| Код ТН ВЭД | |
| НазваниеПродукта | Акриламид |
| Название Iupac | проп-2-энамид |
| Номер кассы | 79-06-1 |
| Химическая формула | C3H5NO |
| Молекулярный вес | 71,08 г/моль |
| внешность | Белое кристаллическое твердое вещество |
| запах | без запаха |
| плотность | 1,13 г/см3 при 20 °C |
| Точка плавления | 84,5 ° C |
| Бойлингпойнт | 125 °C при 25 mmHg |
| растворимость | очень растворимый в воде (215 г/100 мл при 30 °C); растворимый в этаноле, эфире, хлороформе |
| Давление пара | 0,007 mmHg при 20 °C |
| Flashpoint | 138 ° С |
| Температура самовоспламенения | 424 ° С |
| Класс опасности | токсичный, канцерогенный, нейротоксичный; раздражающее |
| Главное использование | мономер для полиакриламидных и акриламидных кополимеров |
Как аккредитованный завод по производству акриламида, мы соблюдаем строгие протоколы качества - каждая партия подвергается строгим испытаниям для обеспечения последовательных стандартов эффективности и безопасности.
| Упаковка | Акриламид поставляется в 500-граммовой запечатанной янтарной стеклянной бутылке с опасными этикетками, безопасной крышкой и защитной наружной упаковкой. |
| Погрузка контейнера (20-футовый контейнер) | Акриламид, загруженный в 20′ ФКЛ: паллетизированные 25-кг пакеты, надежно укладываемые и прикрепленные, маркированные опасным матом, запечатанные для перевозки. |
| Доставка | Акриламид регулируется для транспортировки как токсичное вещество. Твердый: UN2074, класс 6.1, PG III. Растворы: UN3426. Судно отправляется в утвержденной ООН, неприкосновенной от утечки упаковке с этикетками 6.1, декларацией ГД и обученными операторами. Хранить прохладно, сухо, отдельно от окислителей, кислот и пищи. Соблюдать правилам DOT/IMDG/IATA. |
| Хранение | Храните акриламид в прохладном, сухом, хорошо вентилируемом, безопасном месте при температуре 2-8 ° C, подальше от тепла, источников зажигания, света и несовместимых материалов, таких как окислители, кислоты, основания и инициаторы полимеризации. Держите контейнеры плотно закрытыми, маркированными и вертикальными. Используйте вторичное содержание. Ручность как токсичное, канцерогенное, нейротоксичное вещество; Ограничить доступ и соблюдать правила безопасности. |
| Срок годности | Акриламид имеет срок хранения около двух лет при хранении прохладным, сухим, темным и герметическим; Он может полимеризироваться. |
Municipal drinking water clarification incorporating anionic polyacrylamide flocculants derived from acrylamide monomer operates across a narrow free-monomer control band that regulatory authorities treat as a health-based limit rather than a performance specification. NSF/ANSI/CAN 60 certification for polyacrylamide products intended for potable water requires residual acrylamide monomer content in the neat polymer to remain at or below 0.05% w/w, while EN 1407:2008 for anionic and non-ionic polyacrylamides used in drinking water treatment specifies a maximum free acrylamide monomer level of 0.1% w/w in the commercial product; the corresponding US EPA treatment technique promulgated under 40 CFR 141.111 mandates third-party certification when the free monomer content exceeds 0.05% w/w of the active polymer solids. Industrial wastewater clarification, by contrast, frequently employs anionic copolymers in the 18–22 megadalton molecular weight range without the same monomer constraint, though discharge permits under the EU Industrial Emissions Directive 2010/75/EU typically require total polyacrylamide residuals below 0.5 mg/L in treated effluent to avoid downstream aquatic toxicity from cationic variants. Dosing practice in surface water clarification ranges between 0.2 mg/L and 2.0 mg/L of dry polymer equivalent, applied as a 0.05–0.10% w/w diluted solution downstream of rapid mix at velocity gradients below 400 s⁻¹ to avoid scission of the high-molecular-weight chain backbone. Sludge conditioning for belt filter press dewatering of municipal mixed primary-secondary sludge operates at substantially higher dose rates, typically 3.0–5.0 kg of active polymer per tonne of dry solids, delivered through a two-stage aging system consisting of a 0.3–0.5% w/w makedown tank with minimum 45-minute residence time at 250–350 rpm mixer speed followed by secondary dilution to 0.05–0.10% w/w immediately before the injection manifold. Production-scale verification relies on jar testing using square 1-L beakers and a six-paddle gang stirrer at 150 rpm flash mix for 30 seconds, 40 rpm flocculation for 10 minutes, followed by 54 mm diameter Büchner funnel filtration to measure capillary suction time at below 20 seconds for belt press feed. Terminal outputs of this application include clarified potable-water influent at filtered turbidity below 0.1 NTU after dual-media filtration, and dewatered sludge cake at 18–25% dry solids suitable for landfill disposal or thermal drying, with polymer carryover in filtrate maintained below 5 mg/L through dose trimming based on streaming current detector feedback.
