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Coolant Additives for Deep Hole Drilling — EP and Corrosion

A deep hole drilling shop operating six BTA and four gun drilling machines uses a neat oil coolant system with a 12,000‑litre central reservoir. Over 18 months, the shop experiences increasing tool wear, bore surface finish deterioration, and coolant system fouling. Analysis reveals that the active sulfur EP additive concentration has depleted from the initial 1.8% to 0.6% due to continuous filtration and chip carry‑off, while water ingress from coolant leaks has increased the acid number from 0.15 to 0.85 mg KOH/g, accelerating corrosion on guide pads and spindle components. The shop implements a coolant additive maintenance program including monthly sulfur concentration testing (ASTM D1662), quarterly acid number testing (ASTM D664), biocide dosing for water‑miscible coolant on two aluminium‑dedicated machines, and a scheduled additive replenishment protocol. After program implementation, tool life recovers to baseline levels, guide pad wear reduces by 40%, coolant service life extends from 8 months to 24 months, and annual coolant‑related costs decrease by $38,000.

Coolant Types for Deep Hole Drilling

Coolant TypeBase Oil ViscosityTypical UseAdditive RequirementsCoolingLubricationChip Flushing
Neat cutting oil (low viscosity)7–15 cSt at 40°CGun drilling, small BTAEP (S/P/Cl), corrosion inhibitor, anti-mistModerateExcellentExcellent
Neat cutting oil (medium viscosity)15–32 cSt at 40°CBTA drilling, large diametersEP (high sulfur 15–35%), wetting agentsModerateExcellentGood
Water-miscible semi-syntheticEmulsionAluminium, non-ferrous, moderate depthsEP, biocide, corrosion inhibitor, emulsifierExcellentGoodModerate
Water-miscible syntheticSolutionHigh-speed machining, cooling-criticalCorrosion inhibitor, biocide, wetting agentExcellentModerateModerate
High-EP heavy-duty oil30–50 cSt at 40°CLarge BTA, trepanning, difficult materialsHigh sulfur (20–40%), chlorinated or replacementLowExcellentLow

EP Additive Types

Additive TypeActive ElementTypical ConcentrationMax Operating TemperatureYellow Metal SafeEnvironmental Concerns
Sulfurized fatty oilSulfur 8–20%5–15% in concentrate300°CYes (with inhibitor)Low — biodegradable
Sulfurized hydrocarbonSulfur 15–40%3–10% in concentrate400°C+No (stains copper)Moderate
Chlorinated paraffinChlorine 40–70%5–20% in concentrate400°C+YesHigh — disposal restrictions
Phosphate esterPhosphorus 5–15%2–8% in concentrate250°CYesLow
Overbased calcium sulfonateCalcium, sulfur3–15% in concentrate350°CYesLow
Nano-MoS₂ / WS₂Molybdenum, tungsten0.5–3% in concentrate600°C+YesVery low — solid lubricant
Borate esterBoron1–5% in concentrate250°CYesLow

Active Sulfur EP Additives Comparison

ProductTotal SulfurActive SulfurViscosity at 40°CCopper Corrosion (ASTM D130)Best For
Additin RC 254140%35%Low1a–1b (non-corrosive)Deep hole drilling, high reactivity
Additin RC 252626%15%80–120 cSt2–3 (moderate)Heavy-duty cutting, moderate pressure
Additin RC 241818%9%55 cSt2 (moderate)General drilling, broaching
Additin RC 231717%8%55 cSt1b–2 (low)Deep hole drilling, honing
Sulfurized ester (custom)10–15%5–10%Variable1a–1bEnvironmentally sensitive applications

TIP

Active sulfur content is the key performance parameter for deep hole drilling EP additives — not total sulfur. Active sulfur is the fraction that reacts with the metal surface at cutting temperatures to form the iron sulfide tribofilm that prevents welding and reduces friction. A finished BTA drilling oil should contain 1.5–2.5% active sulfur. If your tool life has degraded and sulfur analysis shows active sulfur below 1.0%, replenish the additive package to restore performance. Using oil analysis is more reliable than calendar-based replacement.

