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Improving cross drain systems to minimize sediment delivery using GIS

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Forestry Studies in China

Abstract

A well developed network of roads must exist as a necessary infrastructure system in modern forestry to facilitate forest operations. But forest roads have the potential to disrupt the drainage characteristics of watersheds and lead to negative impacts on the environment with increased erosion and sediment yields. Numerous factors affect surface erosion of roads and sediment production potential; determining and ranking them could be a guide for management decisions to erosion control. In this study, the CULSED model (as an extension of ArcGIS) was used to estimate sediment delivery and the distribution of a road network, given the existing culverts. Using the model, some culverts were added to the road network around places with high sediment delivery in order to minimize it. After a correlation analysis and adjustment between sediment production and the factors, i.e., road width, road gradient, age of road and vegetation cover, the trend of changes in sediment delivery with model changes in the input was investigated with a sensitivity analysis of the model. The results show that adding new culverts to the road resulted in a significant reduction of sediment delivery. The most important factor affecting sediment delivery was road width, followed by road gradient, vegetation cover and age of road. Road width and gradient were positively correlated with sediment delivery, while vegetation cover and age of road were negatively correlated. The best model to show the relation between sediment delivery and road width as well as with road gradient was a linear model, for vegetation cover a cubic equation and for road age a power model. The results of sensitivity analysis showed that sediment delivery had the greatest sensitivity to changes of road width and was least sensitive to changes in the age of the road. This model can help to estimate sediment delivery with its spatial distribution, which can be used for optimization of cross drain systems and strategies of sediment control. Application of the model requires field trials to acquire the necessary input data. The reliability of our results is a function of the accuracy of inputs, especially digital elevation model.

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References

  • Abdi E, Majnounian B, Genet M, Rahimi H. 2010. Quantifying the effects of root reinforcement of Persian Ironwood (Parrotia persica) on slope stability; a case study: Hillslope of Hyrcanian forests, northern Iran. Ecol Eng, 36: 1409–1416

    Article  Google Scholar 

  • Akay A E, Erdas E M, Reis M, Yuksel A. 2008. Estimating sediment yield from a forest road network by using a sediment prediction model and GIS techniques. Build Environ, 43: 687–695

    Article  Google Scholar 

  • Anderson B, Potts D F. 1987. Suspended sediment and turbidity following road construction and logging in western Montana. J Am Water Resour Assoc, 23(4): 681–690

    Article  Google Scholar 

  • Anderson D M, MacDonald L H. 1998. Modelling road surface sediment production using a vector geographic information system. Earth Surf Process Landforms, 23(2): 95–107

    Article  Google Scholar 

  • André J E, Anderson H W. 1961. Variation of soil erodibility with geology, geographic zone, elevation, and vegetation type in northern California wildlands. J Geophys Res, 66(10): 3351–3358

    Article  Google Scholar 

  • Arnáez J, Larrea V, Ortigosa L. 2004. Surface runoff and soil erosion on unpaved forest roads from rainfall simulation tests in northeastern Spain. Catena, 57: 1–14

    Article  Google Scholar 

  • Bilby R E, Sullivan K, Duncan S H. 1989. The generation and fate of road-surface sediment in forested watersheds in southwestern Washington. Forest Sci, 35(2): 453–468

    Google Scholar 

  • Brown G W, Krygier J T. 1971. Clear-cut logging and sediment production in the Oregon Coast Range. Water Resour Res, 7(5): 1189–1198

    Article  Google Scholar 

  • Burroughs E R, King J G. 1989. Reduction of soil erosion on forest roads. General Technical Report INT-264. United States Department of Agriculture, Forest Service, Intermountain Research Station. Ogden, Utah

    Google Scholar 

  • Burroughs E R, Luce C H, Phillips F. 1992. Estimating interrill erodibility of forest soils. Trans ASAE, 35(5): 1489–1495

    Google Scholar 

  • Cochrane T A, Egli M, Phillips C, Acharya G. 2007. Development of a forest road erosion calculation GIS tool for forest road planning and design. International Congress on Modelling and Simulation: Land, Water, & Environmental Management: Integrating Systems for Sustainability. Christchurch, New Zealand, 1273–1279

    Google Scholar 

  • Coker R J, Fahey B D, Payne J J. 1993. Fine sediment production from truck traffic, Queen Charlotte Forest, Marlborough Sounds, New Zealand. J Hydrol (NZ), 31(1): 56–64

    Google Scholar 

  • Croke J, Hairsine P, Fogarty P. 1999. Sediment transport, redistribution and storage on logged forest hillslopes in southeastern Australia. Hydrol Process, 13(17): 2705–2720

