in

Soil qualities and change rules of Eucalyptus grandis × Eucalyptus urophylla plantation with different slash disposals

[adace-ad id="91168"]
  • Jiao, N., Liu, J., Shi, T., Zhang, C. & Pan, D. Implement negative ocean carbon emissions and perform the carbon neutral strategy. Sci. Sinica 51, 632–643. https://doi.org/10.1360/SSTe-2020-0358 (2021).

    Article 

    Google Scholar 

  • Arnold, R. J., Xie, Y. J., Luo, J. Z., Wang, H. & Midgley, S. J. A tale of two genera: Exotic Eucalyptus and Acacia species in China. 1. Domestication and research. Int. For. Rev. 22, 1–18. https://doi.org/10.1505/146554820828671571 (2020).

    Article 

    Google Scholar 

  • Zhu, L., Wang, X., Chen, F., Li, C. & Wu, L. Effects of the successive planting of Eucalyptus urophylla on soil bacterial and fungal community structure, diversity, microbial biomass, and enzyme activity. Land Degrad. Dev. 30, 636–646. https://doi.org/10.1002/ldr.3249 (2019).

    Article 

    Google Scholar 

  • Weixin, L. Eucalyptus robusta planting status and sustainable development countermeasrues based on ecological concept. For. Sci. Technol. Inform. 52, 23–25 (2020).

    Google Scholar 

  • Masyagina, O. V. Carbon dioxide emissions and vegetation recovery in fire-affected forest ecosystems of Siberia: recent local estimations. Current Opinion in Environmental Science & Health 23, https://www.sciencedirect.com/science/article/abs/pii/S2468584421000556. Accessed 17 March 2021.x

  • Dajun, D. et al. Short-term effects of black carbon on soil extractable nutrient elements in a Pinus massoniana plantation subjected to slash burning. J. Soil Water Conserv. 33, 157–162 (2019).

    Google Scholar 

  • Huanhuan, W. et al. Research and application of biochar in soil CO2 emission, fertility, and microorganisms: A sustainable solution to solve China’s agricultural straw burning problem. Sustainability 12, 1–17. https://doi.org/10.3390/su12051922 (2020).

    Article 

    Google Scholar 

  • McIntosh, P. D., Laffan, M. D. & Hewitt, A. E. The role of fire and nutrient loss in the genesis of the forest soils of Tasmania and southern New Zealand. For. Ecol. Manage. 220, 185–215 (2005).

    Article 

    Google Scholar 

  • Arocena, J. M. & Opio, C. Prescribed fire-induced changes in properties of sub-boreal forest soils. Geoderma 113, 1–16 (2003).

    Article 

    Google Scholar 

  • Hart, S. C., DeLuca, T. H., Newman, G. S., MacKenzie, M. D. & Boyle, S. I. Post-fire vegetative dynamics as drivers of microbial community structure and function in forest soils. For. Ecol. Manage. 220, 166–184 (2005).

    Article 

    Google Scholar 

  • Long, S., Yuan, L., Binqing, Z., Fei, L. & Tongxin, H. Effects of moderate fire disturbance on soil respiration components and soil microbial biomass in secondary forest of Maoer mountains China. J. Northeast For. Univ. 47, 90–98. https://doi.org/10.13759/j.cnki.dlxb.2019.07.016 (2019).

    Article 

    Google Scholar 

  • Suping, Z., Falin, L., Meifang, Z., Guangjun, W. & Xiaowei, C. Effects of fire disturbance intensities on soil physiochemical properties of pour subtropical forest types. Acta Ecol. Sin. 40, 233–246. https://doi.org/10.5846/stxb201812052665 (2020).

    Article 

    Google Scholar 

  • Nan, W., Yuetai, W., Guang, Y., Xueying, D. & Xiankui, Q. Effects of fire disturbanceon soil microbial community of larix gmelinii forset. J. Northeast For. Univ. 48, 21–28 (2020).

    Google Scholar 

  • Bushra, M. & Tom, L. Temporal variations in litterfall biomass input and nutrient return under long-term prescribed burning in a wet sclerophyll forest, Queensland, Australia. Sci. Total Environ. 706, 36–45. https://doi.org/10.1016/j.scitotenv.2019 (2019).

