Ecology and Environment ›› 2024, Vol. 33 ›› Issue (8): 1182-1191.DOI: 10.16258/j.cnki.1674-5906.2024.08.003
• Research Article [Ecology] • Previous Articles Next Articles
WANG Wenjing1,2,3(), ZHAI Shuijing1,*(
), WANG Sai1,2,3
Received:
2024-04-22
Online:
2024-08-18
Published:
2024-09-25
通讯作者:
翟水晶。E-mail: 作者简介:
王文静(1999年生),女,硕士研究生,主要研究方向为湿地生态系统硅的循环。E-mail: wwj17662426185@163.com
基金资助:
CLC Number:
WANG Wenjing, ZHAI Shuijing, WANG Sai. Distribution Characteristics of Silicon and Its Influencing Factors in the Wetland Soils along the Minjiang River Downstream[J]. Ecology and Environment, 2024, 33(8): 1182-1191.
王文静, 翟水晶, 王赛. 闽江下游湿地土壤硅的沿程分布特征及影响因素[J]. 生态环境学报, 2024, 33(8): 1182-1191.
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URL: https://www.jeesci.com/EN/10.16258/j.cnki.1674-5906.2024.08.003
样点 | pH | 含水率/% | 黏粒质量分数/% | 粉粒质量分数/% | 砂粒质量分数/% | EC/(mS·cm−1) |
---|---|---|---|---|---|---|
S1 | 6.91±0.34ab | 29.7±7.04c | 9.69±1.36b | 17.5±3.60a | 72.8±4.65d | 0.07±0.02c |
S2 | 5.71±0.11d | 50.1±2.01a | 8.32±0.81b | 32.1±4.81c | 59.5±5.33d | 0.06±0.02c |
S3 | 6.42±0.06c | 45.3±2.12ab | 9.08±1.41b | 45.1±4.49b | 45.9±5.79c | 0.17 ±0.01c |
S4 | 5.97±0.07d | 43.4±1.04b | 14.7±1.18a | 60.2±3.01a | 25.1±4.05b | 1.63±0.29b |
S5 | 7.18±0.26a | 42.2±1.08b | 5.14±2.99c | 17.3±9.71c | 77.5±12.7a | 3.95±1.27a |
S6 | 6.69±0.23bc | 43.7±0.10ab | 13.1±1.73a | 64.2±2.73a | 22.8±3.38a | 4.36±0.64a |
Table 1 Soil physical and chemical properties in the wetland of the Minjiang River downstream
样点 | pH | 含水率/% | 黏粒质量分数/% | 粉粒质量分数/% | 砂粒质量分数/% | EC/(mS·cm−1) |
---|---|---|---|---|---|---|
S1 | 6.91±0.34ab | 29.7±7.04c | 9.69±1.36b | 17.5±3.60a | 72.8±4.65d | 0.07±0.02c |
S2 | 5.71±0.11d | 50.1±2.01a | 8.32±0.81b | 32.1±4.81c | 59.5±5.33d | 0.06±0.02c |
S3 | 6.42±0.06c | 45.3±2.12ab | 9.08±1.41b | 45.1±4.49b | 45.9±5.79c | 0.17 ±0.01c |
S4 | 5.97±0.07d | 43.4±1.04b | 14.7±1.18a | 60.2±3.01a | 25.1±4.05b | 1.63±0.29b |
S5 | 7.18±0.26a | 42.2±1.08b | 5.14±2.99c | 17.3±9.71c | 77.5±12.7a | 3.95±1.27a |
S6 | 6.69±0.23bc | 43.7±0.10ab | 13.1±1.73a | 64.2±2.73a | 22.8±3.38a | 4.36±0.64a |
指标 | pH | EC | 含水率 | 黏粒 | 粉粒 | 砂粒 | 植物生物硅 | 地下生物量 | 地上生物量 |
---|---|---|---|---|---|---|---|---|---|
全硅 | 0.32** 1) | −0.08 | −0.26** | −0.19 | −0.31* 2) | 0.30* | 0.01 | −0.03 | −0.28 |
有效硅 | 0.11 | 0.51** | 0.18 | 0.39** | 0.63** | −0.61** | −0.22 | 0.59** | 0.47* |
