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EH24847850
EH24847850

Download T7900 Datasheet
Download T7900 Datasheet

... The T7900 Electronic Potentiometer is used as converter between pulse contacts and a device requiring control adjustment by a voltage or current signal, such as an electronic speed controller. The T7900 acts in a similar manner to a motorized potentiometer, except that the outputs are a voltage, a c ...
EE 101 Lab 8 A/D converter and power
EE 101 Lab 8 A/D converter and power

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Dual Supply From Single Battery SourCe

A/D Converter and ECEbot Power
A/D Converter and ECEbot Power

Mixed Signal Devices and Sensors Generic Sensor System Block
Mixed Signal Devices and Sensors Generic Sensor System Block

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563 kB PowerPoint

... Check for/respond to remote commands; Check for/respond to local commands; Refresh sensor data; Redraw local user interface; ...
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exam_01_solution_ake..

PTreeSVer Peano Count Tree based simulation and
PTreeSVer Peano Count Tree based simulation and

phys_layer-1
phys_layer-1

... PC modem, phone lines; TV cable modems ...
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Integrated Design

... 3. Convert PortB2 to an input and start a timer. The capacitor will start to charge toward Vcc. 4. Detect when the voltage at PortB2 is greater than the voltage at PortB3. That is, you will have to record when the comparator changes state using the timer1 input capture function, which is set up to b ...
power supply - IndiaStudyChannel.com
power supply - IndiaStudyChannel.com

New Logarithmic Two-Step Flash A/D Converter with Digital Error
New Logarithmic Two-Step Flash A/D Converter with Digital Error

... multiplication, this operation corresponds to an amplification dependent on the scale offset introduced. The higher the offset the lower the comparator gain needed. If we shift the second ADC scale near the top of the input range and leave some additional transition steps at the top and at the botto ...
Embedded Systems - Ulster University
Embedded Systems - Ulster University

... Analog sampling consists of two steps: acquisition and conversion Sample start time can be controlled in software by setting the SAMP bit (AD1CON1<1>) or controlled automatically by the ASAM bit (AD1CON1<2>) Conversion time is the time required for the ADC to convert the voltage held by the SHA. The ...
ISSCC 2015 / SESSION 25 / RF FREQUENCY GENERATION FROM
ISSCC 2015 / SESSION 25 / RF FREQUENCY GENERATION FROM

... voltage-domain digitization realized by an analog-to-digital converter (ADC). It consists of an 18b Class-C digitally-controlled oscillator (DCO), 4b comparator, digital loop filter (DLF), and frequency-locked loop (FLL). Implemented in 65nm CMOS technology, the proposed PLL reaches an in-band phase ...
A High Step-Up Converter with Voltage-Multiplier
A High Step-Up Converter with Voltage-Multiplier

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Circuit Design and Examples

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What is an Operational Amplifier?

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Interfacing an ADC

Simple analog-to-digital converter controlled by C# application
Simple analog-to-digital converter controlled by C# application

... // Here we define the voltage reference (VREF) applied to // the pin 1 of MCP3201 device. You should assign // the appropriate value of the voltage reference of your circuit // for the constant VREF const double VREF = 5.00; // The variable k will contain the digital code after conversion is //done. ...
Chord Electronics Limited
Chord Electronics Limited

... outputs. Selection can be made manually via the front panel or using the supplied remote control. Every input has six levels of adjustable gain that can be individually selected to prevent large changes in volume when switching between inputs. All settings are stored via the microprocessor even if p ...
Analog Data, Digital Signal
Analog Data, Digital Signal

Design of Low-Voltage CMOS Pipelined ADC`s using 1 pico
Design of Low-Voltage CMOS Pipelined ADC`s using 1 pico

Alarm Terminology - Absolute Process Instruments
Alarm Terminology - Absolute Process Instruments

305-261/262 Measurement Laboratory
305-261/262 Measurement Laboratory

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Analog-to-digital converter



An analog-to-digital converter (ADC, A/D, or A to D) is a device that converts a continuous physical quantity (usually voltage) to a digital number that represents the quantity's amplitude.The conversion involves quantization of the input, so it necessarily introduces a small amount of error. Furthermore, instead of continuously performing the conversion, an ADC does the conversion periodically, sampling the input. The result is a sequence of digital values that have been converted from a continuous-time and continuous-amplitude analog signal to a discrete-time and discrete-amplitude digital signal.An ADC is defined by its bandwidth (the range of frequencies it can measure) and its signal to noise ratio (how accurately it can measure a signal relative to the noise it introduces). The actual bandwidth of an ADC is characterized primarily by its sampling rate, and to a lesser extent by how it handles errors such as aliasing. The dynamic range of an ADC is influenced by many factors, including the resolution (the number of output levels it can quantize a signal to), linearity and accuracy (how well the quantization levels match the true analog signal) and jitter (small timing errors that introduce additional noise). The dynamic range of an ADC is often summarized in terms of its effective number of bits (ENOB), the number of bits of each measure it returns that are on average not noise. An ideal ADC has an ENOB equal to its resolution. ADCs are chosen to match the bandwidth and required signal to noise ratio of the signal to be quantized. If an ADC operates at a sampling rate greater than twice the bandwidth of the signal, then perfect reconstruction is possible given an ideal ADC and neglecting quantization error. The presence of quantization error limits the dynamic range of even an ideal ADC, however, if the dynamic range of the ADC exceeds that of the input signal, its effects may be neglected resulting in an essentially perfect digital representation of the input signal.An ADC may also provide an isolated measurement such as an electronic device that converts an input analog voltage or current to a digital number proportional to the magnitude of the voltage or current. However, some non-electronic or only partially electronic devices, such as rotary encoders, can also be considered ADCs. The digital output may use different coding schemes. Typically the digital output will be a two's complement binary number that is proportional to the input, but there are other possibilities. An encoder, for example, might output a Gray code.The inverse operation is performed by a digital-to-analog converter (DAC).
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