Optimizing Grid With Dynamic Line Rating of Conductors: A Comprehensive Review
As the world is pledged towards net zero carbon by 2050, the need for clean and efficient energy transitions is more critical than ever. Optimizing the power grid transfer capacity is crucial for maintaining grid stability and reliability. Ageing infrastructure, population growth, and revolutionary...
Saved in:
Main Authors: | , , , , , |
---|---|
Other Authors: | |
Format: | Article |
Published: |
Institute of Electrical and Electronics Engineers Inc.
2025
|
Subjects: | |
Tags: |
Add Tag
No Tags, Be the first to tag this record!
|
id |
my.uniten.dspace-37123 |
---|---|
record_format |
dspace |
spelling |
my.uniten.dspace-371232025-03-03T15:47:44Z Optimizing Grid With Dynamic Line Rating of Conductors: A Comprehensive Review Abas N.H. Ab Kadir M.Z.A. Azis N. Jasni J. Ab Aziz N.F. Khurshid Z.M. 58857133500 25947297000 56120698200 25632671500 57221906825 57199152644 Climate change Cost effectiveness Disasters Electric load shedding Electric power system control Energy policy Investments Population statistics Stability criteria Wind power Ampacity Clean energy Dynamic line rating Grid flexibility Grid optimization Line ratings Net zero Power system dynamics Resilience Social factor Stability criterions Steady state Energy efficiency As the world is pledged towards net zero carbon by 2050, the need for clean and efficient energy transitions is more critical than ever. Optimizing the power grid transfer capacity is crucial for maintaining grid stability and reliability. Ageing infrastructure, population growth, and revolutionary technological developments increase the demand for grid modernization and resilience investments. Climate change and natural disasters highlight the need for adaptive load-shedding schemes. The two possible ways to optimize the grid are an ampacity increase or a voltage increase. While increasing voltage provides the most significant rise in rating, it comes with high investment costs. Out of all the options available, dynamic line rating (DLR) is the most efficient and cost-effective solution. This paper provides a comprehensive review of the optimization of the grid transfer capacity using DLR. The review critically examines different line rating methods, the DLR system, factors that need to be considered before DLR implementation, and its advantages and disadvantages. Also, the review presents the real-world applications and case studies, standards and regulations involved, and current approaches and challenges for implementing DLR in Malaysia. Additionally, we highlight the most commonly used standards to calculate the conductor's ampacity for the steady-state and dynamic state. Moreover, this review work presents how DLR can advance the grid's flexibility, considering its significance for cleaner energy production in the future, challenges related to wind energy power generation, and their mitigations. This work provides a shortcut path for researchers and utilities to understand DLR and as a reference for future research to advance clean energy in response to changing energy needs and climate conditions. ? 2013 IEEE. Final 2025-03-03T07:47:43Z 2025-03-03T07:47:43Z 2024 Article 10.1109/ACCESS.2024.3352595 2-s2.0-85182922942 https://www.scopus.com/inward/record.uri?eid=2-s2.0-85182922942&doi=10.1109%2fACCESS.2024.3352595&partnerID=40&md5=fa5f44a6994eb6d863643f70d4326deb https://irepository.uniten.edu.my/handle/123456789/37123 12 9738 9756 All Open Access; Gold Open Access Institute of Electrical and Electronics Engineers Inc. Scopus |
institution |
Universiti Tenaga Nasional |
building |
UNITEN Library |
collection |
Institutional Repository |
continent |
Asia |
country |
Malaysia |
content_provider |
Universiti Tenaga Nasional |
content_source |
UNITEN Institutional Repository |
url_provider |
http://dspace.uniten.edu.my/ |
topic |
Climate change Cost effectiveness Disasters Electric load shedding Electric power system control Energy policy Investments Population statistics Stability criteria Wind power Ampacity Clean energy Dynamic line rating Grid flexibility Grid optimization Line ratings Net zero Power system dynamics Resilience Social factor Stability criterions Steady state Energy efficiency |
spellingShingle |
Climate change Cost effectiveness Disasters Electric load shedding Electric power system control Energy policy Investments Population statistics Stability criteria Wind power Ampacity Clean energy Dynamic line rating Grid flexibility Grid optimization Line ratings Net zero Power system dynamics Resilience Social factor Stability criterions Steady state Energy efficiency Abas N.H. Ab Kadir M.Z.A. Azis N. Jasni J. Ab Aziz N.F. Khurshid Z.M. Optimizing Grid With Dynamic Line Rating of Conductors: A Comprehensive Review |
description |
As the world is pledged towards net zero carbon by 2050, the need for clean and efficient energy transitions is more critical than ever. Optimizing the power grid transfer capacity is crucial for maintaining grid stability and reliability. Ageing infrastructure, population growth, and revolutionary technological developments increase the demand for grid modernization and resilience investments. Climate change and natural disasters highlight the need for adaptive load-shedding schemes. The two possible ways to optimize the grid are an ampacity increase or a voltage increase. While increasing voltage provides the most significant rise in rating, it comes with high investment costs. Out of all the options available, dynamic line rating (DLR) is the most efficient and cost-effective solution. This paper provides a comprehensive review of the optimization of the grid transfer capacity using DLR. The review critically examines different line rating methods, the DLR system, factors that need to be considered before DLR implementation, and its advantages and disadvantages. Also, the review presents the real-world applications and case studies, standards and regulations involved, and current approaches and challenges for implementing DLR in Malaysia. Additionally, we highlight the most commonly used standards to calculate the conductor's ampacity for the steady-state and dynamic state. Moreover, this review work presents how DLR can advance the grid's flexibility, considering its significance for cleaner energy production in the future, challenges related to wind energy power generation, and their mitigations. This work provides a shortcut path for researchers and utilities to understand DLR and as a reference for future research to advance clean energy in response to changing energy needs and climate conditions. ? 2013 IEEE. |
author2 |
58857133500 |
author_facet |
58857133500 Abas N.H. Ab Kadir M.Z.A. Azis N. Jasni J. Ab Aziz N.F. Khurshid Z.M. |
format |
Article |
author |
Abas N.H. Ab Kadir M.Z.A. Azis N. Jasni J. Ab Aziz N.F. Khurshid Z.M. |
author_sort |
Abas N.H. |
title |
Optimizing Grid With Dynamic Line Rating of Conductors: A Comprehensive Review |
title_short |
Optimizing Grid With Dynamic Line Rating of Conductors: A Comprehensive Review |
title_full |
Optimizing Grid With Dynamic Line Rating of Conductors: A Comprehensive Review |
title_fullStr |
Optimizing Grid With Dynamic Line Rating of Conductors: A Comprehensive Review |
title_full_unstemmed |
Optimizing Grid With Dynamic Line Rating of Conductors: A Comprehensive Review |
title_sort |
optimizing grid with dynamic line rating of conductors: a comprehensive review |
publisher |
Institute of Electrical and Electronics Engineers Inc. |
publishDate |
2025 |
_version_ |
1826077343746097152 |
score |
13.244413 |