IEEE Power & Energy Magazine - Spanish - July/August 2021 - 70
más barata y menos inversiones/aumento en el lado de la
distribución. Pero para que estos conceptos y sus posibles
beneficios se conviertan en realidad, necesitamos ensayos
que reúnan el espectro completo de partes interesadas clave:
desde los propietarios de FED hasta el agregador, la empresa
de distribución y, finalmente, el operador del sistema. Esto
es crucial cuando se busca comprender la complejidad, las
interacciones y los desafíos futuros que las empresas de distribución
en Australia y en todo el mundo enfrentarán en el
futuro con el objetivo de gestionar la adopción generalizada
de las FED y aprovechar al máximo la infraestructura eléctrica
existente.
Un ejemplo notable es el proyecto Energy Demand and
Generation Exchange (EDGE) en Australia. El proyecto
EDGE (iniciado en 2020) fue financiado durante tres años
por la Agencia Australiana de Energía Renovable y tiene
como participantes clave el Australian Energy Market Operator
(operador del sistema), AusNet Services (empresa de
distribución), Mondo (agregador de FED) y la Universidad
de Melbourne (investigación y desarrollo). La " Hoja de datos
del proyecto EDGE " presenta los aspectos clave del proyecto.
Dentro del proyecto EDGE, la tarea principal consiste
en la investigación y el desarrollo de una solución práctica
de extremo a extremo que permita a las empresas de distribución,
agregadores y operadores de redes (de transmisión)
probar los límites operativos. El proyecto también tiene
como objetivo demostrar y evaluar el papel de la potencia
reactiva en el desbloqueo de la capacidad de la red de
distribución para la participación en el mercado (potencia
activa) y la provisión de diferentes servicios de red. A lo
largo de la vida del proyecto, se establecerán varios demostradores
del mundo real en la región de Hume de Victoria
(el único estado en Australia con despliegue completo de
medidores inteligentes) a fin de evaluar cómo se pueden
usar los límites operativos para desbloquear los servicios
conocidos de flexibilidad para la red, provenientes de FED.
Se espera que el conocimiento adquirido a través de EDGE
y proyectos similares informe a la comunidad en general
sobre cómo operar adecuadamente dichos mercados, donde
los servicios se originan en los límites de la red.
Lecturas complementarias
Agencia Australiana de Energía Renovable (ARENA), " Dynamic
operating envelopes workstream " (Flujo de trabajo de los
límites operativos dinámicos). Canberra, Australia. Consultado
en mayo de 2021. [En línea]. Disponible: https://arena.gov.
au/knowledge-innovation/distributed-energy-integration
-program/dynamic-operating-envelopes-workstream/
L.F. Ochoa, " DER and network integrity: Meter-level operating
envelopes " (DER e integridad de la red: límites operativos
a nivel de medidor), IEEE Smart Grid Webinar, dic.
de 2020. [En línea]. Disponible: https://resourcecenter.smartgrid.ieee.org/education/webinar-videos/SGWEB0144.html
K.
Petrou, M.Z. Liu, A.T. Procopiou, L.F. Ochoa, J. Theunissen
y J. Harding, " Operating envelopes for prosumers in
70
ieee power & energy magazine
LV networks: A weighted proportional fairness approach "
(Límites operativos para prosumidores en redes de BT: un
enfoque de ecuanimidad proporcional ponderada), in Proc.
IEEE/PES Innovative Smart Grid Technol. (ISGT Europa
2020), 26-28 de oct. de 2020, pág. 579-583.
K. Petrou, A.T. Procopiou, L. Gutierrez-Lagos, M. Z.
Liu, L. F. Ochoa, T. Langstaff y J. Theunissen, " Ensuring
distribution network integrity using dynamic operating limits
for prosumers " (Garantizar la integridad de la red de
distribución utilizando límites operativos dinámicos para
prosumidores), IEEE Trans. Smart Grid., pendiente de publicación.
H.
Wang, S. Riaz y P. Mancarella, " Integrated techno-economic
modeling, flexibility analysis, and business
case assessment of an urban virtual power plant with multi-market
co-optimization "
(Modelado
tecnoeconómico
integrado,
análisis de flexibilidad y evaluación de casos de
negocio de una central eléctrica virtual urbana con co-optimización
multimercado), Appl. Energy, vol. 259, pág.
114142, feb. de 2020. doi: 10.1016/j.apenergy.2019.114142.
G. Chicco, S. Riaz, A. Mazza y P. Mancarella, " Flexibility
from distributed multi-energy systems " (Flexibilidad
de los sistemas multienergéticos distribuidos), Proc.
IEEE, vol. 108, n.º 9, págs. 1496-1517, 2020. doi: 10.1109/
JPROC.2020.2986378.
P. D. Martini, " Operational coordination architecture:
New models and approaches " (Arquitectura de coordinación
operativa: nuevos modelos y enfoques), IEEE Power Energy
Mag., vol. 17, n.º 5, págs. 29-39, 2019.
G. Strbac et al., " Cost-effective decarbonization in a decentralized
market: The benefits of using flexible technologies
and resources " (Descarbonización rentable en un mercado
descentralizado: los beneficios de utilizar tecnologías y
recursos flexibles), IEEE Power Energy Mag., vol. 17, n.º 2,
págs. 25-36, 2019. doi: 10.1109/MPE.2018.2885390.
Biografías
Michael Z. Liu pertenece a la Universidad de Melbourne,
Melbourne, 3010, Australia.
Luis (Nando) Ochoa pertenece a la Universidad de Melbourne,
Melbourne, 3010, Australia, y a la Universidad de
Manchester, Manchester, M13 9PL, Reino Unido.
Shariq Riaz pertenece a la Universidad de Melbourne,
Melbourne, 3010, Australia.
Pierluigi Mancarella pertenece a la Universidad de Melbourne,
Melbourne, 3010, Australia, y a la Universidad de
Manchester, Manchester, M13 9PL, Reino Unido.
Tian Ting pertenece a AusNet Services, Melbourne,
3006, Australia.
Jack San pertenece a AusNet Services, Melbourne,
3006, Australia.
John Theunissen pertenece a AusNet Services, Melbourne,
3006, Australia.
p&e
julio/agosto 2021
https://arena.gov.au/knowledge-innovation/distributed-energy-integration-program/dynamic-operating-envelopes-workstream/
https://arena.gov.au/knowledge-innovation/distributed-energy-integration-program/dynamic-operating-envelopes-workstream/
https://arena.gov.au/knowledge-innovation/distributed-energy-integration-program/dynamic-operating-envelopes-workstream/
https://resourcecenter.smartgrid.ieee.org/education/webinar-videos/SGWEB0144.html
https://resourcecenter.smartgrid.ieee.org/education/webinar-videos/SGWEB0144.html
IEEE Power & Energy Magazine - Spanish - July/August 2021
Table of Contents for the Digital Edition of IEEE Power & Energy Magazine - Spanish - July/August 2021
Contents
IEEE Power & Energy Magazine - Spanish - July/August 2021 - Cover1
IEEE Power & Energy Magazine - Spanish - July/August 2021 - Cover2
IEEE Power & Energy Magazine - Spanish - July/August 2021 - Contents
IEEE Power & Energy Magazine - Spanish - July/August 2021 - 2
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IEEE Power & Energy Magazine - Spanish - July/August 2021 - Cover3
IEEE Power & Energy Magazine - Spanish - July/August 2021 - Cover4
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