316L Sanitary & Hygienic

Brewery Valve and Heat Exchanger Selection: Wort, Fermentation, Cellar and CIP

Published · Updated · KOSA Hygienic Process Team

Brewing has its own vocabulary and its own failure modes: hop acids that attack elastomers, caustic CIP at 80 °C, CO₂ that permeates and decompresses, and a product that is spoiled by oxygen pickup measured in parts per billion. The valve schedule has to serve all of it.

Process areas and their demands

AreaTemperaturesMediaValve priorities
Mash tun / lauter62–78 °CMash, wort, spent grainFull bore, low shear, abrasion resistance
Kettle / whirlpool100 °C boiling, hot trubHot wort with hopsTemperature rating, drainability, hop-acid compatibility
Wort cooling (heat exchanger)98 °C → 8–12 °CWort / glycolClose approach temperature, cleanability, low ΔP
Fermentation / cellar0–20 °CBeer, yeast, CO₂Oxygen exclusion, CO₂ rating, cleanability
Bright beer / filtration0–5 °CBeer, CO₂Low oxygen pickup, no shear
CIP setCaustic 1–2% at 60–80 °C; acid; PAA or peracetic sanitiserCaustic, acid, sanitiserFull chemical compatibility, temperature
UtilitiesAmbient to 140 °CSteam, glycol, hot liquorPressure and temperature rating

Heat exchangers: the brewhouse decision

Wort cooling is the single largest energy transfer in the brewery, and the exchanger choice determines both the cooling rate and the cold break quality.

TypeUse in the breweryAdvantagesLimitations
Plate-and-frame, gasketedThe standard wort chillerHigh heat-transfer coefficient, close approach temperature of 1–2 °C, easy to expandGaskets are a maintenance item and a leak path; limited pressure
Plate-and-frame, brazed or weldedGlycol / small skid dutyCompact, no gasketsCannot be mechanically cleaned; not for wort
Tube-in-tube (multi-tube)Wort cooling where cleanability and solids tolerance matter; beer-to-beer or beer-to-glycolNo gaskets in the product path, handles trub and hop matter, cleanableLarger footprint, lower coefficient than plate
Shell-and-tube, hygienicLarge brewhouses, hot liquorRobust, high pressure, weldable product sideLower coefficient, larger
Scraped surfaceFruit, high-viscosity or crystallising productsHandles fouling and particulatesCost and maintenance
Practical guidance: a gasketed plate exchanger gives the best thermal performance for wort and is the usual choice. If hop pellets or heavy trub reach the exchanger, or if gasket maintenance is a problem, a tube-in-tube design removes the gasket from the product path and simplifies CIP — at the cost of a larger footprint.

Valves: what brewers actually specify

Elastomers and hop acids

Hop alpha and iso-alpha acids are aggressive towards some elastomers, and combined with 1–2% caustic at 80 °C and peracetic acid sanitiser, they define the material choice. EPDM is the standard for hot wort, CIP and steam; FKM is used where hop extract or oil contact is significant; PTFE is used where chemical resistance dominates and resilience is less important. On the cold side, confirm the elastomer retains resilience at 0 °C — a hardened seat on a cellar valve is a common CO₂ leak source.

Oxygen, CO₂ and the details that spoil beer

  1. Oxygen pickup. Every gasket face, every clamp joint and every valve stem is a potential oxygen ingress point. Use bore-matched gaskets, keep the loop positively pressurised, and purge properly before transfer.
  2. CO₂ permeation. Elastomers permeate CO₂; a long shutdown with a carbonated product in a line can decarbonate through the seat. Specify the appropriate material and avoid trapping carbonated product in dead legs.
  3. Pressure rating. Cellar lines run at 1–2 bar for fermentation but bright beer tanks and carbonation can reach 3–4 bar; CIP surges add more. Confirm the rating at the CIP temperature, not ambient.
  4. Drainability. Beer lines must drain completely; a low point that holds product will infect the next batch.
  5. Yeast and dry hop. Full-bore, low-shear valves; butterfly or ball rather than a restrictive globe pattern, so that yeast and hop solids pass without damage or blockage.

CIP in the brewery

Brewery CIP typically runs caustic at 60–80 °C for 20–40 minutes, with periodic acid descaling of the bright beer and kettle stone (calcium oxalate and protein). Sanitisation is with hot water above 85 °C, or peracetic acid or a similar no-rinse sanitiser on cold lines. Verify that every valve in the circuit is compatible with the full envelope, and pay particular attention to sight glasses, sample valves and the leakage chambers of mixproof valves — the places that get forgotten.

KOSA supplies 316L hygienic valves, fittings and heat exchangers for brewhouse, cellar and packaging duty. Send your process schedule for a matched proposal.

Frequently Asked Questions

Which heat exchanger type is best for wort cooling?

A gasketed plate-and-frame exchanger is the usual choice because it gives a close approach temperature of 1 to 2 degrees Celsius and a high heat transfer coefficient, and it can be expanded later. Where hop solids or trub reach the exchanger, or where gasket maintenance is a concern, a tube-in-tube design removes gaskets from the product path and is easier to clean.

What elastomer should be used on brewery valves?

EPDM is the standard for hot wort, caustic CIP and steam. FKM is used where hop extracts or oils are present, and PTFE where maximum chemical resistance is required. On cold cellar lines the elastomer must retain resilience at 0 degrees Celsius to avoid CO2 leaks.

Why does oxygen pickup matter so much in brewing?

Oxygen causes staling and off-flavours at levels measured in parts per billion, so any gasket face, clamp joint or valve stem that admits air can shorten shelf life. Bore-matched gaskets, positive pressure and proper purging are the main controls.

Are butterfly valves suitable for brewery cellar lines?

Yes. Hygienic butterfly valves are the default on cellar and tank outlet pipework because they are low cost, easy to strip for cleaning, provide a largely unobstructed bore and are available in sizes up to DN150. The seat design should avoid creating a pocket where product can be retained.

What CIP conditions do brewery valves need to withstand?

Typically caustic soda at 1 to 2 percent and 60 to 80 degrees Celsius for 20 to 40 minutes, periodic acid descaling, and sanitisation with hot water above 85 degrees Celsius or a peracetic acid based sanitiser. Every elastomer and seat in the circuit must be rated for the full chemical and temperature envelope.

Need a valve sized for your duty?

Send us the process data — fluid, inlet pressure, differential pressure, temperature, required flow and pipe size — and our engineers will return a sized selection with Cv calculation, leakage class and material recommendation, plus documentation packs for FAT / IQ-OQ.

Request a valve sizing quote

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