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Planar morphology and controlling factors of the gullies in the Yuanmou Dry-hot Valley based on field investigation

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Abstract

The plane form of a gully can provide a basis for evaluating the gully volume and erosion rate, acting process, and evolutionary stage. For describing the planar characteristics of a permanent gully and understanding their controlling factors, this study, utilizing a total station and GPS RTK, measured the shoulder lines and channel curves of 112 gullies in six sites of the Yuanmou Dry-hot Valley and then mapped them by ArcGIS software and calculated nine parameters. The results showed that the channel lengths range from 10.88 to 249.11 m; the widths range from 6.20 to 40.99 m; the perimeters range from 54.11 to 541.67 m; the gully areas range from 153.02 to 6,930.30 m2; the left-side areas range from 92.93 to 4,027.20 m2; and the right-side areas range from 63.65 to 3,539.77 m2. The slightly sinuous and straight gullies account for 73.21% of the total gullies; the quantity of the right skewed gullies is 8.93% greater than that of the left skewed ones based on the symmetry ratio; the shape ratios range from 1.12 to 1.40 and the morphology ratios from 0.038 to 1.294; the fractal dimension is 1.192. Gullies in different sites have diverse planar characteristics. Except for the symmetry index, which was close to a negatively skewed distribution, all of the other parameters had the characteristic of positively skewed distribution. The gully area is related to the length and width, but the gully length has a weak correlation with the width. The evolutionary stage, topographic conditions, strata, soil properties, and piping erosion played very important roles in the gully planar morphology. This study could provide useful information for controlling gully erosion and safeguarding human habitation and engineering buildings.

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References

  • Adediji A, Jeje L K, Ibitoye M O. 2013. Urban development and informal drainage patterns: Gully dynamics in Southwestern Nigeria. Applied Geography, 40: 90–102.

    Article  Google Scholar 

  • Beer C E, Johnson H P. 1963. Factors in gully growth in the deep loess area of western Iowa. Transactions of the ASAE, 6(3): 237–240.

    Article  Google Scholar 

  • Billi P, Dramis F. 2003. Geomorphological investigation on gully erosion in the Rift Valley and the northern highlands of Ethiopia. Catena, 50(2–4): 353–368.

    Article  Google Scholar 

  • Bouchnak H, Felfoul M S, Boussema M R, et al. 2009. Slope and rainfall effects on the volume of sediment yield by gully erosion in the Souar lithologic formation (Tunisia). Catena, 78(2): 170–177.

    Article  Google Scholar 

  • Brooks A P, Shellberg J G, Knight J, et al. 2009. Alluvial gully erosion: an example from the Mitchell fluvial megafan, Queensland, Australia. Earth Surface Processes and Landforms, 34(14): 1951–1969.

    Article  Google Scholar 

  • Bryson K L, Dixon J C, Sears D W G. 2010. Evaporation effects on the formation of martian gullies. Icarus, 210(1): 72–82.

    Article  Google Scholar 

  • Burkard M B, Kostaschuk R A. 1995. Initiation and evolution of gullies along the shoreline of Lake Huron. Geomorphology, 14(3): 211–219.

    Article  Google Scholar 

  • Burkard M B, Kostaschuk R A. 1997. Patterns and controls of gully growth along the shoreline of Lake Huron. Earth Surface Processes and Landforms, 22(10): 901–911.

    Article  Google Scholar 

  • Cai Z X, Fan J R, Liu S Z. 2001. Analysis on development characteristics and process of gully in Yuanmon Basin on Lower Reaches of Jinsha River. Scientia Geographica Sinica, 21(4): 339–343. (in Chinese)

    Google Scholar 

  • Capra A, Mazzara L M, Scicolone B. 2005. Application of the EGEM model to predict ephemeral gully erosion in Sicily, Italy. Catena, 59(2): 133–146.

    Article  Google Scholar 

  • Capra A, Di Stefano C, Ferro V, et al. 2009. Similarity between morphological characteristics of rills and ephemeral gullies in Sicily, Italy. Hydrological Processes, 23(23): 3334–3341.

    Article  Google Scholar 

  • Casalí J, López J J, Giráldez J V. 1999. Ephemeral gully erosion in southern Navarra (Spain). Catena, 36(1–2): 65–84.

    Article  Google Scholar 

  • Chaplot V. 2013. Impact of terrain attributes, parent material and soil types on gully erosion. Geomorphology, 186: 1–11.

    Article  Google Scholar 

  • Cheng H, Wu Y Q, Zou X Y, et al. 2006. Study of ephemeral gully erosion in a small upland catchment on the Inner-Mongolian Plateau. Soil and Tillage Research, 90(1–2): 184–193.

    Article  Google Scholar 

  • Cheng H, Zou X Y, Wu Y Q, et al. 2007. Morphology parameters of ephemeral gully in characteristics hillslopes on the Loess Plateau of China. Soil and Tillage Research, 94(1): 4–14.

