| HS Code | |
| Iupacname | Butan-2-one |
| Commonname | Methyl ethyl ketone |
| Casregistrynumber | 78-93-3 |
| Ecnumber | 201-159-0 |
| Molecularformula | C4H8O |
| Molarmass | 72.11 g/mol |
| Appearance | Colorless liquid |
| Odor | Sweet, pungent, acetone-like |
| Density | 0.805 g/cm³ at 20 °C |
| Meltingpoint | -86.6 °C |
| Boilingpoint | 79.6 °C |
| Flashpoint | -9 °C closed cup |
| Autoignitiontemperature | 404 °C |
| Solubilityinwater | 27.5 g/100 mL at 20 °C |
| Vaporpressure | 78 mmHg at 20 °C |
| Viscosity | 0.43 mPa·s at 20 °C |
| Refractiveindex | 1.3788 at 20 °C |
| Logp | 0.29 |
| Vapordensity | 2.49 (air = 1) |
| Explosivelimits | 1.4–11.4 vol% in air |
As an accredited 2-Butanone factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | 2-Butanone packaged in a 1 L amber glass bottle with secure, flame-resistant cap and hazardous goods labeling for safe storage and transport. |
| Container Loading (20′ FCL) | 20′ FCL loaded with 2-Butanone (UN 1193, Class 3 flammable liquid), securely stowed in approved packaging with proper segregation and documentation. |
| Shipping | 2-Butanone (methyl ethyl ketone) ships as UN1193, Proper Shipping Name: 2-Butanone, Hazard Class 3, Packing Group II, a flammable liquid. It has a flash point of -6°C. Use UN-rated packaging, Class 3 labels, and comply with 49 CFR, IMDG, IATA, and ADR. Store away from ignition sources, oxidizers, and heat. |
| Storage | Store 2-butanone in a cool, dry, well-ventilated, fireproof area away from heat, sparks, flames, and strong oxidizers. Keep containers tightly closed, labeled, and electrically grounded/bonded during transfer. Use approved flammable-liquid cabinets or storage rooms. Protect from sunlight and static discharge; avoid inhalation and ignition sources. Store only in original or compatible containers. Follow local fire-code and SDS requirements. |
| Shelf Life | 2-Butanone is stable under recommended storage; sealed, cool, dry, away from ignition, it typically has about a two-year shelf life. |
In PVC and CPVC pipe-joining operations, 2-butanone functions as the primary carrier solvent in solvent cements, dissolving suspension-grade vinyl resin with K-value 55–65 while controlling final viscosity in the range 500–3,000 mPa·s as measured by ASTM D1084-20. Joint compounds must meet ASTM D2564-20 for PVC solvent cements, ASTM F493-20 for CPVC solvent cements, ASTM D2855-20 for installation practice, and NSF/ANSI/CAN 61: 2023 extraction criteria for potable water contact. Typical 2-butanone input in regular-bodied PVC cement lies between 35 wt% and 60 wt%, with heavy-bodied grades at the lower end and low-viscosity applicator grades at the upper end; CPVC cement formulations commonly use 30–50 wt% 2-butanone. Manufacturing occurs in jacketed stainless steel vessels with spark-resistant Cowles dissolvers, nitrogen inerting to maintain vapor concentration below 25% of lower explosive limit, jacket temperatures held below 30 °C to reduce volatile loss, and batch filtration through 80–150 µm bag filters before filling. Workers apply the cement by dauber or brush after square-cut chamfering and dry-fit inspection; fusion develops as 2-butanone and co-solvents soften the pipe surface to a depth of 0.1–0.3 mm, followed by interference-fit assembly and set time of 10–60 min depending on diameter and ambient temperature. The terminal products are pipe and fitting assemblies in potable water, drain-waste-vent, chemical drainage, and electrical conduit systems. The critical process boundary is that joint assembly below 5 °C retards solvent release and can entrain solvent pockets that reduce hydrostatic burst pressure, so cold-weather installation requires a heavier solvent balance and extended cure before pressure testing.
