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жидкий углекислый газ

    • Название продукта: жидкий углекислый газ
    • Сайт Factroy: Округ Юду, Ганьчжоу, Цзянси, Китай
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    • Производитель: Ascent Petrochem Holdings Co., Limited
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    Спецификации
    Код ТН ВЭД
    Химическая формула СО2
    Молекулярный вес 44,01 г/моль
    внешность Бесцветная жидкость
    запах без запаха
    Бойлингпойнт Сублимируется при -78,5 °C при 1 атм; Температура кипения жидкости зависит от давления, например, -56,6 °C при 5,18 бар и 20 °C при 57,3 бар
    Freezingpoint -56,6 °C при 5,18 бар (тройная точка)
    Критическая температура 31,0 ° C
    Критическое давление 73,8 бар
    Критическая плотность 0,468 г /см3
    Плотность жидкости Примерно 0,93 г/см3 при 0 °C и давлении насыщения
    Давление пара 57,3 бар при 20 °C
    Растворимость в воде растворимый; приблизительно 1,45 г/л при 25 °C и 1 атм
    рН Слабая кислота в воде; насыщенный водный раствор pH от 3,7 до 4,0
    Латентное теплоиспарение 347 кДж/кг при тройной точке
    удельный вес 0,93 (вода = 1) для жидкости при 0 °C
    Плотность пара 1,53 (воздух = 1)
    воспламеняемость Невоспламеняемый
    стабильность Стабилен при нормальных условиях хранения
    реактивность относительно инертный; образует углеродную кислоту с водой

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

    Упаковка и хранение
    Упаковка Жидкий диоксид углерода упаковывается в изолированные цилиндры высокого давления или криогенные резервуары с чистым количеством 50 фунтов (22,7 кг).
    Погрузка контейнера (20-футовый контейнер) Контейнерная погрузка (20' FCL): жидкий диоксид углерода, ООН 2187, класс 2.2, криогенный; загружен в защищенном, вентилируемом 20-футовом контейнере FCL ISO.
    Доставка Жидкий диоксид углерода (ООН 2187, диоксид углерода, охлажденная жидкость, класс 2.2) перевозится в изолированных, вентилируемых криогенных сосудах под давлением или Dewars. Держите вертикальным, прохладным и хорошо вентилируемым. защищены от движения; защищать от тепла. Используйте криогенные ОПС, отслеживайте утечки/удушение, обеспечивайте функционирование спасательных клапанов и следуйте правилам DOT/IMDG/IATA.
    Хранение Жидкий углекислый газ хранится в изолированных криогенных сосудах или цилиндрах, предназначенных для высокого давления и низкой температуры. Банки должны быть вертикальными, вентилируемыми, сухими и подальше от тепла, источников зажигания и несовместимых материалов. Установка устройств для снижения давления, контроль температуры и давления, предотвращение переполнения и соблюдение требований производителя/нормативных актов. Обеспечить адекватную вентиляцию для предотвращения удушения от утечки.
    Срок годности Жидкий углекислый газ не имеет фиксированного срока хранения; сохраняется под давлением, остается стабильным, но без удержания быстро испаряется.
    Применение жидкого углекислого газа

    Liquid carbon dioxide in carbonated beverage operations is stored as a saturated liquid at 18–22 bar and −18 to −20 °C in vacuum-insulated bulk vessels. Vapour is drawn off through an ambient-air or steam-heated finned-tube vaporizer. The vapour then passes through a catalytic or carbon deodorizing bed and a 0.5 µm coalescing filter before entering the dosing circuit. In high-speed counter-pressure fillers running at 500–1,200 containers per minute, the beverage is chilled to 2–4 °C and carbonated in a plate heat exchanger or inline carbocooler. CO₂ is injected through a sintered stainless-steel sparger. Mass flow meters and in-line density analyzers control the dose. Soft drinks are carbonated to 1.5–4.5 volumes CO₂ per volume of liquid. Beer post-fermentation is adjusted to 2.2–2.7 volumes CO₂ per volume depending on style. The terminal products are carbonated soft drinks, sparkling water, and packaged beer.

