Продукты

триэтиленгликол

    • Название продукта: триэтиленгликол
    • 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
    НазваниеПродукта триэтиленгликол
    Название Iupac 2-[2-(2-гидроксиэтокси)этокси]этанол
    Молекулярная формула C6H14O4
    Молекулярный вес 150,17 г/моль
    Номер кассы 112-27-6
    Номер Ecn 203-953-2
    внешность Бесцветная, вязкая жидкость
    запах Практически без запаха
    Точка плавления -7 °С
    Бойлингпойнт 285 °C при 760 mmHg
    плотность 1,127 г/мл при 20 °C
    вязкость 49 мПа·с при 20 °C
    Рефракционный индекс 1,4561 при 20 ° C
    Flashpoint 165 °C закрытая чашка
    Температура самовоспламенения 371 ° C
    растворимость Смешивается с водой, этанолом и ацетоном; растворимый в хлороформе; слегка растворимый в эфире
    Давление пара <0,01 mmHg при 20 °C
    гигроскопичность гигроскопичный
    рН 5-7 для водного раствора
    чистота ≥99% типичный

    Как аккредитованная фабрика по производству триэтиленгликоля, мы соблюдаем строгие протоколы качества - каждая партия подвергается строгим испытаниям для обеспечения последовательных стандартов эффективности и безопасности.

    Упаковка и хранение
    Упаковка Триетиленгликол поставляется в стальных барабанах на 225 кг или сумках IBC на 1000 кг, надежно запечатанных для промышленного транспорта.
    Погрузка контейнера (20-футовый контейнер) 20′ FCL контейнер для загрузки триэтиленгликоля в барабаны или МБК, надлежащим образом закрепленные и маркированные для международных морских перевозок.
    Доставка Триетиленгликол обычно не регулируется для транспорта. Он поставляется в стальных барабанах, сумках IBC, цистернах или вагонах. Держите контейнеры закрытыми, сухими и подальше от окислителей. Хранить в прохладном, хорошо вентилируемом месте. Обычно не требуются специальные плакаты для опасности.
    Хранение Храните триэтиленгликол в плотно закрытых, маркированных контейнерах в прохладном, сухом, хорошо вентилируемом пространстве, подальше от тепла, искр, открытого пламени и сильных окислителей. Поскольку он гигроскопичен, предотвращает проникновение влаги. Используйте совместимые материалы, такие как углеродная сталь, нержавеющая сталь или полиэтилен, с вторичным удержанием. Регулярно проверять утечки и следовать SDS и местным правилам.
    Срок годности Триетиленгликол обычно имеет двухлетний срок хранения, когда хранится запечатанным, прохладным, сухим и защищенным от влаги и воздуха.
    Применение триэтиленгликоля

    Natural Gas Dehydration Contactor Control and the 204°C Reboiler Threshold

    In closed-loop absorption dehydration units, triethylene glycol functions as the circulating liquid desiccant, with lean TEG at 98.5–99.0 wt% injected into the top tray or packed bed of a vertical contactor while water-saturated natural gas enters below. Water vapour is absorbed into the glycol phase because the equilibrium water partial pressure over TEG is substantially lower than that over the gas at contactor conditions. The contactor is typically operated at 20–40°C and at pipeline or field pressure, where high pressure favours water removal but raises methane solubility. Rich TEG leaving the contactor is let down to a flash separator at 350–500 kPa to release entrained light hydrocarbons before passing through particle filtration and activated carbon beds. Regeneration occurs in a reboiler heated by a fire tube or hot oil circuit; the bulk liquid temperature is maintained at 177–204°C to evaporate absorbed water without exceeding the thermal degradation threshold. The reboiler overhead vapours are condensed, and the recovered water is discharged. For deeper pipeline dew-point requirements, stripping gas or a vacuum-assisted regenerator can raise lean TEG concentration to 99.95 wt%. Circulation rate is normally set at 2–5 U.S. gal per lbm water removed, with the exact rate determined by contactor temperature, target dew point depression, and glycol purity. Excessive circulation above this envelope increases reboiler fuel consumption without proportional dew point depression gain.

    The process is controlled by water dew-point measurement at the contactor outlet and by lean TEG concentration determined according to ASTM E202-12. Water dew-point data are correlated to water content by ISO 18453:2004, and the gas phase water vapour content may be verified by ASTM D1142-95 or ISO 6327:1981. Design and operating parameters for TEG dehydration units are provided in GPSA Engineering Data Book Section 20. The finished dry gas is used as pipeline-specification natural gas, LNG plant feed, or gas-lift gas. Operational failure modes include foaming in the contactor when hydrocarbon carryover exceeds flash separator capacity, reboiler tube fouling caused by salt accumulation, and accelerated corrosion in the regeneration overheads when TEG thermally degrades above 204°C. The upper reboiler temperature is therefore treated as a hard operational boundary.

