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Frontiers of Environmental Science & Engineering

ISSN 2095-2201

ISSN 2095-221X(Online)

CN 10-1013/X

Postal Subscription Code 80-973

2018 Impact Factor: 3.883

Front Envir Sci Eng Chin    2011, Vol. 5 Issue (4) : 564-572    https://doi.org/10.1007/s11783-011-0348-9
RESEARCH ARTICLE
Effect of land use and land cover change on soil erosion and the spatio-temporal variation in Liupan Mountain Region, southern Ningxia, China
Bin QUAN1,2,4(), M. J. M. R?MKENS3, Rui LI2, Fang WANG1,5, Jie CHEN1
1. Institute of Geospatial Information Science, Hunan University of Science and Technology, Xiangtan 411201, China; 2. State Key Laboratory of Soil Erosion and Dryland Farming on the Loess Plateau, Institute of Water and Soil Conservation, Chinese Academy of Sciences and Ministry of Water Resources, Yangling 712100, China; 3. USDA/ARS, National Sedimentation Laboratory, P. O. Box 1157, Oxford, MS 38655, USA; 4. Hunan Key Laboratory of Coal Resources Clean-utilization and Mine Environment Protection, Hunan University of Science and Technology, Xiangtan 411201, China; 5. State Key Laboratory of Remote Sensing Science, Beijing Normal University/The Institute of Remote Sensing Applications of Chinese Academy of Sciences, Beijing 100875, China
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Abstract

The Liupan Mountains are located in the southern Ningxia Hui Autonomous Region of China, that forms an important divide between landforms and bio-geographic regions. The populated part of the Liupan Mountain Region has suffered tremendous ecological damage over time due to population pressure, excessive demand and inappropriate use of agricultural land resources. To present the relationship between land use/cover change and spatio-temporal variation of soil erosion, data sets of land use between the late 1980s and 2000 were obtained from Landsat Thematic Mapper (TM) imagery, and spatial models were used to characterize landscape and soil erosion conditions. Also, soil erosion in response to land use and land cover change were quantified and analyzed using data from geographical information systems and remote sensing. Soil erosion by water was the dominant mode of soil loss, while soil erosion by wind was only present on a relatively small area. The degree of soil erosion was classified into five severity classes: slight, light, moderate, severe, and very severe. Soil erosion in the Liupan Mountain Region increased between the late 1980s and 2000, both in terms of acreage and severity. Moderate, severe, and very severe eroded areas accounted for 54.86% of the total land area. The lightly eroded area decreased, while the moderately eroded area increased by 368817 ha (22%) followed by severe erosion with 146552 ha (8.8%), and very severe erosion by 97067.6 ha (5.8%). Soil loss on sloping cropland increased with slope gradients. About 90% of the cropland was located on slopes less than 15°. Most of the increase in soil erosion on cropland was due to conversion of steep slopes to cropland and degradation of grassland and increased activities. Soil erosion was severe on grassland with a moderate or low grass cover and on dry land. Human activities, cultivation on steep slopes, and overgrazing of pastures were the main reasons for the increase in erosion severity.

