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首页> 外文期刊>Measurement and Control: Journal of the Institute of Measurement and Control >A long short-term memory neural network approach for the hardware-in-the-loop simulation of diesel generator sets
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A long short-term memory neural network approach for the hardware-in-the-loop simulation of diesel generator sets

机译:柴油发电机组硬件仿真的长期短期内存神经网络方法

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The electronic speed governor plays an important role in diesel generator sets. The ideal method for developing and debugging the electronic governor is to simulate the diesel engine's dynamic characteristics with the hardware-in-the-loop simulation system. In this system, the diesel engine can be replaced by a mathematical model. Our research proposed a novel diesel engine modeling method using the long short-term memory neural network for simulating dynamic characteristics of the rotational speed of diesel generator sets. The proposed model is trained and tested on the data of the real diesel generator sets. With different power loads and unloads, experimental results demonstrated that this method was able to successfully simulate the dynamic characteristics of diesel generator sets. In addition, comparing to other existing methods provided a conclusion that the performance of the model was better than others. Finally, the proposed model was deployed on an established hardware-in-the-loop simulation system. The results further demonstrated that this model was able to reproduce the diesel generator sets' dynamic characteristics.
机译:电子速度调速器在柴油发电机组中起着重要作用。用于开发和调试电子调速器的理想方法是使用硬件在环路仿真系统模拟柴油发动机的动态特性。在该系统中,柴油发动机可以由数学模型代替。我们的研究提出了一种新的柴油发动机建模方法,使用长短短期内存神经网络来模拟柴油发电机组转速的动态特性。在真实柴油发电机组的数据上培训并测试了所提出的模型。采用不同的电力负载和卸载,实验结果表明,该方法能够成功模拟柴油发电机组的动态特性。此外,与其他现有方法相比提供了一种结论,即该模型的性能比其他方法更好。最后,在建立的硬件在环路仿真系统上部署了所提出的模型。结果进一步证明了该模型能够再现柴油发电机组的动态特性。

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