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Edison Electric Lamp
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28. Temmuz 2026SE
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Edison Electric Lamp

Making something glow with electricity was easy and had been done for decades. Making it still glow tomorrow was the problem. Every filament burned out in minutes, because a hot conductor in air simply oxidises away.

Edison's patent is really about two numbers: no oxygen, and high resistance. The vacuum stops the filament burning. The high resistance is the commercial insight — a lamp that draws little current can be fed by thin, affordable copper wiring, and hundreds of them can hang off one circuit. A low-resistance lamp works perfectly well and would have needed copper mains nobody could pay for.

US Patent 223,898, "Electric Lamp", granted 27 January 1880, claims a carbon filament of high resistance in a sealed glass vessel from which the air has been exhausted. This blueprint builds a working demonstration and measures both numbers.

İleri
8 hours

Talimatlar

1

An evacuated glass vessel can implode

Use thick-walled glass, keep it shielded while under vacuum, and wear eye protection. Treat the electrical side as live at all times.

2

Read US 223,898 and find the word 'high resistance'

The claim is a carbon filament of high resistance in an exhausted glass globe. The resistance is not incidental — it is the part that made electric light a business.

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3

Burn a filament in open air first

Pass current through a thin carbon strand in the open. It glows briefly and is gone. That is oxidation, not melting, and the vacuum is the fix.

4

Carbonise a cotton or bamboo fibre

Seal a fibre in a closed crucible with no air and heat it hard. The organic material chars to nearly pure carbon while keeping its shape.

Bu adım için malzemeler:

Cotton ThreadCotton Thread1 metre
Iron CrucibleIron Crucible1 adet
5

Exclude air during carbonisation or you get ash

Any oxygen in the crucible burns the fibre instead of charring it. Pack it in sand or seal the lid with clay.

6

Measure the filament's cold resistance

Record it before assembly. Aim for a filament that is long and thin — resistance rises with length and falls with cross-section.

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7

Work out the current your filament will draw

Compute I = V/R at your supply voltage. A 100-ohm filament at 100 V draws 1 A; a 1-ohm filament draws 100 A and needs cable as thick as your thumb.

8

Clamp the filament to two lead-in wires

Support it at both ends on stiff wires that will pass through the glass. Carbon is brittle — every handling step risks snapping it.

Bu adım için malzemeler:

Copper WireCopper Wire1 metre
9

Seal the lead-ins through the glass

Fuse the glass around the wires. This joint is the hardest part of the whole build — glass and metal expand at different rates and the seal cracks as it cools.

Bu adım için malzemeler:

Glass TubeGlass Tube1 adet
10

Evacuate the bulb as far as you can

Pump it down with a vacuum pump. Edison used a Sprengel mercury pump; a modern pump reaches the same pressure without handling mercury at all.

Gerekli aletler:

Vacuum PumpVacuum Pump
11

Seal off the pump stem while still under vacuum

Melt the neck closed with the pump running. Let air back in first and the filament oxidises the moment it heats.

12

Bring the voltage up slowly

Raise supply gradually and watch the filament go dull red, then orange, then white. Straight to full voltage snaps a cold brittle filament.

13

Measure hot resistance and compare with cold

Carbon's resistance FALLS as it heats — the opposite of a metal filament. Record both figures; the difference explains the inrush behaviour.

14

Run it to failure and inspect the glass

Note the lifetime and look for blackening inside the bulb. That deposit is filament material that evaporated and condensed — the real limit on carbon lamps.

15

Compendium — the resistance was the business model

The patent. US 223,898, "Electric Lamp", granted 27 January 1880 to Thomas Alva Edison, describing a carbon filament of high resistance in an evacuated glass globe. Edison did not invent the incandescent lamp; incandescent lighting had been demonstrated for decades, and Joseph Swan in England developed a working carbon lamp in parallel and had genuinely strong priority claims. Swan and Edison eventually merged their British interests as Ediswan rather than litigate to exhaustion. Presenting Edison as the sole inventor misstates a well-documented dispute.

Why high resistance mattered more than the filament. Power delivered is I²R in the conductors, and copper cost scales with cross-section. A low-resistance lamp draws heavy current, so feeding a street of them needs enormous copper mains. Making each lamp high-resistance and low-current lets many run in parallel from thin, affordable wiring. Edison's team worked the economics backwards from the price of copper, which is why the patent claim specifies high resistance rather than simply a carbon filament. The lamp is the visible part of a system that also required dynamos, meters, fuses and distribution mains — and Edison patented those too.

Two failure modes, not one. In air a hot filament oxidises and is consumed in seconds. In vacuum it cannot burn, but it still slowly evaporates, and the vapour condenses on the cooler glass — that is the blackening you see in an old bulb, and it thins the filament until it breaks. Later lamps replaced the vacuum with an inert argon-nitrogen fill, which suppresses evaporation by raising the pressure over the filament, and switched from carbon to tungsten, which has a far higher melting point.

An honest note on carbon's behaviour. Carbon has a NEGATIVE temperature coefficient: hotter means less resistance, so a carbon lamp draws more current as it warms and can run away if the supply allows. Metal filaments behave the opposite way and are self-limiting, which is one of several reasons tungsten won. The Sprengel mercury pump that made Edison's vacuum possible is also worth naming — it was borrowed from laboratory chemistry, and better vacuum, not a better filament, is what turned a demonstration into a product.

Malzemeler

4

Gerekli Aletler

3

CC0 Kamu Malı

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