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Born2Bond™ Structural is a patent-pending, high-strength hybrid adhesive that provides a fast fixture time at room temperature while maintaining good processability and bond gaps up to 5mm.

This product offers excellent bonding characteristics to a large variety of closed substrates, such as aluminum, steel, plastics and elastomers as well as porous substrates, such as woods, chipboard and leather. Born2Bond ™  Structural is formulated for applications that require mechanical and in-use environmental resistance.

Details of the Born2Bond™ Structural reference:

/EN Structural Bostik Born2Bond

Features:

  • Fixture time in 30 seconds
  • High adhesion strength: > 6 MPa after 5 minutes
  • Open time of 25 minutes
  • Fills gaps up to 5mm
  • Excellent adhesion to many different substrates
  • Transparent when cured
  • Temperature and humidity resistance

    • Structural - Cyanoacrylate adhesive Bostik Born2Bond™
    • Structural bonding
    • Magnet bonding
    • Plastic to metal bonding
    • Bonding glass to leather
    • Gel consistency for precise application

    Download

    Born2Bond™ - Prebonding Cleaner )

    Technical datasheet: Prebonding Cleaner by Born2Bond™


    Born2Bond™ - Booster )

    Technical datasheet: Booster by Born2Bond™


    Catalogue - Instant Adhesive )

    Catalogue - Bostik BornBond - Instant Adhesive


    Catalogue - Anaerobic Adhesive )

    Catalogue - Bostik BornBond - Anaerobic Adhesive


    Catalogue - UV Adhesive )

    Catalogue - Bostik BornBond - UV Adhesive


      Ceramic cement or high-temperature epoxy resin: which adhesive should I choose for a given application?

      The choice depends mainly on the temperature and the mechanical stresses. Final Advanced Materials' high-temperature epoxy resins are generally limited to between 150 and 350°C, with satisfactory mechanical resistance (typical sheer-stress 10–30 MPa) and a degree of elasticity. However, the ceramic cements produced by Final Advanced Materials can be used up to 2,200°C, depending on the grade (alumina, zirconia, silicate, silica). They have excellent temperature resistance, but remain fragile (brittle behaviour, no elasticity). In the case of assemblies subject to differential expansion or vibration, epoxy is by far the preferred solution, if permitted by the maximum temperature of the application. However, in the case of extreme environments (kiln, vacuum, reducing atmosphere) which exceed 350°C, ceramic cement must be chosen.


      What is the maximum working temperature of bonding ceramic cements?

      The ceramic cements distributed by Final Advanced Materials have maximum working temperatures ranging between 650°C and 2,200°C. For example, alumina-based formulations often reach 1,650–1,760°C in an oxidising atmosphere. However, silicate systems are limited to around 1,000–1,200°C. The real maximum working temperature depends greatly on the environment (air, vacuum, inert gas), the time of exposure to this temperature and the thermal cycle (gradient, thermal shock). Specifically: the metal-loaded ceramic adhesives produced by Final Advanced Materials resist only up to the maximum temperature of the filler (650°C, for example, in the case of aluminium powder).


      Which high-performance adhesive should I use to bond ceramic to metal?

      Ceramic/metal assemblies require often very different coefficients of thermal expansion (CTE) to be controlled. Final Advanced Materials recommends alumina-, silica- or zirconia-based ceramic cements for temperatures >350°C, which can bond to all types of ceramics and, generally, metals. For intermediate applications (≤350°C), an epoxy resin loaded with alumina powder enables thermal stresses to be absorbed and will be very compatible with different expansion coefficients. The thickness of the bond line must be between 100 and 300 µm to limit stress. Surface pre-treatment (sanding, degreasing, etc.) greatly improves adherence and is absolutely necessary if the CETs are very different.


      What are the curing and drying times of Cotronics technical adhesives?

      The Cotronics adhesives distributed by Final Advanced Materials have variable cycles.

      In the case of a cement, initial drying at ambient temperature takes between 2 to 24 h, depending on the viscosity and thickness. A thermal aftertreatment can be performed to allow them to attain their optimum properties after firing. Excessively rapid drying can lead to cracking or porosity in the cement.

      Final Advanced Materials' epoxy adhesives which resist up to 260°C must be cured at ambient temperature. Epoxy adhesives which resist up to over 300°C require heat curing.