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1,3-Propanediol

    • Product Name: 1,3-Propanediol
    • Factroy Site: Yudu County, Ganzhou, Jiangxi, China
    • Price Inquiry: admin@ascent-chem.com
    • Manufacturer: Ascent Petrochem Holdings Co., Limited
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    Specifications
    HS Code
    Product Name 1,3-Propanediol
    Iupac Name propane-1,3-diol
    Cas Number 504-63-2
    Ec Number 207-997-3
    Molecular Formula C3H8O2
    Molecular Weight 76.09 g/mol
    Appearance Colorless, viscous liquid
    Odor Odorless or nearly odorless
    Density 1.053 g/cm3 at 25 °C
    Melting Point -27 °C
    Boiling Point 214.4 °C
    Flash Point 79 °C closed cup
    Autoignition Temperature 400 °C
    Water Solubility Miscible
    Viscosity 52.4 mPa·s at 20 °C
    Refractive Index 1.440 at 20 °C
    Logp -1.04
    Pka 14.9

    As an accredited 1,3-Propanediol factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing Packaging for 1,3-Propanediol: 200 L HDPE drums, 25 L jerrycans, or 1000 kg IBC totes; keep sealed and labeled.
    Container Loading (20′ FCL) 1,3-Propanediol is loaded into a 20-foot FCL dry container in sealed drums or IBCs, palletized, secured, and transported per regulations.
    Shipping 1,3-Propanediol is generally shipped as a non-hazardous, non-regulated liquid in DOT-approved drums, IBC totes, or tank cars. Keep containers closed and protect from contamination, moisture, and extreme temperatures. No UN number, hazard class, or packing group is required under DOT, IMDG, IATA, or ADR.
    Storage Store 1,3-propanediol in a cool, dry, well-ventilated area, away from heat, sparks, and open flames. Keep containers tightly closed and protect from moisture. Store at room temperature in labeled containers. Separate from strong oxidizing agents, acids, and bases. Use secondary containment to prevent spills. Avoid prolonged exposure to air. Follow local regulations for combustible liquids and ensure proper ventilation.
    Shelf Life 1,3-Propanediol: stable; typically two years if kept in tightly closed containers in a cool, dry, well-ventilated area away from oxidizers.
    Application of 1,3-Propanediol

    Continuous-fed polymerization of terephthalic acid with 1,3-propanediol begins in an agitated esterification vessel at 230–250 °C, with excess PDO maintained to drive equilibrium toward bis(3-hydroxypropyl) terephthalate oligomers. The overhead rectification column recovers unreacted PDO at reduced pressure while water is removed as distillate; after ester conversion reduces acid value below 20 mg KOH/g, the prepolymer transfers to a finishing reactor at 260–270 °C and pressure below 0.5 kPa. Titanium alkoxide catalyst at 50–120 ppm Ti relative to terephthalic acid accelerates polycondensation, and a phosphorus-based thermal stabilizer at 20–80 ppm P protects molecular weight during finishing. Intrinsic viscosity is monitored by a method adapted from ASTM D4603 and maintained at 0.8–1.0 dL/g for fiber-grade PTT. Prior to melt spinning, pellets are dried in a desiccant-bed dryer with dew point below -40 °C to reduce free moisture below 50 ppm by ASTM E203. A single-screw extruder or twin-screw extruder with L/D ratio 24:1–32:1 feeds a spin manifold at 250–265 °C, with inter-zone temperature variation held within ±1 °C. The melt pump provides steady volumetric delivery to spinnerets with capillary diameter 0.2–0.4 mm and L/D ratio 2:1. Quench air at 18–22 °C and 0.3–0.5 m/s solidifies filaments below the glass transition, followed by a two-stage draw at draw ratio 3.0:1–5.0:1. Drawn yarn tensile properties are tested per ISO 527-2; published tenacity for high-speed spun PTT filament falls between 2.0 cN/dtex and 3.2 cN/dtex. Terminal outputs include carpet and automotive mat yarn, knit apparel filament, and industrial fabric where higher recovery from compression outperforms conventional PET or nylon constructions. A critical processing boundary is melt residence time above 10 min, which shifts molecular weight distribution toward low-IV oligomers and causes spinneret pressure instability.