Enhanced oil recovery by polymer flooding in sandstone reservoirs requires partially hydrolyzed polyacrylamide (HPAM) derived from acrylamide monomer at hydrolysis degrees between 25 mol% and 35 mol% because the carboxylate anion density at this level generates a hydrodynamic radius sufficient to reduce water-phase mobility in 3,000–10,000 mg/L total dissolved solids injection brine without exceeding the precipitation threshold for calcium ions in formation water. Molecular weight targets above 15 megadaltons, commonly specified in the 18–22 megadalton range, are achieved through controlled radical polymerization of acrylamide followed by post-hydrolysis with sodium hydroxide at 75–90°C for 2–4 hours; these parameters determine the intrinsic viscosity measurable at 250–350 mL/g in 1N NaCl at 25°C by Ubbelohde capillary viscometry per API RP 63. Injection formulation requires 1,000–2,500 mg/L of active HPAM in the injected brine, prepared on a dissolution skid equipped with eductor-wetting heads that disperse dry polymer into water at 5,000–10,000 mg/L without forming fisheye agglomerates; hydration tanks provide 60–90 minutes residence time at 25–30°C with low-shear agitation below 200 rpm because shear rates above 500 s⁻¹ during transfer through centrifugal booster pumps or flow-control chokes permanently reduce viscosity by 15–40% through polymer backbone scission. Filtration of the mother solution through 3–5 μm cartridge filters removes microgels that would otherwise plug reservoir pore throats; the filtered solution is then diluted with injection brine to target concentration and injected through positive-displacement triplex pumps at downhole shear rates below 200 s⁻¹. Compliance documentation follows API RP 63 for polymer selection and quality control, requiring specified solution viscosity at 7.3 s⁻¹ and 25°C to deviate from laboratory baseline by less than ±10% at any injection well. The terminal output is incremental crude oil produced through improved areal and vertical sweep efficiency; produced water containing residual HPAM typically below 50 mg/L is reinjected or discharged following treatment by oil separation and dissolved air flotation, though operators in the North Sea and Middle East frequently specify a maximum residual polymer concentration of 20 mg/L in overboard discharge to comply with OSPAR Convention limits.
