On high-stalk blown film lines producing thin-gauge carrier bag stock, QAPCO LOTRÈNE HHM5502BN, a bimodal high-molecular-weight HDPE with density
0.955 g/cm³ (ISO 1183-1:2019) and MFR
0.20 g/10 min at
190 °C/
2.16 kg (ISO 1133-1:2022), is processed in the
8–20 µm gauge range. The bimodal molecular weight distribution contributes a high-molecular-weight fraction for melt strength and a lower-molecular-weight fraction that limits screw pressure. On
65 mm grooved-feed extruders with
25:1 L/D barrier screws, melt temperatures are maintained between
200 °C and
230 °C. Die temperatures are set
10–15 °C above melt temperature to prevent die lip freeze. Specific output on established high-stalk lines typically ranges from
0.8 kg/h/mm to
1.2 kg/h/mm of die circumference. Published data for this specific QAPCO grade configuration is limited; the cited output range reflects industrial experience with bimodal HMW-HDPE of equivalent density and MFR. Pre-drying of virgin HHM5502BN is not required unless warehouse storage exceeds
85% RH with high regrind content.Bubble configuration for carrier bag film runs a blow-up ratio between
3.5:1 and
5:1, with stalk height held at
6–8 die diameters. A lower stalk reduces MD orientation but compromises bubble stability in ambient air currents. The frost line is positioned at
8–12 die diameters above the die face. Bubble breaks become frequent when stalk length exceeds
10 die diameters without internal bubble cooling. IBC air-pressure differential is maintained below
1.5 mbar to avoid inducing oscillating neck diameters. Film gauge uniformity of
±5% is achievable with auto-gauge control systems; manual air-ring operation typically yields
±10% variation. Process bottlenecks arise when die gap is reduced below
1.0 mm because the high melt viscosity of HHM5502BN triggers sharkskin melt fracture at shear stresses above the critical threshold.Mechanical property development in
12 µm film follows process-dependent orientation. Dart drop impact per ASTM D1709-16e1 is typically
150–250 g, with the lower values recorded at the highest BUR. Elmendorf tear per ASTM D1922-15 shows MD values of
10–20 g/µm versus TD values of
30–60 g/µm, reflecting the anisotropic orientation of the high-stalk bubble. Tensile yield stress per ASTM D882-18 falls at
25–35 MPa in MD and
20–30 MPa in TD. Elongation at break exceeds
600% in both directions at BUR
3.5:1. The comparative matrix below summarizes film property shifts across three blow-up ratio settings on
12 µm carrier bag stock.
| Property | Test Method | BUR 3.5:1 | BUR 4.5:1 | BUR 5:1 |
|---|
| Dart Impact (F50), 12 µm film | ASTM D1709-16e1 | 220 g | 190 g | 160 g |
| Elmendorf Tear MD, 12 µm | ASTM D1922-15 | 14 g/µm | 11 g/µm | 9 g/µm |
| Elmendorf Tear TD, 12 µm | ASTM D1922-15 | 35 g/µm | 42 g/µm | 48 g/µm |
| Tensile Yield MD | ASTM D882-18 | 32 MPa | 29 MPa | 26 MPa |
| Tensile Yield TD | ASTM D882-18 | 28 MPa | 26 MPa | 24 MPa |
| Elongation at Break MD | ASTM D882-18 | 680% | 640% | 590% |
The values in the table reflect process-dependent trends for bimodal HMW-HDPE of
0.955 g/cm³ density and
0.20 g/10 min MFR; they are not supplier-guaranteed specifications. The official mechanical property values for QAPCO LOTRÈNE HHM5502BN are stated in the supplier technical data sheet. Convertibility of carrier bag film on rotary T-shirt bag machines runs at
120–200 cycles/min. Seal initiation temperature for HHM5502BN is
135–145 °C measured on heat-seal gradient equipment. Optimum jaw temperature is
155–165 °C with dwell time
0.4–0.8 s and jaw pressure
0.3–0.5 MPa. Seal strength per ASTM F88-21 ranges from
4 N/15 mm to
8 N/15 mm. Corona treatment to
38–42 dyn/cm is required for print adhesion, but excessive treatment above
44 dyn/cm can embrittle the film surface and reduce seal strength at the side gussets.Melt temperature above
240 °C initiates oxidative gel formation and yellowing in the extrudate. Purge protocols should avoid PVC-based compounds because HCl evolution accelerates polyethylene degradation. Regrind levels up to
20% have been run on carrier bag film without significant dart impact loss; beyond
30%, gel counts increase and film appearance degrades. Screens of
60/80/100 mesh are installed before the die to filter unmelted particles from high-viscosity regrind fractions. The primary limitation in this downstream segment is the narrow process window between melt fracture and bubble instability, which requires simultaneous control of die gap, stalk height, and melt temperature to maintain continuous film production.
What Limits Perforation Integrity in 12 µm Produce Bag Film?
