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Design and development of a laboratory for the study of PEMFC system for marine applications

机译:设计和开发用于海洋应用PEMFC系统的实验室

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Climate change is driving the introduction of strict emission limits in the shipping sector favoring the introduction of alternative fuels, among which hydrogen. While the storage energy density of this energy vector is a key challenge that makes way to a variety of different solutions, from fossil fuel reformers to sodium borohydride systems, fuel cell systems are generally considered among the future ideal energy converters. Nevertheless very few fuel cell marine applications are available worldwide, none of them is related to a ship application, mainly because of the high power requirements. Fuel cells are relatively new in the shipping sector, up to now no civil industrial system has been commercialized yet while military applications rely only on the U212 submarine of the Italian and German Navy. The lack of favorable niche markets coupled with the strong conservative and traditional design principles held back the investment for optimized marine systems. For this reason, present and past projects made use of conveniently adapted automotive technologies into pilot demos, with particular focus on Proton Exchange Membrane Fuel Cell (PEMFC). However, ships requirements are largely different from automotive ones, not only for the power size that are in the range of MWs instead of kWs. On the other side, in order to take advantage of large scale production as well as of the modularity of fuel cell technology, the integrations of automotive or stationary based fuel cell subsystems, already available on the market, inside a dedicate modular marine system seems to be the solution pursued by many shipbuilders and contemplated by regulatory authorities. In hybrid system configurations, fuel cells are considered in combinations with batteries, another important technology under development, in order to take advantage of the superior energy performances of fuel cell systems and the highly power discharge dynamics of batteries. The need of fuel cell power systems for ships is pushing towards the creation of knowledge that requires laboratories able to challenge the abovementioned issues in order to give answers to shipbuilders and at a lower level also to rule makers.
机译:气候变化正在推动航运业引入严格的排放限值,这有利于引入替代燃料,其中包括氢。尽管此能量矢量的存储能量密度是一个关键挑战,已使之成为多种不同的解决方案,从化石燃料重整器到硼氢化钠系统,但燃料电池系统通常被认为是未来理想的能量转换器。然而,全球范围内很少有燃料电池船用应用,它们都与船舶应用无关,这主要是由于对功率的高要求。燃料电池在航运领域相对较新,到目前为止,尚未有民用工业系统实现商业化,而军事应用仅依靠意大利和德国海军的U212潜艇。缺乏有利的利基市场,加上强大的保守和传统设计原则,阻碍了优化海洋系统的投资。由于这个原因,当前和过去的项目都将方便地适应汽车技术的需求引入了试点演示,特别关注质子交换膜燃料电池(PEMFC)。但是,船舶的需求与汽车的需求有很大不同,不仅功率范围在MWs而非kWs之内。另一方面,为了利用大规模生产以及燃料电池技术的模块化优势,在专用的模块化船用系统内部似乎已经在市场上出售了基于汽车或固定式燃料电池子系统的集成。是许多造船厂追求并得到监管机构考虑的解决方案。在混合动力系统配置中,考虑利用燃料电池与电池的组合,这是另一项正在开发的重要技术,目的是利用燃料电池系统的卓越能量性能和电池的高功率放电动力学特性。船舶对燃料电池动力系统的需求正在推动知识的创造,这些知识要求实验室能够挑战上述问题,以便为造船厂提供答案,并在较低层次上为规则制定者提供答案。

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