Amending Subsoil with Composted Poultry Litter-I: Effects on Soil Physical and Chemical Properties
Abstract
:1. Introduction
2. Results and Discussion
2.1. Soil Physical Properties
2.1.1. Total Water Content and Soil Organic Matter


2.1.2. Available Water Capacity and Soil Bulk Density

2.2. Soil Chemical Properties


| Treatment (cm-compost/cm-soil) | P | K | Ca | Mg |
|---|---|---|---|---|
| Seeded | ||||
| --------- ppm ----------- | ||||
| Compost (0.1) | 0.227 a* | 1.306 ab | 4.879 bc | 0.620 b |
| Compost (0.2) | 0.232 a | 1.915 a | 7.606 b | 0.919 b |
| Compost (0.4) | 0.241 a | 2.337 a | 9.087 a | 1.671 a |
| Fertilizer (0.0) | 0.110 b | 1.28 b | 2.661 bcd | 0.255 bc |
| Control (0.0) | 0.101 b | 0.245 b | 2.708 bcd | 0.288 bc |
| Sodded | ||||
| --------- ppm ----------- | ||||
| Compost (0.1) | 0.227 a | 0.738 b | 4.442 b | 0.581 bc |
| Compost (0.2) | 0.237 a | 1.236 b | 7.044 a | 0.946 b |
| Compost (0.4) | 0.240 a | 2.291 a | 7.929 a | 1.530 a |
| Fertilizer (0.0) | 0.091 b | 0.158 bc | 2.156 bc | 0.264 bcd |
| Control (0.0) | 0.055 bc | .259 bc | 2.266 bc | 0.250 bcd |

3. Experimental Section
| Month | Precipitation amount (cm) |
|---|---|
| May | 13.36 |
| June | 12.45 |
| July | 9.02 |
| August | 16.23 |
| September | 17.07 |
| Total | 68.12 |
4. Conclusions
Acknowledgments
Conflicts of Interest
References
- Daniels, W.L.; Amos, D.F. Generating productive topsoil substitutes from hard rock overburden in the southern Appalachians. Environ. Geochem. Health 1984, 7, 8–15. [Google Scholar] [CrossRef]
- Eghball, B. Soil properties as influenced by phosphorus and nitrogen based manure and compost applications. Agron. J. 2002, 94, 128–135. [Google Scholar] [CrossRef]
- Gao, G.; Chang, C. Changes in CEC and particle size distribution of soils associated with long term annual applications of cattle feedlot manure. Soil Sci. 1996, 161, 115–120. [Google Scholar] [CrossRef]
- Nyakatawa, E.Z.; Reddy, K.C.; Sistani, K.R. Tillage, cover cropping, and poultry litter effects on selected soil chemical properties. Soil Tillage Res. 2001, 58, 69–79. [Google Scholar] [CrossRef]
- Tyson, S.C.; Cabrera, M.L. Nitrogen mineralization in soils amended with composted and uncomposted poultry litter. Commun. Soil Sci. Plant Anal. 1993, 24, 2361–2374. [Google Scholar] [CrossRef]
- Sharpley, A.N.; Smith, S.J.; Bain, W.R. Nitrogen and phosphorus fate from long-term poultry litter application to Oklahoma soils. Soil Sci. Soc Am. J. 1993, 57, 1131–1137. [Google Scholar] [CrossRef]
- Kelleher, B.P.; Leahy, J.J.; Henihan, A.M.; O’Dwyer, T.F.; Sutton, D.; Leahy, M.J. Advances in poultry litter disposal technology—A review. Bioresour. Tech. 2002, 83, 27–36. [Google Scholar] [CrossRef]
- Haapapuro, E.R.; Barnard, N.D.; Simon, M. Animal waste used as livestock feed: Dangers to human health. Prev. Med. 1997, 26, 599–602. [Google Scholar] [CrossRef]
- Chang, C.; Janzen, H.H. Long-term fate of nitrogen from annual feedlot manure applications. J. Environ. Qual. 1996, 25, 785–790. [Google Scholar] [CrossRef]
- Goyne, K.W.; Jun, H.J.; Anderson, S.H.; Motavalli, P.P. Phosphorus and nitrogen sorption to soils in the presence of poultry litter-derived dissolved organic matter. J. Environ. Qual. 2008, 37, 154–163. [Google Scholar] [CrossRef]
- Paul, E.A. Soil microbiology, ecology, and biochemistry in perspective. In Soil Microbiology and Biochemistry, 3rd ed.; Paul, E.A., Ed.; Academic Press: San Diego, CA, USA, 1996; pp. 13–17. [Google Scholar]
- Millner, P.D.; Sikora, L.J.; Kaufman, D.D.; Simpson, M.E. Agricultural uses of biosolids and other recyclable municipal residues. In Agricultural Uses of Municipal, Animal, and Industrial Byproducts; Conservation Research Report 44; Wright, R.J., Kemper, W.D., Millner, P.D., Power, J.F., Korcak, R.F., Eds.; USDA Agriculture Research Service: Washington, DC, USA, 1998; pp. 9–44. [Google Scholar]
- Vadas, P.A.; Meisinger, J.J.; Sikora, L.J.; McMurtry, J.P.; Sefton, A.E. Effect of poultry diet on phosphorus in runoff from soils amended with poultry manure and compost. J. Environ. Qual. 2004, 33, 1845–1854. [Google Scholar] [CrossRef]
- Epstein, E.; Taylor, J.M.; Chaney, R.L. Effects of sewage sludge and sludge compost applied to soil on some soil physical and chemical properties. J. Environ. Qual. 1976, 5, 422–426. [Google Scholar] [CrossRef]
