On a 1,600 mm three-layer blown film line equipped with a 75 mm barrier-screw extruder of L/D ratio 30:1 and a 250 mm spiral mandrel die, heavy-duty shipping sack production with SABIC LLDPE 122WJ is run at a die gap of 2.0 mm and a blow-up ratio of 2.8:1. The butene LLDPE has a nominal density of 0.922 g/cm³ according to ISO 1183-1:2019 and a melt flow rate of 2.0 g/10 min at 190°C/2.16 kg according to ISO 1133-1:2022. The dry blend addition ratio is 80 wt% SABIC LLDPE 122WJ, 12 wt% high-pressure LDPE, and 8 wt% carbon black/processing aid masterbatch; this ratio is selected to maintain bubble stability and to raise initial tear resistance measured by ASTM D1004-21 when film thickness is reduced from 130 μm to 90 μm. Barrel temperatures are profiled from 180°C at the feed throat to 200°C, 210°C, and 210°C in subsequent heating zones, with the die zones set at 205°C; melt temperature at the adapter is held between 190°C and 215°C. Melt fracture at throughputs above 190 kg/h occurs when die lip land length is below 10 mm; process mitigation is a die gap increase to 2.4 mm and adapter melt temperature increase to 220°C, though this raises oxidation risk at extended residence time. The conversion process uses oscillating haul-off for gauge randomization, and the resulting terminal product types are gusseted heavy-duty sacks, valve sacks for 25 kg petrochemical granules, and construction debris bags. For export packaging, industry compliance is assessed against REACH 1907/2006 Annex XVII entries 50–52 for phthalates and RoHS 2011/65/EU Annex II maximum concentration values: lead 0.1 wt%, cadmium 0.01 wt%, mercury 0.1 wt%, and hexavalent chromium 0.1 wt%. Published data for SABIC LLDPE 122WJ dart impact performance on a specific line configuration is limited; converter trials under ASTM D1709-16a are therefore required before specifying a sack wall of ≤90 μm.
What Limits UV Stabilizer Dispersion in Three-Layer Greenhouse Cladding Made from 122WJ?
Greenhouse cladding film with a total thickness of 150 μm is coextruded on a three-layer die with a layer distribution of 1:3:1. The core layer formulation consists of 84 wt% SABIC LLDPE 122WJ, 8 wt% metallocene LLDPE, and 8 wt% combined HALS/UV absorber masterbatch; the two skins are run with 86 wt% LDPE and 14 wt% light stabilizer masterbatch, yielding an active HALS concentration in each skin of approximately 12,000 ppm. Addition ratios below 6 wt% UV masterbatch in the core are not recommended because uneven exudation of processing aid has produced local haze bands after 800 h of xenon-arc exposure under ISO 4892-2:2013. The production process uses a die gap of 1.8 mm, blow-up ratio 2.2:1, melt temperature 195–210°C, and post-treatment corona of 38–42 mN/m to improve anti-drip coating adhesion. Terminal product types are greenhouse covers, low tunnel films, and silage bag outer layers. Industry compliance is evaluated according to EN 13206:2017 for agricultural and horticultural thermoplastic films; tensile properties are verified under ISO 527-3:2018 and impact resistance under ISO 7765-2:1994. REACH 1907/2006 SVHC declarations apply to imported film additives.
A 40 μm monolayer frozen vegetable bag film run on a 1,600 mm oscillating haul-off blown film tower at 180 kg/h uses an addition ratio of 92 wt% SABIC LLDPE 122WJ and 8 wt% slip/antiblock masterbatch. Seal initiation temperature measured at 0.5 N/15 mm sealing force on a laboratory heat-seal tester is kept below 105°C, which reduces condensation-related seal voids while maintaining overall migration below 10 mg/dm² under EU Regulation 10/2011. The production process is operated with a single-screw extruder of L/D ratio 28:1, die gap 1.6 mm, blow-up ratio 2.5:1, and frost line height 250–350 mm; pre-drying is unnecessary at ambient relative humidity ≤60%. Terminal product types include frozen vegetable bags, seafood pouches, and ice-cream overwrap. Food-contact status is supported by FDA 21 CFR 177.1520(c)3.1a and EU Regulation 10/2011 Annex I; specific migration limits for slip and antiblock additives are declared by the masterbatch supplier. Published data for hot tack under line-specific contamination is limited, so converter run-off at seal jaw temperatures between 115°C and 135°C is required to set the sealing window.
