
Labyrinth Seal
ལམ་སྟོན
Cut the rotor grooves
Cut the rotor grooves
Ridges on the shaft sleeve that will interleave with the housing.
- Cut a rotor sleeve 50 mm long from 30 mm aluminium round bar, bored 16.0 mm to fit the shaft.
- Turn or file five annular grooves in its outer surface, each 3 mm wide and 3 mm deep, spaced 3 mm apart.
- Keep every groove square-sided and the same depth.
- Deburr the ridge edges but leave them sharp-cornered.
Sharp corners are deliberate. Each ridge edge forces the flow to separate and form a vortex in the following chamber, and that turbulence is where the pressure is lost. Round the corners off and the fluid follows the surface smoothly, losing far less — a labyrinth with soft edges leaks noticeably more than one with crisp ones.
Consistency between grooves matters more than the exact dimensions. Five identical stages each drop the same fraction of pressure; one oversize groove is a shortcut that wastes the stages around it.གོམ་པ་འདིའི་རྫས་རིགས:
Aluminum Round Bar (6061, 1-inch x 12-inch)1 དུམ་བུ།ལག་ཆས་དགོས་མཁོ:
Hacksaw Frame with Blades (10-Pack)
File Set
Bench Vise (4-inch, Cast Iron)
Digital Caliper 6-Inch
Cordless Drill/Driver (20V)
Drill Bit Set (29-Piece, HSS)Machine the matching stator
Machine the matching stator
The housing carries the mating ridges, offset so they interleave.
- Bore a housing from 50 mm aluminium bar to just clear the rotor's ridge diameter — aim for 0.3 mm radial clearance.
- Cut five internal grooves to match, but OFFSET by half a pitch so housing ridges sit opposite rotor grooves.
- Split the housing lengthwise into two halves so it can be assembled over the rotor.
- Bolt the halves together with M5 × 30 socket head cap screws × 4, M5 flat washers × 8 and M5 hex nuts × 4.
The clearance is the whole performance figure. Leakage through a labyrinth depends steeply on the gap, so halving the clearance cuts leakage dramatically. Real turbine labyrinths run clearances measured in tenths of a millimetre, and some use abradable coatings so the ridges cut their own minimum clearance on first run.
Splitting the housing is what makes this buildable by hand. A one-piece stator would have to be assembled by sliding the rotor in, which is impossible once the ridges interleave.གོམ་པ་འདིའི་རྫས་རིགས:
Aluminum Round Bar (6061, 1-inch x 12-inch)1 དུམ་བུ།
M5 Flat Washer8 དུམ་བུ།
M5 Hex Nut4 དུམ་བུ།ལག་ཆས་དགོས་མཁོ:
Hacksaw Frame with Blades (10-Pack)
Cordless Drill/Driver (20V)
Drill Bit Set (29-Piece, HSS)
File Set
Allen/Hex Key Set
Digital Caliper 6-InchProve it does not touch
Prove it does not touch
The defining property, and it is easy to demonstrate.
- Assemble rotor and stator on a shaft in bearings.
- Spin the shaft by hand and let it coast.
- Time the coast-down, then repeat with the lip seal from the previous blueprint fitted instead.
- Run the labyrinth continuously for several minutes and feel it — it stays cold.
ལག་ཆས་དགོས་མཁོ:
Stopwatch
Allen/Hex Key Set
Digital Caliper 6-InchMeasure leakage against the number of stages
Measure leakage against the number of stages
Each stage takes a bite out of the pressure. Find out how big a bite.
- Connect a low-pressure air or water supply to one end and measure the flow that escapes.
- Block off two of the five stages — shim the grooves — and repeat.
- Block off two more, leaving one stage, and repeat.
- Plot leakage against stage count.
གོམ་པ་འདིའི་རྫས་རིགས:
Cardstock Assorted Pack (50 Sheets)1 སྒྲིལ་ཐུམ།ལག་ཆས་དགོས་མཁོ:
Stopwatch
Digital Caliper 6-InchWhere nothing else will do, and history
Where nothing else will do, and history
Labyrinth seals own the extremes. Steam and gas turbines run them because no contacting seal survives those speeds and temperatures; a jet engine's shaft seals are labyrinths. Large electric motors and industrial gearboxes use them because a seal that never wears means a bearing housing that never needs that particular service. And because they cannot fail by wearing out, they are chosen where access is difficult or a shutdown is expensive.
The bearing-protector version is the one most people meet: a labyrinth fitted to a pump or motor bearing housing whose job is not to keep oil in but to keep water and dust OUT. Used that way, the fact that it leaks slightly outward is an advantage — outward flow means nothing gets in.
The elegance is worth naming. Every other seal here fights the leak with contact force, and pays in wear. The labyrinth defeats it with geometry alone: no moving parts beyond the shaft itself, no consumables, no adjustment, no failure mode. It is the same instinct as the crowned pulley — solve the problem with a SHAPE rather than a part.
Its honest limit, stated plainly: it cannot hold pressure at standstill, and it cannot hold a liquid level against gravity for long. Machines that must be leak-free when stopped combine a labyrinth for running duty with a contacting seal for standstill — using both approaches rather than choosing between them, exactly as the gearbox pairs a cone clutch with a dog clutch.
རྫས་རིགས
4- ས་ཆ་འཛིན
- 8 དུམ་བུ།ས་ཆ་འཛིན
- 4 དུམ་བུ།ས་ཆ་འཛིན
- 1 སྒྲིལ་ཐུམ།ས་ཆ་འཛིན
ལག་ཆས་དགོས་མཁོ
8- ས་ཆ་འཛིན
- ས་ཆ་འཛིན
- ས་ཆ་འཛིན
- ས་ཆ་འཛིན
འབྲེལ་ཡོད་བིལུ་པིརིན་ཊི
བིལུ་པིརིན་ཊི་འདི་ཚུ་ཐབས་ལམ་དང་རྫས་རིགས། སྤྱི་ཆོས་བགོ་བཤའ་བྱེད
CC0 སྤྱི་དབང
བིལུ་པིརིན་ཊི་འདི་CC0 འོག་བཀྲམས་ཡོད། ཁྱེད་རང་གིས་ཆོག་མཆན་མ་བཞེས་པར་ཕབ་ལེན་དང་བཟོ་བཅོས། བགོ་བཤའ། དགོས་མཁོ་གང་ལའང་བཀོལ་སྤྱོད་བྱས་ཆོག
བཟོ་མཁན་ལ་རྒྱབ་སྐྱོར་བྱེད་པའི་ཆེད་ཁོང་ཚོའི་བིལུ་པིརིན་ཊི་བརྒྱུད་ཐོན་སྐྱེད་ཉོ། བཟོ་མཁན་གྱིས བཟོ་མཁན་གྱི་ཁེ་ཕོགས ཚོང་པས་གཏན་འཁེལ་བྱས་པ། ཡང་ན་བིལུ་པིརིན་ཊི་འདིའི་པར་གསར་བཟོས་ཏེ་ཁྱེད་རང་གི་བིལུ་པིརིན་ཊི་ནང་མཐུད་སྦྲེལ་བྱས་ཏེ་ཡོང་སྒོ་བགོ་བཤའ་བྱེད།

