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Дисульфид углерода

    • Название продукта: Дисульфид углерода
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    Спецификации
    Код ТН ВЭД
    Название продукта Дисульфид углерода
    химическая формула CS2
    Номер регистрации Cas 75-15-0
    молекулярный вес 76,14 г/моль
    внешность Бесцветная жидкость
    запах Сладкий, эфирный, хлороформоподобный; коммерческие сорта могут иметь неприятный запах
    плотность 1,263 г/см3 при 20 °C
    точка плавления -111,6 ° С
    точка кипения 46,3 ° C
    точка вспышки -30 °C (закрытый тигель)
    Температура самозажигания 90 ° C
    Пределы взрываемости 1,3-50% по объему в воздухе
    Растворимость в воде 0,2 г /100 мл при 20 ° C
    давление паров 48 кПа при 20 °C
    показатель преломления 1,627 при 20 ° C
    вязкость 0,363 мПа·с при 20 °C
    Диполярный момент 0 Д
    Номер ООН 1131

    Как аккредитованный завод по производству дисульфида углерода, мы соблюдаем строгие протоколы качества - каждая партия подвергается строгим испытаниям для обеспечения последовательных стандартов эффективности и безопасности.

    Упаковка и хранение
    Упаковка Дисульфид углерода, упакованный в 1 литровые янтарные стеклянные бутылки с крышками, покрытыми ПТФЭ, запечатанными и маркированными воспламеняемыми, токсичными и опасными для здоровья.
    Погрузка контейнера (20-футовый контейнер) Дисерный углерод (UN1131), загруженный в контейнер 20' FCL, надежно укладываемый, вентилируемый, сегрегированный и плакатированный в соответствии с правилами IMDG об опасных грузах.
    Доставка Дисульфид углерода (ООН 1131, класс 3, вспомогательный 6.1, PG I) является крайне воспламеняющейся, токсичной жидкостью. Судно в одобренных, плотно закрытых контейнерах под инертным газом, если это необходимо, подальше от тепла, искр, окислителей и источников зажигания. Используйте надлежащие воспламеняемые/токсичные плакаты, ОПС и процедуры реагирования на чрезвычайные ситуации. Проверьте применимые транспортные правила.
    Хранение Храните дисульфид углерода в прохладном, сухом, хорошо вентилируемом, огнестойком месте, подальше от тепла, искр, пламени и окислителей. Держите контейнеры плотно закрытыми, заземленными и приклеенными; использовать взрывоопасное оборудование и непроницаемое вторичное содержание. Защита от света и статического электричества. Сохраняйте минимальные запасы и отделяйте их от несовместимых материалов, включая амины и щелочные металлы. Следуйте местным правилам для воспламеняемых, токсичных жидкостей
    Срок годности Дисульфид углерода: неопределенный срок хранения, если хранится запечатанным, прохладным, темным, сухим, подальше от зажигания; Чистота может ухудшаться в плохих условиях.
    Применение дисульфида углерода

    When Cellulose Swelling and Xanthation Time Fall Outside the 30–34% CS2 Addition Window

    Viscose staple production consumes roughly 70–75% of global carbon disulfide demand in the fibre segment. Dissolving pulp with an alpha-cellulose content above 92% is steeped in 17.5–19.0% sodium hydroxide at 45–55°C for 30–45 min; the alkali cellulose is pressed to a press factor of 2.8–3.0, shredded, and oxidatively aged at 28–32°C until the degree of polymerisation declines to 270–350. Ageing time is adjusted batch-to-batch because pulp intrinsic viscosity and hemicellulose content shift the depolymerisation rate; over-aged crumb produces dope with weak gel strength, while under-aged crumb yields filtration pressure rises above 0.8 MPa in the primary viscose filter. Carbon disulfide is then metered into the xanthator at 30–34% by weight of alpha-cellulose, with the reaction held at 20–28°C by jacket water and vacuum recovery. The target gamma value for regular staple is 0.45–0.55; higher CS2 doses increase solubility but also elevate free CS2 in the dope and the by-product load in the spinning room.