    Article  Google Scholar 

  • Damian F. 2001. Improving cross drain culvert spacing with GIS interactive design tool. The International Mountain Logging and 11th Pacific Northwest Skyline Symposium. Seattle, USA, 201–206

  • Damian F. 2003. Cross-drain placement to reduce sediment delivery from forest roads to streams. Dissertation for the Master Degree. Seattle: University of Washington, 207

    Google Scholar 

  • Dubé K, McCalmon M. 2004. Technical documentation for SEDMODL, Version 2.0 road erosion/delivery model. Research Triangle Park, NC, National Council for Air and Stream Improvement, Inc. http://www.ncasi.org/support/downloads. Access 25 September 2010

  • Dubé K, Megahan W F, McCalmon M. 2004. Washington road surface erosion model. State of Washington Department of Natural Resources, Olympia, Washington, D.C., USA

    Google Scholar 

  • Elliot W J, Hall D E, Graves S R, Scheele D L. 1999a. The XDRAIN Cross Drain Spacing and Sediment Yield Program Version 2.00. U.S. Department of Agriculture, Forest Service, Rocky Mountain Research Station, San Dimas Technology and Development Center. Washington, D.C., USA

    Google Scholar 

  • Elliot W J, Hall D E, Scheele D L. 1999b. WEPP interface for predicting forest road runoff, erosion and sediment delivery. U.S. Department of Agriculture, Forest Service, Rocky Mountain Research Station, San Dimas Technology and Development Center. Washington, D.C., USA

    Google Scholar 

  • Environmental Assessment Division. 2003. Road-related erosion issues on Bureau of Land Management-Administered Lands in Northwestern New Mexico. Argonne National Laboratory. Argonne, Illinois, 33

    Google Scholar 

  • FAO (Food and Agriculture Organization of the United Nations). 1998. A manual for the planning, design and construction of forest roads in steep terrain. FAO. Roma, Italy, 149

    Google Scholar 

  • Farrish K W, Adams J C, Thompson C V. 1993. Soil conservation practices on clearcut forestlands in Louisiana. J Soil Water Conserv, 48(2): 136–139

    Google Scholar 

  • Foltz R B, Copeland N S, Elliot W J. 2009. Reopening abandoned forest roads in northern Idaho, USA: Quantification of runoff, sediment concentration, infiltration, and interrill erosion parameters. J Environ Manage, 90: 2542–2550

    Article  PubMed  CAS  Google Scholar 

  • Foltz R B, Truebe M. 2003. Locally available aggregate and sediment production. Transportation Research Record 1819, Paper No. LVR8-1050. The 8th International Conference on Low-volume Roads. Reno, USA

    Google Scholar 

  • Forest Management Plan. 2000. Forest Management Plan. Department of Forestry, Faculty of Natural Resources, University of Tehran. Nowshahr, Iran

    Google Scholar 

  • Forsyth A R, Bubb K A, Cox M E. 2006. Runoff, sediment loss and water quality from forest roads in a southeast Queensland coastal plain Pinus plantation. Forest Ecol Manage, 221: 194–206

    Article  Google Scholar 

  • Fransen P J B, Phillips C J, Fahey B D. 2001. Forest road erosion in New Zealand: Overview. Earth Surf Process Landforms, 26: 165–174

    Article  Google Scholar 

  • Fu B H, Newham L T H, Ramos-Scharrón C E. 2010. A review of surface erosion and sediment delivery models for unsealed roads. Environ Model Softw, 25: 1–14

    Article  CAS  Google Scholar 

  • Furniss M J, Roelofs T D, Yee C S. 1991. Road construction and maintenance. In: Meehan W R, ed. Influences of Forest and Rangeland Management on Salmonid Fishes and Their Habitats. Special Publication 19. Bethesda, MD: American Fisheries Society, 297–323

    Google Scholar 

  • Gray D H, Megahan W F. 1981. Forest vegetation removal and slope stability in the Idaho Batholith. U.S. Department of Agriculture, Forest Service, Intermountain Forest and Range Experiment Station. General Technical Report INT-271. Ogden, Utah, 23

  • Grayson R B, Haydon S R, Jayasuriya M D A, Finlayson B L. 1993. Water quality in mountain ash forests—separating the impacts of roads from those of logging operations. J Hydrol, 150: 459–480

    Article  CAS  Google Scholar 

  • Hartsog W S, Gonsior M J. 1973. Analysis of construction and initial performance of the China Glenn Road, Warren District, Payette National Forest. U.S. Department of Agriculture, Forest Service, Intermountain Forest and Range Experiment Station. General Technical Report INT-5. Ogden, UT, 22

