首页> 外文会议>2002 ASME International Mechanical Engineering Congress and Exposition , Nov 17-22, 2002, New Orleans, Louisiana >Simulation of a PV-Micro-Hydro-Hydrogen system feeding the energy requests of a residential building in a remote area of the Alps Part I: Simulation of micro-hydro power primary input
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Simulation of a PV-Micro-Hydro-Hydrogen system feeding the energy requests of a residential building in a remote area of the Alps Part I: Simulation of micro-hydro power primary input

机译:光伏-微氢-氢气系统的仿真,该系统为阿尔卑斯山偏远地区的住宅建筑提供能量需求第一部分:微型水力发电一次输入的仿真

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The purpose of the work is a simulation model (in the Matlab environment) of a hypothetical stand-alone energy system in design conditions. This system is based just on renewable sources (solar and micro-hydroelectric energy) integrated with a hydrogen energy system (electrolyzer, hydrogen storage, PEM (proton exchange membran fuel cell). It could supply the whole electhc and part of the heat requests of a small residence situated in a remote mountainous area (e.g. an isolated village in the Italian Alps) during a complete year of operation. The work is made up of two. The subject of this first paper is the simulation of the performances of the micro-hydro power source. To obtain the flow duration curve necessary for a correct design of the micro-turbine, the following hypothesis have been made: the behavior of the mountain basin is modeled like a linear reservoir, the rainfall is described as a marked Poisson process and the snowmelt is modeled using the empirical temperature-index approach. The result of the simulation is the hourly electrical output as a function of the daily flow of available water. A single micro-turbine is enough for this basin. The maximum value of electric power obtained during spring months corresponds to 1400 W and the annual electric energy produced by this plant is in the order of 4 MWh/yr.
机译:该工作的目的是在设计条件下假设虚拟能源系统的仿真模型(在Matlab环境中)。该系统仅基于与氢能系统(电解器,储氢器,PEM(质子交换膜燃料电池))集成的可再生资源(太阳能和微水能),可以提供全部电能和部分热量需求。在整整一年的运营中,位于偏远山区(例如意大利阿尔卑斯山的一个偏远村庄)中的一个小型住宅,该工程由两个部分组成。第一篇论文的主题是模拟微型电池的性能为了获得正确设计微型涡轮机所需的水流持续时间曲线,做出了以下假设:山地盆地的行为被模拟为线性水库,降雨被描述为明显的泊松过程。然后使用经验温度指数方法对融雪进行建模,模拟结果是每小时的电力输出随可用水的每日流量的变化。这盆水就足够了春季月份获得的最大电力价值相当于1400瓦,该工厂产生的年电能约为4兆瓦时/年。

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