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The Liquid-Ring Pump: The Water Is the Piston
Martin

Ṣẹ́dá nipasẹ̀

Martin

27. Oṣù Kẹsàn 2026NO
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The Liquid-Ring Pump: The Water Is the Piston

A bladed wheel spins off-centre in a round casing partly filled with water. The spin throws the water outward into a ring that follows the casing wall. Because the wheel is off-centre, the ring is deep between the blades on one side and shallow on the other — so each space between two blades fills with water, empties, and fills again once per turn. Each emptying draws gas in; each refilling pushes it out. The water is the piston, and nothing rubs. Lewis Hallock Nash's patent of 1914 is the form that went into production. It will pump wet gas, dirty gas, vapour that condenses and even slugs of liquid without harm, and the ring cools the gas as it compresses it. That makes it the standard vacuum pump for paper machines, power-station condensers and chemical plant. It also has a hard floor: it cannot pump below the vapour pressure of its own ring. This rung builds a see-through model and measures that floor.
Àárín
About 6 hours

Ìlànà

1

One bucket, one revolution: Nash's cycle as a sequence

Ààyè Iṣẹ́ Blockly

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2

Print the impeller and set it off-centre in a clear casing

Use a length of clear acrylic tube of about 100 mm bore as the casing, closed by two acrylic end plates bolted through with machine screws and sealed with O-rings in printed grooves. Print a 12-bladed impeller in PETG, 80 mm across, with radial blades and a hub for a steel shaft. Make it the full width of the casing less 0.5 mm, so each blade nearly touches both end plates — the end plates are where the gas ports are, and a large side gap lets the gas short-circuit from outlet back to inlet. Mount the shaft in bearings in the end plates **8 mm off the casing's centre**, so the impeller nearly touches the casing at the top and clears it by about 18 mm at the bottom. Nash put the variation in the casing shape instead — the enlarged lobe — but the effect on the water ring is the same.

Àwọn ohun èlò fún ìgbésẹ̀ yìí:

Ọ̀pá akiriliki (aláìdàrú)Ọ̀pá akiriliki (aláìdàrú)1 ẹyọ
Pẹlẹbẹ AkrílíìkìPẹlẹbẹ Akrílíìkì1 ewé
Okùn PETGOkùn PETG90 g
Ọ̀pá irin aiseỌ̀pá irin aise1 ẹyọ
Bearing SkateboardBearing Skateboard2 ẹyọ
Àkójọpọ̀ Òrùka OÀkójọpọ̀ Òrùka O1 ohun èlò
Skurú ẹ̀rọSkurú ẹ̀rọ12 ẹyọ

Àwọn irinṣẹ́ tí a nílò:

Ẹ̀rọ ìtẹ̀ 3D oníwàyà (FDM)Ẹ̀rọ ìtẹ̀ 3D oníwàyà (FDM)
Ẹ̀rọ Ìlùkòkò AláìlókùnẸ̀rọ Ìlùkòkò Aláìlókùn
Àkójọ Orí ÌlùkòkòÀkójọ Orí Ìlùkòkò
Òṣùwọ̀n Kálípà Díjítà Ìnṣì 6Òṣùwọ̀n Kálípà Díjítà Ìnṣì 6
Ìdìpọ̀ kọ́kọ́rọ́ igun mẹ́fàÌdìpọ̀ kọ́kọ́rọ́ igun mẹ́fà
3

Cut the ports in the right place

The ports are crescent-shaped slots in one end plate, close to the hub, and their position is the whole design. - The **inlet** slot goes where the ring is moving AWAY from the hub — where the buckets are emptying — covering the arc from just past the close point to the bottom. - The **discharge** slot goes where the ring is moving back IN — where the buckets are filling — ending just before the close point. - Between the end of one slot and the start of the other, leave solid plate at least one blade-spacing wide at each end, so that no bucket is ever open to both at once. Mark the direction of rotation on the plate before you cut. The same pump turned backwards blows out of its inlet. Fit a hose tail to each slot through a printed manifold and seal it with silicone. Tee the vacuum gauge into the inlet hose.

