首页> 外文期刊>Microprocessors and microsystems >A new approach for commutation torque ripple reduction of FPGA based brushless DC motor with outgoing phase current control
【24h】

A new approach for commutation torque ripple reduction of FPGA based brushless DC motor with outgoing phase current control

机译:一种新的输出相电流控制FPGA无刷直流电动机的换向扭矩脉动降低方法

获取原文
获取原文并翻译 | 示例

摘要

Brushless Direct Current Motor (BLDC) has been deployed across several kinds of applications. However, attaining a smooth torque ripple with fast response is relatively tough, as usually this is based on the varied slew rate line current in the commutation period. Hysteresis Current control has been widely used in earlier works for the maintaining incoming and outgoing phase current at the same rate throughout the commutation period. Additionally, this also helps in reducing the commutation torque ripple and delivers successful commutation. The proposed work here uses a relatively simple control technique that is primarily derived on the basis Outgoing-phase Current Discharge Hysteresis Control (OCDHC). This has been characterized to produce low response time and reduced torque ripple which has been suggested to execute in both conduction and commutation intervals. For the implementation of digital controller, we chose Xilinx Spartan 6 FPGA board. The digital controller algorithm is written using VHDL and is dumped on the FPGA. For this purpose we use Xilinx ISE and iMPACT tools. FPGA receives hall sensor output and current from BLDC motor with reduced torque ripple and generates the gate pulses which drive the IGBT switches using OCDHC control. This condition shows that the performance of the system is not primarily based on the motor parameters, excluding the stator resistance. Lastly, results obtained from the simulation and experimental results validate the significance of the proposed control technique based on response time at load conditions that vary at different junctures. (C) 2020 Elsevier B.V. All rights reserved.
机译:无刷直流电机(BLDC)已在几种应用中部署。然而,尽可能达到快速响应的平滑扭矩脉动,并且通常这是基于换向周期中的变化的转换速率线电流。滞后电流控制已广泛用于较早的作品,用于在整个换向周期内以相同的速率保持进入和输出相电流。此外,这也有助于减少换向扭矩波动并提供成功的换向。这里的拟议工作采用了一个相对简单的控制技术,该技术主要导致基础输出相电流放电滞后控制(OCDHC)。这已经特征在于产生低响应时间和降低的扭矩脉动,这已经建议以传导和换向间隔执行。为了实现数字控制器,我们选择了Xilinx Spartan 6 FPGA板。数字控制器算法使用VHDL编写,并在FPGA上倾倒。为此目的,我们使用Xilinx ISE和影响工具。 FPGA从BLDC电机接收Hall传感器输出和电流,具有减小的扭矩纹波,并使用OCDHC控制产生驱动IGBT开关的栅极脉冲。这种情况表明,系统的性能主要基于电动机参数,不包括定子电阻。最后,从模拟和实验结果获得的结果验证了基于在不同时隙的负荷条件下的响应时间基于响应时间的提出控制技术的重要性。 (c)2020 Elsevier B.v.保留所有权利。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号