| Код ТН ВЭД | |
| НазваниеПродукта | Бутилацетат |
| Химическая формула | C6H12O2 |
| Молекулярный вес | 116,16 г/моль |
| Номер кассы | 123-86-4 |
| внешность | Бесцветная жидкость |
| запах | Фруктовый, бананоподобный |
| Бойлингпойнт | 126 °С |
| Точка плавления | -78 °С |
| плотность | 0,8825 г/см³ при 20 °C |
| Растворимость в воде | 0,7 г /100 мл при 20 ° C |
| Flashpoint | 22 °C закрытая чашка |
| Температура самовоспламенения | 421 °С |
| Давление пара | 1,2 кПа при 20 °C |
| Рефракционный индекс | 1,3941 при 20 ° C |
| вязкость | 0,68 мПа·с при 20 °C |
Являясь аккредитованным заводом по производству бутилацетата, мы строго соблюдаем протоколы качества — каждая партия проходит тщательное тестирование для обеспечения постоянных стандартов эффективности и безопасности.
| Упаковка | Бутилацетат, упакованный в 200-литровые стальные барабаны, запечатанные и маркированные воспламеняемой жидкостью, № ООН 1123. |
| Погрузка контейнера (20-футовый контейнер) | 20′ ФКЛ: Бутилацетат (UN1123, класс 3) в герметических барабанах, паллетизированных, уплотненных, с легковоспламеняющимися маркировками, с документацией МСД и ГД. |
| Доставка | Бутилацетат доставляется как UN1123, правильное название доставки: Бутилацетаты, класс опасности 3 (воспламеняемая жидкость), группа упаковки II. Для этого требуется упаковка с рейтингом ООН, этикетки на воспламеняемые жидкости и надлежащие транспортные документы. Держите подальше от тепла, искр и окислителей; обеспечить вентиляцию, использовать соответствующие ОПО и соблюдать правила ДОПОГ/ИМДГ/ИАТА. |
| Хранение | Храните бутил-ацетат в прохладном, сухом, хорошо вентилируемом, огнестойком месте, подальше от тепла, искр, пламени и сильных окислителей. Держите контейнеры плотно закрытыми, вертикальными, помеченными и заземленными при дозировании. Используйте взрывоопасное оборудование, вторичное сдерживание и комплекты для разлива. Хранить отдельно от кислот, оснований и реактивных материалов. Защитить от прямого солнечного света. обеспечить адекватную вентиляцию для контроля паров; соблюдать местные правил |
| Срок годности | Срок хранения бутил-ацетата составляет примерно 24-36 месяцев, когда он хранится запечатанным, прохладным, сухим и подальше от источников зажигания. |
In automotive OEM paint kitchens, n-butyl acetate enters the binder letdown stream after the acrylic polyol resin has been synthesized separately at 80–85 wt% solids. The purchase specification for automotive-grade material is typically 99.5 wt% minimum purity, 0.05 wt% maximum water, 0.02 wt% maximum acidity as acetic acid, and 10 APHA maximum color. The moisture ceiling is not a storage convenience but a kinetic boundary: in two-component polyurethane clearcoats, the isocyanate hardener consumes water, generating urea oligomers and carbon dioxide. Microfoam becomes visually measurable when water ingress exceeds approximately 0.08 wt% of total formulation mass. Compliance for automotive OEM and refinish lines in the European Economic Area is anchored to 2004/42/EC Annex IIB vehicle refinishing limits, while volatile content is quantified by ASTM D2369-20 and coating viscosity is reported under ISO 2431:2019 using a 6 mm flow cup at 25°C.
