Дихлорметан

    • Название продукта: Дихлорметан
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    Спецификации
    Код ТН ВЭД
    Название продукта Дихлорметан
    химическая формула CH2Cl2
    Название ИЮПАК Дихлорметан
    Cas номер 75-09-2
    молярная масса 84,93 г/моль
    внешность Бесцветная жидкость
    запах Эфироподобный, сладкий
    плотность 1,3266 г/см3 при 20 С
    точка плавления -96,7 С
    точка кипения 39,6 С
    Растворимость в воде 13 г/л при 20 С
    давление паров 47,4 кПа при 20 С
    показатель преломления 1,4244 при 20 ° С
    точка вспышки Никто
    Температура самозажигания 556 ° С
    вязкость 0,44 мПа·с при 20 С

    Как аккредитованный завод по производству Дихлорметана, мы соблюдаем строгие протоколы качества — каждая партия проходит тщательное тестирование для обеспечения соответствия стандартам эффективности и безопасности.

    Упаковка и хранение
    Упаковка Дихлорометан упакован в 25-литровые стальные барабаны по классификации ООН, запечатанные безопасными закрытиями, маркировками опасности и четкой химической идентификацией.
    Погрузка контейнера (20-футовый контейнер) Контейнерная загрузка (20' FCL) дихлорометана: паллетизированные барабаны, утвержденные ООН, класс 6.1, ООН 1593, надежно укладываемые/прикрепленные, маркированные с документацией об опасных грузах.
    Доставка Дихлорометан (хлорид метилена) доставляется под номером UN1593, класс опасности 6.1, группа упаковки III. Используйте упаковку, утвержденную ООН, с токсичными этикетками, правильными транспортными документами и маркировками. Транспортировка в прохладных, вентилируемых районах вдали от загрязнения/тепла; Держите контейнеры закрытыми и избегайте воздействия вдыхания. Следуйте применимым правилам DOT, IMDG и IATA. Руководство как опасный материал.
    Хранение Дихлорометан: хранить в прохладном, сухом, хорошо вентилируемом месте, подальше от прямого солнечного света, тепла и источников зажигания. Держите контейнеры плотно закрытыми, вертикальными и четко помеченными. Используйте вторичное содержание в закрытом, специальном химическом шкафе, если это необходимо. Отделяется от сильных окислителей, кислот, оснований и реактивных металлов. Избегайте дыхания парами. Обеспечить адекватную вентиляцию, использовать соответствующие средства личной защиты и соб
    Срок годности Дихлорометан стабильен при рекомендованном хранении; Срок хранения составляет 2-5 лет, когда хранится запечатанным, прохладным, сухим и подальше от света.
    Применение дихлорметана

    In pharmaceutical downstream processing, dichloromethane functions as a water-immiscible organic extractant in continuous centrifugal liquid-liquid trains where thermolabile intermediates require solvent removal below 40 °C. The solvent’s density of 1.33 g/cm³ at 20 °C and interfacial tension against brine permit rapid phase disengagement in Podbielniak centrifugal extractors and disc-stack separators. Typical extraction sequences for macrolide antibiotics, steroids, and vitamin intermediates use DCM as the heavy or light phase depending on brine concentration; phase ratio is not fixed and is adjusted after measuring distribution coefficients in laboratory shake-out and pilot partition runs. Recovery is conducted in falling-film evaporators or thin-film dryers under mild vacuum at 35–40 °C, which protects oxidation-prone APIs from thermal degradation. Residual methylene chloride in the final drug substance is governed by ICH Q3C(R8) as a Class 2 solvent with a permitted daily exposure of 6 mg/day and a concentration limit of 600 ppm. Finished API batches are analysed by headspace gas chromatography with flame ionisation detection according to USP 467 Procedure A. Production-scale dryers show batch-to-batch residual variance when static tray vacuum drying is used for crystalline filter cakes; rotating paddle dryers and double-cone dryers reduce channeling and lower residual solvent by improving heat transfer and surface renewal. Wetted parts are specified in 316L stainless steel or Hastelloy C-276 when chloride salts are present, because DCM can hydrolyse slowly at elevated temperatures in the presence of free water and release hydrogen chloride. Operational boundaries include avoidance of strong bases and primary or secondary amines, which can react exothermically with dichloromethane, and moisture control in recovered solvent tanks to prevent acid-catalysed degradation. Published data for distribution ratios of proprietary API extraction trains are limited, so laboratory shake-out studies and pilot centrifugal runs are required for each new molecule.

