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KOPELEN PP Terpolymer SB-550A

    • Product Name: KOPELEN PP Terpolymer SB-550A
    • 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 402498
    Melt Flow Rate 230 C 2 16 Kg 8.0 g/10 min
    Density 23 C 0.90 g/cm³
    Tensile Strength At Yield 27.0 MPa
    Elongation At Break 500 %
    Flexural Modulus 900 MPa
    Izod Impact Strength Notched 23 C 40 J/m
    Rockwell Hardness R Scale 90
    Vicat Softening Temperature 130 °C
    Heat Deflection Temperature 0 45 Mpa 90 °C
    Melting Temperature 155 °C

    As an accredited KOPELEN PP Terpolymer SB-550A factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing KOPELEN PP Terpolymer SB-550A is supplied in 25 kg multi-layer paper bags, moisture-protected and palletized for safe transport.
    Container Loading (20′ FCL) 20′ FCL loaded with KOPELEN PP Terpolymer SB-550A in 25kg bags, palletized, shrink-wrapped, and secured for safe transit.
    Shipping KOPELEN PP Terpolymer SB-550A is shipped as non-hazardous plastic pellets in sealed bags or bulk containers. Protect from moisture, direct sunlight, and high temperatures. Store in a dry, ventilated area. No special UN classification required. Handle with standard industrial equipment to avoid bag damage.
    Storage Store KOPELEN PP Terpolymer SB-550A in a cool, dry, well-ventilated area away from direct sunlight, heat, and open flames. Keep containers tightly sealed to prevent moisture contamination and dust accumulation. Avoid contact with strong oxidizers. Maintain good housekeeping to minimize static and dust hazards. Use proper handling equipment and ensure adequate ventilation.
    Shelf Life Shelf life is 2 years from manufacture if stored in original, unopened packaging in a cool, dry place.
    Application of KOPELEN PP Terpolymer SB-550A

    KOPELEN PP Terpolymer SB-550A, specified at 5.0 g/10 min melt flow rate under 230 °C/2.16 kg per ISO 1133-1:2022 and 0.90 g/cm³ density, is processed in three-layer coextruded cast polypropylene lines as the sealant web for retort and hot-fill flexible packaging. The ethylene–butene random distribution lowers the film-to-film seal initiation temperature to 105–115 °C, while maintaining a seal strength of 15–25 N/15 mm after 130–145 °C jaw sealing when measured under ASTM F88/F88M-21. In food-contact applications, the material is qualified under FDA 21 CFR 177.1520 for olefin polymers and EU No 10/2011 for plastic food-contact materials; overall migration is controlled below 10 mg/dm² using EN 1186-1:2002, and specific migration of PP comonomers is verified with fatty stimulants 95% ethanol and iso-octane per EN 1186-2 and EN 1186-14.

    In the sealant layer, the formulation is set at 70–100 wt% SB-550A, with the balance as a higher-crystallinity random copolymer PP to widen the hot tack plateau between 120 °C and 150 °C on vertical form-fill-seal lines. Silica-based anti-blocking masterbatch, typically 5–10 wt% silica in a PP carrier, is added at 2–5 wt% of the sealant layer; erucamide or oleyamide slip masterbatch is added at 1–3 wt%, and total erucamide migration into food simulants is checked against the EU No 10/2011 specific migration limit. On lines with die widths above 2.8 m, edge encapsulation with 5–10 wt% homopolymer PP is used to reduce melt fracture at the deckle edges. Batch-to-batch seal initiation variability is reported below 2 K when extruder barrel temperatures are stable, but converters record a 4–6 K upward shift when corona-treated edge trim is reground into the core above 20 wt% of core throughput, which forces a compensating decrease in sealing speed.

