| HS Code | 370975 |
| Melt Flow Rate 190 C 2 16 Kg | 8.0 g/10 min |
| Density | 0.965 g/cm³ |
| Tensile Strength At Yield | 31 MPa |
| Tensile Elongation At Break | >500% |
| Flexural Modulus | 1,200 MPa |
| Izod Impact Strength Notched 23 C | 49 J/m |
| Vicat Softening Point | 125°C |
| Heat Deflection Temperature 0 45 Mpa | 90°C |
| Hardness Shore D | 65 |
| Mold Shrinkage | 1.5-2.0% |
| Melting Point | 135°C |
| Water Absorption | <0.01% |
| Volume Resistivity | >10^16 ohm·cm |
| Dielectric Strength | 20 kV/mm |
| Dielectric Constant 1 Mhz | 2.3 |
As an accredited Korea Petrochemical (KPIC) HDPE M691 factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | Korea Petrochemical (KPIC) HDPE M691 packaging: 25 kg woven PP/PE bags, 1000 kg jumbo bags, palletized and shrink-wrapped for shipment. |
| Container Loading (20′ FCL) | Container loading (20′ FCL): KPIC HDPE M691, 25 kg bags, approx. 17 MT net, loose loaded, securely stowed. |
| Shipping | Korea Petrochemical (KPIC) HDPE M691 is a non-hazardous high-density polyethylene. It is typically shipped in 25 kg bags or jumbo bags, palletized and stretch-wrapped. Ocean freight uses 20'/40' containers. Store dry, away from direct sunlight, heat, and moisture. Standard polymer shipping documents apply. |
| Storage | Store Korea Petrochemical (KPIC) HDPE M691 in a cool, dry, well-ventilated warehouse in original sealed bags or containers on pallets. Protect from direct sunlight, moisture, heat, flames, and strong oxidizers. Keep containers closed when not in use. Avoid contamination, dust, and static buildup. Maintain moderate temperatures, prevent excessive stacking, and follow first-in, first-out stock rotation. |
| Shelf Life | Under proper cool, dry storage conditions, KPIC HDPE M691 shelf life is typically 24 months from manufacture in original packaging. |
Returnable logistics assets molded from high-density polyethylene require a controlled balance between melt flow index, cold-temperature impact, and stacking load retention. Korea Petrochemical HDPE M691, with a nominal melt flow index of 9 g/10 min at 190 °C under 2.16 kg per ISO 1133-1:2011 and a nominal density of 0.964 g/cm³, is employed in this segment as the base resin at 100 parts by mass. For pallet and crate production, color masterbatch is introduced at 2.0–4.0 phr, and a phenolic/phosphite antioxidant masterbatch at 0.05–0.20 phr is metered to control thermomechanical degradation during hot-runner residence. Where the asset is stored outdoors, carbon black masterbatch at 2.0–3.0 phr is typical; loading is confirmed not by visual assessment alone but by weathering tests under ISO 4892-2:2013 or ASTM D2565 until the agreed color fade and tensile retention limits are met. Export pallet mechanical certification is aligned to ISO 8611-1:2011 for racking and load-bearing performance, while material lot release is documented against tensile yield by ASTM D638-14, flexural modulus by ASTM D790-17, and notched Izod impact by ASTM D256-10.
Production-scale injection molding of M691 pallets and heavy-duty crates is performed on 1,200–2,500 metric ton clamping-force machines equipped with a general-purpose polyolefin screw of 20:1–25:1 L/D and a compression ratio of 2.5:1–3.0:1. Melt temperature measured at the nozzle is held between 210 °C and 240 °C; operation above 250 °C accelerates chain scission and increases the risk of black specks at the hot drop, while operation below 200 °C produces high injection pressure and short shots at peripheral rib ends. Mould temperature is maintained at 15 °C to 30 °C. A mould temperature differential of more than ±5 °C across the cavity surface creates differential shrinkage of approximately 1.5–2.5% in the flow direction and 1.0–1.5% transverse, which manifests as top-deck warp and violates flatness tolerances of ±2 mm/m on certified pallets. Injection speed is set from 200 mm/s to 350 mm/s, with packing pressure between 50 MPa and 70 MPa and hold time extended until gate freeze is indicated by stable shot weight; for a 4 mm nominal wall this hold time is commonly 15–25 s, while for 6 mm ribbed pallet sections cooling time may extend to 40–90 s. Molders encountering sink marks at the top deck typically increase pack pressure by 5–10 MPa before altering tool temperature because pressure change has less effect on cycle time than a tool temperature shift. Published data for M691-specific cooling time is limited; in-mold pressure telemetry is recommended when transferring the processing window from prototype tools to multi-cavity production fixtures.
