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y funcionamiento de un BESS","bess_part1",{"cardTitle":497,"intro":500,"topButtons":501,"containerButton":514},"Seleccione una de las secciones a continuación para explorar la arquitectura de un sistema de almacenamiento de energía en baterías.",[502,506,510],{"head":503,"value":504,"body":505},"Celdas","Unidades electroquímicas básicas","Las celdas de batería transforman la energía eléctrica en energía química durante la carga, y realizan el proceso inverso durante la descarga.",{"head":507,"value":508,"body":509},"Módulos","Conjuntos de celdas","Las celdas suelen conectarse en serie para formar un módulo, combinando sus tensiones para obtener una salida más elevada.",{"head":511,"value":512,"body":513},"Racks","Conjuntos de módulos","Múltiples módulos conectados entre sí, en serie o en paralelo, dentro del contenedor.",{"head":515,"bodyHtml":516},"Contenedor","Envolvente que alberga los racks, a menudo conectados en paralelo, junto con todos los sistemas de seguridad, gestión y control.",{"question":518,"answer":285,"widget":519,"copy":520},"Esquema del sistema desde el contenedor hasta la red","bess_part2",{"srOnly":521,"title":522,"intro":523,"dischargeMode":524,"chargeMode":525,"flowDischarge":526,"flowCharge":527,"lvTag":528,"mvTag":529,"hvTag":530,"voltageJourney":531,"placeholderCategory":532,"placeholderTitle":533,"nodes":534},"Diagrama interactivo de la infraestructura de red del BESS","Del contenedor a la red - esquema del sistema","Seleccione cualquier componente del diagrama para ver cómo la potencia en corriente continua se desplaza desde las celdas de batería hasta la red de transmisión de alta tensión.","Descarga ⟶ red","Carga ⟵ red","La energía fluye del almacenamiento a la red","La energía fluye de la red al almacenamiento","BT ≈ 500–1500 V","MT 10–35 kV","AT 35 kV+","niveles de tensión","— Seleccione un componente superior —","Seleccione un nodo para ver los detalles",[535,538,543,547,551],{"id":536,"category":515,"title":515,"bodyHtml":537},"4","El contenedor está diseñado para instalación en interior o exterior. Alberga los racks de baterías junto con todos los sistemas de seguridad, gestión térmica y control, y entrega potencia en corriente continua al inversor.",{"id":539,"category":540,"title":541,"bodyHtml":542},"6","Inversor","Inversor (PCS)","El inversor convierte la potencia en corriente continua procedente de los racks de baterías en corriente alterna compatible con la red, y revierte el proceso durante la carga. Es un Power Conversion System (PCS) que permite al BESS almacenar energía, entregar potencia y seguir consignas de potencia.",{"id":544,"category":545,"title":545,"bodyHtml":546},"7","Transformador BT/MT","El transformador BT/MT eleva la salida de CA en baja tensión del inversor (≈ 500–1500 V) a media tensión (normalmente 10–35 kV). Esto reduce las pérdidas de transmisión antes de que la energía llegue a la subestación.",{"id":548,"category":549,"title":549,"bodyHtml":550},"9","Subestación","La subestación recibe la potencia en media tensión y la eleva adicionalmente a alta tensión (35 kV o más) para su inyección en la red. Incluye relés de protección, equipos de medida y equipos de control.",{"id":552,"category":553,"title":554,"bodyHtml":555},"0","Red","⚡ Red","La red de transmisión de alta tensión recibe la potencia entregada por el BESS durante la descarga y suministra energía durante la carga.",{"heading":557,"subheading":558,"q1":559,"a1":560,"q2":561,"a2":562,"q3":563,"a3":564,"q4":565,"a4":566,"q5":567,"a5":568,"q6":569,"a6":570,"q7":571,"a7":572,"q8":573,"a8":574},"Sistemas de almacenamiento de energía en baterías — Preguntas frecuentes","Encuentre respuestas a preguntas frecuentes sobre almacenamiento de energía, software y soluciones de almacenamiento de litio para solar y renovables","¿Qué es un sistema de almacenamiento de energía en baterías (SAEB)?","Un sistema de almacenamiento de energía en baterías es una instalación compuesta por uno o