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Skyguard®Water & Oil Repellent

Skyguard®Water & Oil Repellent

Advanced Water & Oil Repellent Treatments

 

Our Water and Oil Repellent Treatments provide superior protection against water, oil, and stains, ensuring your fabrics stay dry and clean for longer. In line with the growing trend toward sustainability, we offer fluorine-free repellent agents, compliant with the latest EU regulations. As part of our commitment to innovation, our dedicated engineering team has been working tirelessly to develop eco-friendly solutions that not only meet environmental standards but also deliver outstanding water and oil repellency.

Superior Repellency – Highly effective protection against water, oil, and stains, enhancing fabric durability.

Water Repellent Finish in Textile

Fluorine-Free – A future-forward solution, meeting the latest EU regulations and ensuring eco-friendly performance.

Ongoing R&D – Our expert engineers continually refine and develop cutting-edge repellent technologies to offer both sustainability and superior functionality.

Versatile Applications – Ideal for a wide range of textiles, including outdoor gear, sportswear, and upholstery.

Breathable & Durable – Retains fabric breathability while offering long-lasting repellency through multiple washes.

Embrace the future of textile protection with our advanced, sustainable, and high-performance water and oil repellent treatments, backed by ongoing innovation from our engineering team.

Skyguard®Water & Oil Repellent

NO.

Product Name

Basic Character

Application

Reference Dosage

01

Sylic FU5358 Fluoride-free Waterproofing Agent

Milky white - light yellow liquid Solid content: 20%±1% PH (original solution): 4-6 Weak Cationic

Suitable for all kinds of chemical fiber, pure cotton, blended fabric waterproof finishing. PFOA- and PFOS-free.

Recommended dosage: 30-60g/L.

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Technical Service

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+86-15267084488

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C6 vs fluorine-free DWR: what is the difference?

The key distinction is surface energy chemistry:

  • C6 DWR: short-chain fluorinated side chains reduce fiber surface energy to approximately 12 mJ/m², below the surface tension of most oils and water, enabling both water and oil repellency
  • Fluorine-free DWR: dendrimer, wax, or polyurethane-based chemistry achieves surface energies of around 20–25 mJ/m², sufficient to repel water but generally not oils — making oil repellency a practical limitation of fluorine-free systems

Fluorine-free alternatives meet EU REACH and ZDHC MRSL requirements increasingly mandated by outdoor and sportswear brands.

How does a crosslinking agent improve DWR wash durability?

DWR polymers deposited during padding are held by physical adsorption, which weakens progressively under laundering agitation and detergent penetration. A crosslinking agent improves durability through two mechanisms: it crosslinks DWR polymer chains to each other, increasing the film’s internal cohesive strength, and forms covalent bonds between the polymer network and reactive groups on the fiber surface. Together these convert a physically adsorbed coating into a chemically anchored system with significantly better wash resistance.

Why is C8 DWR restricted while C6 remains in use?

C8 fluorotelomer DWR degrades in the environment to PFOA (perfluorooctanoic acid) and related long-chain perfluorinated carboxylic acids, which are persistent, bioaccumulative, and toxic. These are restricted under:

  • EU REACH Annex XVII: restricts PFOA and related substances in textiles
  • Stockholm Convention: lists PFOS (from C8 sulfonyl fluoride chemistry) as a persistent organic pollutant

C6 DWR degrades to shorter-chain perfluorohexanoic acid (PFHxA) with lower bioaccumulation potential, placing it outside current bans. However, growing regulatory pressure on all PFAS as a class is accelerating the shift to fluorine-free alternatives.

Does DWR finishing affect fabric breathability?

Standard DWR coats individual fiber surfaces rather than filling the pore spaces between yarn bundles. Water droplets bead off before entering inter-yarn pores, while moisture vapor continues to diffuse through them, preserving breathability. Two process-side factors can reduce moisture vapor transmission rate: applying DWR at excessive concentration, which risks partially blocking inter-yarn porosity through over-deposition, and insufficient bath homogeneity, which causes localized high-concentration zones across fabric width. Both are controlled through accurate dosing and padding uniformity.

What does anti-siphonage performance mean in DWR finishing?

Siphonage occurs when water is drawn through fabric by capillary action along yarn bundles, even when the outer surface initially repels water. Anti-siphonage performance measures resistance to this pressure-driven penetration, assessed by tests including AATCC-35 (rain test) and ISO 9865 (hydrostatic pressure). Strong anti-siphonage is critical for workwear and outdoor shell fabrics where sustained rain or water pressure must be resisted without through-fabric penetration at seams or high-tension zones.

What curing conditions does DWR finishing require?

DWR finishes applied by padding require heat curing to develop full repellency and fiber bonding. Required temperatures differ by chemistry:

  • Fluorocarbon (C6) DWR: typically 150–160°C for 60–90 seconds on a stenter frame
  • Fluorine-free DWR: generally requires 160–180°C to fully activate polymer film formation, as non-fluorinated systems have higher energy demands for crosslinking

Undercuring from insufficient temperature or dwell time is the most common cause of poor initial spray ratings. When a crosslinking agent is included, accurate stenter temperature control across full fabric width activates both systems simultaneously.

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