| HS Code | 297484 |
As an accredited Indian Oil Corp (IOCL) PTA factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | IOCL PTA is supplied in 1.1 MT woven polypropylene jumbo bags with inner liners for safe bulk handling. |
| Container Loading (20′ FCL) | Loading Indian Oil Corp (IOCL) PTA into a 20′ FCL container: bagged chemical cargo, palletized, secured, labeled, and sealed for export. |
| Shipping | Indian Oil Corp (IOCL) PTA (purified terephthalic acid) is shipped as a white crystalline powder in 25 kg bags or 1.1 MT jumbo bags, palletized and stretch-wrapped. Transport in covered trucks, railcars, or 20'/40' containers. Keep dry, away from moisture, heat, and contamination. Generally non-hazardous; follow MSDS and local regulations. |
| Storage | Store IOCL PTA (purified terephthalic acid) in a cool, dry, well-ventilated, fire-resistant warehouse. Keep bags or containers tightly closed, palletized off the floor, and away from moisture, direct sunlight, ignition sources, strong oxidizers, and alkalis. Prevent dust generation and accumulation; use grounded equipment and local exhaust. Follow the SDS and site-specific storage regulations. |
| Shelf Life | IOCL PTA typically has a shelf life of about 12 months when stored sealed in a cool, dry, well-ventilated area. |
In continuous polyester fiber melt spinning from IOCL PTA, the slurry preparation station meters PTA into monoethylene glycol at a molar ratio of 1.15:1 to 1.20:1 MEG:PTA, with antimony trioxide catalyst at 180–220 ppm Sb or titanium-based catalyst at 5–15 ppm Ti; titanium dioxide delustrant is added at 0.02–0.50 wt% for semi-dull or full-dull staple. Esterification is held at 260–270 °C and 2–3 bar(g) with water removal through a reflux column, followed by polycondensation in finisher reactors at 280–290 °C under 2 mbar absolute or lower. Incoming PTA particle size distribution is assessed by laser diffraction per ISO 13320:2020 and bulk density per ISO 60:2023 because variations in PTA particle packing shift slurry viscosity and downstream esterification rate. Melt spinning is performed at 278–295 °C through spinneret holes of 0.15–0.40 mm, followed by crossflow quench air at 18–24 °C, finish application, primary and secondary drawing at total draw ratios of 3.5:1 to 6.0:1, and heat setting at 150–170 °C. Textile filament grades are polycondensed to an intrinsic viscosity of 0.62–0.68 dL/g, while high-tenacity industrial yarn targets 0.85–1.00 dL/g, both measured per ASTM D4603-18. Melt flow-rate variation is verified by ISO 1133-1:2022, pellet color by ASTM D6290-19, and yellowness index by ASTM E313-20; a yellowness shift above the qualified limit correlates with increased filament break frequency on high-speed take-up equipment. Compliance for textile contact is managed through REACH Annex XVII screening and the downstream-relevant Oeko-Tex Standard 100 catalogue, though certification is article-specific. Terminal product types include apparel filament, staple blends for woven and knitted fabrics, duvet fill fiber, nonwoven hygiene and filtration media, carpet pile, geotextiles, tire cord fabric, conveyor belt carcass yarn, airbag fabric, and sewing thread. A critical processing boundary is moisture ingress: if off-spec or post-consumer regrind chip is blended without pre-drying at 160–170 °C for 4–6 h to a moisture content below 50 ppm, hydrolytic chain scission during extrusion lowers melt viscosity, causes spinneret drips, and increases yarn denier variability.
