| HS Code | 437391 |
| Product Classification | Silicone antifoam emulsion |
| Active Component | Silicone (polydimethylsiloxane-based) antifoam compound |
| Active Content | 20% by weight nominal |
| Physical Form | Aqueous emulsion, pourable liquid |
| Appearance | White to off-white liquid |
| Specific Gravity | Approx. 1.00 g/cm3 at 20°C |
| Ph | Approx. 4.0 as supplied |
| Viscosity | Low viscosity, approximately 100–500 mPa·s at 25°C |
| Ionic Character | Nonionic |
| Emulsion Type | Oil-in-water emulsion |
| Continuous Phase | Water |
| Dilution Stability | Dispersible and dilutable in water |
| Antifoam Activity | Rapid foam knockdown and suppression |
| Duration Of Activity | Long-lasting foam control |
| Temperature Handling | Normal industrial aqueous processing temperatures are suitable; protect from freezing |
As an accredited SILFOAM SE 39 20% Active Long-Lasting Silicone Antifoam Emulsion factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | SILFOAM SE 39 is supplied in sealed 25 kg pails and 200 kg drums, ensuring safe, stable packaging for this 20% active silicone antifoam emulsion. |
| Container Loading (20′ FCL) | 20′ FCL container loading: SILFOAM SE 39, 20% active long-lasting silicone antifoam emulsion, packed in drums/IBCs, stowed and secured. |
| Shipping | SILFOAM SE 39 20% Active Silicone Antifoam Emulsion ships in sealed drums or IBC totes. Classified as a non-hazardous aqueous emulsion; no special transport restrictions apply. Keep containers upright, dry, and protected from freezing or excessive heat. Use within recommended shelf life and agitate before use if separation occurs. |
| Storage | Store SILFOAM SE 39 in its original, tightly sealed container in a cool, dry, well-ventilated area away from direct sunlight and sources of heat. Protect from freezing; ideal storage temperatures are between 5°C and 30°C. Keep away from incompatible materials. Under proper conditions, shelf life is up to 12 months. |
| Shelf Life | Shelf life is 12 months from delivery when stored in original, unopened containers at 5–30°C, protected from freezing. |
SILFOAM SE 39 is supplied as a 20 wt% active silicone antifoam emulsion in a water-continuous carrier, with polydimethylsiloxane as the primary defoaming phase. The emulsion is pourable and designed for dilution with process water under moderate agitation before addition; mechanical shear during dilution is deliberately limited because the native droplet size distribution controls spreading kinetics at the air/liquid interface. Long-lasting behaviour is not a single property but the result of three interrelated factors: the concentration of active silicone available per unit volume, the resistance of the emulsifier layer to alkaline or oxidative degradation, and the ability of the silicone droplets to re-enter the foam lamella after repeated surface rupture events. The product is intended for aqueous process streams, wet-end operations, and water-based formulations; solvent-borne or anhydrous systems require a separate compatibility screen because the emulsion can invert or partition. Published data for this exact product in each downstream segment are limited; the numerical ranges below are representative starting points derived from industrial practice for 20 wt% active silicone emulsions, and they must be confirmed by plant trial.
