| Код ТН ВЭД | |
| Название продукта | Фурфурал |
| Название ИЮПАК | Фуран-2-карбалдегид |
| Cas номер | 98-01-1 |
| Номер ЕС | 202-627-7 |
| Молекулярная формула | C5H4O2 |
| молекулярный вес | 96,084 г/моль |
| внешность | Бесцветная до желтой или янтарной жидкости |
| запах | Миндальный, острый |
| точка кипения | 161,7 ° C |
| точка плавления | -36,5 ° С |
| плотность | 1,159 г/см3 при 20 °C |
| показатель преломления | 1,526 при 20 ° C |
| точка вспышки | 62 °C (закрытый тигель) |
| Температура самозажигания | 315 °С |
| давление паров | 0,33 кПа при 20 °C |
| Растворимость в воде | 83 г/л при 20 °C |
| растворимость | Смешивается с этанолом, эфиром, ацетоном, бензолом, хлороформом |
| вязкость | 1,49 мПа·с при 25 °C |
| поверхностное натяжение | 41,9 мН/м при 25 °C |
| ЛогП | 0,41 |
| Номер ООН | 1199 |
| класс опасности | 6,1 |
| Группа упаковки | III |
| Пределы взрываемости | 2,1–19,3% (в/в) в воздухе |
| Порог запаха | 0,5 ppm |
Как аккредитованный завод Фурфурал, мы соблюдаем строгие протоколы качества - каждая партия подвергается строгим испытаниям для обеспечения последовательных стандартов эффективности и безопасности.
| Упаковка | Furfural поставляется в 250 кг стальных барабанах, надежно запечатанных и маркированных как воспламеняемые и токсичные; Хранить подальше от окислителей. |
| Погрузка контейнера (20-футовый контейнер) | Furfural в запечатанных барабанах, паллетизированных и закрепленных внутри 20-футового контейнера FCL с маркировкой опасных грузов и документацией для безопасной транспортировки. |
| Доставка | Фурфурал поставляется под номером ООН 1199, правильное название доставки: Фурфурал, воспламеняемая жидкость класса 3, группа упаковки III, с вспомогательной токсичностью 6.1. Используйте утвержденную ООН упаковку, легковоспламеняющиеся жидкости и токсичные маркировки и соблюдайте правила ДОПОГ/ИМДГ/ИАТА. Хранить подальше от источников зажигания, окислителей и несовместимых материалов. |
| Хранение | Храните фурфурал в прохладном, сухом, хорошо вентилируемом, огнестойком месте, подальше от тепла, искр, пламени, окислителей, кислот и щелоц. Держите контейнеры плотно закрытыми, заземленными и изготовленными из совместимых материалов, таких как нержавеющая сталь. защищать от воздуха и света; рассмотреть азотное покрытие для ограничения окисления и полимеризации. Используйте вторичное сдерживающее и взрывоопасное оборудование. Отделить от несовместимых веществ и разместить знаки против курения. |
| Срок годности | Срок хранения фурфурала обычно составляет 24 месяца, когда он хранится запечатанным, прохладным, темным и под инертным газом; Он затемняется/окисляется воздухом/светом. |
In furan no-bake foundry binder production, furfural is first hydrogenated to furfuryl alcohol, then condensed with formaldehyde, urea and phenol under acid catalysis to control viscosity and nitrogen content. The resulting resin is dosed onto washed silica sand at 0.8–1.5 wt% on sand for cores below 20 kg, while larger moulds may require up to 2.0 wt%; exceeding 1.6 wt% on high-surface-area sand increases gas evolution during metal pouring. Mixing is carried out in continuous trough mixers with retention times of 30–90 s at blade speeds of 20–40 rpm. Sand temperature is maintained between 20 °C and 30 °C; below 15 °C cure speed drops by more than 50%, while above 35 °C benchlife collapses to under 30 min. Sulfonic acid catalyst dosage is 25–50 wt% of binder mass and is adjusted to sand acid demand. Silica sand with pH above 7.5 consumes free acid at the sand-resin interface and produces brittle, undercured mould surfaces. Sand moisture above 0.2 wt% reduces immediate tensile strength by approximately 20–35% because water competes for acid catalyst. Free furfuryl alcohol monomer in the resin is commonly held at 18–25 wt% to retain hot bending strength above 2.0 MPa at 1000 °C; below 10 wt% hot distortion resistance drops and dimensional stability of the mould cavity deteriorates. Compliance obligations in the foundry sand shop include OSHA 29 CFR 1910.1000 Table Z-1 for furfural with a permissible exposure limit of 5 ppm TWA, OSHA 29 CFR 1910.1048 for formaldehyde with action level 0.5 ppm, PEL 0.75 ppm and STEL 2 ppm, and the current ACGIH TLV for furfural of 2 ppm TWA. Local exhaust ventilation and catalytic oxidation at 250–350 °C are typical for core-making and pouring emissions. Terminal product types include sand cores for engine blocks, water-jacket cores, hydraulic valve bodies, pump housings, large cast machine bases and brake calipers.