Corrosion Inhibitors for Deep Hole Drilling

Inhibitor TypeMechanismConcentrationTemperature LimitBest For
Calcium sulfonateForms protective film on metal surface, neutralises acids2–10%350°CGuide pads, spindle bearings, coolant lines
Amine carboxylateAdsorbs on metal surface, pH buffering0.5–3%200°CCast iron, steel workpieces
Benzotriazole (BTA)Forms protective layer on copper alloys0.05–0.5%250°CYellow metal protection (bushings, seals)
Sodium nitrite (restricted)Oxidises metal surface to passive layer0.5–2%150°CSteel and cast iron (banned in many regions)
MolybdateForms iron molybdate passive layer0.5–2%300°CNon-toxic alternative to nitrite
Phosphate esterAdsorbs and forms iron phosphate film1–5%250°CCombined EP + corrosion inhibition

Biocide Selection for Water-Miscible Coolants

Biocide TypeActive IngredientEffective pH RangeTarget OrganismsService LifeRestrictions
Triazine1,3,5-tris(2-hydroxyethyl)-hexahydrotriazine7–10Bacteria2–4 weeksFormaldehyde releaser
IsothiazolinoneCMIT/MIT blend6–9Bacteria, fungi4–8 weeksSkin sensitiser
Phenolico-phenylphenol7–10Fungi, yeast4–6 weeksEnvironmental concerns
Bronopol2-bromo-2-nitropropane-1,3-diol6–8Bacteria2–4 weeksNitrosamine risk
Glutaraldehyde1,5-pentanedial7–9Bacteria, biofilm2–4 weeksRespiratory sensitiser
Grotan OX (Vink)Oxazolidine-based7–10Bacteria, fungi, SRB4–8 weeksLow toxicity profile

WARNING

Biocides must be selected based on the specific coolant formulation and operating conditions. Adding an incompatible biocide can cause coolant splitting, emulsion breaking, or additive precipitation. Always perform a compatibility test with a small coolant sample before full-system dosing. Over-dosing biocide does not improve microbial control and can accelerate coolant degradation. For neat oil systems (the standard for BTA drilling), biocides are not required — water-miscible coolants only.

Additive Depletion Monitoring

ParameterTest MethodNew Coolant BaselineAction LimitReplenishment Action
Active sulfurASTM D16621.5–2.5%< 1.0%Add sulfurized EP additive to restore to target
Total sulfurASTM D15522.5–4.0%< 2.0%Verify with active sulfur test
Acid numberASTM D6640.1–0.3 mg KOH/g> 0.5 mg KOH/gCheck water content, consider coolant reclamation
Viscosity at 40°CASTM D44512–18 cSt±20% from baselineVerify additive depletion or tramp oil contamination
Copper corrosionASTM D1301a–1b (light tarnish)> 2c (moderate tarnish)Replenish corrosion inhibitor package
Water contentASTM D6304< 0.1%> 0.5%Find and repair coolant leak sources
Particle countISO 4406< 18/16/13> 22/20/17Improve filtration or replace coolant
Iron contentICP/OES< 10 ppm> 50 ppmInvestigate abnormal tool or guide pad wear
pH (water-miscible)pH meter9.0–9.5< 8.5 or > 10.0Adjust with pH buffer or replace coolant
Refractive index (emulsion)RefractometerPer manufacturer±0.5% from targetAdjust concentration

Coolant Change Criteria

ParameterNeat Oil (BTA/Gun Drilling)Water-Miscible (General)
Typical service life12–24 months3–12 months
Change trigger — primaryAcid number > 0.8 mg KOH/gpH < 8.5 or bacterial count > 10⁶ CFU/mL
Change trigger — secondaryViscosity change > 20%Concentration drift > 2%
Change trigger — tertiaryParticle count > 22/20/17Tramp oil > 5%
Reclamation possibleYes (filtration, additive replenishment)Limited (emulsion breaking)
Disposal methodLicensed waste oil collectorWastewater treatment or licensed collector
Cost per litre (disposal)$0.50–1.50$1.00–3.00

