| Код ТН ВЭД | 493871 |
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The product designated 3M Scotch Super 88 Vinyl Electrical Tape is a flame-retardant plasticized polyvinyl chloride pressure-sensitive tape carrying a rubber-resin adhesive on one face. It is supplied in black as standard and is commonly configured in 19 mm width by 20.1 m rolls. Total tape caliper is 0.216 mm (8.5 mil), with the PVC backing accounting for 0.178 mm (7.0 mil) and the adhesive layer accounting for 0.038 mm (1.5 mil). The listed voltage application is 600 V maximum under UL 510. Continuous thermal exposure is bounded between -18 °C and 105 °C. Below -18 °C, the plasticized film stiffens and reduces the conformability required for intimate half-lapped contact over lugs, solder joints, and irregular bundle transitions. The product is not intended as a primary moisture barrier on direct-burial or continuously immersed splices, nor as sole insulation on medium-voltage systems.
Material architecture determines the mechanical response. The calendered PVC backing is compounded with plasticizer to maintain flexibility at -18 °C, while plasticizer migration into the rubber-resin adhesive is controlled to avoid excessive backing softening and adhesive bleed-out at the roll edge. The adhesive is a tackified elastomeric system in which the elastomer phase provides cohesive strength and the tackifier phase provides wet-out on copper, aluminum, PVC, and cross-linked polyolefin surfaces. Peel adhesion is temperature-dependent. At 0 °C, the adhesive is firm and wet-out is slower. At 60 °C, the adhesive softens and can flow under sustained pressure. The tape is therefore installed with moderate tension above -18 °C and burnished after wrapping to improve contact. Because the PVC backing is not crosslinked, high-stretch application over a heated conductor can produce partial recovery and edge lifting after service. This failure mode has been observed on continuous motor lead rework where the tape was applied with high extension over an already warm lug.
The main electrical classification of 600 V does not depend on an increase in total caliper from 0.178 mm to 0.216 mm. Both tape classes remain listed for 600 V maximum under UL 510. The added caliper changes failure mode under mechanical stress. A 7.0 mil backing is sufficient for many dry indoor terminal joints but is more easily cut or abraded when a taped connection is pulled through knockouts, wireways, or cable tray intersections. The 0.216 mm total caliper increases the force required to cut through the tape and increases the number of abrasion cycles tolerated before the conductor jacket or insulating body becomes exposed. The trade-off is reduced conformability around small cross-sections. On conductor sizes below 1.0 mm², the tape edge can lift if the backing is not stretched sufficiently during the final wrap, and bundle diameter increases by roughly twice the added caliper per full circumferential layer. In switchgear and control panels with dense conductor routing, the thicker tape may require more space than a 7-mil product. In motor lead routing and tray cable overwrapping, the thickness is the primary selection factor.
For a 600 V class joint, the tape is applied after the connector or splice body has been prepared to a smooth profile. Solder lugs with sharp parting lines and split-bolt connectors with discontinuous contours create puncture risk under later vibration. Those surface irregularities are filled with a compatible rubber or mastic compound before the vinyl overwrap is placed, because the PVC backing alone does not bridge a sharp void under load. Manufacturer guidance for insulating joints typically calls for two half-lapped layers as the minimum overwrap, followed by a final layer with extended tension to develop slight neck-down and reduce edge lifting. Applied tensile load should not exceed the elastic recovery limit of the backing. Excessive stretch thins the film, reduces dielectric cross-section, and can induce residue transfer from the adhesive. When the substrate is below -18 °C, frost or condensation can prevent wet-out. The surface is warmed above the minimum application temperature or the work is deferred until the substrate is dry. Isopropanol or another non-residue solvent wipe is used before wrapping. Aromatic or ketone solvents are avoided because they swell the PVC backing and can extract plasticizer.
On motor repair benches and panel shop assembly lines, the main processing variables are unwind tension, overlap percentage, and final wipe-down pressure. The thicker backing tolerates more aggressive burnishing but can entrap air near the edge if the first wrap is applied with insufficient tension. Production staff standardize half-lap application using visual guides and verify the finished outside diameter with a micrometer. Two half-lapped layers of 0.216 mm tape typically produce roughly 0.55 mm to 0.65 mm of built-up film over the splice barrel, depending on the underlying profile. This empirical thickness check provides direct field verification that the specified layer count was achieved.
