1-Propanol

    • Product Name: 1-Propanol
    • Factroy Site: Yudu County, Ganzhou, Jiangxi, China
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    • Manufacturer: Ascent Petrochem Holdings Co., Limited
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    Specifications
    HS Code
    Productname 1-Propanol
    Iupacname Propan-1-ol
    Synonyms n-Propanol; n-Propyl alcohol; 1-Hydroxypropane; Ethyl carbinol
    Molecularformula C3H8O
    Molecularweight 60.10 g/mol
    Casnumber 71-23-8
    Ecnumber 200-746-9
    Unnumber 1274
    Appearance Colorless liquid
    Odor Mild alcohol-like odor
    Boilingpoint 97.2 °C at 101.3 kPa
    Meltingpoint -126.5 °C
    Density 0.803 g/cm3 at 20 °C
    Vaporpressure 2.0 kPa at 20 °C
    Flashpoint 22 °C closed cup
    Autoignitiontemperature 371 °C
    Explosivelimits 2.1–13.5 vol% in air
    Solubility Miscible with water, ethanol, and ether
    Refractiveindex 1.3850 at 20 °C
    Viscosity 2.0 mPa·s at 20 °C
    Pka 16.1
    Logp 0.25
    Surfacetension 23.3 mN/m at 20 °C
    Heatcapacity 143.8 J/mol·K
    Enthalpyofvaporization 47.45 kJ/mol
    Hazardclass Flammable liquid, Category 2
    Hazardstatements H225; H319; H336
    Storageconditions Store in a cool, dry, well-ventilated area away from ignition sources

    As an accredited 1-Propanol factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing 1-Propanol is packaged in a 1 L amber glass bottle with a secure cap, flammable-liquid label, and hazard warnings.
    Container Loading (20′ FCL) 20′ FCL container loaded with chemical 1-Propanol in UN 1274-approved drums, properly secured, labeled, and documented for safe hazardous transport.
    Shipping 1-Propanol ships as a flammable liquid under UN 1274, Class 3, Packing Group II. Proper shipping name: 1-Propanol. Use UN-approved packaging, flammable liquid labels, and placards. Follow IMDG/IATA/ADR and 49 CFR rules; keep away from ignition sources, oxidizers, and heat.
    Storage Store 1-propanol in a cool, dry, well-ventilated area away from heat, sparks, open flames, and strong oxidizers. Keep containers tightly closed and labeled in a flammable-liquid storage cabinet. Use grounding/bonding when dispensing. Protect from sunlight and damage. Store separately from acids, bases, and combustibles. Ensure spill kits and firefighting equipment are available.
    Shelf Life Shelf life for 1-Propanol: about 2–3 years if kept tightly sealed, cool, dry, well-ventilated, and away from ignition sources.
    Application of 1-Propanol

    In solvent-borne flexographic lamination inks for BOPP and polyethylene food-packaging films, 1-propanol (CAS 71-23-8) functions as a medium-tail retarder solvent that shifts the drying curve without increasing polyamide resin precipitation at the anilox cell interface. On a central-impression flexo press running at 400 m/min with a chambered doctor blade and laser-engraved ceramic anilox roll, the let-down solvent controls open time and plate swell. Commercial nitrocellulose/polyurethane and polyamide ink systems typically receive 15–25 wt% 1-propanol in the finished ink, with the balance split among ethyl acetate, ethanol, and propylene glycol monomethyl ether. Viscosity at the ink sump is held between 18 s and 25 s on a DIN 4 flow cup at 20 °C. The boiling point of 1-propanol is 97 °C, and the closed-cup flash point is 22 °C; these values place the pressroom under ATEX 2014/34/EU equipment category 2 for flammable solvent mists. Evaporation from printed film is controlled so that retained solvent measured by headspace gas chromatography stays below the organoleptic limit agreed in the EU food-contact regulation framework; the overall migration limit of 10 mg/dm² in Regulation (EU) No 10/2011 applies to the final laminate, not to the ink alone. If 1-propanol is raised above 30 wt% in the let-down solvent, blocking and retained solvent increase in the lamination nip at the press exit. If 1-propanol falls below 8 wt%, edge drying at the doctor blade produces dot bridging and anilox starvation on fine highlight plates. Printing cylinder and anilox cleaning stations use 1-propanol-containing wash blends in closed-loop distillation units because the solvent dissolves nitrocellulose resin while maintaining a flash point acceptable for explosion-proof wash equipment. Terminal products include snack food pouches, confectionery wrappers, shrink-sleeve labels, and retort lidding films.

