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3M 9576B Splicing Tape is a double-coated polyester film tape supplied on a release liner and coated on both faces with a high-tack acrylic pressure-sensitive adhesive. The product is classified as a non-repulpable splicing tape and is intended for high-speed web joining in printing, coating, laminating, slitting, and finishing operations where the splice must pass through downstream nips, idlers, and heated dryers. Manufacturer-published data list total caliper excluding liner at approximately 0.10 mm (3.9 mil); because splice caliper directly affects roll bounce and coating gap variation, incoming lot verification against the certificate of analysis is required rather than relying on nominal values. The continuous service temperature is commonly reported as -40 °C to 121 °C, but the available margin above 100 °C depends on dwell time, web tension, and solvent exposure. The polyester carrier has low moisture absorption and resists elongation under web tension, which separates this product from paper-backed splicing tapes that may tear or cockle in humid converting rooms. The carrier is translucent and is not water-dispersible; therefore it must be excluded from repulping streams and may require a metallic flag or ink mark for optical splice detection. In comparison with unsupported transfer tapes, the polyester film prevents adhesive thickness collapse in high-tension zones and reduces stretching during splice insertion.
The high-tack acrylic adhesive is selected for wet-out on machine-finished papers, clay-coated board, polyester, polycarbonate, and rigid polyvinyl chloride. Untreated polyolefin films with wetting tension below 38 dyn/cm measured by ASTM D2578 are not reliably bonded without corona discharge or primer. The adhesive is pressure-sensitive and does not require moisture activation or heat cure, but its ultimate bond develops over time. The splice tail should therefore be closed under uniform nip pressure before a stationary unwind roll is accelerated to line speed.
On zero-speed unwind stations, splice tail lifting occurs when the adhesive cannot maintain full contact with the outer web surface at the moment the storage roller is accelerated to line speed. The failure mode is most commonly observed on rough machine-grade kraft, on silicone-coated surfaces, or on films with migratory slip agents that reduce surface energy. The high-tack acrylic adhesive in 3M 9576B is characterized by ASTM D3330/D3330M peel adhesion to stainless steel; manufacturer literature typically reports values in the range of 12 N/25 mm to 14 N/25 mm after a controlled dwell period. Adhesion to stainless steel is not a substitute for adhesion to the actual substrate, and splice performance on clay-coated board may drop by 20–50 % if loose fiber or calcium carbonate is present at the splice interface. A clean, dry surface is preferred; water, oil, and silicone release agents interfere with bond formation.
The splice must be closed under uniform nip pressure across the full web width. On production machinery, a splice carriage with a crowned pressure roll or an air-loaded nip set to a minimum surface contact pressure of 200 kPa may be required to prevent edge voids. If the line starts with stored tension, the shear vector at the splice is not pure peel; the adhesive must resist creep until the zero-speed splice fully enters the machine. Splice tails should be positioned to avoid a high-angle peel line at the storage roll. A tail cut at 30–45° relative to the web edge reduces the instantaneous peel angle and allows the leading edge of the splice to enter the nip progressively. Splice failure observations from converting lines indicate that edge lift occurs more often when the tail is cut square and the line is started under high dancer roll inertia, causing a tension overshoot that may exceed steady-state tension by 2–3×. A minimum dwell of 1–3 seconds under nip pressure is commonly used, but the required value depends on roughness and surface energy; published data for this specific configuration is limited. For corrugated and folding carton dry-end splices, a second strip of tape may be applied over the leading edge to reduce parasitic peel forces.
Rubber-resin splicing tapes can produce higher initial finger tack on some films, but they often lose holding strength in dryer zones above 60–80 °C and can transfer adhesive to rollers. The acrylic system in 3M 9576B is selected when the spliced web must pass through heated idlers and impingement dryers where surface temperatures approach 100–121 °C. This difference becomes critical on tandem coating lines where a splice made at the unwind must survive several drying stations before inspection.