    What Limits Hydrolytic Stability in PDO-Based Polycarbonate Diol Coatings?

    For PDO-based polycarbonate diol coatings, hydrolytic degradation is quantified by immersion in demineralised water at 80 °C for 7 days, followed by adhesion measurement per ISO 2409 and tensile retention per ISO 527-2. The carbonate linkage generated from 1,3-propanediol and diphenyl carbonate or dimethyl carbonate shows lower water uptake than adipate ester segments in equivalent polyol backbones. In a 1:1 NCO/OH formulation with hexamethylene diisocyanate trimer and dibutyltin dilaurate at 0.02 wt%, the coating is cured at 60 °C for 24 h; residual isocyanate is tracked by ASTM D2572 until values drop below 0.1 %. Polycarbonate diol synthesis uses a wiped-film evaporator to remove phenol or methanol by-products at 180–220 °C and 0.1–1.0 kPa; acid value is kept below 0.3 mg KOH/g to limit secondary reactions with isocyanate. At polyurethane solid content above 40 wt%, dispersion stability in aqueous media is measured by ISO 3219 rotational rheometry; shear viscosity at 1 s⁻¹ should remain below 500 mPa·s to permit airless spray application. Terminal products include aqueous metal primers, flexible wood coatings, and high-humidity industrial coatings where repeated condensation exposure is expected. Aromatic isocyanate systems without ultraviolet stabilization show measurable yellowing in accelerated weathering; the observed limitation is photo-oxidative rather than hydrolytic. Published data for this specific formulation configuration is limited above crosslink density 1.5 × 10⁻³ mol/cm³.

    Coolant Circuit Inhibitor Screening When 1,3-Propanediol Replaces Monoethylene Glycol

    Aqueous 1,3-propanediol solutions present a freeze-protection window for indirect cooling circuits, but substitution of monoethylene glycol requires inhibitor rebalancing because the isomer’s higher boiling point of 214 °C alters low-pressure loop vent losses. Corrosion screening is conducted in glassware per ASTM D1384 for 336 h at 88 °C, with metal coupons of copper, solder, brass, steel, cast iron, and aluminum. Acceptance limits under ASTM D3306 are reported in Table 1. The formulation is buffered with 2-ethylhexanoic acid and borate at total alkalinity of 30–60 mL N/10 HCl per 100 mL coolant, and pH is maintained between 8.0 and 10.5. For heavy-duty diesel engines, coolant concentrate is diluted to 50 vol% with deionized water; freezing point is measured per ASTM D1177 and should fall below -30 °C for cold-climate OEM specifications. Elastomer compatibility is confirmed with silicone rubber and EPDM coupons after 168 h immersion at 100 °C, with tensile retention above 80 % per ISO 37. A single pass through a flat-tube radiator test rig at 0.3 m/s velocity exposes copper-solder junctions to stress corrosion; inhibitor depletion is tracked by ion chromatography. Operational boundary: continuous skin temperature above 160 °C in high-flux dies requires system pressurization and deaeration to prevent film boiling. Terminal products include heavy-duty engine coolants, stationary fuel-cell thermal fluids, and closed-loop industrial chiller concentrates.