生物硅 | 0.08 | 0.18 | −0.01 | 0.26* | 0.24* | −0.25* | 0.46 | −0.22 | 0.29 |
Table 2 Correlation between different silicon content and environmental factors in soil in the wetland of the Minjiang River downstream
指标 | pH | EC | 含水率 | 黏粒 | 粉粒 | 砂粒 | 植物生物硅 | 地下生物量 | 地上生物量 |
---|---|---|---|---|---|---|---|---|---|
全硅 | 0.32** 1) | −0.08 | −0.26** | −0.19 | −0.31* 2) | 0.30* | 0.01 | −0.03 | −0.28 |
有效硅 | 0.11 | 0.51** | 0.18 | 0.39** | 0.63** | −0.61** | −0.22 | 0.59** | 0.47* |
生物硅 | 0.08 | 0.18 | −0.01 | 0.26* | 0.24* | −0.25* | 0.46 | −0.22 | 0.29 |
成分 | 初始特征值 | 环境 因子 | 主成分 | ||||
---|---|---|---|---|---|---|---|
特征值 | 贡献率/ % | 累积贡献率/ % | Z1 | Z2 | Z3 | ||
1 | 3.25 | 54.2 | 54.2 | pH | −0.61 | 0.73 | −0.04 |
2 | 1.44 | 24.0 | 78.2 | EC | 0.18 | 0.87 | 0.39 |
3 | 1.02 | 16.9 | 95.1 | 含水率 | 0.47 | −0.29 | 0.82 |
4 | 0.20 | 3.27 | 98.3 | 黏粒 | 0.86 | 0.15 | −0.43 |
5 | 0.10 | 1.67 | 100.0 | 粉粒 | 0.97 | 0.15 | −0.02 |
6 | 0.00 | 0.00 | 100.0 | 砂粒 | −0.98 | −0.16 | 0.09 |
Table 3 Characteristic values and principal component matrix of soil silicon in the wetland of the Minjiang River downstream
成分 | 初始特征值 | 环境 因子 | 主成分 | ||||
---|---|---|---|---|---|---|---|
特征值 | 贡献率/ % | 累积贡献率/ % | Z1 | Z2 | Z3 | ||
1 | 3.25 | 54.2 | 54.2 | pH | −0.61 | 0.73 | −0.04 |
2 | 1.44 | 24.0 | 78.2 | EC | 0.18 | 0.87 | 0.39 |
3 | 1.02 | 16.9 | 95.1 | 含水率 | 0.47 | −0.29 | 0.82 |
4 | 0.20 | 3.27 | 98.3 | 黏粒 | 0.86 | 0.15 | −0.43 |
5 | 0.10 | 1.67 | 100.0 | 粉粒 | 0.97 | 0.15 | −0.02 |
6 | 0.00 | 0.00 | 100.0 | 砂粒 | −0.98 | −0.16 | 0.09 |
[1] | ALEXANDRE A, MEUNIER J D, COLIN F, et al., 1997. Plant impact on the biogeochemical cycle of silicon and related weathering processes[J]. Geochimica et Cosmochimica Acta, 61(3): 677-682. |
[2] | BERNARDEZ P, FRANCES G, PREGO R, 2006. Benthic-pelagic coupling and postdepositional processes as revealed by the distribution of opal in sediments: The case of the Ría de Vigo (NW Iberian Peninsula)[J]. Estuarine, Coastal and Shelf Science, 68(1-2): 271-281. |
[3] | BILLEN G, LANCELOT C, MEYBECK M, et al., 1991. N, P and Si retention along the aquatic continuum from land to ocean[J]. Ocean Margin Processes in Global Change, 1: 19-44. |
[4] |
CAUBET M, CORNU S, SABY N P, et al., 2020. Agriculture increases the bioavailability of silicon, a beneficial element for crop, in temperate soils[J]. Scientific Reports, 10(1): 19999-19999.