During ambient-cure polyurethane topcoat manufacture, 2-butanone is introduced at the letdown stage after pigment dispersion, typically at 12–25 wt% of the total coating formulation and comprising 25–50 wt% of the active solvent package. The ketone’s boiling point of 79.6 °C and relative evaporation rate of 3.8 with n-butyl acetate as 1.0 provide a balance between sag resistance and leveling in low-humidity spray booths. The solvent-loaded coating is applied with HVLP spray equipment using nozzle sizes 1.2–1.4 mm and air cap pressures 0.7–1.0 bar in downdraft booths with air velocity 0.3–0.5 m/s; flash-off between coats is 5–15 min at 20–25 °C. The U.S. federal volatile organic compound limits for automobile refinish coatings under 40 CFR 59.100 Subpart B require reformulation with exempt solvents when 2-butanone is used above the 25 wt% threshold because the ketone is a VOC under the U.S. Clean Air Act. Cure completeness is evaluated by ASTM D5402-19 solvent double-rub using 2-butanone; a coating that withstands 50 double rubs without fiber transfer or breakthrough is considered sufficiently crosslinked for sanding and masking. The terminal products are automotive basecoat/clearcoat systems, industrial machinery enamels, rail-car two-component polyurethane coatings, and polyurethane maintenance finishes for aerospace ground support equipment. The operational limitation is that increasing 2-butanone above 25 wt% depresses flash point toward -9 °C, requiring explosion-proof dispensing and nitrogen-blanketed storage, while moisture ingress into the hardener component during spray application can generate carbon dioxide bubbles and reduce the crosslink density of the isocyanate-polyol matrix.
Within solvent-based flexographic and gravure packaging-ink formulations, 2-butanone is selected for high solvency toward nitrocellulose, polyurethane, and vinyl chloride-vinyl acetate binders while providing viscosity reduction to 18–25 s Zahn Cup #2 at 25 °C. The liquid ink as supplied typically contains 30–65 wt% 2-butanone, with gravure inks at the higher end to allow cylinder cell release at low surface tension. Compliance is governed by EC 1935/2004 for food-contact materials, EC 2023/2006 for good manufacturing practice in food-packaging inks, and the EuPIA GMP exclusion list for solvent residues. Ink manufacture passes through a high-speed disperser at 15–20 m/s tip speed, followed by horizontal bead milling using 0.6–0.8 mm yttria-stabilized zirconia media to a grind gauge reading below 10 µm; viscosity adjustment with 2-butanone occurs during letdown. During printing, multi-zone drying hoods at 50–80 °C with air impingement velocity 15–25 m/s strip the solvent from the printed web, and residual 2-butanone is monitored by headspace gas chromatography according to ISO 11890-2:2020 where applicable to coatings and inks. The terminal products are surface-printed and laminated flexible packaging structures, including snack wraps, confectionery flow-pack film, retort lidding, and shrink sleeves. The process boundary is that retained 2-butanone above the limits established by the converter’s odour and taint panel can reduce heat-seal strength and delay slitting, so residence time in the drying tunnel must be extended for line speeds above 250 m/min or for film substrates with high solvent retention such as polyethylene terephthalate.
Cold-immersion degreasing and brush-grade paint strippers formulated without chlorinated solvents commonly select 2-butanone for its rapid penetration into alkyd, epoxy, and oil-based films, with formulation addition levels of 30–70 wt% depending on whether paraffin wax evaporation barriers or co-solvents such as dimethyl sulfoxide are present. The grade must conform to ASTM D740-20 for methyl ethyl ketone, and in-plant storage is governed by NFPA 30 and OSHA 29 CFR 1910.106 because 2-butanone is a Class IB flammable liquid with a closed-cup flash point of -9 °C and lower explosive limit of 1.8 vol%. Dip tanks and mixing vessels replace methylene chloride-compatible EPDM seals with PTFE or stainless steel components because 2-butanone swells EPDM and attacks many elastomeric gaskets. Paint-stripping tanks are operated with air-motor agitation at 50–100 rpm and liquid temperature held below 25 °C to keep vapor concentration below 25% of the lower explosive limit, equivalent to 0.45 vol%; continuous LEL monitors interlock with forced ventilation at 10–15 air changes per hour. The immersion cycle for coating removal is 10–30 min, followed by water rinse to take advantage of the ketone’s substantial water solubility and prevent redeposition of stripped binder. The terminal products are repainted metal furniture, automotive parts, aircraft component stripping, and architectural hardware restoration. The replacement boundary is that 2-butanone is a volatile organic compound and is not a drop-in substitute for methylene chloride in enclosed batch vapor degreasing because air permits impose VOC loading limits, and published data for this specific configuration is limited when chlorinated-solvent emission credits are part of the permit baseline.