    Metal couponMaximum weight loss per ASTM D1384 / ASTM D3306 (mg/coupon)
    Copper10
    Solder30
    Brass10
    Steel10
    Cast iron10
    Aluminum30

    In low-viscosity skin lotions, 1,3-propanediol is predissolved in the water phase at 2.0–5.0 wt% before carbomer dispersion to avoid lump formation and pH shock. Formulations containing sodium hyaluronate and xanthan gum use 1,3-propanediol to lower the water activity of the continuous phase; preservative efficacy is then challenged per ISO 11930 using Staphylococcus aureus, Escherichia coli, Candida albicans, and Aspergillus brasiliensis. A rotor-stator homogenizer operating at 1500–3000 rpm for 10 min reduces emulsion droplet size d(0.9) below 20 µm when the oil phase is added at 45 °C; no high-temperature oil phase is required for PDO-containing lamellar gel networks. Humectant retention in stratum corneum is measured gravimetrically at 80 % RH and 25 °C; film mass gain is recorded over 24 h, though published data for this specific formulation configuration is limited. pH is adjusted to 5.0–6.0 with citric acid buffer to maintain carbomer rheology; above pH 7.5, the ester-free system loses viscosity and may require an added polymeric stabilizer. Terminal products include facial mists, aqueous hair detangling fluids, and wet wipes preserved with caprylyl glycol at 0.5 wt%. The primary operational boundary is post-manufacture viscosity drift in storage: 1,3-propanediol softens the hydrophilic gel network at concentrations above 7.0 wt%, and cold-flow behavior may fail the target yield stress of 3 Pa when measured by controlled-stress rheometry.

    When PDO-Derived Polyesters Enter Unsaturated Resin Formulations

    Replacing neopentyl glycol with 1,3-propanediol in unsaturated polyester resin cooks increases the proportion of flexible C3 units between terephthalate or isophthalate residues. The cook is run in a stainless-steel reactor with partial condenser set at 180–220 °C; xylene is used as azeotrope at 5–10 wt% of total batch to lower condensation water. When acid value drops below 30 mg KOH/g, maleic anhydride-derived unsaturation remains in the chain and the resin is cut in styrene at 30–40 wt% styrene monomer. Cure is activated at ambient temperature with methyl ethyl ketone peroxide at 1.0–2.5 phr and cobalt octoate accelerator at 0.1–0.3 phr cobalt metal. The exotherm peak during a 100 g cup gel should remain between 140 °C and 175 °C; above this range, styrene vaporization increases and internal voids appear in cast parts. Flexural properties are measured by ISO 178 with 4-point bending; heat deflection temperature is measured by ASTM D648 at 1.82 MPa. Terminal parts include filled sanitary ware, corrosion-resistant gel coats, and button sheets. An operational boundary is the reduction in hardness after immersion in 60 °C water for 72 h; if water absorption exceeds 2.0 %, post-curing at 80 °C for 2 h is required to restore dimensional stability.

    Pharmaceutical Processing Solvent Recovery and Residual Solvent Justification

    For API crystallization campaigns, 1,3-propanediol is occasionally evaluated as a water-miscible antisolvent or reaction solvent for amide-forming condensations. Recovery from mother liquors is conducted in a wiped-film evaporator at 120–160 °C under 5–20 kPa, followed by a fractionating column with 10–20 theoretical stages; the water-rich overhead is discarded and the PDO-enriched bottom is reused after gas chromatography confirms purity above 99.5 area%. Residual PDO in the final API is measured by headspace gas chromatography with flame ionization detection, using a DB-624 column and a split ratio of 20:1. The ICH Q3C guideline does not list 1,3-propanediol under a dedicated residual solvent class; therefore, a sponsor must provide a risk-based justification, with a default residual limit of 500 ppm in the drug substance unless toxicological data support a higher value. Quality control alignment with USP <467> requires method validation for specificity, linearity from 50 % to 150 % of the specification limit, and recovery between 90 % and 110 %. Solid dispersion processes using PDO as a plasticizing co-solvent are run at 90–130 °C in a twin-screw granulator; residual PDO in the extrudate is driven below 1000 ppm by a downstream vacuum devolatilization section. Terminal outputs include crystallized API solids and extruded solid dispersions for bioavailability enhancement. Published data for this specific configuration is limited; batch-to-batch variability in residual solvent must be monitored for at least 3 consecutive commercial-scale batches.

