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首页> 外文期刊>日本冷凍空調学会論文集 >Energy-saving Diagnosis of Ground Water-source Heat Pump System Based on Artificial Neural Network
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Energy-saving Diagnosis of Ground Water-source Heat Pump System Based on Artificial Neural Network

机译:基于人工神经网络的地下水源热泵系统节能诊断

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摘要

Ground water-source heat pump (GWHP ) system is currently widely used in China, because of high system energy-efficiency. However, due to the lack of effectively energy-saving diagnostic system, often leads to system operating efficiency be greatly reduced. According to the existing energy efficiency standards used in China, this paper proposes energy-saving state index for GWHP unit and its distribution system, establishes the relationship database between the system monitoring characteristic parameters and the system energy efficiency state, further develops the basic model of standard input about characteristic parameters samples and standard output about system energy-saving diagnosis. Based on the features of artificial neural network's training & learning, memory & simulation, and non-linear approximation etc., the energy-saving diagnostic function of the GWHP system operation can be obtained, and the factors of system energy-efficient performance degradation can be monitored in real-time and the system energy-saving operation state can be controlled on line.
机译:地下水源热泵(GWHP)系统由于具有较高的系统能效,目前在中国得到了广泛的应用。但是,由于缺乏有效的节能诊断系统,常常导致系统运行效率大大降低。根据我国现行的能效标准,提出了GWHP机组及其配电系统的节能状态指标,建立了系统监测特征参数与系统能效状态的关系数据库,进一步建立了系统的基本模型。特征参数样本的标准输入和系统节能诊断的标准输出。根据人工神经网络的训练与学习,记忆与仿真以及非线性逼近等特点,可以获得GWHP系统运行的节能诊断功能,并可以得出影响系统节能性能下降的因素。实时监控,可在线控制系统节能运行状态。

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