  • Haupt H F. 1959. Road and slope characteristics affecting sediment movement from logging roads. J Forest, 57(5): 329–332

    Google Scholar 

  • Heede B H. 1984. Overland flow and sediment delivery: An experiment with small subdrainage in southwestern ponderosa pine forests (Colorado, U.S.A.). J Hydrol, 72: 261–273

    Article  Google Scholar 

  • IPBO (Iranian Plan and Budget Organization). 2000. Guidelines for design, execute and using forest roads No. 131. 2rd edn. Office of the Deputy for Technical Affairs. Bureau of Technical affairs and standards, Iran, 170

    Google Scholar 

  • Jha S, Western A, May D, Turner J, Gardiner G. 2006. A Monte Carlo analysis of sediment load from unsealed forest road crossings. International Congress on Modeling and Simulation Society of Australia and New Zealand. Melbourne, Australia, 2390–2395

    Google Scholar 

  • Jordán-López A, Martínez-Zavala L, Bellinfante N. 2008. Impact of different parts of unpaved forest roads on runoff and sediment yield in a Meditrranean area. Sci Total Environ, 407: 937–944

    Article  PubMed  Google Scholar 

  • Ketcheson G L, Megahan W F, King J G. 1999. “R1-R4” and “BOISED” sediment prediction model tests using forest roads in granitics. J Am Water Resour Assoc, 35(1): 83–98

    Article  Google Scholar 

  • King J G, Gonsior M J. 1980. Effects of forest roads on stream sediment. Symposium on Watershed Management. American Society of Civil Engineering. Boise, USA, 19

    Google Scholar 

  • Kochenderfer J N, Helvey J D. 1987. Using gravel to reduce soil losses from minimum-standard forest roads. J Soil Water Conserv, 42: 46–50

    Google Scholar 

  • Lane P N J, Sheridan G J. 2008. Impact of an unsealed forest road stream crossing: water quality and sediment sources. Hydrol Process, 16: 2599–2612

    Article  Google Scholar 

  • Luce C H, Black T A. 1999. Sediment production from forest roads in western Oregon. Water Resour Res, 35(8): 2561–2570

    Article  Google Scholar 

  • Luce C H, Wemple B C. 2001. Introduction to special issue on hydrologic and geomorphic effects of forest roads. Earth Surf Process Landforms, 26(2): 111–113

    Article  Google Scholar 

  • MacDonald L H, Anderson D M, Dietrich W E. 1997. Paradise threatened: Land use and erosion on St. John, US Virgin Islands. Environ Manage, 21(6): 851–863

    Google Scholar 

  • MacDonald L H, Sampson R L, Anderson D M. 2001. Runoff and road erosion at the plot and road segment scales, St John, US Virgin Islands. Earth Surf Process Landforms, 26: 251–272

    Article  Google Scholar 

  • Madej M A, Eschenbach E A, Diaz C, Teasley R, Baker K. 2006. Optimization strategies for sediment reduction practices on roads in steep, forested terrain. Earth Surf Process Landforms, 31: 1643–1656

    Article  Google Scholar 

  • Megahan W F. 1974a. Deep-rooted plants for erosion control on granitic roadfills in the Idaho Batholith. Research Papper INT-161. U.S. Department of Agriculture, Forest Service, Intermountain Forest and Range Experiment Station. Ogden, Utah

    Google Scholar 

  • Megahan W F. 1974b. Erosion over time: A model. Research Paper INT-156. U.S. Department of Agriculture, Forest Service, Intermountain Research Station. Ogden, Utah

    Google Scholar 

  • Megahan W F, Ketcheson G L. 1996. Predicting downslope travel of granitic sediments from forest roads in Idaho. J Am Water Resour Assoc, 32(2): 371–382

    Article  Google Scholar 

  • Megahan W F, Kidd W J. 1972. Effect of logging roads on sediment production rates in the Idaho Batholith. Research paper INT-123. U. S. Department of Agriculture, Forest Service, Intermountain Forest and Range Experiment Station. Ogden, Utah, 14

    Google Scholar 

  • Megahan W F, King P N. 1985. Identification of critical areas on forest lands for control of nonpoint sources of pollution. Environ Manage, 9(1): 7–17

    Article  Google Scholar 

  • Megahan W F, Wilson M, Monsen S B. 2001. Sediment production from granitic cutslopes on forest roads in Idaho, USA. Earth Surf Process Landforms, 26: 153–163

    Article  Google Scholar 

  • Motha J A, Wallbrink P J, Hairsine P B, Grayson R B. 2004. Unsealed roads as suspended sediment sources in an agricultural catchment in south-eastern Australia. J Hydrol, 286: 1–18

