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Anhui Liwei Chemical Co., Limited.

Wanwei PVA 19-99 (H) (PVA 100-30)

    Spesifikasyonlar
    HS Kodu 166897
    ürün Adı Wanwei PVA 19-99 (H) (PVA 100-30)
    Cas Numarası 9002-89-5
    Kimyasal Formül (C2H4O) n
    Dış Görünüş Beyaz granül toz
    Ortalama Polimerizasyon Derecesi 1900
    Hidroliz Derecesi 99.0-100.0 mol%
    Viskozite 4pct Su çözüm 20c 30.0 ± 3.0 mPa · s
    Ph Değer 4pct Su çözüm 5.0-7.0
    Uçucu Içerik ≤%5,0
    Kül Içeriği ≤%0,5
    Ortalama Moleküler Ağırlık ~ 83.000
    Yoğunluk 1.25-1.35 g /cm³
    Erime Noktası 220-240 ° C
    Çözünürlük 90 ° C'nin üzerinde sıcak suda çözünür; Ortak organik çözücülerde çözünmez
    Termal Bozunma Sıcaklığı ~ 200 ° C

    Akrediteli bir Wanwei PVA 19-99 (H) (PVA 100-30) fabrikası olarak, sıkı kalite protokolleri uyguluyoruz - her seri tutarlı etkinlik ve güvenlik standartlarını sağlamak için sıkı testlerden geçiyor.

    Paketleme ve Depolama
    Paketleme Wanwei PVA 19-99 (H) (PVA 100-30) iç plastik astarlı 25 kg çoklu duvarlı kağıt torbalarda paketlenmiştir.
    Konteyner Yükleme (20' FCL) Wanwei PVA 19-99 (H) 20 'FCL konteyner yüklemesi, uygun ambalaj ve havalandırma ile güvenli, verimli taşıma sağlar.
    Nakliye Tehlikeli olmayan, suda çözünür polivinil alkol tozu olarak gemi. Kapalı nem geçirmez torbalara veya davullara paket edin, sonra temiz, kuru kaplara yerleştirin. Yağmur, nem ve doğrudan ısıya maruz kalmaktan kaçının. Ateşme kaynaklarından ve uyumsuz malzemelerden uzak durun. Toz oluşumunu önlemek ve istikrarlı depolama sağlamak için hafifçe tutun.
    Depolama Wanwei PVA 19-99 (H) serin, kuru, iyi havalandırılmış bir alanda, ısıdan, açık alevlerden, doğrudan güneş ışığından ve uyumsuz malzemelerden uzakta saklayın. Nem emilmesini ve toz oluşumunu önlemek için konteynerleri sıkıca mühürleyin. Havadaki toz oluşturmaktan kaçının; Uygun kullanım kontrollerini kullanın. Ürün kalitesini korumak ve kaplamayı önlemek için orta nem ve istikrarlı sıcaklıkları koruyun.
    Raf ömrü Raf ömrü, nemden uzak serin, kuru bir yerde mühürlenmiş saklandığında genellikle 2 yıldır.
    Wanwei PVA 19-99 (H) (PVA 100-30) Uygulaması
    Ücretsiz Alıntı

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    Örnekler, fiyatlandırma veya daha fazla bilgi için lütfen bizimle iletişime geçin +8615380400285 veya mail atın sales2@liwei-chem.com.

    Size en kısa sürede cevap vereceğiz.

    Tel: +8615380400285

    E-posta: sales2@liwei-chem.com

    Soruşturma

    Ücretsiz fiyat teklifi alınAnhui Liwei Chemical Co., Limited.

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    Sertifikasyon ve Uyumluluk
    Daha fazla tanıtım

    The Wanwei PVA 19-99(H) grade, also designated PVA 100-30 within the manufacturer’s internal nomenclature, is a fully hydrolyzed polyvinyl alcohol resin with a nominal viscosity of 28.0–32.0 mPa·s measured as a 4% aqueous solution at 20°C per DIN 53015. The degree of hydrolysis is controlled to 99.0–100.0 mol%, confirmed by ISO 15023-2 titration. Ash content, predominantly sodium acetate remnant from the saponification process, does not exceed 0.5 wt% (ISO 3451-1), while residual methanol and other volatiles are held below 5.0 wt%. The powder morphology is granular, with a particle size distribution optimized for hopper-fed dissolution systems: ≥95% retention on a 40-mesh screen and ≤1% through a 200-mesh screen, minimizing dust formation during pneumatic conveying.

    How Does 19-99(H) Differ from Standard Low-Viscosity Partially Hydrolyzed Grades?

