| Код ТН ВЭД | 361933 |
Как аккредитованный завод 3M 9325 Squeak Reduction Tape, мы соблюдаем строгие протоколы качества - каждая партия подвергается строгим испытаниям для обеспечения последовательных стандартов эффективности и безопасности.
| Упаковка | |
| Доставка | |
| Хранение |
Конкурентоспособные цены на ленту 3M 9325, которая соответствует вашему бюджету - гибкие условия и индивидуальные котировки для каждого заказа.
Для получения образцов, цен или более подробной информации свяжитесь с нами по адресу +8618136850665 или отправить по почте admin@ascent-chem.com.
Мы ответим вам как можно скорее.
Телефон: +8618136850665
Электронная почта: admin@ascent-chem.com
Гибкие условия оплаты, конкурентоспособные цены, первоклассное обслуживание — обращайтесь прямо сейчас!
Frictional stick-slip at polymer-to-metal and polymer-to-polymer contact points is a dominant source of squeak and rattle noise in vehicle interiors. The product identified as 3M 9325 Squeak Reduction Tape is a black, pigmented ultra-high-molecular-weight polyethylene backing carrying a pressure-sensitive acrylic adhesive. It is intended for insertion between sliding or rubbing interior surfaces where relative motion under road excitation would otherwise produce audible stick-slip. The backing functions as a low-friction interlayer; the adhesive layer transfers shear load into the primary substrate while maintaining position through thermal cycling and assembly handling. This introduction addresses material construction, application limits, comparative behavior against felt and PTFE alternatives, and the standard test methods used to verify performance. Model designations should be verified against the current 3M technical data sheet because regional packaging and converted formats may differ.
The backing is identified by the supplier as ultra-high-molecular-weight polyethylene, designated PE-UHMW under ISO 1043-1. The reported film thickness without release liner is 0.20 mm; total tape thickness with liner is higher and is specified for each roll or die-cut configuration. The film is pigmented black, providing a low-visibility edge on instrument panel and door trim applications. The adhesive is a pressure-sensitive acrylic designed for adhesion to automotive interior thermoplastics, painted sheet metal, and selected coated surfaces. The service temperature range is normally reported as -40 °C to 105 °C; sustained exposure at the upper limit may reduce adhesive shear strength. The liner is a polypropylene release material; removal force can vary with die-cut geometry and storage conditions. These dimensions and limits are derived from manufacturer documentation, but published data for specific liner gauges, roll lengths, and converted part configurations differ by distribution region and should be obtained from the current technical data sheet before die tooling is finalized.
Surface preparation on a production line generally proceeds with a wiped-on solution of 30% isopropyl alcohol and 70% distilled water, followed by lint-free cloth drying. The purpose is removal of mold release agents, finger oils, and low-molecular-weight migratory additives. Acrylic adhesives wet out polar substrates such as ABS and polycarbonate rapidly; polypropylene and talc-filled polyolefin surfaces may require corona, flame, or plasma treatment because low surface energy can reduce peel force. Adhesive bond development is time-dependent. Initial handling strength is typically sufficient within a few minutes at 23 °C, but maximum peel and shear values are reached only after full wet-out and may require up to 72 h. Application below 10 °C is not recommended because the adhesive storage modulus increases and the backing becomes stiffer, compromising conformability to curved ribs and fastening towers. Silicone-based mold release agents should be removed with an appropriate solvent system; isopropyl alcohol alone may not dissolve silicones.
Felt anti-squeak tapes reduce noise through compression and vibration damping, but they absorb moisture, exhibit thickness loss under compressive set, and can retain particulates. In contrast, the UHMW-PE backing of 3M 9325 is non-absorptive and maintains a continuous sliding plane. Skived PTFE tapes provide a lower intrinsic coefficient of friction than UHMW-PE but are more susceptible to cold flow under sustained compressive load and may exhibit less cut-through resistance. The 3M 9325 tape is therefore specified where abrasion, exposure to dust, or repetitive sliding wear is expected. Rigid polycarbonate or nylon clips and shims eliminate some relative motion but add component count and tooling cost; the tape can be converted into die-cut pads that follow complex trim contours without adding a discrete mechanical part. Compared with rubber-cushion tapes, the 3M 9325 tape offers a harder, low-friction face that is less likely to create a high-torque torsion joint or to creep out of position under clamping force.
