, operation and maintenance in comilla pbs 1
Presentation on power distribution, operation and maintenance in comilla pbs 1Presentation on power distribution, operation and maintenance in comilla pbs 1
Presentation on power distribution, operation and maintenance in comilla pbs 1
 
Cable Sizing Calculations
Cable Sizing CalculationsCable Sizing Calculations
Cable Sizing Calculations
 
Power quality improvement of distributed generation integrated ne
Power quality improvement of distributed generation integrated nePower quality improvement of distributed generation integrated ne
Power quality improvement of distributed generation integrated ne
 
substation automation
substation automationsubstation automation
substation automation
 
Voltage and Frequency Control of the Grid
Voltage and Frequency Control of the GridVoltage and Frequency Control of the Grid
Voltage and Frequency Control of the Grid
 
1.8 overhead vs underground system
1.8 overhead vs underground system1.8 overhead vs underground system
1.8 overhead vs underground system
 
Cable and laying
Cable and layingCable and laying
Cable and laying
 
Power System Planning
Power System PlanningPower System Planning
Power System Planning
 

Similar to UNDERGROUND HIGH POWER TRANSMISSION LINES

Gas insulated transmission line
Gas insulated transmission lineGas insulated transmission line
Gas insulated transmission line
_fahad_shaikh
 
GL Technology
GL TechnologyGL Technology
GL Technology
龙 谭
 

Similar to UNDERGROUND HIGH POWER TRANSMISSION LINES (20)

Gas insulated transmission lines(gil)
Gas insulated transmission lines(gil)Gas insulated transmission lines(gil)
Gas insulated transmission lines(gil)
 
Underground Cables.pptx
Underground Cables.pptxUnderground Cables.pptx
Underground Cables.pptx
 
Cables in ducts and tunnels
Cables in ducts and tunnelsCables in ducts and tunnels
Cables in ducts and tunnels
 
Gil
GilGil
Gil
 
Undergrounding high voltage_electricity_transmission_lines_the_technical_issu...
Undergrounding high voltage_electricity_transmission_lines_the_technical_issu...Undergrounding high voltage_electricity_transmission_lines_the_technical_issu...
Undergrounding high voltage_electricity_transmission_lines_the_technical_issu...
 
underground-electric-transmission-10286-u0Te1O1.pdf
underground-electric-transmission-10286-u0Te1O1.pdfunderground-electric-transmission-10286-u0Te1O1.pdf
underground-electric-transmission-10286-u0Te1O1.pdf
 
Sudkabel EHV XLPE Cable Terminations & Cable Joints
Sudkabel EHV XLPE Cable Terminations & Cable JointsSudkabel EHV XLPE Cable Terminations & Cable Joints
Sudkabel EHV XLPE Cable Terminations & Cable Joints
 
Bus Ducts or Hollow conductors
Bus Ducts or Hollow conductorsBus Ducts or Hollow conductors
Bus Ducts or Hollow conductors
 
electrical materialsand accessories ch2.pptx
electrical materialsand accessories ch2.pptxelectrical materialsand accessories ch2.pptx
electrical materialsand accessories ch2.pptx
 
FACULTY OF ENGINEERING & TECHNOLOGY , GURUKULA KANGARI UNIVERSITY ,HARIDWAR
FACULTY OF ENGINEERING & TECHNOLOGY , GURUKULA KANGARI UNIVERSITY ,HARIDWARFACULTY OF ENGINEERING & TECHNOLOGY , GURUKULA KANGARI UNIVERSITY ,HARIDWAR
FACULTY OF ENGINEERING & TECHNOLOGY , GURUKULA KANGARI UNIVERSITY ,HARIDWAR
 
Prysmian HV Cables, Joints & Terminations - 66kV 132kV
Prysmian HV Cables, Joints & Terminations - 66kV 132kVPrysmian HV Cables, Joints & Terminations - 66kV 132kV
Prysmian HV Cables, Joints & Terminations - 66kV 132kV
 
27072013140225 gas-insulated-substations
27072013140225 gas-insulated-substations27072013140225 gas-insulated-substations
27072013140225 gas-insulated-substations
 
Underground electric-transmission-lines
Underground electric-transmission-linesUnderground electric-transmission-lines
Underground electric-transmission-lines
 
Conductix Wampfler Product Overview Cables
Conductix Wampfler Product Overview CablesConductix Wampfler Product Overview Cables
Conductix Wampfler Product Overview Cables
 
Raychem Heat Shrink - Raychem Tyco Heat Shrink Tubing And Sleeving
Raychem Heat Shrink - Raychem Tyco Heat Shrink Tubing And SleevingRaychem Heat Shrink - Raychem Tyco Heat Shrink Tubing And Sleeving
Raychem Heat Shrink - Raychem Tyco Heat Shrink Tubing And Sleeving
 
