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Simulation of the operation of a fleet of materials handling and transport vehicles, powered by fuel cells

机译:模拟由燃料电池提供动力的一批物料搬运和运输车辆的运行

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The aim of this paper is to study the dynamic behaviour of hydrogen technology in a company in which material handling and transportation is used as part of the production cycle at a business in the logistics sector, located in Madrid, Spain. The company owns a fleet of 38 vehicles of four different types powered by fuel cells, which are sufficient to handle and transport 36,000 pallets a week. Using the number of vehicles, the energy consumption and the work cycles for each type of vehicle as the main input variables, TRNSYS software was used to simulate this type of system to ascertain the dimensions of the hydrogen infrastructure. By simulating numerous configurations, we obtained the infrastructure that was most suitable for supplying the fleet and guaranteeing its autonomous operation for a five-day period. The results of the simulation are expressed in terms of the time variation of the energy consumed by the electrolysis system and the compressor, as well as the pressure and volume of the gas in the storage tank. From this it can be deduced that establishing the dimensions of the component elements means the entire system reaches a stable dynamic operation in a timeframe equivalent to 17% of the simulation horizon, with the operational and financial advantages that this entails. This is because the electrolysis system that is required operates continuously during that time, and the power consumed by the electrolysers is the system's main operational variable. The procedure employed for this study can be replicated in other similar situations by adjusting the input variables and any specific requirements. Copyright (c) 2015, Hydrogen Energy Publications, LLC. Published by Elsevier Ltd. All rights reserved.
机译:本文的目的是研究位于西班牙马德里的一家物流公司的公司中氢处理技术的动态行为,该公司将物料搬运和运输作为生产周期的一部分。该公司拥有38辆车,由四种不同类型的燃料电池车组成,这些燃料车每周可处理和运输36,000个托盘。将每种类型车辆的车辆数量,能耗和工作周期作为主要输入变量,使用TRNSYS软件对这种类型的系统进行仿真,以确定氢基础设施的规模。通过模拟众多配置,我们获得了最适合为舰队提供动力并保证其为期五天的自主运行的基础设施。仿真结果用电解系统和压缩机消耗的能量随时间变化以及储罐中气体的压力和体积来表示。由此可以推断出,确定组成元素的尺寸意味着整个系统在相当于仿真范围的17%的时间范围内达到稳定的动态运行,并具有运行和财务优势。这是因为所需的电解系统在这段时间内连续运行,而电解槽所消耗的功率是系统的主要运行变量。通过调整输入变量和任何特定要求,可以在其他类似情况下复制用于此研究的过程。 Hydrogen Energy Publications,LLC版权所有(c)2015。由Elsevier Ltd.出版。保留所有权利。

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