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Pitot Tube
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Penny

26. សីហា 2026DK
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Pitot Tube

How fast is a river flowing? You cannot put a ruler on moving water. Henri Pitot's answer in 1732 was to stop measuring speed at all and measure a pressure instead. Point a small open tube upstream and the water climbs it until the column's weight balances the flow being brought to rest at the opening — that height is a direct reading of velocity, because a moving fluid brought to a standstill converts its motion into pressure. Add a second opening flush with the flow, sensing only the ambient pressure, and the DIFFERENCE between the two is what matters. The instrument has no moving parts, works in any fluid, and is on the nose of every aircraft flying today measuring exactly what it measured in the Seine.
មធ្យម
3 hours 30 minutes

ការណែនាំ

1

Make the impact tube and prove it climbs

Start with Pitot's original instrument, which was one bent tube and nothing else.

  1. Bend a length of clear acrylic or brass tube into an L, with a short leg about 40 mm and a long vertical leg 300 mm.
  2. Cut the short leg's opening square and deburr it — a ragged or angled mouth reads wrong.
  3. Hold it in a flowing stream or a bucket being stirred, with the opening facing directly INTO the flow.
  4. Watch the water rise in the vertical leg and stabilise.
  5. Measure the height above the free surface.

That height is your reading. The fluid arriving at the opening is brought to rest, and its kinetic energy becomes pressure — enough to lift a column. Pitot did exactly this in the Seine in 1732, and used it to demolish the then-current belief that river water flowed faster at the bottom than the top.

Face the opening squarely into the flow. Even ten degrees off and the reading falls, which is why aircraft pitot tubes are aligned carefully and why a bent one is a serious defect.

Materials for this step:

Acrylic RodAcrylic Rod1 ដុំ
Brass Tube 3/8" ODBrass Tube 3/8" OD1 ដុំ

Tools needed:

Hacksaw Frame with Blades (10-Pack)Hacksaw Frame with Blades (10-Pack)
File SetFile Set
Digital Caliper 6-InchDigital Caliper 6-Inch
Combination Square (12-inch)Combination Square (12-inch)
2

Add the static port — the correction that made it accurate

One tube measures total pressure. You need to subtract the pressure that was there anyway.

  1. Make a second tube, closed at its upstream end, with several small holes drilled through its SIDE wall, flush and perpendicular to the flow.
  2. Mount it parallel to the impact tube, in the same flow.
  3. Run both to a U-tube manometer so you read the difference between them directly.
  4. Compare the difference reading against the single-tube reading from step 1.

Why the side holes must be perpendicular. A hole facing the flow catches the moving fluid and reads too high; a hole facing downstream reads too low. Only a hole exactly flush with the streamlines senses the static pressure alone. Getting that geometry right is the whole art of a static port, and on aircraft they are placed on the fuselage where the flow is known to be undisturbed.

Henri Darcy modified Pitot's instrument in the 1850s by adding exactly this, producing the Pitot-Darcy tube. The original measured a height above a free surface, which only works in an open channel; the two-port version works in a closed pipe or in the air.

Materials for this step:

Brass Tube 1/2" ODBrass Tube 1/2" OD1 ដុំ
Capillary Glass TubeCapillary Glass Tube1 ដុំ
Food ColouringFood Colouring1 ដប

Tools needed:

Cordless Drill/Driver (20V)Cordless Drill/Driver (20V)
Drill Bit Set (29-Piece, HSS)Drill Bit Set (29-Piece, HSS)
File SetFile Set
Digital Caliper 6-InchDigital Caliper 6-Inch
3

Calibrate against a known speed

The instrument reads a pressure. You want a velocity, so establish the relationship yourself.

  1. Mount the assembly on a rod and walk it through still air at a measured pace — say 2 metres in 4 seconds.
  2. Record the manometer difference at that speed.
  3. Repeat at double the speed.
  4. Compare: the pressure difference should be roughly FOUR times greater.
  5. Tabulate several speeds and plot pressure against velocity.
The plot is a curve, not a line, because pressure rises with the SQUARE of velocity. That single fact governs the instrument's whole character: it is insensitive at low speed and increasingly sensitive at high speed. An aircraft airspeed indicator is simply a pressure gauge with a square-root scale printed on its face, which is why the markings crowd together at the bottom.

Materials for this step:

Graph PaperGraph Paper1 pad

Tools needed:

StopwatchStopwatch
Digital Caliper 6-InchDigital Caliper 6-Inch
4

Block it and watch the reading lie

The instrument's failure mode is worth producing deliberately, because it has killed people.

  1. Establish a steady reading at a known speed.
  2. Now block the IMPACT opening with tape while the flow continues. Note the reading.
  3. Restore it, then block the STATIC ports instead. Note that reading.
  4. Try partially blocking each.
A blocked impact tube makes the instrument read low or zero even at full speed. A blocked static port is worse, because the reading then changes with altitude rather than with speed and can be entirely plausible while being wrong. Iced-over or insect-blocked pitot-static systems have caused multiple fatal air accidents, which is why aircraft heat them and why pre-flight checks include covering removal. An instrument that fails to a plausible reading is far more dangerous than one that fails to an obvious one.

Tools needed:

StopwatchStopwatch
Digital Caliper 6-InchDigital Caliper 6-Inch
5

Measuring by substitution, and history

Henri Pitot presented his tube to the French Academy of Sciences in 1732, having built it to settle arguments about how rivers flow. His measurements in the Seine showed that water moves FASTER at the surface and slower near the bed, contradicting the accepted view. Henri Darcy refined the instrument in the 1850s into the form still used.

The method is measurement by substitution, and it runs through this whole batch. Velocity is hard to measure directly; pressure is easy. So convert one into the other and measure the easy thing. The same instinct appears in the sine bar from batch 69 — angles are hard, lengths are easy, so trade one for the other. Recognising which quantity your workshop can measure well, and finding a physical relationship that converts the hard quantity into it, is most of instrumentation.

Against its sibling in this catalogue: the Venturi meter measures flow by narrowing the whole pipe and reading the pressure drop, giving a full-pipe average with almost no permanent pressure loss. The Pitot tube measures at a POINT, obstructs almost nothing, and can be traversed across a duct to map a velocity profile. One gives you the total, the other gives you the distribution — different questions, and a serious flow survey uses both.

Its honest limits: it reads at one point, so a single reading in a pipe is only as good as your assumption about the profile; it is sensitive to alignment; it is easily blocked; and at low velocities the pressure difference becomes too small to read reliably. That last limit is why aircraft airspeed indicators are unreliable at very low speed and why other methods are used for slow flows.

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7

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