    Article  Google Scholar 

  • Cheng Q M. 1995. The perimeter-area fractal model and its application to geology. Mathematical Geology, 27(1): 69–82.

    Article  Google Scholar 

  • Daggupati P, Sheshukov A Y, Douglas-Mankin K R. 2014. Evaluating ephemeral gullies with a process-based topographic index model. Catena, 113: 177–186.

    Article  Google Scholar 

  • Deng Q C, Zhang B, Luo J, et al. 2014. Types and controlling factors of piping landform in Yuanmou dry-hot valley. Journal of Arid Land Resources and Environment, 28(8): 138–144. (in Chinese)

    Google Scholar 

  • Deng Q C, Qin F C, Zhang B, et al. 2015. Characterizing the morphology of gully cross-sections based on PCA: A case of Yuanmou dry-hot valley. Geomorphology, 228: 703–713.

    Article  Google Scholar 

  • Dong L K. 1991. Fractal Theory and its Applications. Shenyang: Liaoning Publisher of Science and Technology. (in Chinese)

    Google Scholar 

  • El Maaoui M A, Felfoul M S, Boussema M R, et al. 2012. Sediment yield from irregularly shaped gullies located on the Fortuna lithologic formation in semi-arid area of Tunisia. Catena, 93: 97–104.

    Article  Google Scholar 

  • Fan J R, Liu S Z, Zhou C B, et al. 2004. Impacts of LUCC on gully erosion in Yuanmou Basin of Jinshajiang arid-hot valley. Journal of Soil Water Conservation, 18(2): 130–132. (in Chinese)

    Google Scholar 

  • Fang H D, Wei Y L, Liu G C, et al. 2011. Effects of soil nutrients on planted Leucaena leucocephala forest in the dry-hot Jinshajiang River valley. Arid Zone Research, 28(2): 229–234. (in Chinese)

    Google Scholar 

  • Frankl A, Nyssen J, De Dapper M, et al. 2011. Linking long-term gully and river channel dynamics to environmental change using repeat photography (Northern Ethiopia). Geomorphology, 129(3–4): 238–251.

    Article  Google Scholar 

  • Frankl A, Poesen J, Scholiers N, et al. 2013. Factors controlling the morphology and volume (V)-length (L) relations of permanent gullies in the northern Ethiopian Highlands. Earth Surface Processes and Landforms, 38(14): 1672–1684.

    Article  Google Scholar 

  • Gabet E J, Bookter A. 2008. A morphometric analysis of gullies scoured by post-fire progressively bulked debris flows in southwest Montana, USA. Geomorphology, 96(3–4): 298–309.

    Article  Google Scholar 

  • Gales J A, Larter R D, Mitchell N C, et al. 2013. Geomorphic signature of Antarctic submarine gullies: implications for continental slope processes. Marine Geology, 337: 112–124.

    Article  Google Scholar 

  • Gao P. 2011. Mountain and hillslope geomorphology: Rill and gully development processes. In: Shroder J. Treatise on Geomorphology. San Diego: Elsevier Inc.

    Google Scholar 

  • Graf W L. 1977. The rate law in fluvial geomorphology. American Journal of Science, 277(2): 178–191.

    Article  Google Scholar 

  • Hancock G R, Evans K G. 2006. Gully position, characteristics and geomorphic thresholds in an undisturbed catchment in northern Australia. Hydrological Processes, 20(14): 2935–2951.

    Article  Google Scholar 

  • Hancock G R, Evans K G. 2010. Gully, channel and hillslope erosion-an assessment for a traditionally managed catchment. Earth Surface Processes and Landforms, 35(12): 1468–1479.

    Article  Google Scholar 

  • Heede B H. 1970. Morphology of gullies in the Colorado Rocky Mountains. International Association of Scientific Hydrology. Bulletin, 15(2): 79–89.

    Article  Google Scholar 

  • Hobbs S W, Paull D J, Clarke J D A. 2013. The influence of slope morphology on gullies: Terrestrial gullies in Lake George as analogues for Mars. Planetary and Space Science, 81: 1–17.

    Article  Google Scholar 

  • Ireland H A, Sharpe C F S, Eargle D. 1939. Principles of gully erosion in the piedmont of South Carolina. In: Technical Bulletin No. 167374. US Department of Agriculture. Washington, DC, USA.

    Google Scholar 

  • Ji Z H, Liu G H, Duan Y T, et al. 2003. Model of plantation restoration and ecological agriculture in fragile ecological environment in arid hot valley of Jinsha River. Journal of Soil Water Conservation, 17(5): 19–22. (in Chinese)

    Google Scholar 

  • Knapen A, Poesen J. 2010. Soil erosion resistance effects on rill and gully initiation points and dimensions. Earth Surface Processes and Landforms, 35(2): 217–228.

    Google Scholar 

  • Kompani-Zare M, Soufi M, Hamzehzarghani H, et al. 2011. The effect of some watershed, soil characteristics and morphometric factors on the relationship between the gully volume and length in Fars Province, Iran. Catena, 86(3): 150–159.