Solid-state polycondensation of bottle-grade PET from IOCL PTA is constrained by precursor crystallization, carboxyl end-group population, and acetaldehyde precursor load. Continuous melt-phase esterification charges PTA with MEG at a molar ratio of 1.15:1 to 1.20:1, with purified isophthalic acid at 1–3 wt% of total acid to reduce spherulite perfection and subsequent stretch-induced crystallization during injection stretch blow moulding. Melt polycondensation is operated to an intrinsic viscosity of 0.60–0.65 dL/g before amorphous pelletizing, then solid-state polycondensation at 205–225 °C under flowing nitrogen or vacuum of 0.5–2 mbar for 12–18 h raises the intrinsic viscosity to 0.80–0.85 dL/g as specified in ASTM D4603-18. Acetaldehyde generation is checked by headspace gas chromatography with a target below 1 mg/kg in dried resin, while pellet color is quantified by ASTM D6290-19 and ASTM E313-20. Food-contact compliance requires FDA 21 CFR 177.1630 compositional and migration compliance or EU Regulation 10/2011 Annex I, with specific migration limits for residual monomer, catalyst residues, and oligomers verified on the final article. Production equipment includes crystallizers operating at 140–180 °C, rotary or fluidized-bed SSP reactors, and nitrogen purification loops to remove ethylene glycol and acetaldehyde. A common process conflict arises when crystallization is incomplete, causing amorphous pellet sintering and gas distribution blockage in the SSP bed. Terminal product types include carbonated soft-drink bottles, water bottles, edible oil containers, hot-fill jars, and food trays. SSP cannot repair severe melt-phase discoloration or high carboxyl end-group levels exceeding 30 meq/kg; the solid-state reaction rate is diffusion-limited by removal of reaction by-products, and dryer residence time must be extended when incoming chip moisture exceeds 0.15 wt%.
| Parameter | Method | Target range |
| Intrinsic viscosity before SSP | ASTM D4603-18 | 0.60–0.65 dL/g |
| Intrinsic viscosity after SSP | ASTM D4603-18 | 0.80–0.85 dL/g |
| Isophthalic acid comonomer | Internal titration/NMR | 1–3 wt% of total acid |
| SSP temperature | Calibrated reactor thermocouple | 205–225 °C |
| Residual acetaldehyde | Headspace GC internal method | Below 1 mg/kg |
Biaxially oriented polyester film lines fed with IOCL PTA select resin with diethylene glycol content maintained at 0.6–1.2 mol% of total glycol and a carboxyl end-group concentration controlled below 30 meq/kg, because both parameters shift melting point, stretch force, and oligomer deposition. Extrusion is performed on single-screw or twin-screw extruders at melt temperatures of 270–290 °C, cast onto a chill roll held at 20–30 °C, and stretched in sequential or simultaneous tenter frames at longitudinal draw ratios of 2.5:1 to 3.8:1 and transverse draw ratios of 3.0:1 to 4.5:1. Heat setting at 200–230 °C relaxes the film and controls thermal shrinkage. Tensile properties are tested per ASTM D882-18, haze by ASTM D1003-21, and dielectric strength by ASTM D149-20. The base polyester formulation uses PTA as the sole aromatic dibasic acid in direct esterification with MEG; in-line additive masterbatches for slip, anti-block, or antistatic performance are metered at 0.2–5 wt% depending on end use, while the PTA-based backbone remains unchanged. Because electrical and food-contact grades require low extractables, unqualified post-consumer recyclate is not blended into the base resin unless migration testing under EU Regulation 10/2011 is repeated on the final film. Terminal product classes include capacitor dielectric films in the 1–12 µm gauge range, flexible packaging films, thermal lamination films, photovoltaic backsheets, release liners, and high-clarity display optics. A recognized production limitation is the accumulation of cyclic oligomers on chill rolls and draw rolls during continuous long runs; roll cleaning frequency increases when melt temperature is operated above 290 °C or when intrinsic viscosity falls below 0.55 dL/g.
