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Dynamic Tracking of Power Demand for Integrated Fuel Cell Systems using Nonlinear Model Predictive Control ?

机译:使用非线性模型预测控制的集成燃料电池系统动态跟踪

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Transient changes in the power demand of state-of-the-art fuel cell systems are compensated by a battery in order to operate the fuel cell system safely within its physical boundaries. More concretely, oxygen starvation in the fuel cell is conventionally prevented by directly controlling the oxygen excess ratio. However, this limits the transient response of the fuel cell and the system’s overall flexibility and efficiency. In order to overcome these limitations, we ascribe the task of the dynamic but safe response in a hybrid system to the fuel cell. For this purpose, we present a nonlinear model predictive control approach which is able to realize efficient transient power tracking, while considering the oxygen excess ratio explicitly as a boundary. We address the control challenges of a nonlinear, coupled, and bounded system with an adequate control design using a real-time capable nonlinear controller model. The controller is validated as proof of concept in simulation with a detailed dynamic plant model. Our contribution realizes a collaborative power setting by fuel cell and compressor. Moreover, system efficiency both in stationary and in transient operation is achieved, while preventing oxygen starvation as well as compressor surge and choke throughout the entire operation.
机译:最先进的燃料电池系统的电力需求的瞬态变化由电池补偿,以便安全地在其物理边界内操作燃料电池系统。更具体地,通过直接控制氧过量比例,通常防止燃料电池中的氧饥饿。然而,这限制了燃料电池的瞬态响应和系统的整体灵活性和效率。为了克服这些限制,我们将混合系统中的动态但安全响应的任务归于燃料电池。为此目的,我们提出了一种非线性模型预测控制方法,其能够实现有效的瞬态电源跟踪,同时将氧多的比例明确地作为边界。我们使用实时功能的非线性控制器模型解决了具有足够控制设计的非线性,耦合和有界系统的控制挑战。控制器被验证为具有详细动态工厂模型的仿真中概念证明。我们的贡献实现了燃料电池和压缩机的协作电力设置。此外,实现了静止和瞬态操作中的系统效率,同时防止氧饥饿以及整个操作中的压缩机浪涌和扼流圈。

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