Coolant Maintenance Schedule

TaskFrequencyMethodResponsibility
Visual inspectionDailyCheck coolant clarity, odour, tramp oil layerMachine operator
Concentration check (emulsion)WeeklyRefractometer readingMachine operator
pH check (emulsion)WeeklypH meter or test stripsMachine operator
Active sulfur test (neat oil)MonthlyASTM D1662 — wet chemistryCoolant lab or supplier
Acid numberMonthlyASTM D664 — titrationCoolant lab
ViscosityMonthlyASTM D445 — viscometerCoolant lab
Copper corrosion testMonthlyASTM D130 — copper stripCoolant lab
Water contentMonthlyASTM D6304 — Karl FischerCoolant lab
Particle countQuarterlyISO 11500 — laser particle counterCoolant lab
Microbiological plate count (emulsion)MonthlyDip slides or plate countMaintenance team
Biocide dosing (emulsion)As needed (per test results)Calculate based on system volumeMaintenance team
EP additive replenishmentAs needed (per sulfur test)Calculate based on system volumeCoolant supplier
Coolant reclamationAnnuallyCentrifuge or filter to remove finesCoolant supplier
System clean and rechargePer change criteriaDrain, clean, biocide wash, refillMaintenance team
SymptomLikely Additive-Related CauseDiagnostic TestCorrective Action
Increased tool wearEP additive depleted (sulfur < 1.0%)Active sulfur test (ASTM D1662)Replenish EP additive to restore 1.5–2.5% active sulfur
Poor surface finishLubricity loss from EP depletion or wrong viscosityViscosity test, EP concentrationAdjust viscosity, replenish EP package
Guide pad scoringCorrosion from acid number > 0.5 or water ingressAcid number, water content, copper corrosionNeutralise acids, repair coolant leaks, improve corrosion inhibitor
Coolant foamingTramp oil contamination or wrong additive balanceVisual foam test, tramp oil measurementInstall skimmer, adjust defoamer dosage
Bacterial odour (emulsion)Biocide depletion, low pH, tramp oil food sourceDip slide, pH testShock dose biocide, adjust pH, remove tramp oil
Skin irritationIncorrect concentration, wrong biocide typeConcentration check, biocide reviewAdjust concentration, change biocide type
Corrosion on machine waysCorrosion inhibitor depleted or pH too lowCopper corrosion test, pHReplenish corrosion inhibitor, adjust pH
Coolant separation (emulsion)Incompatible additives, incorrect dilutionVisual emulsion stability testStop additive addition, contact supplier
Chip sticking to toolInsufficient EP activityActive sulfur testIncrease EP additive concentration
Filter media cloggingAdditive degradation byproducts or excessive finesParticle count, acid numberImprove pre-filtration, consider coolant reclamation

FAQ

What EP additive is best for deep hole drilling of steel?

Active sulfur EP additives provide the best performance for deep hole drilling of ferrous materials. At the cutting zone temperatures of 200–400°C in BTA drilling, active sulfur reacts with the iron surface to form an iron sulfide (FeS) tribofilm with a low shear strength, reducing friction and preventing adhesive wear. For most steel drilling, a finished oil with 1.5–2.5% active sulfur is optimal. For difficult materials (Inconel, stainless steel, titanium), active sulfur content up to 3.5% combined with phosphate ester or nano-MoS₂ provides additional extreme pressure capability.

How often should coolant additives be tested?

Active sulfur concentration and acid number should be tested monthly for neat oil coolant systems. Viscosity and water content should be tested monthly as well. For water-miscible coolants, pH, concentration, and microbiological counts should be tested weekly, with full additive analysis quarterly. More frequent testing is warranted during periods of high production, after coolant top-ups, or when processing difficult materials.

Why does the acid number increase in neat oil coolants?

Acid number (AN) increases primarily from water ingress, thermal oxidation of the base oil, and additive depletion byproducts. Water reacts with sulfurized EP additives to form sulfuric and sulfurous acids, which corrode guide pads, spindle components, and workpiece surfaces. Thermal oxidation from continuous high-pressure pumping generates organic acids. Maintaining AN below 0.5 mg KOH/g is critical for corrosion control. AN above 0.8 mg KOH/g typically requires coolant reclamation or replacement.

Can I mix different brands of coolant additives?

Mixing coolant additive brands is not recommended unless compatibility has been verified by the supplier. Different additive chemistries can react — for example, mixing sulfurized and chlorinated EP additives from different manufacturers can form corrosive byproducts, and mixing biocide types can cause emulsion splitting in water-miscible coolants. Always consult the coolant supplier before adding any product to an existing system.