DOI PMID |
[5] | CHRISTINA L, DE L R, MARK A, et al., 2000. A first look at the distribution of the stable isotopes of silicon in natural waters[J]. Geochimica et Cosmochimica Acta, 64(14): 2467-2477. |
[6] | CORNELIS J T, TITEUX H, RANGER J, et al., 2011. Identification and distribution of the readily soluble silicon pool in a temperate forest soil below three distinct tree species[J]. Plant and Soil, 342(1): 369-378. |
[7] | EPSTEIN E, 1999. Silicon[J]. Annual Review of Plant Biology, 50(1): 641-664. |
[8] | HAYNES R J, BELAEVA O N, KINGSTON G, 2013. Evaluation of industrial wastes as sources of fertilizer silicon using chemical extractions and plant uptake[J]. Journal of Plant Nutrition and Soil Science, 176(2): 238-248. |
[9] |
HOU L J, LIU M, YANG Y, et al., 2010. Biogenic silica in intertidal marsh plants and associated sediments of the Yangtze Estuary[J]. Journal of Environmental Sciences, 22(3): 374-380.
PMID |
[10] | LANNING F C, ELEUTERIUS L N, 1985. Silica and ash in tissues of some plants growing in the coastal area of Mississippi[J]. Annals of Botany, 56(2): 157-172. |
[11] | LI Z M, MEUMIER J D, DELVAUXB, 2022. Aggregation reduces the release of bioavailable silicon from allophane and phytolith[J]. Geochimica et Cosmochimica Acta, 325: 87-105. |
[12] | LI Z M, UNZUE B D, CORNELIS J T, et al., 2019. Effects of phytolithic rice-straw biochar, soil buffering capacity and pH on silicon bioavailability[J]. Plant and Soil, 438(1): 187-203. |
[13] | MA J F, TAKAHSHI E, 2002. Soil, fertilizer and plant silicon research in Japan[M]. Amsterdam: Elsevier: 63-106. |
[14] | MEUNIER J D, CORNU S, KELLER C, et al., 2002. The role of silicon in the supply of terrestrial ecosystem services[J]. Environmental Chemistry Letters, 20(3): 2109-2121. |
[15] | MEUNIER J D, SANDHYA K, PRAKASH N B, et al., 2018. pH as a proxy for estimating plant available Si? A case study in rice fields in Karnataka (South India)[J]. Plant and Soil, 432(1): 143-155. |
[16] |
MITANIN, MA J F, 2005. Uptake system of silicon in different plant species[J]. Journal of Experimental Botany, 56(414): 1255-1261.
DOI PMID |
[17] | MORTLOCK R A, FROELICH P N, 1989. A simple method for the rapid determination of biogenic opal in pelagic marine sediments[J]. Deep Sea Research Part A. Oceanographic Research Papers, 36(9): 1415-1426. |
[18] | NORRIS A R, HACKNEY C T, 1999. Silica content of a mesohaline tidal marsh in north Carolina, Estuarine[J]. Coastal and Shelf Science, 49(4): 597-605. |
[19] | PAUL J, TREGUER, CHRISTINA L, et al., 2013. The world ocean silica cycle[J]. Annual Review of Marine Science, 5(1): 477-501. |
[20] | RICHARD J H, 2017. The nature of biogenic Si and its potential role in Si supply in agricultural soils[J]. Agriculture, Ecosystems & Environment, 245: 100-111. |
[21] |
SCHELSKE C L, STOERMER E F, 1971. Eutrophication, silica depletion, and predicted changes in algal quality in Lake Michigan[J]. Science, 173(3995): 423-424.