Dry-process and semi-wet polyurethane synthetic leather lines use 2-butanone as a diluent in one-component polyurethane coating and tie-coat layers, not as the primary coagulant in wet-process impregnation, where dimethylformamide remains dominant. The addition level in the solvent-borne PU lacquer or adhesive is 20–50 wt%, adjusted so that rotational viscometer viscosity using a Brookfield RVT spindle 4 at 20 rpm falls between 1,000 mPa·s and 2,500 mPa·s for knife-over-roll coating. Production employs knife-over-roll gap settings of 0.2–1.0 mm on release paper or fabric substrates, with line speeds 8–25 m/min and multi-zone drying air heated from 80 °C to 140 °C at impingement velocities 10–20 m/s. Compliance for exported synthetic leather includes REACH registration for the solvent, ZDHC MRSL 3.1 guidance for leather and textile finishing, OEKO-TEX Standard 100 Annex 4 limits for solvent residues, and brand-specific volatile organic compound limits for automotive interior components. The terminal products are automotive seating covers, headliner facings, footwear uppers, luggage shells, and upholstery. The process boundary is that 2-butanone is incompatible with aqueous polyurethane dispersions, causing phase separation and gelation when added above 5 wt%; solvent-borne tie-coat and dry-process lines are therefore used, and residual solvent in finished sheet is monitored by headspace GC/MS to meet brand-specific volatile organic content declarations.
Rubber-to-metal and thermoplastic polyurethane bonding processes employ 2-butanone in primer systems at 60–80 wt% of the solvent package to swell the substrate surface and deposit a thin chlorinated polyolefin or phenolic resin film for subsequent adhesive wetting. The primer is applied by air-assisted spray with fluid pressure 0.7–1.0 bar and atomizing air pressure 2.0–2.5 bar, followed by flash-off at 23 ± 2 °C and 50 ± 10% RH for 5–10 min before application of the adhesive topcoat. Standards for bonded assemblies include ASTM D429-20 Method B for adhesion of rubber to rigid substrates and ASTM D413-20 for peel adhesion. The terminal products are anti-vibration mounts, conveyor belt splices, window sealing profiles, and marine fender components. The process limitation is that solvent entrapment can occur when the dry primer film exceeds 8 µm; published data for this specific configuration is limited, but standard laboratory practice requires a solvent-free tack stage before topcoat application, and alcohols must be excluded from the primer because they precipitate chlorinated polyolefin resin. Incoming solvent is controlled for water content below 0.1 wt% because higher moisture produces hazing and reduces the critical surface tension of the primed film.
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2-Butanone (methyl ethyl ketone, MEK), CAS 78-93-3, is a four-carbon linear ketone supplied as a fast-evaporating industrial solvent for coatings, inks, adhesives, chemical intermediates, and cleaning operations. Commercial grade designations are commonly aligned with the two classes of ASTM D740: Type I general-purpose solvent and Type II urethane-grade material. Additional high-purity and electronic-grade variants are distributed under supplier-specific names such as “MEK standard,” “MEK urethane grade,” and “MEK high purity,” but those materials are usually defined by the same gas chromatography, water, acidity, and nonvolatile-residue methods. Because no universal model-number system exists across producers, the ASTM D740 type designation is the most consistent basis for specification comparison. The molecular formula is C4H8O, molecular weight 72.11 g/mol, normal boiling point 79.6 °C at 101.3 kPa, closed-cup flash point -9 °C, density 0.805 g/cm³ at 20 °C, refractive index 1.3788 at 20 °C, and autoignition temperature near 404 °C. The vapour pressure at 20 °C is approximately 9.5 kPa. The solvent has a water solubility of approximately 27.5 g/100 mL at 20 °C and is fully miscible with most common organic solvents. The lower and upper explosive limits in air are approximately 1.8 vol% and 11.5 vol%, respectively.
The critical division is residual water. In two-component polyurethane systems, water reacts with isocyanate to form carbamic acid, which decomposes to an amine and carbon dioxide; the amine then reacts with a second isocyanate equivalent. This means 1 mol of water can consume 2 mol of isocyanate functionality while releasing gas, producing microfoam, viscosity drift, and reduced crosslink density. ASTM D740 Type II therefore limits water to 0.05 wt% by ASTM D1364, while Type I permits 0.10 wt%. Acidity is controlled at 0.005 wt% as acetic acid by ASTM D1613 to avoid interference with tin and amine catalysts. The distillation range by ASTM D1078 is normally 79.0–80.5 °C; a wider interval suggests contamination by higher-boiling aldol products or retained feedstock. Nonvolatile residue is limited to 0.002 g/100 mL by ASTM D1353 to prevent surface defects in clear packaging coatings, and color is limited to 10 Pt-Co maximum by ASTM D1209. Table 1 lists the common commercial acceptance limits for the two types.
