оксид этилена

    • Название продукта: оксид этилена
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    Спецификации
    Код ТН ВЭД
    имя оксид этилена
    Номер кассы 75-21-8
    Номер Einecs 200-849-9
    Химическая формула C2H4O
    Молярная масса 44,05 г/моль
    Название Iupac Оксиран
    внешность Бесцветный газ или жидкость под давлением
    запах Эфироподобный, сладкий
    Бойлингпойнт 10,7 ° C
    Точка плавления -111,3 °С
    плотность 0,882 г/мл при 20 °C в виде жидкости
    Плотность пара 1.52 относительно воздуха
    Давление пара 1,46 атм при 20 °C
    растворимость Смешивается с водой, этанолом, эфиром и многими органическими растворителями
    Flashpoint -29 °C закрытая чашка
    Температура самовоспламенения 429 ° С
    Взрывные границы 3-100% по объему в воздухе
    вязкость 0,31 мПа·с при 20 °C
    Рефракционный индекс 1,3597 при 7 ° C
    ЛогП -0,30
    Критическая температура 195,8 °С
    Критическое давление 7,19 МПа
    Heatofvaporization теплоиспарение 25,5 кДж/моль
    Номер ООН 1040
    Класс опасности 2.3 Токсичный газ; 2.1 Запламеняющийся газ
    Номер Rtecs КХ2450000

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

    Упаковка и хранение
    Упаковка Оксид этилена, упакованный в герметизированные стальные цилиндры с номинальным давлением, каждый из которых содержит 20 кг сжиженного газа, маркированный токсичным, воспламеняемым, с клапаном смягчения давления.
    Погрузка контейнера (20-футовый контейнер) Загрузка оксида этилена в 20-футовую FCL в соответствии с правилами опасных грузов, с использованием цистерн ISO с номинальным давлением и строгих механизмов контроля безопасности.
    Доставка Оксид этилена перевозится в виде сжиженного, воспламеняемого, токсичного газа под давлением (ООН 1040, класс 2.3/2.1). Для этого требуются цилиндры, соответствующие DOT /IMDG /IATA, изолированные цистерны или цистерны с контролем давления /температуры, обнаружением утечки, плакатированием и строгой сегрегацией. Опасности вдыхания и взрыва требуют специализированной обработки и реагирования на чрезвычайные ситуации.
    Хранение Хранить оксид этилена в виде сжиженного сжатого газа в плотно закрытых цилиндрах с номинальным давлением или охлажденных заземленных сосудах. Держите в прохладном, сухом, хорошо вентилируемом, огнестойком месте подальше от тепла, солнечного света, источников зажигания, окислителей, кислот, оснований и катализаторов. Защищайте контейнеры вертикально, четко маркируйте, используйте взрывоопасное оборудование, обнаруживайте утечку и изолируйте от занятых пространств. Следуйте местным правилам.
    Срок годности Оксид этилена не имеет фиксированного срока хранения; хранить запечатанные, прохладные, сухие, подальше от тепла, кислот, оснований, катализаторов для предотвращения полимеризации.
    Применение оксида этилена

    Ethylene Glycol Production via Thermal Hydration Chemistry

    Commercial MEG production from ethylene oxide and water is carried out in a liquid-phase thermal hydration reactor that operates without catalyst at 190–200 °C and 1.4–2.0 MPa. Water is fed at a molar ratio of 20:1 to 25:1 relative to EO to suppress higher glycols, giving a reactor effluent with MEG selectivity of 88–94 mol% and the balance split between diethylene glycol and triethylene glycol. The hydration exotherm is substantial enough to require continuous temperature monitoring; industrial plants use multiple-effect evaporators with 3 to 6 effects to recover heat and reconcentrate recycle water. Process controls include feed-forward mass ratio control of EO and water, static mixers for instantaneous dilution, and oxygen exclusion to keep the headspace below the lower flammability limit of 3 vol% in air. Polyester-grade MEG is recovered by vacuum distillation and is commonly specified against ASTM E2470 for polyester-grade monoethylene glycol, requiring UV transmittance at 220 nm above 70%, UV transmittance at 250 nm above 90%, water below 0.05 wt%, iron below 0.1 mg/kg, and chloride below 0.1 mg/kg.