DOI PMID |
[22] | SHAKOOR S A, BHAT M, MIR S, 2014. Phytoliths in plants: A review[J]. Research and Reviews: Journal of Botanical Sciences, 3: 10-24. |
[23] | SOCRATIS L, PHILIPPE V C, THILO B, 2008. Dissolution of biogenic silica from land to ocean: role of salinity and pH[J]. Limnology and Oceanography, 53(4): 1614-1621. |
[24] | SOMMER M, KACZOREK D, KUZYAKOV Y, et al., 2006. Silicon pools and fluxes in soils and landscapes: A review[J]. Plant Nutrition and Soil Science, 169(4): 310-329. |
[25] | STRUYF, ERIC, DANIEL J, et al., 2009. Silica: An essential nutrient in wetland biogeochemistry[J]. Frontiers in Ecology and the Environment, 7(2): 88-94. |
[26] | STRUYF E, VAN D S, GRIBSHOLT B, et al., 2007. Phragmites australis and silica cycling in tidal wetlands[J]. Aquatic Botany, 87(2): 134-140. |
[27] | STRUYF E, VAN D S, GRIBSHOLT B, et al., 2005. Biogenic silica in tidal freshwater marsh sediments and vegetation (Schelde estuary, Belgium)[J]. Marine Ecology Progress Series, 303: 51-60. |
[28] | STRUYF E, CARL-MAGUNS M, CHRISTOPH H, et al., 2010. An enormous amorphous silica stock in boreal wetlands[J]. Journal of Geophysical Research, 115(G4): G04008. |
[29] | TORN M S, TRUMBORE S E, CHADWICK O A, et al., 1997. Mineral control of soil organic carbon storage and turnover[J]. Nature, 389(6647): 170-173. |
[30] | TRÉGUER P, NELSON D M, VAN B A, et al., 1995. The Silica Balance in the World Ocean: A Reestimate[J]. Science, 268(5209): 376-79. |
[31] | TUBANA B S, BABU T, DATNOFF L E, 2016. A review of silicon in soils and plants and its role in US agriculture: History and future perspectives[J]. Soil Science, 181(9-10): 393-411. |
[32] | TURNER B F, WHITE A F, BRANTLEY S L, 2010. Effects of temperature on silicate weathering: Solute fluxes and chemical weathering in a temperate rain forest watershed, Jamieson Creek, British Columbia[J]. Chemical Geology, 269(1-2): 62-78. |
[33] | VAN C P, QIU L, 1997. Biogenic silica dissolution in sediments of the Southern Ocean. II. Kinetics[J]. Deep Sea Research Part II: Topical Studies in Oceanography, 44(5): 1109-1128. |
[34] | WEISS A, AMANN T, HARTMANN J, 2013. Silica dynamics of tidal marshes in the inner Elbe Estuary, Germany[J]. Silicon, 5(1): 75-89. |
[35] | XIA S P, SONG Z L, FAN Y R, et al., 2023. Spatial distribution patterns and controls of bioavailable silicon in coastal wetlands of China[J]. Plant Soil, 493(1-2): 187-205. |
[36] | YANG S L, HAO Q, LIU H Y, et al., 2019. Impact of grassland degradation on the distribution and bioavailability of soil silicon: Implications for the Si cycle in grasslands[J]. Science of Total Environment, 657: 811-818. |
[37] | ZHANG L L, CHEN M H, XIANG R, et al., 2009. Distribution of biogenic silica content in surface sediments from the southern South China Sea and its environmental significance[J]. Marine Science Bulletin, 11(1): 43-52. |
[38] | ZHAO X W, ZHANG X D, LI Z, et al., 2023. Silicon fractionations at the margin of a coastal wetland and its response to sea level rise[J]. Geoderma, 269: 62-78. |
[39] | 鲍士旦, 2008. 土壤农化分析[M]. 北京: 中国农业出版社: 235-236. |
BAO S D, 2008. Soil and agricultural chemistry analysis[M]. Beijing: China Agriculture Press: 235-236. | |
[40] | 陈敏建, 王立群, 丰华丽, 等, 2008. 湿地生态水文结构理论与分析[J]. 生态学报, 28(6): 2887-2893. |
CHEN M J, WANG L Q, FENG H L, et al., 2008. Theory and analysis of wetlands’ eco-hydrological configuration[J]. Acta Ecologica Sinica, 28(6): 2887-2893. | |
[41] | 高会, 2018. 闽江河口湿地植物-土壤系统硅素的分配特征研究[D]. 福州: 福建师范大学: 40-47. |
GAO H, 2018. Distribution characteristics of silica in plant-soil systems in the wetland of Min River estuary[D]. Fuzhou: Fujian Normal University: 40-47. | |
[42] |
侯贯云, 翟水晶, 乐晓青, 等, 2017. 潮汐对闽江口感潮湿地孔隙水及土壤中硅、氮浓度的影响[J]. 应用生态学报, 28(1): 337-344.