    Xanthated crumb is dispersed in dilute sodium hydroxide at 5–12°C in a vacuum dissolver equipped with a high-shear impeller, forming dope with 8.5–9.3% alpha-cellulose, 5.0–5.8% sodium hydroxide, and sulphur content 2.2–2.6%. The dope is ripened until the ammonium chloride number reaches 10–16 mL of 10% NH4Cl; this is a critical control point because the ripening index determines coagulation response in the acid bath. Filtration through 20–30 µm stainless steel or cotton fibre media is followed by deaeration under −0.09 MPa gauge vacuum. The filtered dope is then extruded through spinnerets with hole diameters 70–90 µm into a coagulation bath containing 95–110 g/L H2SO4, 210–240 g/L Na2SO4, and 0.5–1.5 g/L ZnSO4 at 48–52°C. The zinc ion modulates the coagulation rate; concentrations above 2.0 g/L in regular staple lines are avoided in many plants because they accelerate skin formation and require closer spin-bath acid control. Stretch ratios from 12–20% are applied in the plastic state, after which the tow is cut and washed.

    Carbon disulfide and hydrogen sulfide are released in the spinning and regeneration step, and the gas collection system typically operates under a permanent negative pressure of 100–200 Pa in the spinneret hood. The air stream is sent to a CS2 recovery train using activated carbon adsorption or condensation, with recovered CS2 returned to the xanthation step. Because carbon disulfide has a lower explosive limit of 1.3 vol% and an autoignition temperature near 90°C, electrical installations within the classified zone are specified under ATEX 2014/34/EU as Group II, Category 2G, temperature class T6. Occupational exposure in the spinning room is managed below the OSHA 8-hour PEL of 20 ppm and, where AIHA or corporate limits are applied, below the ACGIH TLV-TWA of 1 ppm. In closed viscose lines, the main operational boundary is not cellulose solubility but gas-phase CS2 measurement: a rising concentration in the spinneret hood above 5,000 ppm triggers automatic reduction of xanthator batch charging and higher extraction airflow, because the LEL monitor alarm set point is commonly fixed at 20% of LEL, equivalent to 2,600 ppm.

    Control parameterValue /limitReference or design rule
    Lower explosive limit of CS2 in air1.3 vol% (13,000 ppm) at 25°CNFPA 325
    Autoignition temperature90°CASTM E659
    OSHA 8-hour TWA PEL20 ppm29 CFR 1910.1000 Table Z-2
    ACGIH TLV-TWA1 ppmACGIH TLV documentation for carbon disulfide
    ATEX equipment category for CS2-processing enclosuresGroup II, Category 2G, temperature class T6Directive 2014/34/EU
    Spinning hood LEL alarm set point20% LEL = 2,600 ppmIEC 60079-10-1 zone design

    Because cellophane casting uses the same cellulose xanthate chemistry, the carbon disulfide demand per tonne of film is similar to viscose staple, but the downstream equipment and process controls differ. The viscose for cellophane is prepared with a carbon disulfide charge of 28–35% on alpha-cellulose to achieve a gamma value near 0.45–0.55, and the dope is filtered to a higher degree because gel-induced pinholes are immediately visible in the film. Casting is carried out through a slot die with a gap of 0.5–1.0 mm into a coagulation bath containing 120–150 g/L H2SO4 and 18–25% Na2SO4 at 35–45°C. After coagulation, the gel film passes through regeneration baths, dilute sodium hydroxide desulphurisation at 60–70°C, and hypochlorite bleaching. The film is then plasticised in a bath containing 6–12% glycerol and dried in multi-zone hot air ovens at 70–110°C. Carbon disulfide and hydrogen sulfide released from the casting and regeneration sections are extracted by hoods and sent to recovery.

