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首页> 外文期刊>Energy Conversion & Management >Nonlinear multivariable sliding mode control of a reversible PEM fuel cell integrated system
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Nonlinear multivariable sliding mode control of a reversible PEM fuel cell integrated system

机译:可逆PEM燃料电池集成系统的非线性多变量滑模控制

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This work proposes a reduced-order sliding mode observer (SMO) based nonlinear control to regulate a multi variable proton exchange membrane fuel cell (PEMFC) integrated system. To make this system reversible, it is integrated with an air compressor, air cooler, primary manifold, supply manifold, humidifier and return manifold. To recirculate the unreacted hydrogen fuel, an ejector and to suppress the fuel cell heat of reaction, a simple water cooled heat exchange system is modeled. Among the three measured outputs, namely output voltage (main product), compressor air flow and fuel cell body temperature, the last two are proposed to control at their desired values to avoid oxygen starvation at cathode side and adverse effect of system temperature, respectively. To increase the lifetime of proton exchange membrane fuel cell and its smooth operation, a model based sliding mode controller (SMC) is synthesized, coupling with a nonlinear sliding mode observer required to estimate the unmeasured state information. This observer is formulated based on the reduced-order process model that leads to a process/model mismatch. Further, a saturation function is included in the sliding mode control theory in order to avoid the chattering effect. The performance of the proposed nonlinear observer based sliding mode controller is finally investigated by comparing with the conventional proportional integral (PI) controller in terms of servo (output voltage and fuel cell body temperature) and regulatory (load current) responses.
机译:这项工作提出了基于降阶滑模观测器(SMO)的非线性控制,以调节多质子交换膜燃料电池(PEMFC)集成系统。为了使该系统可逆,它与空气压缩机,空气冷却器,主歧管,供应歧管,加湿器和回流歧管集成在一起。为了再循环未反应的氢燃料,喷射器并抑制燃料电池的反应热,对简单的水冷式热交换系统进行了建模。在三个测量的输出中,即输出电压(主要产品),压缩机空气流量和燃料电池体温度,建议将后两个控制在所需的值,以避免分别在阴极侧发生氧气不足和系统温度的不利影响。为了增加质子交换膜燃料电池的寿命及其平稳运行,合成了基于模型的滑模控制器(SMC),并与估计未测量状态信息所需的非线性滑模观测器耦合。该观察者是基于导致流程/模型不匹配的降序流程模型制定的。此外,在滑模控制理论中包括饱和函数以避免颤动效应。通过与常规比例积分(PI)控制器进行伺服(输出电压和燃料电池体温度)和调节(负载电流)响应的比较,最终研究了所提出的基于非线性观测器的滑模控制器的性能。

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