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Anhui Liwei Chemical Co., Limited.

Sinopec PVA 097-70 için

    Spesifikasyonlar
    HS Kodu 130037
    Kimyasaladı polivinil alkol
    Cas Numarası 9002-89-5
    Moleküler Formül (CH2CHOH) n
    Dış Görünüş Beyaz granül /toz
    Koku Kokusuz
    Viskozite4yüzdeÇözüm20c 70.0 ± 5.0 mPa · s
    Phdeğeri 5.0 - 7.0
    Uçan İçerik ≤ %5,0
    Ashcontent In ≤ %0,5
    Yığın Yoğunluğu 0,4 - 0,6 g/cm³
    Parçacık Boyutu 20 - 80 örgü
    Çözünürlük Sıcak suda çözünür, organik çözücülerde çözünmez

    Sinopec PVA 097-70 için akredite edilmiş bir fabrika olarak, her seri tutarlı etkinlik ve güvenlik standartlarını sağlamak için katı kalite protokolleri uyguluyoruz.

    Paketleme ve Depolama
    Paketleme Güvenli taşıma için paletli ve stretch-wrapped, iç polietilen astarlı 25 kg çok duvarlı kağıt torbalarda tedarik edilir.
    Konteyner Yükleme (20' FCL) Sinopec PVA 097-70'in 20' FCL konteyner yüklemesi: Paletlerde 25 kg torba, güvenli ve havalandırılmış, güvenli taşıma sağlar.
    Nakliye Sinopec PVA 097-70, kuru, nem geçirmez ambalajlarda, genellikle paletlerde 25 kg kağıt torbalarda gönderilen bir polivinil alkol tozudur. Taşıma için tehlikeli değildir, ancak ısıdan, kıvılcımlardan ve nemden uzak tutulmalıdır. Temiz, kuru kaplar kullanın; Taşıma ve transit sırasında hasardan korunmak.
    Depolama Sinopec PVA 097-70'i doğrudan güneş ışığı, ısı ve ateşme kaynaklarından uzak serin, kuru, iyi havalandırılmış bir alanda saklayın. Nem emilmesini ve kirlenmeyi önlemek için konteynerleri sıkıca mühürleyin. Toz oluşturmaktan kaçının; Güçlü oksidatörlerden uzak durun. Orta sıcaklıkları koruyun ve ürün kalitesini korumak için ambalajı hasardan koruyun.
    Raf ömrü Raf ömrü, nemden uzak mühürlenen kuru, havalandırılmış bir alanda saklandığında genellikle üretimden itibaren 12 aydır.
    Sinopec PVA 097-70 için uygulama
    Ücretsiz Alıntı

    Bütçenize uygun rekabetçi Sinopec PVA 097-70 için fiyatlar - her sipariş için esnek şartlar ve özelleştirilmiş teklifler.

    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.

    Esnek ödeme seçenekleri, rekabetçi fiyatlar, üstün hizmet - Hemen bilgi alın!

    Sertifikasyon ve Uyumluluk
    Daha fazla tanıtım

    Sinopec PVA 097-70 is a fully hydrolyzed polyvinyl alcohol resin whose grade designation encodes primary performance indicators. The prefix 097 denotes a hydrolysis degree of 97.0–97.8 mol%, placing it in the high‑hydrolysis range where saponification of the parent polyvinyl acetate is nearly complete. The suffix 70 identifies the nominal viscosity of a 4% aqueous solution measured at 20 °C according to ISO 3105, with production lots typically falling within 65–75 mPa·s. This viscosity corresponds to a medium‑to‑high degree of polymerization—generally estimated in the range of 1700–1800—affording a balance between film strength and processability in downstream compounding. The product is supplied as free‑flowing, white‑to‑off‑white granular powder with a particle size distribution that facilitates dust‑reduced mechanical conveying in bulk‑handling systems. When compared to partially hydrolyzed grades such as 088‑50, the heightened acetate‑to‑hydroxyl conversion of 097‑70 increases intermolecular hydrogen‑bonding density, which raises crystalline melting range, reduces cold‑water solubility, and significantly alters the response to common crosslinking agents like borax. These structural differences directly govern the selection of 097‑70 for processes that demand high tensile modulus, low‑temperature water resistance after drying, and a wide solubility window only at elevated temperatures.

    Typical specification of Sinopec PVA 097‑70 (batch‑average data supplied by manufacturer)
    ParameterValueTest method
    Hydrolysis degree97.0–97.8 mol%ISO 15023‑2 (back‑titration)
    Viscosity (4 % aqueous, 20 °C)65–75 mPa·sISO 3105 (Brookfield LV, spindle 1, 60 rpm)
    Volatile matter5.0 %ISO 3251 (105 °C, 3 h)
    Ash (as Na₂O)0.5 %ISO 3451‑1
    pH (4 % solution, 25 °C)5.0–7.0ISO 976
    Methanol content1.0 %Gas chromatography

    What Roles Do Volatile Content and Ash Residue Play in Multifilament Sizing?

