| Код ТН ВЭД | 516486 |
Как аккредитованный завод Chesterton 850 Premium Sealing Tape, мы соблюдаем строгие протоколы качества - каждая партия подвергается строгим испытаниям для обеспечения последовательных стандартов эффективности и безопасности.
| Упаковка | Chesterton 850 Premium Sealing Tape is packaged in 1/2-inch by 260-inch rolls, 12 rolls per box. |
| Погрузка контейнера (20-футовый контейнер) | Chesterton 850 Premium Sealing Tape is loaded into a 20-foot FCL, palletized, shrink-wrapped, and secured under dry conditions for transport. |
| Доставка | Chesterton 850 Premium Sealing Tape is not classified as dangerous goods for transport. It has no UN number, hazard class, or packing group. Ship as general, non-hazardous cargo under normal freight conditions. No special labels, placards, or emergency response information required. |
| Хранение | Store in a cool, dry, well-ventilated area away from direct sunlight, heat, and ignition sources. Keep containers tightly closed, upright, and clearly labeled. Protect from moisture, dust, and physical damage. Separate from strong oxidizers and incompatible materials. Avoid excessive temperatures. Maintain good housekeeping and follow local regulations and the manufacturer’s safety data sheet. Use original packaging. Store at ambient temperature. |
| Срок годности | Shelf life is indefinite when stored in original packaging in a cool, dry area, away from direct sunlight and extreme temperatures. |
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Chesterton 850 Premium Sealing Tape is supplied as a continuous, self-adhesive expanded polytetrafluoroethylene tape manufactured for form-in-place gasket service on flanged joints, pump casings, gearboxes, and irregular machined closures. The model designation 850 distinguishes the product from filled PTFE sheet and thread-sealing tape. Roll widths commonly stocked range from 3.2 mm to 25.4 mm; standard thicknesses are 1.0 mm, 1.5 mm, 2.0 mm, and 3.2 mm. The base material is expanded PTFE without glass, silica, carbon, or elastomeric binder. The single-face pressure-sensitive adhesive is a positioning aid only and is not considered part of the sealing barrier.
Manufacturer-published operational limits place the tape in continuous service from -268 °C to 260 °C, with pressure capability from full vacuum to 83 bar. The upper temperature is governed by PTFE chain scission and the onset of fluorine-containing decomposition products, not by adhesive softening. The pressure rating is conditional on flange stiffness, bolt spacing, flange surface finish, and applied seating stress. Published data for this specific configuration is limited for cyclic service above 204 °C or for bolt stress below 7 MPa on steel flanges. The pressure capability is not an intrinsic property of the tape alone; it is a system property requiring adequate gasket width, rigid flange geometry, and correct bolt preload. A gasket width of at least 10 mm is assumed for the 83 bar rating, and narrow tapes or flexible flanges reduce the allowable pressure.
The dominant variable is compressibility under the seating stress available from standard bolting. Expanded PTFE contains a fibrillated node-and-fiber structure that collapses into flange roughness features at moderate load, whereas skived PTFE sheet is dense and non-porous. A rigid skived PTFE gasket can require seating stress above 25 MPa to seal a wavy flange surface, while expanded PTFE tape of this class typically seals at 7 MPa to 14 MPa. Filled PTFE sheet products improve creep resistance by adding glass, carbon, or mineral reinforcement, but the discrete filler particles can impinge on polished metal and initiate surface scoring. Chesterton 850 is manufactured without filler, so the process-contact surface contributes no metallic ions or leachable reinforcement residues.
The following comparative data are product-class ranges drawn from published gasket literature and should be verified against the current Chesterton 850 technical datasheet before design calculations:
| Material system | Compressibility (ASTM F36) | Recovery (ASTM F36) | Continuous temperature ceiling | Typical seating stress |
|---|---|---|---|---|
| Expanded PTFE tape | 35–60% | 8–15% | 260 °C | 7–14 MPa |
| Skived PTFE sheet | 1–3% | 0–1% | 260 °C | 25–40 MPa |
| Glass-filled PTFE sheet | 5–12% | 2–5% | 260 °C | 15–25 MPa |
| Flexible graphite sheet | 30–40% | 10–18% | 450 °C | 10–18 MPa |
Flexible graphite offers a higher thermal ceiling, but its electrically conductive nature can promote galvanic corrosion on stainless steel flanges in moist environments. Expanded PTFE is non-conductive and avoids that galvanic couple. The trade-off is higher creep: PTFE cold flow under sustained load requires re-torque, while graphite retains seating stress more effectively. The adhesive layer also differentiates 850 from non-adhesive expanded PTFE tapes. Non-adhesive tapes require external alignment fixtures and can shift during closure; the adhesive-backed product remains in position without clamping. The adhesive does not contribute to sealing, and the joint should not be designed on the assumption that the adhesive will fill a flaw.
Field service on production-scale flanged equipment shows that leakage is often preceded by surface irregularities created by erosion, weld spatter, or mechanical damage. Chesterton 850 is applied where flange out-of-flatness is as high as 0.5 mm and where a rigid sheet gasket cannot conform. The expanded structure compresses at low stress and flows into serrations of 3.2 µm Ra without requiring plastic deformation of the metal. On a DN 600 reactor body flange with a measured out-of-flatness of 0.3 mm, a single 2.0 mm layer installed at 10 MPa has maintained a leak-tight seal over 10 thermal cycles from 25 °C to 150 °C when the re-torque procedure is followed. Published data for this specific configuration is limited, but the failure mode observed on similar annular groove flanges involves loss of residual seating stress on cool-down when re-torque is omitted.
