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The product designated 3M 9114 Butt Splicing Tape is a single-coated pressure-sensitive adhesive tape constructed on a polyester film carrier. It is specified for web splicing operations in which two ends are brought together edge-to-edge, rather than overlapped, so that the splice passes through printing, coating, laminating, or slitting nips without creating a folded caliper step. Standard commercial roll formats include 50 mm × 50 m, with additional slit widths supplied by converting distributors for narrower web widths. The polyester carrier provides higher tensile strength and dimensional stability than paper splicing tapes, while the adhesive is formulated for fast tack development on polar films, coated papers, and metallic foils. The exact construction, adhesive coat weight, backing thickness, and thermal rating should be taken from the current manufacturer’s data sheet, because lot-specific values may vary around the nominal product design.
From a test-method standpoint, the relevant specification set comprises ASTM D3652/D3652M for total tape thickness, ASTM D3330/D3330M for peel adhesion to stainless steel, ASTM D3759/D3759M for tensile strength and elongation, and ASTM D4498/D4498M for shear adhesion failure temperature. These methods permit comparison with other polyester splicing tapes, but the measured values are not directly transferable to a running web. Peel adhesion depends on surface energy, dwell time, nip pressure, adhesive viscoelasticity, and surface roughness. The splice should therefore be treated as a short-term structural joint whose performance is governed jointly by the backing strength, the adhesive shear resistance, and the application conditions at the splicing station.
Under web tension, a butt splice carries a uniaxial load distributed across the tape width. The stress on the polyester backing is calculated from the line tension and the splice width. For a web tension of 10 N/mm across a 500 mm web, the splice is exposed to a total load of 5000 N. The supplied tape should therefore provide a tensile strength with a design safety factor of at least 3:1 against transient tension spikes during acceleration, tension reversal, or nip engagement. Tensile strength and elongation are measured according to ASTM D3759/D3759M. Polyester backing elongates less than polyolefin or paper carriers, which reduces splice line distortion in heated drying sections. However, the limiting failure mode on many converting lines is not backing rupture. It is peel-initiation at the leading edge of the tape, where air entrapment, surface contamination, or insufficient wet-out creates a bond area defect that propagates as the splice flexes through idlers and nips.
The adhesive bond develops as the pressure-sensitive adhesive flows into the substrate microtopography under application pressure. A rubber-covered splice roller with Shore A hardness in the range 70–80 is commonly used, although pneumatic or mechanically loaded rollers are found on high-speed splicing stations. Bond strength after nipping continues to increase over a timescale of minutes to hours at ambient temperature. High-speed flying splicers, however, may impose full web tension within seconds of application. Initial tack and surface treatment are therefore process-critical. Corona treatment of polyolefin or coated films to approximately 40–42 mN/m is commonly necessary before tape application. Low-molecular-weight slip agents, waxes, or plasticisers that bloom to the film surface can suppress adhesion and should be removed by solvent wiping or freshly applied corona discharge. If the substrate is a silicone-coated release liner, an acrylic-adhesive tape may not wet the surface adequately without aggressive corona or plasma treatment. In such applications, a silicone-adhesive polyester tape is normally specified.
The viscoelastic response of the pressure-sensitive adhesive is central to wet-out and shear resistance. At low deformation rates, the adhesive flows to replicate surface roughness; at high deformation rates, the same material behaves elastically and carries stress. The Dahlquist criterion for pressure-sensitive adhesives states that a material generally requires an elastic modulus below 0.3 MPa at room temperature to wet out effectively. Acrylic formulations are designed within this region by controlling comonomer composition, tackifier content, and crosslink density. Higher crosslink density improves shear holding at elevated oven temperatures but reduces conformability and wet-out. This trade-off explains why a splicing tape that performs well at room temperature may fail cohesively in a heated drying tunnel, and why a high-temperature splice must be qualified under actual process conditions rather than by ambient peel strength alone.
The selection of 3M 9114 Butt Splicing Tape depends on adhesive chemistry and backing construction. Silicone-adhesive polyester tapes, such as 3M 8901 and 3M 8902, are selected for adhesion to silicone-coated release papers and films because silicone adhesives can wet low-energy silicone surfaces. Acrylic-adhesive polyester tapes are preferred on corona-treated PET, aluminum foil, coated paper, and printed overvarnishes, where higher initial adhesion to polar surfaces is needed. The distinction is chemical rather than purely thermal or caliper-based. Compared with a repulpable paper splicing tape such as 3M 9069, 3M 9114 is not designed to disperse in aqueous repulping systems and should not be placed in broke intended for fibre recovery. Compared with double-coated splicing tapes, 3M 9114 exposes the polyester backing on the non-adhesive side, which may be useful where the back side must pass over idlers or guide rollers with reduced adhesive transfer. The coefficient of friction of that exposed polyester surface is different from a release-treated film, and the effect on web tracking should be verified when the splice is used across a steering unit or narrow-gap coater.