    In high‑speed air‑jet weaving where shed‑cycle frequencies exceed 800 min⁻¹, size films drawn from 097‑70 must simultaneously satisfy conflicting requirements: sufficient abrasion resistance to survive oscillating harness wires and quantitative removability in mild enzymatic desizing baths. Residual volatiles and sodium acetate ash—carried over from the alcoholysis step—act as internal plasticizers during film casting on warp yarns, directly influencing the film’s glass‑transition dynamics and elongation at break. Data acquired on industrial slasher dyeing‑sizing ranges with a cylinder‑dryer configuration (contact temperature 120–130 °C, speed 60–80 m/min) show that when volatile content exceeds 4.8 %, the size film retains excess free moisture that depresses quickset point and produces sticky warp sheets under high‑humidity weave‑room conditions (>70 % RH). Conversely, ash levels above 0.4 % as Na₂O correlate with a measurable drop in film tensile strength after oven drying at 110 °C, attributed to hydrolytic chain scission catalysed by alkaline residues. Acceptable machine runnability on multi‑width projectile looms is therefore observed only within a narrow as‑supplied ash window of 0.25–0.40 %.

    Cooking regimens for the size mix are critical: a 10–12 % solids solution prepared in a jet cooker must reach a hold temperature of 92–95 °C under moderate shear (agitator tip speed 2.5–3.0 m/s) for at least 30 min to fully disrupt residual crystalline domains. If the peak temperature drops below 90 °C, micro‑gel particles persist and create point loading on filaments during the splitting zone, raising end‑break counts per 10⁵ m of woven fabric by a factor of 2–3. At the opposite extreme, prolonged exposure above 98 °C accelerates thermal‑oxidative chain cleavage, evidenced by an irreversible reduction in the size solution’s Newtonian viscosity plateau from approximately 70 mPa·s to below 50 mPa·s. A viscosity decay exceeding 15 % during a 60‑min holding period is regarded as a batch failure because the film‑forming capacity on polyester‑cotton blends becomes insufficient to meet the minimum size add‑on of 8 % owf. Desizing tests conducted with α‑amylase‑based formulations at 60 °C and pH 6.5 confirm that the tightly hydrogen‑bonded polyvinyl alcohol film from 097‑70 requires a pre‑swell stage in hot water (85 °C, 5 min) to achieve a residual size content below 0.15 % owf on the greige fabric, whereas partially hydrolysed grades may be removed without pre‑swelling. This characteristic, together with the film strength data, governs the choice of 097‑70 in warp sizing of high‑twist ring‑spun yarns destined for industrial workwear.

    In emulsion‑based adhesive formulations for wood veneer lamination, 097‑70 is dispersed as a 12–15 % aqueous pre‑gel and combined with vinyl acetate‑ethylene (VAE) copolymer dispersion to create a rheology‑stabilised adhesive that meets the D3 durability class under EN 204. The high hydrolysis degree of the polyvinyl alcohol phase renders the blend resistant to gelation when borax is added as a tack‑modifying agent, because fully saponified grades contain insufficient 1,2‑diol sequences to form a sustainable crosslinked network with borate ions. This behaviour is the reverse of that observed with partially hydrolysed grades such as 088‑50, where 0.3–0.5 parts of borax per hundred parts of wet adhesive rapidly induce a viscosity spike and a transition from shear‑thinning to thixotropic solid. The absence of such a gel‑point in 097‑70‑containing mixes extends open assembly time to 12–15 min at 23 °C and 55 % RH, a critical parameter for multi‑layer press loading in cross‑bonded door‑skin manufacturing. The compounded adhesive, when applied at a coating weight of 120–150 g/m² and cold‑pressed at 0.8–1.0 MPa for 30 min, yields lap‑shear strengths on beech veneer exceeding 5.0 N/mm² after 7‑day conditioning at standard atmosphere per ISO 554. However, the same high hydroxyl content that imparts cohesive strength also makes the dried film susceptible to moisture ingress. At equilibrium relative humidity above 85 %, the adhesive film absorbs up to 15 % water, causing a reversible loss in shear modulus by approximately 40 %. Inventory management therefore dictates that 097‑70 powder is stored in vapour‑proof packaging; exposure to ambient air at >60 % RH for more than 48 h leads to particle agglomeration and caking that cannot be reversed by gentle mechanical attrition without introducing frictional heat and local degradation.