Installation begins with solvent degreasing of the sealing faces using isopropanol or acetone. The tape is applied without stretching because stretching reduces cross-sectional thickness and creates thin lanes. Tape ends are cut on a 45° scarf joint and overlapped by 5 mm to 10 mm. The adhesive layer holds the tape during vertical installation but does not provide the seal; bolt-induced compression creates the sealing interface. Multiple tape layers may be used to correct gross surface defects, but the total stack height should not exceed 3.2 mm unless flange rotation and bolt length have been re-evaluated. Surface finish controls the quality of the sealing interface. The tape seals against machined flange surfaces from Ra 1.6 µm to Ra 6.3 µm. On surfaces smoother than Ra 0.8 µm, the lack of mechanical interlock can allow creep and radial movement; on surfaces rougher than Ra 12.5 µm, single-layer thickness may be insufficient to fill the peak-to-valley distance and a two-layer stack is required.
Bolt preload is applied in three equal increments of 30%, 60%, and 100% of target torque in a star pattern. Target assembly stress for this product class is 7 MPa to 14 MPa on carbon steel flanges and 4 MPa to 8 MPa on FRP or glass-lined flanges. After 24 hours at ambient temperature, re-torque is performed to the target value. PTFE cold flow produces a seating stress loss of 15% to 25% during the first day; without re-torque, blowout margin can drop below design values on flanges operating above 40 bar. The assembly sequence follows the flange qualification principles of ASME PCC-1, but final torque is determined by the flange material specification and bolt grade. In saturated steam service at 150 °C and 6 bar, the tape is typically installed as a single layer on raised-face flanges. Because PTFE has a coefficient of thermal expansion approximately 10 times that of carbon steel, heating from ambient to operating temperature expands the gasket and can cause extrusion if initial seating stress exceeds 14 MPa. Over-compression above 18 MPa produces permanent thinning, reduces recovery, and results in leak-tightness loss on cool-down. The compressed thickness should be maintained within 20% of the original value. These values are consistent with the creep-relaxation behavior measured under ASTM F38 for expanded PTFE gasket materials.
On fiberglass-reinforced plastic piping, allowable bolt stress is lower than on steel. A rigid filled PTFE gasket may require more than 15 MPa to seal, while Chesterton 850 seats at 4 MPa to 8 MPa. Applying the rigid gasket to a DN 300 FRP flange can produce flange rotational deformation and uneven compression. The expanded tape permits sealing of surfaces with out-of-flatness up to 0.4 mm without exceeding the flange moment capacity. Gasket width is selected so that the compressed tape remains within the flange raised face. For a DN 150 Class 150 raised-face flange, a 12.7 mm wide tape is commonly used; for a DN 400 flange, a 19.0 mm wide tape may be required to prevent intrusion into the bore. The tape should be centered on the raised face and not allowed to enter the process stream because fragments can detach and contaminate downstream instrumentation.
Use of the 850 tape as a substitute for tapered pipe thread sealant is not recommended. Tapered pipe threads require a thin PTFE film to act as a lubricant and filler; the expanded tape is too thick for thread root engagement and can prevent proper makeup. For threaded connections, a separate thread-sealing tape is used. Swelling of PTFE is effectively zero in common solvents; the material does not exhibit the volume change seen in nitrile or EPDM gaskets. The lack of swelling maintains dimensional stability but also removes the self-sealing swell response that some elastomeric gaskets provide in water service. Mechanical compression, rather than media absorption, must generate the seal.
Chesterton 850 Premium Sealing Tape is resistant to aqueous mineral acids, alkalis, aliphatic and aromatic solvents, chlorinated organics, and oxidizing media within the stated temperature window. The material is not recommended for molten alkali metals, elemental fluorine gas, chlorine trifluoride, or other strong fluorinating agents because reaction with the polymer matrix becomes significant above 150 °C. In hydrofluoric acid service up to 90 °C, PTFE has shown acceptable inertness in standard immersion testing under ASTM D543; however, the adhesive backing is not part of the chemical barrier and may soften under prolonged contact with ketones or esters. For those duties, the adhesive layer is removed or shielded by a full-width PTFE overlap.
Oxygen service is restricted to low-pressure, low-temperature conditions. Published data for this specific configuration is limited; in high-pressure gaseous oxygen systems above 20 bar, adiabatic compression within the porous expanded PTFE structure may generate localized temperatures sufficient for ignition. A separate oxygen-compatible sealing product should be selected when oxygen purity exceeds 99.5% or when flow velocity exceeds 30 m/s. The evaluation of nonmetallic materials in oxygen-enriched environments is guided by ASTM G63 and ASTM G88.
| Standard or regulation | Scope | Applicable status |
|---|---|---|
| FDA 21 CFR 177.1550 | PTFE as a food-contact component | Applicable to the PTFE matrix when supported by manufacturer declaration |
| USP Class VI | Plastic material biological reactivity | Applicable to non-porous PTFE film form |
| EU 1935/2004 | Materials intended for food contact | Compliant subject to supporting declaration |
| REACH | Registration, evaluation, authorisation of chemicals | No SVHC above 0.1% w/w |
| RoHS 2011/65/EU | Restriction of hazardous substances | No restricted substance over threshold |
The adhesive carrier film is not intended for direct food contact, and the adhesive side should be oriented away from the product stream. In pharmaceutical split-body pumps, the tape is installed so that only the non-adhesive PTFE edge is exposed to the process fluid. Vacuum service below 1 mbar absolute requires a continuous PTFE butt joint with no exposed adhesive because outgassing of the adhesive layer can degrade chamber pressure. Storage of rolled tape should avoid direct sunlight and temperatures above 30 °C to prevent adhesive transfer. The product has no specific shelf-life limit when the release liner remains intact.