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Electrical Recording
Emma

Créé par

Emma

26. août 2026SE
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Electrical Recording

Until 1925 a record was made by singing into a horn. The sound's own energy drove the cutting stylus directly, which meant quiet instruments were inaudible, the bass was largely absent, performers had to crowd around a horn in an unnatural arrangement, and nothing could be adjusted once the take began. Maxfield and Harrison at Bell Labs replaced the acoustic chain with an electrical one: a microphone converts sound to a signal, a valve amplifier raises it by any factor you like, and an electromagnetic cutter head drives the stylus. Suddenly the recording could be balanced, quiet sources could be captured, and the frequency range roughly doubled. It is the single largest step-change in recorded sound quality ever made.
Avancé
5 hours

Consignes

1

Record acoustically first, to feel the problem

You cannot appreciate what electrical recording fixed without meeting the constraint.

  1. Build a simple acoustic recorder: a horn ending in a diaphragm with a stylus attached.
  2. Cut a groove in a soft wax or acetate disc rotating on a turntable.
  3. Try recording a loud voice close to the horn, then a quiet one further away.
  4. Try recording two people at once.

Only the loudest source close to the horn registers at all. The sound's own energy has to move the stylus through the medium, so there is no gain anywhere in the system and no way to balance sources. Performers were arranged by loudness rather than by musical sense, brass players stood at the back, and string sections were replaced by a Stroh violin with its own horn because a normal violin simply did not record.

This is why pre-1925 records sound the way they do. The limitation was never the disc — it was that no amplification existed anywhere in the chain.

Matériaux pour cette étape :

Acrylic Sheet (Clear, 1/4 inch, 12x12)Acrylic Sheet (Clear, 1/4 inch, 12x12)1 feuille
Emergency Mylar BlanketEmergency Mylar Blanket1 pièce
Aluminum Round Bar (6061, 1-inch x 12-inch)Aluminum Round Bar (6061, 1-inch x 12-inch)1 pièce

Outils nécessaires :

File SetFile Set
Digital Caliper 6-InchDigital Caliper 6-Inch
Cordless Drill/Driver (20V)Cordless Drill/Driver (20V)
StopwatchStopwatch
2

Build an electromagnetic cutter head

A moving-coil motor again, now driving a stylus instead of a cone.

  1. Mount a small coil in a magnetic gap, as in the moving-coil microphone.
  2. Attach a cutting stylus rigidly to the coil.
  3. Provide a compliant suspension that centres the stylus but allows lateral movement.
  4. Add mechanical damping — a rubber or felt element bearing on the moving assembly.

Damping is what separates a cutter head from a loudspeaker motor. An undamped moving system rings at its resonance, and a resonance in a cutter head is carved permanently into the groove. Maxfield and Harrison's contribution was as much about applying electrical filter theory to the mechanical system — treating springs and masses as circuit elements — as about adding amplification.

That analogy, mechanical systems analysed as electrical networks, was new in 1925 and is now standard in loudspeaker and transducer design. The batch's underlying idea is that the chain became electrical in its thinking as well as its signal path.

Matériaux pour cette étape :

Enamelled Copper WireEnamelled Copper Wire1 rouleau
Ferrite Bead KitFerrite Bead Kit1 kit
Brass Round BarBrass Round Bar1 pièce

Outils nécessaires :

Digital Caliper 6-InchDigital Caliper 6-Inch
File SetFile Set
Digital Multimeter (Lab Grade)Digital Multimeter (Lab Grade)
Bench Vise (4-inch, Cast Iron)Bench Vise (4-inch, Cast Iron)
3

Insert the amplifier and take control of the level

Gain is the thing acoustic recording never had.

  1. Connect microphone, amplifier and cutter head in a chain.
  2. Record the quiet source that failed acoustically, turning the gain up.
  3. Record two sources at different distances and balance them by moving the microphone rather than the performers.
  4. Record with the gain deliberately too high and inspect the groove.
With gain in the chain, the microphone can be placed where the music sounds right rather than where it is loud enough. That is the artistic consequence of the technical change, and it is larger than the fidelity improvement: recording became something that could be shaped rather than merely captured. Overdriving shows as a groove cut so wide it breaks into its neighbour — the physical form of distortion.

Matériaux pour cette étape :

Audio Amplifier Kit - STA540Audio Amplifier Kit - STA5401 kit
Electrolytic Capacitor KitElectrolytic Capacitor Kit1 kit

Outils nécessaires :

Digital Oscilloscope (100MHz, 2-Channel)Digital Oscilloscope (100MHz, 2-Channel)
Digital Multimeter (Lab Grade)Digital Multimeter (Lab Grade)
Digital Caliper 6-InchDigital Caliper 6-Inch
4

Measure the frequency range you gained

Put a number on the improvement rather than asserting it.

  1. Feed a swept tone through the electrical chain and cut a test groove.
  2. Play it back and record the level at each frequency.
  3. Do the same acoustically, driving the horn from a loudspeaker at constant level.
  4. Plot both curves together.
The acoustic chain falls away sharply at both ends — little below 200 Hz and nothing above about 3 kHz. The electrical chain extends both ends considerably. That is why 1925 recordings suddenly have audible bass and cymbals where 1923 recordings have neither, and it is the clearest before-and-after in the history of recorded sound.

Matériaux pour cette étape :

Graph PaperGraph Paper1 pad

Outils nécessaires :

DDS Signal Generator (1Hz-65MHz)DDS Signal Generator (1Hz-65MHz)
Digital Oscilloscope (100MHz, 2-Channel)Digital Oscilloscope (100MHz, 2-Channel)
Digital Multimeter (Lab Grade)Digital Multimeter (Lab Grade)
5

The chain becomes electrical, and history

Joseph Maxfield and Henry Harrison at Bell Telephone Laboratories developed the electrical recording system, licensed to Victor and Columbia in 1925. The industry converted within about a year, and the change was so audible that record companies advertised it directly — Victor’s “Orthophonic” and Columbia’s “Viva-tonal” were marketing names for the same underlying Bell system.

It is a systems achievement rather than a single invention. The condenser microphone existed from 1916, the valve amplifier from the 1910s, the electromagnetic cutter was straightforward. What Bell Labs contributed was analysing the whole chain — including the mechanical parts — as one electrical network with a designed response, and the discipline of matching each stage to the next.

What it did to the recording business. Acoustic recording could not capture an orchestra, a piano, or a soft voice. Electrical recording could, and within a few years the entire classical repertoire was being recorded, crooning became possible as a vocal style because a singer no longer had to shout into a horn, and the microphone became an instrument in its own right.

Its honest limits at the time: the disc was still a disc, so playing time stayed at around four minutes, surface noise remained high, and the frequency range, though doubled, was still modest. Those three problems drive the rest of this batch — magnetic tape solves duration and editing, the LP solves playing time and noise, and stereo adds a dimension none of them had.

Matériaux

9

Outils requis

8
Total estimé
€23.00

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