| Parameter | 500 mg/L | 1,000 mg/L | 1,500 mg/L | 2,000 mg/L | 2,500 mg/L |
|---|---|---|---|---|---|
| Apparent viscosity at TDS 3,000 mg/L | 14 cP | 30 cP | 48 cP | 67 cP | 86 cP |
| Apparent viscosity at TDS 30,000 mg/L | 7 cP | 16 cP | 26 cP | 36 cP | 47 cP |
| Screen factor at 35 kPa, API RP 63 | 6 | 13 | 19 | 25 | 29 |
On paper machines operating above 1,200 m/min, polyacrylamide-based retention aids and dry-strength additives derived from acrylamide monomer represent the dominant wet-end chemistry intervention for controlling fines retention and drainage across the forming table. Compliance for food-contact paper and board is anchored in FDA 21 CFR 176.170 (aqueous and fatty foods) and 21 CFR 176.180 (dry food), which require that polyacrylamide be used in amounts not exceeding the specific limitations in the regulation, with residual acrylamide monomer below the detection threshold established in the EU through Regulation (EC) No 1935/2004 and BfR Recommendation XXXVI for paper and board in food contact; the German BfR recommendation specifies that polyacrylamide retention aids must contain less than 0.1% free acrylamide monomer and that the finished paper extractable acrylamide shall not exceed 0.01 mg/dm². Dosage for cationic polyacrylamide retention aids on a modern gap former falls between 0.02% and 0.10% on dry fibre mass, while anionic dry-strength polyacrylamide added to the wet end or surface size press operates at 0.15% to 0.50% on dry fibre, depending on virgin kraft pulp freeness and recycled fibre content in the furnish. The production process involves dry-polymer makedown in a venturi eductor at 0.05–0.15% concentration, dilution water below 50°C to avoid thermal chain rupture, aging for 30–60 minutes, and post-dilution to 0.02–0.05% before injection into the thin stock after the pressure screen and before the fan pump; flow-controlled metering pumps equipped with mass flowmeters deliver dose rates accurate to ±0.01 kg/h against thin-stock flow of 3,000–6,000 L/min on high-speed packaging machines. Microparticle retention systems pairing cationic polyacrylamide at 0.03–0.06% with colloidal silica at 0.2–0.5 kg/t improve first-pass ash retention to above 75% and drainage rate measured in CSF increase of 60–100 mL. Terminal products include corrugated medium at basis weight 112–140 g/m², kraft linerboard at 125–200 g/m², white-top test liner, and tissue grades requiring burst strength above 2.5 kPa·m²/g, all produced with a wet-end polymer cost typically below 5 USD per tonne of paper.
Flocculant-assisted thickening of mineral tailings generated from copper-molybdenum porphyry and gold carbon-in-leach circuits depends on anionic polyacrylamide copolymers with molecular weights between 18 and 25 megadaltons and anionic charge densities between 25% and 35% for proper bridging of clay-rich gangue particles under high solids loading. The Global Industry Standard on Tailings Management (GISTM, 2020) requires that thickening circuits achieve design underflow rheology compatible with downstream pumping and that water recovery performance meets site-specific discharge permits; ISO 14001 environmental management frameworks typically govern water reuse reporting, with supernatant turbidity targets below 200 NTU for reuse in grinding circuits measured by ISO 7027 nephelometry. Addition rates span 30 g/t to 150 g/t of dry tailings solids, depending on feed particle size distribution and clay content; high-rate thickeners treating hydrocyclone underflow at 15–25% w/w feed solids receive flocculant solution at 0.03–0.08% concentration into the feedwell through multiple tangential injection ports to maximize collision efficiency without over-straining the polymer chains in the feedwell mixing zone. Production-scale operational monitoring relies on rake torque trending relative to thickener drive nameplate capacity; a sustained torque exceeding 60% of nameplate indicates impending bogging, requiring either polymer dose trimming of 5–10 g/t or feed solids dilution to below 18% w/w through recirculation of clarified water at the feed pipe inlet. Underflow density is maintained between 55% and 65% w/w solids for paste thickening and between 45% and 55% for conventional thickened tailings discharge, with rheological measurement performed on a Brookfield RST-SST vane rheometer at 100 s⁻¹ to confirm yield stress below 150 Pa for centrifugal pump transfer. Terminal outputs include paste or thickened tailings suitable for surface stacking with minimal free water, recycled process water with turbidity below 200 NTU, and clarification of CCD wash liquor that returns dissolved metal values to the leaching circuit.
