IEEE Power & Energy Magazine - Spanish - January/February 2023 - 90

Corriente de
la línea
Medición
en tiempo real:
temperatura, tensión,
caída, etc.
Temperatura
del conductor
Temperatura
ambiente
Radiación
solar
figura 7. Diagrama de flujo de los métodos de CTE.
aquellas que incluyan galerías y torres de transmisión aérea
a subterránea.
En resumen, las principales innovaciones que actualmente
se están investigando en España son la estimación
simultánea en tiempo real de los parámetros externos
que surgen en el modelo térmico de cables considerado
y la mejora en el funcionamiento de las LS mediante
la DLR.
Líneas aéreas de transmisión
En esta sección, se presenta la aplicación de técnicas de DLR
en LA, prestando especial atención a las características distintivas
que no se encuentran en el caso de las LS.
DLR en líneas aéreas de transmisión
En España, debido a la longitud relativamente corta de las
LA, que raramente superan los 200 km, la restricción princiTemperatura
máxima
Velocidad
equivalente
del
viento
Ampacidad
pal en la capacidad de transferencia
se relaciona con su límite térmico,
es decir, con la temperatura
del conductor en un tiempo dado,
que debe compararse con la temperatura
operativa máxima del circuito
correspondiente. El sobrecalentamiento
del conductor puede
ser la causa de los dos siguientes
fenómenos indeseables:
✔ Un aumento excesivo en la
caída máxima de cualquier
sección de la línea podría
provocar infracciones de
los despejes eléctricos mínimos
obligatorios.
✔ Podría haber un deterioro del conductor al templar los
cables de aluminio, reduciendo eventualmente la carga
de ruptura del material.
El impacto operativo de estos fenómenos dependen mayormente
del tipo y las propiedades del conductor.
Varias técnicas hacen posible incrementar la corriente
operativa máxima para una línea dada, como aumentar la
altura de las torres, sustituir los conductores por otro tipo de
material con temperaturas operativas más altas (para algunas
opciones, más de 100 °C) o agregar más conductores por
fase. Sin embargo, todas estas estrategias requieren la desconexión
del circuito por periodos relativamente prolongados y
la autorización administrativa correspondiente. La aplicación
en tiempo real de la DLR en las LA puede resolver en gran
medida estos problemas, dado que no requiere desconectar
las líneas.
Calor por efecto
Joule y Magnético.
Calor Solar
Enfriamiento por convección
Pc
Ps
Pj
Pr
Enfriamiento por radiación
figura 8. Representación del balance térmico en las LA
(adaptada de la guía de la CIGRE).
90
ieee power & energy magazine
Se puede hacer la siguiente clasificación en relación con
los distintos métodos utilizados para abordar la DLR, dependiendo
de la información considerada:
✔ Datos meteorológicos: las condiciones meteorológicas
(la temperatura, así como la velocidad y dirección
del viento) se obtienen a través de estaciones, lo que
permite el cálculo de la corriente máxima dada una
temperatura limitante del conductor. Este método se
describe en las siguientes secciones junto con los resultados
de campo. En el contexto de los datos meteorológicos,
la temperatura del conductor puede actualizarse
con las mediciones de corriente en tiempo real,
como en el caso de las LS, aumentando el margen de
reacción en el funcionamiento del activo monitoreado.
Esta estrategia se está aplicando actualmente en el
norte de España, en un corredor de subtransmisión que
conecta los parques eólicos a la red.
✔ Evaluación de la temperatura del conductor (CTE,
por sus siglas en inglés): este método está motivado
por la alta variabilidad tanto de la velocidad como de
la dirección del viento junto a las LA. Para resolver
este problema, se estima la temperatura equivalente
del conductor en línea utilizando diferentes medicioenero/febrero
2023

IEEE Power & Energy Magazine - Spanish - January/February 2023

Table of Contents for the Digital Edition of IEEE Power & Energy Magazine - Spanish - January/February 2023

Contents
IEEE Power & Energy Magazine - Spanish - January/February 2023 - Cover1
IEEE Power & Energy Magazine - Spanish - January/February 2023 - Cover2
IEEE Power & Energy Magazine - Spanish - January/February 2023 - Contents
IEEE Power & Energy Magazine - Spanish - January/February 2023 - 2
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IEEE Power & Energy Magazine - Spanish - January/February 2023 - Cover3
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