    ApplicationGovernance or test methodNumerical limitAnalytical or field procedure
    Pharmaceutical residual solvent in drug substanceICH Q3C(R8) Class 2; USP 467PDE 6 mg/day; concentration limit 600 ppmHeadspace GC-FID, USP 467 Procedure A
    Vapor degreasing occupational air, United StatesOSHA 29 CFR 1910.1052PEL 25 ppm 8-hour TWA; STEL 125 ppmCharcoal tube personal sampling, GC-FID
    Vapor degreasing occupational air, ACGIHACGIH TLV/BEITLV 50 ppm 8-hour TWAPersonal sampling pump, GC-FID
    Residual solvent in decaffeinated roasted coffee, United States21 CFR 173.22810 ppm DCM in roasted coffeeHeadspace GC after moisture adjustment

    What Limits Molecular Weight Control in Interfacial Polycarbonate Synthesis?

    The interfacial phosgenation route to polycarbonate relies on methylene chloride as the organic phase dissolving oligomeric chains and polymer that forms at the aqueous-organic interface. The reaction is maintained at pH 10–11 by metered sodium hydroxide, and the reactor temperature is kept between 20 °C and 30 °C to avoid phosgene decomposition and undesired hydrolysis. Glass-lined production reactors from 10,000 L to 40,000 L are equipped with multi-stage turbine impellers and baffles; dispersion behaviour, interfacial area, and organic-phase viscosity change as molecular weight increases. Molecular weight is regulated by end-capping with a monofunctional phenol and by controlling the organic-to-aqueous phase ratio. When the DCM phase becomes too viscous or the dispersion inverts, interfacial mass transfer of phosgene into the aqueous phase becomes irregular and molecular weight distribution broadens. Viscosity numbers are measured in methylene chloride at 25 °C using dilute-solution viscometry according to ISO 1628-4:2015; the specification target depends on the grade and is converted to melt flow rate afterwards using ISO 1133-1:2022. Solvent recovery from the polymer solution is carried out by steam stripping and decantation, followed by drying of wet polymer crumb. Residual DCM in pellets must be controlled for food-contact grades under relevant national regulations. Process experience indicates that insufficient solvent volume causes the polymer-rich phase to invert into a high-viscosity continuous organic gel, increasing agitator torque and reducing phosgene consumption efficiency; excess solvent reduces throughput and raises recovery load. The glass transition temperature of the final polycarbonate is not directly influenced by DCM residual at normal drying levels, but retained solvent can generate microvoids during injection moulding if pellet pre-drying is incomplete.