Resin handling affects the same dimensional stability: although polyethylene is not hygroscopic, storage in unheated silos at relative humidity above 60% can generate surface condensation, which appears as splay on the top deck. A hopper dryer at 60–70 °C for 1–2 h removes surface condensation without requiring the extended drying times used for engineering resins. Terminal product types in this segment are export pallets, nestable distribution crates, and collapsible logistics totes.
Across high-cavitation closure manufacturing, simultaneous constraints on fill speed, gate freeze time, and post-mold flatness dictate machine settings. M691 is formulated at 100 parts by mass with nucleating masterbatch at 1.0–2.0 phr to shift the crystallization onset upward and reduce top-deck warp after ejection. Erucamide-based slip masterbatch is added at 0.5–1.0 phr to moderate removal torque on tamper-evident and child-resistant designs; silicone external lubricant is metered at 0.1–0.3 phr only when high-speed rotary unscrewing tools exhibit release chatter. Color concentrate loading is set between 1.0 phr and 3.0 phr based on sidewall opacity requirements, with every lot screened for plate-out and organoleptic carryover because closures have direct food contact. Food-contact compliance for closures molded from M691 is anchored to FDA 21 CFR 177.1520 for olefin polymers and EU 10/2011 with an overall migration limit of 10 mg/dm²; additional regional verification includes China GB 4806.6-2016 and USP <661.1>.
| Standard / Regulation | Application Scope | Key Test or Limit |
|---|---|---|
| FDA 21 CFR 177.1520 | Olefin polymers intended for food-contact use | Extraction and end-use migration limits as specified in the section |
| EU 10/2011 | Plastic food-contact materials | Overall migration limit 10 mg/dm² |
| China GB 4806.6-2016 | Food-contact plastic resins and articles | Total migration limit 10 mg/dm² |
| USP <661.1> | Plastics used in packaging systems | Physicochemical test panel per applicable chapter |
Production tools are typically 48–96 cavity hot-runner closures with edge gating into the top deck or sidewall. Melt temperature is kept at 200–220 °C; excursions above 230 °C reduce melt viscosity sufficiently to cause skirt distortion during high-speed ejection, and operation below 195 °C generates short shots along the 1.2–2.0 mm skirt wall. Mold temperature is set to 12–20 °C to freeze the hinge area without extending cycle time; on 72-cavity tools the cycle is often 5–8 s. Injection velocity profiles start at 300–600 mm/s and decelerate in the final 20% of fill to avoid jetting at the core pin and to pack the gate region before the sprue channel freezes. In-mold cavity pressure transducers control switchover at 35–50 MPa; the switchover point is moved earlier by 2–3 MPa when the top deck exhibits sink opposite the gate. Screw recovery time must be shorter than the cooling phase, usually 2.5–4.0 s on 72-cavity tools; if recovery exceeds cooling, melt residence time increases and colorant degradation accelerates. Melt cushion is held at 3–5 mm to maintain shot-weight consistency within ±0.2% across consecutive cavities.
Environmental stress crack resistance of M691 closures is validated by end users under internal cap-on-neck protocols using stress-cracking surfactants at 50 °C; published comparative data for M691 in PCO 1881 configurations is limited, so production release should include closure dimensional checks and torque retention rather than relying solely on resin lot melt flow. Terminal product types include 28 mm PCO 1881 beverage closures, flip-top dispensing closures, and tamper-evident caps for dairy and condiment packaging.
