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Frequency Modulation
Volt

Criado por

Volt

27. agosto 2026SE
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Frequency Modulation

By 1930 radio’s central complaint was static. Lightning, motors and switchgear all radiate impulses, and because AM carries its information in the AMPLITUDE of the carrier, an impulse that adds amplitude adds itself directly to the programme. The received wisdom was that this was fundamental — noise and signal live in the same place, so you cannot separate them. Armstrong disagreed for the third time in his career. If the information is carried in the carrier’s FREQUENCY instead, and the receiver is preceded by a stage that flattens every amplitude variation to a constant, then noise that arrives as amplitude is simply erased before detection. The mathematics of the day said the scheme could not work, because a narrow-band analysis showed FM using the same bandwidth as AM with no advantage. The mathematics was right and the conclusion was wrong: the advantage appears only when you deliberately spend far MORE bandwidth than the audio requires.
Avançado
6 hours

Instruções

1

Show where noise lives on an AM carrier

Understand the enemy before designing around it.

  1. Generate an amplitude-modulated carrier and view it on the oscilloscope — a sine wave whose envelope carries the audio.
  2. Inject a brief impulse into the signal path, simulating a spark or lightning.
  3. Detect the AM and listen to the recovered audio.
  4. Now look at the envelope on the scope during the impulse.

The impulse rides directly on the envelope, and because an AM detector recovers exactly that envelope, the click passes straight through to the listener. No amount of filtering after detection helps, because by then the click and the programme are the same kind of thing.

This is why AM broadcast is unlistenable during a thunderstorm and why a car AM radio buzzes under power lines. It is not a defect of any particular receiver — it is a consequence of using amplitude to carry the message, which is exactly what atmospheric noise also arrives as.

Materiais para este passo:

Resistor KitResistor Kit1 kit
Capacitor KitCapacitor Kit1 kit
Perfboard / ProtoboardPerfboard / Protoboard1 peça
Solder Wire (63/37 Rosin Core)Solder Wire (63/37 Rosin Core)1 reel

Ferramentas necessárias:

Signal GeneratorSignal Generator
Function Generator 10MHzFunction Generator 10MHz
Oscilloscope 2-Channel 100MHzOscilloscope 2-Channel 100MHz
Spectrum Analyser / FFT SoftwareSpectrum Analyser / FFT Software
Digital Multimeter (Lab Grade)Digital Multimeter (Lab Grade)
Soldering StationSoldering Station
Clear Safety GlassesClear Safety Glasses
2

Modulate frequency instead, with a varactor

Build the transmitter side and watch the carrier move.

  1. Build a stable LC oscillator at a convenient frequency — a few MHz is easy to work with.
  2. Include a varactor diode as part of the tuning capacitance — a reverse-biased diode whose junction capacitance varies with applied voltage.
  3. Apply an audio signal to the varactor bias and observe the oscillator output on a spectrum analyser.
  4. Measure how far the carrier moves for a given audio amplitude.

The carrier amplitude stays constant while its frequency sweeps back and forth in step with the audio. That swing is the deviation, and it — not the audio amplitude — is what now carries loudness.

Deviation is a design choice, and it is the whole argument. Broadcast FM uses ±75 kHz to carry 15 kHz of audio: five times more spectrum than the message strictly needs. That deliberate excess is precisely where the noise advantage comes from, and it is why the narrow-band analysis of the 1920s concluded FM was pointless.

The varactor is a modern convenience; Armstrong had to shift a reactance valve or mechanically vary a capacitor. The principle is identical and the varactor simply makes it a two-component job.

Materiais para este passo:

Varactor DiodeVaractor Diode2 peças
Enamelled Copper WireEnamelled Copper Wire5 m
Capacitor KitCapacitor Kit1 kit
Resistor KitResistor Kit1 kit

Ferramentas necessárias:

Oscilloscope 2-Channel 100MHzOscilloscope 2-Channel 100MHz
Spectrum Analyser / FFT SoftwareSpectrum Analyser / FFT Software
Signal GeneratorSignal Generator
Digital Multimeter (Lab Grade)Digital Multimeter (Lab Grade)
Adjustable Bench Power Supply (30V/5A)Adjustable Bench Power Supply (30V/5A)
LCR Meter (Benchtop)LCR Meter (Benchtop)
Soldering StationSoldering Station
Clear Safety GlassesClear Safety Glasses
3

Look at the spectrum and find the sidebands

FM spreads energy in a way that surprises everyone the first time they see it.

  1. Modulate with a single steady audio tone and view the spectrum.
  2. Count the sidebands either side of the carrier and note their spacing.
  3. Now increase the deviation while keeping the audio frequency fixed, and watch the pattern change.
  4. Find a deviation at which the CARRIER itself disappears.

