Продукты

Трипропиленгликоль

    • Название продукта: Трипропиленгликоль
    • Сайт Factroy: Округ Юду, Ганьчжоу, Цзянси, Китай
    • Запрос цены: admin@ascent-chem.com
    • Производитель: Ascent Petrochem Holdings Co., Limited
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    Спецификации
    Код ТН ВЭД
    Название продукта Трипропиленгликоль
    Номер регистрации Cas 24800-44-0
    химическая формула C9H20O4
    молекулярный вес 192,25 г/моль
    Название ИЮПАК 2-[2-(2-гидроксипропокси)пропокси]пропан-1-ол
    внешность Бесцветная, вязкая жидкость
    запах Мягкий, характерный запах
    точка кипения 267 °C при 760 mmHg
    точка плавления -45 °С
    плотность 1,02 г/см³ при 25 °C
    вязкость 56 мПа·с при 20 °C
    Растворимость в воде Смешанная
    точка вспышки 141 °C закрытая чашка
    показатель преломления 1,444 при 20 ° C
    Температура самозажигания 310 ° С
    давление паров <0,01 mmHg при 20 °C

    Являясь аккредитованным заводом по производству Трипропиленгликоля, мы строго соблюдаем протоколы качества — каждая партия проходит тщательное тестирование для обеспечения постоянных стандартов эффективности и безопасности.

    Упаковка и хранение
    Упаковка Трипропиленгликол поставляется в 200 литровых стальных барабанах, надежно запечатанных этикетками, показывающими химическую идентичность и надлежащие меры предосторожности.
    Погрузка контейнера (20-футовый контейнер) Трипропиленгликол загружается в контейнер 20′ FCL, паллетизируется или барабанируется, надежно закрепляется и проявляется для безопасной морской перевозки.
    Доставка Трипропиленгликол доставляется в качестве неопасной, нерегулируемой жидкости. Он обычно упаковывается в стальные барабаны, IBC или цистерны. Номер ООН, класс опасности или группа упаковки не присваиваются. Держите контейнеры закрытыми и храните в прохладном, сухом, хорошо вентилируемом месте. Не ограничивается наземным, воздушным или морским транспортом.
    Хранение Храните трипропиленгликол в прохладном, сухом, хорошо вентилируемом месте, подальше от тепла, искр, пламени и сильных окислителей. Держите контейнеры плотно закрытыми и четко помеченными, чтобы предотвратить поглощение влаги и загрязнение. Используйте совместимые материалы, такие как нержавеющая сталь, углеродная сталь или полиэтилен. Защитите от замерзания, если это необходимо, соблюдайте местные правила и обеспечите адекватную вентиляцию. Рекомендуется сдерживание разлива.
    Срок годности Трипропиленгликол имеет рекомендуемый срок хранения около двух лет при хранении в плотно закрытых контейнерах в прохладном, сухом месте.
    Применение Трипропиленгликоль

    Direct esterification of tripropylene glycol (TPG) with glacial acrylic acid remains the principal industrial route to tripropylene glycol diacrylate (TPGDA), the reactive diluent used in radiation-cure formulations. On a 10,000 L glass-lined batch reactor fitted with a structured packed column and reflux splitter, the charge ratio is commonly held between 2.05 and 2.35 mol acrylic acid per mole of TPG; p-toluenesulfonic acid is metered at 0.8–1.5 wt% of total charge and monomethyl ether hydroquinone (MEHQ) is maintained at 200–500 ppm of the reaction mass. Water is removed by azeotropic distillation at 95–115 °C under 25–35 kPa absolute pressure; the distillate temperature at the reflux splitter is kept between 70 and 80 °C to avoid acrylate oligomer entrainment. Crude ester is neutralized with 5–8 wt% aqueous sodium hydroxide, washed with deionized water, vacuum-stripped below 2 kPa at 100–120 °C, and filtered through a 1 µm bag filter. The esterification reaction is equilibrium-limited; at molar ratios below 2.05:1, the monoacrylate ester fraction increases above 8% by gel permeation chromatography area, and at ratios above 2.35:1, excess acrylic acid must be recovered by vacuum distillation, raising the batch distillation load. The p-toluenesulfonic acid catalyst is neutralized before vacuum stripping to prevent transesterification and color body formation; residual sodium sulfonate is removed by the subsequent water wash and filtration step.