    Article 

    Google Scholar 

  • Mengya, Z., Xinjie, W., Le, L., Peng, Z. & Yao, F. Effect of burning disposal method on undergrouwth vegetation diversity and soil properties of Cunningham ialanceolata. J. Northeast For. Univ. 45, 63–67+76. https://doi.org/10.13759/j.cnki.dlxb.2017.03.013 (2017).

    Article 

    Google Scholar 

  • Hernández, J., Pino, A. D., Hitta, M. & Lorenzo, M. Management of forest harvest residues affects soil nutrient availability during reforestation of Eucalyptus grandis. Nutr. Cycl. Agroecosyst. 105, 1385–1314. https://doi.org/10.1007/s10705-016-9781-2 (2016).

    Article 

    Google Scholar 

  • Jiang, L., Kou, L. & Li, S. Alterations of early-stage decomposition of leaves and absorptive roots by deposition of nitrogen and phosphorus have contrasting mechanisms. Soil Biol. Biochem. 127, 213–222. https://doi.org/10.1016/j.soilbio.2018.09.037 (2018).

    Article 

    Google Scholar 

  • Ma, X. Temperature and Humidity Effects on Dendrolimus Superans Butler Grow and Develop (Northeast Forestry University, USA, 2017).

    Google Scholar 

  • Weng, Y. Decomposition and Nutrient Release Characteristics of Harvest Residues in Eucalyptus Plantation (Central South University of Forestry and Technology, USA, 2019).

    Google Scholar 

  • Huanyu, Y. et al. Effects of residue composting treatemt on soil quality of Larix principies-rupprechtii plantation. J. Cent. South Univ. For. Technol. 36, 22–27. https://doi.org/10.14067/j.cnki.1673-923x.2016.11.004 (2016).

    Article 

    Google Scholar 

  • Qiyue, S. et al. Optimizing the process of logging residue of Larix principis-ruppechtii based on orthogonal experiment. J. Fujian Agric. For. Univ. (Nat. Sci. Ed.) 48, 633–639 (2019).

    Google Scholar 

  • Mengdi, C., Qibo, C., Jianqiang, L., Jiaxuan, L. & Ruizhang, W. Evaluation of the effects of litter input managements on the soil quality in Pinus yunnanensis forest. J. Yunnan Agric. Univ. (Nat. Sci.) 35, 149–155. https://doi.org/10.12101/j.issn.1004-390X(n).20180535 (2020).

    Article 

    Google Scholar 

  • Kennard, D. K. & Gholz, H. L. Effects of high- and low-intensity fires on soil properties and plant growth in a Bolivian dry forest. Plant Soil 234, 119–129 (2001).

    Article 

    Google Scholar 

  • Yangyang, Y. et al. Effects of ground clearance on the growth of Eucalyptus plantation. J. Fujian Agric. For. Univ. (Nat. Sci. Ed.) 48, 41–47 (2019).

    Google Scholar 

  • Changzhun, L. et al. Effects of litter treatment on soil organic carbon, total nitrogen and total phosphorus in different forset types. Sci. Soil Water Conserv. 18, 100–109 (2020).

    Google Scholar 

  • Gude, A., Kandeler, E. & Gleixner, G. Input related microbial carbon dynamic of soil organic matter in particle size fractions. Soil Biol. Biochem. 47, 209–219. https://doi.org/10.1016/j.soilbio.2012.01.003 (2012).

    Article 

    Google Scholar 

  • Kang, T., Biao, H., Zhe, X. & Wenyou, H. Geochemical baseline establishment and ecological risk evaluation of heavy metals in greenhouse soils from Dongtai China. Ecol. Indic. 72, 510–520. https://doi.org/10.1016/j.ecolind.2016.08.037 (2017).

    Article 

    Google Scholar 

  • Vidal-Legaz, B., Souza, D. M. D., Teixeira, R. F., Anton, A. & Sala, S. Soil quality, properties, and functions in life cycle assessment: An evaluation of models. J. Clean. Prod. 140, 502–515. https://doi.org/10.1016/j.jclepro.2016.05.077 (2017).

