| Код ТН ВЭД | |
| НазваниеПродукта | Метилизобутилкетон |
| Химическое имя | 4-метил-2-пентанон |
| синонимы | МИБК; гексон; Изопропилацетон; 4-метилпентан-2-он |
| Номер кассы | 108-10-1 |
| Номер Ecn | 203-550-1 |
| Номер ООН | 1245 |
| Молекулярная формула | C6H12O |
| Молекулярный вес | 100,16 г/моль |
| внешность | Бесцветная жидкость |
| запах | Приятный, камфороподобный, кетонический запах |
| Бойлингпойнт | 116,5 ° C (241,7 ° F) |
| Точка плавления | -84,7 ° C (-120,5 ° F) |
| плотность | 0,802 г/см³ при 20 °C |
| растворимость | Слабо растворим в воде; смешивается с большинством органических растворителей. |
| Flashpoint | 14 °C (57,2 °F) закрытая чашка |
| Температура самовоспламенения | 449 ° C (840 ° F) |
| Давление пара | 16 мм рт. ст. при 20 °C |
| Плотность пара | 3,45 (воздух = 1) |
| вязкость | 0,585 мПа·с при 20 °C |
| Рефракционный индекс | 1,396 при 20 ° C |
| Взрывные границы | 1,2–8,0 vol% в воздухе |
| ЛогП | 1,31 |
Как аккредитованный завод по производству Метилизобутилкетона, мы соблюдаем строгие протоколы качества — каждая партия проходит тщательное тестирование для обеспечения постоянных стандартов эффективности и безопасности.
| Упаковка | Метил-изобутил-кетон поставляется в 200-литровых стальных барабанах № ООН 1245, воспламеняемой жидкости, надлежащим образом помеченной опасностью. |
| Погрузка контейнера (20-футовый контейнер) | Контейнерная загрузка: метил-изобутил-кетон (МИБК), UN1245, легковоспламеняемая жидкость класса 3, в барабанах FCL длиной 20′, надлежащим образом закрепленных для морской перевозки. |
| Доставка | Метилизобутил-кетон поставляется в качестве воспламеняемой жидкости UN1245, класс 3, группа упаковки II. Используйте одобренные ООН стальные барабаны или разрешенную упаковку с надлежащими этикетками, плакатами и транспортными бумагами. Держите подальше от жары, искр и открытого пламени; обеспечить вентиляцию и соответствовать правилам DOT, IATA и IMDG. |
| Хранение | Храните метил-изобутил-кетон в плотно закрытых, маркированных контейнерах в прохладном, сухом, хорошо вентилируемом, огнестойком районе вдали от тепла, искр, открытого пламени и прямого солнечного света. Держите отдельно от окислителей, кислот и оснований. Используйте заземленные, утвержденные шкафы для воспламеняемых жидкостей, взрывоопасное оборудование, вторичное сдерживание и контроль разлива. Защита контейнеров от физического повреждения. Обеспечить адекватную вентиляцию и заземление/прикре |
| Срок годности | Метил-изобутил-кетон имеет срок хранения примерно 24-36 месяцев, когда хранится запечатанным, прохладным, сухим и подальше от источников зажигания. |
Within solvent-borne automotive refinish basecoats and clearcoats, methyl isobutyl ketone (MIBK, CAS 108-10-1) is introduced during letdown after pigment grinding rather than at maximum concentration in the mill base. The addition ratio in a representative medium-solids acrylic clearcoat is 5–10 wt% of total ready-to-spray formulation, while pigmented basecoats commonly carry 3–8 wt%; within the active solvent blend, MIBK can comprise 15–30 wt% depending on the evaporation profile required at flash-off. Regulatory compliance for vehicle refinishing products is set by EU Directive 2004/42/EC Annex II(B), which establishes a ready-to-use VOC ceiling of 420 g/L for topcoats and clearcoats, with VOC verification by ASTM D2369 or ISO 11890-2 and US EPA Method 24 for batch-level reporting. Production practice on commercial lines involves dispersing pigment concentrate in acrylic polyol or cellulose acetate butyrate resin on a horizontal bead mill held at 35–45 °C, followed by letdown with a solvent mixture in which MIBK provides medium-tail solvency; the finished coating is adjusted to 22–28 s in a DIN 4 mm cup at 20 °C, applied by HVLP spray at 1.8–2.5 bar, flashed for 10–15 min at 20–25 °C, and force-dried at 60 °C for 30 min in two-component acrylic-isocyanate systems. Operational boundaries include maintaining solvent water content below 0.05 wt% by Karl Fischer titration to avoid isocyanate side reactions and CO₂ pinholes, and limiting MIBK above 10 wt% in high-film-build clearcoats because its relative evaporation rate of approximately 1.6 relative to n-butyl acetate can delay tack-free time without improving levelling in humid booths. In metallic basecoat lines, MIBK at the high end of the range can disturb aluminium platelet orientation and produce mottling; formulators therefore split the medium evaporating solvent between MIBK and methyl amyl ketone when spray booth humidity exceeds 65% relative humidity. Terminal finished products include OEM touch-up basecoats, spot-repair clearcoats, commercial vehicle single-stage topcoats, and pigmented component refinishing systems.
