{"id":3401,"date":"2022-05-19T10:25:55","date_gmt":"2022-05-19T10:25:55","guid":{"rendered":"https:\/\/nuevaimdeaenergia.es\/porfolio\/prometeo-hydrogen-production-by-means-of-solar-heat-and-power-in-high-temperature-solid-oxide-electrolysers\/"},"modified":"2025-01-27T16:14:48","modified_gmt":"2025-01-27T16:14:48","slug":"prometeo-hydrogen-production-by-means-of-solar-heat-and-power-in-high-temperature-solid-oxide-electrolysers","status":"publish","type":"portfolio","link":"http:\/\/energia.imdea.org\/en\/porfolio\/prometeo-hydrogen-production-by-means-of-solar-heat-and-power-in-high-temperature-solid-oxide-electrolysers\/","title":{"rendered":"PROMETEO: Hydrogen PROduction by MEans of solar heat and power in high TEmperature Solid Oxide Electrolysers"},"content":{"rendered":"<div  class=\"tatsu-h1nk50vmjl1adzcd tatsu-section  tatsu-bg-overlay   tatsu-clearfix\" data-title=\"\"  data-headerscheme=\"background--dark\"><div class='tatsu-section-pad clearfix' data-padding='{\"d\":\"0px 0px 0px 0px\"}' data-padding-top='0px'><div class=\"tatsu-row-wrap  tatsu-wrap tatsu-row-one-col tatsu-row-has-one-cols tatsu-medium-gutter tatsu-reg-cols  tatsu-clearfix tatsu-h1nk50vmmwfvn0yp\" ><div  class=\"tatsu-row \" ><div  class=\"tatsu-column  tatsu-bg-overlay tatsu-one-col tatsu-column-image-none tatsu-column-effect-none  tatsu-h1nk50vmr2bjj5cs\"  data-parallax-speed=\"0\" style=\"\"><div class=\"tatsu-column-inner \" ><div class=\"tatsu-column-pad-wrap\"><div class=\"tatsu-column-pad\" ><div  class=\"tatsu-module tatsu-text-block-wrap tatsu-h1nk50vmtyby6faw  \"><div class=\"tatsu-text-inner tatsu-align-center  clearfix\" ><style>.tatsu-h1nk50vmtyby6faw.tatsu-text-block-wrap .tatsu-text-inner{width: 100%;text-align: left;}.tatsu-h1nk50vmtyby6faw.tatsu-text-block-wrap{margin: 200px 0px 0px 0px;}<\/style>\n<h4><span style=\"font-size: 28pt; color: #ffffff;\"><strong>PROMETEO: Hydrogen PROduction by MEans of solar heat and power in high TEmperature Solid Oxide Electrolysers<\/strong><\/span><\/h4>\n<\/div><\/div><\/div><\/div><div class = \"tatsu-column-bg-image-wrap\"><div class = \"tatsu-column-bg-image\" ><\/div><\/div><div class=\"tatsu-overlay tatsu-column-overlay tatsu-animate-none\" ><\/div><\/div><style>.tatsu-row > .tatsu-h1nk50vmr2bjj5cs.tatsu-column{width: 100%;}.tatsu-h1nk50vmr2bjj5cs.tatsu-column > .tatsu-column-inner > .tatsu-column-overlay{mix-blend-mode: normal;}.tatsu-h1nk50vmr2bjj5cs > .tatsu-column-inner > .tatsu-top-divider{z-index: 9999;}.tatsu-h1nk50vmr2bjj5cs > .tatsu-column-inner > .tatsu-bottom-divider{z-index: 9999;}.tatsu-h1nk50vmr2bjj5cs > .tatsu-column-inner > .tatsu-left-divider{z-index: 9999;}.tatsu-h1nk50vmr2bjj5cs > .tatsu-column-inner > .tatsu-right-divider{z-index: 9999;}@media only screen and (max-width:1377px) {.tatsu-row > .tatsu-h1nk50vmr2bjj5cs.tatsu-column{width: 100%;}}@media only screen and (min-width:768px) and (max-width: 1024px) {.tatsu-row > .tatsu-h1nk50vmr2bjj5cs.tatsu-column{width: 100%;}}@media only screen and (max-width: 767px) {.tatsu-row > .tatsu-h1nk50vmr2bjj5cs.tatsu-column{width: 100%;}}<\/style><\/div><\/div><\/div><\/div><div class=\"tatsu-section-background-wrap\"><div class = \"tatsu-section-background\" ><\/div><\/div><div class=\"tatsu-overlay