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Coolant System Heat Exchanger Cleaning for Deep Hole Drilling

The heat exchanger in a deep hole drilling coolant system works silently — until it stops working effectively. Fouled heat exchanger surfaces reduce cooling capacity, coolant temperature rises, tool life drops, and coolant chemistry degrades faster. Regular cleaning restores cooling performance and extends the life of the coolant and the chiller.

Heat Exchanger Types

Type Comparison

TypeConstructionCooling EfficiencyFouling SusceptibilityCleaning DifficultyApplication
Shell and tubeTubes inside a cylindrical shellModerateModerate — tube interior foulsModerate — can rod tubesLarge systems, high flow
Plate (gasketed)Stack of corrugated plates with gasketsHighHigh — narrow plate gaps foul easilyEasy — plates can be opened and cleanedMost deep hole drilling applications
Brazed plateSealed plate stack (no gaskets)HighHigh — narrow gapsDifficult — cannot open — chemical cleaning onlyCompact systems, no maintenance access needed
Tube-in-tubeConcentric tubesLowLow — large passagesEasy — can brush inner tubeLow-capacity applications

Common Installation

Heat Exchanger LocationCoolant CircuitChiller / Cooling Water Circuit
Between pump and machineHot coolant from pump → cooled to machineChilled water from chiller → warm return
Coolant tank loopWarm coolant from tank → cooled to tankChilled water from chiller → warm return
Chiller integratedRefrigerant circuit cools coolant directlyNot applicable — refrigerant-based

Fouling Types and Effects

Fouling Identification

TypeCauseAppearanceEffect on Performance
Scale (hard water)Calcium and magnesium deposits from hard waterWhite or gray hard crustInsulation — reduces heat transfer by 20–60%
Biofilm (biological)Bacterial growth on surfacesSlimy, dark layerInsulation + flow restriction
Particulate (chips, fines)Fine chips and debris settling in low-flow areasDark, gritty depositFlow restriction, erosion of surfaces
Oil foulingTramp oil coating on heat transfer surfacesSticky, greasy layerInsulation — reduces heat transfer
Corrosion productsRust from system componentsRed-brown depositInsulation + surface damage

Fouling Effects

Fouling ThicknessHeat Transfer ReductionCoolant Temperature Rise (compared to clean)Effect on Drilling
0.1 mm (light)10–20%+ 2–4°CMinimal — tool life slightly reduced
0.3 mm (moderate)25–40%+ 5–8°CNoticeable — tool life reduced, coolant degrades faster
0.5 mm (heavy)45–60%+ 8–15°CSignificant — coolant temperature exceeds 40°C, chip evacuation affected
1.0 mm (severe)65–80%+ 15–25°CCritical — coolant temperature may reach 50°C, system alarms

Cleaning Methods

Chemical Descaling

StepActionDetail
1Isolate heat exchangerClose isolation valves on both circuits
2Drain both circuitsCoolant side and chiller water side
3Prepare cleaning solutionFor scale: 5–10% phosphoric or citric acid. For biofilm: 0.5% hydrogen peroxide
4Connect cleaning pumpCirculate solution through the coolant side only
5Circulate cleaning solution30–60 minutes at 40–50°C (if heating available)
6Monitor solution pHWhen pH stabilizes (stops rising), descaling is complete
7Drain cleaning solutionDispose per local regulations
8Flush with clean water10–15 minutes circulation
9Flush with neutralizing solution (if acid used)Baking soda solution — circulate 5 minutes
10Final flush with clean waterUntil discharge is neutral pH
11Refill both circuitsCoolant on process side, water/glycol on chiller side
12Return to serviceVerify pressure drop and temperature differential

Mechanical Cleaning (Plate Heat Exchanger)

StepActionDetail
1Isolate and drain both circuits
2Measure and record plate pack thicknessFor reassembly reference
3Remove heat exchanger from mountingIf necessary for access
4Remove tie boltsNote number and position of tightening sequence
5Separate plates carefullyMark orientation — each plate is identical orientation
6Remove gaskets (if replacing)Or clean in place if reusing
7Clean each plate with soft brushNon-abrasive brush — do not damage plate surface
8Rinse plates with clean water
9Inspect plates for damageCracks, pitting, deformation — replace if damaged
10Inspect gasketsReplace if hardened, cracked, or compressed
11Reassemble plates in correct order
12Install new gaskets (if replacing)Lubricate gasket grooves per manufacturer
13Tighten tie boltsCross-pattern — tighten to specified dimension
14Pressure testPer manufacturer specification
15Reinstall in system
16Refill and return to service