| Dose (g/t dry solids) | Initial settling rate (m/h) | Supernatant turbidity (NTU, ISO 7027) | Underflow solids (wt%) | Rake torque (% nameplate) |
|---|---|---|---|---|
| 20 | 1.4 | 410 | 38 | 24 |
| 40 | 2.7 | 195 | 46 | 31 |
| 60 | 4.3 | 98 | 53 | 39 |
| 80 | 5.0 | 61 | 57 | 47 |
| 100 | 4.7 | 44 | 58 | 55 |
| 120 | 4.0 | 38 | 57 | 63 |
Acrylamide-based chemical grouting remains the only practical permeation option for stabilizing fine sands and silty soils with permeability coefficients between 10⁻³ m/s and 10⁻⁵ m/s, where cement-bentonite suspensions cannot penetrate pore throats smaller than 100 μm. The deployment of acrylamide grouts within the European Union is governed by REACH Annex XVII Entry 60, which since 5 November 2022 prohibits placing on the market or using acrylamide-containing mixtures at concentrations equal to or greater than 0.1% w/w for grouting applications, a restriction that has shifted site practice toward pre-polymerized or encapsulated acrylamide-gel systems with manufacturer-controlled activation chemistry; EN 12715:2020 governs execution of special geotechnical works including grouting, specifying grouting pressure limits, refusal criteria, and documentation of injection parameters including grout volume, flow rate, and pressure increments. Formulation chemistry for a typical two-component aqueous system comprises acrylamide monomer at 10–20% w/w in the grout mixture, N,N'-methylenebisacrylamide crosslinker at 0.5–1.5% w/w relative to monomer, triethanolamine initiator at 0.5–2.0% w/w, and ammonium persulfate activator at 0.5–1.5% w/w, with gel time adjustable between 5 minutes and 60 minutes by modulating initiator-to-activator ratio at constant temperature of 15–25°C; sodium chloride at 2–5% w/w is often added to increase density above 1.02 g/cm³ and improve miscibility with formation water. Injection is performed through double-packered PVC or steel pipes installed on a 1.0–1.5 m grid, with grout delivered by twin-piston positive-displacement metering pumps at 5–20 L/min and monitored injection pressure maintained between 0.3 MPa and 1.0 MPa to avoid hydraulic fracture of the formation; refusal is declared when either the design grout volume per stage is consumed or when injection pressure rises above 1.5 MPa at constant flow. The polymerized gel occupies 90–99% of the initial pore volume in the treated zone, reducing permeability to below 10⁻⁸ m/s, which qualifies the treated mass as a groundwater barrier under EN 12715 acceptance criteria. Terminal products include groundwater cut-off walls for excavation dewatering, foundation underpinning for historical structures, soil stabilization ahead of tunnel boring machine advance, and emergency sealing of flowing sand in open excavations.
Denaturing polyacrylamide gel electrophoresis (SDS-PAGE) depends on acrylamide monomer of analytical grade as the polymerizable matrix in which apparent molecular weight separation occurs through sieving rather than through hydrodynamic retardation in free solution. Analytical reagent specifications for electrophoresis-grade acrylamide derived from commercial production include assay purity at or above 99.9% w/w by HPLC, free acrylic acid below 0.001% w/w, conductivity not exceeding 10 μS/cm in a 10% w/w aqueous solution at 25°C, iron content below 1 mg/kg, and ultraviolet absorbance at 290 nm below 0.1 AU for a 10% w/w solution in a 1-cm cell; these purity limits are enforced because trace acrylic acid introduces carboxyl groups that alter band migration and produce well-shaped artifacts. Formulation in the discontinuous Laemmli buffer system specifies resolving gel composition at 7.5% T to 15% T (total monomer concentration, w/v) with a crosslinker ratio of 2.7% C (w/w of N,N'-methylenebisacrylamide relative to total acrylamide monomer), while stacking gel is fixed at 4% T–2.7% C to concentrate proteins into sharp bands before entering the resolving gel; the resolving gel buffer is 0.375 M Tris-HCl adjusted to pH 8.8, while the stacking gel buffer is 0.125 M Tris-HCl at pH 6.8, with running buffer composed of 25 mM Tris, 192 mM glycine, and 0.1% w/v SDS at pH 8.3. Preparation on a laboratory scale begins with mixing monomer, buffer, and SDS solutions, followed by vacuum degassing at 20–25 kPa for 10–15 minutes to remove dissolved oxygen that would scavenge free radicals; polymerization is initiated by adding 0.05% w/v ammonium persulfate and 0.05–0.10% v/v N,N,N',N'-tetramethylethylenediamine (TEMED), with gelation completing within 30–60 minutes at 20–25°C and being retarded below 15°C. The cast gel is then assembled into a slab cassette of 0.75 mm or 1.0 mm thickness and run at constant voltage of 80–120 V through the stacking gel and 120–200 V through the resolving gel for a total of 2–4 hours. Terminal products include single-use SDS-PAGE precast gel cassettes, native PAGE gels for enzyme activity analysis, and gradient gels of 4–20% T used for automated capillary electrophoresis systems; all formats support separation of proteins from 10 kDa to 250 kDa with resolution of adjacent bands differing by less than 2 kDa when the migration front reaches within 0.5 cm of the gel bottom.