tatsu-section-overlay\"><\/div><style>.tatsu-h1nk50vmjl1adzcd .tatsu-section-background{background-image: url(http:\/\/energia.imdea.org\/wp-content\/uploads\/2022\/04\/cabe-proyectos02.jpg);background-repeat: no-repeat;background-attachment: scroll;background-position: top left;background-size: cover;}.tatsu-h1nk50vmjl1adzcd .tatsu-bg-blur{background-repeat: no-repeat;background-attachment: scroll;background-position: top left;background-size: cover;}.tatsu-h1nk50vmjl1adzcd.tatsu-section{margin: 0px 0px 80px 0px;}.tatsu-h1nk50vmjl1adzcd .tatsu-section-offset-wrap{transform: translateY(-0px);}.tatsu-h1nk50vmjl1adzcd > .tatsu-bottom-divider{z-index: 9999;}.tatsu-h1nk50vmjl1adzcd > .tatsu-top-divider{z-index: 9999;}.tatsu-h1nk50vmjl1adzcd .tatsu-section-overlay{mix-blend-mode: normal;}<\/style><\/div><div  class=\"tatsu-h1ncdeje3e604amt tatsu-section  tatsu-bg-overlay   tatsu-clearfix\" data-title=\"\"  data-headerscheme=\"background--dark\"><div class='tatsu-section-pad clearfix' data-padding='{\"d\":\"0px 0px 90px 0px\"}' data-padding-top='0px'><div class=\"tatsu-row-wrap  tatsu-wrap tatsu-row-one-col tatsu-row-has-one-cols tatsu-medium-gutter tatsu-reg-cols  tatsu-clearfix tatsu-h1ncdeje69fa2d4j\" ><div  class=\"tatsu-row \" ><div  class=\"tatsu-column  tatsu-bg-overlay tatsu-one-col tatsu-column-image-none tatsu-column-effect-none  tatsu-h1ncdeje8od2bruo\"  data-parallax-speed=\"0\" style=\"\"><div class=\"tatsu-column-inner \" ><div class=\"tatsu-column-pad-wrap\"><div class=\"tatsu-column-pad\" ><div  class=\"tatsu-module tatsu-text-block-wrap tatsu-h1ncdejebe9xo0k9  \"><div class=\"tatsu-text-inner tatsu-align-center  clearfix\" ><style>.tatsu-h1ncdejebe9xo0k9.tatsu-text-block-wrap .tatsu-text-inner{width: 100%;text-align: left;}<\/style>\n<p class=\"rtejustify\"><span style=\"font-size: 14pt;\">PROMETEO tiene como objetivo la producci\u00f3n de hidr\u00f3geno verde empleando calor y electricidad de origen renovable, mediante electr\u00f3lisis de alta temperatura en \u00e1reas con precios bajos de la electricidad asociados a la energ\u00eda fotovoltaica o e\u00f3lica.<\/span><\/p>\n<p class=\"rtejustify\"><span style=\"font-size: 14pt;\">Los electrolizadores de \u00f3xido s\u00f3lido (SOE) son una tecnolog\u00eda altamente eficiente que emplea calor y electricidad en la descomposici\u00f3n de agua produciendo hidr\u00f3geno, generalmente validada en funcionamiento en r\u00e9gimen estacionario. Sin embargo, es posible que el calor para la generaci\u00f3n de vapor no est\u00e9 disponible para el funcionamiento del SOE cuando el precio de generaci\u00f3n el\u00e9ctrico es bajo (por ejemplo, fuera de las zonas pico de contribuci\u00f3n de la energ\u00eda fotovoltaica o e\u00f3lica a la red). Por lo tanto, el reto es optimizar el acoplamiento de la SOE con dos fuentes intermitentes: la electricidad renovable no gestionable y el calor solar procedente de sistemas solares de concentraci\u00f3n (CS) con almacenamiento de energ\u00eda t\u00e9rmica (TES), para suministrar la energ\u00eda t\u00e9rmica cuando la electricidad est\u00e1 disponible.