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The Plate Heat Exchanger: Thin Plates, Turbulence, and a Frame You Can Open
Emma

Dibuat oleh

Emma

27. September 2026SE
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The Plate Heat Exchanger: Thin Plates, Turbulence, and a Frame You Can Open

A stack of thin pressed-metal plates, each sealed to the next by a gasket round its edge, clamped between two heavy frame plates by long bolts. Hot and cold liquids flow in alternate gaps, so every plate has hot on one face and cold on the other. Richard Seligman's plate heat exchanger of 1923, made by his Aluminium Plate & Vessel Company (APV), was built for the dairy: milk had to be heated and cooled quickly for pasteurisation, and the equipment had to come apart for cleaning every day. Thin corrugated plates give very high heat transfer in a small space; the gasketed frame opens with a spanner. This rung works out where the size advantage comes from, and builds a two-channel plate exchanger from copper sheet, printed gaskets and a clamped frame.
Menengah
About 6 hours

Instruksi

1

Where the high U comes from, and what fouling costs

Memuat notebook Jupyter…
2

Plate exchangers run in counterflow

A plate exchanger's ports are arranged so the two liquids run in opposite directions through alternate gaps. The embedded blueprint explains why, and measures it on a tube-in-tube exchanger.
3

Build a two-channel plate exchanger

Cut three copper sheets 150 × 100 mm. The middle one is the heat-transfer plate; the outer two are blanks. Print two gasket frames in TPU, 3 mm thick, each the outline of the plate with a 10 mm border, so each frame encloses a flow gap. Stack: acrylic end plate / copper blank / gasket frame / copper plate / gasket frame / copper blank / acrylic end plate. Drill four corner bolt holes through everything and clamp with threaded rod and wing nuts, tightening evenly. Drill and fit hose tails so that gap 1 is fed at the top-left and drains at the bottom-right, and gap 2 is fed at the bottom-right and drains at the top-left — counterflow across the plate. Add ridges to the gasket frames or press shallow chevrons into the copper with a blunt punch to break up the flow.

Material untuk langkah ini:

Lembaran TembagaLembaran Tembaga1 lembar
Filamen lentur TPUFilamen lentur TPU40 g
Lembaran AkrilikLembaran Akrilik1 lembar
Batang berulirBatang berulir1 buah
Mur kupu-kupuMur kupu-kupu4 buah
Aneka Sambungan Pipa PVCAneka Sambungan Pipa PVC1 set
Sealant SilikonSealant Silikon1 buah

Alat yang dibutuhkan:

Pencetak 3D filamen (FDM)Pencetak 3D filamen (FDM)
Bor Tanpa KabelBor Tanpa Kabel
Set Mata BorSet Mata Bor
PenggarisPenggaris
Kunci InggrisKunci Inggris
Sarung Tangan Kerja KulitSarung Tangan Kerja Kulit
4

Test it, then open it

Run hot water through one gap and cold through the other at equal, timed flows, and read the four temperatures with the thermometer (or reuse the four-probe logger from the counterflow rung). Work out the heat carried by each side. Now the reason the design exists: undo the wing nuts, lift the stack apart and look. Any sediment, scale or film is on the copper where you can wipe it. Wipe, restack and tighten. An exchanger you can open is an exchanger you can keep clean — which in a dairy is the difference between a safe product and a spoiled one. Retighten evenly: a gasket squeezed harder on one side leaks on the other.

Material untuk langkah ini:

AirAir30 liter

Alat yang dibutuhkan:

Ceret listrik kacaCeret listrik kaca
EmberEmber
Kendi takarKendi takar
StopwatchStopwatch
Termometer dapurTermometer dapur
Kunci InggrisKunci Inggris
5

History and context

**Richard Seligman, 1923** — the first commercially successful plate heat exchanger, made by the Aluminium Plate & Vessel Company he had founded in London in 1910, for the high-temperature short-time pasteurisation of milk. No patent number is asserted here: it could not be read from a primary source, and the design is fully documented. Plate exchangers now run in food, brewing, district heating, heat pumps and chemical plant; brazed versions with no gaskets at all are the small cube in many domestic boilers. **Honest limits.** Gaskets limit the temperature and pressure, and the chemicals they can meet. Narrow gaps clog on fibrous or particle-laden liquids, where shell-and-tube exchangers still win. And the high pressure drop of those turbulent gaps costs pumping power.

Bahan

8

Alat yang Diperlukan

11

CC0 Domain Publik

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