    In UV-curable compounding, the resulting TPGDA is added at 15–35 wt% to acrylated epoxy or urethane oligomers; viscosity reduction from 10,000–50,000 mPa·s to 300–1,500 mPa·s is recorded using ISO 3219:1994. Cured film tensile properties are assessed according to ASTM D638-14, with elongation falling as TPGDA content rises beyond 30 wt% because crosslink density increases. Regulatory compliance for TPGDA as an industrial reactive diluent is covered by EU REACH (EC) No 1907/2006; use in food-contact printing is not automatically covered by the EU 10/2011 positive list unless migration testing demonstrates compliance. Terminal finished product types include UV flexographic inks, offset overprint varnishes, stereolithography photopolymer resins, optical adhesives, and conformal coatings for printed circuit boards. Process failures observed at production scale include acid value drift above ±2 mg KOH/g when MEHQ drops below 200 ppm, and Michael addition by-products that raise color and viscosity when the reaction temperature exceeds 115 °C.

    Does Tripropylene Glycol Function as a Flexibilizing Diol in Alkyd and Unsaturated Polyester Cooks?

    When alkyd resin cooks require flexibilization without excessive volatile diol loss, TPG is charged as a partial replacement for monoethylene glycol or dipropylene glycol, not as the sole polyol. In medium-oil alkyd syntheses, substitution levels of 5–20 mol% of total polyol charge lower the cured film glass-transition temperature and improve pigment wetting, while the higher boiling point relative to monoethylene glycol reduces polyol loss during esterification. The esterification stage is run at 240–260 °C under inert gas, with xylene azeotropic distillation until acid value drops to 8–15 mg KOH/g as determined by ISO 2114:2000. Cook time is typically 6–12 h; because secondary hydroxyl groups in TPG exhibit slower esterification kinetics than primary glycols, acid value stalls near 15 mg KOH/g if the top column temperature is not tightly controlled. For unsaturated polyester resins, TPG is more commonly blended with propylene glycol and maleic anhydride in the condensation phase; the styrene monomer addition occurs after cooling below 90 °C. Compliance obligations for the finished resin are anchored to EU REACH (EC) No 1907/2006 and, for industrial coatings, to the relevant test methods in the ISO 12944 series for protective paint systems. Terminal product types include coil coating alkyds, air-drying industrial enamels, unsaturated polyester casting resins, and gelcoat bases. At substitution levels above 30 mol%, the cured film becomes prone to blocking and loses adhesion to metal substrates, which limits the available flexibilizing window.

    When Non-Phthalate Dibenzoate Ester Needs a Higher-Boiling Diol Backbone

    Benzoic acid melt esterification with TPG proceeds as an equilibrium-limited dehydration in a 5,000 L stainless steel reactor equipped with a nitrogen sparge ring and a packed distillation column. The benzoic acid to TPG molar ratio is maintained at 2.0–2.3:1 to target the dibenzoate ester, with tetrabutyl titanate catalyst at 0.05–0.2 wt% and hypophosphorous acid at 0.1–0.5 wt% as a color stabilizer. Reaction temperature is stepped from 180 °C to 220 °C; the nitrogen sparge removes water and residual benzoic acid is stripped under vacuum below 10 kPa for 2–4 h. The product is neutralized with dilute sodium carbonate, washed, and filtered through activated clay to reach an acid value below 1.0 mg KOH/g. In downstream PVC plastisol compounding, the TPG dibenzoate product is used at 20–40 phr as a non-phthalate plasticizer; gelation fusion behavior is evaluated with a torque rheometer according to ASTM D2538-18. The higher molecular weight and lower volatility relative to dipropylene glycol dibenzoate make it suitable for heat-exposed calendered and spread-coated PVC constructions. Regulatory compliance is governed by EU REACH (EC) No 1907/2006, US EPA TSCA inventory status, and absence from the phthalate restriction entries in REACH Annex XVII. Terminal finished product types include PVC flooring wear layers, vinyl wall coverings, hot-melt adhesives, and polyurethane sealants. At TPG dibenzoate loadings above 40 phr, exudation can occur under 60 °C aging unless compatibilizing epoxidized soybean oil is increased; published compatibility data for this specific ester in all PVC suspension resin grades is limited and requires grade-by-grade validation.