When this tape is specified for flexographic and rotogravure presses, the primary requirement is that the splice passes through multiple printing stations without impression bounce or web break. The low caliper polyester carrier reduces the abrupt thickness increase at the splice and helps maintain print registration. Compared with paper-backed splicing tapes, the polyester carrier is less likely to break under the high web tension used in wide-web gravure. On central-impression presses, the tape is sometimes applied with the splice tail oriented away from the drum to avoid adhesive contact with the doctor blade chamber. Solvent-based inks and cleaning agents may contact the edge of the splice; the adhesive is resistant to short incidental contact with mineral oil and alcohol, but prolonged contact with ketones, esters, or aromatic hydrocarbon solvents should be tested using a wet-fixture test before production. For polymer films entering a coating station, adhesion to the film surface may be lower than adhesion to stainless steel. The user should verify surface energy with ASTM D2578 and determine peel values with the actual substrate. Silicone-coated liners, fluoropolymer films, and contamination from migratory slip agents in low-density polyethylene can reduce bond strength below acceptable limits. In these cases, corona discharge, a chemical primer, or an alternative adhesive system may be required.
Core starting in winding and slitting operations is a further use of the double-coated polyester construction. The tape is applied to the core with one exposed adhesive face, and the web is started onto the other. If the core is cleaned with compressed air, the high tack acrylic wet-out reduces start-up foldbacks. In winding of high-modulus films, the polyester carrier prevents adhesive gaping that can occur with unsupported transfer tapes. For very smooth films such as oriented polypropylene and polyester, a tape with either a higher tack adhesive or an in-line corona treatment may be required; the surface energy of the film must be above 38–40 dyn/cm for reliable core start. If not, the leading edge may slip on the core and cause winding wrinkles. Because the carrier is translucent, some automatic core-start sensors may not detect the tape edge unless the tape is ordered with a contrasting liner or marked after application.
| Product class | Carrier | Adhesive chemistry | Typical continuous temperature capability | Repulpability | Use case |
|---|---|---|---|---|---|
| 3M 9576B | Polyester film | High-tack acrylic | 121 °C | No | High-speed non-repulpable web splice |
| Repulpable paper splicing tape | Paper | Water-dispersible acrylic | Limited by paper degradation | Yes | Paper mill and recycling-compatible splices |
| Rubber-resin single-coated splicing tape | Polyester or polypropylene film | Natural or synthetic rubber resin | 60–80 °C | No | Low-temperature manual splicing |
| Unsupported transfer tape | None | Acrylic or rubber | Varies by chemistry | No | Core start where caliper is critical |
Polyester film as a carrier does not melt at the temperatures used in solvent-based drying tunnels up to approximately 150 °C, but the acrylic adhesive system can undergo softening, edge flow, and reduced shear holding as the web approaches 121 °C continuously. In coating and laminating lines with impingement dryers, the splice thickness, thermal soak time, and tension should be calibrated before changing production recipes. A splice that is slightly too thick can create skips in gravure or roll-coating application because the coating head opens momentarily at the splice. The polyethylene terephthalate carrier has low moisture absorption, which reduces dimensional change in humid coating rooms; paper carriers may cockle and form wrinkles at relative humidity above 70 %. The release liner must be removed completely before the splice enters a dryer because retained liner stock can shrink and either block the coating nip or contaminate a laminating adhesive. The polyester carrier also resists tearing during web-break recovery; however, this tear resistance means a missed splice can travel deeply into a converting line and cause wrap-up on idlers. For this reason, process interlocks should be set to detect splice location using proximity or optical sensors. The adhesive is thermoplastic and may lose overlap shear strength when exposed to plasticizer migration from film substrates; short stack shear testing in accordance with ASTM D3654/D3654M can provide a comparative ranking. Maximum shear holding is observed after the adhesive reaches room-temperature equilibrium, not immediately after splice placement; therefore immediate tension load should be considered if a splice is made on a winding reel that will be used within seconds.
Under typical warehouse humidity fluctuations, the release liner and adhesive can change dimension at different rates, leading to edge adhesive flow or liner curling if rolls are stored at high humidity or direct sunlight. Recommended storage conditions are 21 °C ± 3 °C and 45–55 % RH; the manufacturer’s shelf-life documentation usually indicates 18–24 months from date of manufacture in original packaging. Rolls should not be stacked horizontally in warm warehouses because adhesive cold flow can produce sticky edges and liner embrittlement. Before production use, the liner should be checked for smooth release; if the liner becomes difficult to strip at high unwind speeds, reduce line speed and verify that the liner was not exposed to moisture. Compliance documentation for 3M 9576B typically references ASTM D3330/D3330M for peel adhesion, ASTM D3759/D3759M for tensile strength and elongation of the carrier, and ASTM D3654/D3654M for shear holding. When indirect food contact is part of the application, the end user must review whether the adhesive falls under FDA 21 CFR 175.105 or other applicable sections and confirm that the migration limits and resin identity are compatible with the food matrix. The purchaser should obtain lot-specific RoHS Directive 2011/65/EU documentation and any REACH Article 33 communication if the tape is supplied into the European Economic Area. As a non-repulpable material, the tape must be captured in trim waste streams where paper recycling systems are in use; this is a key operational difference from water-dispersible splicing tapes. In film converting and coating applications where no repulping requirement exists, the polyester carrier is usually preferred over paper because paper dust and fiber contamination on guide rollers are reduced.