    Cast film production uses extruder L/D ratios of 28:1 to 32:1, barrier screws, and melt temperatures of 220–245 °C for the sealant layer. The flat die gap is 0.6–1.0 mm, the chill roll is held at 18–30 °C, and the vacuum box plus electrostatic pining is engaged above 100 m/min to suppress draw resonance. Corona treatment to 38–42 mN/m per ISO 8296:2003 is applied before lamination; treatment above 46 mN/m increases surface oxygen and can delay slip additive bloom past 72 h, causing high coefficient of friction during slitting. Terminal products include retortable stand-up pouches with outer polyester or nylon and aluminium foil barrier, hot-fill spout pouches, block-bottom coffee packs, and three-side-seal snack packs.

    When SB-550A replaces random copolymer PP in oriented film sealant skins

    On tenter-frame biaxially oriented polypropylene lines, SB-550A is coextruded as a 1–3 µm sealant skin on both faces of a homopolymer PP core. The lower crystallinity of the terpolymer skin reduces seal initiation temperature but also lowers the softening point; therefore, transverse direction pre-heat and stretching zones are held at 145–160 °C, and skin layer melt temperature is kept at 230–240 °C. If transverse direction temperatures fall below 145 °C, transverse bands and gauge variation appear; if they exceed 165 °C, the skin exhibits sticking to tenter clips and transfer marks on subsequent rolls.

    Skin formulation is 70–100 wt% SB-550A, with 0–30 wt% random copolymer PP of melt flow rate 3–5 g/10 min to preserve stiffness during orientation. Anti-blocking masterbatch is added at 2–4 wt%; slip masterbatch containing 5–10 wt% erucamide is added at 0.5–1.5 wt%. Because additive bloom requires 24–72 h after winding, immediate slitting can produce kinetic coefficient of friction above 0.4; converters either age the master rolls at 35–40 °C for 24 h or reduce slip addition to 0.2 wt% to avoid downstream film blocking.

    Cast pre-web is quenched at 20–30 °C, MD stretched at 120–135 °C with draw ratio 4.0–5.5:1, TD stretched at 150–165 °C with draw ratio 8.0–10.0:1, and annealed at 155–165 °C. Finished film thickness runs 18–25 µm at line speeds of 250–350 m/min; edge trim at 15–20% is pelletized and fed into the core at up to 25 wt% of core throughput. Food-contact compliance is assessed under FDA 21 CFR 177.1520 and EU No 10/2011; heat seal strength and hot tack are measured per ASTM F1921/F1921M-20 and ASTM F2029-21. Terminal products include snack food overwrap, graphics lamination film, confectionery twist-wrap, and label face stock requiring low-temperature sealing to oriented PP.

    Blown film frost line stability and bubble optics

    SB-550A is run in mono-layer and three-layer water-cooled or air-cooled PP blown film lines for low-haze overwrap and stationery films. The terpolymer gives haze of 2.0–4.0% at 25 µm in water-cooled processing, but bubble stability below 60 kg/h die throughput is dependent on frost line height and melt strength. In water-cooled systems with an internal mandrel, frost line height is kept between 5 cm and 15 cm; frost line heights above 20 cm produce bubble oscillation, uneven gauge bands, and increased blocking on the roll after 48 h storage.

    The monolayer or skin formulation is 85–100 wt% SB-550A, 0–15 wt% metallocene LLDPE or propylene-based elastomer to improve machine-direction tear resistance, 1–3 wt% silica anti-blocking masterbatch, and 0.5–1.5 wt% slip masterbatch. Internal antistat masterbatch at 0.1–0.5 wt% is added when downstream sheet-fed printing generates static; the antistat reduces optical clarity by 1–2% haze after 30 days due to surface bloom. Extruder melt temperature is 210–230 °C, die gap 0.8–1.8 mm, blow-up ratio 1.8–2.5:1, and winding tension is held below 20 N/m.

    Compliance testing includes FDA 21 CFR 177.1520, EU No 10/2011, and REACH Annex XVII; film for stationery may additionally be screened for heavy metals under EN 71-3:2019+A1:2021. Terminal forms are transparent magazine covers, floral sleeves, garment bags, and lamination base film for printed stationery. Published data for SB-550A in high-speed air-cooled PP bubble lines above 120 kg/h is limited; converters evaluating such lines should validate frost line control and roll blocking before serial production.