    Property 19-99(H) /PVA 100-30 17-99 (PVA 080-30) 24-99 (PVA 130-30) Test Method
    Viscosity (4% aq., 20°C) 28.0–32.0 mPa·s 17.0–23.0 mPa·s 34.0–40.0 mPa·s DIN 53015
    Hydrolysis degree 99.0–100.0 mol% 99.0–100.0 mol% 99.0–100.0 mol% ISO 15023-2
    Ash content ≤0.5 wt% ≤0.5 wt% ≤0.5 wt% ISO 3451-1
    Film tensile strength 50–65 MPa 40–55 MPa 55–70 MPa ASTM D882-18
    Aqueous solution gelation Strong thermoreversible gel upon cooling below 30°C Moderate gelation, weaker network Very firm gel, high structural recovery Dynamic oscillatory measurement
    Dissolution temperature (full solubilization) ≥92°C under mechanical agitation ≥90°C ≥94°C

    The intermediate molecular weight of 19-99(H) places it in a processing corridor where film toughness exceeds that of 17-99 without incurring the viscosity-driven mixing torque spikes observed with 24-99 in high-solids adhesive batch kettles. The high hydrolysis level imparts near-complete water resistance to the final dry film, a property not achievable with partially hydrolyzed grades such as 17-88 (PVA 088-20) that retain hydrophilicity at room temperature. However, the fully hydrolyzed structure severely retards dissolution kinetics; attempts to cold-water swell the powder prior to cooking demand rigorous temperature ramping to avoid gel-particle “fisheye” defects that persist in downstream slot-die coatings.

    In hot-melt adhesive formulations for paperboard lamination applied via slot-die at coating speeds of 150–250 m/min, substitution of 17-99 with 19-99(H) at equivalent solution concentration (15–20 wt% solids) raises the dynamic lap-shear adhesion to recycled linerboard by approximately 12–18% at 23°C and 50% RH, measured per ASTM D3163-01. The gain is attributed to higher cohesive strength and reduced interfacial failure under peel loading. On a Nordson ProBlue® melt-on-demand system operating at a barrel setpoint of 85°C, the viscosity increase relative to 17-99 is 18–22%, which remains within the pump’s maximum backpressure threshold of 80 bar provided the delivery hose is insulated to maintain solution temperature above 70°C. A processing conflict arises when the binder-to-filler ratio in the adhesive compound exceeds 1:0.7 by dry weight: the higher molecular weight amplifies filler sedimentation in the holding tank, necessitating continuous recirculation or the addition of 0.1–0.3 wt% xanthan gum to maintain suspension. Published data for this specific configuration with calcium carbonate fillers and 19-99(H) is limited, but site reports from a corrugated box plant indicate that batch-to-batch viscosity variation beyond ±0.5 mPa·s causes detectable coat weight drift exceeding ±1.2 g/m² when no in-line viscometer feedback control is installed.

    Processing Window and Rheological Considerations

    Optimal dissolution of 19-99(H) for industrial coating require a cook temperature of 92–95°C sustained for 30–45 minutes under high-shear dispersion generated by a rotor-stator mixer with a tip speed of 15–20 m/s. The powder must be fed gradually at a rate not exceeding 0.3 kg/min per 100 L of heated water to prevent lump agglomeration. At ambient relative humidity exceeding 60%, the material absorbs moisture within 4 hours of exposure, shifting the measured volatiles above 5.0 wt%; this condition promotes arching in loss-in-weight feeders and is mitigated by pre-drying the resin in a fluidized-bed dryer at 55°C for 2 hours prior to use. When utilizing a ZSK 25 mm twin-screw extruder (L/D 40:1) for reactive compounding with boron-based crosslinkers, the maximum recommended screw speed is 200 rpm to limit shear heating that could trigger incipient gelation in the transition zone, where localized melt temperature must remain below 75°C. Amine-based additives, including many alkanolamine corrosion inhibitors, must be avoided because they catalyze chain scission at processing temperatures, resulting in a 5–8% drop in solution viscosity after 24 hours of ageing at 40°C.

    In emulsion polymerization served as a protective colloid for vinyl acetate homopolymers, 19-99(H) imparts a higher degree of grafting than 17-99, evidenced by a reduction in surface tension of the resulting latex from 48 mN/m to 42 mN/m at 0.5% colloid concentration on monomer, measured by the Du Noüy ring method per ISO 304. The grafted layer thickness, as estimated from dynamic light scattering of washed latex particles, increases by 6–9 nm, improving steric stabilization and reducing coagulum formation during seed-stage polymerization. However, the larger hydrodynamic volume of the protective colloid fraction elevates the minimum film-forming temperature of the latex by 3–5°C relative to systems stabilized with 17-99, which may necessitate the addition of 2–4 wt% of a coalescing solvent such as butyl carbitol to achieve continuous film formation at 5°C per ASTM D2354-10.