Underground cable
Underground cableUnderground cable
Underground cable
 
Underground cables/sanjeet-1308143
Underground cables/sanjeet-1308143Underground cables/sanjeet-1308143
Underground cables/sanjeet-1308143
 
Gas insulated transmission line
Gas insulated transmission lineGas insulated transmission line
Gas insulated transmission line
 
GL Technology
GL TechnologyGL Technology
GL Technology
 
Gis ppt (gas insulated sub station) deepak kumar kannaujiya,
Gis ppt (gas insulated sub station)  deepak kumar kannaujiya,Gis ppt (gas insulated sub station)  deepak kumar kannaujiya,
Gis ppt (gas insulated sub station) deepak kumar kannaujiya,
 

Recently uploaded

Activity Planning: Objectives, Project Schedule, Network Planning Model. Time...
Activity Planning: Objectives, Project Schedule, Network Planning Model. Time...Activity Planning: Objectives, Project Schedule, Network Planning Model. Time...
Activity Planning: Objectives, Project Schedule, Network Planning Model. Time...
Lovely Professional University
 
一比一原版(UofT毕业证)多伦多大学毕业证成绩单
一比一原版(UofT毕业证)多伦多大学毕业证成绩单一比一原版(UofT毕业证)多伦多大学毕业证成绩单
一比一原版(UofT毕业证)多伦多大学毕业证成绩单
tuuww
 
Teachers record management system project report..pdf
Teachers record management system project report..pdfTeachers record management system project report..pdf
Teachers record management system project report..pdf
Kamal Acharya
 
School management system project report.pdf
School management system project report.pdfSchool management system project report.pdf
School management system project report.pdf
Kamal Acharya
 

Recently uploaded (20)

Attraction and Repulsion type Moving Iron Instruments.pptx
Attraction and Repulsion type Moving Iron Instruments.pptxAttraction and Repulsion type Moving Iron Instruments.pptx
Attraction and Repulsion type Moving Iron Instruments.pptx
 
Lect 2 - Design of slender column-2.pptx
Lect 2 - Design of slender column-2.pptxLect 2 - Design of slender column-2.pptx
Lect 2 - Design of slender column-2.pptx
 
Quality defects in TMT Bars, Possible causes and Potential Solutions.
Quality defects in TMT Bars, Possible causes and Potential Solutions.Quality defects in TMT Bars, Possible causes and Potential Solutions.
Quality defects in TMT Bars, Possible causes and Potential Solutions.
 
NO1 Pandit Black Magic Removal in Uk kala jadu Specialist kala jadu for Love ...
NO1 Pandit Black Magic Removal in Uk kala jadu Specialist kala jadu for Love ...NO1 Pandit Black Magic Removal in Uk kala jadu Specialist kala jadu for Love ...
NO1 Pandit Black Magic Removal in Uk kala jadu Specialist kala jadu for Love ...
 
ONLINE CAR SERVICING SYSTEM PROJECT REPORT.pdf
ONLINE CAR SERVICING SYSTEM PROJECT REPORT.pdfONLINE CAR SERVICING SYSTEM PROJECT REPORT.pdf
ONLINE CAR SERVICING SYSTEM PROJECT REPORT.pdf
 
An improvement in the safety of big data using blockchain technology
An improvement in the safety of big data using blockchain technologyAn improvement in the safety of big data using blockchain technology
An improvement in the safety of big data using blockchain technology
 
Activity Planning: Objectives, Project Schedule, Network Planning Model. Time...
Activity Planning: Objectives, Project Schedule, Network Planning Model. Time...Activity Planning: Objectives, Project Schedule, Network Planning Model. Time...
Activity Planning: Objectives, Project Schedule, Network Planning Model. Time...
 
Natalia Rutkowska - BIM School Course in Kraków
Natalia Rutkowska - BIM School Course in KrakówNatalia Rutkowska - BIM School Course in Kraków
Natalia Rutkowska - BIM School Course in Kraków
 
Research Methodolgy & Intellectual Property Rights Series 2
Research Methodolgy & Intellectual Property Rights Series 2Research Methodolgy & Intellectual Property Rights Series 2
Research Methodolgy & Intellectual Property Rights Series 2
 
1. Henrich Triangle Safety and Fire Presentation
1. Henrich Triangle Safety and Fire Presentation1. Henrich Triangle Safety and Fire Presentation
1. Henrich Triangle Safety and Fire Presentation
 
Online book store management system project.pdf
Online book store management system project.pdfOnline book store management system project.pdf
Online book store management system project.pdf
 
Construction method of steel structure space frame .pptx
Construction method of steel structure space frame .pptxConstruction method of steel structure space frame .pptx
Construction method of steel structure space frame .pptx
 