    Downstream, the MEG stream is mixed with purified terephthalic acid to form bis(2-hydroxyethyl) terephthalate under esterification conditions before polycondensation to poly(ethylene terephthalate). Fiber spinning lines and bottle-grade solid-state polymerization units require aldehyde and acid control because unsaturated carbonyl byproducts in MEG affect resin color and acetaldehyde generation. Equipment for the hydration section typically includes 316L stainless steel plug-flow reactors, falling-film evaporators, and structured-packing vacuum columns; batch-to-batch variance in PET-grade MEG from different EO sources is addressed by blending and by ultraviolet spectroscopy at 220–350 nm. Excessive water ratio increases steam consumption in evaporation and condensate treatment beyond the energy-recovery range of the plant, while insufficient water ratio shifts selectivity toward diethylene glycol and triethylene glycol and can reduce polyester-grade yield. Published data for specific thermal hydration configurations using reactive distillation is limited; standard commercial plants do not use catalytic hydration due to catalyst leaching and salt management issues.

    Before ethylene oxide is admitted to a batch ethoxylation reactor, the C12–C14 fatty alcohol initiator is dried to less than 0.1 wt% water and potassium hydroxide is added at 0.2–1.0 wt% of the final batch; otherwise water reacts with EO to form polyethylene glycol, which increases viscosity and changes cloud point. The reactor is a 10–25 m³ 316L stainless steel stirred vessel rated for 0.6–1.0 MPa, equipped with an internal cooling coil, an external pumped loop through a shell-and-tube heat exchanger, and a Coriolis mass flow meter on the EO dip pipe. Ethylene oxide is fed below the liquid surface under nitrogen blanketing with oxygen maintained below 5 vol%, while the charge is held at 140–170 °C and 0.3–0.5 MPa.

    The EO:alcohol molar ratio is selected between 3:1 and 12:1 to deliver a target adduct distribution; a 7-mole ethoxylate used in liquid laundry detergents shows a Poisson-like oligomer profile when produced with conventional KOH, whereas narrow-range ethoxylates require calcium/aluminum alkoxide or acid catalysts. The exothermic enthalpy of EO addition, approximately 92 kJ mol⁻¹ of EO ring-opened, defines the maximum EO feed rate; cooling capacity rather than reactor volume usually limits batch throughput. After digestion, the alkaline product is neutralized with acetic or lactic acid, filtered, and sometimes bleached with hydrogen peroxide; if sulfation is required, the alcohol ethoxylate is fed to a falling-film SO₃ sulfation reactor to produce alcohol ether sulfate. Compliance for detergent intermediates is evaluated under OECD 301B ready biodegradability and EU Regulation (EC) No 648/2004; residual EO and 1,4-dioxane are controlled under REACH registration exposure scenarios.

    What NH₃:EO Molar Ratio Controls the MEA/DEA/TEA Split?

    Because ethylene oxide can add sequentially to primary, secondary, and tertiary amine sites, ethanolamine synthesis produces three commercially significant alkanolamines in a single reaction train. Monoethanolamine can add a second EO molecule to form diethanolamine, and diethanolamine can add a third to form triethanolamine. The product distribution is therefore shifted by the NH₃:EO feed molar ratio and by reactor residence time. High ammonia excess, in the range of 20:1 to 40:1, suppresses sequential EO addition and produces an effluent rich in MEA; reducing the ratio to 4:1 or lower increases DEA and TEA. Industrial reactors for MEA production operate at 60–90 °C and 1.0–4.0 MPa with a liquid-full tubular reactor and ammonia recycle; the reactor effluent is stripped to recover unreacted ammonia, then vacuum-fractionated into MEA, DEA, and TEA fractions using three vacuum columns.

    Water content must be kept below 0.5 wt% because water opens a competing hydrolysis pathway to ethylene glycols that are difficult to separate from ethanolamines. Therefore the ammonia feed is dried, and recycled ammonia is passed through molecular sieve or distillation drying. For MEA used in gas treating, specification testing includes total amines by titration, water by Karl Fischer according to ASTM E203, and APHA color by ASTM D1209; DEA used in glyphosate production is controlled for secondary amine content and iron content, while TEA for cement grinding aids is supplied as 85 wt% or 99 wt% triethanolamine with limited diethanolamine impurity. Process safety for the ammonia-EO reaction is governed by the toxicity and flammability of both feedstocks; pressure relief valves, ammonia gas detectors, and EO area monitors are interlocked with automatic block valves.