The processing bottleneck in thin-wall dairy spread containers is differential shrinkage between the gate area and the rim rather than the 9 g/10 min melt flow of M691. The resin is formulated at 100 parts by mass with titanium dioxide white masterbatch at 2.0–4.0 phr, nucleating agent at 0.1–0.3 phr, and antioxidant masterbatch at 0.05–0.15 phr. Food-contact compliance is carried under EU 10/2011 total migration 10 mg/dm² and FDA 21 CFR 177.1520; when exported to China, GB 4806.6-2016 is required. The article is injection molded at a wall thickness of 0.8–1.5 mm on accumulator-assisted machines with injection velocity of 350–600 mm/s. Mold temperature is held at 10–20 °C, and the cavity plate has cooling channels spaced 30–40 mm apart to balance heat removal from the center and the rim. The fill-to-pack transition is set before cavity pressure reaches 60 MPa; a late transition freezes the rim before the bottom center has packed, producing dish warp that exceeds the ±1.0 mm flatness tolerance common for stackable dairy tubs. Terminal product types are dairy spread tubs, frozen dessert containers, and food-service portion cups.
Open-head pails for dangerous goods are qualified as UN 1H2 packagings; the material choice is inseparable from the drop test and stacking requirements in the UN Model Regulations Chapter 6.1, as applied by ADR, RID, and IMDG. M691 is processed at 100 parts by mass with color masterbatch at 2.0–4.0 phr and antioxidant masterbatch at 0.1–0.3 phr. Carbon black masterbatch at 2.0–3.0 phr is added for pails stored outdoors, while antistatic masterbatch at 0.2–0.5 phr is used only when the pail is specified for solvent or flammable-liquid filling. Surface resistivity must be verified by IEC 61340-2-3 because published data for M691-specific antistatic performance is limited; do not assume antistatic performance from masterbatch letdown ratio alone. Production occurs on 800–1,200 metric ton hydraulic machines with pail-specific screws of 20:1–25:1 L/D and mixing pins. Melt temperature is 200–235 °C; mold temperature is 20–30 °C. The top chime and bottom chime are packed with hold pressure of 55–75 MPa for 8–12 s to eliminate sink marks at the handle boss. Cycle times for 5–25 L pails range from 18–28 s; insert-molded handles add 3–5 s to the cycle and require gate placement away from the handle insert to prevent localized cooling and brittle hinge zones. Regrind from rejected pails may be blended at up to 20 wt% only if the reject stream has not contacted hazardous filling materials; changes to recycled content or additive masterbatch alter the design type and may require UN packaging requalification. Terminal product types are 5–25 L open-head pails, tamper-evident lid pails, and UN-certified Type H2 containers for solid and liquid dangerous goods.
For injection-molded toy components and household storage articles, shear history in the nozzle and hot runner is the primary control variable for color dispersion and heavy-metal migration risk. M691 is let down at 100 parts by mass with pigment masterbatch at 1.0–4.0 phr; the masterbatch must be selected and used at the lowest loading that achieves the target RAL or Pantone match to minimize extractable heavy metals under EN 71-3:2019+A1:2021 and ASTM F963-23. Processing aid is metered at 0.1–0.3 phr, and antioxidant masterbatch at 0.05–0.15 phr is used when melt residence time exceeds 10 min in multi-cavity hot-runner tools. In the United States, finished articles are also verified for lead and phthalate content under CPSIA; for electronic toy subassemblies, RoHS and REACH SVHC documentation applies.
Molding is performed on 300–800 metric ton machines with melt temperature 200–240 °C and mold temperature 15–30 °C. Hot-runner residence time at temperature should not exceed 15 min; beyond that threshold, yellowing shifts the colour space and increases plate-out on vent pins, which in turn raises scrap rates in multi-cavity household storage boxes. Terminal product types are toy blocks, doll furniture, storage baskets, hangers, and drawer units.
Flanged reels for wire and cable are molded with a ribbed hub geometry to resist crush load during winding and transport. M691 is formulated at 100 parts by mass with carbon black masterbatch at 1.5–3.0 phr and antioxidant masterbatch at 0.1–0.2 phr. The part is produced on 500–1,000 metric ton injection machines with melt temperature 210–240 °C and mold temperature 12–24 °C; flange flatness is controlled by holding packing pressure until the gate area solidifies, typically 10–15 s after fill. Compliance for this non-food industrial article is limited to REACH Annex XVII and RoHS where the reel enters electrical and electronic equipment supply chains. Terminal product types are cable spools, textile bobbins, and industrial reels.