Electrical shop management system project report.pdf
Electrical shop management system project report.pdfElectrical shop management system project report.pdf
Electrical shop management system project report.pdf
 
Introduction to Machine Learning Unit-4 Notes for II-II Mechanical Engineering
Introduction to Machine Learning Unit-4 Notes for II-II Mechanical EngineeringIntroduction to Machine Learning Unit-4 Notes for II-II Mechanical Engineering
Introduction to Machine Learning Unit-4 Notes for II-II Mechanical Engineering
 
一比一原版(UofT毕业证)多伦多大学毕业证成绩单
一比一原版(UofT毕业证)多伦多大学毕业证成绩单一比一原版(UofT毕业证)多伦多大学毕业证成绩单
一比一原版(UofT毕业证)多伦多大学毕业证成绩单
 
Teachers record management system project report..pdf
Teachers record management system project report..pdfTeachers record management system project report..pdf
Teachers record management system project report..pdf
 
RM&IPR M5 notes.pdfResearch Methodolgy & Intellectual Property Rights Series 5
RM&IPR M5 notes.pdfResearch Methodolgy & Intellectual Property Rights Series 5RM&IPR M5 notes.pdfResearch Methodolgy & Intellectual Property Rights Series 5
RM&IPR M5 notes.pdfResearch Methodolgy & Intellectual Property Rights Series 5
 
ENERGY STORAGE DEVICES INTRODUCTION UNIT-I
ENERGY STORAGE DEVICES  INTRODUCTION UNIT-IENERGY STORAGE DEVICES  INTRODUCTION UNIT-I
ENERGY STORAGE DEVICES INTRODUCTION UNIT-I
 
School management system project report.pdf
School management system project report.pdfSchool management system project report.pdf
School management system project report.pdf
 
The battle for RAG, explore the pros and cons of using KnowledgeGraphs and Ve...
The battle for RAG, explore the pros and cons of using KnowledgeGraphs and Ve...The battle for RAG, explore the pros and cons of using KnowledgeGraphs and Ve...
The battle for RAG, explore the pros and cons of using KnowledgeGraphs and Ve...
 