Produce bag converters specify HHM5502BN for thin-film stiffness and controlled tear propagation in the
10–15 µm gauge range. The tensile modulus of this grade class is approximately
1000–1300 MPa at
23 °C per ISO 527-3, which maintains hole geometry after mechanical perforation. Needle-punch rolls produce openings of
0.5–1.5 mm diameter at densities of
6–12 holes/100 cm² for high-respiration leafy produce. Laser micro-perforation generates
0.1–0.3 mm openings at
50–200 holes/100 cm² for modified-atmosphere packaging of fresh-cut vegetables. The oxygen transmission rate of a non-perforated
15 µm HDPE film is approximately
3000–5000 cm³/m²/day·atm at
23 °C and
0% RH per ASTM D3985. Perforation increases this by orders of magnitude, but the exact increase depends on hole diameter and edge quality. Published data for QAPCO LOTRÈNE HHM5502BN under laser perforation is limited. Perforation edge tearing is the dominant failure mode in downstream packing operations. Films with a high TD/MD tear ratio resist splitting along the machine direction but can show ragged hole edges when the Elmendorf TD tear exceeds
60 g/µm. A blend with
10–20 wt% C6-LLDPE improves TD elongation and reduces sharp edge tearing. Bubble stability narrows sharply above
25 wt% LLDPE addition because the lower melt strength of the blend causes stalk wavering on high-stalk lines. Frost line height must then be reduced by
1–2 die diameters to maintain neck geometry.Food-contact compliance for HHM5502BN in produce bags falls under FDA 21 CFR §177.1520 for olefin polymers, with extractables limits specified in the section. EU Regulation 10/2011 requires overall migration ≤
10 mg/dm² tested per EN 1186. Typical HDPE films of this grade class meet these limits at contact temperatures up to
40 °C. For direct contact with cut fruit or acidic produce, migration testing on the actual finished film is mandatory because perforation increases the surface area exposed to food simulants. Slip and antiblock loadings in produce bag film are limited to
0.1–0.3 wt%. Higher additive levels create breathability-inhibiting surface films over micro-perforations and can reduce oxygen exchange across the hole boundaries. Corona treatment to
38–42 dyn/cm is used for brand printing. Static decay times below
2 s at
15% RH are necessary to prevent film misregistration on perforation units.
Woven Sack Lamination Lines Running HHM5502BN at 180 kg/h
Extrusion coating of woven polypropylene fabric with HHM5502BN is run at melt temperatures of
260–290 °C at the die exit. The high temperature is necessary to thermally oxidize the melt surface and generate polar carbonyl groups for adhesion to the PP substrate. Air gap is maintained at
150–250 mm between the die lip and the nip point. Coating thickness ranges from
15–25 µm on standard
50–70 g/m² woven PP base fabric. Line speeds of
80–150 m/min are typical when the extruder output is balanced with the chill roll capacity. Peel adhesion per ASTM D1876-based internal methods falls at
2–5 N/15 mm when the melt temperature is above
260 °C. Adhesion fails below
260 °C because insufficient thermal oxidation creates a weak boundary layer. Above
290 °C, gel particles appear in the coating and produce pinholes. The moisture barrier contribution of a
20 µm HHM5502BN coating layer is
3–5 g/m²/day at
38 °C and
90% RH per ASTM F1249. This barrier level makes the grade suitable for lamination of cement, fertilizer, and pet food sacks where moisture ingress shortens product shelf life.Equipment configuration on these lamination lines includes extruders of
90–120 mm screw diameter with
30:1 L/D, maintained at a chill roll temperature of
15–25 °C. Nip pressure is set at
40–80 N/cm of roll width. Screen packs of
60/80/100 mesh are installed to filter unmelted resin particles from the high-viscosity melt. No pre-drying of HHM5502BN is required for extrusion lamination. Screw backpressure increases as the melt temperature approaches
230 °C; below this point, output drops and the motor amperage rises on fixed-speed machines. Coating weight consistency of
±1 g/m² is achievable on modern gauging systems, but manual die-bolt adjustment typically yields
±3 g/m² variation. The main processing conflict in lamination is the trade-off between adhesion and gel formation, which forces operators to hold the melt temperature within a
30 °C window and to monitor web breaks at the chill roll.
