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Design of hybrid type’s optical pickup actuator for system stability in high density reading and recording

机译:混合型光学拾波器执行器的设计可确保高密度读取和记录时的系统稳定性

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摘要

Recently, there has been a trend to have large capacity and high data transfer rate in optical disk drive. Pickup actuator also should have high performance for satisfying this trend. Since moving magnet type actuator has more simple and robust structure than moving coil type one, we designed moving magnet type to accomplish high flexible mode frequency. However, the driving sensitivity of moving magnet type actuator was low because of its characteristics as following. At first, moving parts including magnets are heavy and electromagnetic (EM) circuits are not closed-loop owing to yoke composed of paramagnetic materials. Therefore, in order to increase the driving sensitivity without the degradation of the other dynamic characteristics, EM circuits were redesigned by adding solenoid coils on existing mechanism. As a result, the hybrid type actuator composed of moving magnet type and moving coil type was suggested to obtain high sensitivities and high flexible mode frequency. Design variables of EM circuits and structure parts were decided through parametric study and design of experiments procedure. Optimization algorithm using variable metric method was used to improve performance. Based on these results, the final model was presented.
机译:近来,趋势是在光盘驱动器中具有大容量和高数据传输速率。皮卡执行器也应具有高性能来满足这一趋势。由于动磁铁式致动器的结构比动线圈式致动器更简单,更坚固,因此我们设计了动磁铁式致动器以实现高柔性模式频率。但是,动磁铁型致动器的驱动灵敏度低,具有以下特征。首先,包括磁体的运动部件很重,并且由于顺磁性材料构成的磁轭,电磁(EM)电路不是闭环的。因此,为了在不降低其他动态特性的情况下提高驱动灵敏度,通过在现有机构上增加电磁线圈来重新设计EM电路。结果,建议由移动磁体类型和移动线圈类型组成的混合型致动器获得高灵敏度和高柔性模式频率。通过参数研究和实验程序设计,确定了电磁电路和结构件的设计变量。使用了可变度量方法的优化算法来提高性能。基于这些结果,提出了最终模型。

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  • 来源
    《Microsystem Technologies》 |2009年第11期|1729-1735|共7页
  • 作者单位

    Tactical Systems PEO Agency for Defense Development Yuseong P.O.Box 35 Daejeon 305-600 Korea;

    Center for Information Storage Device Yonsei University 134 Sinchon-dong Seodaemoon-gu Seoul 120-749 Korea;

    Center for Information Storage Device Yonsei University 134 Sinchon-dong Seodaemoon-gu Seoul 120-749 Korea;

    Center for Information Storage Device Yonsei University 134 Sinchon-dong Seodaemoon-gu Seoul 120-749 Korea;

    Center for Information Storage Device Yonsei University 134 Sinchon-dong Seodaemoon-gu Seoul 120-749 Korea;

    The Manufacturing Technology RampampD Center Ricoh 16-1 Shinei-cho Tsuzuki-ku Yokohama 224-0035 Japan;

    The Manufacturing Technology RampampD Center Ricoh 16-1 Shinei-cho Tsuzuki-ku Yokohama 224-0035 Japan;

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