    Article 

    Google Scholar 

  • Emmet-Booth, J. P. et al. Grass VESS: A modification of the visual evaluation of soil structure method for grasslands. Soil Use Manag. 34, 37–47. https://doi.org/10.1111/sum.12396 (2018).

    Article 

    Google Scholar 

  • Thoumazeau, A. et al. A new framework to assess the impact of land management on soil quality. Part A: Concept and validation of the set of indicators. Ecol. Indic. 97, 100–110. https://doi.org/10.1016/j.ecolind.2018.09.023 (2019).

    Article 

    Google Scholar 

  • Santos-Francés, F., Martínez-Graña, A., Ávila-Zarza, C., Criado, M. & Sánchez, Y. Comparison of methods for evaluating soil quality of semiarid ecosystem and evaluation of the effects of physico-chemical properties and factor soil erodibility (Northern Plateau, Spain). Geoderma 354, 113872–113872. https://doi.org/10.1016/j.geoderma.2019.07.030 (2019).

    Article 

    Google Scholar 

  • Jihong, P., Xiaojing, L. & Qinghua, H. A new quality evaluation system of soil and water conservation for sustainable agricultural development. Agric. Water Manag. 240, 106235. https://doi.org/10.1016/j.agwat.2020.106235 (2020).

    Article 

    Google Scholar 

  • Kang, G. S., Beri, V., Sidhu, B. S. & Rupela, O. P. A new index to assess soil quality and sustainability of wheat-based cropping systems. Biol. Fertil. Soils 41, 389–398. https://doi.org/10.1007/s00374-005-0857-4 (2005).

    Article 

    Google Scholar 

  • Gordillo-Rivero, Á. J., García-Moreno, J., Jordán, A., Zavala, L. M. & Granja-Martins, F. M. Fire severity and surface rock fragments cause patchy distribution of soil water repellency and infiltration rates after burning. Hydrol. Process. 28, 5832–5843. https://doi.org/10.1002/hyp.10072 (2014).

    Article 

    Google Scholar 

  • Moody, J. A., Kinner, D. A. & Úbeda, X. Linking hydraulic properties of fire-affected soils to infiltration and water repellency. J. Hydrol. 379, 291–303. https://doi.org/10.1016/j.jhydrol.2009.10.015 (2009).

    Article 

    Google Scholar 

  • Xiaoguang, W. et al. Litter water-holding capacity and soil physical properties of main afforestation tree species in sandstone area. J. Soil Water Conserv. 34, 137–144. https://doi.org/10.13870/j.cnki.stbcxb.2020.04.021 (2020).

    Article 

    Google Scholar 

  • Guoshuang, G. Study on the determination of soil bulk density. Journal of Irrigation and Dranage Engineering. 4, 38–40 (1983).

    Google Scholar 

  • Zhu, L., Wang, J., Weng, Y., Chen, X. & Wu, L. Soil characteristics of Eucalyptus urophylla × Eucalyptus grandis plantations under different management measures for harvest residues with soil depth gradient across time. Ecol. Ind. 117, 106530. https://doi.org/10.1016/j.ecolind.2020.106530 (2020).

    Article 

    Google Scholar 

  • Xiao, K. Carbon and Nitrogen Mineralization and Alkalinity Release Following Application of Plant Materials to Acid Soils Differing in Initial pH (Zhejiang University, 2014).

    Google Scholar 

  • Tu, J., Qiao, J., Zhu, Z., Li, P. & Wu, L. Soil bacterial community responses to long-term fertilizer treatments in Paulownia plantations in subtropical China. Appl. Soil. Ecol. 124, 317–326. https://doi.org/10.1016/j.apsoil.2017.09.036 (2018).

    Article 

    Google Scholar 

  • Chuihua, K. Research on plant allelopathy in China for the recent 16 years. Chin. J. Appl. Ecol. 31, 2139–2140 (2020).

    Google Scholar 

  • Ying, X., Yaru, L., Haiyan, Z. & Qizhi, L. Effect of polyphenols on camellia oil fatty acid and triglyceride under heating conditions. J. Cent. South Univ. For. Technol. 40, 127–134 (2020).