    Food-contact cellophane sold into packaging is controlled under cellophane-specific provisions where national legislation references 21 CFR 177.1200 for cellophane, and in the EU under framework regulation 1935/2004 with migration limits for plasticiser additives where applicable. Production records for direct food packaging typically retain residual carbon disulfide, glycerol, and desulphurisation by-product analytical data to demonstrate that the finished film does not impart odour or taste. The main process limitation in cellophane casting is the acid-bath temperature: above 46°C, regeneration accelerates before the film has developed sufficient tensile strength on the first take-up roll, causing web breaks and uneven film gauge. Below 32°C, regeneration slows and produces a film with excessive gel swell and poor optical clarity. Published data for CS2 emissions from standalone cellophane lines is limited because many older cast-film facilities have been replaced by biaxially oriented polypropylene lines.

    Sodium Ethyl Xanthate Precipitation Heat Load in a 5 m³ Batch Reactor

    For sulphide mineral flotation collectors, the reaction sequence begins with carbon disulfide addition to a C2–C5 alcohol and sodium hydroxide. In a typical 5 m³ jacketed batch reactor, ethanol is charged with 40–50% aqueous NaOH to form the alkoxide; carbon disulfide is metered beneath the liquid surface over 2–4 h at 8–12°C. The molar feed ratio is normally held at 1.00:1.05 NaOH:CS2 because a slight CS2 excess suppresses hydroxide-driven side reactions while leaving negligible unreacted carbon disulfide after the finishing step. The reaction is strongly exothermic, and the cooling system must be sized for peak heat load during the CS2 feed period rather than average batch duty. Reactor temperature excursions above 25°C cause loss of CS2 to the vapour phase and shift the product toward carbonate and trithiocarbonate by-products. After the addition, the batch is stirred for an additional 30–60 min, and the crude sodium ethyl xanthate slurry is centrifuged or vacuum dried to a free-flowing powder.

    In flotation circuits, dry xanthate is makedown to 5–10% aqueous solution and metered at 10–60 g/t of ore in rougher banks, with higher doses up to 100 g/t applied to oxidised or pyrrhotite-bearing ores. The collector adsorbs on chalcopyrite, galena, and sphalerite surfaces after conditioning at pH 8–11; lime is used to depress pyrite where selective copper or lead concentrate is required. The corresponding end products are concentrates with copper grades of 20–30% Cu, lead grades of 50–65% Pb, and zinc grades of 45–55% Zn, depending on ore head grade and flotation circuit residence time. Xanthate stability is a critical boundary condition: below pH 6, hydrolysis generates carbon disulfide, hydrogen sulphide, and alcohol, so storage of makedown solution beyond 8 h or use in acidic pulp is avoided. Flotation plants handling xanthate solutions are required to monitor ambient CS2 around the makedown and reagent storage areas; the ACGIH TLV-TWA of 1 ppm for carbon disulfide is used as the design target for local exhaust ventilation at the makedown hood.

    From an audit perspective, xanthate production and flotation reagent selection are not governed by a single ISO standard; the relevant controls are site-level occupational exposure limits, wastewater sulphide, and hazardous area classification. Carbon disulfide storage feeding the xanthate reactor is designed as a closed nitrogen-blanketed system with water-seal conservation, and the reactor is classified as a hazardous zone under IEC 60079-10-1. The autoignition temperature of carbon disulfide near 90°C requires that the drying section be interlocked to shut down heating above 80°C surface temperature. Published engineering data for peak heat load in xanthate reactors is limited because manufacturers commonly size the cooling surface based on laboratory calorimetry scaled by the CS2 feed rate and batch inventory.

    At What Molar Deficit Does Tetramethylthiuram Disulfide Generation Shift to Monosulphide?