    Summary of compliance test windows by SB-550A downstream application
    ApplicationMajor standard / regulationTest method / clauseTypical acceptance window
    Cast film food-contact sealantFDA 21 CFR 177.1520; EU No 10/2011EN 1186-1:2002; ASTM F88/F88M-2110 mg/dm² overall migration; seal strength 15–25 N/15 mm
    BOPP sealant skinFDA 21 CFR 177.1520; EU No 10/2011ASTM F1921/F1921M-20; ASTM F2029-21Hot tack 0.5–2.5 N/15 mm; seal initiation 105–115 °C
    Medical sterile barrierISO 11607-1:2019; USP Class VIASTM F88/F88M-21; ASTM F1929-23Peel strength 1.0–2.5 N/15 mm; dye penetration no leak
    Extrusion coating on foilFDA 21 CFR 177.1520; EU No 10/2011ASTM F904-16; ISO 8296:2003Bond strength 300–800 g/25 mm; wettability 42–48 mN/m

    What governs extrusion coating adhesion to aluminium foil at 0.6–1.2 mm die gaps?

    Because the non-porous foil surface provides no mechanical anchoring, extrusion coating of SB-550A onto aluminium foil is controlled by oxidative adhesion in the air gap. The coating blend is processed at melt temperatures of 275–295 °C, which is above the cast-film temperature range, to generate polar carbonyl species that bond to the metal surface. At melt temperatures below 270 °C, peel bond strength to foil typically falls below 150 g/15 mm; above 300 °C, visible gel formation and edge melt rupture increase over coating campaigns longer than 8 h.

    The coating formulation uses 80–95 wt% SB-550A and 5–20 wt% maleic anhydride grafted PP with 0.5–1.5 wt% maleic anhydride graft content. Primer based on water-based polyurethane or polyethylenimine is applied at 0.3–1.0 g/m² dry coat weight, and the foil surface is pre-treated to 42–48 mN/m per ISO 8296:2003. Process stabilizer masterbatch at 1–2 wt% is included to suppress gel accumulation on the die lip. Aluminium foil thickness is 6–12 µm, and PP coating weight is 15–30 g/m².

    The coating line uses a single-screw extruder with L/D 28:1 to 32:1, barrier screw, flat die gap 0.6–1.2 mm, air gap 150–250 mm, chill roll temperature 10–20 °C, and line speed 120–200 m/min. Bond strength is measured after lamination per ASTM F904-16, with typical acceptance 300–800 g/25 mm depending on foil gauge and primer chemistry. For food-contact lidding stock, compliance is reviewed under EU No 10/2011 and FDA 21 CFR 177.1520; aluminium foil substrate is assessed under EN 602:2004 where relevant. Terminal products include yogurt cup lidding foil, butter portion packs, pharmaceutical blister lidding, and heat-sealable foil for cosmetic sachets.

    Ethylene oxide gassing exposes additive migration thresholds in sterile barrier webs

    In terminal sterilized medical packaging, SB-550A is formed into clear or pigmented sealant webs where seal integrity after ethylene oxide gassing and low particulate release are critical. Erucamide slip is kept below 0.05 wt% in the contact layer because post-sterilization bloom to the seal interface reduces seal strength and can produce visible residues on device surfaces. Inorganic silica anti-blocking masterbatch is used instead, at 1–3 wt%, and the contact layer is formulated at 90–100 wt% SB-550A with 0–10 wt% polyolefin elastomer to raise puncture resistance.

    Film production takes place in at least ISO 14644-1:2015 Class 8 cleanrooms on cast or blown lines with melt temperature 220–240 °C and film thickness 25–60 µm. Corona treatment is limited to 36 mN/m to reduce blocking and surface degradation. Regrind from sealant edge trim is excluded from the patient-contact layer; if used in a non-contact core, it is limited to 20 wt% and justified under ISO 11607-1:2019 clause 6.1.8. Sealing to lidding film or Tyvek is run at 125–145 °C, 0.3–0.6 MPa jaw pressure, and 0.5–1.5 s dwell. Seal strength is tested per ASTM F88/F88M-21 with typical acceptance 1.0–2.5 N/15 mm; dye penetration is checked per ASTM F1929-23, and bubble emission per ASTM F2096-11.