In elevated-temperature drying tunnels or laminating nips, the acceptable splice temperature should be qualified by shear testing rather than by ambient peel value alone. Acrylic pressure-sensitive adhesives often show reduced shear holding above 149 °C, although the polyester carrier may remain dimensionally stable at higher temperatures. The product is not a thermoset structural adhesive and does not crosslink into a permanent thermoset bond under normal web-processing temperatures. If the splice must pass through a heated oven, it should be positioned outside the heated zone, or a higher-temperature splicing product should be considered. Solvent exposure in coating and printing lines also requires qualification. Polyester film has good resistance to many aliphatic hydrocarbons and dilute acids, but strong alkalis, chlorinated solvents, and certain ketones may degrade the backing or extract adhesive components under prolonged immersion. Testing under process-specific soak conditions is appropriate; ISO 175 provides one immersion framework for plastics, although adhesive bond retention is more often evaluated by peel strength after immersion.
If the web to be spliced is a silicone-coated release liner, the surface energy and chemistry differ substantially from ordinary film or paper. Silicone surfaces are non-polar and low-energy. Acrylic pressure-sensitive adhesives may not achieve acceptable peel adhesion without corona or plasma treatment, and corona treatment on silicone-coated surfaces can decay rapidly. For this reason, 3M 9114 is not typically specified for splicing silicone release liners. Silicone-adhesive polyester tapes are the standard product class in that application. If 3M 9114 is used on a silicone liner after surface treatment, bond retention should be tested over the expected storage period, because adhesion may fall sharply within hours to days as the treatment decays. Free silicone oil on some release liners can also plasticise the acrylic adhesive, lowering shear holding even when initial tack appears adequate. A splice that performs well at ambient temperature but fails after 48 h may indicate surface-energy decay or plasticiser migration rather than a simple peel-strength defect.
For incoming inspection and process qualification, the following test methods and regulatory references are commonly used for this tape class:
| Verification area | Standard or regulation | Process use |
|---|---|---|
| Total tape thickness | ASTM D3652/D3652M | Control of splice caliper in coating and printing nips |
| Peel adhesion to stainless steel | ASTM D3330/D3330M | Comparison of initial and dwell adhesion |
| Tensile strength and elongation | ASTM D3759/D3759M | Web tension design margin |
| Shear adhesion failure temperature | ASTM D4498/D4498M | Maximum short-term oven exposure |
| REACH SVHC screening | EC No 1907/2006 | Supplier regulatory declaration |
| RoHS restricted substances | Directive 2011/65/EU, Annex II | Supplier conformity statement |
Because the product is supplied as roll stock, slit-edge quality and unwind behaviour are part of the process window. A poorly slit roll can produce edge picks, adhesive ooze, or telescoping, and these defects can initiate web breaks at the splice. Incoming inspection should include visual checks for edge damage, adhesive transfer between layers, and roll telescoping. Unwind force is not captured by peel adhesion or tensile strength, but it has a direct effect on tension control in a flying splicer. If unwind force is too high, the splicer may overshoot tension control; if it is too low, the roll may spill or telescope. These handling properties are controlled during slitting and packaging and should be confirmed when switching from one slit width to another.
Storage conditions influence adhesive tack and unwind. Roll stock should be kept in original packaging at 10–25 °C and 40–60% RH, away from direct sunlight and ozone-generating equipment. Exposure to high humidity can allow moisture condensation at the adhesive interface and reduce wet-out. Repeated freeze-thaw cycles should be avoided because condensation and dimensional movement of the roll can create adhesive blocking and edge contamination. If the roll has been stored in a cold environment, it should be allowed to equilibrate for approximately 24 h before application. Placing cold tape directly onto a warm web can create a transient moisture film and low initial tack, even when the tape’s room-temperature datasheet values appear acceptable.
On zero-speed butt splicers and flying splice units, the tape is sometimes applied in a defined splice pattern rather than a single straight strip. The edge of the tape may be positioned slightly back from the web edge to prevent adhesive ooze and build-up on rollers. In high-temperature sections, cross-directional tape placement or double-width tape may be used to increase load transfer, but this increases local caliper and should be validated on the actual line. When a double-tape pattern is used, the load distribution changes from uniaxial to biaxial at the joint, and the failure mode may shift from peel at the tape edge to backing shear at the intersection. Such splice patterns should not be introduced without a documented splice trial on the production winder or press because the interaction between the two tape strips is not predicted by single-tape tensile data.
Because the splice is intended to remain in place through downstream operations, the product is not represented as a clean-removal tape. If rework requires removal, adhesive residue or cohesive failure may occur, particularly after high-temperature drying or solvent exposure. For processes that require a peelable or resealable splice, a different adhesive system should be selected. Published production-line data for this specific configuration is limited, and qualification should always include the actual substrate, web speed, tension, oven temperature, and time between splice application and load transfer. The manufacturer’s data sheet and regulatory information should be consulted for current lot-specific values, and the product should be tested on the target converting line before it is introduced into routine production.