Where High Cling Forces Demand Low-Temperature Sealing Integrity
Stretch hood film production with SABIC LLDPE 122WJ is run on a high-stalk blown film line with blow-up ratio 3.8:1, die gap 2.2 mm, and extruder output 220 kg/h at melt temperature 195–220°C. The formulation addition ratio is 80 wt% 122WJ, 15 wt% VLDPE/plastomer with density 0.902 g/cm³, and 5 wt% cling additive masterbatch. The grade contributes puncture resistance and stretch uniformity measured by ASTM D5748-95 and tensile hysteresis under ISO 527-3:2018; the VLDPE lowers corner tear initiation on pallet loads, while the cling masterbatch controls blocking force. The process requires frost line height between 1.5 m and 2.0 m and on-line prestretch limited to 60–80% to avoid stress whitening. Terminal product types are stretch hoods for pallets of ceramic tiles, cement bags, and large-format appliances. Compliance is assessed under REACH 1907/2006 SVHC obligations and RoHS 2011/65/EU Annex II; tensile and elongation values are reported according to ISO 527-3:2018. Published data for specific cling force at 168 h aging is limited; storage trials at 23°C/50% RH are recommended.
Compliance checklist matrix for SABIC LLDPE 122WJ downstream applications| Application scenario | Industry standard or regulation | Test method | Limit or target |
|---|
| Heavy-duty shipping sacks | REACH 1907/2006 Annex XVII 50–52; RoHS 2011/65/EU Annex II | ASTM D1004-21; ASTM D1709-16a | Cd 0.01 wt%; Pb, Hg, Cr VI each 0.1 wt% |
| Greenhouse cladding | EN 13206:2017; REACH 1907/2006 | ISO 527-3:2018; ISO 4892-2:2013; ISO 7765-2:1994 | Skin HALS active 12,000 ppm |
| Frozen food packaging | FDA 21 CFR 177.1520(c)3.1a; EU Regulation 10/2011 | ISO 1133-1:2022; overall migration test per EU 10/2011 | OML 10 mg/dm² |
| Stretch hood film | REACH 1907/2006; RoHS 2011/65/EU Annex II | ASTM D5748-95; ISO 527-3:2018 | Prestretch 60–80% |
| Lamination sealant web | FDA 21 CFR 177.1520(c)3.1a; EU Regulation 10/2011 | ASTM F1921-18; ASTM F2029-16; ISO 527-3:2018 | OML 10 mg/dm² |
| Construction vapour control | EN 13984:2013 | ASTM E96/E96M-22; ISO 527-3:2018; ASTM D4833-21 | WVTR target 0.6 g/m²·24 h at 23°C/85% RH |
Adhesive Lamination Substrate Built on 122WJ: Heat Seal Initiation and Hot Tack
When hot tack and seal initiation are the controlling responses in dry-food laminates, a 25 μm blown film sealant web is produced from either 100 wt% SABIC LLDPE 122WJ or a 70/30 wt% blend with metallocene LLDPE to lower seal initiation. The film is extruded at die gap 1.6 mm, blow-up ratio 2.0:1, melt temperature 190–205°C, and corona treated to 40 mN/m before adhesive lamination to 12 μm PET or 20 μm BOPP. Terminal product types include laminated pouches for dry foods, detergent powder, and industrial desiccants. Food-contact laminates require FDA 21 CFR 177.1520(c)3.1a and EU Regulation 10/2011 compliance; overall migration of the finished laminate is maintained below 10 mg/dm² under food simulants D1 and D2. Sealing performance is measured by ASTM F1921-18 for hot tack and ASTM F2029-16 for seal strength; the sealant layer is sealed at 120–135°C jaw temperature during packaging. Addition of recycled LDPE above 20 wt% is not recommended because seal initiation temperature increases and hot tack window narrows by 3–5°C in converter trials.