Mechanical Cleaning (Shell and Tube)

StepActionDetail
1Isolate and drain both circuits
2Remove tube side coversAccess to tube interior
3Insert cleaning brush or rod into each tubeNylon or brass brush — not steel (avoids scoring)
4Push brush through each tubeMultiple passes if necessary
5Flush tube side with waterAfter brushing all tubes
6Clean shell side (if accessible)Remove baffles if possible
7Reinstall covers with new gaskets
8Pressure test
9Refill and return to service

Backflushing (In-Situ Cleaning)

StepActionDetail
1Reverse the flow direction through the heat exchangerRequires valving to reverse inlet and outlet
2Flush at maximum flow rate for 5–10 minutesDislodges loose debris
3Return to normal flow direction
4Repeat if necessary
5Check pressure drop across heat exchangerShould be lower than before backflushing

Cleaning Frequency

System ConditionCleaning FrequencyMethod
Treated water (softened or DI) + good coolant maintenanceAnnuallyChemical descaling or mechanical
City water (hard, > 100 ppm)Every 6 monthsChemical descaling
Open loop cooling tower (worst case)Every 3 monthsChemical + mechanical
Biofilm detected (slimy return water)Immediate + every 3 monthsChemical (biocide) + mechanical
Temperature rise of 5°C above clean baselineClean immediatelyPer type

Preventative Measures

MeasureEffectImplementation
Water treatmentPrevents scale formationSoftener or RO on make-up water
Coolant maintenancePrevents biofilm and oil foulingRegular concentration, pH, biocide checks
FiltrationPrevents particulate foulingProper micron rating, regular filter changes
Strainer on chiller water inletPrevents debris from entering heat exchanger500 µm strainer
Temperature monitoringDetects fouling earlyLog coolant temperature daily
Pressure drop monitoringDetects flow restrictionInstall pressure gauges across heat exchanger

FAQ

How often should a coolant heat exchanger be cleaned?

Clean annually for systems using treated water and well-maintained coolant. Clean every 6 months for systems using hard city water. Clean immediately when coolant temperature rises 5°C above the clean baseline, or when the pressure drop across the heat exchanger increases by 25%. Regular cleaning prevents the progressive fouling that leads to chiller overload and system alarms.

How do I know when a heat exchanger needs cleaning?

Monitor the coolant temperature at the heat exchanger outlet. If the outlet temperature is 5°C or more above the clean baseline (the temperature when the heat exchanger was new or freshly cleaned), cleaning is needed. Also monitor the pressure drop across the heat exchanger — a 25% increase above baseline indicates fouling. Additional signs: the chiller runs continuously without reaching set point, or the coolant temperature alarm activates more frequently.

Can I clean a heat exchanger without removing it from the system?

Yes — chemical cleaning and backflushing can be performed in-situ. Chemical cleaning: circulate a descaling solution (phosphoric or citric acid for scale, hydrogen peroxide for biofilm) through the coolant side of the heat exchanger, then flush thoroughly. Backflushing: reverse the flow direction to dislodge loose debris. For severe fouling or plate heat exchangers with gaskets, mechanical cleaning requires disassembly.

What chemicals are safe for cleaning coolant heat exchangers?

For scale removal: phosphoric acid (5–10%) or citric acid (5–10%) — both are effective and compatible with stainless steel plates. For biofilm removal: hydrogen peroxide (0.5–1%) or peracetic acid (0.02–0.05%). Never use hydrochloric (muriatic) acid — it attacks stainless steel and causes pitting. Never mix cleaning chemicals. Always flush thoroughly after chemical cleaning and neutralize acid with a baking soda solution before the final rinse.

What causes a heat exchanger to foul quickly?

Rapid fouling is caused by: hard water (high calcium/magnesium — scale forms quickly), inadequate coolant maintenance (low pH allows bacterial growth that forms biofilm), high tramp oil content (oil coats heat exchanger surfaces), poor filtration (fines enter the heat exchanger and settle in low-flow areas), or oversized heat exchanger (low flow velocity allows debris to settle).


A clean heat exchanger maintains coolant temperature within the optimal range — typically 25–35°C. When temperature rises above 40°C, tool life decreases, coolant chemistry degrades faster, and chip evacuation becomes less efficient. Regular cleaning is a simple maintenance task that prevents these problems. Monitor temperature, clean on schedule, and use treated water to minimize fouling. This article reflects industry practice as of 2026.

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