    At the core of flexible polyurethane slabstock production, a triol polyether polyol synthesized from glycerin and a mixed propylene oxide/ethylene oxide feed requires precise control over the ethylene oxide cap ratio. The base polyol is first produced by propoxylation under 0.25–0.55 MPa at 110–130 °C with KOH at 0.2–0.5 wt% of the final charge; ethylene oxide is then added as a terminal block at a molar ratio chosen to raise primary hydroxyl content to 70–80 mol%. The reactor is a 10–30 m³ stainless steel autoclave with an external recirculation loop and a heat exchanger sized for a peak removal rate that matches the EO addition exotherm of roughly 92–98 kJ mol⁻¹; gas-phase EO is condensed and returned, and residual EO is stripped under vacuum before neutralization with lactic acid or phosphoric acid.

    The resulting polyether triol has a hydroxyl number of 28–56 mg KOH g⁻¹ for conventional slabstock and a number-average molecular weight of 3000–6000 g mol⁻¹. The ethylene oxide cap influences processing: at primary hydroxyl content below 70 mol%, molded flexible foam production shows slow cure and requires higher organotin catalyst; above 85 mol%, water sensitivity and foam hardness usually deteriorate, so the target range is deliberately narrow. Quality tests for polyether polyol include hydroxyl number by ASTM D4274-21, acid number by ASTM D4662-08, and water content by ASTM D4672-18; residual potassium is checked by ICP-OES because residual alkalinity interferes with the subsequent urethane reaction. Terminal products from this polyol class include high-resilience molded foam for automotive seating, viscoelastic bedding foam, and slabstock for furniture. In high-resilience foam, the polyol is mixed with toluene diisocyanate or methylene diphenyl diisocyanate, water, catalysts, and silicone surfactants; the ethylene oxide-capped polyol provides the required reactivity profile. Published data for specific formulation performance is available from polyol producer technical data packages, but the exact relationship between ethylene oxide cap length and foam air permeability varies with surfactant package and isocyanate index.

    When Butanol Is Ethoxylated to Ethylene Glycol Monobutyl Ether

    Glycol ether plants that produce ethylene glycol monobutyl ether from n-butanol and ethylene oxide use a continuous or semi-batch liquid-phase addition at 120–150 °C and 0.3–0.7 MPa. The molar ratio of butanol to EO is kept above 3:1 to favor the monoethoxylate; lower ratios shift the chain extension toward diethylene glycol monobutyl ether and triethylene glycol monobutyl ether, which are recovered as co-products for specialty solvent blends. Sodium hydroxide or an acid catalyst is used, and the reactor is a jacketed pressure vessel with a packed distillation column to remove unreacted butanol and water; water content in the butanol feed must be below 0.1 wt% to suppress ethylene glycol formation. The monoether product is distilled to a purity above 99.0 wt%, with APHA color below 10 and water below 0.05 wt%.

    Ethylene glycol monobutyl ether is used as a coalescing solvent in waterborne architectural coatings and as a solvent in hard-surface cleaners; its compliance status under EU CLP includes occupational exposure limits and labeling for specific hazards, and finished formulations are evaluated under relevant ecolabel criteria when used in that segment. Process limitations include the tendency of acid-catalyzed systems to generate byproducts that require distillation control; neutralization of alkaline catalyst before distillation is necessary to prevent condensation of trace aldehydes.

    For pharmaceutical-grade PEG 3350, single-stage ethoxylation trains used for industrial alcohol ethoxylates are insufficient without subsequent purification for residual ethylene oxide and 1,4-dioxane. The polymer is synthesized by anionic ring-opening polymerization of EO onto a difunctional initiator such as ethylene glycol or water at 120–150 °C and 0.3–0.6 MPa with KOH or NaOH. The number-average molecular weight is set by the initiator-to-EO ratio, not by reaction time, and is confirmed by hydroxyl number titration, gel permeation chromatography, and viscosity. After the EO feed is completed, the batch is neutralized with a food-grade acid, filtered, and subjected to vacuum stripping and sometimes steam stripping to reduce EO and dioxane to pharmacopeial thresholds. Residual EO is controlled under the USP-NF monograph for polyethylene glycol and measured by gas chromatography following USP <228>; ICH Q3C limits for ethylene oxide as a genotoxic impurity are also applied when PEG is used in injectable or oral excipient systems.

