Effects of straw retention and phosphorous fertilizer application on available phosphorus content in the soil solution during rice growth
详细信息    查看全文
  • 作者:Chao Yan ; Houqiang Zhan ; Shuangshuang Yan ; Shoukun Dong…
  • 关键词:Rice ; Straw retention ; Phosphorous fertilizer ; Soil solution ; Phosphorus
  • 刊名:Paddy and Water Environment
  • 出版年:2016
  • 出版时间:January 2016
  • 年:2016
  • 卷:14
  • 期:1
  • 页码:61-69
  • 全文大小:748 KB
  • 参考文献:Beckwith R (1965) Sorbed phosphate at standard supernatant concentration as an estimate of the phosphate needs of soils. Anim Prod Sci 5:52–58CrossRef
    Beri V, Sidhu B, Bahl G, Bhat A (1995) Nitrogen and phosphorus transformations as affected by crop residue management practices and their influence on crop yield. Soil Use Manag 11:51–54CrossRef
    Bhandari A, Ladha J, Pathak H, Padre A, Dawe D, Gupta R (2002) Yield and soil nutrient changes in a long-term rice-wheat rotation in India. Soil Sci Soc Am J 66:162–170CrossRef
    Biederbeck VO, Campbell CA, Bowren KE, Schnitzer M, McIver RN (1980) Effect of burning cereal straw on soil properties and grain yields in Saskatchewan1. Soil Sci Soc Am J 44:103–111. doi:10.​2136/​sssaj1980.​0361599500440001​0022x CrossRef
    Diao XL, Zeng XL, Gong ZP, Ma CM, Zhang L et al (2010) Effect of straw returning on nutrients change in soil solution during rice growth period. J Northeast Agric Univ 182:43–48 (in Chinese)
    Dobermann A, Cassman K, Mamaril C, Sheehy J (1998) Management of phosphorus, potassium, and sulfur in intensive, irrigated lowland rice. Field Crops Res 56:113–138CrossRef
    Fageria N, Santos A, Heinemann A (2011) Lowland rice genotypes evaluation for phosphorus use efficiency in tropical lowland. J Plant Nutr 34:1087–1095CrossRef
    Fox RL, Kamprath E (1970) Phosphate sorption isotherms for evaluating the phosphate requirements of soils. Soil Sci Soc Am J 34:902–907CrossRef
    Grant C, Flaten D, Tomasiewicz D, Sheppard S (2001) The importance of early season phosphorus nutrition. Can J Plant Sci 81:211–224CrossRef
    Gupta R, Ladha J, Singh J, Singh G, Pathak H (2007) Yield and phosphorus transformations in a rice–wheat system with crop residue and phosphorus management. Soil Sci Soc Am J 71:1500–1507CrossRef
    Hedley M, Kirk G, Santos M (1994) Phosphorus efficiency and the forms of soil phosphorus utilized by upland rice cultivars. Plant Soil 158:53–62CrossRef
    Hinsinger P (2001) Bioavailability of soil inorganic P in the rhizosphere as affected by root-induced chemical changes: a review. Plant Soil 237:173–195CrossRef
    Hoagland DR (1922) The soil solution in relation to the plant. Trans Faraday Soc 17:249–255CrossRef
    Holford I (1997) Soil phosphorus: its measurement, and its uptake by plants. Aust J Soil Res 35:227–240CrossRef
    Kumar K, Goh K (1999) Crop residues and management practices: effects on soil quality, soil nitrogen dynamics, crop yield, and nitrogen recovery. Adv Agron 68:197–319CrossRef
    Lan ZM, Lin XJ, Wang F, Zhang H, Chen CR (2012) Phosphorus availability and rice grain yield in a paddy soil in response to long-term fertilization. Biol Fertil Soils 48:579–588CrossRef
    Malhi SS, Nyborg M, Solberg ED, McConkey B, Dyck M, Puurveen D (2011) Long-term straw management and N fertilizer rate effects on quantity and quality of organic C and N and some chemical properties in two contrasting soils in Western Canada. Biol Fertil Soils 47:785–800CrossRef
    McDowell R, Stewart I (2006) The phosphorus composition of contrasting soils in pastoral, native and forest management in Otago, New Zealand: sequential extraction and 31P NMR. Geoderma 130:176–189CrossRef