PTA-based polybutylene terephthalate production via direct esterification uses a 1.15:1 to 1.30:1 molar ratio of 1,4-butanediol to IOCL PTA, with tetrabutyl titanate catalyst at 50–150 ppm Ti and optional phosphite stabilizers in the 0.1–0.5 wt% range to reduce catalyst hydrolysis. Esterification is run at 220–240 °C with packed-column separation of water and tetrahydrofuran; polycondensation follows at 245–260 °C under 0.5–1.5 mbar vacuum. Because 1,4-butanediol undergoes acid-catalyzed cyclization to THF, reactor residence time and temperature are tightly controlled; operation above 260 °C increases THF generation and suppresses chain extension. The base resin is characterized by melt volume-flow rate per ISO 1133-1:2022 at 250 °C/2.16 kg, tensile properties per ISO 527-2:2012, flexural properties per ISO 178:2019, and comparative tracking index per IEC 60112:2020. Electrical and appliance compound formulations add glass fiber at 10–40 wt% and flame-retardant packages to achieve UL 94 V-0 at end-use thicknesses. Terminal product types include automotive connectors, relay housings, bobbins, brush holders, pump impellers, halogen lamp sockets, and electrical enclosure components. Electrical and electronic grades are qualified against RoHS Directive 2011/65/EU and REACH substance restrictions. The process boundary is set by catalyst hydrolysis: when free water is not removed to a sufficiently low level before polycondensation, tetrabutyl titanate deactivates, batch viscosity plateaus below specification, and the excess BDO must be stripped under more aggressive vacuum, which in turn raises THF losses.
When IOCL PTA is substituted for part of the phthalic anhydride in a styrenated unsaturated polyester resin formulation, the reactor charge is restructured to improve hydrolytic stability and heat deflection temperature in the cured network. Replacement levels are commonly 10–30 mol% of total dibasic acid, with the remaining aromatic dibasic acid supplied as isophthalic acid or phthalic anhydride, maleic anhydride or fumaric acid as the unsaturated acid, and propylene glycol or neopentyl glycol as the diol. The cook is run at 180–220 °C with xylene azeotropic water removal or inert gas sparging until acid number falls to 20–35 mg KOH/g; after cool-down to 80–100 °C, styrene monomer is added at 30–40 wt% of the final resin solution. PTA’s high melting point and limited cold solubility in glycols require staged addition and elevated first-stage reaction temperature to avoid slurry settlement and inconsistent acid incorporation. Cured castings are tested per ISO 527-2:2012, ISO 178:2019, and ISO 75-2:2013 for tensile, flexural, and deflection temperature properties. Terminal product types include pultruded fiberglass profiles, marine hull laminates, storage tank liners, sewer pipe relining resin, automotive body filler, and cultured marble. The formulation is limited in ambient-cure unfilled castings where low exotherm and high styrene compatibility dominate, because higher aromatic content can increase resin viscosity; raising styrene above 40 wt% risks phase separation.
Aromatic polyester polyol synthesis from IOCL PTA and diethylene glycol is carried out at 200–230 °C with a stoichiometric glycol excess selected to reach hydroxyl number 230–350 mg KOH/g for rigid polyisocyanurate foam. The formulation may incorporate 20–40 wt% PTA relative to total charge mass and minor dibasic acid modifiers such as adipic acid or phthalic anhydride; esterification continues until acid number falls below 3 mg KOH/g. Hydroxyl number is measured by ASTM D4274-21 or ISO 14900:2017, and acid number by ASTM D4662-20. Viscosity at 25 °C is typically controlled between 2,000 and 6,000 mPa·s. Mixing with polymethylene polyphenyl isocyanate at an isocyanate index of 250–350 produces a polyisocyanurate network; the aromatic content maintains cell wall stability during blowing agent expansion. Terminal product types include rigid PIR insulation boards, metal-faced sandwich panels, pour-in-place appliance insulation, and cryogenic insulation. A processing boundary occurs at ambient temperatures below 15 °C, when viscosity rises and blending in high-pressure impingement mixers becomes nonuniform; preheating of the polyol to 25–35 °C is required for consistent metering.
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