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Instrumentação e Medição

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Consider an analog-to-digital converter (ADC), with mid-tread quantization, having the transfer function shown in the figure.

ADC transfer function

Assuming a perfect ADC with full-scale voltage , obtain the output digital value (, in binary) when the analog input is .

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Consider an analog-to-digital converter (ADC) with the transfer function (mid-tread quantizer) shown in the figure.

ADC transfer function

Assuming the ADC with full-scale voltage , and assuming that the ADC has no imperfections of any kind, derive the value of the quantization step ().

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A single tone , with , has been sampled using an analog-to-digital converter (ADC) operating at the sampling frequency .

Frequency spectrum

A sinusoidal waveform has been obtained at a new frequency , thus . Find the value of the resultant signal .

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A single tone , where , has been sampled by an analog-to-digital converter (ADC) at the sampling frequency .

Frequency spectrum

A sine wave has been obtained at new frequency (). Determine the frequency value of of the resulting tone .

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Consider the following voltage reading in which the nominal closed-loop voltage gain of the (ideal) operational amplifier is and the dc output voltage is .

Amplification circuit

Both resistors are rated at , composed by metal film with thermal coefficients and thermal resistances .

The analog-to-digital converter is unipolar, rail-to-rail input, has bits, and can be assumed perfect.

Determine the minimum nominal value of the resistor for which the gain error is imperceptible.

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Consider the following voltage amplification circuit in which a Wheatstone bridge is employed at the input of an instrumentation amplifier (IA).

Amplification circuit

Assume , , , and .

Determine the value of so that the differential component has a low-pass filter response with cut-off frequency at 10 Hz (assume ).

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The measurement system depicted in the figure below consists of a resistive Wheatstone bridge excited by a dc current. To establish the excitation current in this configuration, a zener diode is employed, with . The zener is considered here as an ideal device, operating in regulation with a current through its terminals of 5.3 mA.

Measurement circuit

Assume , , , . In the Wheatstone bridge consider and  mΩ/Ω.

Determine the common-voltage at the bridge output (i.e., the common-mode voltage of and ).

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Consider a remote measurement conducted over long distance, where each wire has a total resistance of , sharing identical lengths.

Remote measurement circuit

Admitting the instrumentation amplifier (IA) gain given by , with gain resistor , obtain the output voltage when .

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Consider the following circuit where the node represents the low-impedance output of a sensor, with a linear operating range of .

Amplification circuit

The requirement is to convert this input voltage range to an output voltage range of . Determine the most suitable value for the Zener voltage.

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In the following circuit, in which the amplifier is assumed ideal, the input () can operate between voltages and .

Assume that the output of the amplifier () will drive a circuit with input range between and , and . The resistance is and .

Amplification circuit and input-output characteristic

Determine to satisfy the maximum dynamic range requirement.

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