    Google Scholar 

  • Xu, Y. et al. Effects of different rotation periods of Eucalyptus plantations on soil physiochemical properties, enzyme activities, microbial biomass and microbial community structure and diversity. For. Ecol. Manage. 456, 148–153. https://doi.org/10.1016/j.foreco.2019.117683 (2020).

    Article 

    Google Scholar 

  • Sollins, P. & Gregg, J. W. Soil organic matter accumulation in relation to changing soil volume, mass, and structure: Concepts and calculations. Geoderma 301, 60–71. https://doi.org/10.1016/j.geoderma.2017.04.013 (2017).

    Article 

    Google Scholar 

  • Bobo, W. et al. Effects of logging residues on surface soil biochemical properties and enzymatic activity. Acta Ecol. Sin. 34, 1645–1653. https://doi.org/10.5846/stxb201310162495 (2014).

    Article 

    Google Scholar 

  • Ruiyong, J. et al. Correlation bwtween soil enzyme activity and physicochemical characteristics in agricultural black soils in Northeast China. Res. Soil Water Conserv. 22, 132–137+142 (2015).

    Google Scholar 

  • Bing, L. et al. Activity and influencing factors of soils CAT in different utilization types oflLand in Shenbei area. J. Shenyang Univ. (Nat. Sci.) 31, 465–473. https://doi.org/10.14108/j.cnki.1008-8873.2019.04.008 (2019).

    Article 

    Google Scholar 

  • Song, Y. et al. Short-term response of the soil microbial abundances and enzyme activities to experimental warming in a boreal peatland in Northeast China. Sustainability 11, 1–16. https://doi.org/10.3390/su11030590 (2019).

    Article 

    Google Scholar 

  • Giacomo, C. Fire as a soil-forming factor. Ambio 43, 191–195 (2014).

    Article 

    Google Scholar 

  • Liu, J., Wu, L., Chen, D., Li, M. & Wei, C. Soil quality assessment of different Camellia oleifera stands in mid-subtropical China. Appl. Soil. Ecol. 113, 29–35. https://doi.org/10.1016/j.apsoil.2017.01.010 (2017).

    Article 

    Google Scholar 

  • Zhili, Z., Liwei, Z., Qian, C., Xuehua, X. & Yuling, L. Water-holding capacity of three typical forest litter and soil in Mulan-weichang. J. Soil Water Conserv. 29, 207–213. https://doi.org/10.13870/j.cnki.stbcxb.2015.01.040 (2015).

    Article 

    Google Scholar 

  • Zhao, J. Study on the Effect of Refining Treatment on Soil Properties and Growth of Eucalyptus Urophylla Plantation (Central South University of Forestry and Technology, 2019).

    Google Scholar 

  • Moro, M. A. J. & Domingo, F. Litter decomposition in four woody species in a mediterranean climate: Weight loss, N and P dynamics. Ann. Bot. 86, 1065–1071. https://doi.org/10.1006/anbo.2000.1269 (2000).

    Article 

    Google Scholar 

  • Sharma, B. D., Arora, H., Kumar, R. & Nayyar, V. K. Relationships between soil characteristics and total and DTPA-extractable micronutrients in inceptisols of Punjab. Commun. Soil Sci. Plant Anal. 35, 799–818. https://doi.org/10.1081/CSS-120030359 (2004).

    Article 

    Google Scholar 

  • Yonghong, L. et al. Spatial variability and impacting factors of trace elements in hilly region of cropland in northwestern Zhejiang Province. J. Plant Nutr. Fertil. 22, 1710–1718 (2016).

    Google Scholar 

  • Lipeng, W. et al. Seasonal variations of growth and photosynthetic characteristice of Eucalyptus plantation. Guangdong For. Sci. Technol. 27, 63–66. https://doi.org/10.3969/j.issn.1006-4427.2011.05.012 (2011).

    Article 

    Google Scholar 

  • Xinmin, D., Zhonghong, W., Yongqin, Z. & Xuexia, P. Study on changes of soil salt and nutrient in greenhouse of different planting years. J. Soil Water Conserv. 21, 78–80 (2007).

