Метил ацетат

    • Название продукта: Метил ацетат
    • Сайт Factroy: Округ Юду, Ганьчжоу, Цзянси, Китай
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    • Производитель: Ascent Petrochem Holdings Co., Limited
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    Спецификации
    Код ТН ВЭД
    Название продукта Метил ацетат
    Имя ИЮПАК Метил ацетат
    Номер КАС 79-20-9
    Номер Ec 201-185-2
    Номер ООН 1231
    Molecular Formula C3H6O2
    молекулярный вес 74,08 г/моль
    внешность Бесцветная жидкость
    запах Фруктовый, сладкий, эфирный
    точка кипения 56,8 ° C
    точка плавления -98 °С
    плотность 0,932 г/см³ при 20 °C
    Показатель преломления 1,3614 при 20 °С
    Пар Давление 173 mmHg при 20 °C
    точка вспышки -10 °C закрытая чашка
    температура самовозгорания 454 °С
    взрывоопасные пределы 3,1% до 16% по объему в воздухе
    растворимость растворимый в воде; смешивается с этанолом, эфиром и ацетоном
    вязкость 0,364 мПа·с при 25 °C
    ЛогП 0,18
    класс опасности 3 Запламеняемая жидкость

    Как аккредитованный завод по производству Метилацетата, мы соблюдаем строгие протоколы качества — каждая партия проходит тщательное тестирование для обеспечения постоянных стандартов эффективности и безопасности.

    Упаковка и хранение
    Упаковка Метилацетат упакован в 20-литровые полиэтиленовые барабаны высокой плотности, надежно запечатанные и маркированные предупреждениями об опасности воспламеняющихся жидкостей.
    Погрузка контейнера (20-футовый контейнер) Загрузка метил-ацетата в контейнер 20′ FCL: надлежащим образом укладывается, закрепляется, маркируется воспламеняемая жидкость № ООН 1231, соответствующая упаковка и документация.
    Доставка Метилацетат поставляется под номером ООН 1231, Метилацетат, воспламеняемая жидкость класса 3, группа упаковки II. Для этого требуется упаковка, одобренная ООН, этикетки на воспламеняемых жидкостях и транспортировка по дороге, железной дороге, морю или воздуху в соответствии с правилами IMDG/IATA/ADP. Держите подальше от источников зажигания и окислителей.
    Хранение Храните метил-ацетат в прохладном, сухом, хорошо вентилируемом месте, подальше от тепла, искр, открытого пламени и сильных окислителей. Держите контейнеры плотно закрытыми, вертикальными и четко помеченными. Используйте одобренные шкафы для воспламеняющихся жидкостей или безопасные банки, с заземлением и связыванием во время передачи. защищать от солнечного света; Избегайте кислот, оснований и влаги. Обеспечить вентиляцию, сдерживание разлива и отделение от несовместимых материалов.
    Срок годности Метилацетат обычно имеет срок хранения 2-5 лет, когда хранится запечатанным, сухим, прохладным и подальше от источников зажигания.
    Применение метильного ацетата

    In flexographic and gravure solvent-based ink systems, methyl acetate is introduced as the high-evaporation segment of a co-solvent package. Published starting-point reducer formulas for nitrocellulose-based inks place methyl acetate at 20–35 wt% of the total volatile phase. The ester functions as a true solvent for nitrocellulose and cellulose acetate butyrate. Its relative evaporation rate, measured against n-butyl acetate under ASTM D3539, is approximately 6.0. This value shifts the dry-rate curve of an ink film without raising equilibrium viscosity. On a multistation flexographic press running at 150–300 m/min, the evaporation rate reduces rewind blocking and permits flash-off zones at 50–70°C. Methyl acetate is combined with ethyl acetate, n-propyl acetate, or isopropanol to control viscosity to 18–25 s on a Zahn cup #2, as per ASTM D4212. Metered dry film weight is maintained at 1.0–2.5 g/m². Because methyl acetate is listed as a negligibly reactive compound under US EPA 40 CFR 51.100(s), reformulation toward higher methyl acetate content can reduce reported volatile organic compound load in North American air permits. In EU member states, the facility remains subject to the Solvent Emissions Directive 2010/75/EU, and methyl acetate is not excluded from reporting. For compliance testing, ASTM D2369 determines VOC content in coating and ink formulations. Water content must remain below 0.1 wt% in nitrocellulose systems because hydrolysis produces methanol and acetic acid, which can destabilize nitrocellulose wetting and raise haze. For polyurethane-based inks, urethane-grade methyl acetate with water below 0.05 wt% and alcohol below 0.1 wt% is required. Gloss retention and adhesion are verified under ASTM D523 and ASTM D3359. Terminal articles include flexible packaging surface inks, foil coatings, wood sanding sealers, and overprint varnishes.

