Incure Epo-Weld™ UHB-200: High Tensile Strength Epoxy Adhesive

When a bonded joint has to survive drop shock, sustained vibration, and wide temperature swings without cracking at the bond line, a rigid structural epoxy is often the wrong tool. Incure Epo-Weld™ UHB-200 is built for exactly that gap. What UHB-200 is designed to do Epo-Weld™ UHB-200 is a two-part, rubber-modified structural epoxy in the Ultra High Bond family. The rubber phase toughens the cured matrix so the adhesive absorbs impact energy and damps vibration instead of transferring the full load into brittle substrates such as glass and ceramic. The result is a joint that keeps high lap shear strength while also delivering meaningful peel strength, which unmodified epoxies rarely provide. The adhesive maintains performance across a service range of roughly -53°C to 162°C (-55°F to 325°F) and resists a broad set of solvents, fuels, and dilute acids and bases. It bonds well to metals, glass, and technical ceramics such as alumina, making it a practical choice where dissimilar materials meet. Key properties and why they matter Combined shear and peel strength. A joint that is strong in shear but weak in peel fails at the edges when it flexes. The toughened chemistry in UHB-200 raises peel resistance so the bond line tolerates edge loading and prying. Shock and vibration absorption. The cured adhesive has enough elongation to move with the assembly, reducing fatigue cracking in components exposed to repetitive vibration. Wide thermal range. Coefficient of thermal expansion (CTE) differences between a metal housing and a ceramic or glass insert generate shear stress at every temperature change. A slightly compliant bond line spreads that stress instead of concentrating it. For background on this failure mechanism, see how CTE mismatch causes adhesive bond failure. Chemical resistance. Cured UHB-200 holds up to cleaning solvents, hydraulic fluids, and process chemistry that would soften weaker adhesives. Where UHB-200 fits Aerospace and defense: bonding sensor mounts, antenna elements, and structural brackets that see launch vibration and thermal cycling. Automotive and transportation: attaching glass and ceramic elements to metal frames where road vibration would fatigue a rigid bond. Electronics and semiconductor equipment: securing components and subassemblies that must survive handling shock during transport and installation. Industrial machinery: bonding wear parts, guards, and instrumentation housings on equipment that runs with continuous mechanical excitation. Scientific and test instrumentation: mounting optical and ceramic elements in analytical equipment where alignment must hold through temperature drift. Getting the joint design right UHB-200 performs best in a controlled bond line, typically 0.1 to 0.25 mm. A starved joint concentrates stress; an over-thick joint reduces shear strength and increases the effect of CTE mismatch. Where possible, design the joint to load the adhesive in shear or compression rather than peel or cleavage, and add a mechanical feature such as a shoulder or pin so the adhesive is not the only thing resisting movement. Have a joint geometry you are unsure about? Email Us with the substrate pair, the load case, and the temperature range, and we can point you to the right grade.…

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UV Adhesives for Bonding Flexible Tubing Sets and Fluid Connectors

A fluid-transfer set spends its working life being bent, coiled, tugged, and pressurized. The bonds where flexible tubing meets a rigid connector are where that abuse concentrates, so the adhesive has to stretch with the tubing instead of forming a hard, brittle collar that cracks. The flex-fatigue problem at a tube joint When a soft PVC or thermoplastic elastomer tube is bonded into a rigid polycarbonate or ABS fitting, there is an abrupt change in stiffness right at the edge of the bond. Every flex cycle puts a stress concentration there. A rigid, high-modulus adhesive makes it worse by extending the stiff zone; the tube then fatigues and splits just past the connector. An adhesive with high elongation and a lower cured modulus spreads the bending strain over a longer length and moves with the tube. Incure's Cyro-Weld™ 5000-series includes grades formulated for this, with high elongation and good adhesion to flexible substrates, such as 5013VT and 5004F. They cure in seconds under UV or visible light, are formulated to meet ISO 10993-5, and are validated for EtO and Gamma sterilization. The very thixotropic VT grade holds its shape in the annular gap between tube and fitting rather than running out before cure. Where these adhesives are used Bonding flexible tubing into luer and barbed connectors Assembling drip chambers, spikes, and Y-sites in fluid-transfer sets Joining flexible and rigid sections of drainage and irrigation sets Bonding strain-relief boots and grommets to cable and tube exits Sealing flexible bladder and reservoir components to rigid ports All external, single-use fluid-handling components. Making the joint The tube-to-fitting joint is usually an annular gap a few tenths of a millimeter wide. The adhesive is applied to the fitting bore or the tube end, the parts are assembled to a stop, and the joint is cured through the translucent tube or fitting wall. Because at least one part is often clear, the cure light can reach the bond line directly; where a fitting is opaque, a visible-light-responsive grade or a secondary cure mechanism completes the bond. Incure's guidance on matching a spot-lamp light guide to reach and working distance and what a light guide does in a spot-lamp system covers curing these small, curved joints on a line. Surface preparation for flexible substrates Flexible PVC and elastomers carry mobile plasticizers and process oils that migrate to the surface. Wiping the tube end with a clean solvent immediately before bonding removes that weak boundary layer. Some elastomers also benefit from a brief plasma treatment. Incure's discussion of matching a plastic-bonding grade to the substrate and mechanical demand covers the trade-offs for soft substrates. Why elongation and CTE both matter A flexible-to-rigid joint is stressed two ways: mechanically, every time the set is handled, and thermally, whenever it warms or cools, because the soft tube and the rigid fitting expand at very different rates. Incure's explanation of how CTE mismatch causes bond failure covers the thermal side. A high-elongation adhesive absorbs both kinds of movement; a rigid…

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