See how ultra-high molecular weight glyoxalated polyvinylamide and anionic polyacrylamide repla
See how a polyhydric alcohol and phosphate ester composition forms gel on paper to retain moist
See how chemical solution impregnation with moisturizing, oily, and vegetable powder components
See how high-NBKP fiber ratio and controlled surface curvature resolve the softness-strength tr
See how high NBKP content and controlled surface curvature resolve the tissue strength-versus-a
See how controlled basis weight, bulk, and moisture content enable moisturizing tissue to resis
See how controlled oily component addition and optimized water content achieve softness in high
See how 3-4 ply toilet paper with 80% softwood pulp and cationic softener resolves the contradi
See how controlled polyol and moisture content (8-15%, 18-30%) with optimized tensile strength
By tuning 2-ply basis weight and moisturizer content, this tissue structure stays soft yet resists bending during storage and pop-up dispensing.
See how controlled oily component and water content achieve high-grade tissue softness and smoo
See how a controlled glycerin and 1,3-propanediol ratio in tissue paper achieves moist and smoo
See how a cationic softener and high-MW polyhydroxy compound reduce tissue friction below 200g
See how a cationic softening compound with high molecular weight polyhydroxy compound reduces t
Covalent fiber crosslinking with low-molecular agents boosts wet and dry strength while preserving biodegradability in paper and non-woven webs.
Controlled chemical loading in two-ply tissue preserves softness and moistness while reducing stickiness and improving tear strength.
Controlled chemical loading and sheet thickness let two-ply moisturizing tissue stay soft and smooth while reducing stickiness and tearing.
Small-molecule fiber crosslinkers boost dry and wet tensile strength, even at extreme pH, while preserving biodegradable paper and non-woven webs.
Recovered foam is returned from the forming wire to the pulper to limit foam migration, maintain fiber distribution, and cut surfactant use.
An ionic liquid and protic antisolvent swell cellulose fibers into stable, low-viscosity dispersions without functionalization or structural damage.
Cross-linking ligno-cellulosic pulp fibers before low-temperature drying improves moisture resistance, strength, and recyclability for thermoforming.
A starch additive modified with chloroacetamide and glyoxal boosts paper wet and dry strength while reducing reliance on petroleum-based chemicals.
A discontinuous batch glyoxylation method controls polyacrylamide reaction progress through real-time viscosity measurement.
Polysaccharide binders with acid groups form complexes with amphoteric amines, enabling controlled disintegration in water to prevent pipe blockages.
Azido-modified nanofibrillar cellulose hydrogel enables covalent ligand conjugation via click chemistry for uniform biomolecule distribution.
A carrier formulation of polyvinyl alcohol, glucomannan, carboxymethyl cellulose, and sorbitol enhances optical brightener dispersion and cohesion.
Erucamide-coated paper transfers slip agent to contacting surfaces, eliminating polymeric films that compromise re-pulpability and recyclability.
A softener composition combines acidic material with aldehyde functionalized polymers to enhance paper wet strength.
Microfibrillated cellulose binds surface active agents in white water to form separable complexes for controlled recycling.
Integrating color formers into the paper body eliminates secondary printing steps while producing high-quality multi-color and black marks.
Multi-layered tissue product combines hardwood kraft fibers and binder to balance softness and strength while reducing production costs.
Urea reduces aqueous paper coating slip viscosity, allowing higher solids content that cuts drying energy.
Gaussian distribution calculations subtract overlapping light contributions from nearby particles to resolve measurement errors.
Two-stage on-site production stabilizes concentrated glyoxalated polyacrylamide prepolymers, reducing storage costs while maintaining paper strength.
Electric field alignment creates directional conductive pathways in cellulose, reducing filler load and stiffness.
A layered absorbent paper product uses a bonding layer to attach a second fiber network oriented in the Z-direction to a first machine-direction network.
Optimizing binder viscosity to over 500 mPas balances mechanical strength against disintegration speed, preventing sewage blockages.
A curable aqueous binder combines polyvinyl alcohol with a multifunctional crosslinking agent to form rigid thermoset polymers.
High-melting fluorescent whitener maintains whiteness during high-temperature heating that would otherwise degrade color quality in molded bodies.
Buffered aqueous pre-mix stabilizes low-glyoxal polyacrylamide, reducing transport costs and safety risks during paperboard dry strength production.
Pretreated blue anthraquinone pigment dispersion enhances color filter transmittance through controlled particle sizing and binder integration.
Metathesized unsaturated polyol esters replace quaternary ammonium compounds to eliminate narrow pH formulation windows and high processing costs.
Porous starch foam and cellulose fiber form a recyclable composite that reduces bulkiness while maintaining thermal resistance.
A water-based latex binder prepared by emulsion polymerization entraps optical brighteners within the polymer matrix.
Polyamidoamine-epihalohydrin resin formulations boost dry and wet strength in paper products.
A polyamine resin treatment system enhances cellulosic fiber strength through chemical bonding mechanisms.