| Property | Test method | ASTM D740 Type I | ASTM D740 Type II |
|---|---|---|---|
| Purity by GC | ASTM D2804 | 99.5 wt% min | 99.5 wt% min |
| Water | ASTM D1364 | 0.10 wt% max | 0.05 wt% max |
| Acidity as acetic acid | ASTM D1613 | 0.005 wt% max | 0.005 wt% max |
| Distillation range at 101.3 kPa | ASTM D1078 | 79.0–80.5 °C | 79.0–80.5 °C |
| Nonvolatile residue | ASTM D1353 | 0.002 g/100 mL max | 0.002 g/100 mL max |
| Color | ASTM D1209 | 10 Pt-Co max | 10 Pt-Co max |
| Specific gravity at 20/20 °C | ASTM D4052 | 0.805–0.809 | 0.805–0.809 |
In high-solids polyurethane topcoats for metal finishing, 2-butanone is introduced during let-down after the pigment grind phase. The equipment is typically a jacketed stainless steel vessel with a variable-speed disperser, gear pump transfer, and nitrogen-blanketed storage because the closed-cup flash point of -9 °C places the material in flammable liquid category 2 under CLP. The pigment grind phase is often performed in a 37 kW Cowles-type disperser with a tip speed near 1.0 m/s; 2-butanone is not the primary grind solvent because its low flash point increases vapour loading in the mill room. Addition at 5–10 wt% of total formula reduces spray viscosity measured by ISO 2431 or ASTM D1200 without the severe evaporative cooling produced by acetone. Lines that use electrostatic application require conductivity adjustment because 2-butanone has only moderate polar conductivity and does not by itself bring resistivity into the 0.5–5 Mohm·cm range required by many automatic guns. The main processing limitation is water ingress in humid air: a bulk transfer system without nitrogen blanketing can drift above the 0.05 wt% Type II water limit within one working shift when relative humidity exceeds 60%.
2-Butanone has approximate Hansen solubility parameters of 16.0 MPa^0.5 dispersion, 9.0 MPa^0.5 polar, and 5.1 MPa^0.5 hydrogen bonding. This places it between acetone and ethyl acetate in polar interaction, while its boiling point is 23.4 °C higher than acetone and 2.5 °C higher than ethyl acetate. In vinyl chloride-vinyl acetate copolymers and thermoplastic polyurethanes, 2-butanone provides more stable open viscosity than acetone at equal resin solids because its lower vapour pressure slows loss from the surface of open viscosity cups. Compared with methyl isobutyl ketone, 2-butanone evaporates faster and is less suited to long-flowout baking systems, but it gives lower solution viscosity and faster tack-free time in air-drying urethane coatings. The following table summarises selected differences among 2-butanone and common alternative solvents.
| Property | 2-Butanone | Acetone | Ethyl acetate | MIBK | Toluene |
|---|---|---|---|---|---|
| Boiling point at 101.3 kPa | 79.6 °C | 56.2 °C | 77.1 °C | 116.2 °C | 110.6 °C |
| Closed-cup flash point | -9 °C | -18 °C | -4 °C | 14 °C | 4 °C |
| Vapour pressure at 20 °C | 9.5 kPa | 24.7 kPa | 10.1 kPa | 2.0 kPa | 2.9 kPa |
| Water solubility at 20 °C | 27.5 g/100 mL | miscible | 8.7 g/100 mL | 1.9 g/100 mL | 0.05 g/100 mL |
| Hansen polar parameter | 9.0 MPa^0.5 | 10.4 MPa^0.5 | 5.3 MPa^0.5 | 6.1 MPa^0.5 | 1.4 MPa^0.5 |
In industrial cleaning of polyurethane dispensing heads and gravure cylinders, 2-butanone removes uncured isocyanate residues without the aromatic toxicity profile of toluene. The lower vapour pressure compared with acetone reduces evaporative cooling that can freeze residual moisture on chilled roll surfaces. Cleaning tunnels and stations must use explosion-proof motors, bonded and earthed piping, and continuous LEL monitoring. The lower explosive limit in air is approximately 1.8 vol%; ventilation practice under EN 60079-10-1 normally maintains headspace concentrations below 25% of that value. Under the CLP regulation, 2-butanone is classified as Flam. Liq. 2, Eye Irrit. 2, STOT SE 3 with hazard statements H225, H319, and H336. 2-Butanone should not be stored over solid potassium hydroxide or other strong bases because alkali-catalysed aldol condensation can form higher-boiling ketols and generate water. The solvent is also incompatible with strong oxidizers and chlorinating agents. Seals, gaskets, and sight glasses made from polycarbonate, poly(methyl methacrylate), or ethylene-propylene-diene terpolymer swell or craze in ketone service and are replaced with fluorinated or high-density polyethylene components.