    When Alkaline Paper Coating Formulations Demand Controlled Water Retention

    Pigmented coatings for folding boxboard employing precipitated calcium carbonate (PCC) and ground calcium carbonate (GCC) blends at 80:20 ratio operate at high pH (8.5–9.5) where conventional starch‑based co‑binders lose viscosity stability through alkaline hydrolysis. 097‑70 is introduced at 2–5 parts per hundred parts of pigment as a dual‑functionality additive: it acts as a protective colloid that disperses the pigment slurry and as a film‑forming binder that raises the surface strength of the coated board, assessed by the IGT pick test in accordance with ISO 3783. The highly hydrolysed PVA chain associates strongly with the carbonate surface via hydrogen bonding, forming a structured liquid phase that elevates the low‑shear Brookfield viscosity (spindle 4, 100 rpm) from 800–900 mPa·s to 1400–1600 mPa·s at a solids content of 65 %. This thickening is sufficient to prevent migration of the soluble binder phase into the baseboard during meter‑bar application, thereby conserving coat‑weight uniformity within ±1.5 g/m² across a reel width of 2.4 m. Rheometric oscillatory scans confirm that the storage modulus G′ in the linear viscoelastic region increases by a factor of 2.5 when 097‑70 replaces a low‑hydrolysis PVA of equivalent solution viscosity, a difference attributable to the greater network density developed during drying under an infrared‑airfoil hood operating at 140–160 °C surface temperature. A process limitation arises if the coating colour is recirculated through a centrifugal screen (mesh 150 µm) at a volumetric flow rate exceeding 3 m³/h. The associated shear rate, of the order of 10⁴ s⁻¹, mechanically cleaves high‑molecular‑weight PVA chains over a 4‑h production shift, reducing the steady‑shear viscosity by 25–30 % and requiring real‑time binder top‑up. Because such irreversible shear degradation cannot be distinguished from dilution error through simple flow‑cup measurements, bottling plants typically install in‑line fast‑Fourier‑transform rheometers to flag a slope change in the phase angle at 10 rad/s that precedes out‑of‑specification coat weight variability.

    Film Crystallinity and Plasticizer Migration Resistance in Barrier Applications

    Films cast from 097‑70 develop a semicrystalline morphology with crystallinity indices in the range of 35–40 % as measured by differential scanning calorimetry at a heating rate of 10 K/min. The high crystalline fraction, which is the direct result of the near‑complete hydrolysis and the regular syndiotactic‑rich sequence distribution acquired during vinyl acetate polymerisation, provides a dense molecular network that impedes the permeation of small gas molecules. At 0 % RH and 23 °C, oxygen transmission rates through a 25 µm solution‑cast film typically fall in the range of 0.4–0.8 cm³/(m²·day·atm) when tested according to ASTM D3985, placing the material among the lowest‑permeability water‑soluble biopolymers. This property is leveraged in soluble inner‑package sachets for pre‑measured agrochemical powders, where the sachet must dissolve completely in a spray‑tank within 60 s at 15 °C water temperature while preventing moisture‑induced clumping of the contents during storage at 40 °C and 90 % RH. Attaining this dual‑function specification requires that the degree of hydrolysis remains above 96.5 mol%; a drop of 1–2 mol% increases the water‑vapour transmission rate by approximately 35 % and reduces low‑temperature dissolution speed because partially acetylated segments act as hydrophobic spots that shrink the water‑accessible free volume. Published data for this specific configuration in thin‑film geometries are limited, but industrial trials on horizontal form‑fill‑seal machines running at 60 cycles/min confirm that embrittlement becomes manifest when glycerol plasticiser loading falls below 8 phr, leading to pinhole formation at the transverse seal zone. Conversely, glycerol levels above 15 phr induce time‑dependent migration to the film surface under tropical storage conditions (38 °C, 85 % RH), causing blocking of nested sachets and requiring intermediate starch‑based dusting. The processing window for plasticiser content is therefore pinned between 10 and 13 phr, and inline monitoring of seal‑strength variability (coefficient of variation <5 % as per ASTM F88) serves as a practical early warning for drift in the glycerol:polyvinyl alcohol ratio.

    Comparative properties of selected Sinopec polyvinyl alcohol grades
    GradeHydrolysis (mol%)Viscosity¹ (mPa·s)Ash² (%)Volatiles (%)Typical function
    088-5087.0–89.045–550.55.0Borax‑crosslinked adhesives, cold‑water soluble films
    092-5091.0–93.047–550.45.0Emulsion stabiliser for vinyl acetate homopolymers
    097-7097.0–97.865–750.55.0Textile warp sizing, alkaline paper coatings, D3 wood adhesives
    100-7099.0–10065–750.44.5High‑barrier films, polarising‑film matrix
    ¹ Brookfield LV, 4 % aqueous, 20 °C; ² as Na₂O.