    Resin cut preparation for nitrocellulose-based flexographic inks is performed in a high-speed disperser with tip speed of 5–8 m/s. The methyl acetate fraction is added after initial pigment wetting to avoid a locally high solvent concentration that can shock-disperse nitrocellulose and create seeded gels. Final grind is checked by a Hegman gauge under ASTM D1210 at 5–7 µm for surface inks and 10–15 µm for lamination inks. Nitrogen blanketing and explosion-proof motors are required because of the low flash point. Recirculation through a 1 µm filter bag removes seeded nitrocellulose gels. The main operational boundary is dew point control in the drying hood. If humid air condenses on the ink film during early flash-off, the resulting water uptake raises film moisture and slows final evaporation. This risk is most pronounced at methyl acetate concentrations above 35 wt% because the high evaporation rate cools the substrate below the dew point. In high-humidity sites above 60% RH, air dehumidification or lower methyl acetate content is used. Published data for methyl acetate-specific dew point suppression in flexographic inks is limited; line trials are used to set the solvent balance.

    What Limits Methyl Acetate Reduction in Solventborne Polyurethane Laminating Adhesives?

    Polyurethane dry-lamination adhesives for multi-layer flexible packaging are supplied at 60–75 wt% solids and are reduced to 25–35 wt% application solids before gravure application. Methyl acetate is used as the fast-segment co-solvent in the reducer, typically at 10–30 wt% of the solvent blend when ethyl acetate is the primary carrier. On a laminating line running at 120–250 m/min, the methyl acetate fraction accelerates the first drying stage and shortens the residual solvent tail. The main operational constraint is moisture. Polyurethane isocyanates react competitively with water to form carbamic acid intermediates that decompose to amines and carbon dioxide, causing foam in the adhesive pan, viscosity drift, and bond strength loss. Methyl acetate itself hydrolyzes when water is present, generating methanol and acetic acid. Adhesive-grade methyl acetate is therefore specified with water below 0.05 wt%, methanol below 0.1 wt%, and acidity below 0.01 wt% as acetic acid. The diluted adhesive is delivered to a gravure cylinder at 20–30°C and dried through a three-zone tunnel at 60–70°C, 70–85°C, and 80–90°C. Nip lamination temperature is maintained at 60–80°C. For food-contact structures, the finished laminate must comply with FDA 21 CFR 175.105 for adhesives and, in the European Union, with Regulation (EU) No 10/2011 migration testing for plastic multilayers. Residual solvent levels in the film are normally measured by headspace gas chromatography and are commonly controlled below 5 mg/m² for food packaging supplied to major converters, although published data for methyl acetate-specific migration in polyurethane laminates is limited. End-use laminates include retort pouches, snack packaging, and pharmaceutical blister lidding films.

    Cellulose Nitrate Film Dissolution Rates in Acetone-Free Nail Enamel Removers

    Acetone-free nail enamel removers built around methyl acetate rely on rapid dissolution of nitrocellulose-based nail polish films. Published starting formulas place methyl acetate at 60–80 wt% as the active solvent, with ethyl acetate at 10–20 wt% as secondary solvent, water at 5–10 wt%, and a polar conditioning solvent such as propylene carbonate at 3–8 wt%. The formulation is cold-blended at 15–25°C under an explosion-proof agitator because the closed-cup flash point of methyl acetate is approximately -10°C under ASTM D56. Filtration through 10 µm polypropylene media removes particulate contamination. Methyl acetate dissolves nitrocellulose more slowly than acetone but leaves less visible white residue on the nail plate. The remover is filled into PET or HDPE containers with child-resistant closures. Regulatory status is covered under Regulation (EC) No 1223/2009 for cosmetic products. Methyl acetate is not listed in Annex II or Annex III as a prohibited or restricted substance under that regulation. The final product is classified as flammable and is labelled under the CLP Regulation with H225 and H319 hazard statements. Published comparative data for dissolution time across nitrocellulose film thicknesses is limited. Confirmation of drop-in remover performance therefore relies on bench screening with controlled drawdown films and consumer panel testing. Terminal products are consumer nail enamel removers and saturated cotton pad systems.