Alkaline industrial wash liquors in continuous tunnel washers and washer-extractors operate at pH 11.5–12.5 with free alkalinity of 300–600 ppm NaOH equivalent and main wash temperatures of 60–80°C. Under these conditions mixed nonionic and anionic surfactant packages generate stable foam that reduces mechanical action, interrupts level sensors, and causes sump overflow. SILFOAM SE 39, a 20 wt% active water-dilutable silicone emulsion, is introduced into the formulated liquid detergent concentrate at 0.1–0.5 wt% during the cooling phase below 40°C, or it is dosed directly into the wash bath at 0.01–0.05 mL/L through a chemical metering pump. The direct dosing mode avoids the high pH and surfactant-rich detergent matrix during storage; however, it requires a plant-specific verification of foam collapse because bath temperature and load size shift the contact time. Liquid detergent formulations for industrial linen rental plants and hospital laundries typically contain 10–25% nonionic surfactant and 5–15% anionic surfactant; the long-chain alcohol ethoxylates with cloud points below the wash temperature produce foam lamellae that are stable enough to trap air and reduce pump volumetric efficiency. Hypochlorite bleach compatibility is concentration-dependent: at 150–200 ppm available chlorine, a diluted bath of the emulsion remains stable for 24 h at 20°C, whereas contact with 5% NaOCl stock solution induces oxidative degradation of the emulsifier layer and visible creaming. Dynamic foam height is measured with a sparging cylinder at 1.0 L/min air flow, using the actual plant wash liquor, and a foam-volume reduction of 70–85% relative to an untreated reference is applied as the tunnel-washer acceptance threshold. Addition of the emulsion directly ahead of the extraction press is not advised because the high-shear nip may mechanically break the silicone droplets and shorten foam suppression in the subsequent counterflow rinse zone.
In polyester jet dyeing machines running liquor ratios of 1:6–1:10, disperse dye levelling agents, trimer residues from fibre manufacture, and air drawn into the venturi generate foam that reduces fabric rope speed, causes rope collisions, crease marks, and unlevel dye uptake. SILFOAM SE 39 is prediluted with 10–20 parts of process water and injected into the main pump suction at 0.05–0.2 g/L once the dyebath reaches 60°C; this addition point places the emulsion into the circulation loop where shear is moderate and distribution is rapid. In package dyeing machines with pump discharge pressures of 2–4 bar and reversal cycles of 30–60 s, foam suppression must occur within a single circulation cycle, and the long-lasting silicone reservoir is maintained only if the emulsion droplets are not over-dispersed in the high-shear pump volute. The electrolyte load from sodium sulfate at 5–20 g/L and sodium carbonate at 1–3 g/L compresses the electrical double layer around emulsion droplets, accelerating spreading at the air/liquid interface but also increasing the risk of silicone deposition on hydrophobic polyester. Residual extractable silicone on dyed fabric above 0.05% can be detected by solvent extraction followed by ICP-OES; such deposits interfere with subsequent wicking or coating steps and are not acceptable in automotive or performance textile specifications. Foam persistence is evaluated using a dynamic foam cell with 0.5 L/min air sparge and continuous recording of foam height over 30 min at 90°C for atmospheric dyeing or 130°C for high-temperature dispersion dyeing. In high-shear jet machines with volumetric flow rates above 40 L/min per kilogram of fabric, dosing is split between the initial fill and the first overflow rinse to compensate for silicone carryover on the surface of the fabric.
Water-based agrochemical suspension concentrates and soluble liquids are subject to CIPAC MT 47 persistent foam testing in 100 mL cylinders using CIPAC standard hard water at 30°C, where foam remaining after 60 s must not exceed product-specific limits for pump filling and spray tank operation. SILFOAM SE 39 is incorporated at 0.02–0.2% v/v during the aqueous phase prior to the addition of active ingredient mill bases or as an in-line injection at the sprayer induction hopper. Formulators using a bead mill at 3000–5000 rpm should verify that the emulsifier system withstands the high shear and temperature excursion to 45–55°C; over-milling can reduce the silicone droplet size below 1 µm and consume the long-lasting active reservoir. In spray-rig evaluation, the emulsion is injected at 0.05–0.1% v/v into the carrier stream before the in-line mixer, where shear rates can exceed 10 000 s⁻¹; foam height in the return line is measured at 3 bar pressure and 1.2 L/min nozzle flow, with residual foam below 10% of tank volume accepted for pump cavitation avoidance. The product is designed for aqueous carrier systems; addition to emulsifiable concentrates containing aromatic hydrocarbon solvents can cause silicone oil partitioning and emulsion inversion, so cold storage at 2–5°C for 28 days is used to disclose phase instability before field use.
