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Modeling and Simulation of Multi-stream Heat Exchanger Using Artificial Neural Network

机译:使用人工神经网络的多流热交换器的建模与仿真

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A multi-stream heat exchanger (MSHE) is the heart of LNG plant where 40% of the entire energy is consumed in this section. Moreover, the plant operation is subject to number of variations from the plant inlet such as ambient temperature, pressure, feed flow or composition. In industrial application, the mitigating of these variations is usually performed using trial and error approaches. Thus developing a competent and accurate model to predict the performance of the MSHE is an inevitable step to overcome those variations. In this study, a model for the MSHE operation is developed using artificial neural network. The modeling is made in such a way that the information about the internals of heat exchanger could allow the MSHEs from any variation that arises from the process itself or upstream conditions. A number of simulation runs have been made by taking a case study for the MSHE operation. The developed model can predict and provide prior information for the MSHE in order to take action during the plant performance.
机译:多流热交换器(MSHE)是LNG工厂的心脏,其中40%的整个能量在本节中消耗。此外,植物操作受到植物入口的变化的数量,例如环境温度,压力,进料流或组合物。在工业应用中,通常使用试验和误差方法进行这些变化的缓解。从而制定能力和准确的模型预测MSHE的性能是克服这些变化的必然步骤。在本研究中,使用人工神经网络开发了MSHE操作的模型。以这样的方式制造模型,即热交换器内部结构的信息可以允许来自从过程本身或上游条件产生的任何变型的MSH。通过对MSHE操作进行案例研究,已经进行了许多仿真运行。开发的模型可以预测并提供MSHE的先前信息,以便在植物性能期间采取行动。

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