Heavy-Duty Refuse Sack Extrusion and Dart Impact Thresholds
Heavy-duty refuse sacks and industrial liners are extruded from HHM5502BN at film thicknesses of
50–100 µm. The high molecular weight fraction provides load-bearing capacity under static stress. In-house static load tests on
75 µm sacks using a creep frame at
20 °C show failure times exceeding
48 h under
10 kg load when the film is processed at BUR
3:1–4:1. Dart impact per ASTM D1709-16e1 for
75 µm film typically ranges from
400–700 g. At
100 µm, F50 values exceed
800 g on laboratory samples. The addition of
20% post-industrial regrind reduces dart impact by
10–20% because gel particles from prior heat history act as stress concentrators. Batch-to-batch variance in regrind quality is the largest source of dart impact fluctuation on production lines.Film is converted on single-screw lines with die diameters from
100–250 mm and IBC installed as standard. Melt temperature is held at
220–240 °C. Carbon black masterbatch is added at
2–3 wt% for UV stabilization of outdoor-stored sacks. Dispersion quality is critical: poorly dispersed carbon black creates micro-voids that initiate tear under stress. Slip and antiblock masterbatch loading at
0.1–0.3 wt% controls coefficient of friction between
0.10 and
0.20 per ASTM D1894. Film blocking at the winder is a known bottleneck on
1200 mm wide rollstock when the winding tension exceeds
50 N/m. The abrasive nature of carbon black accelerates screw and barrel wear on single-screw extruders. Field observation on standard nitrided screws shows diameter loss exceeding
0.5 mm after
3000–5000 h of carbon black-filled HDPE processing. Screw throughput then drops by
8–12% compared to the installed baseline. The processing envelope for refuse sack film is wider than for thin carrier bag film, but the mechanical integrity of the finished sack is more sensitive to regrind contamination and additive dispersion.In coextruded frozen food packaging structures, HHM5502BN functions as a stiffness and moisture-barrier layer in 3-layer and 5-layer blown film lines. A typical structure places the HDPE core between an LLDPE or EVA seal layer and an outer LLDPE or HDPE blend layer, with the HDPE layer constituting
30–50% of total gauge. The HDPE layer is processed at
210–230 °C through a spiral mandrel die. Layer distribution accuracy of
±2% is required to maintain barrier uniformity. Interfacial instability occurs when the viscosity ratio between adjacent layers exceeds
3:1 at the die lip. Because HHM5502BN has MFR
0.20 g/10 min compared with typical LLDPE seal resins at
1.0 g/10 min, the die gap is maintained at
1.2–1.5 mm to reduce interfacial shear stress. Published data for this specific coextruded configuration is limited; the viscosity-ratio boundary is derived from industrial experience with bimodal HMW-HDPE and C6-LLDPE combinations.Freezer-grade film must withstand distribution at
-25 °C to
-18 °C. Virgin HHM5502BN has a brittleness temperature below
-70 °C per ASTM D746, but film impact at frozen temperatures is significantly reduced compared with ambient. Dart impact at
-20 °C is
30–50% lower than at
23 °C for equivalent gauge. Blending
10–20 wt% C6-LLDPE into the outer layers improves low-temperature dart impact by
20–40% without altering the moisture barrier contribution of the HDPE core. Oxygen barrier in multilayer structures with EVOH or polyamide is governed by those materials; the HDPE layer contributes moisture resistance that protects hygroscopic EVOH from humidity-driven barrier loss. Compliance for frozen food packaging under FDA 21 CFR §177.1520 and EU Regulation 10/2011 requires overall migration ≤
10 mg/dm². For frozen aqueous products, EU 10/2011 specifies
10% ethanol as the food simulant. Migration testing on the full multilayer film is mandatory because adhesive and tie-layer constituents contribute to the total extractable mass. Seal integrity through the LLDPE layer is assessed per ASTM F88-21 at
-20 °C; seal strength below
3 N/15 mm at frozen conditions is considered a downstream failure risk in distribution testing.
When Rollstock Feeds High-Speed Bag Machines at 250 Cycles/min
Converter lines running HHM5502BN rollstock on high-speed bag machines at
200–300 cycles/min are limited primarily by coefficient of friction and static charge. Untreated HDPE film has a COF of
0.15–0.30 per ASTM D1894, which causes film-to-film adhesion and misfeeding on intermittent seal bars. Erucamide slip agent added at
300–600 ppm reduces COF to
0.05–0.10 after full migration. The migration time is
24–48 h at
20–25 °C; at
35 °C, migration completes in
12–24 h. Slip concentrations above
800 ppm bloom to the film surface and create visible haze on the finished bag. Corona treatment to
38–42 dyn/cm increases surface energy for printing but also raises static charge. Antistatic additives or ionizing bars on the unwinding station are standard on lines running above
1.0 m/s web speed. Without static dissipation, film walking generates misaligned seals and increases waste at the bag stacker.Seal initiation temperature for HHM5502BN is
135–145 °C. At
250 cycles/min, dwell time is limited to
0.3–0.5 s. Seal bar temperature of
160–170 °C compensates for the short dwell time. Temperatures above
170 °C cause seal-edge thinning and film distortion. Jaw pressure of
0.3–0.5 MPa with heated knife sealing produces seal strength of
4–8 N/15 mm per ASTM F88-21. Bag machine wear on seal jaws is accelerated when regrind content in the film exceeds
20% because micro-gels transfer to the jaw surface during sealing. Gauge variation in rollstock above
±10% creates unwinding tension spikes that trigger bag-length variation beyond the specified
±2 mm. The converting step imposes tighter gauge constraints on the film supplier than the blown film extrusion step alone.