In municipal activated sludge plants with fine-bubble diffusers or surface aerators, stable foam on secondary clarifiers and splitter boxes can suspend solids over weirs and reduce oxygen transfer efficiency. The silicone emulsion is introduced as a dilute aqueous stream at 1–5 ppm into the mixed liquor at the clarifier feed channel or into return activated sludge piping, where turbulence is adequate for distribution but not severe enough to shear the silicone droplets. Foam control in biological systems does not remove the underlying cause of hydrophobic cell-wall filaments such as Nocardia or Microthrix parvicella; the emulsion suppresses gas-stabilised surface foam but cannot remove the filamentous bacteria. At mean cell residence time above 15 days, bound extracellular polymeric substances may exceed 800 mg/L protein and consume the active silicone more rapidly, requiring an increase within the dosing range. Effluent foam height is monitored in a 1 L sparged column with 1.5 L/min air flow and mixed-liquor suspended solids of 3–5 g/L; a height reduction of 60–80% within 2 min is used as a plant-specific operational target. Overdosing above 10 ppm can produce a visible surface film on clarifier launder walls and reduce UV disinfection transmittance measured at 254 nm; therefore continuous UV reactor intensity should be logged during the initial trial.
| Downstream segment | Typical use concentration | Critical process condition | Test designation |
|---|---|---|---|
| Continuous tunnel washer | 0.01–0.05 mL/L bath | pH 11.5–12.5, 60–80°C | ASTM D1173 sparging cylinder |
| Polyester jet dyeing | 0.05–0.2 g/L | venturi shear, 130°C | dynamic foam cell 0.5 L/min |
| Activated sludge basin | 1–5 ppm | MLSS 3–5 g/L, MCRT >15 d | sparged column 1.5 L/min |
| Open recirculating cooling | 0.5–3 ppm active | local free halogen >10 ppm | ASTM D1173 adapted, 30–40°C |
Open recirculating cooling loops with phosphate-based corrosion inhibitors and bromine-based oxidizing biocides generate foam at tower hot returns when nonionic surfactant contaminants exceed 2–5 ppm. In these systems SILFOAM SE 39 is dosed at 0.5–3 ppm active silicone into the tower basin near the return inlet; circulation rates of 2000–5000 m³/h provide rapid distribution but also expose the emulsion to continuous pump shear and air-water contact. The long-lasting property must survive a half-life of 24–48 h to match biocide slug dosing; otherwise foam rebounds between biocide applications. Foam collapse is verified in a static air-sparging cylinder following ASTM D1173, modified to use actual circulating water at 30–40°C. The emulsion remains hydrolytically stable between pH 6 and pH 10; however, continuous exposure to local oxidizer feed concentrations above 10 ppm free halogen can convert silicone droplets to silica gel microparticles and reduce deaeration efficiency. The product treats the surface tension gradient but does not remove the surfactant contamination; the source must be controlled by blowdown, makeup water quality, or activated carbon side-stream treatment. A plant trial in a cooling tower with a basin volume of 500 m³ and a turnover time of 20–30 min is used to confirm that the antifoam does not accumulate in the vapor space or impair drift eliminator performance.
Hot caustic bottle washing machines for returnable glass and polycarbonate containers operate with 2–3% NaOH at 75–85°C, and the combination of caustic-stable surfactants, label adhesive residues, and high-pressure spray nozzles produces foam in recirculation tanks. SILFOAM SE 39 is metered into the caustic bath or pre-rinse tank at 0.005–0.02% v/v; the high alkalinity accelerates foam-breaking because the emulsion spreads rapidly on aqueous films containing dissolved organic soil. The emulsion should not be mixed with concentrated 50% NaOH before dilution, since osmotic shock and low water activity can destabilize the carrier and produce a cream layer. In CIP systems for food processing, dosing is triggered by conductivity or optical foam sensors in the return line; defoamer injection is set to maintain foam height below the top of the return pipe because carryover into the spray ball assembly can reduce cleaning impingement pressure. The use level is limited to 0.02% because residual silicone on food-contact surfaces may conflict with subsequent detection of surface wetting during rinse verification or with adhesion of labels and shrink sleeves. Foam reduction in the wash tank is measured with a rotor-based foam probe at 80°C; the recorded collapse time for a 25 mm foam layer is typically kept under 30 s to prevent overflow during high-speed bottle transfer.
