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Automatic control of electromechanical double-engine traction complex of mine electric locomotives

机译:矿电火车机电机车机电双发动机牵引力的自动控制

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Electric locomotive train is the main mode of transport in iron ore mines, which facilitates almost 100% of all underground freight.?Electric locomotive transport uses up to?18 – 20%?of total electric energy (EE) required for mine operations and is the main consumer of EE within the typical iron ore mine. A renewed initiative was sought to resolve the problem of excessive energy consumption involving the development of locally (Ukrainian) built energy efficient thermo-electric material (TEM) based IGBT – converters and asynchronous electric traction motors (electric induction motors).Torque Vector Algorithm is the preferred method of current control within?electric induction motors?because of its greatly enhanced performance capabilities. However the twin induction motor traction system which operates in parallel on a common load experiences various torques and momentum forces due to a number of factors which are mechanically linked to specific axles. Equilibration of loads between the twin motors can be achieved with an aid of FUZZY controller/regulator. The controls for multiple - electric induction motor system consists of two stages – the lower stage which includes classic scheme?Vector Algorithm control system, and the upper stage which includes?FUZZY controller/regulator for input signals setting the rotor speed within motors (individually for each motor).FUZZY-regulator receives mismatched input signals ?and ?representative of the actual rotor speed in induction motors ?and ?with a predetermined value of ?and derivatives based on the motors’ rotation speed.The precise correction signal values? and? ?generated on the output from FUZZY-regulator are added to the last values of input signals (i.e. ?and ) which predetermined the rotation speed within induction motors and are also an input to the controls of the multiple electric induction motor traction system.Induction motors were subject to full scale laboratory testing to verify the workings and efficiency of automatic control systems within multiple electric induction motor traction setup. Test results show that?torque Vector Algorithm method of current control along with the input signal generating system using?FUZZY-regulator?shows good, promising results.The use of a “hybrid” system of?torque Vector Algorithm method of current control along with?upper level FUZZY-regulator is advisable in order to improve physical performance and economic indicators related to the operations of twin induction motor traction systems.
机译:电力机车火车是铁矿石矿山的主要运输方式,促进了所有地下货运的近100%。电机机车运输使用了最多?18 - 20%?矿井运营所需的总电能(EE)典型的铁矿石矿区内的主要消费者。寻求更新的倡议解决了涉及当地(乌克兰)建造的节能热电材料(TEM)基于IGBT - 转换器和异步电动牵引电动机(电感应电动机).Torque载体算法的过度能源消耗问题电流控制内的优选方法?电气感应电动机?由于其具有大大提高的性能能力。然而,由于许多机械连接到特定轴的因素,双重感应电动机牵引系统经历了各种扭矩和动量力。通过模糊控制器/稳压器可以实现双电机之间的负载的平衡。多电气感应电动机系统的控制由两个阶段组成 - 包括经典方案的下阶段,包括经典方案?矢量算法控制系统,包括备份控制器/稳压器,用于将转子速度设定在电机内(单独每个电机).Fuzzy-稳压器接收不匹配的输入信号?和?代表感应电动机中的实际转子速度?和α,基于电机的旋转速度,具有预定值的α和衍生物。和? ?在模糊调节器的输出上产生的输入信号(即α和)的最后值,其预先确定感应电动机内的旋转速度,并且还为多个电气感应电动机牵引系统的控制的输入。导电电动机受全面的实验室测试,以验证多个电气感应电动机牵引装置内自动控制系统的工作和效率。测试结果表明,电流控制的扭矩矢量算法以及输入信号产生系统使用?模糊稳压器?显示出良好,有希望的“混合”系统的使用情况。扭矩矢量算法的使用电流控制方法?建议提高水平模糊监管机构,以改善与双感应电动机牵引系统的操作相关的物理性能和经济指标。

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