首页> 外文期刊>Journal of Fuel Cell Science and Technology >Independent Analysis of Real-Time, Measured Performance Data From Microcogenerative Fuel Cell Systems Installed in Buildings
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Independent Analysis of Real-Time, Measured Performance Data From Microcogenerative Fuel Cell Systems Installed in Buildings

机译:独立分析实时,从建筑物中安装的微发电燃料电池系统测量的性能数据

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Pacific Northwest National Laboratory (PNNL) is working with industry to independently monitor up to 15 distinct 5 kW-electric (kWe) combined heat and power (CHP) high temperature (HT) proton exchange membrane (PEM) fuel cell systems (FCSs) installed in light commercial buildings. This research paper discusses an evaluation of the first six months of measured performance data acquired at a 1 s sampling rate from real-time monitoring equipment attached to the FCSs at building sites. Engineering performance parameters are independently evaluated. Based on an analysis of the first few months of measured operating data, FCS performance is consistent with manufacturer-stated performance. Initial data indicate that the FCSs have relatively stable performance and a long-term average production of about 4.57 kWe of power. This value is consistent with, but slightly below, the manufacturer's stated rated electric power output of 5 kWe. The measured system net electric efficiency has averaged 33.7%, based on the higher heating value (HHV) of natural gas fuel. This value, also, is consistent with, but slightly below, the manufacturer's stated rated electric efficiency of 36%. The FCSs provide low-grade hot water to the building at a measured average temperature of about 48.4 degrees C, lower than the manufacturer's stated maximum hot water delivery temperature of 65 degrees C. The uptime of the systems is also evaluated. System availability can be defined as the quotient of total operating time compared to time since commissioning. The average values for system availability vary between 96.1 and 97.3%, depending on the FCS evaluated in the field. Performance at rated value for electrical efficiency (PRVeff) can be defined as the quotient of the system time operating at or above the rated electric efficiency and the time since commissioning. The PRVeff varies between 5.6% and 31.6%, depending on the FCS field unit evaluated. Performance at rated value for electrical power (PRVp) can be defined as the quotient of the system time operating at or above the rated electric power and the time since commissioning. PRVp varies between 6.5% and 16.2%. Performance at rated value for electrical efficiency and power (PRVt) can be defined as the quotient of the system time operating at or above both the rated electric efficiency and the electric power output compared to the time since commissioning. PRVt varies between 0.2% and 1.4%. Optimization to determine the manufacturer rating required to achieve PRVt greater than 80% has been performed based on the collected data. For example, for FCS Unit 130 to achieve a PRVt of 95%, it would have to be down-rated to an electrical power output of 3.2 kWe and an electrical efficiency of 29%. The use of PRV as an assessment metric for FCSs has been developed and reported for the first time in this paper. For FCS Unit 130, a maximum decline in electric power output of approximately 18% was observed over a 500 h period in Jan. 2012.
机译:太平洋西北国家实验室(PNNL)正在与行业合作,独立监控多达15个不同的5千瓦电动(KWE)组合的热量和功率(CHP)高温(HT)质子交换膜(PEM)燃料电池系统(FCSS)在轻型商业建筑中。本研究论文讨论了从附加到建筑工地FCSS的实时监测率以1秒采样率获得的测量性能数据的第一个六个月的评估。独立评估工程性能参数。基于对测量操作数据的前几个月的分析,FCS性能与制造商陈述的性能一致。初始数据表明FCSS具有相对稳定的性能和长期平均生产的功率约为4.57千维。该值与但略低于,制造商的额定电力输出为5 kWe。基于天然气燃料的较高的加热值(HHV),测量的系统净电效率平均为33.7%。这个值也是一致的,但略低于,制造商的额定电效率为36%。 FCSS在测量的平均温度为约48.4摄氏度的测量平均温度下为建筑提供低级热水,低于制造商的最大热水输送温度为65℃。还评估了系统的正常运行时间。系统可用性可以定义为与调试以来的时间相比的总操作时间的商。系统可用性的平均值在96.1和97.3%之间变化,具体取决于该领域中评估的FCS。电效率(PRVVVEFF)额定值的性能可以定义为在额定电效率和自调试以来的时间运行的系统时间的商。 PRVVEFF在5.6%和31.6%之间变化,具体取决于评估的FCS现场单元。电力(PRVP)的额定值的性能可以定义为在额定电力和额定电力的系统时间和自调试以来的时间的商品。 PRVP在6.5%和16.2%之间变化。电气效率和功率(PRVT)的额定值的性能可以定义为在额定电效率和电力输出的系统时间和电力输出相比,与自调试以来的时间相比的系统时间。 PRVT在0.2%和1.4%之间变化。根据收集的数据,已经执行了确定达到80%的PRVT所需的制造商评级的优化。例如,对于FCS单元130实现95%的PRVT,它必须被降低到3.2kWe的电力输出和29%的电效率。本文首次开发和报告了PRV作为FCSS评估度量的使用。对于FCS单元130,在2012年1月在500 H期间观察到电力输出的最大下降约18%。

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