Styrene-acrylic and all-acrylic latex batches after emulsion polymerization retain entrained air and unreacted monomers during vacuum stripping at 45–55°C and reduced pressure of 200–400 mbar. Foam generated in the stripping vessel and monomer recovery condenser extends batch cycle time and can contaminate the recovered monomer stream. SILFOAM SE 39 is added at 0.05–0.3 wt% of wet latex after the polymerization inhibitor has been introduced, and the vessel stirrer is run at 150–250 rpm for 15–20 min. Rotor-stator addition is avoided because high shear fragments the silicone droplets and reduces the long-lasting antifoam reservoir needed during the vacuum ramp. In architectural coating latices, residual silicone above 0.05 wt% on solids can cause cratering and recoatability defects; therefore addition below 0.1 wt% is specified for products intended for paints and pigmented coatings. Pressure-sensitive adhesive applications require a separate jar test at 50°C with 24 h aging because even low surface activity can alter peel adhesion values measured by ASTM D3330 or ISO 29862. Compatibility with associative thickeners is assessed by low-shear viscosity at 0.1 s⁻¹ after storage at 40°C for 7 days; visible phase separation indicates incompatibility with the protective-colloid or emulsifier package and requires reformulation.
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SILFOAM SE 39 is supplied as a water-dilutable, milky-white silicone antifoam emulsion with a stated active silicone content of 20 % by mass. The product is formulated for aqueous industrial systems in which rapid foam knockdown must be followed by sustained foam control during recirculation, pumping, and spray operations. Unlike a 100 % active compounded silicone oil, the emulsion can be metered directly into a process stream without a separate pre-mix vessel. The long-lasting designation refers to persistence of foam suppression after the initial collapse event, not merely to instantaneous foam-breaking rate. Manufacturer documentation positions the emulsion for detergent manufacturing, industrial cleaning, paper-machine white-water treatment, and selected metalworking-fluid applications where excessive foam reduces pump efficiency and process throughput.
Because the material is an oil-in-water emulsion, its behavior in any given bath is governed by droplet survival before the silicone reaches the air–liquid interface. Shear forces, pH shifts, and electrolyte concentration can destabilize the emulsion in the bulk and produce visible oiling-out without useful foam control. For this reason, the phrase long-lasting should be interpreted as an application-specific property that depends on dosing location, bath chemistry, and mechanical energy input.
The standard delivery form is a pourable aqueous dispersion. The active fraction consists of silicone fluid plus dispersed hydrophobic solids that act as the foam-film rupture point; the continuous phase is water. Representative specification values provided in supplier technical documentation are shown in Table 1. These values are indicative ranges and must be confirmed against the batch certificate, because emulsion pH, density, and viscosity may shift within the stated storage window.
| Parameter | Representative range | Test basis |
|---|---|---|
| Active silicone content | 20 % w/w | manufacturer data sheet |
| pH as supplied | 6.0–8.5 | ISO 4316 |
| Density at 20 °C | 0.98–1.02 g/cm³ | ISO 2811-1 |
| Storage temperature | 5–30 °C | supplier storage guidance |
| Shelf life in unopened containers | commonly 12 months | batch certificate |
Storage outside 5–30 °C is a principal cause of field failure. Freeze-thaw cycles create ice crystals that perforate emulsion droplets and produce irreversible oil separation; partially frozen material should not be rehomogenized without supplier instruction. Prolonged storage above 30 °C can accelerate creaming, and microbial growth is possible in diluted aqueous systems if the drum is re-opened repeatedly. The product should be mixed gently before use with a low-shear paddle or drum roller. High-shear recirculation through a rotor-stator at this stage can damage droplets before the product is transferred to the point of use.