Is chlorinated paraffin still used in deep hole drilling coolants?

Chlorinated paraffin was historically the standard EP additive for deep hole drilling but is increasingly restricted due to environmental and health regulations (REACH, RoHS). Many regions now limit or ban medium- and long-chain chlorinated paraffins. High-sulfur EP additives (Additin RC 2541 at 40% total sulfur) and phosphate esters provide effective alternatives for most deep hole drilling applications without the regulatory burden of chlorinated products.

What biocide is best for water-miscible coolants in deep hole drilling?

Isothiazolinone-based biocides (CMIT/MIT) provide the broadest spectrum of bacterial and fungal control for water-miscible coolants in deep hole drilling. For systems with persistent fungal or mold problems, a phenolic or oxazolidine-based biocide (such as grotan OX) provides better fungal control. The biocide should be selected based on the coolant formulation and confirmed by compatibility testing. For biocide-free formulations, biostable chemistry (such as SARCOOL ECO 4648) provides microbial resistance through formulation design rather than biocidal additives.

How is coolant additive concentration maintained?

Concentration is maintained through regular testing and targeted replenishment. For neat oil systems, active sulfur concentration (ASTM D1662) is the primary control parameter — when it falls below 1.0%, sulfurized EP additive concentrate is added to restore the target level. For water-miscible emulsions, refractive index (Brix) is the primary control, with additive concentrate added when concentration drifts below the target range. Automated dosing systems with conductivity or refractive index sensors are available for large central systems.

What coolant is used for aluminium deep hole drilling?

Aluminium deep hole drilling requires a coolant that provides adequate lubrication without staining the workpiece. Chlorine-free, sulfur-free synthetic or semi-synthetic water-miscible coolants with low EP activity are preferred. The coolant must have excellent aluminium corrosion inhibition (staining is a common problem with high-sulfur oils). Viscosity should be low (7–12 cSt at 40°C) for chip flushing. Coolant pH should be maintained at 8.5–9.0 for aluminium to avoid etching.

How does water contamination affect deep hole drilling coolant?

Water contamination in neat oil coolants causes multiple problems: (1) hydrolysis of sulfurized EP additives creates acidic byproducts that increase the acid number and cause corrosion; (2) water reduces the oil's viscosity and lubricity, increasing tool wear; (3) water promotes bacterial growth, creating foul odours and potential health hazards; (4) water accelerates filter media degradation. Water content should be kept below 0.1% and tested monthly.

What is the economic case for coolant additive maintenance?

For the 10-machine shop in this article's scenario, the annual savings from implementing coolant additive maintenance total $38,000. These savings come from: extended coolant service life (reduced from an 8-month to 24-month change interval saves $18,000/year in coolant purchases and disposal costs); reduced tool wear from maintained EP levels (12% improvement saves $12,000/year); reduced guide pad wear from corrosion control (40% reduction saves $5,000/year); and reduced downtime from coolant-related problems ($3,000/year). The cost of monthly testing and periodic additive replenishment is approximately $5,000/year, yielding a net saving of $33,000/year.

Summary

Coolant additive management for deep hole drilling centres on three additive categories: EP additives (primarily active sulfur compounds) that form tribofilms at the cutting interface to reduce tool wear and prevent welding; corrosion inhibitors that protect guide pads, spindle components, and the workpiece from acid attack and rust; and biocides that control microbial growth in water-miscible coolants used for non-ferrous drilling. Active sulfur concentration is the most critical performance parameter for neat oil systems — maintaining 1.5–2.5% active sulfur through monthly testing (ASTM D1662) and targeted replenishment is essential for consistent drilling performance. The acid number (ASTM D664) and water content (ASTM D6304) are the primary indicators of coolant health, with rising values signalling contamination or additive degradation that requires correction. The economic case for additive maintenance is strong: a 10-machine shop implementing systematic testing and replenishment saves $33,000/year net through extended coolant life, reduced tool wear, and lower maintenance costs. Proper additive management transforms coolant from a passive consumable into an active performance enabler that directly affects tool life, hole quality, and production uptime.

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