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3. Basic requirements for the Digital Protective Relay
3. Basic requirements for the Digital Protective Relay

A Reconfigurable Uninterruptible Power Supply System for Multiple Power Quality Applications
A Reconfigurable Uninterruptible Power Supply System for Multiple Power Quality Applications

... the output voltage in the event of utility voltage sag or swell. This UPS configuration allows an independent control of the output voltage, input power factor correction, and input harmonic power compensation, thus providing series-parallel active power line conditioning capabilities [10]–[16]. Eve ...
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... accurate 1/4DIN controller provided with universal input/ output. It has a large display for readings and excellent monitoring operability with the Auto/Man switching key. In addition, heating/cooling control, including PID control with auto-tuning, the “SUPER” overshoot suppressing function “SUPER” ...
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... device powered from the USB connector: input capacitors smaller than 10µF are required to minimize inrush currents at plug-in; upon power-up, the device must draw less than 100mA of current from the USB bus and can increase its input current to 500mA only when given permission by the USB controller. ...
DCVG Training Manual DA Meter Version
DCVG Training Manual DA Meter Version

... In the CIS Training Manual, our concern was recording the potential difference between a catholically-protected buried pipeline and the soil above it at ground level, as a function of distance down the length of the pipe. In the case of DC-Voltage Gradient (DCVG) surveys, however, our concern is rec ...
Realtek RTL8201(F/FL/FN)-VB-CG DataSheet 1.4
Realtek RTL8201(F/FL/FN)-VB-CG DataSheet 1.4

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Interconnect Protection of IPP Generators Using Digital Technology

... utility and DG owners need to consider when developing protection requirements.  Interconnection transformer configuration plays a pivotal role in interconnection protection.  Digital multifunction relays are an ideal technology for interconnection protection. ...
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... The TJA1080A is a FlexRay transceiver that is fully compliant with the FlexRay electrical physical layer specification V2.1 Rev. A (see Ref. 1). In addition, it incorporates features and parameters included in V3.0.1 (see Ref. 2 and Section 14). It is primarily intended for communication systems fro ...
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... Note: Isophase bus sections are surrounded by ground by design and are connected in such a manner that damage to any section would result in automatic grounding. Additionally, overhead transmission lines have sufficient distance between connection points that grounding would be ensured during any li ...
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BUJ303AX 1. Product profile NPN power transistor

... Quick reference data — The Quick reference data is an extract of the product data given in the Limiting values and Characteristics sections of this document, and as such is not complete, exhaustive or legally binding. Applications — Applications that are described herein for any of these products ar ...
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... PWM timing generation for stand alone (non-video) LED lighting applications that do not provide external timing sources. One MSL2160/1 simply generates PWM timing for itself and for the other devices in a multiple-device application. Optionally, a single external PWM signal applied to the PWM input ...
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... limitation consequential or incidental damages. “Typical” parameters that may be provided in Freescale Semiconductor data sheets and/or specifications can and do vary in different applications and actual performance may vary over time. All operating parameters, including “Typicals”, must be validate ...
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Immunity-aware programming

When writing firmware for an embedded system, immunity-aware programming refers to programming techniques which improve the tolerance of transient errors in the program counter or other modules of a program that would otherwise lead to failure. Transient errors are typically caused by single event upsets, insufficient power, or by strong electromagnetic signals transmitted by some other ""source"" device.Immunity-aware programming is an example of defensive programming and EMC-aware programming. Although most of these techniques apply to the software in the ""victim"" device to make it more reliable, a few of these techniques apply to software in the ""source"" device to make it emit less unwanted noise.
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