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The Superheterodyne Receiver
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27. uNcwaba 2026SE
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The Superheterodyne Receiver

Every receiver before 1918 had the same structural problem: it had to amplify at whatever frequency the station happened to use. That means every tuned stage must track every other one as you turn the dial, the amplifier must work well across the entire band, and its performance is inevitably a compromise that is right nowhere. Armstrong’s answer refuses the premise. Instead of tuning the amplifier, mix the incoming signal with a local oscillator to shift it to one FIXED frequency, and build a single superb amplifier that only ever has to work at that one frequency. Tuning the radio now means tuning only the oscillator; the hard part of the receiver never changes its operating point at all. It is worth pausing on how general this move is — convert a varying problem into a fixed one and solve the fixed one properly — and on the fact that essentially every radio, television, mobile phone, radar and satellite receiver built since does exactly this.
Osezingeni eliphezulu
7 hours

Imiyalelo

1

Prove that mixing makes sum and difference frequencies

The entire architecture rests on one property of a nonlinear device. Demonstrate it first.

  1. Feed two signal generators at different frequencies — say 1000 kHz and 1455 kHz — into a single diode or transistor mixer.
  2. Look at the output on a spectrum analyser.
  3. Identify every frequency present.

You will find the two originals, their sum, their difference, and a family of weaker products. The difference here is 455 kHz — the classic intermediate frequency of AM broadcast receivers.

The crucial detail is that a LINEAR device cannot do this. Add two sine waves in a linear circuit and you get exactly those two sine waves. New frequencies only appear when the device’s output is not proportional to its input — in a squaring nonlinearity, the cross-term between two inputs IS the sum-and-difference pair. Mixing is not addition; it is multiplication, and nonlinearity is what supplies it.

This is why a mixer is deliberately biased into its most curved region, when every other amplifier in the set is carefully biased to be as straight as possible. The same property that is distortion everywhere else is the entire function here.

Materials for this step:

Germanium Diode (1N34A)Germanium Diode (1N34A)4 izicucu
Resistor KitResistor Kit1 ikhithi
Capacitor KitCapacitor Kit1 ikhithi
Perfboard / ProtoboardPerfboard / Protoboard1 ucezu
Solder Wire (63/37 Rosin Core)Solder Wire (63/37 Rosin Core)1 reel

Tools needed:

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

Build the IF strip first, and make it excellent

Build the fixed-frequency amplifier before anything else, because it is the part that justifies the whole design.

  1. Wind two or three IF transformers tuned to 455 kHz — coupled pairs of tuned windings on ferrite formers.
  2. Build a two-stage amplifier with these as interstage coupling.
  3. Sweep it and plot the overall response.
  4. Adjust the coupling between each transformer’s primary and secondary and watch the shape of the response change.

As coupling increases the single peak flattens, then splits into a double hump. Critical coupling — just before the split — gives the flat top and steep sides that an ideal channel filter wants: everything inside the channel treated equally, everything outside rejected hard. A single tuned circuit can never do this; two coupled ones can.

This is the payoff of the whole architecture. Because this amplifier only ever works at 455 kHz, you can lavish effort on it — several coupled circuits, careful alignment, high gain — and that effort benefits every station, forever, without re-tuning.

Reverse-engineering note: the little screw-adjustable slugs in the top of each IF can are what set this alignment, and aligning a receiver means adjusting them in sequence against a signal generator. A misaligned IF strip is the most common reason an old radio sounds deaf or muffled.

Materials for this step:

Enamelled Copper WireEnamelled Copper Wire20 m
Ferrite Toroid CoreFerrite Toroid Core4 izicucu
IF Transformer Can (455 kHz)IF Transformer Can (455 kHz)3 izicucu
Capacitor KitCapacitor Kit1 ikhithi
Resistor KitResistor Kit1 ikhithi

Tools needed:

Signal GeneratorSignal Generator
Oscilloscope 2-Channel 100MHzOscilloscope 2-Channel 100MHz
Spectrum Analyser / FFT SoftwareSpectrum Analyser / FFT Software
LCR Meter (Benchtop)LCR Meter (Benchtop)
Soldering Station (Temperature Controlled)Soldering Station (Temperature Controlled)
Digital Caliper 6-InchDigital Caliper 6-Inch
Clear Safety GlassesClear Safety Glasses
3

Add the local oscillator and make it track

The oscillator must stay exactly one IF away from the wanted station across the whole band, which is harder than it sounds.

  1. Build a tunable oscillator using the second section of a ganged variable capacitor.
  2. Set it to run 455 kHz ABOVE the station frequency at the bottom of the band, and check the difference at the top of the band.
  3. Note the tracking error.
  4. Add a small series padder capacitor and a parallel trimmer, and re-check at bottom, middle and top.