    Commercial products include PEG 400 as a liquid excipient, PEG 3350 as an osmotic laxative active ingredient, and PEG 6000 as a tablet binder; each molecular weight grade has a distinct viscosity cap and hydroxyl number specification. Equipment for pharmaceutical PEG includes glass-lined or 316L reactors with cleaned-in-place piping, 0.2 µm filtration, and stainless steel storage under nitrogen to limit peroxidation. Process incompatibility exists between EO and strong acids, and residual alkali must be neutralized with food-grade acids; any contamination by amine-based additives is unacceptable because it can form nitrosamines.

    For Terminal Sterilization of Heat-Labile Polymer Devices, Ethylene Oxide Exposure Must Balance Lethality and Residue Limits

    Ethylene oxide terminal sterilization is applied to polymer-based medical devices, surgical kits, and combination products that cannot withstand steam or gamma radiation. The process is validated under ISO 11135:2014, and routine release requires demonstration of a sterility assurance level of 10−6 using biological indicators containing Bacillus atrophaeus spores according to ISO 11138-2:2017. The gas is introduced as a mixture with nitrogen or carbon dioxide to stay below the flammable limit of 3 vol% in air; chamber conditions are maintained at 37–63 °C, relative humidity 40–80%, and EO concentration 300–800 mg L⁻¹. Exposure time is set between 2 h and 12 h based on load volume, product density, and wrapping material, while post-exposure aeration at 45–55 °C removes absorbed EO from polymers.

    Ethylene oxide is compatible with polyethylene, Tyvek, polyester, and many multi-layer packaging structures, but it leaves residues in materials with high sorption capacity such as polyvinyl chloride and polyurethane. Residue limits for EO, ethylene chlorohydrin, and ethylene glycol are specified in ISO 10993-7:2008 and its amendments; devices intended for limited exposure are allowed higher residues than implants or blood-contact devices. Production-scale sterilizers are custom-built 316L chambers with vacuum pumps capable of 0.1–10 kPa, heated jackets, and gas injection through vaporizers; gas concentration is monitored by infrared spectroscopy or gas chromatography with flame ionization detection. The major process conflict is that lower temperature improves polymer compatibility but slows EO diffusion into narrow lumens; therefore a validated overkill cycle may require preconditioning at 50–60 °C and 50–70% RH for 12–24 h before gas exposure.

    ISO 11135-aligned process envelope for EtO terminal sterilization
    ParameterControl rangeReference method
    Chamber temperature37–63 °CISO 11135:2014 thermocouple mapping
    Relative humidity40–80%ISO 11135:2014 capacitive sensor
    EtO concentration300–800 mg L⁻¹IR spectroscopy or GC-FID
    Exposure time2–12 hBI kill and process challenge device dwell
    Aeration temperature45–55 °CISO 10993-7:2008 residue reduction

    Operational boundaries are set by chamber pressure, load mass, and polymer sorption; each product family requires a new validation load when packaging density or lumen geometry changes.

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    Сертификация и соответствие требованиям
    Более подробное введение
    Оксид этилена (CAS 75-21-8) - трехчленный циклический эфир, подаваемый в виде сжиженного сжатого газа с нормальной температурой кипения 10,4 °C при 101,3 кПа и давлением пара 146 кПа при 20 °C. Прямое окисление этилена газовой фазой на поддерживаемом серебряном катализаторе при температуре 200–300 °C и 1–3 МПа дает коммерческий продукт после водной скрабинга, удаления легких концов и дистилляции; Различие от партии к партии в материале высокой чистоты контролируется концентрацией стимулятора катализатора и однородностью теплопередачи реактора. Продукт обозначается не одним идентификатором модели, а классификациями, соответствующими уровням остаточной воды, альдегида, кислоты и углекислого газа. Материал полимерного класса обычно определяется в оксиде этилена ≥99,7%, в то время как материал стерилизационного класса высокой чистоты определяется в оксиде этилена ≥99,9%. Конечное использование в этиленгликоле, этоксилатах, этаноламинах, полиэфирных полиолах и стерилизации конечных устройств налагает различные допустимости к примесям, поэтому сертификат анализа, а не общая «модель», определяет пригодность.

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