    Article  Google Scholar 

  • National Council for Air and Stream Improvement (NCASI). 2002. Technical documentation for SEDMODL version 2.0 road erosion/delivery model. NCASI Oregon Department of Forestry. 2000. Forest road manual report. Oregon, USA

  • Packer P E. 1967. Criteria for designing and locating logging roads to control sediment. Forest Sci, 13(1): 2–18

    Google Scholar 

  • Prasad A. 2007. A tool to analyze environmental impacts of roads on forest watersheds. Dissertation for the Master Degree. Logan: Utah State University, 214

    Google Scholar 

  • Ramos-Scharrón C E, MacDonald L H. 2007. Measurement and prediction of natural and anthropogenic sediment sources, St. John, U.S. Virgin Islands. Catena, 71: 250–266

    Google Scholar 

  • Reid L M, Dunne T. 1984. Sediment production from forest road surfaces. Water Resour Res, 20: 1753–1761

    Article  Google Scholar 

  • Santa Cruz County Resource Conservation District. 2004. Private roads maintenance guide for Santa Cruz county. 2nd edn. California, USA, 36

  • Schiess P, Krogstad F, Damian F. 2004. Locating ditch relief culverts to reduce sediment delivery to streams — an interactive design tool. Joint Conference of IUFRO 3.06 Forest Operations under Mountainous Conditions and the 12th International Mountain Logging Conference. Vancouver BC, Canada

  • Sugden B D, Woods S W. 2007. Sediment production from forest roads in western Montana. J Am Water Resour Assoc, 43: 193–206

    Article  Google Scholar 

  • Swanson F J, Dryness C T. 1975. Impact of clear-cutting and road construction on soil erosion by landslides in the western Cascade Range, Oregon. Geology, 3: 393–396

    Article  Google Scholar 

  • Swift L W. 1984. Gravel and grass surfacing reduces soil loss from mountain roads. Forest Sci, 30(3): 657–670

    Google Scholar 

  • Swift L W. 1986. Filter strip widths for forest roads in the southern Appalachians. South J Appl Forest, 10: 27–34

    Google Scholar 

  • Tennyson L C, King J G, Prud’homme B. 1981. Erosional processes on forest mads and flow duration characteristics of the Horse Creek streams. College of Forestry, Wildlife, and Range Sciences, University of Idaho, Moscow, ID

    Google Scholar 

  • United States Department of Agriculture (USDA) Forest Service. 1996. Idaho forestry best management practices: compilation of research on their effectiveness. General Technical Report INT-GTR-339. USDA, Forest Service, Intermountain Research Station. Ogden, Utah

    Google Scholar 

  • United States Department of Agriculture (USDA) Forest Service. 1997. Relief culverts. San Dimas Technology and Development Center. San Dimas, California

    Google Scholar 

  • United States Department of Agriculture (USDA) Forest Service. 2000. Forest roads: a synthesis of scientific information. General Technical Report PNW-GTR-509. USDA, Forest Service. Pacific Northwest Research Station, Portland, USA

    Google Scholar 

  • Vincent K R. 1985. Runoff and erosion from a logging road in response to snowmelt and rainfall. Dissertation for the Master Degree. Berkley: University of California

    Google Scholar 

  • Welsh M J. 2008. Sediment production and delivery from forest roads and off-highway vehicle trails in the upper South Platte River watershed, Colorado. Dissertation for the Master Degree. Fort Collins: Colorado State University

    Google Scholar 

  • Wischmeier W H, Smith D D. 1958. Rainfall energy and its relationship to soil loss. Trans Am Geophys Union, 39: 285–291

    Google Scholar 

  • Wischmeier W H, Smith D D. 1978. Predicting rainfall erosion losses. A guide to conservation planning. The USDA Agricultural Handbook No. 537. Washington, D.C., USA

  • Woolhiser D A, Smith R E, Goodrich D C. 1990. KINEROS, a kinematic runoff and erosion model: documentation and user manual. USDA Agricultural Research Service, No. 77

  • Ziegler A D, Sutherland R A, Giambelluca T W. 2001. Interstorm surface preparation and sediment detachment by vehicle traffic on unpaved mountain roads. Earth Surf Process Landforms, 26: 235–250

    Article  Google Scholar 

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Correspondence to Saeed Rahbari Sisakht.

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Abdi, E., Sisakht, S.R. & Rad, M.M. Improving cross drain systems to minimize sediment delivery using GIS. For. Stud. China 14, 299–306 (2012). https://doi.org/10.1007/s11632-012-0411-z

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