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    Certification & Compliance
    More Introduction

    1,3-Propanediol (CAS 504-63-2, C3H8O2, molecular mass 76.09 g/mol) is supplied as a clear, hygroscopic liquid with terminal primary hydroxyl groups. Commercial material is differentiated by grade rather than by discrete model numbering: polymer/industrial grade, cosmetic grade, and high-purity grade. Trade designations for bio-based material include Susterra and Zemea; Susterra is specified for polymer and industrial uses, while Zemea is directed toward personal care and cosmetic applications. Petrochemical-grade material is typically sold as technical 1,3-propanediol without a renewable carbon specification. Typical polymer-grade specification sheets list assay by gas chromatography with flame ionization detection at not less than 99.5 wt%, water content by Karl Fischer titration in accordance with ASTM E203 at not more than 0.10 wt%, and color by ASTM D1209 at not more than 10 APHA. Density at 20 °C is reported as 1.052–1.054 g/cm³ using ASTM D4052. Kinematic viscosity at 20 °C is 49–52 mm²/s by ASTM D445, corresponding to a dynamic viscosity near 52 mPa·s. Melting point is -27 °C and boiling point is 214 °C at 101.3 kPa. Flash point is above 100 °C in closed-cup testing. Fermentation-derived material may contain 100% renewable carbon as measured by ASTM D6866-22, whereas ethylene oxide- or acrolein-derived material shows no measurable radiocarbon signature.

    The structural distinction between 1,3-propanediol and the more common diols is the terminal hydroxyl arrangement and the odd carbon spacing. Both hydroxyls are primary, which is significant in polyesterification and polyurethane chain extension. In contrast, 1,2-propanediol contains one secondary hydroxyl, which reduces reactivity in condensation polymerizations and can promote side reactions. The presence of two terminal hydroxyls also gives 1,3-propanediol a hydroxyl equivalent mass of 38.05 g/eq, identical on a mass basis to 1,2-propanediol but lower than 1,4-butanediol at 45.06 g/eq and higher than ethylene glycol at 31.03 g/eq. These differences require molar-basis reformulation when substituting one diol for another.

    What Distinguishes 1,3-Propanediol from 1,2-Propanediol and 1,4-Butanediol in Condensation Polymerization?

    When 1,3-propanediol is reacted with terephthalic acid or dimethyl terephthalate, the linear homopolyester formed is polytrimethylene terephthalate, or PTT. The odd carbon spacing between ester linkages produces a polymer with reported melting endotherm near 227 °C, lower than that of polyethylene terephthalate but near that of polybutylene terephthalate. The commercial significance of this monomer lies in the balance of processability and mechanical behavior in fibers and engineering thermoplastics. Systematic comparative data for the common diols are given below.

    Comparative values for diols used in condensation polymerization
    Property1,3-Propanediol1,2-Propanediol1,4-ButanediolEthylene glycol
    CAS registry number504-63-257-55-6110-63-4107-21-1
    Molar mass (g/mol)76.0976.0990.1262.07
    Hydroxyl equivalent mass (g/eq)38.0538.0545.0631.03
    Boiling point at 101.3 kPa (°C)214188230197
    Dynamic viscosity at 20 °C (mPa·s)5240–56, purity-dependent7117
    Linear homopolyester with terephthalic acidPTTNot commercialPBTPET
    Reported polyester melting endotherm (°C)227Not applicable223255