    PropertyMethyl acetateEthyl acetateMethyl ethyl ketoneAcetoneTest method
    Boiling point at 101.3 kPa57.1°C77.1°C79.6°C56.3°CASTM D1078
    Closed-cup flash point-10°C-4°C-6°C-20°CASTM D56
    Relative evaporation rate, n-butyl acetate = 16.04.13.85.6ASTM D3539
    Kauri-butanol value80778095ASTM D1133
    Density at 20°C0.932 g/cm³0.902 g/cm³0.805 g/cm³0.791 g/cm³ASTM D4052

    In continuous acetic anhydride manufacturing, methyl acetate is carbonylated with carbon monoxide in a homogeneous catalytic system. The reaction follows CH₃COOCH₃ + CO → (CH₃CO)₂O. Commercially established configurations operate at 170–200°C and 20–70 bar in a liquid-phase reactor. Published process data show rhodium or iridium catalysts in the presence of a methyl iodide promoter and alkali or lithium iodide salts. The iodide promoter concentration is controlled within a narrow window. Elevated methyl iodide accelerates the catalytic cycle but also increases corrosion in downstream purification. The crude product stream is separated by flash evaporation and distillation. Methyl acetate feed quality is critical. Water above 0.1 wt% consumes carbon monoxide and hydrolyzes the anhydride product, while methanol and acetaldehyde impurities reduce catalyst productivity. Acid-resistant construction materials such as Hastelloy C-276 and zirconium are used in the reactor and distillation sections. The acetic anhydride stream is subsequently used to acetylate cellulose, producing cellulose acetate flake and tow for filter media, textile fibers, and specialty films. The stream is also consumed in the production of acetylsalicylic acid and acetaminophen. Compliance for the acetic anhydride product is driven by downstream food-contact and pharmaceutical specifications rather than by a single methyl acetate regulation. REACH registration and workplace exposure limits for methyl acetate apply to the feed stream. End products include filter tow, pharmaceutical actives, and cellulose ester thermoplastics.

    Published kinetic parameters for this specific carbonylation configuration are plant-specific and often held under catalyst licensor confidentiality. The main process conflict is iodine management. High methyl iodide partial pressure improves reaction rate but increases carryover of iodine species into the acetic anhydride recovery train. Iodine removal is required to prevent product discoloration and to protect downstream acetylation catalysts. The purification sequence typically includes a flash vessel, absorber, and multiple distillation columns. Vent gas containing carbon monoxide and methyl iodide is scrubbed before recycle or thermal oxidation. Methyl acetate recovery is integrated into the purification sequence to return unreacted feed to the reactor. The process is operated continuously with catalyst makeup and controlled water removal. Published data for exact reactor kinetics in non-licensed engineering studies is limited; commercial design relies on licensor reaction models and pilot data.

    Application segmentJurisdictionReferenceControl parameter
    Solventborne inksUnited States40 CFR 51.100(s)Methyl acetate excluded from federal VOC definition; state SIP may differ
    Solventborne inksUnited StatesASTM D2369VOC content for formulation reporting
    Polyurethane laminating adhesiveUnited StatesFDA 21 CFR 175.105Adhesive may be used in food-contact laminates under good manufacturing practice
    Polyurethane laminating adhesiveEuropean UnionRegulation (EU) No 10/2011Overall migration and specific migration testing for multilayer food-contact materials
    Cosmetic nail enamel removerEuropean UnionRegulation (EC) No 1223/2009Ingredient not listed as restricted; finished product safety under responsible person
    Industrial degreasingUnited StatesOSHA 29 CFR 1910.106Flammable liquid handling; Class IB storage boundaries
    Industrial degreasingUnited StatesOSHA 29 CFR 1910.10008-hour TWA airborne limit for methyl acetate at 200 ppm