FM produces a theoretically infinite series of sidebands spaced at the modulating frequency, whose amplitudes follow Bessel functions — and at certain modulation indices the carrier amplitude passes through zero entirely. Seeing the carrier vanish while the signal is still being transmitted is genuinely startling, and it is the standard way to calibrate deviation precisely: adjust until the carrier nulls, and you know the index exactly.

In practice the sidebands beyond a certain point are negligible, and Carson’s rule — bandwidth is roughly twice the sum of deviation and highest audio frequency — captures where to stop. For broadcast FM that gives about 180 kHz, close to the 200 kHz channel spacing actually allocated.

This is why AM stations sit 9 or 10 kHz apart and FM stations 200 kHz apart. The spacing is not a regulatory whim, it is Carson’s rule with a guard band.

Materiais para este passo:

Graph PaperGraph Paper1 pad

Ferramentas necessárias:

Spectrum Analyser / FFT SoftwareSpectrum Analyser / FFT Software
Signal GeneratorSignal Generator
Oscilloscope 2-Channel 100MHzOscilloscope 2-Channel 100MHz
Function Generator 10MHzFunction Generator 10MHz
Clear Safety GlassesClear Safety Glasses
4

Build a limiter, and delete the noise

This stage is where the whole advantage is collected.

  1. Build a high-gain amplifier stage that clips hard at both extremes — deliberately overdriven, or a pair of back-to-back diodes across the signal.
  2. Feed it an FM signal with amplitude noise added.
  3. Look at the output on the scope.
  4. Measure the residual amplitude variation before and after.

The output is a constant-amplitude square-ish wave; every trace of the amplitude noise has gone, and the frequency information is completely untouched. That is the trick in one sentence — deliberately destroy the dimension the noise lives in, because you are not using it.

An AM receiver cannot do this, because the amplitude IS the message. FM can, because amplitude carries nothing.

The effect is not gradual. Above a certain signal level the noise essentially disappears and reception is clean; below it, reception collapses abruptly into hiss. That threshold is why FM either sounds perfect or sounds terrible with little in between, while AM degrades smoothly — and it is why FM coverage maps have much sharper edges than AM ones.

Materiais para este passo:

Germanium Diode (1N34A)Germanium Diode (1N34A)4 peças
Transistor AssortmentTransistor Assortment1 kit
Resistor KitResistor Kit1 kit
Capacitor KitCapacitor Kit1 kit

Ferramentas necessárias:

Oscilloscope 2-Channel 100MHzOscilloscope 2-Channel 100MHz
Signal GeneratorSignal Generator
Spectrum Analyser / FFT SoftwareSpectrum Analyser / FFT Software
Digital Multimeter (Lab Grade)Digital Multimeter (Lab Grade)
Adjustable Bench Power Supply (30V/5A)Adjustable Bench Power Supply (30V/5A)
Soldering StationSoldering Station
Clear Safety GlassesClear Safety Glasses
5

Discriminate frequency back into audio

Turn frequency variation back into amplitude variation, which is the one thing a detector can handle.

  1. Build a tuned circuit and deliberately tune it OFF the carrier frequency, so the carrier sits on the sloping side of its response.
  2. Feed the limited FM signal into it and detect the output with a diode.
  3. Listen to the recovered audio and measure its distortion.
  4. Now build a balanced version — two circuits tuned either side of the carrier, their detected outputs subtracted.

The slope detector works and sounds poor; the balanced discriminator works and sounds good. A single slope is only straight over a short span, so large deviations run into its curvature and distort. Two slopes arranged back to back have their curvatures cancel around the centre, giving a long straight region and a null exactly at the carrier.

Notice the shape of the fix: when a transfer characteristic is nonlinear, using two of them in opposition can cancel the nonlinearity while doubling the wanted response. The same idea gives you the push-pull amplifier, the differential pair and the bridge circuit.

Later receivers use the ratio detector, which adds inherent limiting so a separate limiter stage is unnecessary, and modern ones use a phase-locked loop whose control voltage IS the demodulated audio. Three mechanisms, one job — and all three are still in use somewhere.

Materiais para este passo:

Enamelled Copper WireEnamelled Copper Wire10 m
Ferrite Toroid CoreFerrite Toroid Core2 peças
Germanium Diode (1N34A)Germanium Diode (1N34A)4 peças
Capacitor KitCapacitor Kit1 kit
Resistor KitResistor Kit1 kit

Ferramentas necessárias:

Oscilloscope 2-Channel 100MHzOscilloscope 2-Channel 100MHz
Signal GeneratorSignal Generator
Spectrum Analyser / FFT SoftwareSpectrum Analyser / FFT Software
LCR Meter (Benchtop)LCR Meter (Benchtop)
Digital Multimeter (Lab Grade)Digital Multimeter (Lab Grade)
Soldering StationSoldering Station
Clear Safety GlassesClear Safety Glasses

Materiais

10

Ferramentas necessárias

9

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