    Why Does ICH Q3C Assign 1-Propanol to Class 3 Residual Solvents?

    ICH Q3C Impurities: Guideline for Residual Solvents lists propan-1-ol as a Class 3 solvent with a permitted daily exposure of 50 mg/day. In pharmaceutical manufacturing, this classification permits its use as a recrystallization solvent, extractant, and equipment cleaning fluid without the stricter concentration limits applied to Class 2 solvents such as methanol or acetonitrile. In a glass-lined reactor, a poorly water-soluble API is dissolved at 70–78 °C in a binary mixture of 1-propanol and purified water, with the alcohol fraction typically between 60 vol% and 80 vol% depending on the polymorphic solubility curve. The solution is transferred through a 0.45 µm cartridge filter to a crystallizer. Cooling is ramped at 0.2–0.5 K/min under 80 rpm anchor agitation to control supersaturation and crystal size distribution. The batch is then centrifuged in a bottom-discharge basket centrifuge, washed with chilled 1-propanol, and dried in a vacuum tray dryer at 55 °C and 25 kPa absolute. Residual solvent content is determined by headspace gas chromatography using USP <467> Procedure A or Ph.Eur. 2.4.24. The Class 3 limit under ICH Q3C Option 1 is 5000 ppm or 0.5 wt% in the API, equivalent to 50 mg/day for a daily dose of 10 g. For a lipophilic API, the water content of the recrystallization solvent must be maintained below 2 wt% because higher water activity collapses the supersaturation window. This constraint requires azeotropic drying of recovered 1-propanol in a batch distillation column with a reflux ratio of 3:1 before reuse. Solvent recovery loops in GMP facilities must be validated under EU Annex 15 and ASTM E2500.

    For surgical hand antisepsis tested according to EN 12791, the reference treatment is 60% v/v propan-1-ol in water, applied in a 3 mL aliquot and rubbed for 90 s according to the standard procedure. In hospital surface disinfection and cleanroom grade C/D transfers, n-propanol is formulated into ready-to-use products at 50–70% v/v, often with 0.5–1.0 wt% emollients such as propylene glycol or glycerin to limit dermal defatting during repeated hand hygiene. Production of such formulations proceeds in closed stainless steel vessels under nitrogen blanketing; flash point 22 °C and vapour pressure approximately 2.0 kPa at 20 °C require ATEX Zone 1 electrical classification under Directive 2014/34/EU. Surface efficacy is validated using EN 13697 with a contact time of 60 s at 20 °C for vegetative bacteria and some fungi, while virucidal claims require EN 14476 with defined protein load and temperature. EU biocide authorization falls under Regulation (EU) No 528/2012; registration and national transitional measures differ by product type. Terminal products include pre-saturated wipes for stainless steel transfer hatches, trigger sprays for laboratory benchtops, and alcohol-based surgical scrub solutions. Blending accuracy is controlled by Coriolis mass flow meter, not by density alone, because alcohol-water mixtures exhibit volume contraction; a 60 vol% n-propanol mixture has a higher density than the arithmetic mean of its components. The final product is filtered through a 0.2 µm cartridge into fluorinated HDPE containers resistant to solvent vapour loss.

