8400全系列驱动器E84AVTCE2224SB0参详
8400全系列驱动器E84AVTCE2224SB0参详
8400全系列驱动器E84AVTCE2224SB0参详
8400全系列驱动器E84AVTCE2224SB0说明书
8400全系列驱动器E84AVTCE2224SB0使用原理
MC-4/11/05/230
MC-4/11/01/400
SH055/80009/0/0/00/00/00/11/00
COMWEB COC-200
MC-4/11/10/400
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2UBA004416R0006 ACS580MV_PEBB_R6
XT382B
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PM856AK01
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ROBERTSHAW DMS-3502 DMS3502
ROBERTSHAW DMS-3501 DMS3501
RELIANCE ELECTRIC 86466-76R 8646676R
RELIANCE ELECTRIC 86466-75R 8646675R
RELIANCE ELECTRIC 802220-14VC 80222014VC
RELIANCE ELECTRIC 801429-SE 801429SE
RELIANCE ELECTRIC 57552-C 57552C
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PACIFIC SCIENTIFIC SC155-001-05 SC15500105
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伺服驱动器是现代运动控制的重要组成部分,被广泛应用于工业机器人及数控加工中心等自动化设备中。尤其是应用于控制交流永磁同步电机的伺服驱动器已经成为国内外研究热点。当前交流伺服驱动器设计中普遍采用基于矢量控制的电流、速度、位置三闭环控制算法。该算法中速度闭环设计合理与否,对于整个伺服控制系统,特别是速度控制性能的发挥起到关键作用。
在伺服驱动器速度闭环中,电机转子实时速度测量精度对于改善速度环的转速控制动静态特性至关重要。为寻求测量精度与系统成本的平衡,一般采用增量式光电编码器作为测速传感器,与其对应的常用测速方法为M/T测速法。M/T测速法虽然具有·定的测量精度和较宽的测量范围,但这种方法有其固有的缺陷,主要包括:1)测速周期内·须检测到至少一个完整的码盘脉冲,限制了·低可测转速;2)用于测速的2个控制系统定时器开关难以严格保持同步,在速度变化较大的测量场合中无法保证测速精度。因此应用该测速法的传统速度环设计方案难以提高伺服驱动器速度跟随与控制性能。