Formulation addition levels cluster between 15 wt% and 25 wt% of total clearcoat mass in refinish-grade polyurethane systems, and between 20 wt% and 35 wt% of basecoat solvent blend in OEM acrylic-melamine systems. In a typical low-solids basecoat thinner, n-butyl acetate is combined with xylene and 2-butoxyethyl acetate at a mass ratio of approximately 30:45:25, shifting the blend initial boiling point to 120–125°C and holding the relative evaporation rate within 0.8–1.0 against pure n-butyl acetate when measured under ASTM D3539-11(2016). Production-scale mixing uses jacketed stainless-steel vessels equipped with high-shear Cowles dispersers running at tip speeds of 12–18 m/s. The solvent blend is added under agitation after the resin has been reduced to 60–70 wt% solids, and batch temperature is held below 35°C because the closed-cup flash point of n-butyl acetate is 22°C. Application on the topcoat line uses robotic electrostatic rotary bell atomizers operating at 25,000–40,000 rpm in booths maintained at 23±2°C and 55–65% relative humidity; overspray is captured by dry-filter booth extraction at 0.3–0.5 m/s face velocity.
After application, the wet film passes through an ambient flash-off zone of 3–5 min and a heated flash tunnel at 60–65°C for 10–15 min. The slower evaporation tail of n-butyl acetate relative to ethyl acetate permits leveling without excessive sag, but the fraction retained in the film must be sufficiently low before oven entry to prevent solvent popping during an OEM clearcoat bake at 140°C for 30 min. On high-throughput refinish lines, infrared booths with medium-wave emitters operating at 2.5–3.5 kW/m² force solvent escape before polishing. Film defects such as dieback, microfoam, and solvent pop are adjudicated by cross-section microscopy and ISO 4624:2016 pull-off adhesion after cure.
Finished article types include OEM passenger car monocoat and clearcoat systems, two-pack polyurethane commercial-vehicle topcoats, refinish spot-repair clears, and adhesion-promoted polypropylene bumper coatings. In high-gloss black refinish systems, excessive evaporation from a butyl acetate-heavy blend leads to dieback after bake; commercial reducers therefore substitute up to 15 wt% of the butyl acetate fraction with 2-butoxyethyl acetate when booth temperature exceeds 28°C. This substitution retains the solvency balance but lengthens the open window sufficiently for film leveling on vertical surfaces.
Because nitrocellulose furniture lacquers deposit on large flat door fronts that must level before solvent escape, n-butyl acetate is selected as the medium-tail active solvent that extends wet-edge retention without trapping residual solvent in the dried film. The governing regulatory constraint for cabinetry in the European Union is evaluated under 2004/42/EC wood coating categories, with VOC content reported by ASTM D2369-20 and film performance for kitchen cabinets demonstrated under KCMA A161.1 chemical and hot-water resistance testing. Formulation proportions in a gloss topcoat fall at 25–35 wt% of the total liquid lacquer; in sanding sealers, the level drops to 15–20 wt% because faster ethyl acetate and ethanol must escape before topcoat application.
Industrial mixing begins with cold-cut dissolution of nitrocellulose that has been ethanol-wetted to 30 wt% ethanol. The resin is charged to a horizontal enclosed disperser with high-torque helical blades and dissolved under slow sweep agitation to avoid shear-induced degradation. Pigment concentrates are separately ground on a vertical bead mill with 0.8–1.2 mm zirconia beads, then let down into the lacquer base. Final viscosity is adjusted with a blend of n-butyl acetate, ethanol, and low-aromatic hydrocarbon diluent to 18–25 s on a Ford No. 4 cup at 20°C. Application on kitchen cabinet doors uses air-assisted airless spray with air cap pressure 0.25–0.4 MPa and fluid pressure 8–12 MPa; shaped mouldings are coated on reciprocating automatic spray machines with electrostatic assist at 60–70 kV.
The downstream form factor includes kitchen cabinet fronts, wooden office furniture, musical instrument lacquers, and children’s furniture. Blushing risk becomes severe when booth humidity exceeds 80% RH or substrate temperature drops more than 2°C below the dew point. Under those conditions, evaporative cooling from n-butyl acetate and ethanol condenses water onto the film, producing a visible white haze that cannot be removed by subsequent drying. Formulators compensate by replacing up to 10 wt% of total lacquer mass with a glycol ether retarder; beyond 10 wt%, dry-time extension and cabinet line throughput losses become disproportionate.