UNDERGROUND HIGH POWER TRANSMISSION LINES

  • 1. SEMINAR ON UNDERGROUND TRANSMISSION LINES FOR HIGH POWER AC AND DC TRANSMISSION DONE BY VISHNU ARAVIND S7 EEE UEANEEE030
  • 2. CONTENTS • Underground cables • Why Underground cables • Underground Power Transmission Systems • Types of Underground Electric Transmission Cables • Gas Insulated Transmission Lines • Basic layout of GIL • Main Components • Installation Of GIL • Technical Data of GIL 2UEC,Vallivattom 13-Feb-17
  • 3. • Advantages Of GIL • Dis advantages Of GIL • Applications • References 3UEC,Vallivattom 13-Feb-17
  • 4. UNDERGROUND CABLES • An underground cable consists of one or more conductors covered with some suitable insulating material and surrounded by a protecting cover . • The cable is laid underground for the transmission of electric power. 4UEC,Vallivattom 13-Feb-17
  • 5. Why Underground cables ? The underground system of Electrical distribution and transmission of power is increasingly being adopted in modern countries, although it is costly system of distribution as compared to over head system. It ensures the continuity of supply apart rom the following features • It ensures non-interrupted continuity of supply • Its maintenance is less • It has a long life • Its appearance is good • It eliminates hazards of electrocution due to breakage of over head conductors. 5UEC,Vallivattom 13-Feb-17
  • 6. UNDERGROUND POWER TRANSMISSION SYSTEMS • New York City- no overhead since 1890’s • Singapore- 100% underground • Netherland-Distribution occurs 100% underground • Denmark- Replaced six 132 KV OH lines with two new 400KV underground cables • France- Due to frequent storms 25% of OH cables are transferred to underground cables. 6UEC,Vallivattom 13-Feb-17
  • 7. Types of Underground Electric Transmission Cables The common types of underground cable construction include:  High-pressure, fluid-filled pipe (HPFF)  High-pressure, gas-filled pipe (HPGF)  Self-contained fluid-filled (SCFF)  Solid cable, cross-linked polyethylene (XLPE) 7UEC,Vallivattom 13-Feb-17
  • 8. 1. High-Pressure, Fluid-Filled Pipe-Type Cable • It consists of a steel pipe that contains three high- voltage conductors. • Each conductor is made of copper or aluminum; insulated with high-quality, oil-impregnated kraft paper insulation; and covered with metal shielding (usually lead) • Three conductors are surrounded by a dielectric oil at 200psi act as insulator. • The fluid is usually static and removes heat by conduction. Disadvantage: • Maintenance issues and possible contamination of surrou nding soils and groundwater due to leaking oil. 8UEC,Vallivattom 13-Feb-17
  • 9. 2.High-Pressure, Gas-Filled Pipe-Type Cable • Its a variation of the HPFF pipe-type, Instead of a dielectric oil, pressurized nitrogen gas is used to insulate the conductors. • The conductors’ insulation is about 20 percent thicker than the insulation in fluid-filled pipes. • In case of a leak or break in the cable system, the nitrogen gas is easier to deal with than the dielectric oil in the surrounding environment. Disadvantage: • Nitrogen gas is less effective than dielectric fluids at suppressing electrical discharges and cooling. 9UEC,Vallivattom 13-Feb-17
  • 10. 3.Self-Contained, Fluid-Filled Pipe-Type • It is used for underwater transmission construction • The conductors are hollow and filled with an insulating fluid that is pressurized to 25 to 50 psi. • The three cables are independent of each other. They are not placed together in a pipe. Disadvantages: • This type of construction reduces the risk of a total failure, but the construction costs are much higher than the single pipe used to construct the HPFF or HPGF systems. 10UEC,Vallivattom 13-Feb-17
  • 11. 4. Solid Cable, Cross-Linked Polyethylene • It is the standard for underground electric transmission lines less than 200 kV • It requires little maintenance. • It requires three separate cables, similar to the three conductors required for aboveground transmission lines 11UEC,Vallivattom 13-Feb-17
  • 12. • Each cable consists of a copper or aluminum conductor and a semi-conducting shield at its core. 12UEC,Vallivattom 13-Feb-17
  • 13. GAS INSULATED TRANSMISSION LINES • Gas Insulated Line invented in 1965 by Massachusetts Institute of Technology • GIL consists Aluminum conductor surrounded by mixture of N2 and SF6 inside the enclosure. • GIL system first installation in Black Forest as long ago as 1975 of about 4km. length. • GIL system can be used both in above & below ground 13UEC,Vallivattom 13-Feb-17
  • 14. BASIC LAYOUT OF GIL 14UEC,Vallivattom 13-Feb-17
  • 15. MAIN COMPONENTS • Conductors and enclosures • Post Insulators • Particle traps • Insulating gas 15UEC,Vallivattom 13-Feb-17
  • 16. INSTALLATION OF GIL 1. Aboveground Installation • GIL are unaffected by high ambient temperatures, intensive solar radiation or severe atmospheric pollution. • High transmission power can be achieved with aboveground installation. • Corrosion protection is not required. 16UEC,Vallivattom 13-Feb-17
  • 17. 2. Tunnel Installation • With this method of installation the land above the tunnel can be fully restored to agricultural use. • The system stays accessible for easy inspection and high transmission capacity is ensured. 3. Vertical Installation • Top solution especially for cavern hydropower plants. • GIL systems pose no fire risk, they can be installed in a tunnel 17UEC,Vallivattom 13-Feb-17
  • 18. 4. Direct burial Installation • These systems are coated with a continuous polyethylene to safeguard corrosion resistant Aluminum alloy. • The land can be returned to agricultural use with very minor restrictions. 18UEC,Vallivattom 13-Feb-17
  • 19. TECHNICAL DATA OF GIL 19UEC,Vallivattom 13-Feb-17
  • 20. ADVANTAGES OF GIL • High transmission capacity • Low capacitance • Low transmission losses • High reliability • High operational safety (no fire risk, no external impact in case of internal failures). • No practical ageing of components • Very low external magnetic field • No interference with the communication systems 20UEC,Vallivattom 13-Feb-17
  • 21. DISADVANTAGES OF GIL • Length of each GIL section is limited. • Particle contamination lower the insulating reliability of GIL. • Breakdown of insulator. • Earthquake resistant design must be considered. • SF6 gas is harmful to ozone. 21UEC,Vallivattom 13-Feb-17
  • 22. APPLICATIONS  Installation in tunnels  Ideal for environments that are sensitive to electro-magnetic fields.  Suitable for metropolitan areas where high energy rate is required.  Well suited for high power transmission. 22UEC,Vallivattom 13-Feb-17
  • 23. REFERENCES • Koch H.,Kumar A., Christl N., Lei X., Povh D., Retzmann D., Advanced Technologies for Power Transmission and Distribution – Benefits and Impact of Innovations, Siemens Brochure, 2010 • Giebel G., Nielson H., Hurley B., Bigger transmission distance with lower load factors: the European dilemma, Modern Power System, 10/2005. • Benato R., Fellin L, Marzenta D., Paolucci A., Gas- Insulated Transmission Lines: excellent performance and low environmental impact, Vol.1 pp. 385–405, Napoli, Italia, 12.–18. May 2000. 23UEC,Vallivattom 13-Feb-17