    Carbon disulfide is the sulphur source for tetramethylthiuram disulfide and related dithiocarbamate accelerators used in sulphur-cured rubber. The first stage is the reaction of dimethylamine with carbon disulfide in aqueous sodium hydroxide at 10–20°C to form sodium dimethyldithiocarbamate, typically at a molar ratio of 1.00:1.05 dimethylamine:CS2 and pH 8.5–9.5; excess CS2 is stripped under vacuum before the oxidation step. The intermediate solution is present at 25–40% solids, and the endpoint is determined by iodometric titration of the dithiocarbamate anion. In the second stage, oxidation with sodium hypochlorite or hydrogen peroxide at 5–15°C couples two dithiocarbamate moieties to form the thiuram disulfide. The oxidation stoichiometry and residual amine concentration determine the dithiocarbamate-to-thiuram conversion: an unreacted dimethylamine fraction above 0.5 mol% leaves free amine in the downstream curing system and is analytically relevant because secondary amine-derived accelerators can form N-nitrosamines under certain nitrosating conditions.

    The question of monosulphide formation arises during oxidation when insufficient oxidant is added or pH drifts below 6.5: the reaction can terminate at tetramethylthiuram monosulphide or leave sodium dimethyldithiocarbamate unconverted. Molar feed of sodium hypochlorite is therefore maintained at 1.0–1.2 mol oxidant per 2 mol dithiocarbamate, with redox potential monitored during feeding. The resulting tetramethylthiuram disulfide has a melting point of 155–157°C; the monosulphide by-product contains less releasable sulphur and alters vulcanization kinetics by reducing the crosslink density at equal phr. In a standard ASTM D2084 moving-die rheometer curve, replacement of 0.5 phr tetramethylthiuram disulfide by monosulphide extends t90 and lowers maximum torque, so the user specification normally includes a minimum 96% disulphide content by HPLC.

    In rubber compounding, tetramethylthiuram disulfide is used as a secondary accelerator with sulphenamide primary accelerators in natural rubber and styrene-butadiene rubber compounds at 0.5–2.0 phr, or as a sulphur donor at 2.5–4.0 phr in low-free-sulphur or semi-EV cure systems. A typical NR tread compound will use 3–5 phr zinc oxide, 1–2 phr stearic acid, 1.0–1.8 phr sulphur, 0.8–1.2 phr N-tert-butyl-2-benzothiazole sulphenamide, and 0.1–0.3 phr tetramethylthiuram disulfide; curing at 150–160°C in an injection press with clamp force above 1,000 kN results in t90 values of 3–6 min. Because tetramethylthiuram disulfide is itself a nitrosatable secondary amine derivative, its use in rubber articles with food-contact or childcare exposure is restricted in certain markets; formulators may replace it with zinc dibenzyldithiocarbamate or dithiophosphate accelerators when compliance with EU Directive 93/11/EEC nitrosamine release limits is required.

    In methylamine-based soil fumigant synthesis, carbon disulfide addition is conducted under alkaline aqueous conditions to produce metam sodium. The reaction of methylamine with carbon disulfide in sodium hydroxide is held at 0–10°C, with pH maintained above 11 during the CS2 feed; the concentrated solution is stabilised as a 32–42% aqueous product and is applied as a soil fumigant. When injected into moist soil at 15–25 cm depth, metam sodium decomposes to methyl isothiocyanate, the active fumigant, with application rates in the range 30–80 gal/acre depending on soil type, temperature, and target pest. Equipment for row-crop soil injection uses positive-displacement pumps and ground-following coulter shanks; field application is regulated under national pesticide laws such as FIFRA in the United States and Regulation 1107/2009 in the European Union where the active substance is authorised. Buffer zones and vapour drift control are mandatory because methyl isothiocyanate is volatile and has a low odour threshold; workers conducting soil injection are equipped with organic-vapour respirators and quantitative fit testing.

    The same dithiocarbamate chemistry supports ethylene bisdithiocarbamate fungicides such as mancozeb and metiram, produced from ethylenediamine, carbon disulfide, and metal salts. The reaction proceeds through the intermediate disodium ethylene bisdithiocarbamate, which is then complexed with zinc and manganese under controlled pH and oxidation. The dry powder is formulated as wettable powder or water-dispersible granule with 75–80% active ingredient. Application for late blight and downy mildew on potato, tomato, and vine crops is typically 1.5–3.5 kg/ha of formulated product at 7–10 day intervals, subject to pre-harvest interval restrictions. The manufacturing boundary condition is pH control during complexation: below pH 5 the dithiocarbamate intermediate decomposes to carbon disulfide, ethylenethiourea, and metal sulphides, while above pH 9 the metal complex precipitates with poor filterability and slow drying.