    Vapor Degreaser Stabilizer Packages and Moisture Limits

    For ferrous alloys, copper alloys, and selected aluminium components, open-top vapour degreasing with dichloromethane is specified when stabilizer concentration and moisture content are both controlled. The solvent boils at 39.6 °C, and its low surface tension of approximately 28 mN/m at 20 °C provides penetration into blind holes and close-tolerance assemblies. A typical batch vapour degreaser consists of a boiling sump, an ultrasonically agitated immersion section, a condensation zone maintained by cooling coils, and a freeboard section; operating practice follows ASTM D3698 for solvent vapour degreasing operations. Proprietary stabilizer packages, often acid acceptors based on epoxide or oxide chemistry, are maintained at concentrations specified by the solvent supplier to neutralise hydrolysis-derived hydrogen chloride. Water ingress from part drag-out or humid air is the dominant production risk; water separators and desiccant loops are installed to keep water below the stabiliser neutralisation breakpoint. When stabilizer depletion occurs, the solvent becomes acidic and can corrode aluminium parts and stainless steel sump walls, producing soluble metal chlorides that contaminate surfaces. Occupational exposure is controlled under OSHA 29 CFR 1910.1052 with a permissible exposure limit of 25 ppm as an 8-hour time-weighted average and a short-term exposure limit of 125 ppm; ACGIH lists a threshold limit value of 50 ppm as an 8-hour TWA. Carbon adsorption and refrigeration condensers recover solvent from the vapour zone and reduce emissions. DCM is nonflammable under normal vapour degreasing conditions, but thermal decomposition in a fire or on ignition sources can generate hydrogen chloride and traces of phosgene; therefore heating elements are specified with temperature interlocks. Magnesium and reactive aluminium fines are incompatible with DCM vapour degreasing because finely divided metal can react with chlorinated solvent under specific conditions.

    Flexible slabstock polyurethane lines use methylene chloride as an auxiliary physical blowing agent metered into the polyol preblend, where the exothermic isocyanate-water reaction raises block core temperature to 140–160 °C. The solvent boils at 39.6 °C, vaporises in the rising foam, and supplements carbon dioxide from the water reaction to lower apparent density. DCM loadings in slabstock formulations commonly range from 2 php to 8 php; the exact level depends on desired core density, block height, and the water level in the formulation. At higher loadings, the endothermic vaporisation of DCM reduces block temperature, delays urea and urethane gelation, and plasticises cell struts, which can result in foam collapse, internal splits, or coarse cell structure. Production lines use high-pressure metering units and multistream mixheads from slabstock equipment manufacturers, with laydown onto an inclined trough and continuous side paper feeds. Blocks of 0.8 m to 1.2 m height are cured at ambient temperature before cutting. Apparent core density is measured according to ISO 845; tensile, elongation, and tear properties are evaluated under ASTM D3574-17 Test E and Test F. Because DCM lowers the density without contributing to polymer formation, formulators compensate by adjusting the isocyanate index, typically in the 105–115 range for flexible slabstock grades, to maintain load-bearing and resilience. Batch-to-batch variance in DCM metering at the mixhead directly changes core density and hardness, so mass flow meters are calibrated against the solvent’s density of 1.33 g/cm³ at 20 °C. Operational boundaries include avoiding excessive DCM above the formulation-specific stability limit and controlling ventilation around block storage because residual DCM continues to diffuse from the foam during cure. DCM is not used in moulded foam lines with closed moulds where the exotherm and venting conditions differ and where solvent retention can cause demoulding defects.

    For optical-grade cellulose triacetate film casting, dichloromethane serves as the primary dope solvent in a blended solvent system with methanol. The low boiling point of 39.6 °C allows controlled evaporative casting from a slot die onto a stainless steel belt, forming a film with optical retardation and thickness uniformity controlled by die lip gap and solvent partial pressure in the casting chamber. DCM dissolves cellulose triacetate at solids loadings of 15–25 wt%; methanol shortens the cloud point and modifies dope viscosity. Filtration through 5–10 μm metal fibre filters removes gels before casting. Solvent-laden air is recovered through carbon beds and condensation. Residual solvent is reduced by multi-zone drying at temperature ramps below film deformation threshold. Production experience shows that high humidity in casting rooms causes rapid evaporative cooling and moisture condensation on the cast film, producing surface defects; casting chambers are therefore operated under dew point control. Cellulose triacetate film is used in polarising plate protective layers, photographic film base, and display components. Analytical specifications include haze, thickness tolerance, and residual solvent concentration; relevant test methods are published by film manufacturers.