    When Methyl Acetate Replaces MEK in Low-Temperature Immersion Degreasing

    Cold immersion and ultrasonic degreasing baths substitute methyl acetate for methyl ethyl ketone where a high evaporation, non-HAP solvent is needed for removal of lanolin, cutting fluids, and light petroleum residues. The Kauri-butanol value of methyl acetate is approximately 80 under ASTM D1133, placing it between ethyl acetate and methyl ethyl ketone in solvency for common hydrocarbon oils. Working bath formulations typically contain 40–60 wt% methyl acetate, 10–20 wt% dimethyl carbonate, 5–10 wt% isopropanol, and 0.5–2.0 wt% corrosion inhibitor. The bath is operated at 20–30°C with ultrasonic agitation in the 25–40 kHz range. A final rinse stage uses clean methyl acetate at ambient temperature. Because the flash point is approximately -10°C, equipment is subject to OSHA 29 CFR 1910.106 flammable liquid handling and NFPA 30 Class IB storage requirements. Ventilation must maintain airborne concentration below the OSHA permissible exposure limit for methyl acetate of 200 ppm as an 8-hour time-weighted average. In the United States, methyl acetate is excluded from VOC under 40 CFR 51.100(s); state air quality agencies may still require reporting. Process control includes measurement of bath density and water content. Water above 0.5 wt% reduces degreasing efficiency and promotes hydrolysis, which liberates acetic acid and attacks copper and zinc substrates. End-use parts include precision metal stampings, electronic connectors, and aerospace fasteners.

    Methyl acetate is not suited to vapor degreasing because its flammable liquid classification and low autoignition margin impose costly electrical area classification. It is therefore limited to cold immersion, ultrasonic tank, and wipe processes. A continuous filtration loop with 5 µm polypropylene bags removes metal fines and insoluble oil sludge. Bath acidity is monitored by titration. Neutralization or bath replacement is required when acidity exceeds 0.1 wt% as acetic acid. When cleaning galvanized steel, aluminum, or magnesium alloys, the corrosion inhibitor package must be validated by salt-spray testing under ASTM B117 after cleaning. Published data for methyl acetate-specific bath life in high-throughput aerospace degreasing is limited; aerospace processors qualify the process by residue tests and surface energy measurements. End-use sectors include stamped automotive components, printed circuit board connector housings, and stainless steel fastener passivation lines where a fast-drying final rinse is required.

    Brush-on and sprayable graffiti removers formulated with methyl acetate replace dichloromethane and N-methyl-2-pyrrolidone in architectural restoration. Heavy-body stripper formulations use methyl acetate at 35–55 wt%, dimethyl carbonate at 10–20 wt%, propylene carbonate at 5–10 wt%, and a cellulosic thickener such as hydroxypropyl methylcellulose at 0.5–1.5 wt% to extend dwell time on vertical surfaces. The thickened system is applied by airless sprayer or brush. Dwell time is usually 15–30 min at 10–30°C. Lower temperature slows solvent penetration and lengthens required contact time. Mechanical removal with polypropylene scrapers prevents substrate damage. Formulation pH is kept above 6.0 and water below 1.0 wt% to minimize hydrolysis during storage. The stripper is evaluated on aged alkyd, acrylic, and nitrocellulose lacquer coatings. For regulatory compliance, the product is labelled under CLP as flammable and eye irritant. Published data for methyl acetate-specific stripping rate versus methylene chloride on multi-coat epoxy systems is limited. Direct field evaluation is required for industrial specification. End-use applications include masonry graffiti removal, metal sign repainting, and wood furniture refinishing.

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    Более подробное введение
    Метилацетат представляет собой насыщенный карбоксиловый эстер с молекулярной формулой CH3COOCH3 и молекулярной массой 74,08 г/моль. Он производится путем эстерификации уксусной кислоты метанолом и поставляется в виде прозрачного, бесцветного, быстро испаряющегося растворителя. Типичные коммерческие сорта включают промышленный сорт с минимальной чистотой 99,5% веса и уротан или сорт высокой чистоты с минимальной чистотой 99,9% веса. Продукт отличается от этил-ацетата по более низкой температуре кипения и более высокому давлению пара, от ацетона по более низкой полярности и эфирной функциональности, от метил-этил-кетона по некетонному составу и от хлорида метилена по отсутствию хлорированного углерода. В соответствии с CLP он классифицируется как Flam. Liq. 2, Eye Irrit. 2 и STOT SE 3; транспортная классификация ООН 1231, класс 3, группа упаковки II. Представительные физические свойства включают плотность 0,932 г/см3 при 20°C в соответствии с ASTM D4052, температуру кипения 56,9°C при 101,3 кПа, температуру вспышки -10°C в соответствии с ASTM D56, давление пара 21,7 кПа при 20°C и относительную скорость испарения 6,0, где n-бутил-ацетат равен 1,0. Растворитель частично смешивается с водой и подвергается медленному гидролитическому расщеплению в уксусную кислоту и метанол; Это поведение гидролиза является главным ограничением чистоты и хранения, отличающим его от кетонных растворителей.

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