DOI |
HOU G Y, ZHAI S J, LE X Q, et al., 2017. Influences of tide on silicon and nitrogen contents in soil and porewater in the Minjiang River estuary, Southeast China[J]. Chinese Journal of Applied Ecology, 28(1): 337-344. | |
[43] | 黄镇国, 1996. 中国南方红色风化壳[M]. 北京: 海洋出版社: 1-56. |
HUANG Z G, 1996. Red weathered crust in southern China[M]. Beijing: Chinese Ocean Press: 1-56. | |
[44] | 贾国涛, 顾会战, 许自成, 等, 2016. 作物硅素营养研究进展[J]. 山东农业科学, 48(5): 153-158. |
JIA G T, GU H Z, XU Z C, et al., 2016. Research progress on silica nutrition in crops[J]. Shandong Agricultural Sciences, 48(5): 153-158. | |
[45] | 李家书, 谢振翅, 胡定金, 等, 1997. 湖北省土壤有效硅含量分布[J]. 热带亚热带土壤科学, 6(3): 176-181. |
LI J S, XIE Z C, HU D J, et al., 1997. Study on soil available silicon content and Si fertilizer application in Hubei[J]. Tropical and Subtropical Soil Science, 6(3): 176-181. | |
[46] | 李亚瑾, 2021. 闽江福州段湿地沉积物重金属分布特征及其生态风险评估[D]. 福州: 福建师范大学: 10-14. |
LI Y J, 2021. Spatial distribution and ecological risk assessment of heavy metals in marsh sediments in Fuzhou reaches of the Min River[D]. Fuzhou: Fujian Normal University: 10-14. | |
[47] | 李自民, 宋照亮, 李蓓蕾, 2013. 白洋淀芦苇湿地生态系统中植硅体的产生和积累研究[J]. 土壤学报, 50(3): 632-636. |
LI Z M, SONG Z L, LI P L, 2013. Generation and accumulation of phytoliths in Baiyangdian reed wetland ecosystems[J]. Acta Pedological Sinica, 50(3): 632-636. | |
[48] | 渠悦, 马涛, 胡月明, 等, 2021. 从化区农田耕层土壤有效硅空间分布及影响因素[J]. 农业资源与环境学报, 38(6): 989-998. |
LIAN Y, MA T, HU Y M, et al., 2021. Spatial distribution and influencing factors of soil available silicon in farmland cultivated layers in Conghua district[J]. Journal of Agricultural Resources and Environment, 38(6): 989-998. | |
[49] | 刘丽君, 黄张婷, 孟赐福, 等, 2021. 中国不同生态系统土壤硅的研究进展[J]. 土壤学报, 58(1): 31-41. |
LIU L J, HUANG Z T, MENG C F, et al., 2021. Research progress on soil silicon in different ecosystems in China[J]. Acta Pedological Sinica, 58(1): 31-41. | |
[50] | 刘鸣达, 张玉龙, 2001. 水稻土硅素肥力的研究现状与展望[J]. 土壤通报, 32(4): 187-192. |
LIU M D, ZHANG Y L, 2001. Advance in the study of silicon fertility in paddy fields[J]. Chinese Journal of Soil Science, 32(4): 187-192. | |
[51] | 刘森, 冉祥滨, 车宏, 等, 2014. 黄河口湿地土壤中生物硅的分布与植硅体的形态特征[J]. 土壤, 46(5): 886-893. |
LIU S, RAN X B, CHE H, et al., 2014. Distribution of biogenic silica and composition of phytolith in the Yellow River estuary wetland[J]. Soils, 46(5): 886-893. | |
