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Energy Saving Strategy of the Variable-Speed Variable-Displacement Pump Unit Based on Neural Network

机译:基于神经网络的变速变量泵机组的节能策略

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The hydraulic system is widely used in manufacturing fields, and the hydraulic drive unit is one of the energy intensive components in the hydraulic system. For reducing the energy consumption, a variable-speed variable-displacement pump unit (SVVDP) was investigated. The optimum energy efficiency of the unit can be realized by regulating the motor rotating speed and the pump displacement simultaneously. However, it is difficult to find the optimal rotating speed and displacement for each working condition. In this paper, the problem is solved by developing the control strategy using a backpropagation neural network, which is utilized to calculate the speed and displacement based on the measured pressure and flow rate of the hydraulic system. Results indicate that the proposed strategy can reliably and automatically lower energy consumption of the SVVDP under various conditions. The proposed control strategy contributes to lowing energy consumption of various types of hydraulic equipment and construction machinery.
机译:液压系统广泛用于制造领域,并且液压驱动单元是液压系统中的高能耗组件之一。为了减少能量消耗,研究了变速可变排量泵单元(SVVDP)。通过同时调节电动机转速和泵排量,可以实现装置的最佳能效。但是,很难找到每种工况的最佳转速和排量。在本文中,通过使用反向传播神经网络开发控制策略来解决该问题,该神经网络用于根据测得的液压系统压力和流量来计算速度和位移。结果表明,所提出的策略可以在各种条件下可靠且自动地降低SVVDP的能耗。提出的控制策略有助于降低各种液压设备和工程机械的能耗。

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