<\/span><\/p>\n<p class=\"rtejustify\"><span style=\"font-size: 14pt;\">En PROMETEO se desarrollar\u00e1 un sistema optimizado completamente integrado, donde el SOE combinado con el TES y otros componentes auxiliares, convertir\u00e1n de manera eficiente las fuentes de calor y energ\u00eda intermitentes en hidr\u00f3geno. El dise\u00f1o se realizar\u00e1 con el objeto de responder a diferentes criterios, como las necesidades de los usuarios finales, aspectos de sostenibilidad, de regulaci\u00f3n y seguridad, y problemas de dimensionamiento e ingenier\u00eda.<\/span><\/p>\n<p class=\"rtejustify\"><span style=\"font-size: 14pt;\">Los actores de la cadena de valor desempe\u00f1ar\u00e1n un papel clave dentro del consorcio: desde desarrolladores y centros de investigaci\u00f3n, hasta el proveedor de electrolizadores, el integrador de sistemas y los usuarios finales.<\/span><\/p>\n<p class=\"rtejustify\"><span style=\"font-size: 14pt;\">Un prototipo modular totalmente equipado con un SOE de al menos 25 kWe (aproximadamente 15 kg \/ d\u00eda de producci\u00f3n de hidr\u00f3geno) y un TES (para operaci\u00f3n de 24 horas) ser\u00e1 dise\u00f1ado, construido, alimentado el\u00e9ctrica y t\u00e9rmicamente en condiciones representativas de una situaci\u00f3n real (TRL 5). Se prestar\u00e1 especial atenci\u00f3n al funcionamiento con carga parcial, los transitorios y los per\u00edodos de espera en caliente.<\/span><\/p>\n<p class=\"rtejustify\"><span style=\"font-size: 14pt;\">Los usuarios finales industriales llevar\u00e1n a cabo a estudios tecno-econ\u00f3micos y de sostenibilidad considerando una tecnolog\u00eda a escala comercial (hasta 100 MW) en escenarios de conexi\u00f3n\/desconexi\u00f3n de la red el\u00e9ctrica y diferentes aplicaciones finales, como la estabilizaci\u00f3n de la red, power-to-gas e hidr\u00f3geno como materia prima para la industria qu\u00edmica y de fertilizantes.<\/span><\/p>\n<div><span style=\"font-size: 14pt;\"><strong>Participantes<\/strong>: Agenzia Nazionale Per Le Nuove Tecnologie L&#8217;Energia e lo Sviluppo Economico Sostenibile (Coordinador) (ENEA), Capital Energy S.L (Capital Energy); Fondazione Bruno Kessler (FBK), Solidpower SA (SP), Fundacion IMDEA Energ\u00eda (IMDEA Energy), SNAM S.P.A (Snam S.P. A)., Ecole Polytechnique Federale De Lausanne (EPFL), NextChem Srl. (NextChem), Stamicarbon B.V. (Stamicarbon).<\/span><\/div>\n<div><span style=\"font-size: 14pt;\"><strong>Entidad financiadora\/Programa:<\/strong>\u00a0Este proyecto ha recibido financiaci\u00f3n la Empresa Com\u00fan de Pilas de Combustible e Hidr\u00f3geno 2 (<em>The Fuel Cells and Hydrogen 2 Joint Undertaking, JU<\/em>), bajo el contrato N\u00ba 101007194. Esta Empresa Com\u00fan recibe el apoyo del Programa Marco de Investigaci\u00f3n e Innovaci\u00f3n de la Uni\u00f3n Europea Horizonte 2020, y de\u00a0<em>Hydrogen Europe and Hydrogen Europe Research<\/em>.<\/span><\/div>\n<div><span style=\"font-size: 14pt;\"><strong>Convocatoria:\u00a0<\/strong>H2020-JTI-FCH-2020-1 (Topic: FCH-02-2-2020 Highly efficient hydrogen production using solid oxide electrolysis integrated with renewable heat and power).