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Soil, land care and environmental research
RESEARCH ARTICLE

Infiltration and erosion in soils treated with dry PAM, of two molecular weights, and phosphogypsum

A. I. Mamedov A D , I. Shainberg B , L. E. Wagner A , D. N. Warrington C and G. J. Levy B
+ Author Affiliations
- Author Affiliations

A USDA-ARS-NPA-GMPRC-EWERU, Manhattan, KS 66502, USA.

B Agricultural Research Organisation, The Volcani Center, Institute of Soils and Water, PO Box 6, Bet-Dagan, Israel.

C State Key Laboratory of Soil Erosion and Dryland Farming on the Loess Plateau, CAS & MWR, Institute of Soil and Water Conservation, Yangling, Shaanxi Province 712100, China.

D Corresponding author. Email: amrakh@weru.ksu.edu

Australian Journal of Soil Research 47(8) 788-795 https://doi.org/10.1071/SR09027
Submitted: 1 February 2009  Accepted: 31 July 2009   Published: 11 December 2009

Abstract

Soil surface application of dissolved linear polyacrylamide (PAM) of high molecular weight (MW) can mitigate seal formation, runoff, and erosion, especially when added with a source of electrolytes (e.g. gypsum). Practical difficulties associated with PAM solution application prohibited commercial use of PAM in dryland farming. An alternative practice of spreading dry granular PAM with high MW on the soil surface has been ineffective in reducing runoff while effectively reducing erosion. The objective of this study was to investigate the mechanism by which granular PAM (20 kg/ha), with moderate (2 × 105 Da) or high (1.2 × 107 Da) MW, mixed with phosphogypsum (PG) (4 Mg/ha) affects infiltration rate, runoff, and erosion. Five smectitic soils, treated with PAM and PG, were exposed to simulated rainfall of deionised water in the laboratory. Both dry PAMs, mixed with PG, increased final infiltration rate (3–5 times) and reduced erosion (2–4 times) relative to the control (no amendments). Whereas the polymers’ effects on the infiltration rate and runoff relative to each other were inconsistent, PAM with moderate MW was consistently more effective in reducing soil loss than PAM with high MW. For example, in the sandy clay soil, soil losses were reduced from 840 g/m2, in the control, to 570 and 370 g/m2 for the high and moderate MW PAM treatment, respectively. This greater capacity to control soil erosion was ascribed to the lower viscosity of the soil surface solution following dissolution of dry PAM granules in the case of moderate MW PAM, leading to more uniform, effective treatment of soil aggregates at the soil surface by the polymer.

Additional keywords: PAM molecular weight, dissolution rate, seal formation, runoff, viscosity.


References


Agassi M, Ben-Hur M (1992) Stabilizing steep slopes with soil conditioners and plants. Soil Technology 5, 249–256.
Crossref | GoogleScholarGoogle Scholar | open url image1

Agassi M, Shainberg I, Morin J (1981) Effect of electrolyte concentration and soil sodicity on infiltration rate and crust formation. Soil Science Society of America Journal 48, 848–851. open url image1

Ajwa HA, Trout TJ (2006) Polyacrylamide and water quality effects on infiltration in sandy loam soils. Soil Science Society of America Journal 70, 643–650.
Crossref | GoogleScholarGoogle Scholar | CAS | open url image1

Banin A, Amiel A (1970) A correlative study of the chemical and physical properties of a group of natural soils of Israel. Geoderma 3, 185–198.
Crossref | GoogleScholarGoogle Scholar | CAS | open url image1

Barvenik FW (1994) Polyacrylamide characteristics related to soil applications. Soil Science 158, 235–243.
Crossref | GoogleScholarGoogle Scholar | CAS | open url image1

Ben-Hur M, Keren R (1997) Polymer effects on water infiltration and soil aggregation. Soil Science Society of America Journal 61, 565–570.
CAS |
open url image1

Ben-Hur M, Shainberg I, Bakker D, Keren R (1985) Effect of soil texture and CaCO3 content on water infiltration in crusted soil as related to water salinity. Irrigation Science 6, 281–294.
Crossref | GoogleScholarGoogle Scholar | CAS | open url image1

Bradford JM, Ferris JE, Remley PA (1987) Interrill soil erosion processes: I. Effect of surface sealing on infiltration, runoff and soil splash detachment. Soil Science Society of America Journal 51, 1566–1577. open url image1