    McGill W, Cole C (1981) Comparative aspects of cycling of organic C, N, S and P through soil organic matter. Geoderma 26:267–286CrossRef
    McLaughlin MJ, Alston A, Martin J (1988) Phosphorus cycling in wheat pasture rotations. I. The source of phosphorus taken up by wheat. Soil Res 26:323–331CrossRef
    Medley MJ, Stewart JWB, Chauhanm BS (1982) Changes in inorganic and organic soil phosphorus fractions induced by cultivation practices and by laboratory incubations. Soil Sci Soc Am J 46:970–976CrossRef
    Mehdi SM, Obaid-ur-Rehman A, Ranjha M, Sarfaraz M (2007) Adsorption capacities and availability of phosphorus in soil solution for rice wheat cropping system. World Appl Sci J 2:244–265
    Miller JJ, Chanasyk DS, Curtis TW, Olson BM (2011) Phosphorus and nitrogen in runoff after phosphorus-or nitrogen-based manure applications. J Environ Qual 40:949–958PubMed CrossRef
    Muhammad AS, Manaf A, Hussain M, Farooq S, Zafar-ul-Hye M (2013) Sulphur fertilization improves the sesame productivity and economic returns under rainfed conditions. Int J Agric Biol 15(6):1301–1306
    Murrmann R, Peech M (1969) Effect of pH on labile and soluble phosphate in soils. Soil Sci Soc Am J 33:205–210CrossRef
    Negassa W, Leinweber P (2009) How does the Hedley sequential phosphorus fractionation reflect impacts of land use and management on soil phosphorus: a review. J Plant Nutr Soil Sci 172:305–325CrossRef
    Nwoke O, Vanlauwe B, Diels J, Sanginga N, Osonubi O (2004) Impact of residue characteristics on phosphorus availability in West African moist savanna soils. Biol Fertil Soils 39:422–428CrossRef
    Pathak H, Singh R, Bhatia A, Jain N (2006) Recycling of rice straw to improve wheat yield and soil fertility and reduce atmospheric pollution. Paddy Water Environ 4:111–117CrossRef
    Pheav S, Bell R, White P, Kirk G (2003) Fate of applied fertilizer phosphorus in a highly weathered sandy soil under lowland rice cropping, and its residual effect. Field Crops Res 81:1–16CrossRef
    Phiri S, Amézquita E, Rao IM, Singh B (2001) Disc harrowing intensity and its impact on soil properties and plant growth of agropastoral systems in the Llanos of Colombia. Soil Tillage Res 62:131–143CrossRef
    Prasad R, Gangaiah B, Aipe K (1999) Effect of crop residue management in a rice–wheat cropping system on growth and yield of crops and on soil fertility. Exp Agric 35:427–435CrossRef
    Raghothama K (1999) Phosphate acquisition. Annu Rev Plant Biol 50:665–693CrossRef
    Ramaekers L, Remans R, Rao IM, Blair MW, Vanderleyden J (2010) Strategies for improving phosphorus acquisition efficiency of crop plants. Field Crops Res 117:169–176CrossRef
    Rasmussen PE, Allmaras RR, Rohde CR, Roager NC (1980) Crop residue influences on soil carbon and nitrogen in a wheat-fallow system1. Soil Sci Soc Am J 44:596–600. doi:10.​2136/​sssaj1980.​0361599500440003​0033x CrossRef
    Schachtman DP, Reid RJ, Ayling SM (1998) Phosphorus uptake by plants: from soil to cell. Plant Physiol 116:447–453PubMed PubMedCentral CrossRef
    Singh Y, Singh B, Maskina M, Meelu O (1988) Effect of organic manures, crop residues and green manure (Sesbania aculeata) on nitrogen and phosphorus transformations in a sandy loam at field capacity and under waterlogged conditions. Biol Fertil Soils 6:183–187CrossRef
    Stevenson FJ, Cole MA (1999) Cycles of soils: carbon, nitrogen, phosphorus, sulfur, micronutrients. Wiley, New York
    Toor GS, Condron LM, Di HJ, Cameron KC, Cade-Menun BJ (2003) Characterization of organic phosphorus in leachate from a grassland soil. Soil Biol Biochem 35:1317–1323CrossRef
    Watanabe F, Olsen S (1965) Test of an ascorbic acid method for determining phosphorus in water and NaHCO3 extracts from soil. Soil Sci Soc Am J 29:677–678CrossRef
