Water retention in sandy substrates modified by cross‐linked polymeric microgels and their complexes with a linear cationic polymer

New synthetic soil conditioners for anti‐erosion protection of soils in the form of microgel copolymers of N‐isopropylacrylamide and acrylic acid (PAA#) and their interpolyelectrolyte complexes (IPEC#) with different surface charges are tested for optimization of water retention and porous structure...

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Veröffentlicht in:Journal of applied polymer science 2021-08, Vol.138 (31), p.n/a
Hauptverfasser: Smagin, Andrey, Panova, Irina, Ilyasov, Leonid, Ogawa, Kazuyoshi, Adachi, Yasuhisa, Yaroslavov, Alexander
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container_issue 31
container_start_page
container_title Journal of applied polymer science
container_volume 138
creator Smagin, Andrey
Panova, Irina
Ilyasov, Leonid
Ogawa, Kazuyoshi
Adachi, Yasuhisa
Yaroslavov, Alexander
description New synthetic soil conditioners for anti‐erosion protection of soils in the form of microgel copolymers of N‐isopropylacrylamide and acrylic acid (PAA#) and their interpolyelectrolyte complexes (IPEC#) with different surface charges are tested for optimization of water retention and porous structure in two samples of soil substrates. Water retention curves (WRCs) are used as a fundamental thermodynamic indicator of water holding capacity in soil substrates treated by new polymeric materials. Soil‐hydrological constants, as well as specific surface parameters and pore distribution curves are calculated from the WRCs using the van Genuhten model and the Voronin method in the author's modification. PAA# and anionic IPEC# with high swelling degree at a dose of 1% (by weight) increase field water capacity, available soil water range and specific surface area by 5–6 times for quartz sand, along with reorganizing its structure towards micropore dominance. For loamy sand, the same treatment was less effective with a twofold increase in field moisture capacity, double or triple increase of specific surface area, and an almost constant range of available soil water due to the strong increase of wilting point parameter. Weakly swelling linear polyacrylic acid and cationic IPEC# did not significantly affect properties of both mineral substrates. New soil conditioners, cross‐linked polycomplexes, form microgels in water solution. A method for testing the water‐retaining properties of microgels in soil is described. Microgel and its negative complex have a high ability to retain water in sand/soil, however, cationic complex and linear polymer analogue do not affect the water retention by sand/soil.
doi_str_mv 10.1002/app.50754
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Water retention curves (WRCs) are used as a fundamental thermodynamic indicator of water holding capacity in soil substrates treated by new polymeric materials. Soil‐hydrological constants, as well as specific surface parameters and pore distribution curves are calculated from the WRCs using the van Genuhten model and the Voronin method in the author's modification. PAA# and anionic IPEC# with high swelling degree at a dose of 1% (by weight) increase field water capacity, available soil water range and specific surface area by 5–6 times for quartz sand, along with reorganizing its structure towards micropore dominance. For loamy sand, the same treatment was less effective with a twofold increase in field moisture capacity, double or triple increase of specific surface area, and an almost constant range of available soil water due to the strong increase of wilting point parameter. Weakly swelling linear polyacrylic acid and cationic IPEC# did not significantly affect properties of both mineral substrates. New soil conditioners, cross‐linked polycomplexes, form microgels in water solution. A method for testing the water‐retaining properties of microgels in soil is described. 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subjects applications
Cationic polymerization
Copolymers
Hydrology
hydrophilic polymers
Isopropylacrylamide
Materials science
Microgels
Optimization
Parameters
Polyacrylic acid
Polymers
Retention
Sand
Soil conditions
Soil erosion
Soil water
Specific surface
Substrates
Surface area
Swelling
theory and modeling
title Water retention in sandy substrates modified by cross‐linked polymeric microgels and their complexes with a linear cationic polymer
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