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Development of controllers using FPGA for fuel cells in standalone and utility applications

机译:在独立和公用事业应用中使用FPGA开发用于燃料电池的控制器

摘要

In the recent years, increase in consumption of energy, instability of crude oil price and global climate change has forced researchers to focus more on renewable energy sources.Though there are different renewable energy sources available (such as photovoltaic and wind energy), they have some major limitations. The potential techniques which canudprovide renewable energy are fuel cell technology which is better than other renewable sources of energy. Solid oxide fuel cell (SOFC) is more efficient, environmental friendlyudrenewable energy source. This dissertation focuses on load/grid connected fuel cell power system (FCPS) which can be used as a backup power source for household andudcommercial units. This backup power source will be efficient and will provide energy at an affordable per unit cost. Load/grid connected fuel cell power system mainly comprises of a fuel cell module, DCDC converter and DC-AC inverter. This thesis primarily focuses on solid oxide fuel cell (SOFC) modelling, digital control of DC-DC converter and DC-AC inverter. Extensive simulation results are validated by experimental results. Dynamic mathematical model of SOFC is developed to find out output voltage, efficiency, over potential loss and power density of fuel cell stack. The output voltage of fuel cell is fed to a DC-DC converter to step up the output voltage. ConventionaludProportional-Integral (PI) controller and FPGA based PI controller is implemented and experimentally validated. The output voltage of DC-DC converter is fed to DC-AC inverter. Different pulse width modulation-voltage source inverter (PWM-VSI) control strategy (such as Hysteresis Current Controller (HCC), Adaptive-HCC, Fuzzy-HCC, Adaptive Fuzzy-HCC, Triangular Carrier Current Controller (TCCC) and Triangular Periodical Current Controller (TPCC)) for DC-AC inverter are investigated and validated through extensive simulations using MATLAB/SIMULINK. This work also focuses on number of fuel cells required for application in real time and remedy strategies when one or few fuel cells are malfunctioning. When the required numbers of fuel cells are not available, DC-DC converter is used to step up the output voltage of fuel cell. When there is a malfunction in fuel cell or shortage of hydrogen then a battery is used to provide backup power.
机译:近年来,能源消耗的增长,原油价格的不稳定以及全球气候变化迫使研究人员更多地关注可再生能源,尽管有不同的可再生能源(例如光伏和风能),一些主要限制。可以不提供可再生能源的潜在技术是燃料电池技术,它比其他可再生能源更好。固体氧化物燃料电池(SOFC)是更高效,环保不可再生的能源。本文主要研究负载/并网连接的燃料电池电源系统(FCPS),该系统可作为家庭和商业单位的备用电源。这种备用电源将是高效的,并将以可承受的每单位成本提供能量。负载/并网连接的燃料电池动力系统主要包括燃料电池模块,DCDC转换器和DC-AC逆变器。本文主要研究固体氧化物燃料电池(SOFC)建模,DC-DC转换器和DC-AC逆变器的数字控制。实验结果验证了广泛的仿真结果。建立了SOFC的动态数学模型,以找出燃料电池堆的输出电压,效率,潜在损耗和功率密度。燃料电池的输出电压被馈送到DC-DC转换器以提高输出电压。实现了常规 udProportional-Integral(PI)控制器和基于FPGA的PI控制器,并进行了实验验证。 DC-DC转换器的输出电压被馈送到DC-AC逆变器。不同的脉宽调制电压源逆变器(PWM-VSI)控制策略(例如磁滞电流控制器(HCC),自适应HCC,Fuzzy-HCC,自适应Fuzzy-HCC,三角载波电流控制器(TCCC)和三角周期性电流控制器通过使用MATLAB / SIMULINK进行了广泛的仿真,对DC-AC逆变器(TPCC)进行了研究和验证。这项工作还着重于实时应用所需的燃料电池数量以及一个或几个燃料电池出现故障时的补救策略。当所需数量的燃料电池不可用时,可使用DC-DC转换器来提高燃料电池的输出电压。当燃料电池出现故障或氢气不足时,可使用电池提供备用电源。

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    Bhuyan Kanhu Charan;

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  • 年度 2014
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