    When n-Propanol Acts as a Coupling Co-Solvent in Epoxy-Phenolic Can Coatings

    High-solids epoxy-phenolic interior can linings are roller-coated onto tinplate and electrolytic chromium-coated steel before the sheet is cut and drawn into cans. 1-Propanol is used at 5–8 wt% of the total solvent blend because its hydroxyl group reduces interfacial tension between high-polarity phenolic oligomers and aromatic hydrocarbon diluents during the three-roll applicator transfer. At a sheet line speed of 300–450 sheets/min, the alcohol improves leveling before the first oven zone; the solvent is then volatilized in a three-zone forced-air oven with a peak metal temperature of 204 °C for 10 min. The addition is kept below 12 wt% because the high latent heat demand of 1-propanol can suppress the first-zone temperature and create film popping before the coil exits the hot zone. Compliance for food-contact use is evaluated under FDA 21 CFR 175.300 or Regulation (EU) No 10/2011 as applicable to the finished coated article; 1-propanol itself is not a monomer and must be removed by the curing schedule to below analytical detection in the final film. A high-performance liquid chromatography headspace method with flame ionization detection is used to monitor residual solvent. Published formulation data for this specific configuration is limited; commercial coating suppliers adjust solvent packages based on viscosity response measured by a cone-and-plate viscometer at 25 °C and 10,000 s⁻¹. Terminal articles include two-piece beverage cans, food cans, and drawn aluminum containers with interior protective linings.

    Catalytic Amination of 1-Propanol in Fixed-Bed Tubular Reactors

    Propylamine supply chains receive 1-propanol with water below 0.1 wt% to preserve the activity of cobalt- or nickel-promoted alumina catalysts. The reductive amination reaction with ammonia and hydrogen is conducted in multi-tubular fixed-bed reactors with a tube length-to-diameter ratio above 40:1. Patent disclosures for this route describe operating temperatures from 180 °C to 230 °C, total pressures from 2.0 MPa to 5.0 MPa, and ammonia-to-propanol molar ratios between 2:1 and 5:1. Liquid hourly space velocity is constrained to the 0.3–0.8 h⁻¹ range to manage heat release across the catalyst bed. Conversion per pass in commercial configurations exceeds 95%; the selectivity toward monopropylamine rises with ammonia excess and lower temperature, while higher temperature and reduced ammonia shift the product distribution toward dipropylamine and tripropylamine. The exothermic amination is controlled with boiling water jackets or molten salt coolant; hot spots above 260 °C are avoided because silica-alumina support surfaces undergo accelerated sintering and carbon deposition. The crude product is quenched, separated by distillation in a three-column train, and unreacted ammonia is recovered. Monopropylamine is the largest-volume derivative and enters chloroacetamide herbicide synthesis; dipropylamine is consumed in rubber vulcanization accelerators and corrosion inhibitor packages; tripropylamine has limited use in phase-transfer catalyst quaternization. The n-propanol feedstock must be free of sulfur above 1 ppm because sulfur poisons nickel and cobalt active sites. REACH registered uses for propan-1-ol cover this intermediate chemistry under the chemical safety report exposure scenarios.

    Stencil Underside Cleaners Reduce Ionic Residue Without Crazing Polycarbonate

    Automated under-stencil cleaners on solder paste printers use 1-propanol-containing wipe solvents to remove no-clean flux residues from laser-cut stainless steel stencils after a set number of prints. A common under-stencil solvent blend contains 60–80 vol% 1-propanol, 10–20 vol% 2-butoxyethanol, and the balance deionized water. The alcohol fraction provides sufficient dwell time to dissolve rosin and synthetic resin flux without leaving white residues on fine-pitch lands; its evaporation rate, slower than ethanol and faster than n-butanol, prevents capillary wicking into unfired solder paste. Cleaning frequency is typically programmed at intervals of 5–10 printed boards, with vacuum extraction and wipe tension monitored to prevent solvent carryover. Cleanliness is verified according to IPC TM-650 2.3.27 using a solvent extract conductivity meter; the ionic contamination limit in IPC J-STD-001 for high-reliability electronic assemblies is 1.56 µg/cm² NaCl equivalence. The cleaning fluid must not contact polycarbonate housing covers or acrylic display windows because stress crazing occurs after prolonged exposure. Process limits also apply to neoprene seals in dispensing heads; a 72 h immersion test at 40 °C is used to screen elastomer compatibility. Terminal products are printed circuit assemblies for automotive engine control modules, server motherboards, and power supply units.