    Biocompatibility is assessed by ISO 10993-5:2009 and ISO 10993-10:2010, and the polymer is typically evaluated against USP Class VI extraction at 121 °C. Sterilization validation follows ISO 11135:2014 for ethylene oxide and ISO 11137-1:2006/Amd 1:2013 for gamma or electron beam. Published data for SB-550A after 25 kGy gamma exposure in sealed pouches is limited; dose mapping, post-sterilization seal peel testing, and visual inspection are mandatory before release. Steam autoclave is not recommended as a primary sterilization route for SB-550A sealant webs because the softening range approaches typical autoclave temperatures and seal creep may occur. Terminal products include chevron pouches, header bags, film-to-film pouches for syringes and surgical kits, and vented blister lidding.

    Liquid packaging for high-water-activity non-carbonated products such as condiments, wet wipes, and detergent sachets uses SB-550A as the sealant web in laminated pouches that do not enter retort or hot-fill service. The sealant film is compounded at 60–80 wt% SB-550A with 20–40 wt% higher-modulus random copolymer PP to prevent seal-through crease channels when sealing through product splash. Anti-blocking masterbatch is added at 3–6 wt%, and slip masterbatch is restricted to 0–1 wt% when the outer laminate is reverse-printed or when the pack is filled hot; excess slip bloom can reduce ink adhesion and increase seal contamination. Sealant layer thickness is 15–30 µm in a finished laminate of 60–120 µm.

    The cast sealant film is laminated to printed polyester, biaxially oriented polypropylene, or aluminium foil with solventless polyurethane adhesive at 1.2–2.5 g/m² coat weight, nip temperature 55–65 °C, and web tension 15–30 N/m. Curing proceeds at 35–40 °C for 24–48 h before slitting. On vertical form-fill-seal conversion, jaw temperature is set 135–150 °C, dwell 0.3–0.8 s, and jaw pressure 0.3–0.6 MPa; seal-through creases and product splash contamination are mitigated by increasing sealant layer thickness to 25–30 µm or switching to flat serrated seal jaws.

    Food-contact packaging requires FDA 21 CFR 177.1520 and EU No 10/2011; specific migration for aqueous and emulsion products is measured with 10% ethanol and 50% ethanol simulants per EN 1186-3 and EN 1186-9. Industrial detergent sachets may be evaluated for environmental stress-cracking resistance according to ASTM D1693-15. Terminal types include condiment sachets, wet wipe overwrap, liquid detergent pouches, and non-carbonated drink stick packs.

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    Certification & Compliance
    More Introduction

    KOPELEN PP Terpolymer SB-550A is a propylene-based terpolymer grade in which ethylene and 1-butene comonomers are incorporated to reduce crystalline regularity. The material is positioned as a heat-seal resin for coextruded cast and oriented polypropylene film structures. Its performance envelope is defined by three interlocking variables: heat-seal initiation temperature, hot-tack strength across the sealing jaw dwell-time distribution, and optical clarity retained after chill-roll quenching. Melt flow rate determination follows ISO 1133-1:2022 using a 2.16 kg load at 230°C; lot-specific values for SB-550A generally fall within the 5.0–8.0 g/10 min window, placing the resin in the cast-film and extrusion-lamination flow class. Density is assessed by ISO 1183-1:2019 and is expected in the 0.900–0.910 g/cm³ range. Values from the certificate of analysis for the specific lot should be treated as controlling, because comonomer ratio and additive package may vary within the grade envelope.