In the production environment, the dry, clear splice can be coated over with pressure-sensitive label adhesives and UV-cured lacquers; however, direct exposure to high-intensity UV lamp radiation at close distances can photo-oxidize exposed acrylic adhesive edges. The splice should be placed outside the direct focal plane of the UV lamp housing when possible. The adhesive edge can also collect airborne paper dust or coating overspray after repeated line starts; periodic inspection of splice residues on guide rollers is therefore required. If adhesive residue is found on heated rollers, a cleaning agent compatible with acrylic adhesive and roller elastomer should be used. The polyester carrier does not absorb solvent, but aggressive solvent mixtures can penetrate the adhesive edge and cause loss of peel adhesion. A wet-fixture test with the actual solvent blend is recommended before introducing 3M 9576B into a coating line where splash or vapor contact is continuous.
Splice tape residue on heated nip rolls is a processing contamination source that can transfer to the product face or affect subsequent printing. The acrylic adhesive in 3M 9576B is designed to remain cohesive under shear, but every adhesive has a finite shear resistance at elevated temperature. If the splice enters a heated laminating nip while the thermo-sensitive adhesive is above its continuous service limit, adhesive from the exposed edge can spread into the nip and deposit on steel or rubber coverings. This effect is magnified when web tension is high and the splice thickness creates a localized pressure spike. Production experience indicates that residue problems are often eliminated by moving the splice point upstream of a cooling idler before the heated nip. The edge of the tape should be aligned straight, and any adhesive squeeze-out from the roll edge should be trimmed before the splice reaches the coating station. A hard steel idler with a nonstick coating is less likely to retain transferred adhesive than an uncoated elastomer roll, but the roll surface energy and release character must be verified with a production trial. If optical defect detection is used, accumulated adhesive on the roll can generate false-positive defects and reduce inspection throughput. An in-process camera after the heated nip can identify residue streaks before they reach the winder.
| Attribute | Method | Application relevance |
|---|---|---|
| Peel adhesion to stainless steel | ASTM D3330/D3330M | Initial backside and face-side tack ranking |
| Tensile and elongation | ASTM D3759/D3759M | Carrier resistance to web tension |
| Shear holding | ASTM D3654/D3654M | Creep resistance in dryer zones |
| Wetting tension of substrate | ASTM D2578 | Threshold for film corona pre-treatment |
| Indirect food contact adhesive clearance | FDA 21 CFR 175.105 | End use only; verify migration |
| Hazardous substance restriction | Directive 2011/65/EU | Lot-specific documentation required |
For lamination of polyester and polypropylene films where web temperatures exceed 110 °C, several converters apply a hold-down strip at the splice trailing edge. This is not a defect-inducing overbuild if the strip is positioned outside the critical print area. However, double-layer splice geometry may be visible in gloss lamination or high-fill gravure coating, so prototype trials with actual web structures are mandatory. The carrier caliper of 3M 9576B is lower than many general-purpose double-coated tapes, but it is not zero. When splice-induced thickness variation is unacceptable, a shingled or offset splice geometry may reduce the local gage jump. In a shingled splice, the tail is split into multiple fingers, allowing the web tension to engage progressively and reducing peel stress at the leading edge. This practice is common in high-speed paper printing pressrooms but is not universally suitable because die-cutting equipment and automatic registration controls may reject the changed web thickness profile. If the product is used for fingerprinting downstream applications, the user should verify that the adhesive does not interact with ink adhesion or varnishes. Acrylic adhesive systems are generally compatible with many overprint varnishes, but solvent-borne UV flexo inks with high monomer content can differ. A splice residue test on a print trial roll is recommended before full-scale conversion.