    Article  Google Scholar 

  • Liu S Z, Huang C M, Zhang J P, et al. 1996. Characteristics of land desertification and analysis of its causes in Yuanmou Region, Yunnan Province. Journal of Desert Research, 16(1): 1–8. (in Chinese)

    Google Scholar 

  • Mangold N, Mangeney A, Migeon V, et al. 2010. Sinuous gullies on Mars: frequency, distribution, and implications for flow properties. Journal of Geophysical Research: Planets, 115(E11): E11001.

    Article  Google Scholar 

  • Nachtergaele J, Poesen J. 1999. Assessment of soil losses by ephemeral gully erosion using high-altitude (stereo) aerial photographs. Earth Surface Processes and Landforms, 24(8): 693–706.

    Article  Google Scholar 

  • Nachtergaele J, Poesen J, Steegen A, et al. 2001. The value of a physically based model versus an empirical approach in the prediction of ephemeral gully erosion for loess-derived soils. Geomorphology, 40(3–4): 237–252.

    Article  Google Scholar 

  • Piest R F, Bradford J M, Spomer R G. 1975. Mechanisms of erosion and sediment movement from gullies. In: Present and Prospective Technology for Predicting Sediment Yields and Sources, Agricultural Research Service Report ARS-S-40. USDA, Oxford, Mississippi.

    Google Scholar 

  • Poesen J, Govers G. 1990. Gully erosion in the loam belt of Belgium: typology and control measures. In: Boardman J, Foster I D L, Dearing J A. Soil Erosion on Agricultural Land. Chichester, UK: John Wiley & Sons Ltd.

    Google Scholar 

  • Qian F, Zhou G X. 1991. Quaternary Geology and Paleoanthropology of Yuanmou Yunnan, China. Beijing: Science Press. (in Chinese)

    Google Scholar 

  • Rustomji P. 2006. Analysis of gully dimensions and sediment texture from southeast Australia for catchment sediment budgeting. Catena, 67(2): 119–127.

    Article  Google Scholar 

  • Rutherford I D, Prosser I P, Davis J. 1997. Simple approaches to predicting rates and extent of gully development. In: Wang S S Y, Langendoen E J, Shields F D. Proceedings of the Conference on Management of Landscapes Disturbed by Channel Incision. Oxford, Mississippi, USA: The University of Mississippi.

    Google Scholar 

  • Sánchez N, Alfaro E J, Pérez E. 2005. The fractal dimension of projected clouds. The Astrophysical Journal, 625(2): 849–856.

    Article  Google Scholar 

  • Seginer I. 1966. Gully development and sediment yield. Journal of Hydrology, 4: 236–253.

    Article  Google Scholar 

  • Sidorchuk A. 1999. Dynamic and static models of gully erosion. Catena, 37(3–4): 401–414.

    Article  Google Scholar 

  • Stocking M. 1980. Examination of the factors controlling gully growth. In: Boodt M D, Gabriels D. Assessment of Erosion. Chichester, UK: John Wiley & Sons Ltd.

    Google Scholar 

  • Thomas J T, Iverson N R, Burkart M R, et al. 2004. Long-term growth of a valley-bottom gully, western Iowa. Earth Surface Processes and Landforms, 29(8): 995–1009.

    Article  Google Scholar 

  • Vandaele K, Poesen J, Marques da Silva J R, et al. 1997. Assessment of factors controlling ephemeral gully erosion in Southern Portugal and Central Belgium using aerial photographs. Zeitschrift fur geomorphologie, 41(3): 273–287.

    Google Scholar 

  • Vandekerckhove L, Poesen J, Oostwoud Wijdenes D, et al. 2000. Thresholds for gully initiation and sedimentation in Mediterranean Europe. Earth Surface Processes and Landforms, 25(11): 1201–1220.

    Article  Google Scholar 

  • Wijdenes D J O, Poesen J, Vandekerckhove L, et al. 1999. Gully-head morphology and implications for gully development on abandoned fields in a semi-arid environment, Sierra de Gata, southeast Spain. Earth Surface Processes and Landforms, 24(7): 585–603.

    Article  Google Scholar 

  • Zhang B, Ai N S, Huang Z W, et al. 2008. Meanders of the Jialing River in China: Morphology and formation. Chinese Science Bulletin, 53(2): 267–281.

    Article  Google Scholar 

  • Zhang Y G, Wu Y Q, Lin B Y, et al. 2007. Characteristics and factors controlling the development of ephemeral gullies in cultivated catchments of black soil region, Northeast China. Soil and Tillage Research, 96(1–2): 28–41.

    Article  Google Scholar 

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Deng, Q., Miao, F., Zhang, B. et al. Planar morphology and controlling factors of the gullies in the Yuanmou Dry-hot Valley based on field investigation. J. Arid Land 7, 778–793 (2015). https://doi.org/10.1007/s40333-015-0135-8

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  • DOI: https://doi.org/10.1007/s40333-015-0135-8

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