    ParameterTypical range /limitSource /standard
    Lean TEG to contactor98.5–99.0 wt%ASTM E202-12
    Reboiler bulk temperature177–204°CGPSA Engineering Data Book Section 20
    Circulation rate2–5 U.S. gal per lbm water removedGPSA Engineering Data Book Section 20
    Water dew point depression20–45°C at contactor 20–40°CISO 18453:2004 correlation
    Thermal degradation threshold204°C maximumoperational limit

    Incompatibility data for TEG service include strong oxidizers and halogenated cleaning agents; both can initiate exothermic decomposition or contaminate the circulating glycol. Spent TEG that accumulates organic acids, salts, or iron scale is either vacuum-distilled or disposed through licensed regeneration. Published field data for individual contactor configurations vary, but the reboiler temperature limit and circulation rate envelope are consistent across supplier technical bulletins.

    Because triethylene glycol contributes two primary hydroxyl groups and an ethoxy chain without the branching of glycerol, it is charged at 10–30 mol% of the total polyol blend in unsaturated polyester and alkyd resin esterification. The reactor train includes a 316L stainless steel vessel, an anchor agitator, a partial condenser, and a decanter for azeotropic water removal. The charge is heated to 180–230°C under a nitrogen sparge; water of esterification is removed continuously, and xylene is introduced as an azeotropic entrainer when the batch approaches 200°C to suppress glycol loss. Reaction progress is tracked by acid value and cone-and-plate viscosity, with the endpoint typically controlled at 15–30 mg KOH/g acid value before the resin is cooled to 120–140°C and inhibited with hydroquinone at 50–200 ppm of total monomer. The resin is then let down into styrene monomer at 30–40 wt% to form an unsaturated polyester resin for downstream compounding. TEG incorporation reduces crosslink density relative to propylene glycol-based backbones and increases tensile elongation; cured specimens are evaluated by ASTM D638-14 and ISO 527-2:2012, while heat deflection temperature is measured under ISO 75-2:2013. For cured alkyd films intended as metal packaging coatings, migration testing under 21 CFR 175.300 may apply. End product types include corrosion-resistant fibreglass-reinforced laminates, ambient-cure marine putty, coil coatings, and industrial alkyd primers. Batch-to-batch acid value variance is managed by stopping esterification at a fixed acid value rather than fixed reaction time; deviation above the specification window leads to styrene compatibility problems during letdown. Published data for TEG-containing formulations in marine gel coats is limited, so gel time and hot-tack must be revalidated after any polyol ratio adjustment.

    Why Is 0.05 wt% TEG the Upper Bound for Cement Mill Chambers?

    Across cement ball mill circuits, triethylene glycol is applied as a process addition at 0.01–0.05 wt% by clinker mass. The material is diluted to a 30–50 wt% aqueous solution and sprayed through a metered injection lance at the mill inlet or onto the second-compartment grinding media. Mill outlet temperature is maintained at 90–120°C; within this range TEG adsorbs onto freshly fractured clinker surfaces and reduces particle agglomeration, allowing the separator to return less overground material to the mill. Dosages above 0.05 wt% are avoided because they can measurably alter setting time and air-void stability in concrete. Compliance is anchored to processing additions permitted under ASTM C465-23 for cements meeting ASTM C150/C150M-22, with setting time measured by ASTM C191-21 and EN 196-3:2016 where applicable. Mill performance is tracked by Blaine fineness according to ASTM C204-18 and 45 µm sieve residue. In the EN 197-1:2011 system, the finished cement may be declared as CEM I 52.5 N or CEM II/A-LL depending on clinker and limestone composition. End product types include bulk and bagged Portland cement for ready-mixed concrete, precast elements, and high-early-strength construction applications.

    When cast polyurethane systems require increased hard-segment content beyond that supplied by long-chain polyester or polyether polyols, triethylene glycol is introduced at 5–20 parts per 100 parts of long-chain polyol. The diol is first vacuum dehydrated at 100–120°C until residual moisture is below 0.05 wt%; moisture above this threshold reacts with isocyanate to generate carbon dioxide and produces bubble defects in cast elastomers. Dehydrated polyol and TEG are mixed with MDI or TDI at an NCO/OH ratio of 1.6–2.2, degassed under vacuum, and poured into moulds. Pot life under exotherm is controlled by keeping the prepolymer mass below 80°C; failure to control exotherm leads to gelation before complete mould fill. Hardness is measured with ASTM D2240-15 durometers, and tensile properties are determined by DIN 53504 or ASTM D638-14. Compliance for industrial goods requires screening against REACH Regulation (EC) No 1907/2006 candidate list substances. End product types include high-abrasion rollers, squeegee blades, hydraulic seals, and mining screen pads. TEG chain extension increases hard-segment content and raises Shore A hardness compared with butanediol-extended systems, but the processing window narrows because primary hydroxyl groups react faster with isocyanate than secondary hydroxyls. Batch-to-batch residual moisture variation after vacuum dehydration is the principal cause of void-defect variability on casting lines.