<\/span><\/div>\n<div><span style=\"font-size: 14pt;\"><strong>Tipo de Acci\u00f3n:<\/strong>\u00a0Acci\u00f3n de Investigaci\u00f3n e Innovaci\u00f3n (RIA)<\/span><\/div>\n<div><span style=\"font-size: 14pt;\"><strong>Periodo<\/strong>: Enero 2021-Agosto 2026<\/span><\/div>\n<div><span style=\"font-size: 14pt;\"><strong>Investigador Principal<\/strong>: Dr. Manuel Romero<\/span><\/div>\n<div>\n<p><strong>Subvenci\u00f3n Instituto IMDEA Energ\u00eda<\/strong>: 150.625,00\u20ac<\/p>\n<\/div>\n<\/div><\/div><div  class=\"tatsu-single-image tatsu-module tatsu-image-lazyload tatsu-B1xLGxYLq  \" ><div class=\"tatsu-single-image-inner \" style=\"width : 449px;\" ><div class = \"tatsu-single-image-padding-wrap\" style = \"padding-bottom : 37.193763919822%;\" ><\/div><img class = \"tatsu-gradient-border\" alt = \"\" title = \"Captura de pantalla 2022-05-11 a las 12.26.58\" data-src = \"http:\/\/energia.imdea.org\/wp-content\/uploads\/2022\/05\/Captura-de-pantalla-2022-05-11-a-las-12.26.58.png\" src =\"data:image\/png;base64,iVBORw0KGgoAAAANSUhEUgAAAAEAAAABCAQAAAC1HAwCAAAAC0lEQVR42mNkYAAAAAYAAjCB0C8AAAAASUVORK5CYII=\"  \/><\/div><style>.tatsu-B1xLGxYLq .tatsu-single-image-inner{border-style: solid;max-width: 100%;}.tatsu-B1xLGxYLq.tatsu-single-image{transform: translate3d(0px,0px, 0);}<\/style><\/div><\/div><\/div><div class = \"tatsu-column-bg-image-wrap\"><div class = \"tatsu-column-bg-image\" ><\/div><\/div><div class=\"tatsu-overlay tatsu-column-overlay tatsu-animate-none\" ><\/div><\/div><style>.tatsu-row > .tatsu-h1ncdeje8od2bruo.tatsu-column{width: 100%;}.tatsu-h1ncdeje8od2bruo.tatsu-column > .tatsu-column-inner > .tatsu-column-overlay{mix-blend-mode: normal;}.tatsu-h1ncdeje8od2bruo > .tatsu-column-inner > .tatsu-top-divider{z-index: 9999;}.tatsu-h1ncdeje8od2bruo > .tatsu-column-inner > .tatsu-bottom-divider{z-index: 9999;}.tatsu-h1ncdeje8od2bruo > .tatsu-column-inner > .tatsu-left-divider{z-index: 9999;}.tatsu-h1ncdeje8od2bruo > .tatsu-column-inner > .tatsu-right-divider{z-index: 9999;}<\/style><\/div><\/div><\/div><\/div><div class=\"tatsu-section-background-wrap\"><div class = \"tatsu-section-background\" ><\/div><\/div><div class=\"tatsu-overlay tatsu-section-overlay\"><\/div><style>.tatsu-h1ncdeje3e604amt .tatsu-section-pad{padding: 0px 0px 90px 0px;}.tatsu-h1ncdeje3e604amt > .tatsu-bottom-divider{z-index: 9999;}.tatsu-h1ncdeje3e604amt > .tatsu-top-divider{z-index: 9999;}.tatsu-h1ncdeje3e604amt .tatsu-section-overlay{mix-blend-mode: normal;}<\/style><\/div>\n","protected":false},"excerpt":{"rendered":"<p><a href=\"http:\/\/energia.imdea.org\/en\/porfolio\/prometeo-hydrogen-production-by-means-of-solar-heat-and-power-in-high-temperature-solid-oxide-electrolysers\/\" class=\"more-link style1-button\">Read More<\/a><\/p>","protected":false},"author":3,"featured_media":3402,"menu_order":0,"comment_status":"closed","ping_status":"closed","template":"","format":"standard","meta":{"_vp_format_video_url":"","_vp_image_focal_point":[],"footnotes":""},"portfolio_category":[60,60,62,62,65,65,72,72],"portfolio_tag":[],"class_list":["post-3401","portfolio","type-portfolio","status-publish","format-standard","has-post-thumbnail","hentry","portfolio_category-en-activo-ingles","portfolio_category-internationales-ingles","portfolio_category-proyectos-ingles","portfolio_category-unidades-de-procesos-de-alta-temperatura-ingles"],"yoast_head":"<!-- This site is optimized with the Yoast SEO plugin v28.0 - 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