Epema GF , Riezebos HTh (1983) Fall velocity of water drops at different heights as a factor influencing erosivity of simulated rain. In ‘Rainfall simulation, runoff and soil erosion’. Catena Supplement 4 (Ed. J De Ploey) pp. 1–17. (GeoScience Publishing: Reiskirchen, Germany)

Flanagan DC, Norton LD, Shainberg I (1997a) Effect of water chemistry and soil amendments on a silt loam soil – Part I: Infiltration and runoff. Transactions of the American Society of Agricultural Engineers 40, 1549–1554. open url image1

Flanagan DC, Norton LD, Shainberg I (1997b) Effect of water chemistry and soil amendments on a silt loam soil – Part II: Soil erosion. Transactions of the American Society of Agricultural Engineers 40, 1555–1561. open url image1

Fox D, Bryan RB (1992) Influence of polyacrylamide soil conditioner on runoff generation and soil erosion: Field tests in Baringo district, Kenya. Soil Technology 5, 101–119.
Crossref | GoogleScholarGoogle Scholar | open url image1

Green VS, Stott DE, Graveel JG, Norton LD (2004) Stability analysis of soil aggregates treated with anionic polyacrylamides of different molecular formulations. Soil Science 169, 573–581.
Crossref | GoogleScholarGoogle Scholar | CAS | open url image1

Green VS, Stott DE, Norton LD, Graveel JG (2000) PAM molecular weight and charge effects on infiltration under simulated rainfall. Soil Science Society of America Journal 64, 1786–1791.
CAS |
open url image1

Heller H, Keren R (2002) Anionic polyacrylamide polymers effect on rheological behavior of sodium-montmorillonite suspensions. Soil Science Society of America Journal 66, 19–25.
CAS |
open url image1

Keren R, Shainberg I (1981) Effect of dissolution rate on the efficiency of industrial and mined gypsum in improving infiltration of a sodic soil. Soil Science Society of America Journal 45, 103–107.
CAS |
open url image1

Klute A (Ed.) (1986) ‘Methods of soil analysis. Part 1. Physical and mineralogical methods’. 2nd edn, Agronomy Monograph No. 9. (ASA and SSSA: Madison, WI)

Lentz RD , Sojka RE (1996) Five-year research summary using PAM in furrow irrigation. In ‘Managing irrigation-induced erosion and infiltration with polyacrylamide’. Proceedings of the College of Southern Idaho, Twin Falls, ID. University of Idaho Miscellaneous Publication No. 101–196. (Eds RE Sojka, RD Lentz) pp. 20–27. (University of Idaho: Twin Falls, ID)

Letey J (1994) Adsorption and desorption of polymers on soil. Soil Science 158, 244–248.
Crossref | GoogleScholarGoogle Scholar | CAS | open url image1

Levin J, Ben-Hur M, Gal M, Levy GJ (1991) Rain energy and soil amendments effects on infiltration and erosion of three different soil types. Australian Journal of Soil Research 29, 455–465.
Crossref | GoogleScholarGoogle Scholar | open url image1

Levy GJ, Agassi M (1995) Polymer molecular weight and degree of drying effects on infiltration and erosion of three different soils. Australian Journal of Soil Research 33, 1007–1018.
Crossref | GoogleScholarGoogle Scholar | open url image1

Levy GJ, Levin J, Shainberg I (1994) Seal formation and interrill soil erosion. Soil Science Society of America Journal 58, 203–209. open url image1

Levy GJ, Mamedov AI (2002) High energy moisture characteristics aggregate stability as a predictor for seal formation. Soil Science Society of America Journal 66, 1603–1609.
CAS |
open url image1

Levy GJ , Sumner ME (1998) Mined and by-product gypsum as soil amendments and conditioners. In ‘Handbook of soil conditioners’. (Eds A Wallace, ER Terry) pp. 445–462. (Marcel Dekker: New York)

Lu JH, Wu L, Letey J (2002) Effect of soil and water properties on anionic polyacrylamides sorption. Soil Science Society of America Journal 66, 578–584.
CAS |
open url image1

Malik M, Letey J (1991) Adsorption of polyacrylamide and polysaccharide polymers on soil materials. Soil Science Society of America Journal 55, 380–383.
CAS |
open url image1