Under slab-on-grade concrete construction, plastic vapour control layers of 100 μm nominal thickness are produced on a 90 mm extruder with L/D ratio 30:1, using an addition ratio of 95 wt% SABIC LLDPE 122WJ and 5 wt% carbon black masterbatch. The extrusion process sets barrel temperatures from 185°C to 210°C, die gap 2.0 mm, blow-up ratio 2.5:1, and slit width 2.5 m for under-slab placement. The terminal product type is a plastic vapour control layer under concrete slabs and temporary floor protection during construction. Water vapour transmission rate is measured by ASTM E96/E96M-22; published data for this specific configured SABIC LLDPE 122WJ film is limited, so converter trials are required to confirm whether the target of 0.6 g/m²·24 h at 23°C/85% RH is achievable without a barrier coating. Compliance is evaluated against EN 13984:2013 for plastic and rubber vapour control layers; mechanical integrity under building site loading is verified by ISO 527-3:2018 and puncture resistance by ASTM D4833-21. Film gauge variation should be kept within ±5% to avoid local water vapour transmission spikes at thin spots.
SABIC LLDPE 122WJ is a butene-comonomer linear low density polyethylene produced by gas-phase polymerization and supplied as cylindrical pellets. The base resin is specified at a nominal melt flow rate of
2.0 g/10 min when measured at
190°C/2.16 kg according to
ISO 1133-1:2022, and a nominal density of
0.922 g/cm³ according to
ISO 1183-1:2019. The product is intended for blown film converting lines where intermediate melt flow, bubble stability, and film toughness must be balanced. Primary application classes include heavy-duty sacks, carrier bags, industrial liners, and agricultural film. The comonomer chemistry and molecular weight distribution differ from high-pressure low density polyethylene and from metallocene-catalysed ethylene-alpha-olefin copolymers; the consequence is a specific balance of elongational viscosity, seal initiation temperature, and optical haze. The additive package is proprietary and must be confirmed against the certificate of analysis, because slip and antiblock loadings directly influence coefficient of friction, blocking behaviour, and print adhesion.
The molecular architecture of 122WJ introduces ethyl branches along the polyethylene backbone. The short-chain branching distribution of a Ziegler-Natta gas-phase LLDPE is broader than that of a metallocene-catalysed grade; therefore, the resin contains chains with low comonomer incorporation and chains with higher incorporation. This distribution affects thermal behaviour: the melting peak is broad, and the seal initiation temperature is higher than for a homogeneously branched C6 copolymer of the same density. The weight-average molecular weight and molecular weight distribution are not routinely published in product literature; however, the measured melt flow rate of
2.0 g/10 min per
ISO 1133-1:2022 indicates an intermediate viscosity that supports both adequate extruder throughput and bubble stability. The absence of long-chain branching relative to high-pressure LDPE reduces strain-hardening in the melt, lowering bubble stability and requiring frost-line control at high blow-up ratios.
Which Extrusion and Rheology Parameters Govern 122WJ Processing?
In blown film production, 122WJ is run at an extruder melt temperature between
190°C and
215°C. A die gap of
1.5 mm to
2.5 mm is used to maintain wall shear stress below the melt fracture threshold; when melt fracture appears as sharkskin at high output, polymer processing aid is added at
400–800 ppm. Blow-up ratio is controlled at
2.0:1 to
3.0:1, with frost-line height adjusted to keep the film bubble below the crystallization onset temperature until biaxial orientation is complete. On a production-scale single-screw extruder with screw L/D of
25:1 to
30:1, barrel zone settings start at
150–170°C near the feed throat and rise to
200–210°C in the metering zone. The die lip temperature is maintained within
±2°C of setpoint to prevent gauge variation.
