Potential hazard assessment of slope farmland soil erosion in black soil region of northeastern China
XIE Yun1, GAO Yan2, GU Zhijia1, LIU Gang1, GAO Xiaofei1, WEI Xin1, CHENG Congcong1, REN Xiaoyu1, WANG Sichu1
1. State Key Laboratory of Earth Surface Processes and Resource Ecology, Faculty of Geography, Beijing Normal University, 100875, Beijing, China; 2. Songliao River Water Resources Commission, Ministry of Water Resources, 130021, Changchun, China
Abstract:[Background] Soil depth with rich organic matter provides nutrients for grain production in the black soil region of northeastern China. However, at present, the thickness of the black soil layer in the black soil region of northeastern China is thinner or even lost. A large number of ephemeral gullies and permanent gullies have directly affected the sustainable use of black soil resources and national food security. Classification Standard for Potential Hazard of Soil Erosion (SL718—2015) issued by the Ministry of Water Resources (MWR) focusing on vegetation recovery may not be suitable for assessing slope farmland soil erosion risk. [Methods] Total 196 soil profile samples from slope farmland were collected in Songnen black soil region with area of 200 000 km2, and top soil depth for each sample was identified using quantitative index of mollic epipedon and isohumo features in Chinese soil taxonomy. According to the standard SL718—2015, the erosion risk was assessed for 196 samples using single index of anti-erodibility duration and combined index of vegetation recovery duration and slope degree respectively. Furthermore, they were assessed again by using modified values of anti-erodibility duration for each class based the rate of black soil formation. [Results] The anti-erodibility duration index could be used for assessing the potential hazard of soil depth decreasing caused by soil erosion. However, to maintain the crop growth and farmland productivity, it was better to change the value of threshold soil depth for estimating anti-erodibility duration from 10 cm to 20 cm. According to the standard SL718—2015, only 13.8% of the total 196 samples demonstrated potential hazard by using the index of anti-erodibility duration, and all the samples were classified as light, medium, and heavy potential hazard by using combined index of vegetation recovery duration and slope degree, of which 84.7% was light. The potential hazard degree was underestimated and the standard was not suitable for assessing the soil erosion potential hazard for the slope farmland. [Conclusions] To maintain the sustainable productivity of the black soil, the soil erosion rate should be less than or equal to soil formation rate, which could be used as the critical value for identifying soil erosion risk. The modified threshold values of the anti-erodibility duration for each potential hazard class were suggested as 2 000 years for not potential hazard, >500-2 000 years for light, >100-500 years for medium, >50-100 years for heavy, and ≤50 years for extreme potential hazard. Of total 196 samples, 36.7%, 36.2%, 5.1%, and 14.3% were light, medium, heavy, and extreme potential hazard under modified index class threshold values, i.e., the percentage over light potential hazard was 92.3%.
沈波, 范连荣, 潘庆宾, 等. 东北黑土区水土流失综合防治试点工程项目概况[J]. 中国水土保持, 2003(11):7. SHEN Bo, FAN Lianrong, PAN Qingbin, et al. Introduction on pilot project of comprehensive control of soil erosion in the black soil region of northeastern China[J]. Soil and Water Conservation in China, 2003(11):7.
[2]
解运杰, 王岩松, 王玉玺. 东北黑土区地域界定及其水土保持区划探析[J]. 水土保持通报, 2005, 25(1):48. XIE Yunjie, WANG Yansong, WANG Yuxi. Defining of chernozem area and zoning of soil and water conservation in northeastern China[J]. Bulletin of Soil and Water Conservation, 2005, 25(1):48.
[3]
刘兴土, 阎百兴. 东北黑土区水土流失与粮食安全[J]. 中国水土保持, 2009(1):17. LIU Xingtu, YAN Baixing. Soil erosion and food security in the northeastern black soil area of China[J]. Soil and Water Conservation in China, 2009(1):17.
[4]
中华人民共和国水利部. 全国水土保持规划(2015-2030年)[R]. http://www.mwr.gov.cn/zw/ghjh/201702/t20170213_855377.html. The Ministry of Water Resources of the People's Republic of China. National soil conservation planning (2015-2030)[R]. http://www.mwr.gov.cn/zw/ghjh/201702/t20170213_855377.html.
[5]
沈波, 王念忠, 张锋, 等. 东北黑土区和北方土石山区部分地区水土保持三级区划及其水土流失防治措施[J], 中国水土保持, 2015(12):38. SHEN Bo, WANG Nianzhong, ZHANG Feng, et al. Soil erosion control in the third sub-regions of soil conservation regionalization for northeastern black soil and part of north earth-rock mountain area[J]. Soil and Water Conservation in China, 2015(12):38.
[6]
于丹, 沈波, 谢军. 东北黑土区水土流失危害及其防治途径[J]. 水土保持通报, 1992, 12(2):25. YU Dan, SHEN Bo, XIE Jun. Damages caused by soil erosion and their controlling approaches in the black soil region of northeastern China[J]. Bulletin of Soil and Water Conservation, 1992, 12(2):25.