Emulsion droplet size and the hydrophobic solids content define the mechanism. The silicone droplets act as reservoirs for interfacial delivery; the hydrophobic silica particles act as film-breaking entities. If the droplet size distribution is broad, smaller droplets may migrate slowly into the lamellae and provide delayed foam knockdown; larger droplets can cream and deliver immediate collapse but may be consumed rapidly. Supplier literature describes controlled droplet sizing for prolonged foam depression, but independent droplet-size distribution data for this specific formulation are not part of public technical documentation. The user should therefore evaluate foam control empirically with repeated foam-generation tests rather than infer persistence solely from particle-size measurements.
The apparent active content of a delivered emulsion can be checked gravimetrically by drying a sample at 105 °C to constant mass, but the result may include non-volatile emulsifier and salt, so it is an apparent solids content rather than a true silicone content. Supplier certificates of analysis commonly report batch-specific active matter content determined by a silicone-specific method. If incoming quality control is required, the test method should be agreed with the supplier; ISO 3251 alone is not selective for silicone.
In industrial detergent compounding, the preferred addition point is downstream of neutralization and cooling, where the bath temperature has fallen below 40 °C and the pH has been adjusted into the product’s alkaline-stable range. Introduction into a hot caustic neutralization vessel can cause rapid demulsification at the air–liquid interface and generate an oily ring at the vessel wall. Production-scale mixer experience in a 2,000 L stirred vessel with a hydrofoil impeller at 60 rpm shows that a 10 min mixing period after addition is generally sufficient to distribute the emulsion without excessive shear. If a venturi eductor is used, dilution water should be taken from the process stream rather than from untreated hard water, because high hardness can interfere with the emulsifier system and produce visible scum. The dosage in detergent processing typically begins at 0.05–0.3 % by mass of the finished formula; foam knockdown and rebuild are then evaluated under DIN EN 12728 or ASTM E2407.
Emulsion breakage prior to interfacial contact usually occurs when the dispersed droplets are exposed to pH extremes, high electrolyte loads, or intense mechanical shear. Acidic media below pH 4 can protonate the nonionic or anionic emulsifier layer and reduce electrostatic or steric repulsion. Alkaline media above pH 10 can hydrolyze or salt out the stabilizer system over time. These limits are not intrinsic to the silicone active itself; they are stability limits of the emulsion delivery system. The thermal stability of polydimethylsiloxane is therefore not a sufficient indicator of delivered-emulsion stability. The emulsion may fail even though the silicone phase remains chemically intact. Electrolyte concentration above approximately 50 g/L sodium chloride in the continuous phase can compress the electrical double layer around droplets and accelerate creaming; however, published data for this specific emulsion under compressed double-layer conditions are limited, and compatibility should be determined in the target bath using a 1 L graduated-cylinder creaming test over 24 h.
If the dosing point is placed upstream of a centrifugal pump with an impeller tip speed above 15 m/s, the emulsion may be exposed to shear rates that reduce droplet size, initially suppressing foam control because the resulting fine droplets are too small to break foam films efficiently and too slow to reach the interface. In clean-in-place circuits operating at 70–85 °C and line velocities of 2.0–3.5 m/s, repeated passage through spray balls, heat exchangers, and return lines can gradually strip the emulsifier from the droplet surface. The observed field failure mode is accumulated silicone deposit in low-velocity zones such as tank walls or spray-nozzle shadows, accompanied by foam breakthrough in the main vessel. Long-lasting behavior is therefore best maintained by injecting the emulsion downstream of the main pump through a quill or in the return line, using a peristaltic or eccentric-screw metering pump with wetted materials of EPDM or PTFE. A dosing rate of 0.1–0.5 % of recirculating bath volume is typical for CIP detergent systems, but foam build-up on level probes or in vacuum breakers should be the controlling indicator.
