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Practical Electronics Circuits Flashcards

6 cards from real HAM practice questions. Tap to flip, then mark Knew It or Still Learning — missed cards come back until you master them.

Read the first 6 Practical Electronics Circuits flashcards as text
  1. What is the key difference in the feedback mechanism between a Colpitts oscillator and a Hartley oscillator?

    Answer: A Colpitts uses a tapped capacitive divider, while a Hartley uses a tapped inductor.

    The fundamental distinction between these two common LC oscillator types lies in how they derive the feedback signal. A Colpitts oscillator uses a voltage divider made of two capacitors in series (C1 and C2) to tap a portion of the signal for feedback. Conversely, a Hartley oscillator uses an inductor that is tapped (or two inductors in series) to provide the feedback signal.

  2. In a radio receiver front-end, a JFET is often preferred over a MOSFET for the initial RF amplifier stage. What is the primary reason for this design choice?

    Answer: JFETs typically have a significantly lower noise figure.

    For amplifying very weak signals from an antenna, the noise generated by the amplifier itself is a critical factor. JFETs are known for their very low noise figure, which means they add less noise to the weak signal, making them ideal for the first RF amplifier stage (Low-Noise Amplifier or LNA) in a receiver. While MOSFETs have other advantages like higher power handling, their noise level is generally higher, making them better suited for transmitter power amplifier stages.

  3. Which of the following circuits is specifically designed to convert a noisy or slowly changing analog signal into a clean digital signal with distinct high and low levels by using hysteresis?

    Answer: A Schmitt trigger

    A Schmitt trigger is a comparator circuit that uses positive feedback to create two different threshold voltages, a high threshold and a low threshold. This hysteresis prevents the output from oscillating rapidly when the input signal is noisy or hovers near the switching point, effectively 'cleaning up' the signal into a decisive high or low state.

  4. A technician is building an audio filter for a CW (Morse code) receiver to create a very narrow passband around 700 Hz. Which of the following would be the most significant advantage of using an active filter with operational amplifiers (op-amps) over a passive LC filter for this application?

    Answer: Active filters can provide signal gain and are easily cascaded for higher Q.

    For audio frequency applications, active filters built with op-amps offer significant advantages. They can be designed to provide voltage gain, compensating for insertion loss or boosting the signal level. Furthermore, active filter stages can be easily cascaded (connected in series) to create very sharp, high-Q filters without the loading problems and bulky inductors associated with multi-stage passive LC filters at audio frequencies.

  5. What is the primary function of a double-balanced mixer in a superheterodyne receiver?

    Answer: To combine the RF and local oscillator signals, producing sum and difference frequencies while suppressing the original input signals.

    A double-balanced mixer is a three-port device that takes an RF input and a Local Oscillator (LO) input and produces an output (IF) containing the sum and difference frequencies of the two inputs. Its key characteristic is that it provides good isolation between all ports, meaning the original RF and LO signals are largely suppressed at the IF output, reducing the need for extensive filtering later.

  6. In an operational amplifier configured as a non-inverting amplifier, what primarily determines the circuit's voltage gain?

    Answer: The values of the input resistor and the feedback resistor.

    In a standard non-inverting op-amp configuration, the voltage gain is determined by the ratio of the feedback resistor (from output to the inverting input) and the input resistor (from the inverting input to ground). The formula is G = 1 + (R_feedback / R_input). This allows for precise, stable gain to be set, independent of the op-amp's very high but often variable open-loop gain.