    2-Mercaptobenzothiazole Ring Closure in High-Pressure Autoclave Synthesis

    Aniline, carbon disulfide, and elemental sulphur are charged to a high-pressure autoclave to close the benzothiazole ring and produce 2-mercaptobenzothiazole. The reaction is carried out at 220–250°C and 5–8 MPa, with an approximate molar ratio of 1.0:1.1:1.8 aniline:CS2:sulphur; hydrogen sulphide is continuously vented through a caustic scrubber. The autoclave is constructed with high-alloy lining resistant to ammonium polysulphide corrosion, and the heating rate is controlled to avoid a runaway exotherm above 260°C. After cooling, the crude 2-mercaptobenzothiazole is extracted with dilute alkali and reprecipitated with acid to obtain technical material with purity 95–98%.

    2-Mercaptobenzothiazole is then either oxidised with hydrogen peroxide to 2,2'-dithiobenzothiazole or reacted with cyclohexylamine or tert-butylamine to produce N-cyclohexyl-2-benzothiazole sulphenamide and N-tert-butyl-2-benzothiazole sulphenamide. These sulphenamide accelerators are standard primary accelerators in tyre tread and sidewall compounds at 0.8–1.5 phr, in formulations with 2–5 phr zinc oxide, 1–3 phr stearic acid, and sulphur 1.4–1.8 phr. The processing safety advantage of sulphenamides is delayed action: the accelerator complex remains dormant until the scorch induction period ends, then releases 2-mercaptobenzothiazole and amine to activate sulphur crosslinking. Scorch time measured according to ISO 6502 is typically 7–15 min at 135°C, allowing injection moulding of large tyre components without premature vulcanisation. The operational boundary in 2-mercaptobenzothiazole synthesis is hydrogen sulfide management: vent system pressure drop and scrubber pH above 12 are interlocked with the autoclave heating circuit because unscrubbed H2S release above the toxic threshold is not permissible.

    In laboratory and selected fine-chemical manufacturing, carbon disulfide serves as a solvent for elemental sulphur, white phosphorus, and certain waxes or resins, particularly where a chlorinated solvent is unsuitable. The solvent use is constrained by the low boiling point of 46.2°C and high vapour pressure, so dissolution is performed in sealed vessels under nitrogen. The application is not a high-volume downstream segment; published industrial data for solvent recovery in this specific configuration is limited. Where white phosphorus is handled, safety systems are built around the pyrophoricity of the solute rather than CS2 toxicity alone. In organophosphorus synthesis, carbon disulfide is also an intermediate for selected thiocarbamates and heterocycles, but these are typically site-specific and produced to internal specifications rather than standalone merchant commodities.

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    Сертификация и соответствие требованиям
    Более подробное введение
    Дисульфид углерода (CAS 75-15-0) поставляется в виде низкокипящей органосерной жидкости с молекулярной массой 76,13 г/моль, плотностью 1,263 г/см³ при 20 °C, температурой плавления -111,6 °C, и нормальной температурой кипения 46,3 °C. Идентификация продукта определяется спецификацией сорта, а не универсальным номером модели; общие закупочные обозначения являются техническим классом, низкобензоловым классом и классом реагента. Жидкость имеет точку вспышки в закрытом стакане -30 °C, температуру автозажигания вблизи 90 °C, и диапазон воспламеняемости от 1,3% об.% до 50% об. в воздухе. Плотность пара составляет 2,67 относительно воздуха, поэтому разливы производят низко лежащие воспламеняемые перья. Хранение и передача осуществляются под покрытием азотом в районах, классифицированных в соответствии с IEC 60079-10-1. Регламент REACH EC 1907/2006 требует документации сценариев воздействия для дальнейших видов применения, а транспортировка регулируется UN 1131, класс 3, группа упаковки I

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