| Regulatory or standard reference | Parameter or test | Relevant limit or method |
|---|---|---|
| OSHA 29 CFR 1910.1000 Table Z-1 | Furfural airborne PEL | 5 ppm TWA |
| ACGIH TLV documentation 2023 | Furfural TLV | 2 ppm TWA |
| OSHA 29 CFR 1910.1048 | Formaldehyde action level, PEL, STEL | 0.5 ppm /0.75 ppm /2 ppm |
| ISO 2555:2018 | Brookfield viscosity at 25 °C | 15–45 mPa·s |
| ISO 3251:2019 | Non-volatile content | 55–70% |
Countercurrent extraction of vacuum distillates with furfural separates saturated hydrocarbons from aromatic and polar compounds in Group I base oil refining. A rotating disc contactor or packed extraction column is fed with vacuum distillate having kinematic viscosity at 100 °C of 20–45 mm²/s and a boiling range of 350–550 °C. The solvent is maintained as the heavier phase by controlled water addition of 2–8 wt% of furfural; water reduces solvent power and raises selectivity for saturated hydrocarbons. Typical published solvent-to-oil volume ratios are 1.5:1 to 3.0:1, with extraction temperature between 85 °C and 120 °C. Higher temperatures improve mass transfer but increase furfural degradation through ring opening and furoic acid formation; solvent acid number above 2.0 mg KOH/g signals accumulation of acidic degradation products that accelerate polymer deposition on heat exchangers. Raffinate yield declines from approximately 75–80% at a 1.5:1 ratio to 55–65% at a 3.0:1 ratio, while aromatic extraction increases. The raffinate is stripped with steam at 150–170 °C to recover residual solvent, then hydrofinished; the extract phase is stripped separately and clarified. Compliance for derived base oil is anchored to IP 346:1998 for DMSO extractables below 3 wt%, aligned with REACH Annex XVII Entry 50 restrictions for certain extender oils. ASTM D2007 column chromatography is used for saturate/aromatic/resin composition. Terminal products include solvent-refined Group I SN 150, SN 500 and Bright Stock feedstocks, slack wax, and aromatic extract streams sold as asphalt modifiers or carbon black feedstocks after further processing. Furfural recovery in the extract phase relies on steam stripping; carrying over more than 0.5 wt% solvent into the raffinate furnace feed increases corrosivity of the preflash overhead. The extraction tower often operates with a temperature gradient of 10–20 °C between bottom and top to maintain density difference and phase separation.
| Solvent-to-oil ratio by volume | Water in furfural | Extraction temperature | Approximate raffinate yield | Post-hydrofinishing PCA, IP 346 |
|---|---|---|---|---|
| 1.5:1 | 2–3 wt% | 95–110 °C | 75–80% | <3 wt% |
| 2.5:1 | 4–6 wt% | 100–115 °C | 65–72% | <2 wt% |
| 3.0:1 | 6–8 wt% | 110–120 °C | 55–65% | <2 wt% |
In C4 separation, furfural is used as a polar extractive distillation solvent to separate 1,3-butadiene from close-boiling butanes and butenes. The equilibrium effect is an increase in relative volatility of butanes and butenes relative to butadiene, allowing butadiene to be recovered as a bottoms stream with the solvent. The extractive distillation section is typically a two-column arrangement: a main extractive column and a solvent recovery column. Solvent-to-C4 feed mass ratios in published configurations range from 7:1 to 12:1, with top temperature 70–90 °C and column top pressure 4–6 bar. Reflux ratios are 3.5–5.0. Furfural degradation products include furoic acid and heavy condensation products, which are purged from the solvent loop through vacuum rerun and neutralised condensate injection. Polymer-grade 1,3-butadiene must meet 99.5 wt% minimum purity, total acetylenes below 50 mg/kg and total sulphur below 10 mg/kg by ASTM D2593 and ASTM D5453 analytical procedures. Oxygen ingress into the extractive distillation column accelerates furfural polymerisation; dissolved oxygen above 1 mg/kg in the C4 feed is controlled by deaeration and nitrogen blanketing. The solvent loop is maintained at pH 4.2–5.0 by injection of caustic condensate. Accumulation of acetylene-rich lights in the butadiene fraction above 50 mg/kg requires a selective hydrogenation or cuprous ammonium adsorption step. Terminal products include monomer for polybutadiene rubber, styrene-butadiene rubber, nitrile rubber, ABS resin and latex. Published open literature on furfural-based C4 extraction is more limited than for DMF or NMP systems, so solvent-to-feed ratios and column temperatures should be verified against licensed process manuals for the specific integrated plant configuration.