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Korea Petrochemical Co., Ltd. supplies HDPE M691 as a high-flow high-density polyethylene injection molding resin. The grade is delivered as pelleted resin with a nominal density of 0.956 g/cm³ under ISO 1183-1:2019 and a melt mass-flow rate of 20 g/10 min at 190 °C and 2.16 kg under ISO 1133-1:2022. These values are typical published data rather than contractual specification limits; the production certificate of analysis and the supplier product data sheet are the controlling references. HDPE M691 is intended for injection molding applications in which fast filling, short cooling time, and thin-wall rigidity outweigh the melt-strength demands of extrusion processing. The high-flow character lowers pressure drop across restricted gates and permits high cavitation tooling, but it also reduces melt elasticity and alters the balance between impact resistance and stiffness after molding.
The single-point melt mass-flow rate under ISO 1133-1:2022 is an incomplete viscosity indicator. The flow-rate ratio between 21.6 kg and 2.16 kg loads is lower than for broad-distribution pipe grades, suggesting a narrower molecular weight distribution. The practical consequence is that viscosity falls more steeply with increasing shear rate, reducing spiral-flow pressure gradients in thin sections, while the solidification interval remains narrow enough to require uniform mold cooling. Converter experience indicates that melt temperature must be controlled within ±5 °C at the nozzle to avoid shot-weight drift in multi-cavity tools.
Differentiation from medium-flow HDPE is observed primarily in the melt mass-flow rate, flexural modulus, and impact response after molding. The high-flow character permits a lower injection pressure for the same flow-length-to-thickness ratio, but it narrows the hold-pressure window and increases sensitivity of the part to gate freeze timing. The following representative property set, derived from distributor-published data and comparative datasheets, is useful for material preselection and not as a purchase specification.
| Property | Test Method | Typical Value | Reference Condition |
|---|---|---|---|
| Melt mass-flow rate | ISO 1133-1:2022 | 20 g/10 min | 190 °C, 2.16 kg |
| Density | ISO 1183-1:2019 | 0.956 g/cm³ | Immersion method |
| Tensile yield stress | ISO 527-2:2012 | 27 MPa | 50 mm/min |
| Flexural modulus | ISO 178:2019 | 1,050 MPa | 2 mm/min |
| Notched Izod impact strength | ISO 180:2019 | 4.0 kJ/m² | 23 °C, notched specimen |
| Vicat softening temperature, A50 | ISO 306:2022 | 123 °C | 10 N, 50 °C/h |
| Shore D hardness | ISO 868:2003 | 64 | Instantaneous reading |
Processing on a horizontal reciprocating-screw injection molding machine with a 20:1 to 25:1 L/D general-purpose screw does not require predrying when pellet moisture content is below 0.05 wt%. Pellets stored at relative humidity above 60% should be dried at 80 °C for 2 h; surface moisture otherwise appears as splay and shot-weight instability. Melt temperature at the nozzle is typically held between 190 °C and 230 °C, with mold temperature between 10 °C and 40 °C depending on surface gloss and flatness. In production trials, a profiled injection velocity with rapid initial filling and deceleration before screw transfer reduces jetting marks and improves weld-line strength in thin-wall parts. Because HDPE M691 has low shear viscosity, excessive hold pressure or an overly long hold time can pack the gate area and create post-mold warpage; hold-pressure setting should therefore be established by gate freeze studies rather than by maximum cavity pressure.
Linear shrinkage in the flow direction differs from cross-flow shrinkage by a measurable amount. After 48 h at room temperature, parts may show post-mold dimensional movement. Molders using HDPE M691 in lids with snap-fit geometry should verify shrinkage with a cavity-specific study rather than a generic factor. Shrinkage for the grade is approximately 1.5% to 2.0% depending on wall thickness and hold pressure; this range is an engineering guide and not a tool-steel dimension factor.