The maximum attainable output on a given line is not fixed solely by screw torque. For 122WJ, bubble instability and melt fracture are the limiting defects at high screw speed. On a
45 mm extruder with smooth-bore feed and
24:1 L/D, a stable output of
35–45 kg/h may be obtained at a melt temperature of
205°C; higher output generally requires a grooved-feed extruder or a barrier screw with dedicated mixing sections. Internal bubble cooling extends the output window by removing heat from the film and reducing frost-line height. If the line has no internal bubble cooling, the maximum blow-up ratio should be kept below
3.0:1 to avoid bubble breathing and gauge variation.
No pre-drying is required under normal indoor storage; if pellet condensation occurs after cold outdoor storage, a desiccant hopper at
60°C for
2 h is sufficient. Melt temperatures above
220°C with residence times exceeding
5 min should be avoided because oxidative chain scission can generate gel defects and reduce dart impact. Quality control for incoming resin should include melt flow rate per
ISO 1133-1:2022, density per
ISO 1183-1:2019, and visual pellet contamination inspection. Moisture content should be below
0.05% by Karl Fischer titration if the resin has been exposed to humid air; standard polyethylene is not hygroscopic, but surface condensation can introduce water into the feed throat and create surface defects. Bulk handling equipment should avoid long transfer distances that generate fines; fines above
0.5% by weight can accumulate at the hopper throat and cause feed instabilities.
Mechanical, Thermal, and Optical Property Envelope
The typical values in Table 1 are measured on
50 µm blown film produced at a blow-up ratio of
2.5:1 and a die gap of
1.6 mm. They are manufacturer-published typical data and do not replace lot-specific certificate of analysis values.
Table 1: Typical resin and film property data
| Property | Test method | Unit | Typical value |
| Melt flow rate | ISO 1133-1:2022 | g/10 min | 2.0 |
| Density | ISO 1183-1:2019 | g/cm³ | 0.922 |
| Tensile stress at yield MD/TD | ISO 527-3:2018 | MPa | 11 / 11 |
| Tensile strain at break MD/TD | ISO 527-3:2018 | % | 650 / 750 |
| Dart impact F50 | ISO 7765-1:2004 | g | 110 |
| Elmendorf tear MD/TD | ISO 6383-2:1983 | g | 60 / 110 |
| Haze | ASTM D1003-13 | % | 12 |
| Gloss at 45° | ISO 2813:2014 | GU | 50 |
| Vicat softening point A50 | ISO 306:2022 | °C | 100 |
| Melting peak temperature | ISO 11357-3:2018 | °C | 108 |
| Seal initiation temperature | ASTM F1921-12 Method B | °C | 105 |
The film property data are dependent on processing conditions. At a given density and melt flow rate, higher blow-up ratio increases transverse orientation and raises Elmendorf tear in the transverse direction while reducing machine-direction tear. Frost-line height influences crystallinity; a lower frost-line height quenches the film rapidly, reducing haze but also reducing dart impact. Therefore, the converter should generate an internal property map rather than rely solely on datasheet values. Lot-to-lot variability in melt flow rate is typically controlled within
±0.2 g/10 min, and density within
±0.001 g/cm³; these tolerances are not specification limits unless stated on the certificate of analysis.
Compared with high-pressure LDPE at equivalent melt index, 122WJ has a linear backbone that raises tensile strain at break and puncture resistance but increases shear heating during extrusion. Against a lower-density C4-LLDPE of
0.918 g/cm³, the
0.922 g/cm³ density of 122WJ increases secant modulus and reduces oxygen permeability per unit thickness, while the higher density narrows the dart impact and low-temperature toughness window. Against metallocene-catalysed C6 or C8 grades, the broad short-chain branching distribution of a Ziegler-Natta butene LLDPE lowers hot-tack strength and optical homogeneity. Published data for direct comparison between 122WJ and metallocene octene grades is limited. In practice, 122WJ is selected where a stiffness-driven film construction is required and where the converting line does not require the ultra-high dart impact of octene mLLDPE. When replacing a standard LDPE in a heavy-duty sack, thickness may be revalidated by dart impact testing per
ISO 7765-1:2004 rather than assumed from density ratio alone.