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    Certification & Compliance
    More Introduction

    1-Propanol, designated by CAS Registry Number 71-23-8 and EC Number 200-746-9, is a linear primary alcohol with the condensed formula CH3CH2CH2OH and molar mass 60.095 g/mol. In bulk chemical commerce the material is not identified by a single model code; instead, it is described by grade descriptors such as technical, anhydrous, chemically pure, HPLC/spectrophotometric, and analytical-grade. Alternative nomenclature for the substance includes n-propyl alcohol, n-propanol, and propan-1-ol. Industrial uses centre on solvent functions in flexographic and gravure inks, extraction and purification in pharmaceutical processing, and use as a chemical intermediate for propyl esters, propylamines, propyl acrylate, and propionic acid derivatives.

    A widely referenced bulk specification for commercial 1-propanol requires minimum purity by gas chromatography of 99.5 wt%, water content not exceeding 0.10 wt% by ASTM D1364, acidity as acetic acid not exceeding 0.002 wt%, and non-volatile residue not exceeding 0.002 wt% by ASTM D1353. Colour is commonly controlled at not more than 10 APHA by ASTM D1209. The specification range is adjusted for specialised uses; anhydrous and low-water grades are preferred where moisture-sensitive nitrocellulose binders or acid-catalysed esterification processes are involved.

    Physical Property Benchmarks Used in Solvent-Selection Workflows

    Typical physical property profile for commercial 1-propanol
    Property Value or range Test method or condition
    Boiling range 96.0–98.5 °C ASTM D1078
    Density at 20 °C 0.803–0.805 g/cm³ ASTM D4052-22
    Flash point, closed cup 22 °C ASTM D56
    Vapour pressure at 20 °C 1.9 kPa Manometric method
    Freezing point -126.5 °C Differential scanning calorimetry
    Viscosity at 20 °C 2.26 mPa·s Capillary viscometry
    Refractive index, nD20 1.384–1.386 ASTM D1218
    Lower explosion limit 2.2 vol% Published flammability data
    Upper explosion limit 13.7 vol% Published flammability data
    Autoignition temperature 371 °C ASTM E659
    Water solubility Miscible At 20 °C

    Distillation range and water content are the two parameters most frequently tied to downstream lot acceptance. When 1-propanol is used as a letdown solvent in flexographic inks, batch viscosity drift on-press is minimised if water content remains below 0.10 wt%. At relative humidity above 60%, open solvent delivery lines can absorb sufficient moisture to alter anilox transfer rates before a change in dry point is detected by standard distillation. Published data for this specific configuration is limited; operational reports from flexographic press lines indicate that inks formulated below 25 cPs are sensitive to small shifts in solvent composition, particularly in chambered doctor blade systems running above 150 m/min.

    Typical Hansen solubility parameters reported for 1-propanol are δD=16.0 MPa^0.5, δP=6.8 MPa^0.5, and δH=17.4 MPa^0.5. The linear carbon backbone gives the molecule a less hindered hydroxyl group than its branched isomer, which alters hydrogen-bonding behaviour in ester and nitrocellulose resin systems. The substance is miscible with common ketones, esters, aromatic hydrocarbons, and glycol ethers, but phase separation may occur with highly aliphatic hydrocarbon diluents.

    In gravure and flexographic packaging inks, 1-propanol is often used as a tail solvent in nitrocellulose-polyamide formulations. The solvent balance is adjusted so that 1-propanol remains partially solvating during film formation, reducing surface defects while allowing sufficient evaporation before lamination. High-shear dispersion of pigment concentrates using 1-propanol as carrier requires controlled moisture because water raised surface tension and alters the wetting edge on polyethylene and polypropylene films. Plants using open-pan ink systems in coastal environments have recorded viscosity changes exceeding 15% over an eight-hour shift when ambient relative humidity rose from 45% to 65%.

    What Distinguishes n-Propyl Alcohol from Isopropanol in Coating Solvent Blends?