varios contenedores o módulos para almacenar energía mediante baterías, normalmente con tecnologías de baterías de litio en los proyectos actuales (químicas LFP, NCA y NMC), de forma que la energía almacenada pueda utilizarse cuando se necesite. Se integra en la red eléctrica y cada vez es más habitual.","¿Por qué necesitamos baterías de gran escala para la red?","Una batería de gran escala para la red permite almacenar energía renovable intermitente en el sistema eléctrico: absorbe los excedentes generados en periodos de alta producción, como los picos solares del mediodía, y los libera en periodos de alta demanda, como las puntas de la tarde-noche. Las instalaciones de gran escala pueden desempeñar la función de múltiples unidades más pequeñas, a menudo con mejor rentabilidad y eficiencia operativa.","¿Qué ocurre con los proyectos SAEB comerciales e industriales de menor tamaño?","Los sistemas de almacenamiento en batería para aplicaciones comerciales e industriales de menor tamaño suelen desplegarse con rapidez, ya que no dependen ni de subvenciones públicas ni de ciclos prolongados de project finance. Son soluciones ágiles, financiadas con capital privado, y pueden integrarse en la red en semanas o meses en lugar de años. Esa flexibilidad es una ventaja significativa.","¿Por qué los sistemas de almacenamiento de energía en baterías son cada vez más comunes?","A medida que la inversión se orienta cada vez más al almacenamiento en batería para la energía solar y eólica, aumenta la necesidad de conservar la energía generada para utilizarla más adelante. Las soluciones de almacenamiento de energía en baterías responden a esa necesidad y contribuyen a la expansión de este tipo de instalaciones.","¿Cuáles son los componentes principales de un SAEB?","Los componentes principales de estos sistemas incluyen: baterías (celdas y racks de celdas) en las que se almacena la energía; un inversor que convierte la energía en corriente continua de las baterías en corriente alterna; un Battery Management System (BMS) que supervisa el estado de la batería y sus ciclos de carga y descarga, es decir, el núcleo del sistema de monitorización; y un transformador para elevar la tensión de salida.","¿Qué es el software EMS (Energy Management System) y por qué es importante?","El software EMS actúa como el sistema central de control de las soluciones de almacenamiento en batería y utiliza algoritmos, a menudo reforzados con IA, y datos en tiempo real para gestionar la carga y la descarga. Maximiza los ingresos mediante arbitraje energético, peak shaving y regulación de frecuencia de red. Sus capacidades clave incluyen: (1) optimización en tiempo real del despacho de baterías, (2) integración con BMS, PCS y activos co-ubicados como plantas FV o cargadores de VE, (3) analítica predictiva para la salud y la seguridad de la batería, y (4) ciberseguridad.","¿Dónde se puede instalar un SAEB?","El almacenamiento energético puede integrarse en las redes de transmisión y distribución, donde puede inyectar potencia cuando se necesita y absorber energía para cargarse cuando hay excedente. También puede instalarse cerca de la carga para reducir pérdidas de transmisión y distribución, como ocurre en aplicaciones industriales en las que un corte de suministro puede generar pérdidas. Asimismo, puede ubicarse junto a plantas solares y eólicas para habilitar almacenamiento en batería asociado a generación solar y captar directamente el excedente de energía. Algunos fabricantes incluso ofrecen sistemas que pueden instalarse dentro de centrales térmicas para mejorar su eficiencia.","¿Cómo ayuda el SAEB a ahorrar costes?","Durante las horas punta, normalmente a última hora de la tarde y por la noche, el precio de la electricidad es más alto. Con un sistema de almacenamiento en batería, las baterías pueden descargarse en esas franjas para reducir costes. Este enfoque ya se utiliza en múltiples sectores para reducir gastos con ayuda de soluciones de almacenamiento de energía en baterías."]