    Rheologically, SB-550A exhibits low zero-shear viscosity relative to block copolymer polypropylene grades. On a 25 mm parallel-plate dynamic oscillatory rheometer at 190°C, the crossover of storage and loss modulus for terpolymer grades of this flow class occurs at a frequency lower than that of a homopolymer with equivalent melt flow rate. The result is reduced screw-pressure generation and lower melt fracture risk in narrow die gaps. However, the same low shear viscosity requires controlled feed-throat temperature and barrel zone profiling, particularly on single-screw extruders with L/D ratios of 24:1–30:1. If melt temperature exceeds 245°C, the comonomer sequences are susceptible to thermal scission; the result is a measurable upward drift in melt flow rate and a narrowing of the hot-tack plateau.

    Seal-initiation behaviour in coextruded polypropylene films

    The primary functional specification for SB-550A is the seal initiation temperature achieved when the grade is used as the skin layer in a three-layer or five-layer coextrusion. Seal initiation is recorded according to ASTM F1921-12 on a flat-jaw heat-seal tester with a dwell time of 0.5 s and a jaw pressure of 0.275 MPa. Terpolymer seal layers of the SB-550A flow class generally initiate seal strength above 0.5 N/15 mm between 108°C and 122°C, depending on film thickness and chill-roll temperature. This is approximately 10–18°C below a comparable propylene-ethylene random copolymer and 25–35°C below a homopolymer polypropylene sealant. The broader hot-tack window is measurable under ASTM F1921-12 as the temperature range over which seal strength remains above 2.0 N/15 mm at a 100 ms dwell. Production-scale horizontal form-fill-seal lines operating above 45 packs/min benefit from this plateau because jaw release before full crystalline solidification can otherwise cause peel failure at the seal edge.

    Representative property envelope for KOPELEN PP Terpolymer SB-550A
    Property Test standard Typical range
    Melt flow rate, 230°C/2.16 kg ISO 1133-1:2022 5.0–8.0 g/10 min
    Density ISO 1183-1:2019 0.900–0.910 g/cm³
    Tensile yield stress ISO 527-3:2018 20–28 MPa
    Tensile elongation at break ISO 527-3:2018 >400%
    Flexural modulus ISO 178:2019 700–1000 MPa
    Haze, 50 µm cast film ASTM D1003-13 1.5–4.0%
    Seal initiation temperature ASTM F1921-12 108–122°C

    How does SB-550A differ from a binary propylene-ethylene random copolymer?

    The distinction is primarily thermal and morphological. In a binary random copolymer, ethylene interrupts the polypropylene crystallinity and lowers the melting point to roughly 135–148°C. The addition of 1-butene in SB-550A creates longer defects in the crystallizable sequence and depresses the melting endotherm further, typically to 125–135°C under ISO 11357-3:2018. This depression is not a specification by itself; it correlates with a lower seal initiation temperature and a broader hot-tack plateau. The comonomer distribution also changes the crystallization half-time under quiescent conditions. Published data for propylene terpolymers of this grade class indicate a crystallization half-time roughly 1.5–2.0 times longer than that of a random copolymer at the same supercooling. On a cast-film line this means the terpolymer remains in the amorphous sealant state for a longer period, allowing seal formation at lower jaw temperatures. The trade-off is a reduction in flexural modulus to approximately 700–1000 MPa under ISO 178:2019 compared with random copolymers at 900–1200 MPa and homopolymers above 1400 MPa. The terpolymer is therefore not selected for structural stiffness but for seal robustness.

    When high-speed packaging lines demand a broader hot-tack plateau

    On a horizontal form-fill-seal line running 60 cycles/min, sealing dwell time may be below 0.3 s. The hot-tack strength of SB-550A under these conditions is governed by the amorphous-phase concentration at jaw release. If the sealant layer is blended with a propylene-ethylene random copolymer at 20–30 wt% to increase stiffness, the hot-tack plateau narrows because the blend morphology creates discrete higher-melting domains. Coextruded film structures that keep SB-550A as the pure skin layer preserve the widest plateau. However, this purity complicates slitting: the lower modulus of the terpolymer skin increases the film’s sensitivity to razor-blade burr formation at slitting speeds above 600 m/min. Production lines that process SB-550A on a 3300 mm cast film line with in-line slitting report that blade angle below 25° and winding tension below 18 N/cm are required to prevent edge telescoping. These operational boundaries are not grade flaws; they follow directly from the low crystallinity that gives the seal performance.