Gas-phase hydrogenation of furfural over a copper chromite catalyst is used to produce furfuryl alcohol in a fixed-bed multitubular reactor with molten salt or dowtherm cooling. Published industrial conditions are 130–180 °C, 20–80 bar pressure, hydrogen-to-furfural molar ratio 5:1 to 20:1, and liquid hourly space velocity 0.3–1.5 h⁻¹. At conversion above 99%, selectivity to furfuryl alcohol exceeds 95%. Temperature above 185 °C increases tetrahydrofurfuryl alcohol and 2-methylfuran formation; water above 0.5 wt% in the furfural feed accelerates catalyst deactivation by leaching copper from the support. Compliance obligations in the hydrogenation plant include ATEX Directive 2014/34/EU for hydrogen service, ASME Section VIII Div. 1 for pressure vessels, and CLP Regulation (EC) No 1272/2008 for classification of furfural and furfuryl alcohol. The crude product is condensed and distilled under vacuum at 20–40 mbar absolute with a head temperature of 60–80 °C to recover furfuryl alcohol at 98.5% minimum purity. Final foundry-grade furfuryl alcohol often requires furfural below 0.2 wt%, water below 0.1 wt%, and colour below 50 Pt-Co by ASTM D1209. Terminal products include furfuryl alcohol monomer for foundry furan binders, furan resin monomers for chemical-resistant linings, tetrahydrofurfuryl alcohol after further hydrogenation, and furfuryl alcohol ethers used as industrial solvents.
Furan resin mortars and polymer concretes are produced by mixing furfuryl alcohol-formaldehyde resin, furfural monomer, graded silica or quartz fillers, and a sulfonic acid catalyst. The resin addition to dry filler is 12–20 wt%; catalyst dosage is 3–6 wt% of resin mass. The mixed mortar has a pot life of 30–45 min at 23 °C and is placed as a trowelled overlay or grout. Initial set occurs within 2–4 h; full chemical resistance requires a heat-cure cycle of 40 °C for 12 h or ambient cure for 24–48 h. Compressive strength by ASTM C579 is 55–75 MPa; tensile strength by ASTM C307 is 5–8 MPa; chemical resistance under ASTM C267-20 is validated by immersion in 10–20% sulfuric acid at 23–93 °C for 90 days. The process is sensitive to mix temperature: below 15 °C, cure is sufficiently retarded that catalyst must be increased by up to 1.5 wt%; above 30 °C, pot life falls below 20 min and exothermic gel can produce surface microcracks. Aggregate moisture above 0.5 wt% breaks the acid catalyst and causes interfacial bond failure; dried quartz is therefore stored under low-humidity conditions or dried at 110–130 °C. Mixing equipment is specified with Hastelloy C-276 wetted parts or PTFE-lined paddles because the sulfonic acid catalyst is corrosive to carbon steel. Compliance standards include ASTM C267-20, ASTM C307-18, ASTM C579-18 and EN 14879-1:2005. Terminal product types include acid sump linings, pickling line floors, scrubber foundations, brick-lining mortar for hydrochloric acid storage, and secondary containment dikes in chemical plants.
Base-catalysed disproportionation of furfural generates 2-furoic acid and furfuryl alcohol at a furfural-to-sodium hydroxide molar ratio of 2:1 in aqueous medium at 35–45 °C. Residence time is 2–4 h, and the liberated acid is precipitated by neutralisation with sulphuric acid to pH 2.5–3.0. The solid 2-furoic acid is purified by recrystallisation from hot water; furfurylamine is obtained by catalytic amination of furfural over Raney nickel at 80–120 °C and 30–60 bar hydrogen pressure. Compliance for pharmaceutical use of furfural-derived building blocks is governed by ICH Q3C residual solvent policy, 21 CFR 210/211 for GMP, and USP <467>. The downstream production process uses stainless steel jacketed vessels with pH monitoring and vacuum distillation for furfural recovery; residual aldehyde must be controlled below 0.1 wt% to avoid genotoxic impurity concerns. Terminal product types include furosemide, furaltadone, crop-protection chemical intermediates, and corrosion inhibitors. Published data for yield optimisation in this specific configuration is limited because much process detail is held in proprietary drug master files.
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