[52] | 马朝红, 杨利, 胡时友, 2009. 土壤供硅能力与硅肥应用研究进展[J]. 湖北农业科学, 48(4): 987-989. |
MA C H, YANG L, HU S Y, 2009. Silicon supplying ability of soil and advances of silicon fertilizer research[J]. Hubei Agricultural Sciences, 48(4): 987-989. | |
[53] | 米慧珊, 2016. 闽江河口湿地典型植物群落与交错带SiO2分布特征及植硅体固碳潜力研究[D]. 福州: 福建师范大学: 15-30. |
MI H S, 2016. Distribution characteristics of SiO2 and the potential of phytolith sequestration carbon in typical plant communities and ecotones in the Min River Estuary[D]. Fuzhou: Fujian Normal University: 15-30. | |
[54] | 邱思婷, 米慧珊, 高会, 等, 2020. 闽江河口湿地不同植被带土壤全硅的含量及分布特征[J]. 生态学报, 40(22): 8306-8314. |
QIU S T, MI H S, GAO H, et al., 2020. Total silicon content and distribution characteristics of wetland soil in different vegetation zones in the Min River estuary[J]. Acta Ecologica Sinica, 40(22): 8306-8314. | |
[55] | 冉祥滨, 车宏, 臧家业, 等, 2015. 黄河流域硅的组成与输出[J]. 中国科学: 地球科学, 45(7): 982-993. |
RAN X B, CHE H, ZANG J Y, et al., 2015. Variability in the composition and export of silica in the Huanghe River Basin[J]. Science China Press, 45(7): 982-993. | |
[56] | 王赛, 翟水晶, 邱思婷, 等, 2022. 闽江下游湿地植物硅素空间分布特征及其影响因素[J]. 亚热带资源与环境学报, 17(1): 58-63. |
WANG S, ZHAI S J, QIU S T, et al., 2022. Spatial distribution characteristics of plant silicon in wetlands downstream of Min River[J]. Journal of Subtropical Resources and Environment, 17(1): 58-63. | |
[57] | 王仕海, 张崇德, 杨文钢, 等, 2022. 六盘水市烟田土壤有效硅含量与空间分布特征[J]. 土壤, 54(5): 945-949. |
WANG S H, ZHANG C D, YANG W G, et al., 2022. Contents and spatial distribution of soil available silicon of tobacco fields in Liupanshui city[J]. Soils, 54(5): 945-949. | |
[58] | 王生全, 谢宵斐, 侯晨涛, 等, 2009. 煤矸石制作硅肥技术试验研究[J]. 煤田地质与勘探, 37(6): 43-46. |
WANG S Q, XIE X F, HOU J T, et al., 2009. Technology for producing silicon fertilizer from coal gangue[J]. Coal Geology & Exploration, 37(6): 43-46. | |
[59] | 汪秀芳, 叶文, 陈圣宾, 等, 2007. 漳江流域沿岸植物叶片中Si元素含量的变化[J]. 北京林业大学学报, 29(6): 47-52. |
WANG X F, YE W, CHEN S B, et al., 2007. Changes of Si concentration in leaves of plants along the Zhangjiang River Watershed, southeastern China[J]. Journal of Beijing Forestry University, 29(6): 47-52. | |
[60] | 魏朝富, 杨剑虹, 高明, 等, 1997. 紫色水稻土硅有效性的研究[J]. 植物营养与肥料学报, 3(3): 229-236. |
WEI C F, YANG J H, GAO M, et al., 1997. Study on available of silicon in paddy soils from purple soil[J]. Journal of Plant Nutrition and Fertilizers, 3(3): 229-236. | |