    When SB-550A is evaluated for a three-layer cast polypropylene construction with a total film thickness of 30–70 µm, the sealant layer thickness is typically 5–15 µm. Below 5 µm, the sealant layer can be disrupted by flow instabilities in the feedblock and die, causing discontinuous seal strength and optical banding. Processors using a feedback-controlled barrier screw with a Maddock mixing head report that melt temperature fluctuation at the die lip is maintained below ±3°C when screw speed is held within the recommended range for a 90 mm extruder, 45–75 rpm. A gear pump reduces pressure surge but does not compensate for insufficient melt temperature control in the transfer line. The low sealing temperature of SB-550A also allows coextrusion with lower-melting seal layers without distorting the substrate layer; however, heat transfer through the film during sealing remains governed by the thermal conductivity of the entire film, not by the sealant resin alone.

    On production-scale cast-film lines, three failure modes are commonly documented when converting from a random copolymer sealant to SB-550A: edge weave after slitting, seal contamination on the sealing jaw, and odor generation at excessive melt temperature. Edge weave arises from the lower modulus and is controlled by center-wind tension below 15 N/cm and differential shaft torque. Seal contamination arises when low-molecular-mass species migrate to the sealing jaw at temperatures above 160°C; periodic jaw cleaning and lower temperature setpoints within the hot-tack plateau mitigate the issue. Odor generation is a processing-history artifact: if melt temperature exceeds 250°C for more than 10 min, detectable volatile compounds form. The corrective action is a barrel temperature profile reduction and screw-speed increase to lower residence time. Batch-to-batch melt flow rate variation in SB-550A is typically ±0.5 g/10 min. This variation is sufficient to shift cast-film melt-web neck-in by 2–5 mm at a die gap of 0.5 mm, requiring edge pinners and air-knife correction. In coextrusion, the layer ratio must be recalibrated if the melt flow rate drift is accompanied by a change in comonomer content; otherwise, sealant layer thickness distribution may drift outside the ±1 µm tolerance required for cosmetic film.

    For extrusion lamination to aluminium foil, the terpolymer surface may be corona treated to 38–42 mN/m. Surface oxidation proceeds readily, and treatment beyond 46 mN/m can induce surface crosslinking that raises seal initiation temperature. Although polypropylene is not hygroscopic, surface moisture condensed on pellets stored at relative humidity above 60% should be removed by 80°C dryer for 1–2 h before processing to avoid surface splay in the film. Contamination with copper-based heat stabilizers during regrind should be avoided because metal residues accelerate oxidative degradation of polypropylene at melt temperatures above 220°C. At seal jaw dwell times below 150 ms, published data for this specific configuration is limited; validation on the target packaging line is required.

    Compliance checklist for unfilled KOPELEN PP Terpolymer SB-550A
    Standard or regulation Method or clause Status for unfilled resin
    EU No 10/2011 Annex II overall migration Conforms for food-contact applications
    FDA 21 CFR 177.1520 Olefin polymers Conforms
    REACH SVHC Candidate list threshold 0.1 wt% No declaration required for base resin
    RoHS 2011/65/EU Annex II restricted substances Dependent on downstream electrical and electronic equipment use

    Replacement of a random copolymer skin layer with SB-550A is not a drop-in where film stiffness and coefficient of friction are fixed. The lower flexural modulus changes winding, slitting, and machinability. If a converter requires 1100 MPa flexural modulus, SB-550A may be blended with a homopolymer or random copolymer, but the blend will show a reduced hot-tack plateau and a higher seal initiation temperature. For retort packaging, SB-550A is not recommended as the sealant layer because post-retort seal strength and seal integrity are dominated by the more crystalline substrate layer; published data for this specific configuration is limited.

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