In nitrocellulose wood lacquer production, MIBK is selected as a true solvent whose Hansen solubility parameters fall within the nitrocellulose solubility sphere; it is not used as a simple diluent. Standard starting-point clear furniture lacquers place MIBK at 4–10 wt% of total formulation, with the balance divided among ethyl acetate, n-butyl acetate, toluene or xylene, and plasticizer; at addition levels below 4 wt%, nitrocellulose fibres may remain undissolved and cause bag-filter blinding, while levels above 10 wt% raise final VOC and extend dry-to-sand time without increasing film hardness. Compliance for architectural joinery coatings is governed by EU Directive 2004/42/EC Annex II(D), where the post-2010 ready-to-use VOC ceiling for interior and exterior trim and cladding paints is 300 g/L; factory-applied furniture lacquers fall under industrial emissions permits under EU Directive 2010/75/EU rather than the Decopaint VOC ceiling. GB 18581-2020 applies to wooden furniture coatings in China, and VOC determination is performed by ISO 11890-2. The production sequence begins by charging alcohol-wet nitrocellulose into a high-speed disperser at 800–1000 rpm, adding resin and plasticizer, then introducing the MIBK-containing solvent blend slowly to avoid resin precipitation; the lacquer is filtered through 10–20 μm bag media and spray-applied at 1.5–2.5 bar in two to three wet passes with intercoat sanding at 320–400 grit. At relative humidity above 70%, formulators reduce the MIBK fraction or add anti-blush agents because evaporative cooling from ketone-rich solvent blends can condense surface moisture and create micro-haze. Nitrocellulose nitrogen content in lacquer grades, typically 10.7–12.2 wt%, shifts the required ketone fraction; lower-nitrogen grades can tolerate the lower MIBK end of the range, whereas high-nitrogen grades require the higher end to prevent viscosity increase during storage. Finished articles include furniture lacquers, millwork clear coats, musical instrument finishes, and decorative case-good topcoats.
| Application segment | Regulatory reference | Test method | Representative benchmark |
|---|---|---|---|
| Automotive refinish topcoats and clearcoats | EU 2004/42/EC Annex II(B) | ASTM D2369, ISO 11890-2 | 420 g/L ready-to-use |
| Architectural nitrocellulose wood lacquers | EU 2004/42/EC Annex II(D), GB 18581-2020 | ISO 11890-2 | 300 g/L ready-to-use |
| Food-contact printing inks | Swiss SR 817.023.21 Annex 6, EuPIA policy | headspace GC /ASTM F1884 | migration-derived residual solvent limit |
| Rubber antidegradant and compound | REACH EC 1907/2006 | ASTM D176, ASTM D412 | 6PPD 1.5–3.0 phr |
When solvent-borne flexographic and rotogravure inks are formulated for polyethylene or polypropylene film, MIBK is added as a tail solvent at 5–15 wt% of the liquid ink mass to stabilize nitrocellulose or polyamide resin during the final drying zone and to prevent resin shock during solvent reduction. The applicable compliance framework for food-contact packaging is not a single finished-ink limit but a converter-level risk assessment under the EuPIA exclusion policy and Swiss SR 817.023.21 Annex 6, with retained MIBK measured by headspace gas chromatography using ASTM F1884 or equivalent; in non-food applications, emission limits follow local solvent management regulations and EU Directive 2010/75/EU where applicable. Ink manufacturing uses a bead mill to grind pigment in resin solution at 35–45 °C, then solvent reduction to a Zahn cup #2 viscosity of 18–25 s at 25 °C; on press, printing speeds of 150–300 m/min demand solvent blends with at least three evaporation plateaus, and MIBK serves as the intermediate plateau between fast ethyl acetate and slow glycol ether or ester tails. Drying ovens operate at 50–80 °C, and residual solvent in the printed reel is monitored because MIBK odour thresholds are lower than many ester solvents. Terminal finished products include LDPE and PET pouches, shrink sleeves, metallised film labels, and cartonboard packaging.