    When TEG Dibenzoate Replaces General-Purpose Phthalate Plasticizers in Flexible PVC

    At plasticizer loadings of 30–70 phr, flexible PVC dry blends using triethylene glycol dibenzoate or triethylene glycol di-2-ethylhexanoate are compounded in a high-speed hot mixer at 80–110°C. The dry blend is dropped into a cooling mixer and then processed on a counter-rotating twin-screw extruder at 150–180°C for pelletising or direct calendering. Plasticizer solvation rate and gelation behaviour depend on acid value and water content; residual moisture above 0.1 wt% in the plasticizer can create surface defects during extrusion. The acid value of the TEG ester is controlled below 0.5 mg KOH/g to prevent interference with calcium-zinc heat stabilizers. Compliance for electrical and electronic articles is verified against RoHS Directive 2011/65/EU Annex II, where restricted phthalate plasticisers are limited to 0.1 wt% in homogeneous material; TEG esters are outside that listing but downstream buyers may request migration screening under ISO 8124-6:2018 for toy and childcare applications and compliance with REACH Regulation (EC) No 1907/2006 Annex XVII entry 51 for phthalate alternatives. Mechanical properties are measured per ASTM D638-14 and ASTM D2240-15. End product types include vinyl flooring, garden hose jackets, automotive cable sheathing, and industrial gaskets. The processing boundary is plasticizer solvation temperature; TEG dibenzoate requires higher fusion temperatures than DOP at equivalent loading, so gelation must be confirmed by torque rheometry before line speed is increased. Published data for specific TEG dibenzoate formulations in high-speed calender lines is limited; pilot-scale gelation curves should be re-established after any change in filler package.

    Compliance parameterStandard /test methodThreshold /requirement
    Restricted phthalate plasticizer content in homogeneous materialRoHS Directive 2011/65/EU Annex II0.1 wt% maximum
    Phthalate migration from child-use articlesISO 8124-6:2018report value against REACH Annex XVII entry 51 limits
    Tensile strength and elongation at breakASTM D638-14report value at 23±2°C

    Applied by ceramic kiss roll or metered dosing before draw texturing, triethylene glycol functions as a humectant and viscosity regulator in spin finish concentrates at 1–5 wt% of the concentrate. The diluted emulsion is dosed onto filament yarn to an oil pick-up of 0.3–1.5 wt% of yarn mass. In polyester texturing, the finish must remain thermally stable through heater zones at 180–210°C; in polyamide 6,6 processes, heater temperatures are typically held at 180–200°C. Production lines monitor finish viscosity, pH, and first godet roll deposit formation; TEG-containing finishes become tacky on heater plates when oil pick-up exceeds 1.5 wt%, causing yarn breakage and heater plate soiling. Compliance requires absence of substances listed on the ZDHC Manufacturing Restricted Substances List V3.1 and conformity to OEKO-TEX Standard 100 Annex 4 limits for textile chemicals where the finished yarn is sold into apparel or home textile chains. End product types include draw-textured polyester yarn for warp knitting, polyamide 6,6 tyre cord, and industrial polyester sewing thread. Published data for specific TEG contents in high-speed POY texturing formulations is limited; mill trials are required after any change in TEG concentration or emulsion droplet size.

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    Сертификация и соответствие требованиям
    Более подробное введение
    Триетиленгликол (TEG; CAS 112-27-6; C6H14O4; относительная молекулярная масса 150,17) - это линейный гигроскопический гликольный эфир, подаваемый в виде прозрачной жидкости с удельной тяжестью 1,1255 при 20/20°C и нормальной температурой кипения примерно 285°C при 101,3 кПа. Продукт определяется классом чистоты, а не одним номером модели; коммерческие обозначения включают технический класс, класс дегидратации газа с низким содержанием хлора и класс дистиллированного растворителя. Типичными конфигурациями доставки являются грузовики-цистерны, изоцистерны ISO и стальные барабаны 227 кг. Хранение углеродной стали с азотным покрытием используется там, где необходимо контролировать сбор воды и окисление.

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