[7]
王其存, 齐晓宁, 王洋, 等. 黑土的水土流失及其保育治理[J]. 地理科学, 2003, 23(3):361. WANG Qicun, QI Xiaoning, WANG Yang, et al. Erosion of black soils and its reclamation[J]. Scientia Geographica Sinica, 2003, 23(3):361.
[8]
王玉玺, 谢运杰, 王萍. 东北黑土区水土流失成因分析[J]. 水土保持科技情报, 2002(3):27. WANG Yuxi, XIE Yunjie, WANG Ping. Causes of soil erosion in northeastern black soil region of China[J]. Information on Science and Technology, 2002(3):27.
[9]
王岩松, 王玉玺, 李洪兴. 黑土区范围界定及水土保持防治策略[J]. 中国水土保持, 2007(12):11. WANG Yansong, WANG Yuxi, LI Hongxing. Defining of black soil region and strategies for soil erosion control[J]. Soil and Water Conservation in China, 2007(12):11.
[10]
刘宝元, 阎百兴, 沈波, 等. 东北黑土区农地水土流失现状与综合治理对策[J]. 中国水土保持科学, 2008, 6(1):1. LIU Baoyuan, YAN Baixing, SHEN Bo, et al. Current status and comprehensive control strategies for cultivated land in the northeastern black soil area of China[J]. Science of Soil and Water Conservation, 2008, 6(1):1.
[11]
MORGAN R P C. Soil erosion and conservation (3rd Edition)[M]. Hoboken, New Jersey,USA:Blackwell Publishing, 2006:74.
[12]
傅伯杰, 陈利顶. 小流域土壤侵蚀危险评价研究[J]. 水土保持学报, 1993, 7(2):16. FU Bojie, CHEN Liding. Soil erosion risk assessment in small catchment[J]. Journal of Soil and Water Conservation, 1993, 7(2):16.
[13]
孙希华. 基于GIS的济南市土壤侵蚀潜在危险度评价研究[J]. 水土保持学报, 2003, 17(6):47. SUN Xihua. Research on soil erosion potential danger in Jinan based on GIS[J]. Journal of Soil and Water Conservation, 2003, 17(6):47.
[14]
WU Q, WANG M Y. A framework for risk assessment on soil erosion by water using an integrated and systematic approach[J]. Journal of Hydrology, 2007, 337(1/2):11.
[15]
倪九派, 傅涛, 何丙辉, 等. 基于GIS的丰都三合水土保持生态园区土壤侵蚀危险性评价[J]. 水土保持学报, 2002, 16(1):62. NI Jiupai, FU Tao, HE Binghui, et al. Assessment on danger of soil erosion in Sanhe Ecological Orchard based on GIS[J]. Journal of Soil and Water Conservation, 2002, 16(1):62.
[16]
傅世锋, 查轩. 土壤侵蚀危险性综合评判的物元模型[J]. 中国水土保持科学, 2005, 3(3):82. FU Shifeng, ZHA Xuan. Matter-element model to the comprehensive evaluation on danger of soil erosion[J]. Science of Soil and Water Conservation, 2005, 3(3):82.
[17]
覃小群, 邓艳, 蓝芙宁, 等. 基于GIS技术的典型岩溶石山区土壤侵蚀危险性评价:以广西平果县果化示范区为例[J]. 安全与环境工程, 2005, 12(4):69. QIN Xiaoqun, DENG Yan, LAN Funing, et al. Assessment on the soil erosion in the karst mountainous region based on GIS:Taking Guohua Ecological Target Area for example[J]. Safety and Environmental Engineering, 2005, 12(4):69.
[18]
时宇, 史明昌. 基于GIS的北京市水土流失生态风险评价[J]. 生态科学, 2014, 33(6):1100. SHI Yu, SHI Mingchang. Ecological risk assessment of soil erosion in Beijing based on GIS[J]. Ecological Science, 2014, 33(6):1100.
[19]
郑国权, 张晓远, 刘协亭. 基于GIS的广东省水土流失潜在危险度评价[J]. 水土保持通报, 2014, 34(2):139. ZHENG Guoquan, ZHANG Xiaoyuan, LIU Xieting. Assessment on potential danger degree of soil and water loss in Guangdong province based on GIS[J]. Bulletin of Soil and Water Conservation, 2014, 34(2):139.
[20]
王维芳, 尹铭昕, 李国春, 等. 基于GIS的土壤侵蚀潜在危险性评价[J]. 森林工程, 2014, 30(3):6. WANG Weifang, YIN Mingxin, LI Guocun, et al. Estimation on soil erosion potential risk based on GIS[J]. Forest Engineering, 2014, 30(3):6.
[21]
犹珀玉, 兰安军, 刘发勇, 等. 喀斯特山区土壤侵蚀危险性评价研究:以贵州省罗甸县为例[J]. 贵州师范大学学报(自然科学版), 2014, 32(3):22. YOU Poyu, LAN Anjun, LIU Fayong, et al. Karst mountain area of soil erosion risk assessment research:Taking Luodian county Guizhou province for example[J]. Journal of Guizhou Normal University (Natural Sciences), 2014, 32(3):22.