- Tester, C.F. Organic amendment effects on physical and chemical properties of a sandy soil. Soil Sci. Soc. Am. J. 1990, 54, 827–831. [Google Scholar] [CrossRef]
- Avimelech, A.; Cohen, A.; Shkedi, D. The effect of municipal solid waste compost on the fertility of clay soils. Soil Tech. 1990, 3, 275–284. [Google Scholar] [CrossRef]
- Shiralipour, A.; McConnell, D.B.; Smith, W.H. Physical and chemical properties of soils as affected by municipal solid waste compost application. Biomass Bioenerg. 1992, 3, 261–266. [Google Scholar] [CrossRef]
- Tiarks, A.E.; Mazurak, A.P.; Chesnin, L. Physical and chemical properties of soil associated with heavy applications of manure from cattle feedlots. Soil Sci. Soc. Amer. Proc. 1974, 38, 826–830. [Google Scholar] [CrossRef]
- He, Z.; Tazisong, I.A.; Senwo, Z.N.; Zhang, D. Soil properties and macro cations status impacted by long-term applied poultry litter. Commun. Soil Sci. Plant Anal. 2008, 39, 858–872. [Google Scholar] [CrossRef]
- Gascho, G.J.; Hubbard, R.K. Long-term impact of broiler litter on chemical properties of a coastal plain soil. J. Soil Water Conserv. 2006, 61, 65–74. [Google Scholar]
- Barker, A.V. Evaluation of composts for growth of grass sod. Comm. Soil Sci. Plant Anal. 2001, 32, 1841–1860. [Google Scholar] [CrossRef]
- Harrell, M.S.; Miller, G.L. Composted yard waste affects soil displacement and roadside vegetation. HortScience 2005, 40, 2157–2163. [Google Scholar]
- Linde, D.T.; Hepner, L.D. Turfgrass seed and sod establishment on soil amended with biosolid compost. HortTechnology 2005, 15, 577–583. [Google Scholar]
- O'Brien, T.A.; Barker, A.V. Evaluation of field-applied fresh composts for production of sod crops. Compost Sci. Utlzn. 1995, 3, 53–65. [Google Scholar] [CrossRef]
- Wright, A.L.; Provin, T.L.; Hons, F.M.; Zuberer, D.A.; White, R.H. Compost impacts on sodicity and salinity in a sandy loam turf grass soil. Compost Sci. Utlzn. 2008, 16, 30–35. [Google Scholar] [CrossRef]
- Mandal, M.; Chandran, R.S.; Balasko, J. Amending subsoil with composted poultry litter-II: Effects on Kentucky bluegrass (Poa pratensis L.) establishment, root growth, and weed populations. Agronomy 2013, in press. [Google Scholar]
- Stevenson, F.J. Humus Chemistry: Genesis, Composition, Reactions; John Wiley & Sons: Hoboken, NJ, USA, 1994; pp. 1–24. [Google Scholar]
- Evangelou, V.P. Environmental Soil and Water Chemistry-Principles and Applications; John Wiley & Sons, Inc.: New York, NY, USA, 1998; pp. 24–38. [Google Scholar]
- Hillel, D. Introduction to Environmental Soil Physics; Elsevier-Academic Press: San Diego, CA, USA, 2004; pp. 363–407. [Google Scholar]
- Jamison, V.C. Changes in air-water relationships due to structural improvement of soils. Soil Sci. 1953, 76, 143–151. [Google Scholar] [CrossRef]
- Stevenson, E. Influence of peat moss on soil water retention for plants. Can. J. Soil Sci. 1974, 54, 109–110. [Google Scholar] [CrossRef]
- Reeve, M.J.; Smith, P.D.; Thomasson, A.J. The effect of density on water retention properties of field soils. J. Soil Sci. 1973, 24, 356–367. [Google Scholar]
- Angle, J.S.; Wolf, D.C.; Hall III, J.R. Turfgrass growth aided by sludge compost. BioCycle 1981, 22, 40–43. [Google Scholar]
- Jamison, V.C.; Kroth, E.M. Available moisture storage capacity in relation to textural composition and organic matter content of several Missouri soils. Soil. Sc. Soc. Am. Proc. 1958, 22, 189–192. [Google Scholar] [CrossRef]
- Metzger, L.; Yaron, B. Influence of sludge organic matter on soil physical properties. Adv. Soil Sci. 1987, 7, 141–163. [Google Scholar] [CrossRef]
- MacRae, R.J.; Mehuys, G.R. The effect of green manuring on the physical properties of temperate area soils. Adv. Soil Sci. 1985, 3, 71–94. [Google Scholar] [CrossRef]
- McConnell, D.B.; Shiralipour, A.; Smith, W.H. Compost application improves soil properties. BioCycle 1993, 34, 61–63. [Google Scholar]
- Wei, Q.F.; Lowery, B.; Peterson, A.E. Effect of sludge application on physical properties of silty clay loam soil. J. Environ. Qual. 1985, 14, 178–180. [Google Scholar]
- Rasnake, M.; Sikora, F.; Murdock, L. Nutrient accumulation and movement in soils following the use of poultry litter. In Animal, Agricultural and Food Processing Wastes–Proceedings of the Eighth International Symposium, Des Moines, USA, 9-11 October 2000; pp. 562–567.