In thin-wall container and cap applications, the limiting processing requirement is often the relationship between gate solidification time and part wall thickness. HDPE M691 is selected when the nominal wall is between 0.8 mm and 1.2 mm, because its low melt viscosity increases the flow-length-to-thickness ratio and allows the use of more cavities per shot without exceeding the clamp force limit. In multi-cavity hot-runner or cold-runner tools, the grade responds to shear heating by a measurable drop in viscosity; therefore runner balance and gate dimensions must be maintained more tightly than with a medium-flow HDPE. For a direct-gated thin-wall container, a land length below 1.0 mm prevents premature gate freeze, while a generous cold-slug well addresses the fast-moving flow front.
Drop impact at low temperature is evaluated because dairy containers and margarine tubs may be stored at 4 °C and handled immediately after removal. Puncture impact under ISO 6603-2 or notched Izod under ISO 180:2019 is specified for comparative qualification. The material shows typical HDPE ductile failure, but the high-flow design slightly reduces low-temperature toughness relative to a unimodal lower-flow HDPE; molders compensate with radiused corners and with wall thickness no lower than 0.8 mm at stress concentration points.
For closures, torque retention relies on dimensional stability after cooling. Warpage is controlled by uniform cavity temperature and by balancing flow length between the center gate and the outer thread. Containers molded from HDPE M691 are typically qualified for stacking load with a top-load test according to ISO 12048 or an equivalent mechanical test, with pass criteria based on deformation after 24 h at defined storage temperature.
Compliance documentation for HDPE M691 in food-contact applications relies on the neat polymer meeting FDA 21 CFR 177.1520 and EU Regulation (EU) No 10/2011 for plastic materials intended to contact food. The polymer must be evaluated as part of the final article because colorants, fillers, process aids, and post-consumer recyclate may alter migration behavior. Documentation for industrial articles is generally based on REACH Regulation (EC) No 1907/2006 and the RoHS Directive 2011/65/EU restricted-substance list. No polyolefin grade can be considered compliant without lot-level confirmation from the resin supplier and end-use testing by the converter.
The primary difference from film and blow molding HDPE is the low melt strength of HDPE M691. In blown film extrusion, a bubble formed from HDPE M691 exhibits a narrow operating window and unstable bubble geometry because the low molecular weight reduces melt tension and strain-hardening behavior; the grade is therefore not specified for film extrusion. In extrusion blow molding, the same low melt strength can produce excessive parison sag when the shot exceeds 100 g or when the die gap is wide; an injection blow molding process or higher-molecular-weight blow molding grade is required. Compared with general-purpose medium-flow injection HDPE, HDPE M691 offers lower injection pressure and shorter cooling time, but the final part must be designed for slightly lower environmental stress-crack resistance and lower long-term hydrostatic strength than pipe-grade HDPE.
| Processing Parameter | HDPE M691 Injection Molding | Extrusion-Grade HDPE |
|---|---|---|
| Dominant conversion process | High-speed injection molding | Film, pipe, profile, or blow molding |
| Typical melt mass-flow rate | 20 g/10 min | 0.2 g/10 min to 1.0 g/10 min for film and pipe |
| Melt strength | Low | High |
| Typical part wall thickness | 0.8 mm to 1.2 mm | 0.02 mm to 0.15 mm for film; 0.5 mm to 3 mm for blow molding |
| Primary processing risk | Premature gate freeze, warpage, short shots | Bubble instability, parison sag, melt fracture |
| Controlling melt test | ISO 1133-1:2022 | ISO 1133-1:2022 plus capillary rheometry and melt tension |
Operational boundaries for HDPE M691 arise primarily from melt residence time and contamination. Extended residence at melt temperatures above 240 °C can generate oxidative degradation products that reduce molecular weight and deposit on mold surfaces; the barrel should be purged with a general-purpose HDPE or polyolefin purge compound when interruptions exceed 15 min. The grade is not recommended for sustained load-bearing pressure pipe, automotive fuel tanks, or applications requiring continuous service above 60 °C. Mixing with other thermoplastics should be limited to compatible polyolefins; combination with polar polymers or amine-containing additives can produce phase separation or odor. For all conversions, drying, melt temperature, and regrind ratio should be documented in the process log, and regrind addition should not exceed 20 wt% without mechanical property verification.