    Beverage-grade CO₂ compliance is anchored to the ISBT Carbon Dioxide Quality Guideline (2022). The specification requires ≥99.9% CO₂ by volume, ≤30 ppm v/v oxygen, ≤10 ppm v/v carbon monoxide, ≤0.1 ppm v/v total sulfur, and ≤10 mg/kg non-volatile residue. In the United States, 21 CFR 184.1240 lists carbon dioxide as GRAS for direct human food ingredient use. In the European Union, carbon dioxide is assigned E290 under Regulation (EC) No 1333/2008 Annex II. Filler bowl pressure is a critical operational boundary. At 4 °C, approximately 1.2 bar gauge head pressure is needed per volume of dissolved CO₂. Bowl pressures above 6 bar can induce can lid deflection and filling instability. Counter-pressure below 0.8 bar above the beverage equilibrium partial pressure causes breakout foaming and inconsistent fill levels. Manufacturers using liquid CO₂ in this segment must also control acetaldehyde and benzene in the CO₂ source because both migrate into the packed beverage and generate regulatory failures under FDA 21 CFR 165.110 and ISBT sensory thresholds.

    Comparative liquid CO₂ feed conditions by downstream production line
    Application segmentStorage pressureProcess pressureFeed or dosing rateStandard or specification
    Beverage carbonation18–22 bar2–4 °C beverage stream; 1.2 bar head pressure per volume CO₂1.5–4.5 volumes CO₂ per volume liquidISBT CO₂ Guideline (2022); 21 CFR 184.1240
    Supercritical extraction18–22 bar150–500 bar, 40–60 °C20–40 kg CO₂ per 1 kg feed21 CFR 184.1240; ICH Q3C
    pH control loop18–22 bar1–2 bar diffuser pressure0.44 kg CO₂ per 1 kg CaCO₃ alkalinityANSI/AWWA B510-2018
    Gas metal arc welding18–20 bar2–3 bar manifold pressure12–18 L/min shielding gas flowISO 14175-C1:2008
    Dry ice pellet production18–22 barAtmospheric expansion to −78.5 °C20–100 kg/h pellet consumptionISO 8573-1:2010

    What Controls Fractionation Selectivity in Supercritical Carbon Dioxide Extraction?

    Above the critical point of 31.1 °C and 73.8 bar, carbon dioxide becomes a compressible solvent with density ranging from 0.20 g/cm³ to 0.90 g/cm³. Supercritical CO₂ extraction systems operate at 150–500 bar and 40–60 °C. Liquid CO₂ is withdrawn from a bulk tank at 18–22 bar, subcooled, and boosted by a high-pressure diaphragm pump or three-stage reciprocating pump to the extraction vessel. Pressure is maintained by a back-pressure regulator on the separator cascade. Extract-laden CO₂ is depressurized through one to three cyclone separators held at 50–90 bar and 30–40 °C. Solutes precipitate as pressure falls and solvent density decreases. The CO₂ leaving the final separator is condensed, filtered, and returned to the pump suction. Terminal products include decaffeinated coffee, hop oils, turmeric oleoresin, and specialty seed oils.

    Decaffeination uses green coffee beans pre-wetted to 30–45% moisture by mass. Caffeine partitions into the supercritical phase at 200–300 bar and 50–60 °C. The caffeine is recovered by water scrubbing in the separator train. Commercial green coffee decaffeination reduces caffeine content to below 0.1% on a dry mass basis when measured by ISO 20481. Hop extraction at 300–400 bar and 40–50 °C yields alpha-acid-enriched extract used in brewing. Ethanol co-solvent at 5–10 wt% increases polar lipid yield. However, above 350 bar, ethanol co-solvent can co-extract chlorophyll and cuticular waxes from botanicals, producing haze in finished extracts. Water content above 10% in the feed bed can cause channeling and pressure drop fluctuations. The operational fix is sieving to maintain a particle size range of 0.5–2.0 mm and packing density above 0.35 g/cm³. Extraction residues for food use must comply with 21 CFR 184.1240 and residual solvent limits under ICH Q3C for pharmaceutical isolates.