    In anhydrous cosmetic manufacturing lines, TPG is introduced into the water phase as a humectant and viscosity-reducing solvent before high-shear homogenization. Leave-on skin care formulations incorporate TPG at 1–5 wt%, while rinse-off hair care and shaving preparations use 2–8 wt%; the upper limit is set not by solubility but by tack formation at high relative humidity. The ingredient is listed as Tripropylene Glycol under the INCI system and is evaluated for safety under EU Cosmetic Regulation (EC) No 1223/2009. In production, TPG is mixed with deionized water at 25–45 °C in a closed stainless steel tank, then combined with carbomer or acrylate copolymers before neutralization; a rotor-stator homogenizer operating at 3,000–5,000 rpm disperses the polymer phase. Avoid preblending with undiluted cationic conditioning polymers because localized high concentration can induce precipitation. Terminal product types include hair dye developers, styling gels, skin serums, and shaving creams.

    High-Speed PET Spin Finish Solvency and Roll Deposition Boundaries

    Polyethylene terephthalate high-speed spinning generates frictional heat at the godet and draw roller surfaces; spin finish formulations therefore require a lubricant base with a flash point high enough to avoid fuming and a decomposition residue low enough to prevent set deposits on draw rolls. TPG is blended into neat spin finish bases at 10–25 wt% with ethoxylated fatty acid esters and emulsifiers. The neat finish is prepared at 40–60 °C under low-shear agitation, then diluted with deionized water to a working emulsion of 8–15% active matter and applied through metered ceramic kiss rolls to achieve 0.4–1.0% finish-on-yarn by mass. Flash point of the neat blend is determined by ASTM D93-20; thermogravimetric decomposition residue is measured by ISO 11358-1:2022, with a residue below 0.02% at 300 °C commonly specified for high-speed texturing. Regulatory compliance is evaluated under OEKO-TEX Standard 100 Annex 4 limits and ZDHC MRSL Level 1 for spin finishes. Excessive TPG above 25 wt% has been associated with roll deposit formation at spinneret speeds above 2,500 m/min because film thickness in the finish layer increases with base viscosity. Terminal product types include PET partially oriented yarn, draw-textured yarn, PA6/PA66 tire cord, and carpet yarn.

    Screen Wash and Anilox Reconditioning Without High-VOC Flammability Spikes

    Because flexographic and screen-printing press washes must balance fast ink solvency with low flammability exposure, TPG is formulated into water-dilutable cleaning blends at 10–30 wt% to extend wet contact time on anilox cells without contributing to flash-fire hazards. A typical press wash is blended at ambient temperature in an explosion-proof stainless steel vessel; the TPG charge is added after the ketone or ester solvent fraction, followed by surfactant and deionized water. Evaporation rates are compared against n-butyl acetate using ASTM D3539-11; TPG has a vapor pressure below 0.1 kPa at 20 °C, which places it in the low-volatility fraction of the formulation. Compliance for industrial use follows EU Directive 2010/75/EU solvent emissions provisions and EU REACH (EC) No 1907/2006; finished preparations for use in food-contact packaging print removal require residue verification because TPG is not intrinsically a food-contact solvent. The end product types include flexographic anilox cleaner concentrates, screen reclamation fluids, blanket washes, and ink-spray removal fluids. At concentrations above 30 wt%, drying residue on ceramic anilox rolls becomes measurable after 15 min at 25 °C, creating a subsequent print defect risk when the same roll is returned without re-rinse.

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    Сертификация и соответствие требованиям
    Более подробное введение
    Трипропиленгликол (TPG; CAS 24800-44-0; молекулярная формула C9H20O4; молярная масса 192,25 g·mol-1) - дискретный полиэфирный диол, содержащий три оксипропиленовые повторяющиеся единицы и две терминальные гидроксильные группы. Коммерческий материал производится посредством катализированного опоксилирования дипропиленгликоля или контролируемой реакции оксида пропилена с водой; Продукт поставляется в виде прозрачной гигроскопической жидкости. Обозначения промышленных классов не носят номера моделей таким же образом, как инженерные термопластики; поставщики дифференцируют стандартный сорт, низкий водный сорт и низкий альдегидный сорт. Стандартный класс обычно указывается на 98,5-99,5 wt% содержание диоля, с водой на ≤0,10 wt% и цветом ниже 15 единиц Pt-Co при испытании в соответствии с ASTM D1209. Низководный сорт вакуумно очищается до ≤0,05 wt% воды, в то время как низкоалдегидный сорт рафинируется до < 20 ppm альдегид, выраженный в виде пропионалдегида для перехода по потоку с чувствительностью к запаху и цвету.

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