Without correction the oscillator does not stay 455 kHz away — the difference drifts across the band, and the receiver goes deaf at one end. The reason is geometric: the signal circuit must cover a 3:1 frequency range while the oscillator covers a smaller ratio, and identical capacitor sections cannot do both.

The padder and trimmer are the fix, and they are why alignment has a defined procedure: set the trimmer at the high end, the padder at the low end, and repeat, because each interacts with the other.

Choosing the oscillator ABOVE the signal rather than below is deliberate and worth understanding — it makes the required tuning ratio smaller and therefore the tracking problem easier. That single choice is why almost every AM receiver ever built uses high-side injection.

Materials for this step:

Variable Capacitor (Air Dielectric)Variable Capacitor (Air Dielectric)1 ucezu
Enamelled Copper WireEnamelled Copper Wire10 m
Capacitor KitCapacitor Kit1 ikhithi
Trimmer Capacitor SetTrimmer Capacitor Set1 isethi

Tools needed:

Signal GeneratorSignal Generator
Spectrum Analyser / FFT SoftwareSpectrum Analyser / FFT Software
Oscilloscope 2-Channel 100MHzOscilloscope 2-Channel 100MHz
Grid-Dip OscillatorGrid-Dip Oscillator
LCR Meter (Benchtop)LCR Meter (Benchtop)
Soldering Station (Temperature Controlled)Soldering Station (Temperature Controlled)
Clear Safety GlassesClear Safety Glasses
4

Find the image, the flaw that comes free with the architecture

Every superheterodyne has a second frequency it receives whether you want it or not. Find yours.

  1. Tune the receiver to a station at, say, 1000 kHz, with the oscillator at 1455 kHz.
  2. Now inject a test signal at 1910 kHz and watch the IF output.
  3. It comes through just as strongly.

Both 1000 kHz and 1910 kHz differ from the oscillator by exactly 455 kHz, so the mixer converts both to the IF and the amplifier cannot tell them apart. The unwanted one is the image, and it sits twice the IF away from the wanted station.

Nothing after the mixer can ever remove it, because by then the two are identical. The only defence is a tuned circuit BEFORE the mixer — the RF stage — which need not be sharp enough to separate adjacent channels, only sharp enough to reject something 910 kHz away. That is a far easier filter to build, which is exactly why the architecture works.

The trade is visible in the choice of IF. A high IF pushes the image further away and makes it easy to reject, but a high-frequency IF amplifier is harder to make selective. A low IF gives beautiful selectivity and a close, troublesome image. 455 kHz is the compromise the industry settled on for AM broadcast, and double-conversion receivers — high first IF for image rejection, low second IF for selectivity — refuse the compromise by doing it twice.

Materials for this step:

Enamelled Copper WireEnamelled Copper Wire10 m
Variable Capacitor (Air Dielectric)Variable Capacitor (Air Dielectric)1 ucezu
Capacitor KitCapacitor Kit1 ikhithi
Graph PaperGraph Paper1 pad

Tools needed:

Signal GeneratorSignal Generator
Spectrum Analyser / FFT SoftwareSpectrum Analyser / FFT Software
Oscilloscope 2-Channel 100MHzOscilloscope 2-Channel 100MHz
Digital Multimeter (Lab Grade)Digital Multimeter (Lab Grade)
Clear Safety GlassesClear Safety Glasses
5

Detect, and close an automatic gain loop

Add the last stage and one more feedback loop, this one deliberately slow.

  1. Follow the IF strip with a diode detector and audio filter to recover the modulation.
  2. Take the DC level from the detector — which is proportional to signal strength — and feed it back as a bias to the IF amplifier stages, arranged so a stronger signal REDUCES gain.
  3. Set the time constant to around 0.1 second.
  4. Tune across strong and weak stations and compare output levels with the loop connected and disconnected.

With automatic gain control the loud and quiet stations arrive at similar volume; without it, tuning across the band is painful. The loop measures its own output and corrects its own gain — negative feedback, the exact opposite sign to the regeneration in the previous blueprint, and used here for stability rather than gain.

The time constant is the whole design. Too fast and it fights the audio modulation itself, flattening the programme. Too slow and it cannot follow fading. A tenth of a second is slow compared with speech and fast compared with a signal fading — the loop is deliberately built to be blind to what you want to keep.

That principle recurs everywhere feedback is used: an automatic correction must be tuned to respond to the disturbance and ignore the signal. Get the separation wrong and the corrector eats the thing it was protecting.

Materials for this step:

Germanium Diode (1N34A)Germanium Diode (1N34A)2 izicucu
Resistor KitResistor Kit1 ikhithi
Capacitor KitCapacitor Kit1 ikhithi
Crystal Earpiece (High Impedance)Crystal Earpiece (High Impedance)1 ucezu

Tools needed:

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

Izinto

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Amathuluzi Adingekayo

11

CC0 Isizinda Somphakathi

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