[61] | 杨雅杰, 1995. 用镍坩埚碱溶消化测定水稻植株硅的方法[J]. 生物技术, 5(3): 42-44. |
YANG Y J, 1995. Separation、characterization、immobilization of photobacteria in PVA vectors and application of it in cleaning water of fish pool[J]. Biotechnology, 5(3): 42-44. | |
[62] | 臧家业, 王昊, 刘军, 等, 2020. 生物硅组成及对硅循环影响的研究进展[J]. 海洋科学进展, 38(1): 11-20. |
ZANG J Y, WANG H, LIU J, et al., 2020. The research progress in biogenic silica composition and its impactions on silica cycle[J]. Advances in Marine Sciences, 38(1): 11-20. | |
[63] | 翟水晶, 薛丽丽, 2016. 闽江口潮滩湿地不同植被带土壤及间隙水中硅的分布特征[J]. 生态学报, 36(21): 6766-6776. |
ZHAI S J, XUE L L, 2016. Changes in the distribution of silica in the porewaters and sediments of the intertidal zone with different plant communities in the Min River Estuary[J]. Acta Ecologica Sinica, 36(21): 6766-6776. | |
[64] | 张林海, 曾从盛, 仝川, 2008. 闽江河口湿地芦苇和互花米草生物量季节动态研究[J]. 亚热带资源与环境学报, 3(2): 25-33. |
ZHANG L H, ZENG C S, TONG C, 2008. Study on biomass dynamics of phragmites australis and spartina alterniflora in the wetlands of Minjiang River Estuary[J]. Journal of Subtropical Resources and Environment, 3(2): 25-33. | |
[65] | 张晓东, 2016. 中国东部森林土壤中植硅体积累和硅形态分布研究[D]. 杭州: 浙江农林大学: 29-37. |
ZHANG X D, 2016. Research on phytolith accumulation and noncrystalline silicon distribution of forest soils in East China[D]. Hangzhou: Zhejiang A & F University: 29-37. | |
[66] | 张兴梅, 张之一, 殷奎生, 等, 1996. 土壤有效硅含量及其与土壤理化性状的相关研究[J]. 黑龙江八一农垦大学学报, 8(4): 42-45. |
ZHANG X M, ZHANG Z Y, YIN K S, et al., 1996. Study on the available silicon content and the relationship between it and the properties of physics and chemistry of soils[J]. Journal of Heilongjiang august first land Reclamation University, 8(4): 42-45. | |
[67] | 赵烨, 李天杰, 1995. 南极乔治王岛菲尔德斯半岛土壤矿物化学风化特征分析[J]. 南极研究(中文版), 7(2): 21-27. |
ZHAO Y, LI T J, 1995. Analysis of the chemical weathering characteristics of soil minerals on fields peninsula of King George Island, Antarctica[J]. Antarctic Research (Chinese edition), 7(2): 21-27. | |
[68] | 郑德祥, 钟兆全, 龚直文, 等, 2005. 闽江流域生态安全问题及建议[J]. 北华大学学报(自然科学版), 6(5): 445-448. |
ZHENG D X, ZHONG Z Q, GONG Z W, et al., 2005. The problems of ecological security in Minjiang River basin and suggestion[J]. Journal of Beihua University (Natural Science), 6(5): 445-448. |
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