    Production-scale extraction lines face bottlenecks when the CO₂ pump is undersized. A 250 bar extraction vessel charged with 500 kg of ground botanical feed may require a CO₂ flow rate of 1,000–2,000 kg/h to achieve solvent-to-feed ratios of 20–40 kg CO₂ per 1 kg feed. Heat exchangers must maintain separator temperatures within ±2 °C because solute solubility changes sharply with temperature. A deviation above 40 °C in the second separator can re-dissolve precipitated waxes and reduce final extract clarity. Extraction vessels are rated under ASME BPVC Section VIII or PED 2014/68/EU. The end product formats include vacuum-dried extracts with residual CO₂ below 0.1 wt%.

    Concrete washout water and anaerobic digester filtrate are neutralized with carbon dioxide in side-stream injection loops. Liquid CO₂ is vaporized and delivered at 1–2 bar through stainless-steel diffusers or in-line static mixers. A pH analyzer controls the dosing valve with a dead band of ±0.2 pH units. The reaction forms carbonic acid and bicarbonate species. Stoichiometric consumption is approximately 0.44 kg CO₂ per 1 kg CaCO₃ alkalinity. The pH is reduced from 8.5–10.5 to 6.5–7.5 without adding chloride or sulphate. The treated water is suitable for reuse in aggregate washing or for discharge under municipal pH limits. Water treatment grade liquid CO₂ is specified under ANSI/AWWA B510-2018. The end product is neutralized process water. The main operational boundary is freezing at the expansion point when liquid withdrawal exceeds vaporizer capacity. This condition requires a heated vaporizer with an exit gas temperature above 5 °C.

    Arc Stability Windows in CO₂-Bearing Gas Metal Arc Welding

    Pure carbon dioxide shielding gas is designated ISO 14175-C1. It is used in short-circuit and globular gas metal arc welding of carbon steel. Liquid CO₂ is withdrawn from mini-bulk tanks at 18–20 bar, regulated to a manifold pressure of 2–3 bar, and delivered through a flow meter set at 12–18 L/min. Constant-voltage power sources with 300–500 A output are used. Wire feed speeds for 1.0–1.2 mm ER70S-6 wire range from 4–8 m/min. Pure CO₂ produces a wide, deep penetration bead but releases higher spatter than argon-rich mixtures. A blend of 8–25% CO₂ in argon shifts metal transfer toward spray arc. At CO₂ fractions above 25%, arc voltage fluctuations and weld pool turbulence increase spatter and fume generation rates. At CO₂ fractions below 5%, weld puddle wetting on heavy-section mild steel becomes insufficient. The shielding gas specification under ISO 14175-C1:2008 requires ≥99.8% CO₂ by volume and a dew point of ≤ −40 °C. The terminal products are welded chassis components, structural steel sections, and pressure vessel shells.

    Robotic welding cells verify shielding gas flow at the torch with a thermal mass flow meter. At flow below 10 L/min on long weld pools, nitrogen porosity increases. At flow above 20 L/min, turbulent gas curtains entrain shop air. Moisture ingress raises diffusible hydrogen and can exceed limits under ISO 3690:2018. Shielding gas audits under ISO 14175-C1:2008 require batch certificates for oxygen and water. The main operational boundary is cylinder changeover. Bulk liquid CO₂ systems avoid intermittent pressure decay but require a heated vaporizer at sustained withdrawal above 50 kg/h. Filler wire is qualified under AWS A5.18. The end product groups are chassis components, structural steel sections, and pressure vessel shells.

    Dry Ice Pellet Production and Surface Preparation Logistics

    Liquid CO₂ at 18–22 bar is expanded through a dry ice pelletizer die. The expansion produces solid CO₂ snow at −78.5 °C. The snow is hydraulically compressed into pellets of 3 mm, 6 mm, or 10 mm diameter. Pellets are metered into a blasting machine at 20–100 kg/h. The compressed air stream is regulated to 2–10 bar. Air consumption ranges from 3 m³/min to 11 m³/min depending on nozzle type. The process removes carbonized bakery residues, mould-release compounds, and electrical cabinet contaminants without secondary solvent waste. Food-contact cleaning requires compressed air meeting ISO 8573-1:2010 class 1.4.1 or better. Surface cleanliness after blasting can be evaluated by ISO 8501-1 visual assessment. The end product is a prepared surface free of mineral abrasive residue. The primary limitation is line-of-sight cleaning. Complex internal cavities require angled nozzles or partial dismantling.