High-speed air-jet weaving at weft insertion rates above 1,000 picks/min imposes cyclic warp yarn loading that demands film-forming size polymers with both cohesive toughness and low surface tack, a combination addressed by blending partially hydrolyzed polyacrylamide derived from acrylamide monomer with polyvinyl alcohol and modified starch in size recipes for polyester-cotton and cotton warp yarns. Textile supply chain compliance for sized garments and home textiles references OEKO-TEX Standard 100 Annex 4 limits for acrylamide monomer as a residual chemical in finished textiles, which requires that free acrylamide monomer in the sized fabric after desizing and finishing remain below the laboratory detection threshold of 0.1 mg/kg using the solvent extraction and LC-MS/MS method specified in OEKO-TEX testing procedures; the ZDHC MRSL v3.1 additionally prohibits discharge of acrylamide monomer above detection limits in textile processing wastewater, mandating that size formulation development at the mill level incorporate polymer suppliers licensed under the ZDHC Gateway chemical registry. Formulation addition rates in size recipes fall between 3% and 8% by weight of size solids, with PHPA typically substituted into polyvinyl alcohol-based recipes at 15–25% of the total polymer component; size add-on onto warp yarn after size box application ranges from 5% to 9% of yarn weight for cotton and 5% to 12% for polyester-cotton blends, measured gravimetrically after desizing. The production process utilises a jet cooker operating at 120–130°C and 0.3–0.5 MPa with 20–30 minutes cooking time to fully gelatinize starch and dissolve PHPA without subjecting the polymer to thermal degradation above 135°C, after which the size liquor is transferred to a size box maintained at 80–90°C with a circulating pump capacity sufficient for 10–12 turnovers per hour. Application at the size box uses double-squeeze roller systems with squeezing pressure between 10 kN/m and 25 kN/m to control pick-up; the sized warp sheet is then dried over multi-cylinder cans at 90–130°C surface temperature in sequence, with size film properties after drying measured as bending stiffness and abrasion resistance by the Zweigle abrasion tester. Terminal products include sized warp beams for air-jet loom weaving of plain-weave shirting fabric at 25–35 ends/cm, denim at 25–29 ends/cm with double-size add-on, and high-density bed sheeting at 40–60 ends/cm, all desized subsequently using amylase desizing enzymes and alkaline hydrogen peroxide scouring.
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Акриламид (CAS 79-06-1, CH ₂= ЧКОНХ ₂, молекулярный вес 71,08 г моль ⁻ 1) подается в виде белого кристаллического твердого вещества и в виде ингибированного водного раствора. Кристаллический материал тает при 84,0–86,0 °C и имеет специфическую гравитацию 1,127 при 25 °C. Радикальная полимеризация достаточно экзотермична, чтобы адиабатическое повышение температуры могло разрушить запечатанные контейнеры; Литература по процессу сообщает об энтальпии полимеризации в диапазоне 70-85 кДж моль ⁻ ¹. Поэтому твердое вещество должно храниться ниже 25 °C, защищаться от ультрафиолетового света и отделяться от пероксидов, персульфатов, азоинитаторов, сильных кислот и сильных оснований. Коммерческие формы включают твердое вещество технического уровня с анализом ≥98,0% в массе, твердое вещество низкопроводного электрофореза с анализом ≥99,0% в массе, и 38-42% в массе водный раствор, стабилизированный растворенным кислородом при 6-8 мг л ⁻ ¹ и MEHQ при 10–50 ppm. Кристаллический продукт имеет типичную насыпную плотность 0,65-0,75 г см ⁻ ³ и поставляется в 25 кг HDPE барабаны; водный раствор поставляется в промежуточные контейнеры для сыпых грузов 1000 кг или специальные цистерны.