Evaluation the Effect of SFO on Plant Growth and Soil Properties in Deicing Agent Contaminated Soil

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Abstract:

In order to reduce the damage of deicing salt to green belt soil in highway, the research used organic multi-fertilizer SFO featured with water conservation and anti-deicing salt to test the effect on plant growth and soil moisture and ion composition in Jingcheng high way, Beijing, It set 12 t/hm27.5 t/hm24.5 t/hm2 dosage processing in test Experimental index include plant growth, soil moisture, ion composition and the improvement effect of saline-alkali soil. In treatment of 4.5 t/hm2 and 7.5 t/hm2 SFO dosage, the fresh treetop growth of Juniper were increased 25.9% and 85.7% higher than that of CK, but less than that in treatment of 12 t/hm2 dosage. The soil moisture in all treatments was improved 0.8% -2.1% high than that in CK. The analysis showed that SFO can regulate the ion balance of soil, Ca2+Mg2+K+ content of soil in all treatments were raised as the increasing of SFO dosage, but the Na+Cl-ion contens decreased 38% and 48% on average than that of CK,and the Sodium Adsorption Ratio (SAR) significantly was reduced markedly. In which the 7.5 t/hm2 dosage treatment of SFO is the best effect. The results certificated that SFO has the comprehensive effect on reducing soil salinization and can improve soil structure and the soil moisture, and can be applied in controlling soil salinization of green belt caused by using deicing salt in high way widely.

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Advanced Materials Research (Volumes 807-809)

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1311-1317

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September 2013

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© 2013 Trans Tech Publications Ltd. All Rights Reserved

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[1] Naifeng Hong. Chlorate snow-melting agent Is a Double-edged Sword,. City and disaster reduction. 2005(4): 19-21.

Google Scholar

[2] Jinyang Li. Current situation of technology and development tendency of deicing salt. Highway traffic science and technology( application). 2011(3): 157-160.

Google Scholar

[3] Liu Nan. Current situation of application and study of deicing salt for highway and development tendency, Northern Communications, 201(21): 6-8.

Google Scholar

[4] Yafang Nie. Investigation and analysis on deicing salt harm to urban greening. Hebei forestry science and technology , 2010(2): 27-29.

Google Scholar

[5] Ning Yin, Gongping Gu. Snow-melting agent types and the effect on animals and plants. Information of agricultural science and technology. 2008(24): 1-3.

Google Scholar

[6] Junping Xie, Jingnan Li, Wenjuan Huo, Wenjie Zhou. Investigation on plant injure by deicing salt, Tianjin agricultural sciences. 2011, 17(5): 139-141.

Google Scholar

[7] Huili Han, Pei Qin,Yingying Zhang, Guohang Tian. Investigation and analysis on plant which has been injured by snow-melting agent in medial divide on the expressway. Henan Science. 2009, 27(3): 296-298.

Google Scholar

[8] Shidan Bao. Soil agricultural chemistry analysis. China Agricultural University Press, Beijing, 2010, China.

Google Scholar

[9] Xiaomin Chen, Bing Bai, Dean Huang. Effects of seawater irrigation on soil salinize -alkalization and saturation conductivity in Yellow River Delta. Transactions of the Chinese society of agricultural engineering. 2006, 22(2): 50-53.

Google Scholar

[10] Qusheng Li, Xiujun Li, Xiaojun Li. Sodium bicarbonate soil management and utilization in Songnen plain. Resources science. 2003, 25(1): 15-20.

Google Scholar

[11] Zhanbin Huang, Sun Zaijin. Application of environmental materials in agricultural production and environmental treatment. Chinese Journal of Eco-Agriculture. 2013, 21(1): 88−95.

Google Scholar

[12] Ben-Hur M. and Keren R. Polymer effects on water infiltration and soil aggregation [J]. Soil Sci. Soc. Am. J. 1997, 61: 565-570.

DOI: 10.2136/sssaj1997.03615995006100020028x

Google Scholar

[13] Jonas PS, Alexandre GS Prado. Buffer capacity of humic acid: Thermodynamic approach [J]. Journal of colloid and Interface Science, 2007, 314: 484-489.

DOI: 10.1016/j.jcis.2007.06.006

Google Scholar

[14] Zdenek Filip, Marta Tesaová. Microbial degradation and transformation of humic acids from permanent meadow and forest soils[J]. International Biodeterioration Biodegradation, 2004(54): 225-231.

DOI: 10.1016/j.ibiod.2004.06.006

Google Scholar

[15] Yifeng Zhang, Huang Liping. Research Progress of Humic Acids in the Treatment of Environmental Pollutants. Humic acid, 2007(5): 16-20, 26.

Google Scholar

[16] Deyi Zou. Improvement of saline soil and reduction on salinization damage of humic acid. Humic acid, 2008(4): 43-44.

Google Scholar

[17] Lingyan Wang. Effect of sodium and chloride salt stress on the growth and photosynthesis of sweet potato seedlings. 2009, Shandong normal university.

Google Scholar

[18] Guilian Mao, Xu Xing, Xu Zhaozhen. Advances in physiological and biochemical research of salt tolerance in plant. Chinese journal of eco-agriculture. 2004, 12(1): 43-46.

Google Scholar

[19] X. Niu, Bressan R.A., Hasegawa P.M. Ion homeostasis in NaCl stress environments. Plant Physiol., 1995, 109: 735-742.

DOI: 10.1104/pp.109.3.735

Google Scholar