UHMW-PE generally exhibits a dynamic coefficient of friction in the range of 0.1 to 0.2 against smooth steel under light load, although clearcoat chemistry and surface roughness move that range upward. Skived PTFE may be below 0.1 under similar conditions, but its compressive cold flow is higher. These values are not product-specific guarantees; they are typical of the polymer class and must be confirmed on production-representative substrates per ASTM D1894.
| Property | Test standard | Application in validation |
|---|---|---|
| Peel adhesion to stainless steel | ASTM D3330 | Acceptance of adhesive bond to reference substrate |
| Static shear holding power | ASTM D3654 | Resistance to creep under constant load at elevated temperature |
| Coefficient of friction of film | ASTM D1894 | Friction pairing against painted steel or grained PC/ABS |
| Taber abrasion | ASTM D4060 | Wear resistance of the backing under repeated sliding |
| Flammability of interior materials | FMVSS 302 | Vehicle interior material compliance |
Peel adhesion data reported by suppliers are typically generated on stainless steel after a defined dwell period. Published values for this specific product on textured polypropylene or low-gloss ABS are limited; final design sign-off should include peel and shear testing on production-representative plaques. Friction behavior depends on the mating surface. A clearcoat with a high silicone slip additive can produce a lower coefficient of friction than an unpainted steel coupon, but may also leave transfer deposits on the UHMW-PE backing after extended cycling. Coefficients of friction are measured by ASTM D1894; the test should be repeated after exposure to 85 °C and 85% relative humidity because moisture uptake in the mating polymer can alter the stick-slip response. Batch-to-batch variation in film crystallinity and pigment dispersion may also affect wear rate; a frequency of inspection for incoming lots should be established using Taber abrasion per ASTM D4060 when the tape is used on a high-sliding-distance seat track.
In high-load sliding positions such as seat tracks, sunroof guides, and retractable luggage covers, the tape is placed between the moving plastic shoe and the metal rail or between a seat belt loop and a structural mount. The UHMW-PE backing carries the sliding load and reduces stick-slip noise without requiring liquid lubrication. Load per unit area must be kept below the compressive yield of the backing; excessive clamping pressure will cause localized thinning, and the adhesive layer may be displaced from the bond line. On production lines, die-cut pads with rounded corners and a leading-edge release liner tab are preferred because angular pads can initiate edge peel during placement. Manual peel-and-stick application at high rates can produce placement variance, especially on curved rails; fixture-assisted application or robot-guided lamination is used where positional accuracy is critical. The adhesive bond must withstand assembly torque and subsequent thermal cycling without delamination or edge lift. When the mating metal rail is oily, phosphate-coated, or e-coated, the film side is intended to slide; the adhesive side must be applied to a clean, non-oily substrate.
Adhesive transfer to the backing should be monitored in cyclic slide tests. A common failure mode on production parts is not cohesive splitting of the film but edge peeling caused by liner removal at low temperatures. If the tape is die-cut with a narrow tab and liner removal is performed below 10 °C, the adhesive can delaminate from the backing, leaving insufficient bond on the part. The tape should be conditioned at room temperature for at least 24 h before die-cutting and application. Storage is recommended at 18 °C to 25 °C and 40% to 60% relative humidity; exposure to UV should be avoided because UHMW-PE can undergo chain scission and loss of mechanical properties after extended outdoor weathering. The product is intended for interior applications and is not a weather-resistant exterior tape.
The product is typically supplied with documentation to support automotive interior material requirements. The tape construction is intended to meet FMVSS 302 flammability when tested at the supplied thickness; current test certificates should be requested for the exact die-cut configuration because adhesive mass per area and liner residuals can influence the result. Substance restrictions generally follow REACH and RoHS reporting requirements for the supplied roll or converted part. The UHMW-PE and acrylic adhesive system contains no intentionally added silicone, but regional raw-material variation requires verification through the supplier’s latest compliance statement. No PFAS or halogenated flame retardants are known to be required in the construction; however, a supplier letter is the only authoritative document for a given production batch.
Avoid contact with aromatic hydrocarbons, concentrated acids, and strong oxidizing agents because these can swell or oxidize UHMW-PE. The acrylic adhesive is not recommended for direct bonding to silicone rubber or for use in fuel-wetted environments. No intentional silicone is used in the film or adhesive, which reduces the risk of silicone-induced surface contamination in paint shops, but downstream paintability testing is required for any applied tape left in a body shop environment. Test coupons should be cut parallel and transverse to the tape machine direction because UHMW-PE film orientation can produce anisotropic tear and wear behavior. For design validation, three production-representative substrates and at least two clearcoat conditions should be evaluated. The static friction hold under compression is usually measured with a custom fixture rather than a standard method; published data for this specific configuration is limited, and OEM internal test specifications often supersede generic ASTM screening. Peel adhesion to stainless steel is a useful incoming quality check, but it may not predict adhesion to low-surface-energy olefin substrates after heat aging. In edge-load conditions, a thicker film may be required; selection should be made on the basis of wear rate, not initial coefficient of friction alone.