Keywords land use/land cover change      soil erosion      geographical information system      remote sensing      Liupan Mountain Region     
Corresponding Author(s): QUAN Bin,Email:quanbin308@yahoo.com.cn   
Issue Date: 05 December 2011
 Cite this article:   
Bin QUAN,M. J. M. R?MKENS,Rui LI, et al. Effect of land use and land cover change on soil erosion and the spatio-temporal variation in Liupan Mountain Region, southern Ningxia, China[J]. Front Envir Sci Eng Chin, 2011, 5(4): 564-572.
 URL:  
https://academic.hep.com.cn/fese/EN/10.1007/s11783-011-0348-9
https://academic.hep.com.cn/fese/EN/Y2011/V5/I4/564
Fig.1  Land cover of the Liupan Mountain Region in 1990 (a) and 2000 (b)
typesoil erosion intensity classification
1 water erosionslight, light, moderate, severe, very severe
2 wind erosionslight, light, moderate, severe, very severe
Tab.1  The classification system of soil erosion in Liupan Mountain Region
codeseverity classdescription
11slight erosionerosion amount<1000 t·km-2·a-1 or lost soil layer thickness<0.8 mm·a-1
12light erosionerosion amount is between 1000 and 2500 t·km-2·a or lost soil layer thickness is between 0.8 and 2 mm·a-1
13moderate erosionerosion amount is between 2500-5000 t·km-2·a-1 or lost soil layer thickness is between 2 and 4 mm·a-1
14severe erosionerosion amount is between 5000 and 8000 t·km-2·a-1 or lost soil layer thickness is between 4 and 6 mm·a-1
15very severe erosionerosion amount is between 8000 and 15000 t·km-2·a-1 or lost soil layer thickness is between 6 and 12 mm·a-1
Tab.2  Soil erosion severity subclasses by water in Liupan Mountain Region
codeseverity classwind erosionsurface configurationvegetation coverage/%
thickness/(mm·a-1)amount/(t·km-2·a-1)
21slight erosion<2<200fixed sand dune, sand land and bottomland>70
22light erosion2-10200-2500fixed sand dune, semi-fixed sand dune and sand land70-50
23moderate erosion10-252500-5000semi-fixed sand dune and sand land50-30
24severe erosion25-505000-8000semi-fixed sand dune, mobile sand dune and sand land30-10
25very Severe erosion>50>8000mobile sand dune, sand land<10
Tab.3  Soil erosion severity subclasses by wind in Liupan Mountain Region
Fig.2  Soil erosion status in Liupan Mountain Region in 2000
codeerosion type and intensityarea/hapercentage/%
year 1986year 2000year 1986year 2000
11slight water erosion514019.97415329.8430. 724. 8
12light water erosion827437.86341196.9349.420.4
13moderate water erosion95684.13464500.985.727.7
14severe water erosion211468.95358021.2612.621.4
15very severe water erosion-97067.61-5.8
21slight wind erosion221.040.630.010.00
23moderate wind erosion27288.54-1.6-
Tab.4  Changes in soil erosion in Liupan Mountain Region
countyslightlightmoderateseverevery severe
Pengyang158293315
Xiji133035157
Haiyuan231739174
Guyuan34226335
Longde372427110
Jingyuan49331800
Tab.5  Percentage of the surface in the different soil erosion severity classes in each county of the Liupan Mountain Region in 2000/%
countyslightlightmoderateseverevery severe
Pengyang7-64192315
Xiji7-553577
Haiyuan-10-242554
Guyuan-13-61135
Longde-6-232700
Jingyuan-423018-60
Tab.6  Change in the percentage of the surface area of the soil erosion severity classes for each county in the Liupan Mountain Region between 1986 and 2000 /%
gradesoil loss/%percentage in 1986/%percentage in 2000/%change
1≥9033.490-33.49
280-90033.49+ 33.49
360-8032.9162.02+ 29.11
420-6029.114.49-24.62
5<204.490-4.49
Tab.7  The 1986 and 2000 distribution of soil erosion grades in Liupan Mountain Region
Fig.3  Changes in soil loss severity for the different counties in the Liupan Mountain Region from 1986 to 2000
county19862000change
Pengyang243449206
Xiji221343122
Haiyuan212321109
Guyuan198302104
Longde15722770
Jingyuan4113998
Tab.8  Soil erosion degree and its changes between 1986 and 2000 for the Liupan Mountain Region
land use typea)area in late 1980s/km2percentage in late 1980s/%area in 2000/km2percentage in 2000/%erosion degree in late 1980serosion degree in 2000
PF0.920.010.510.006000
DL7082.0942.257524.5044.89257272
FL41.890.2542.980.264919
SB380.502.27419.202.506937
TL332.541.98367.192.1998101
OL52.540.3168.020.4145424
GH370.882.21387.172.31229
GM2645.5615.782457.0414.66146340
GL5497.7232.805129.6430.60179490
RL213.551.27229.051.3734724
UL5.790.036.030.04400347
Tab.9  Changes in soil erosion degree in relation to LUCC between the late 1980s and 2000
sloping field typearea in late 1980s/km2percentage in late 1980s/%area in 2000/km2percentage in 2000/%erosion intensity index in late 1980serosion intensity index in 2000
0°-5°4901.0569.205148.2068.42282242
5°-8°369.755.22390.825.19250257
8°-15°1149.3316.231252.6316.65194346
15°-25°580.678.20640.788.52174371
25°-35°73.661.0482.961.10160376
>35°8.450.129.490.13158368
Tab.10  Soil erosion degree on sloping cropland in the late 1980s and 2000 as a function of slope gradient
Fig.4  Statistics of soil erosion degree change under the different land use. (a) Cropland was converted into other land uses; (b) water body was converted into other land uses