Àwọn ohun èlò fún ìgbésẹ̀ yìí:

Ìdílẹ̀ SilikoniÌdílẹ̀ Silikoni1 ẹyọ
Ọ̀pá vinyl tí ó mọ́Ọ̀pá vinyl tí ó mọ́1 mítà
Àkójọpọ̀ ìdìmú okùn omiÀkójọpọ̀ ìdìmú okùn omi1 ìtò
Ẹ̀rọ ìwọ̀n àìsí afẹ́fẹ́Ẹ̀rọ ìwọ̀n àìsí afẹ́fẹ́1 ẹyọ

Àwọn irinṣẹ́ tí a nílò:

Ẹ̀rọ Ìlùkòkò AláìlókùnẸ̀rọ Ìlùkòkò Aláìlókùn
Àkójọ Orí ÌlùkòkòÀkójọ Orí Ìlùkòkò
Ààmì Tí Kò Ní Parẹ́Ààmì Tí Kò Ní Parẹ́
Ìdíwọ̀nÌdíwọ̀n
4

Run it, and watch the ring

Fill the casing to about a third with water with a drop of dye in it, and drive the shaft with the cordless drill. Below a certain speed the water simply sloshes. Above it the water climbs the wall and forms a ring, and you can see it: deep at the bottom, thin at the top, and the buckets emptying and filling as they pass. Close the inlet hose with your thumb and read the gauge. Increase the speed and read it again. Then feed the service water: lead a slow trickle of cold water into the inlet side and let the discharge carry the surplus out with the air into a bucket. Measure the temperature of the water leaving. Then do the test that matters: run once with cold water, once with warm. The warm ring will not reach the same vacuum however fast you drive it — the notebook in the next step says exactly how far it will get.

Àwọn ohun èlò fún ìgbésẹ̀ yìí:

OmiOmi10 lítà
Àwọ̀ oúnjẹ (aró fún ríri ìṣàn omi)Àwọ̀ oúnjẹ (aró fún ríri ìṣàn omi)1 ẹ̀kán

Àwọn irinṣẹ́ tí a nílò:

Ẹ̀rọ Ìlùkòkò AláìlókùnẸ̀rọ Ìlùkòkò Aláìlókùn
Ìwọ̀n Ìyípo DígítàÌwọ̀n Ìyípo Dígítà
Òǹwọ̀n ooru ilé ìdánáÒǹwọ̀n ooru ilé ìdáná
Bàkẹ́ẹ̀tìBàkẹ́ẹ̀tì
Gílásì Ààbò Tí Ó Mọ́Gílásì Ààbò Tí Ó Mọ́
5

Vapour pressure sets the floor; heat moves it

Ń ṣí ìwé Jupyter…
6

The vacuum is poor: find out why

The faults behind a liquid-ring pump that will not pull down, in the order to check them.

Flow

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7

History and context

**US 1,091,529, 'Pump and Air Compressor', Lewis Hallock Nash of New York, assignor to the Nash Engineering Company; filed 24 February 1910, patented 31 March 1914.** The specification describes a wheel turning in a cylindrical case chamber with an enlarged portion or *"lobe"*: the water in a bucket *"is caused to flow out into said enlargement by the centrifugal force of the revolving wheel"*, leaving an opening *"through which air or other gas can be drawn"*, and returns as the lobe contracts to eject it. Nash founded the Nash Engineering Company in 1905, in Norwalk, Connecticut; the Nash name is still on liquid-ring pumps today. The liquid ring's great virtue is what it tolerates. Gas saturated with water vapour is no problem — the vapour condenses into the ring. Particles pass through. A slug of liquid is simply added to the ring. That is why it drains the water from the felts of paper machines and holds the vacuum on steam condensers, where a dry pump would drown. **Honest limits.** Its efficiency is low: much of the shaft power churns the ring. The vapour pressure of the service liquid caps the vacuum. It needs a supply of service liquid and gets rid of warm effluent. And the service liquid mixes with what is pumped, so if the gas is toxic, the water becomes a waste stream to treat.

Àwọn ohun-èlò

13

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