    Google Scholar 

  • Linying, M., Yuelan, L., Guojun, W. & Yun, L. Studies of relations between soil organic matter content and soil bulk density in different soil level in Donglan county. Hubei Agric. Sci. 53, 59–62. https://doi.org/10.3969/j.issn.0439-8114.2014.01.016 (2014).

    Article 

    Google Scholar 

  • Mohammed, K., Lamb, D. T., Ray, C., Mallavarapu, M. & Ravi, N. Pore-water chemistry explains zinc phytotoxicity in soil. Ecotoxicol. Environ. Saf. 122, 252–259. https://doi.org/10.1016/j.ecoenv.2015.08.004 (2015).

    Article 

    Google Scholar 

  • Tsiknia, M., Tzanakakis, V. A., Oikonomidis, D., Paranychianakis, N. V. & Nikolaidis, N. P. Effects of olive mill wastewater on soil carbon and nitrogen cycling. Appl. Microbiol. Biotechnol. 98, 2739–2749. https://doi.org/10.1007/s13762-013-0285-1 (2014).

    Article 

    Google Scholar 

  • Ouyang, W., Wei, X. & Hao, F. Long-term soil nutrient dynamics comparison under smallholding land and farmland policy in northeast of China. Sci. Total Environ. 450–451, 129–139. https://doi.org/10.1016/j.scitotenv.2013.02.016 (2013).

    Article 

    Google Scholar 

  • Daniels, M. B. et al. Soil phosphorus variability in pastures: implications for sampling and environmental management strategies. J. Environ. Qual. 30, 2157–2165. https://doi.org/10.1006/jema.2001.0501 (2001).

    Article 

    Google Scholar 

  • Yanu, P. & Jakmunee, J. Flow injection with in-line reduction column and conductometric detection for determination of total inorganic nitrogen in soil. Talanta 144, 263–267. https://doi.org/10.1016/j.talanta.2015.06.002 (2015).

    Article 

    Google Scholar 

  • Ryan, B. C., Maguire, R. O. & Havlin, J. L. Change in soluble phosphorus in soils following fertilization is dependent on initial Mehlich-3 phosphorus. J. Environ. Qual. 35, 1818–1824. https://doi.org/10.2134/jeq2005.0404 (2006).

    Article 

    Google Scholar 

  • Guan, S. Y., Zhang, D. & Zhang, Z. Soil enzyme and its reserach methods. Agric. Beijing. 1, 274–297 (1986).

    Google Scholar 

  • Bailey, M. J. A note on the use of dinitrosalicylic acid for determining the products of enzymatic reactions. Appl. Microbiol. Biotechnol. 29, 494–496. https://doi.org/10.1007/BF00269074 (1988).

    Article 

    Google Scholar 

  • Murali, G., Alka, G., Arunachalam, V. & Magu, P. S. Impact of azadirachtin, an insecticidal allelochemical from neem on soil microflora, enzyme and respiratory activities. Biores. Technol. 98, 3154–3158. https://doi.org/10.1016/j.biortech.2006.10.010 (2007).

    Article 

    Google Scholar 

  • Mahajan, G. et al. Soil quality assessment of coastal salt-affected acid soils of India. Environ. Sci. Pollut. Res. 27, 26221–26238. https://doi.org/10.1007/s11356-020-09010-w (2020).

    Article 

    Google Scholar 

  • Guishun, X. Ji Chu Tu Rang Xue (China Agriculture Press Co., 2001).

    Google Scholar 

  • Qiao, J., Zhu, Y., Jia, X., Huang, L. & Shao, M. A. Development of pedotransfer functions for soil hydraulic properties in the critical zone on the Loess Plateau, China. Hydrol. Process. 32, 2915–2921. https://doi.org/10.1002/hyp.13216 (2018).

    Article 

    Google Scholar 

  • Liu, Y. et al. New insights into the role of microbial community composition in driving soil respiration rates. Soil Biol. Biochem. 118, 35–41. https://doi.org/10.1016/j.soilbio.2017.12.003 (2018).

    Article 

    Google Scholar 


  • Source: Ecology - nature.com

    Comparison of the effects of litter decomposition process on soil erosion under simulated rainfall

    World leaders must step up to put biodiversity deal on path to success