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High temperature hydrogen production: Design of a 750 KW demonstration plant for a two step thermochemical cycle

机译:高温制氢:设计用于两步热化学循环的750 KW示范工厂

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The present work describes the study of a solar reactor for a two-step solar thermo-chemical water splitting cycle concerning the EU-project Hydrosol Plant, which aims to build a plant at the end of 2016 on a solar tower at the Plataforma Solar de Almeria with a thermal input power of 750 kW to produce 3 kg/week of hydrogen. The process applies nickel-ferrite as reactive species, which works optimally at 1100 degrees C for the water splitting step and at 1400 degrees C for the regeneration step. This material is provided in form of monoliths which are used in cars as catalytic converter. On the platform three reactors are placed to reach a volume of about 0.3 m(3) of active material inside the reactor chambers. During the operations two of these will be regenerated while one will work on water splitting, to reach a quasi-continuous hydrogen production. The design concept of the reactor is taken from the SOLREF reactor, which was originally developed by DLR for methane reforming at 900 degrees C and 10 bar. The scheme and the layout of the plant to feed the reactors have been studied, too. A thermodynamic model for the regeneration step has been also developed to check if the thermal power demand of the three reactors can be supplied by the defined thermal input power. The differences to the other HYDROSOL projects are: The Upscaling from 100 kW to 750 kW, the usage of monoliths completely made of nickel-ferrite and the control strategy with three reactors instead of two. (C) 2016 Elsevier Ltd. All rights reserved.
机译:本工作描述了有关欧盟项目“水溶胶工厂”的太阳能热化学水分解两步太阳能反应器的研究,该项目旨在于2016年底在Plataforma Solar de太阳塔上建造一座工厂阿尔梅里亚的热输入功率为750 kW,可产生3千克/周的氢气。该工艺将镍铁氧体用作反应性物质,在水分解步骤中,镍铁氧体的最佳工作温度为1100℃,再生步骤中,镍铁氧体的最佳工作温度为1400℃。该材料以整料形式提供,其在汽车中用作催化转化器。在平台上放置三个反应器,以使反应器室内的活性物质达到约0.3 m(3)的体积。在操作过程中,其中两台将进行再生,而另一台将进行水分解,以达到准连续制氢的目的。该反应器的设计概念取自SOLREF反应器,该反应器最初由DLR开发,用于900℃和10 bar的甲烷重整。还研究了向反应器供料的装置的方案和布局。还开发了用于再生步骤的热力学模型,以检查是否可以通过定义的热输入功率满足三个反应堆的热功率需求。与其他HYDROSOL项目的区别在于:从100 kW升级到750 kW,使用完全由铁氧体镍制成的整料,以及使用三个而不是两个的反应堆进行控制的策略。 (C)2016 Elsevier Ltd.保留所有权利。

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