Paper-machine white-water circuits impose a different constraint: the emulsion must remain effective in the presence of high dissolved and suspended solids, cationic wet-strength resins, and anionic trash. Foam persists primarily in the wire pit and saveall; excessive defoamer dosage can reduce sheet sizing and form deposits on forming fabrics. When SILFOAM SE 39 is added to paper-machine white water, the initial screening dose is usually 1–10 mL/min per tonne of dry fiber, adjusted to maintain foam height below the wire-pit overflow. In municipal wastewater aeration basins, the same emulsion can be applied as a dilute solution at 1–5 ppm active silicone relative to aeration basin volume; however, local permit limits on oil and grease and total petroleum hydrocarbons must be checked because silicone emulsion can contribute to hexane-extractable material measured under EPA 1664A. Published independent data for this specific product in activated-sludge foaming are limited; jar-scale foam-potential tests and pilot trials are required before full-scale dosing.
Table 2 summarizes broad formulation-class differences between SILFOAM SE 39, a dilute 10 % active silicone emulsion, a 100 % active compounded silicone oil, and a mineral-oil defoamer. The comparison is based on delivery properties rather than application-specific antifoam efficacy, because foam inhibition in a given system is dominated by surfactant type, substrate, temperature, and mechanical energy. The 20 % active content is a mid-solids choice: it provides roughly twice the active silicone per unit wet mass as a 10 % emulsion while retaining direct water dilutability. This reduces storage volume and freight mass for an equivalent active dose. Higher-solids emulsions can be used where freight reduction is critical, but they often display higher viscosity, and their stability margin against creaming can narrow. A 100 % active silicone compound contains no water and may have excellent long-term persistence after efficient dispersion, but it is not suitable for direct injection into aqueous systems without pre-emulsification.
| Property | SILFOAM SE 39 | 10 % active silicone emulsion | 100 % active silicone compound | Mineral-oil defoamer |
|---|---|---|---|---|
| Active content | 20 % | 10 % | 100 % | 100 % organic |
| Water dilutability | direct | direct | requires pre-emulsification | usually hydrophobic |
| Dosing form | pumpable emulsion | pumpable emulsion | viscous oil; injected with solvent or pre-diluted | viscous oil or emulsion |
| Foam control persistence | stated long-lasting by supplier | lower active reservoir per unit mass | high but dispersion-dependent | system-dependent |
| Typical risk | creaming under extreme pH or shear | higher dosage and water load | local accumulation and surface deposition | reduced high-temperature efficiency in surfactant systems |
Compared with mineral-oil or polyalkylene glycol defoamers, the silicone active in SILFOAM SE 39 has a low surface tension, typically in the range of 20–22 mN/m at 25 °C when measured on the active silicone fluid under laboratory conditions. This low surface tension allows spreading at low concentrations, but it also increases the risk of silicone deposition if overdosed. The product does not contain vegetable oils and should not be assumed to have food-contact approval; direct and indirect food-contact status must be verified with the supplier’s regulatory certificate against the relevant legislation, such as the applicable 21 CFR sections for the end use.
In metalworking fluid sumps, the emulsion is typically dosed as a dilute premix at 0.05–0.2 % by volume of the working fluid. Machine sump experience shows that foam is most severe during high-pressure through-tool coolant delivery above 10 bar; defoamer added to the central system should be injected after the coolant filter and before the distribution header to reduce shear exposure. Tramp oil contamination can preferentially consume the defoamer, leading to rapid foam rebound even when the initial dosage was correct. If foam rebound occurs within 2–4 h under constant coolant circulation, the first corrective action should be to measure tramp oil concentration and check coolant pH rather than to increase defoamer dosage. Undispersed silicone accumulation on machine tool windows and probes is an indication that the emulsion is being added too rapidly, at too low a dilution ratio, or into a low-temperature coolant below 10 °C, where coalescence is slowed and local separation may appear.