The following tabulated values are laboratory reference data determined under ASTM D1000-17 test conditions. They are not field-rated performance ceilings for a completed splice.
| Property | Test method | Value |
|---|---|---|
| Total tape thickness | ASTM D1000-17 | 0.216 mm (8.5 mil) |
| PVC backing thickness | ASTM D1000-17 | 0.178 mm (7.0 mil) |
| Adhesive layer thickness | ASTM D1000-17 | 0.038 mm (1.5 mil) |
| Tensile strength at break | ASTM D1000-17 | 17 lb/in (298 N/100 mm) |
| Elongation at break | ASTM D1000-17 | 250% |
| Dry dielectric breakdown | ASTM D1000-17 | 10 kV |
| Continuous service temperature | UL 510 classification | -18 °C to 105 °C |
| Application voltage rating | UL 510 listing | 600 V maximum |
The dry dielectric breakdown value of 10 kV does not raise the working voltage rating of the tape. The rating remains 600 V maximum under UL 510. Breakdown is influenced by wrap thickness, layer count, and the presence of air voids. A single layer over a sharp edge can fail at a much lower aggregate voltage than the standard dry test result. The thermal limit of 105 °C applies to continuous service. Intermittent excursions above this limit can accelerate plasticizer migration and backing embrittlement. Sustained operation above the listed thermal class is outside the published product window.
The UL 510 listing is the principal North American compliance reference. Under that listing, the tape is evaluated as an insulating tape for use at 600 V or less. The listing also evaluates flame-retardant characteristics and accelerated-aging performance of the backing-adhesive system. Certification to CSA C22.2 No. 197-M1983 extends the Canadian construction and performance criteria. The product is also declared compliant with RoHS 2011/65/EU for restrictions on lead, mercury, cadmium, hexavalent chromium, polybrominated biphenyls, and selected polybrominated diphenyl ethers in the supplied form. This chemical compliance statement does not cover subsequent contamination from contact with non-compliant cable jackets, terminal blocks, or coatings during installation.
| Standard or directive | Scope | Application to this product |
|---|---|---|
| UL 510 | Insulating tape listing including flame retardance and voltage classification | Listed for 600 V maximum |
| CSA C22.2 No. 197-M1983 | Canadian insulating tape construction and performance | Certified |
| ASTM D1000-17 | Pressure-sensitive adhesive tape test methods | Referenced for physical and electrical property determinations |
| RoHS 2011/65/EU | Restriction of lead, mercury, cadmium, hexavalent chromium, PBB, and PBDE | Declared compliant in supplied form |
Field documentation records the tape’s standard designations along with ambient temperature, substrate type, and layer count. The listing categories alone do not establish compatibility with specific chemical exposure, radiation, or immersion duty. Those reviews require additional testing on the completed splice configuration.
Maintenance specifications call for 3M Scotch Super 88 specifically when the original equipment manufacturer has identified mechanical abrasion or cut-through as a dominant failure mode. A 7-mil tape with the same 105 °C thermal classification and the same 600 V listing may satisfy the electrical insulation requirement, but it does not reproduce the caliper-based abrasion resistance of an 8.5 mil product. Conversely, replacing a 7-mil tape with 0.216 mm tape in a compact harness may change the outside diameter enough to violate cable bend radius or route spacing requirements. The thicker backing also exhibits higher bending stiffness at cold temperatures, increasing the minimum practical application temperature despite the same specified low-temperature service limit. In repair operations, the deciding variable is therefore the mechanical duty of the tape after installation, not the thermal class or voltage class alone. If the specification states “8.5 mil minimum caliper,” a 7-mil tape is not an equivalent substitute because the caliper is a controlled requirement of the repair.
In comparison to 3M Scotch Super 33+ vinyl tape, the Super 88 product has the same 105 °C thermal class and 600 V listing but a thicker 0.216 mm total caliper versus 0.178 mm. The thicker backing shifts the product toward motor lead repairs, tray cable overwrapping, and splice overwraps where mechanical abuse is higher. The converse selection criterion appears in dense electronic harness work. A 7-mil tape may be specified because the reduced caliper allows tighter routing and lower bending stiffness. Differences from utility-grade vinyl tapes include backing caliper, adhesive compounding, and the presence of a UL 510 listing with a defined continuous temperature rating. The product is a PVC tape, not a self-amalgamating silicone or rubber tape, and it does not perform the void-filling function of a mastic build-up.
The vinyl backing is plasticized and is not chemically inert in all service environments. Continuous contact with low-molecular-weight esters, ketones, aromatic hydrocarbons, or strong oxidizing agents can swell the PVC, reduce tensile strength, or extract plasticizer and cause the backing to become brittle. Uncured silicone and some amine-cured epoxy systems may also interfere with adhesive performance or accelerate local backing degradation. In direct-burial and water-immersion splices, vinyl tape alone is not a primary moisture seal. Industry practice and manufacturer guidance require a self-fusing rubber or mastic tape body over the connector, followed by the vinyl tape as a mechanical overwrap. Long-term outdoor exposure without additional jacketing is outside the product’s standard industrial use window. UV exposure can degrade the vinyl surface and change its dielectric and mechanical properties. Published performance data for continuous chemical immersion, radiation environments, and high-humidity direct-burial configurations are limited; qualification should be conducted on the specific cable jacket, connector, and tape combination before use.