    Xu J, Tang C, Chen ZL (2006) The role of plant residues in pH change of acid soils differing in initial pH. Soil Biol Biochem 38:709–719CrossRef
    Yadvinder S, Bijay S, Khind CS (1992) Nutrient transformations in soils amended with green manures. Adv Soil Sci 20:237–309
    Yadvinder S, Bijay S, Timsina J (2005) Crop residue management for nutrient cycling and improving soil productivity in rice-based cropping systems in the tropics. In: Advances in agronomy, vol 85. Academic Press, pp 269–407. doi:10.​1016/​S0065-2113(04)85006-5
    Yadvinder S, Gupta RK, Gurpreet S, Jagmohan S, Sidhu HS, Bijay S (2008) Nitrogen and residue management effects on agronomic productivity and nitrogen use efficiency in rice–wheat system in Indian Punjab. Nutr Cycl Agroecosyst 84:141–154CrossRef
    Yadvinder S, Gupta RK, Jagmohan S, Gurpreet S, Gobinder S, Ladha JK (2010) Placement effects on rice residue decomposition and nutrient dynamics on two soil types during wheat cropping in rice–wheat system in northwestern India. Nutr Cycl Agroecosyst 88:471–480CrossRef
    Yadvinder S, Bijay S, Ladha JK, Khind CS, Gupta RK, Meelu OP, Pasuquin E (2004) Long-term effects of organic inputs on yield and soil fertility in the rice–wheat rotation. Soil Sci Soc Am J 68:845–853
    Yan C, Diao XL, Ge HL, Wang XW, Ma CM et al (2012) Effects of rice straw returning on nutrients in soil solution and activities of soil enzymes. Chin J Soil Sci 260:1232–1236 (in Chinese)
  • 作者单位:Chao Yan (1)
    Houqiang Zhan (1)
    Shuangshuang Yan (1)
    Shoukun Dong (1)
    Chunmei Ma (1)
    Qiulai Song (1)
    Zhenping Gong (1)
    Marcel Barbie (2)

    1. College of Agriculture, Northeast Agricultural University, Harbin, Heilongjiang, China
    2. Soil and Water Department, University of Florida, Gainesville, FL, USA
  • 刊物类别:Biomedical and Life Sciences
  • 刊物主题:Life Sciences
    Agriculture
    Hydrogeology
    Geoecology and Natural Processes
    Monitoring, Environmental Analysis and Environmental Ecotoxicology
    Soil Science and Conservation
    Waste Water Technology, Water Pollution Control, Water Management and Aquatic Pollution
  • 出版者:Springer Berlin / Heidelberg
  • ISSN:1611-2504
文摘
Phosphorus (P) is an essential nutrient for proper rice growth, and available P in the soil solution is a direct source of P for rice uptake. In this study, a field experiment (experiment A: straw retention (SRT) treatment versus straw removal (SRM) treatment) exposed to 3 years of continuous SRT and a pot experiment (experiment B: five P levels; SRT and SRM treatments) with different concentrations of applied P fertilizer were conducted to study the effects of SRT and P fertilizer application on the available P concentration in the soil solution during rice growth and on rice yield. SRT decreased the available P concentration in the soil solution, although it did not alter the trend of available P concentration in the soil solution during plant growth. In addition, in the 10–20-day period after transplantation, the available P concentration in the soil solution was high, although it decreased thereafter. The available P concentration in the soil solution increased with the amount of applied P fertilizer, and the rice yield also increased with increasing applications of P fertilizer. The results of experiments A and B showed that SRT had no significant impact on the rice yield; however, continuous observations over a number of years are required to verify the results. Keywords Rice Straw retention Phosphorous fertilizer Soil solution Phosphorus

© 2004-2018 中国地质图书馆版权所有 京ICP备05064691号 京公网安备11010802017129号

地址:北京市海淀区学院路29号 邮编:100083

电话:办公室:(+86 10)66554848;文献借阅、咨询服务、科技查新:66554700