Malik M, Letey J (1992) Pore-sized-dependent apparent viscosity for organic solutes in saturated porous media. Soil Science Society of America Journal 56, 1032–1035.
CAS |
open url image1

Mamedov AI, Beckmann S, Huang C, Levy GJ (2007) Aggregate stability as affected by polyacrylamide molecular weight, soil texture and water quality. Soil Science Society of America Journal 71, 1909–1918.
Crossref | GoogleScholarGoogle Scholar | CAS | open url image1

Mamedov AI, Shainberg I, Levy GJ (2001) Irrigation with effluents: effects of prewetting rate and clay content on runoff and soil loss. Journal of Environmental Quality 30, 2149–2156.
CAS | PubMed |
open url image1

Moore DC, Singer MJ (1990) Crust formation effects on soil erosion processes. Soil Science Society of America Journal 54, 1117–1123. open url image1

Orts WJ, Sojka RE, Glenn GM, Gross RA (1999) Preventing soil erosion with polymer additives. Polymer News 24, 406–413.
CAS |
open url image1

Oster JD, Shainberg I, Wood JD (1980) Flocculation value and gel structure of sodium/calcium montmorillonite and illite suspensions. Soil Science Society of America Journal 44, 955–959.
CAS |
open url image1

Page AL , Miller RH , Keeney DR (Eds) (1982) ‘Methods of soil analysis. Part 2. Chemical and microbiological properties’. 2nd edn, Agronomy Monograph 9. (ASA and SSSA: Madison, WI)

Peterson JR, Flanagan DC, Tishmack JK (2002a) Polyacrylamide and gypsiferous material effects on runoff and erosion under simulated rainfall. Transactions of the American Society of Agricultural Engineers 45, 1011–1019.
CAS |
open url image1

Peterson JR, Flanagan DC, Tishmack JK (2002b) PAM application methods and electrolyte source effects on plot-scale runoff and erosion. Transactions of the American Society of Agricultural Engineers 45, 1859–1867.
CAS |
open url image1

SAS Institute (1995) ‘SAS guide for personal computers – Version 6.07.’ (SAS Institute: Cary, NC)

Shainberg I, Levy GJ (1994) Organic polymers and soil sealing in cultivated soil. Soil Science 158, 267–273.
Crossref | GoogleScholarGoogle Scholar | CAS | open url image1

Shainberg I, Warrington DN, Rengasamy P (1990) Water quality and PAM interactions in reducing surface sealing. Soil Science 149, 301–307.
Crossref | GoogleScholarGoogle Scholar | CAS | open url image1

Skupisan J, Kanatharana J, Sirivat A, Wang SQ (1998) The specific viscosity of partially hydrolyzed polyacrylamide solutions: Effects of degree of hydrolysis, molecular weight, solvent quality and temperature. Journal of Polymer Science 36, 743–753. open url image1

Smith HJC, Levy GJ, Shainberg I (1990) Water droplet energy and soil amendments: Effect on infiltration and erosion. Soil Science Society of America Journal 54, 1084–1087. open url image1

Sojka RE, Bjorneberg DL, Entry JA, Lentz RD, Orts WJ (2007) Polyacrylamide in agriculture and environmental land management. Advances in Agronomy 92, 75–162.
Crossref | GoogleScholarGoogle Scholar | CAS | open url image1

Tang Z, Yu J, Lei T, Shainberg I, Mamedov AI, Levy GJ (2006) Runoff and erosion in sodic soils treated with dry PAM and phosphogypsum. Soil Science Society of America Journal 70, 679–690.
Crossref | GoogleScholarGoogle Scholar | CAS | open url image1

Volk H , Friedrich RE (1980) Polyacrylamide. In ‘Handbook of water soluble gums and resins’. (Ed. RL Davidson) pp. 16-1–16-26 (McGraw Hill: New York)

Young MH, Moran EA, Yu Z, Zhu J, Smith DM (2009) Reducing saturated hydraulic conductivity of sandy soils with polyacrylamide. Soil Science Society of America Journal 73, 13–20.
Crossref | GoogleScholarGoogle Scholar | CAS | open url image1

Yu J, Lei T, Shainberg I, Mamedov AI, Levy GJ (2003) Infiltration and erosion in soils treated with dry PAM and gypsum. Soil Science Society of America Journal 67, 630–636.
CAS |
open url image1