- Havlin, J.L.; Beaton, J.D.; Tisdale, S.L.; Nelson, W.L. Soil Fertility and Fertilizers, An Introduction to Nutrient Management; Prentice Hall: Upper Saddle River, NJ, USA, 1999; p. 499. [Google Scholar]
- Gagnon, B. Contribution of on-farm and industrial composts to soil pH and enrichment in available nutrients and metals. Can. J. Soil Sci. 2004, 4, 439–445. [Google Scholar] [CrossRef]
- Balkcom, K.S.; Adams, J.F.; Hartzog, D.L. Peanut yield response to poultry litter and municipal sludge application. Commun. Soil Sci. Plant Anal. 2003, 34, 801–814. [Google Scholar] [CrossRef]
- Thomas, G.W. Soil pH and soil acidity. In Methods of Soil Analysis; Chemical Methods-SSA Book Series No. 5; Soil Science Society of America and American Society of Agronomy: Madison, WI, USA, 1996; pp. 475–490. [Google Scholar]
- Nelson, D.W.; Sommers, L.E. Total carbon, organic carbon, and organic matter. In Methods of Soil Analysis; Chemical Methods-SSA Book Series No. 5; Soil Science Society of America and American Society of Agronomy: Madison, WI, USA, 1996; pp. 961–1010. [Google Scholar]
- Sumner, M.E.; Miller, W.P. Methods of Soil Analysis; Chemical Methods-SSA Book Series No. 5; Soil Science Society of America and American Society of Agronomy: Madison, WI, USA, 1996; pp. 1201–1229. [Google Scholar]
- Mehlich, A. Determination of P, Ca, Mg, K, Na and NH4; Short test methods used in soil testing division, Department of Agriculture: Raleigh, NC, USA, 1953; pp. 1–53. [Google Scholar]
- Gee, G.W.; Bauder, J.W. Particle-size analysis. In Methods of Soil Analysis; Chemical Methods-SSA Book Series No. 5; Soil Science Society of America and American Society of Agronomy: Madison, WI, USA, 1986; pp. 383–409. [Google Scholar]
- Klute, A. Water retention: laboratory methods. In Methods of Soil Analysis; Chemical Methods-SSA Book Series No. 5; Soil Science Society of America and American Society of Agronomy: Madison, WI, USA, 1986; pp. 635–660. [Google Scholar]
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Mandal, M.; Chandran, R.S.; Sencindiver, J.C. Amending Subsoil with Composted Poultry Litter-I: Effects on Soil Physical and Chemical Properties. Agronomy 2013, 3, 657-669. https://doi.org/10.3390/agronomy3040657
Mandal M, Chandran RS, Sencindiver JC. Amending Subsoil with Composted Poultry Litter-I: Effects on Soil Physical and Chemical Properties. Agronomy. 2013; 3(4):657-669. https://doi.org/10.3390/agronomy3040657
Chicago/Turabian StyleMandal, Mili, Rakesh S. Chandran, and John C. Sencindiver. 2013. "Amending Subsoil with Composted Poultry Litter-I: Effects on Soil Physical and Chemical Properties" Agronomy 3, no. 4: 657-669. https://doi.org/10.3390/agronomy3040657
APA StyleMandal, M., Chandran, R. S., & Sencindiver, J. C. (2013). Amending Subsoil with Composted Poultry Litter-I: Effects on Soil Physical and Chemical Properties. Agronomy, 3(4), 657-669. https://doi.org/10.3390/agronomy3040657
