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How the Worm Works
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How the Worm Works
A worm takes the single biggest weakness of a plain alembic head, that it only condenses vapor as fast as the surrounding air can carry heat away, and fixes it by forcing the vapor to travel through cold water instead of cold air. The tube itself does the condensing, not the water directly: vapor enters one end of a metal pipe that has been coiled into a tight spiral, and that coil sits fully submerged inside a barrel, trough, or jacketed vessel kept filled with cold, often continuously replaced, water. As the vapor winds through the coil it loses heat through the metal wall into the surrounding water far faster than a static air-cooled dome ever could, so by the time the vapor reaches the far end of the worm it has almost entirely condensed back into liquid, which drips or runs out of the tube's open end into a waiting receiver.
Coiling the tube rather than running it straight was the key improvement: it let a distiller fit several feet of cooling surface into a compact tub of water instead of needing several feet of open bench space, and it kept the vapor in contact with the cold water for far longer per unit of apparatus size. Because the metal coil could be made from copper, which conducts heat efficiently and does not react with most organic vapors, the worm became the standard condenser wherever a distillery needed to process large volumes quickly rather than a few drops at a time.
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