Substitution of ethyl acetate by 2-butanone is not a direct volume-for-volume replacement in flexographic ink. At equal addition, 2-butanone has a slightly lower vapour pressure and a boiling point 2.5 °C higher than ethyl acetate; this can increase retained solvent in high-speed drying tunnels. On a production line operating above 150 m/min with a final oven zone at 65 °C, retained solvent measured by gas chromatography can rise when 2-butanone is used at the same volume addition as ethyl acetate. Published data for this specific configuration is limited, but the direction of change is consistent with the lower vapour pressure. The usual corrective action is to reduce 2-butanone addition by 5–8 vol% or increase the final zone temperature by 5 °C. In gravure cylinder cleaning, 2-butanone provides faster removal of dried polyurethane ink film than ethyl acetate; however, both solvents fall into flammable liquid categories requiring explosion-proof equipment, so the lower flash point of ethyl acetate is not the primary selection difference.
In two-component acrylic urethane refinish clearcoats, the hardener side often contains an aliphatic polyisocyanate supplied at 70–90 wt% solids in a blend of butyl acetate and 2-butanone. The use of 2-butanone instead of acetone reduces evaporation from the mixing cup during manual mixing and limits evaporative cooling that can draw moisture onto the wet film. If the addition exceeds 10 wt% of total formula, drying may accelerate but hardness development can be retarded when residual solvent is trapped under high humidity. Spray operators must monitor dew point; if substrate temperature falls below dew point, condensation on the wet film can cause blushing because water is taken up by the hygroscopic ketone. This is a field-observed failure mode in refinish booths where air movement is intermittent and the substrate enters from an unconditioned staging area.
In chemical processing, 2-butanone is used as an intermediate for methyl ethyl ketoxime, methyl ethyl ketone peroxide, and selected condensation products. Methyl ethyl ketone peroxide is produced under controlled oxidation; the concentration of 2-butanone in the reaction mixture is monitored because the peroxide product is thermally sensitive and shock-sensitive in concentrated form. For that reason, 2-butanone should not be exposed to peroxide-forming conditions or distilled to dryness without peroxide analysis. Bulk storage tanks are usually carbon steel or stainless steel. High-density polyethylene is acceptable for short-term transfers, but many elastomers and plastics such as polycarbonate and poly(methyl methacrylate) are attacked. Copper and aluminium alloys are generally avoided where water is present because of corrosion and catalytic degradation.
Bulk 2-butanone may pass the ASTM D1078 distillation range on a laboratory sample and still exceed the Type II water limit after transfer through humid headspace or into a tank that contains residual water. The solubility of water in 2-butanone is high enough that atmospheric moisture is readily absorbed, and dissolved water is not reliably detected by distillation range because low-concentration water co-distils or shifts the front end only slightly. Polyurethane manufacturers receiving Type II solvent therefore verify water content at the point of use by ASTM D1364 or Karl Fischer method rather than relying solely on the certificate of analysis. In a half-filled storage tank at 30 °C and 70% relative humidity, the measured water content can rise by 0.01–0.02 wt% over 8 h; the exact uptake depends on agitation, headspace exchange, and the water content of the incoming transfer lines. This operational drift is not detectable by visual clarity or odour assessment and is a central reason that polyurethane-grade MEK is specified on water content rather than distillation range alone.
In polychloroprene contact adhesives, 2-butanone is blended with toluene, ethyl acetate, and aliphatic hydrocarbon fractions to control green tack, open time, and stringiness. Toluene-rich blends have high aromatic solvency but introduce reproductive toxicity labelling and a boiling point of 110.6 °C that lengthens dry time. Replacement of part of the toluene by 2-butanone lowers aromatic content and shortens open time because the ketone evaporates faster. Viscosity measurements by ASTM D2196 or ISO 3219 must be made on the final blend rather than on individual solvents because solvent-solvent interactions affect chloroprene polymer solvation. Transfer lines calibrated for toluene may under-dispense 2-butanone by approximately 2–3 vol% unless mass-flow or Coriolis metering is used, because the two solvents differ in density and viscosity. Adhesive manufacturers that use 2-butanone in solvent-borne formulations must verify that all gaskets, pump diaphragms, and hose liners are constructed of fluorinated or high-density polyethylene materials rather than ethylene-propylene-diene terpolymer, which swells severely in ketones. Under FDA 21 CFR 175.105, 2-butanone may be used as a component of food-contact adhesives only where the finished adhesive is separated from food by a functional barrier; compliance is formulation-specific and requires end-use migration testing.