    In food plant cleaning, dry ice blasting is executed during planned production stops. The temperature shock at the surface can delaminate brittle residues but may also embrittle polymer seals. Masking or removal of sensitive polycarbonate guards is required. Pellet fragmentation to fine powder occurs when pellet storage exceeds 24 h; using pelletized dry ice fresh from the pelletizer improves cleaning uniformity. The surface preparation result is verified by ISO 8501-1 visual comparators or by adenosine triphosphate swabs in food-contact zones under ISO 18593. At standoff distances below 50 mm, aggressive cleaning may damage soft substrates. The end product is a prepared surface free of mineral abrasive residue.

    When Carbon Dioxide Replaces Phosgene in Polyether Carbonate Polyol Production

    In polyol synthesis, liquid CO₂ is vaporized, dried to ≤50 ppm water, and compressed to 5–20 bar as a C1 feedstock for the copolymerization of propylene oxide and carbon dioxide. The reaction uses a double metal cyanide catalyst at 60–80 °C. Catalyst activation may last 2–4 h under controlled pressure. The polymer chain incorporates carbonate and ether linkages. Products contain between 20 wt% and 43 wt% CO₂ depending on catalyst, pressure, and temperature. Below 20 wt% CO₂, carbonate-derived property changes are limited. Above 43 wt%, polyol viscosity increases and glass transition temperature rises enough to complicate blending. The polyether carbonate polyol is reacted with isocyanates in polyurethane foams, coatings, and adhesives. The route avoids phosgene-based carbonate chemistry and yields a high-volume CO₂ sink. REACH compliance for the final polymer is required under Regulation (EC) No 1907/2006. Continuous reactor data for specific DMC catalyst configurations is limited with respect to fouling and induction time drift. Free water and amine-based additives must be excluded because both reduce catalyst activity and promote cyclic propylene carbonate formation.

    Polyurethane flexible foam made with these polyols is tested for density and hardness under ASTM D3574. Coatings made with polyether carbonate polyols are tested for tensile elongation under ISO 527-2. The copolymer composition is determined by 1H NMR spectroscopy. The carbonate resonance at 4.2 ppm integrates against the ether methyl proton region. The processing window for blending is narrow because the carbonate-rich polyol exhibits higher viscosity at 25 °C than conventional polyether polyols of equivalent hydroxyl number. Reactor operators must therefore maintain a jacket temperature of 65–75 °C and keep propylene oxide vapour partial pressure below the equipment-rated limit. The terminal products are flexible foam slabs, automotive interior foams, and high-solids coatings.

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    Более подробное введение
    Жидкий диоксид углерода поставляется в виде охлажденного сжиженного газа с CAS 124-38-9 и транспортируется под UN 2187. Обозначения моделей продукта обычно связаны с конфигурацией хранения, а не химическим составом: вертикальные вакуумоизолированные цистерны для сыпых грузов обычно варьируются от 3000 л до 50 000 л, сосуды для микросипных грузов от 230 л до 1500 л, а цилиндры с погруженными трубками от 5 кг до 50 кг веса наполнения. Насыщенная жидкость поддерживается при температуре -20 °C до -18 °C и 2,0–2,2 МПа; тройная точка возникает при -56,6 °C и 0,518 MPa, а критическая точка возникает при 31,1 °C и 7,38 MPa. Литр насыщенной жидкости при -20 °C расширяется до примерно 500–550 л газа при 0 °C и 101,325 кПа. В отличие от сухого льда, который остается твердым при температуре -78,5 °C под атмосферным давлением и зависит от сублимации, жидкий CO ₂ обеспечивает непрерывное вывод жидкости под давлением для испарения, впрыска, экстракции или прямого охлаждения. Ниже указанные диапазоны спецификации являются общими целевыми значениями поставщика; Соглашения о покупке могут устанавливать более жесткие ограничения, когда процесс нижнего потока имеет узкое рабочее окно.

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