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The Incandescent Lamp: High Resistance, and a Vacuum
Many inventors made a wire or a carbon rod glow in a bulb. Thomas Edison's lamp of 1879–80 was designed backwards from the wiring: to light a city with lamps connected in parallel, each lamp needed a HIGH resistance, or the copper mains would have to be absurdly thick. His patent describes a thin carbon filament — even *"a cotton thread properly carbonized"* — in a glass bulb pumped down to one-millionth of an atmosphere, offering a hundred ohms or more and stable at white heat.
This rung works out the copper argument from his own figures and makes a carbonised-thread lamp in an evacuated jar to see why the vacuum matters.
Àárín
About 5 hours
Ìlànà
1
1
The copper argument
The copper argument
Ń ṣí ìwé Jupyter…
2
2
Carbonise a cotton thread
Carbonise a cotton thread
Pack a few 30 mm lengths of cotton thread, stretched straight between two small copper wire loops, in graphite powder inside a small steel tin with a pinhole in the lid. Heat the tin outdoors with the propane torch until it glows red, and hold it there for twenty minutes — cellulose only turns into a well-conducting carbon at red heat. Let it cool completely before opening: air reaching hot carbon burns it.
The threads come out black, brittle and conducting. Measure one with the multimeter and compare with Edison's hundreds of ohms; a poorly heated thread reads far higher. Handle them with tweezers; they snap at a touch.
Àwọn ohun èlò fún ìgbésẹ̀ yìí:
Òwú Ìrán1 ìyípo
Ẹ̀kù Graphite50 g
Okùn Bàbà1 mítàÀwọn irinṣẹ́ tí a nílò:
Ọ̀pá Iná Pùróféènì
Òǹwọ̀n iná mànàmáná onírúurú
Ìbọ̀wọ́ Iṣẹ́ Awọ
Gílásì Ààbò Tí Ó Mọ́3
3
Light it in air, then in a vacuum
Light it in air, then in a vacuum
Clamp one filament between two stiff copper wires passed through the lid of a thick glass jar and sealed with epoxy or silicone. In AIR, with the lid off, connect it briefly across a 12 V battery through a series resistor: it glows red for a moment and burns through.
Mount a fresh filament, close the jar, and pump it down with the vacuum pump through a fitting in the lid. Connect the battery again: the filament glows and lasts far longer, because there is almost no oxygen left to burn it. Your pump will not reach Edison's one-millionth of an atmosphere; the difference is still obvious.
Stand the jar behind a clear shield and wear goggles: an evacuated jar can implode.
Àwọn ohun èlò fún ìgbésẹ̀ yìí:
Ìgò Gílásì1 ẹyọ
Okùn Bàbà1 mítà
Àkójọ Rẹsístà1 ìtòÀwọn irinṣẹ́ tí a nílò:
Ẹ̀rọ ìfàfẹ́fẹ́jáde
Bátìrì onípò jinlẹ̀ ti 12 V
Òǹwọ̀n iná mànàmáná onírúurú
Gílásì Ààbò Tí Ó Mọ́
Ìbọ̀wọ́ Iṣẹ́ Awọ4
4
History and context
History and context
**US 223,898, 'Electric-Lamp', Thomas A. Edison, patented 27 January 1880.** The specification reports carbonising *"cotton and linen thread, wood splints, papers coiled in various ways"*; carbonised bamboo became the production filament soon after. Joseph Swan in England had been developing carbon lamps in parallel, and the two later merged their British interests.
Edison's lamp came with a whole system — parallel distribution, meters, fuses, generators — which is what made it change cities.
**Honest limits.** A carbon-filament lamp turns only a few per cent of its power into light; the rest is heat. The filament evaporates and blackens the bulb. Tungsten filaments, gas filling and later LEDs each improved on it many times over.
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Blueprint tó jọra
Àwọn blueprint wọ̀nyí pín ìmọ̀ — ọ̀nà, ohun-èlò tàbí ìlànà

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