    When This Grade Replaces 24-99 in Textile Size Formulations

    Replacement scenarios demand careful adjustment of size box viscosity. In a cotton-polyester blend slashing operation running at 60 m/min with a size box target viscosity of 11–13 mPa·s (measured by ISO 12058-1 falling ball viscometer at 80°C), shifting from 24-99 to 19-99(H) allows a reduction in size add-on from 12.5% to 10.8% while maintaining equivalent weaving efficiency because the lower solution viscosity improves penetration into the yarn bundle, reducing surface layering that causes shedding. Abrasion resistance of the sized yarn, determined by a Shirley tester under 300 cycles of reciprocating abrasion, drops by 7–10% compared to 24-99, which is counterbalanced by a 12% improvement in elongation at break of the size film, preventing brittle fracture during loom shedding. In split-cylinder drying at 120°C cylinder surface temperature, the faster water release from the lower-viscosity size reduces energy consumption by roughly 6% per meter of woven fabric. A documented failure mode occurs when the size recipe includes a high fraction of oxidized starch: the molecular weight difference between 19-99(H) and 24-99 amplifies phase separation in the mixed paste, leading to skin formation on the size box surface after 20 minutes of quiescent holding. This is suppressed by maintaining continuous circulation and limiting temperature hold time to 15 minutes.

    Warp Sizing of Fine-Count Polyester Filament – Operational Boundaries

    For filament yarns with a denier below 75D, 19-99(H) provides a balance of film flexibility and adhesion to PET substrates without requiring a plasticizer. The size film, cast from a 7 wt% solution and dried at 105°C, exhibits a Young’s modulus of 3.2–3.8 GPa (ASTM D882-18), sufficient to resist yarn flattening under warp tension exceeding 0.22 cN/dtex. Processing limitations emerge when the size liquor temperature falls below 78°C inside the box: the solution transitions into a weak gel state that unevenly coats the filaments, causing periodic tension spikes detectable on the in-line tensiometer. Published data for this specific configuration is limited, but mill records from a flat-yarn weaving plant indicate that molecular weight variation between production lots must stay within ±1.5% of the target intrinsic viscosity to maintain a ≤2% warp break rate at loom speeds of 550 picks/min.

    In architectural coatings formulated with kaolin and titanium dioxide, 19-99(H) is used as a sacrificial barrier coating on masking tapes. The product is cast into a 12 μm film via a comma coater on creped paper substrates. Wetting of heavily plasticized liners presents a transient defect: surface defects count increases by 0.3 per m² for each 1°C drop in coating solution temperature below 70°C due to viscosity buildup at the metering gap. Pre-heating the backing paper to 38°C with infrared panels stabilizes the contact angle below 30° and eliminates ribbing. Tests according to FINAT FTM-1 show 180° peel adhesion to stainless steel of 3.5–4.2 N/25 mm, essentially identical to values obtained with 17-99, but with a reduction in edge ooze after 7 days at 50°C from 2.1 mm to 0.9 mm, a critical parameter for die-cut label stock. This improvement is attributed to the higher storage modulus of the fully hydrolyzed film above its glass transition temperature, measured by DMA at 1 Hz to be 2.8 GPa at 120°C. Interaction with residual acetic acid emanating from polyolefin facestocks is negligible at pH 5–7, but at pH below 4.0 the film undergoes a 3% mass loss over 30 days due to acid-catalyzed hydrolysis, a limitation shared by all fully hydrolyzed PVA grades and confirmed by immersion testing per ISO 175:2010.

    Specification Parameter Typical Value Analytical Standard
    Viscosity (4% aq., 20°C) 28.0–32.0 mPa·s DIN 53015
    Degree of hydrolysis 99.0–100.0 mol% ISO 15023-2
    pH (4% solution) 5.0–7.0 ISO 976
    Ash content ≤0.5% ISO 3451-1
    Volatiles ≤5.0% ISO 15512
    Screen residue (>40 mesh) ≥95%
    Acetyl content ≤0.15% ISO 1157

    The grade’s sensitivity to metal salt contamination is pronounced: iron content above 10 ppm catalyzes oxidative chain scission during solution storage at elevated temperature, evidenced by a loss of 0.8 mPa·s per day at 60°C. Consequently, dissolution vessels and storage tanks must be constructed of SS316L or lined with glass-frit, and the water supply must be deionized to a conductivity below 5 µS/cm. REACH and RoHS compliance is maintained under a supplier declaration; the product is listed under CAS 9002-89-5 with no reportable substances above the threshold of 0.1 wt%.

    For paper surface sizing with alkyl ketene dimer (AKD) emulsions, 19-99(H) elevates the Cobb60 water absorptiveness (ISO 535:2014) resistance at a lower binder consumption than 17-99. In mill trials on a twin-wire paper machine producing 90 g/m² linerboard, addition of 0.6 kg/ton dry PVA into the size press solution reduced Cobb60 values from 35 g/m² to 22 g/m², whereas 17-99 required 0.9 kg/ton to achieve the same level. The film-forming temperature at the size press nip, typically 65–70°C, must be maintained within ±3°C to prevent insoluble gel fragments from transferring to the sheet surface, a phenomenon that correlates with a rise in rejected reels by 4% for each 5°C deviation below the setpoint. This thermal sensitivity is sharper than the behavior of 17-99 and reflects the stronger hydrogen bond network that forms in the high-hydrolysis polymer as it cools through its upper critical solution temperature.