High-speed CI flexographic presses running solventbased reverse-print inks on 20–30 µm BOPP at 300–400 m/min need an evaporation window that prevents dried-in dot marking but does not chill the anilox roll below the dew point. n-Butyl acetate contributes 20–35 wt% of the total liquid ink composition in flexographic applications and 10–20 wt% in solventborne rotogravure inks, where toluene-reduction programs require an active oxygenated solvent with slower release than ethyl acetate. Compliance for printed food-contact packaging follows EU 2023/2006 good manufacturing practice requirements, supported by migration risk assessment under EU 10/2011 and residual solvent testing by headspace gas chromatography. Print process safety is anchored to ISO 12643-1.
Ink manufacture starts with high-shear pre-dispersion followed by a horizontal enclosed bead mill charged with 0.6–1.0 mm yttrium-stabilized zirconium oxide media, operating at product temperature 35–45°C. The letdown batch is cooled to 25–30°C before final solvent adjustment; viscosity is controlled at 18–22 s Zahn #2 at 20°C, and density is checked at 0.98–1.02 g/cm³. The press unit uses enclosed doctor blade chambers with ceramic anilox volumes between 2.5 BCM and 4.0 BCM and plate sleeve pressures below 0.2 MPa. Interstation hot-air ovens run at 55–65°C, while final overhead dryers operate at 70–80°C with air velocity 20–25 m/s to meet retained solvent targets below 5 mg/m² for lamination-grade prints.
Terminal converted materials include cold-seal snack wrappers, confectionery flow wrap, retort pouches, and shrink sleeve labels. If line speed exceeds 350 m/min without increasing final dryer temperature, retained n-butyl acetate can plasticize the adhesive lamination interface and cause tunnelling in the finished laminate. Process engineers therefore set the final dryer temperature as a function of line speed with a lower limit of 55°C and monitor residual solvent by headspace GC at a 0.5 mg/m² detection threshold.
Reformulation of solventborne polyurethane footwear adhesives away from toluene shifts the viscosity-solids curve upward unless n-butyl acetate is paired with a faster tail solvent such as methyl ethyl ketone. The n-butyl acetate addition ratio in one-component polyurethane adhesives spans 15–25 wt% of total adhesive mass; in two-component systems mixed at the point of application, the added solvent level is lower at 10–15 wt% because the isocyanate hardener also acts as a reactive diluent. The regulatory framework includes REACH Annex XVII entry 48 toluene restrictions on adhesives intended for supply to the general public, China’s GB 33372-2020 VOC limits for footwear adhesives, and bond performance verification under ASTM D903-17 peel and ISO 4587:2003 lap shear.
Adhesive compounding uses closed, jacketed sigma-blade mixers running at 20–40 rpm for prepolymer dissolution in a mixed-solvent system containing n-butyl acetate, MEK, and acetone. Dissolved water content is held below 0.05 wt% by Karl Fischer titration because residual moisture reacts with free isocyanate and generates carbon dioxide bubbles visible in the applied film. The adhesive is coated by reverse roll transfer onto leather or EVA sole stock at 80–120 g/m² wet add-on, then passed through a three-zone drying tunnel at 55–65°C with total dwell 4–6 min. Sole reactivation is performed with medium-wave infrared heaters to surface temperature 80–90°C immediately before pressing; press bonding cycles apply 0.4–0.6 MPa for 20–40 s.
The terminal bonded article types include sports shoe sole units, leather brogues with polyurethane sole attachment, and automotive interior trim laminates. In high-humidity production halls above 70% RH, open mixing vessels absorb atmospheric moisture faster than the 0.05 wt% tolerance permits. Batch-to-batch variation in peel strength has been traced to vessel lids left open during letdown. Closed-loop solvent recovery and nitrogen blanketing are therefore mandatory for reproducible bond strength.