1 Lambin E F, Geist H J. Land-Use and Land-Cover Change: Local Processes and Global Impacts. Berlin: Springer-verlag, 2006
2 Matson P A, Parton W J, Power A G, Swift M J. Agricultural intensification and ecosystem properties. Science , 1997, 277(5325): 504–509
doi: 10.1126/science.277.5325.504 pmid:20662149
3 Turner B L. Local faces, global flows: 他he role of land use and land cover in global environmental change. Land Degradation & Rehabilitation , 1994, 5(2): 71–78
doi: 10.1002/ldr.3400050204
4 Meyer W B, Turner B L. Land-use/land-cover change: challenges for geographers. GeoJournal , 1996, 39(3): 237–240
doi: 10.1007/BF00188373
5 Liu J Y, Xu X L, Shao Q Q. Grassland degradation in the “three-river headwaters” region, Qinghai Province. J. Geogr. Sci. , 2008, 18: 259–273
6 Li X B. Impact on Hydrolytic and Water Resource of Land Use and Land Cover Change. Beijing: Global Map Press, 2002, 1–6 (in Chinese)
7 Yang S H, Yan H L, Guo L Y. The land use change and its eco-environmental effects in transitional agro-pastoral region: a case study of Yulin City in northern Shaanxi Province. Progress in geography , 2004, 23(6): 49–55 (in Chinese)
8 Quan B, Chen J F, Qiu H L, R?mkens M J M, Yang X Q, Jiang S F, Li B C. Spatial-temporal pattern and driving forces of land use changes in Xiamen. Pedosphere , 2006, 16(4): 477–488
doi: 10.1016/S1002-0160(06)60078-7
9 Quan B, Zhu H J, Chen S L, R?mkens M J M, Li B C. Land suitability assessment and land use change in Fujian Province, China. Pedosphere , 2007, 17(4): 493–504
doi: 10.1016/S1002-0160(07)60059-9
10 Wang R Y, Zhao G X, Zhou W, Zhu X C, Wang J Y, Qin Y W. Assessment of the impacts of land use on regional ecological environmental vulnerability. Transactions of the Chinese society of agricultural engineering , 2008, 24(12): 215–220 (in Chinese)
11 Chen X. Land Use/Cover Change in Arid Area in China. Beijing: Science Press, 2008, 543 (in Chinese)
12 Zhu X M, Ren M E. The Loess Plateau-Its formation, soil and water losses, and control of the Yellow River. In: Laflen J M, Tian J L, eds. Soil Erosion and Dryland Farming . New York: CRC Press, 2000, 1–3
13 Zhang L, Zhou Y, Zhang L T. Recent advances and future prospects on relationship between LUCC and soil erosion. Research of soil and water conservation , 2008, 15(3): 43–48 (in Chinese)
14 Li S B, Jiang Q, Li B C. Ecological Agriculture Construction Technology in Mountainous Area of Southern Ningxia. Yinchuan: Ningxia People’s Publishing House, 2006 (in Chinese)
15 Liang Y M. Vegetation Construction on the Loess Plateau. Zhengzhou: Yellow River Conservancy Press, 2003 (in Chinese)
16 Wu Q X. Mechanism of Soil and Water Conservation for Forests and Its Regulation Technology. Beijing: Science Press, 2005 (in Chinese)
17 Li B C, Li S B. The construction and demonstration of ecological agriculture in semiarid degradation mountainous areas. Research of soil and water conservation , 2005, 12(3): 1–4 (in Chinese)
18 Li B C, An S S, Hao S L. Analysis of social economic problems and countermeasures of agricultural construction adjustment in Southern Ningxia. Research of soil and water conservation 2005, 12(3): 8–18 (in Chinese)
19 Hao S L, An S S, Li B C, Zhao X M. Effects of converting farm land to forest and grassland in hilly-gully region of Loess Plateau. Research of soil and water conservation . 2005, 12(3): 29–30 (in Chinese)
20 Ma N X. North-western Nature Reserve of China. Xi’an: Northwestern University Press, 1995 (in Chinese)
21 Liu J Y, Zhan J, Deng X Z. Spatio-temporal patterns and driving forces of urban land expansion in China during the economic reform era. Ambio , 2005, 34(6): 450–455 (in Chinese)
pmid:16201216
22 Meng Q X. Integrated assessment of eco-environmental quality on the Loess Plateau based on remote sensing, GIS and models. Dissertation for the Doctoral Degree . Xi’an: Northwest Sci-tech University of Agriculture and Forestry, 2006, 158
23 Wang S Y. Studies on geo-informatic Tupu changes of eco-environment backed by RS and GIS technologies in Yellow River Basin. Dissertation for Post-doctorate . Beijing: Tsinghua University, 2004
24 Tang K L. Chinese Soil and Water Conservation. Beijing: Science Press, 2004, 845 (in Chinese)
25 Hao S L. Study on Land Use/Land Cover Change-A Case of Mountainous Region of South Ningxia. Zhengzhou: Yellow River Conservancy Press, 2009 (in Chinese)
26 Shan L. Collected Papers of Shan Lun. Xi’an: Shaanxi Science and Technology Press, 2003 (in Chinese)
27 Chen Y Z, Jing K, Cai Q G. Modern Erosion and Treatment on the Loess Plateau. Beijing: Science Press, 1988 (in Chinese)
28 Quan B, R?mkens M J M, Tao J J, Li B C, Li C K, Yu G H, Chen Q C. Spatial-temporal pattern and population driving force of land use change in Liupan Mountains Region, southern Ningxia, China. Chinese Geographical Science , 2008, 18(4): 323–330
doi: 10.1007/s11769-008-0323-y
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