Methyl isobutyl ketone is consumed as a chemical intermediate in the synthesis of N-(1,3-dimethylbutyl)-N'-phenyl-p-phenylenediamine, known as 6PPD, rather than as a formulation solvent. The intermediate addition ratio is controlled on a molar basis at 1.05–1.20 mol MIBK per mole of 4-aminodiphenylamine (4-ADPA), while downstream in tire tread and sidewall rubber compounds, 6PPD is compounded at 1.5–3.0 phr on 100 parts of rubber hydrocarbon. Regulatory status includes REACH (EC) No 1907/2006 registration for both MIBK and 6PPD, with environmental monitoring of 6PPD-quinone, the oxidative transformation product, in stormwater and tire wear particles; rubber mechanical testing is performed under ASTM D176 and ASTM D412. Commercial synthesis proceeds by catalytic reductive alkylation in a jacketed pressure reactor at 100–150 °C and 2–10 MPa hydrogen partial pressure, using a supported hydrogenation catalyst; water concentration and pH control are process-critical because excess water shifts the imine equilibrium toward unreacted 4-ADPA. The crude 6PPD is distilled or crystallised to remove unreacted MIBK and bis-alkylation by-products. Downstream rubber compounding introduces 6PPD in an internal mixer at 140–160 °C before carbon black and oil addition is completed, then sulfur and accelerators are charged on a two-roll mill at 60–80 °C to prevent premature vulcanization. The operating boundary is set by catalyst deactivation from trace amine impurities and by the risk of bis-alkylation if the MIBK ratio exceeds 1.25; published data for site-specific catalyst life is limited, but batch-to-batch variance in 4-ADPA alkalinity is a recognised production bottleneck. Finished articles include radial tire treads and sidewalls, conveyor belting, engine mounts, rubber hoses, and antivibration components.
Upstream in solution polymerisation trains, MIBK functions as a reactor solvent for acrylic copolymers because its solvency permits higher resin solids at a given viscosity than less polar aromatic diluents. The reactor charge is typically 25–45 wt% of combined monomer/solvent mass in high-solids acrylic resin synthesis, with residual MIBK in the vacuum-stripped resin kept below 0.5 wt% by headspace GC specification. Compliance for the resulting resin is indirect: when the resin is formulated into architectural or industrial coatings, EU Directive 2004/42/EC VOC limits apply to the final paint; when the coating is intended for food-contact metal packaging, FDA 21 CFR 175.300 governs the finished coating and residual solvent migration; the resin manufacturer also operates under the REACH registration for MIBK and local emission limits for reactor vents. The polymerisation process is a free-radical solution polymerisation at 120–140 °C with staged monomer feeding over 3–5 hours to control molecular weight distribution, followed by vacuum stripping at 60–100 mbar to remove unreacted monomer and part of the MIBK. Fractionating columns on reactor vents recover MIBK for reuse, and the stripping temperature must remain below 140 °C to avoid thermal degradation of the resin. Terminal downstream products include high-solids coil coatings, industrial metal topcoats, and automotive clearcoat resin intermediates.
Industrial paint strippers and equipment cleaners use MIBK at 20–40 wt% of the formulation in combination with slower ketone or ester solvents, thickeners, and wetting agents; the concentration is set by the need to penetrate crosslinked alkyd, epoxy, or polyurethane films without causing substrate corrosion. The primary occupational health benchmark is US OSHA 29 CFR 1910.1000 Table Z-1, which lists an 8-hour time-weighted average PEL of 100 ppm; site ventilation design must also account for the closed-cup flash point of 14 °C and the lower explosive limit of 1.2 vol% in air. Application is carried out by brush, immersion tank, or low-pressure pump feed inside ventilated enclosures; dwell time is 15–45 min at 15–30 °C, after which the softened film is removed mechanically and spent solvent is collected by vacuum recovery or routed to thermal oxidation. The operational boundary is that MIBK-rich strippers are not suitable for use on polycarbonate or acrylic sheet because stress crazing can occur, and they are not formulated for consumer paint-removal uses due to vapour emission and flammability exposure assumptions. Terminal applications include industrial machinery repainting, metal fabrication jig cleaning, reactor wall cleaning, and floor maintenance in non-occupied zones.
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