    Comparative solvent data for primary and branched alcohol alternatives
    Parameter Ethanol 1-Propanol 2-Propanol n-Butanol
    CAS Registry Number 64-17-5 71-23-8 67-63-0 71-36-3
    Molar mass 46.07 g/mol 60.095 g/mol 60.095 g/mol 74.12 g/mol
    Boiling point 78.37 °C 97.2 °C 82.6 °C 117.7 °C
    Vapour pressure at 20 °C 5.8 kPa 1.9 kPa 4.4 kPa 0.6 kPa
    Closed-cup flash point 13 °C 22 °C 12 °C 35 °C
    Octanol-water partition coefficient, log P -0.31 0.25–0.34 0.05 0.84
    Water miscibility Complete Complete Complete Limited above 20 wt%

    The structural difference between 1-propanol and 2-propanol is not simply theoretical. The lower vapour pressure of 1-propanol at 20 °C produces a slower evaporation profile, which is useful where a longer open time is required in screen-printed and flexographic ink systems. This property is paired with a slightly higher boiling point and greater non-polar character, reflected in a higher log P than 2-propanol. In coating formulations, 1-propanol may be selected over 2-propanol when the objective is reduced solvent odour retention after lamination or when a more linear evaporation curve is needed to avoid solvent trapping in thick film builds. In contrast, 2-propanol offers faster drying and lower cost in many cleaning and thinner applications, but it can be less effective for dissolving certain polyamide resins at equivalent addition levels.

    Compared with n-butanol, 1-propanol retains full water miscibility and has a lower boiling point, making it easier to remove from water-borne emulsions and from pharmaceutical mother liquors. Compared with ethanol, 1-propanol offers a higher flash point and lower vapour pressure, but its higher molar mass increases retention and can raise residual solvent measurements if drying conditions are unchanged. The choice between these alcohols in a given production formulation is therefore governed by evaporation rate, resin solubility, flash point classification, and residual solvent limit rather than by a single solvent-power ranking.

    As a chemical intermediate, 1-propanol is esterified with acetic acid under acid catalysis to produce n-propyl acetate, with reactive distillation used to remove water and shift equilibrium. Catalytic dehydrogenation or oxidation yields propionaldehyde and propionic acid, while amination over metal catalysts generates monopropylamine, dipropylamine, and tripropylamine depending on ammonia ratio and temperature. These downstream products require continuous removal of water and careful control of reactor residence time because the linear alcohol can dehydrate under strongly acidic or high-temperature conditions, producing propene and subsequent oligomerisation by-products.

    When Propan-1-ol Is Specified as a Pharmaceutical Extraction Vehicle and Chemical Intermediate

    The substance is classified in the ICH Q3C guideline for residual solvents as a Class 3 solvent with a permitted daily exposure of 50 mg/day. This classification places 1-propanol in the same low-risk solvent class as ethanol and 2-propanol for pharmaceutical processing. Final active pharmaceutical ingredient residual limits are derived from the PDE and the administered daily dose, and analytical methods for quantitation typically use gas chromatography with flame ionisation detection or headspace gas chromatography linked to mass spectrometry. In extraction and crystallisation operations, the linear alcohol provides a moderately polar medium that can dissolve polar organic intermediates while allowing crystallisation upon controlled cooling or anti-solvent addition.

    Operational limits in pharmaceutical use include strict control of peroxide content if the solvent is recovered by distillation. Although 1-propanol is not classified among the common ether peroxide-formers, recovered alcohol streams should be tested before redistillation when they have been exposed to air at elevated temperature. Published data for this specific configuration is limited; conservative processing practice includes nitrogen blanketing and not exceeding reboiler temperatures above 140 °C for extended recovery campaigns. Glass-lined or stainless steel type 316L equipment is preferred for multicycle recovery because trace iron mobilisation from carbon steel can discolour the distilled product and reduce compliance with colour specifications below 10 APHA.

    Storage of 1-propanol in bulk requires design measures appropriate to flammable liquid Category 2. The closed-cup flash point is 22 °C, and the substance is assigned UN 1274 for transport. Under Regulation (EC) No 1272/2008, the harmonised classification includes Flam. Liq. 2, Eye Dam. 1, and STOT SE 3, with hazard statements H225, H318, and H336. Fixed-roof storage tanks should be equipped with pressure-vacuum vents, nitrogen blanketing, and bonding and grounding systems. Avoid prolonged contact with strong oxidisers, including concentrated nitric acid and chromium trioxide, because alcohol oxidation can be highly exothermic and can proceed to propionaldehyde and propionic acid with sufficient heat release to approach autoignition. Aluminium and its alloys are not recommended for prolonged anhydrous 1-propanol service because alkoxide formation and hydrogen evolution can occur, especially when the metal surface is freshly abraded.

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