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SPM-D11/LSXR系列8440-1706微处理器设计用于配备Woodward同步器

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SPM-D11/LSXR系列8440-1706微处理器设计用于配备Woodward同步器





SPM-D11/LSXR系列8440-1706微处理器设计用于配备Woodward同步器

SPM-D11系列是基于微处理器的同步器,设计用于配备Woodward或其他兼容速度控制和自动电压调节器的单相或三相交流发电机。SPM-D11系列同步器使用模拟或离散输出偏置信号提供自动频率、相位和电压匹配。它结合了一个断路器的同步、负载和功率因数控制,或同步负载共享和发电机保护。

功能包括:

一个断路器的同步

相位匹配或带电压匹配的滑差频率同步

速度和电压偏置信号的输出

有功功率和功率因数控制

两条模拟负载共享线,用于有功和重有功功率负载共享

外部控制有功功率设定值的模拟输入

包括发电机保护

操作模式选择的离散输入

用于操作、报警指示和测量值可视化的双线液晶文本显示

LED同步示波器

可配置电脑和前面板


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This product bridges the traditionally divergent worlds of Intel-based PC’s and Motorola-based VMEbus controllers; therefore, some confusion over “conventional” notation and terminology may exist. Every effort has been made to make this manual consistent by adhering to conventions typical for the Motorola/VMEbus world; nevertheless, users in both camps should review the following notes: • Hexadecimal numbers are listed Motorola-style, prefixed with a dollar sign: $F79, for example. By contrast, this same number would be signified 0F79H according to the Intel convention, or 0xF79 by many programmers. Less common are forms such as F79h or the mathematician’s F7916. • An 8-bit quantity is termed a “byte,” a 16-bit quantity is termed a “word,” and a 32-bit quantity is termed a “longword.” The Intel convention is similar, although their 32-bit quantity is more often called a “doubleword.” • Motorola programmers should note that Intel processors have an I/O bus that is completely independent from the memory bus. Every effort has been made in the manual to clarify this by referring to registers and logical entities in I/O space by prefixing I/O addresses as such. Thus, a register at “I/O $140” is not the same as a register at “$140,” since the latter is on the memory bus while the former is on the I/O bus. • Intel programmers should note that addresses are listed in this manual using a linear, “flat-memory” model rather than the old segment:offset model associated with Intel Real Mode programming. Thus, a ROM chip at a segment:offset address of C000:0 will be listed in this manual as being at address $C0000. For reference, here are some quick conversion formulas: Segment:Offset to Linear Address Linear Address = (Segment × 16) + Offset Linear Address to Segment:Offset Segment = ((Linear Address ÷ 65536) − remainder) × 4096 Offset = remainder × 65536 Where remainder = the fractional part of (Linear Address ÷ 65536) Note that there are many possible segment:offset addresses for a single location. The formula above will provide a unique segment:offset address by forcing the segment to an even 64 Kbyte boundary, for example, $C000, $E000, etc. When using this formula, make sure to round the offset calculation properly.



VMIC  VMIVME-7740-840 350-07740-840-M 
BENTLY  3500/22-01-01-00 
Molex  PCU-DPIO 
ABB DSTS104 3BSE007285R1  
BENTLY  3500/40M 176449-01  
HONEYWELL FC-PSU-240516  
HONEYWELL SDOL-0424 
ABB ASFC-01C  
ABB UFC760BE143 3BHE004573R0143 
Cutler-Hammer C825KN10 200A 600V  

A-B   1440-DYN02-01RJ/A 
BENTLY 106M1081-01  
GESAS CAN-DPV  
BENTLY 3500/92 136188-02  
B&R  8MSA3M.R0-42   
ICS TRIPLEX T8461
ICS TRIPLEX T8403 
WOODWARD 2301A 9907-018 
ABB ASFC-01C 
ABB ACU-01B 3HNA024871-001  
ABB  5SHY3545L0014 
EMERSON 9199-00002 A6120 
EPRO PR6423/010-010+CON021 
EPRO  PR6424/010-010+CON021  
BENTLY 3500/15-05-05-00  
Woodward 8440-1706 
ACQUISITIONLOGI  AL81G  
ICS TRIPLEX  T8461  
ICS TRIPLEX T8403  
BENTLY  136188-02  
ABB  5SHY3545L0014 
ABB PM866 3BSE050200R1  
BENTLY  125840-01 
BENTLY 3500/15 127610-01

SPM-D11/LSXR系列8440-1706微处理器设计用于配备Woodward同步器

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