On reverse-roll coil coating lines running at 80–120 m/min, n-butyl acetate functions as a tail solvent whose evaporation must be substantially complete before the coated strip enters a curing oven at 230–240°C peak metal temperature. The addition level in polyester coil coating topcoats is 8–15 wt% of the liquid coating; in backing coats and primer systems, the level falls to 5–10 wt% because high pigment volume concentration reduces the requirement for active solvency. The coil coating sector verifies liquid VOC under ASTM D2369-20 and assesses cured film performance under EN 13523 test methods for coil-coated metals; prepainted panels destined for exterior building envelopes are additionally qualified under EN 10169 for continuously organic-coated flat steel products.
The coating is applied by a three-roll reverse applicator with nip pressure 0.5–1.0 MPa and roll speed ratio 1.2:1 to generate wet film thickness 20–30 µm. The wet film travels 10–15 m in ambient air before entering a three-zone oven; first-zone temperature is held at 200–220°C, second zone at 230–240°C, and strip dwell is 20–40 s. Exhaust from the ovens passes through a regenerative thermal oxidizer at 760–820°C with 95–99% destruction efficiency. Finished goods include architectural cladding, appliance wrapper stock, venetian blinds, and HVAC fin stock. For acid-catalyzed melamine systems containing blocked dodecylbenzenesulfonic acid, stored batches above 15 wt% n-butyl acetate can develop measurable free acidity from ester hydrolysis; moisture content is specified below 0.1 wt%, and finished enamel storage is limited to 6 months at 5–30°C.
When maintenance primers are applied by airless spray over large outdoor steel surfaces, n-butyl acetate functions as a diluent-level retarder at 10–20 wt% of the formulated primer, controlling wet-edge retention during large-area application. The protective coating system is specified under ISO 12944-5:2019 for corrosion categories C3 and C4, and blistering after accelerated exposure is rated by ISO 4628-2:2016. Application is performed by airless spray pumps delivering 15–20 MPa atomization pressure through tungsten carbide tips with orifice diameters of 0.015–0.019 in; a single coat produces wet film thickness 100–150 µm and dry film thickness 60–80 µm.
Terminal assets include storage tank exteriors, pipe racks, and structural steel in industrial plants. The recoat boundary for a polyurethane topcoat is not simply a viscosity recovery point; n-butyl acetate retained in the primer film at less than 24 h at 25°C migrates into the polyurethane topcoat and produces blistering under solar heat. Application records from industrial maintenance lines show that recoating before primer solvent retention has dropped below 0.5 wt% causes intercoat bubbles under black topcoats when steel surface temperature exceeds 50°C.
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n-бутил-ацетат (CAS 123-86-4; CH3COO(CH2)3CH3; молекулярная масса 116,16 г/моль) поставляется в трех стандартных моделях продукта: промышленного класса, уретанного класса и электронного класса. Эфир производится путем кислотно-катализованной эстерификации уксусной кислоты и н-бутанола. В катализированных смолой непрерывных поездах с фиксированным кроватью преобразование обычно приводится выше 98% после удаления над головой азеотропа бутил-ацетат-вода при приблизительно 90,2° C и примерно 28 wt% воды; Остаточный спирт, кислота и вода затем контролируются азеотропной сухой и фракционной дистилляцией. Нормальные параметры продукта при 101,3 кПа включают точку кипения 126,1° C, точка вспышки закрытой чашки 22° C по ASTM D56, температура автозажигания примерно 425° C, давление пара примерно 1,1–1,3 кПа при 20° C, плотность примерно 0,882 г/см3 при 20° C, и вязкость примерно 0,73 мПа; s при 20° С. Продукт функционирует в качестве активного кислородного растворителя для нитроцеллюлозных, акриловых, полиэстеровых, алкидных, эпоксидных и полиуретановых смол и используется в покрытиях, печатных чернилах, клеях и жидкостях для очистки электроники.