    When the diol is converted to polytrimethylene terephthalate, production-scale melt processing is constrained by thermal degradation chemistry. Industrial conversion to PTT uses continuous esterification of purified terephthalic acid with a molar excess of 1,3-propanediol in a slurry-fed reactor, followed by polycondensation under vacuum. Titanium alkoxide catalyst at 50–150 ppm Ti relative to polymer is common. Final polycondensation in a wiped-film or disk-ring reactor is operated at 260–270 °C and absolute pressure below 1 mbar. The target intrinsic viscosity for fiber-grade PTT is generally 0.90–1.00 dL/g measured in 60/40 phenol/1,1,2,2-tetrachloroethane at 25 °C, using a protocol adapted from ASTM D4603. Acrolein and allyl alcohol are measurable thermal degradation byproducts; their formation is controlled by limiting acid concentration and residence time. On twin-screw extruder compounding lines with L/D ratios of 40–48, barrel temperatures are commonly maintained at 230–255 °C. Published production-scale data identify acrolein outgassing as a process bottleneck when barrel temperature exceeds 265 °C, requiring vacuum venting with wet scrubbing rather than simple atmospheric venting. Melt flow rate determination for PTT compounds, when required, is conducted at 250 °C with a 2.16 kg load using ISO 1133-1:2022.

    When Bio-Based 1,3-Propanediol Is Evaluated as a Chain Extender in Polyurethane Systems

    In polyurethane systems, 1,3-propanediol functions as a chain extender or polyol component because its terminal primary hydroxyls react with isocyanates under standard urethane conditions. The hydroxyl equivalent mass of 38.05 g/eq requires molar-basis replacement of 1,4-butanediol. A prepolymer or one-shot formulation containing 100 pbw of 1,4-butanediol is adjusted to approximately 84.4 pbw of 1,3-propanediol to maintain equivalent hydroxyl stoichiometry. Processing differences arise from viscosity and phase separation behavior. Because viscosity at 20 °C is higher than that of 1,4-butanediol, low-pressure metering lines are typically preheated to 30–40 °C to stabilize gear pump discharge pressure. In polyurethane elastomer synthesis with 4,4'-diphenylmethane diisocyanate, the NCO/OH ratio is held between 1.00 and 1.05 for controlled hard segment development; off-ratio operation shifts gel time and residual isocyanate. Polyurethane hard segments based on 1,3-propanediol show different hydrogen-bond ordering from those based on 1,4-butanediol because the odd methylene sequence modifies chain packing. Published differential scanning calorimetry data vary with hard segment content and diisocyanate type, but the shift in hard segment melting is systematic rather than incidental. On continuous thermoplastic polyurethane lines using a twin-screw extruder with L/D 40, 1,3-propanediol feed can be introduced without split-streaming if liquid temperature remains above 25 °C; below this temperature, viscosity rise increases feed pump discharge pressure and reduces throughput stability.

    Cosmetic-grade material enters formulations primarily as a humectant, solvent, and consistency modifier. The material is fully miscible with water and polar solvents at 25 °C. Published moisture sorption studies at 25 °C and 75% RH place its equilibrium water uptake between that of glycerin and propylene glycol; numerical values depend on sample surface area and formulation water activity. In hydroalcoholic systems, formulation pH is typically controlled between 4.0 and 7.0 to limit oxidation byproduct formation. Cosmetic use is evaluated under EC 1223/2009, while industrial and polymer uses require review of the raw material safety data sheet under REACH and national chemical inventories. Cosmetic-grade specifications may align with USP/NF monograph requirements where applicable, but formulators confirm specific regulatory status for the intended market. Published data for long-term stability of 1,3-propanediol in complex emulsion systems is limited, and accelerated storage testing at 40 °C is required for each finished formulation.

    Field handling of 1,3-propanediol is constrained by hygroscopicity and dehydration chemistry. Closed-head storage under nitrogen blanket is recommended because water pickup in unblanketed day tanks can exceed 0.10 wt% at relative humidity above 60%. Unlined carbon steel storage is acceptable below 40 °C; higher temperatures may promote iron pickup and color drift. The substance is incompatible with strong oxidizers, concentrated mineral acids, and acid chlorides. Exposure to strong acid at elevated temperature promotes dehydration to acrolein, a volatile irritant. In polyurethane processing, unverified blending with amine-based catalysts or moisture-contaminated polyol streams can generate carbon dioxide and produce void-filled elastomer sections instead of solid castings. Bulk transfer systems use centrifugal pumps with mechanical seals; positive displacement pumps require pressure relief if line isolation is possible.

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