    Adhesive Bench Data Distinguishes Methylene Chloride from Acetone in Acrylic Solvent Cement

    Solvent cement for cast acrylic, extruded acrylic, and certain polycarbonate or ABS joints is formulated with methylene chloride as the primary fast-evaporating carrier because its boiling point of 39.6 °C and vapour pressure of approximately 47 kPa at 20 °C produce open times of 15–60 s at 23 °C and 50% RH. The cement usually contains 10–20 wt% acrylic resin or polymer in place of monomer, and viscosity is adjusted to 150–500 mPa·s with a Brookfield viscometer at 25 °C. DCM dissolves the surface layers of the thermoplastic, creating an interpenetrating zone that solidifies as the solvent evaporates; joint strength depends on surface preparation, capillary fill, and the absence of solvent trapping. Tensile shear strength of rigid plastic lap joints can be tested under ASTM D3163, although published data for specific acrylic cements vary with resin type, bond line thickness, and conditioning. Bond line thickness is typically controlled between 0.05 mm and 0.25 mm; thick bond lines retain solvent and show reduced strength. DCM is distinguished from acetone by higher density, lower flammability, and more aggressive solvency for polycarbonate and acrylic, but it also attacks many engineering thermoplastics and must not be used with polyethylene, polypropylene, or nylon parts. Industrial adhesive operations require local exhaust ventilation because the solvent’s occupational exposure limit is 25 ppm under OSHA 29 CFR 1910.1052. Amine-functional additives are avoided because they can react with DCM and generate corrosive by-products. Solvent cement containing DCM is not suitable for direct food-contact surfaces or for bonding components that cannot be vented during cure.

    When Green Coffee Bean Extraction Trains Run Below 10 ppm Residual Solvent

    In direct solvent decaffeination, green coffee beans are steamed and moistened, then contacted with methylene chloride in countercurrent fixed-bed extraction vessels to remove caffeine while retaining much of the bean matrix. The process is differentiated from supercritical CO2 decaffeination by lower capital cost and high caffeine selectivity, but it can co-extract some waxes and flavour precursors. Moisture content of green beans is raised before extraction to improve mass transfer, and DCM is recirculated through the bed at a controlled temperature below the point of excessive wax extraction. After extraction, beans are steamed to strip residual DCM, dried to original moisture, and roasted. United States regulation 21 CFR 173.228 permits methylene chloride as a decaffeination solvent and sets a residual limit of 10 ppm in roasted coffee. Analytical verification is performed by headspace gas chromatography with flame ionisation detection after moisture adjustment and sample comminution. Coffee processing lines install carbon adsorption and solvent recovery condensers on stripping vents to limit emission and operator exposure; personal monitoring follows OSHA 29 CFR 1910.1052 with an 8-hour TWA of 25 ppm. Decaffeinated coffee produced with DCM retains high caffeine-removal efficiency but can show batch-dependent changes in cup profile because methylene chloride extracts non-trigonelline flavour-active compounds; process control therefore uses fixed solvent-to-bean ratio and extraction time rather than residual caffeine alone. Published data for continuous countercurrent decaffeination equipment configurations are limited, so scale-up from pilot fixed-bed tests requires bean bed pressure-drop measurement and solvent flow distribution checks.

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    Сертификация и соответствие требованиям
    Более подробное введение
    Дихлорометан (хлорид метилена, CAS 75-09-2) является хлорированным растворителем C1 с молярной массой 84,93 г/моль, температурой кипения 39,6 °C при 101,3 кПа, плотностью 1,3266 г/см³ при 20 °C, и растворимостью в воде 13 г/L при 25 °C. Коммерческое снабжение дифференцируется по сорту, а не молекулярным вариациям: технические, паравые обезжирения, уретан, реагент ACS и фармацевтические экстракционные сорта являются основными обозначениями. Каждый класс определяется чистотой, водой, кислотностью, нелетучими остатками и пакетом стабилизатора. Растворитель используется в фармацевтической экстракции закрытого цикла, очистке металлов, обработке полимеров и лабораторных приложениях, где низкая температура кипения и высокая растворимость Каури-бутанола примерно 136 позволяют отделяться от высококипящих остатков. Регулируемые пределы воздействия в соответствии с 29 CFR 1910.1052 составляют 25 ppm 8-часовой TWA и 125 ppm STEL, с уровнем действия 12,5 ppm.

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