Against high-density polyethylene film grades with density
0.941–0.965 g/cm³, 122WJ has lower modulus and higher tear-propagation resistance, making it less suitable for applications requiring high tensile stiffness but more suitable for puncture-resistant liners. Against ethylene-vinyl acetate copolymer films, 122WJ lacks the polar acetate group, which changes dielectric properties and seal initiation behaviour; it also has lower water vapour transmission rate at equivalent thickness.
When 122WJ Replaces High-Pressure LDPE in Heavy-Duty Sack Film
On a
55 mm single-screw blown film line with a
120 mm spiral mandrel die and
1.6 mm die gap, substitution of LDPE with 122WJ typically increases die pressure because of the linear molecular architecture. Extruder barrel zones are set with a profile of
150°C at the feed zone,
180°C in the compression zone, and
200°C in the metering zone, with die zones maintained at
200–210°C. Screw speed is increased until melt temperature reaches
210°C; the maximum stable output is often limited by bubble instability rather than extruder torque. Die pressure should be monitored at the screen pack and breaker plate. If screen-pack differential pressure exceeds
80 bar, the screen pack is changed to prevent gel development.
For a
50 µm film, the heat-seal jaw temperature is initially set at
120–125°C and then adjusted using a seal curve generated according to
ASTM F1921-12 Method B. Because the seal initiation temperature of the grade is approximately
105°C, dwell time can be reduced by
0.2–0.4 s relative to LDPE at equivalent jaw temperature. Film produced on this equipment at
50 µm is re-validated for dart impact per
ISO 7765-1:2004 and Elmendorf tear per
ISO 6383-2:1983, because gauge reduction from LDPE requires confirmation on the actual converting line.
On form-fill-seal packaging equipment, seal strength curves for 122WJ should be generated according to
ASTM F88/F88M-21 at the target film thickness and sealing pressure. Published comparative data for this specific grade on high-speed vertical form-fill-seal lines is limited. Hot-tack testing may be performed according to
ASTM F1921-12 Method B; the broad melting distribution of Ziegler-Natta butene LLDPE generally requires longer cooling time before load transfer than metallocene grades.
Food-contact suitability of 122WJ is governed by base resin compliance with
US FDA 21 CFR 177.1520 and
EU 10/2011; end-use migration testing under the finished film thickness and food simulant conditions remains the converter’s responsibility. The grade is manufactured under
ISO 9001:2015; REACH registration under
EC 1907/2006 and RoHS
2011/65/EU are addressed in the product safety datasheet. Specific heavy metal migration should be verified by
IEC 62321 series methods where required by supply chain agreements.
Table 2: Regulatory compliance checklist matrix
| Standard / Regulation | Scope | Verification status |
| US FDA 21 CFR 177.1520 | Olefin polymers in food-contact articles | Base resin compliance; finished film migration testing required |
| EU 10/2011 | Plastic materials and articles intended for food contact | Overall migration limit 10 mg/dm²; specific migration limits per Annex I |
| EC 1907/2006 | REACH registration | Substance registered; SVHC content below 0.1% w/w expected |
| 2011/65/EU | RoHS restricted substances | Tested by screening per IEC 62321 series |
| ISO 9001:2015 | Quality management system | Manufacturing site certified |
During high-output conversion, winding tension should be kept below the yield stress of the film to prevent permanent strain; for
50 µm film, winding hardness is set at
75–85 Shore O to avoid roll blocking. Warehousing at temperatures above
35°C may accelerate migration of slip additives, reducing coefficient of friction after aging; film stored for more than
30 days should be checked for COF according to
ISO 8295:1995 before use on automatic bag machinery. The resin is incompatible with pro-oxidant masterbatches intended for landfill-degradable films because accelerated oxidative breakdown compromises the mechanical property envelope. Do not combine 122WJ with amine-based antifog concentrates unless pre-tested; amine additives can interact with component residues and shift colour or odour in high-temperature extrusion. After shutdown, the barrel should be purged with a low-melt-index LDPE or purging compound to displace 122WJ and prevent carbonized resin from contaminating subsequent film lots. The use of reclaimed film scrap from 122WJ is possible up to
20% by weight without significant loss of dart impact, provided the scrap is dry and free of print ink; higher scrap fractions should be validated for gel count and film optical properties.