[22]
史志华, 蔡崇法, 蔡强国, 等. GIS支持下土壤侵蚀潜在危险度的分级研究[J]. 长江流域资源与环境, 2002, 10(2):190. SHI Zhihua, CAI Congfa, CAI Qiangguo, et al. Study on gradation of soil erosion potential danger using GIS[J]. Resources and Environment in the Yangtze Basin, 2002, 10(2):190.
[23]
闵婕, 杨华, 赵纯勇. GIS支持下的土壤侵蚀潜在危险度分级方法研究及应用[J]. 水土保持通报, 2005, 25(4):61. MIN Jie, YANG Hua, ZHAO Chunyong. GIS based gradation method and its use of soil erosion risk[J]. Bulletin of Soil and Water Conservation, 2005, 25(4):61.
[24]
徐劲林, 查轩. 土壤侵蚀危险度的计算与影响因子分析:以福建安溪红壤水土流失区为例[J]. 地球信息科学学报, 2009, 11(5):577. XU Jinlin, ZHA Xuan. Soil erosion risk assessment based on the research of impact factors:Taking Anxi county for example[J]. Journal of Geo-information Science, 2009, 11(5):577.
[25]
中华人民共和国水利部. SL190-96土壤侵蚀分类分级标准[S]. 北京:中国水利水电出版社, 1997:3. The Ministry of Water Resources of The People's Republic of China. SL190-96 Standards for classification and gradation of soil erosion[S]. Beijing:China Water and Power Press, 1997:3.
[26]
中华人民共和国水利部. SL190-2007土壤侵蚀分类分级标准[S]. 北京:中国水利水电出版社, 2007:2. The Ministry of Water Resources of The People's Republic of China. SL190-2007 standards for classification and gradation of soil erosion[S]. Beijing:China Water and Power Press, 2007:2.
[27]
中华人民共和国水利部. SL718-2015水土流失危险程度分级标准[S]. 北京:中国水利水电出版社, 2015:2. The Ministry of Water Resources of the People's Republic of China. SL718-2015 classification standards for potential hazard of soil erosion[S]. Beijing:China Water and Power Press, 2015:2.
[28]
郭志民, 陈志伟, 陈永宝. 应用GIS方法对土壤侵蚀潜在危险性进行评价及其时空分布特征研究[J]. 福建水土保持, 1999, 11(4):40. GUO Zhimin, CHEN Zhiwei, CHEN Yongbao. Assessment of soil erosion risk and its spatial-temporal variations by GIS[J]. Fujian Soil and Water Conservation, 1999, 11(4):40.
[29]
白建宏, 王玉玺, 刘凤飞, 等. 黑龙江省典型黑土区土壤侵蚀潜在危险度调查研究[J]. 中国水土保持, 2003(11):16. BAI Jianhong, WANG Yuxi, LIU Fengfei, et al. Soil erosion risk assessment in black soil region of Heilongjiang province[J]. Soil and Water Conservation in China, 2003(11):16.
[30]
万军, 蔡运龙, 路云阁, 等. 喀斯特地区土壤侵蚀风险评价:以贵州省关岭布依族苗族自治县为例[J]. 水土保持研究, 2003, 10(3):148. WAN Jun, CAI Yunlong, LU Yunge, et al. Soil erosion risk assessment in karst area:Case study in Guanling county of Guizhou province[J]. Research of Soil and Water Conservation, 2003, 10(3):148.
[31]
韩富伟, 张柏, 宋开山, 等. 长春市土壤侵蚀潜在危险度分级及侵蚀背景的空间分析[J]. 水土保持学报, 2007, 21(1):39. HAN Fuwei, ZHANG Bai, SONG Kaishan, et al. Gradation of soil erosion potential danger and spatial analysis on erosion background[J]. Journal of Soil and Water Conservation, 2007, 21(1):39.
[32]
龚子同. 中国土壤系统分类:理论·方法·实践[M]. 北京:科学出版社, 1999:442. GONG Zitong. Chinese soil taxonomy:Theory, method, practice[M]. Bejing:Science Press, 1999:442.
[33]
南京土壤研究所. 中国土壤系统分类检索(第三版)[M]. 合肥:中国科技大学出版社, 2001:28. Institute of Soil Science. Identification to Chinese soil taxonomy(3rd Edition)[M]. Hefei:China University of Science and Technology Press, 2001:28.
[34]
熊毅, 李庆逵. 中国土壤[M]. 北京:科学出版社, 1990:112. XIONG Yi, LI Qingkui. Soils in China[M]. Beijing:Science Press, 1990:112.
[35]
YE Y, FANG X Q, REN Y Y, et al. Cropland cover change in northeast China during the past 300 years[J]. Science in China Series D:Earth Sciences, 2009, 52(8):1172.
[36]
缪驰远. 东北典型黑土区土壤成土年龄及容许土壤流失量研究[D]. 北京:北京师范大学, 2008:94. MIAO Chiyuan. The soil formation age and soil loss tolerance in typical black soil of northeast China[D]. Beijing:Beijing Normal University, 2008:94.