J. For. Sci., 2021, 67(7):338-356 | DOI: 10.17221/4/2021-JFS

Exploring the variability in elastic properties of roots in Alpine tree speciesOriginal Paper

Alessio Cislaghi ORCID...*,1,2
1 Department of Agricultural and Environmental Sciences (DiSAA), University of Milan, Milan, Italy
2 Centre of Applied Studies for the Sustainable Management and Protection of Mountain Areas (Ge.S.Di.Mont), University of Milan, Brescia, Italy

Quantifying the soil reinforcement provided by roots is essential for assessing the contribution of forests to reducing shallow landslide susceptibility. Many soil-root models were developed in the literature: from standard single root model to fibre bundle model. The input parameters of all models are the geometry of roots (diameter and length) and the biomechanical properties (maximum tensile force and elastic modulus). This study aims to investigate the elastic properties estimated by the stress-strain curves measured during tensile tests. A standard procedure detected two different moduli of elasticity: one due to the root tortuosity, and the other due to the woody fibres of roots. Based on a large dataset of tensile tests on different Alpine tree species, the relationships between elastic modulus and root diameter was estimated for each series. Further, the interspecific and intraspecific variability in such relationships was investigated by a statistical analysis. The results showed more intraspecific differences in the elastic modulus vs. root diameter relationships compared to the interspecific ones. This outcome could be an important criterion of discrimination to explain the variability of the elastic properties and to provide representative biomechanical properties for specific environmental conditions.

Keywords: root reinforcement; elastic modulus; biomechanical properties; protection of forests

Published: July 20, 2021  Show citation

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Cislaghi A. Exploring the variability in elastic properties of roots in Alpine tree species. J. For. Sci.. 2021;67(7):338-356. doi: 10.17221/4/2021-JFS.
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References

  1. Abdi E. (2014): Effect of Oriental beech root reinforcement on slope stability (Hyrcanian Forest, Iran). Journal of Forest Science, 60: 166-173. Go to original source...
  2. Abdi E., Deljouei A. (2019): Seasonal and spatial variability of root reinforcement in three pioneer species of the Hyrcanian forest. Austrian Journal of Forest Science, 136: 175-198.
  3. 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. Ecological Engineering, 36: 1409-1416. Go to original source...
  4. Abdi E., Azhdari F., Abdulkhani A., Mariv H.S. (2014): Tensile strength and cellulose content of Persian ironwood (Parrotia persica) roots as bioengineering material. Journal of Forest Science, 60: 425-430. Go to original source...
  5. Abe K., Ziemer R.R. (1991): Effect of tree roots on a shear zone: Modeling reinforced shear stress. Canadian Journal of Forest Research, 21: 1012-1019. Go to original source...
  6. Askeland D.R., Fulay P.P., Wright W.J. (2011): The Science and Engineering of Materials. 6th Ed. Stamford, Cengage Learning: 921.
  7. Bischetti G.B., Chiaradia E.A., Simonato T., Speziali B., Vitali B., Vullo P., Zocco A. (2005): Root strength and root area ratio of forest species in Lombardy (Northern Italy). Plant and Soil, 278: 11-22. Go to original source...
  8. Bischetti G.B., Chiaradia E.A., Epis T., Morlotti E. (2009): Root cohesion of forest species in the Italian Alps. Plant and Soil, 324: 71-89. Go to original source...
  9. Boldrin D., Leung A.K., Bengough A.G. (2017): Correlating hydrologic reinforcement of vegetated soil with plant traits during establishment of woody perennials. Plant and Soil, 416: 437-451. Go to original source...
  10. Boldrin D., Leung A.K., Bengough A.G. (2018): Effects of root dehydration on biomechanical properties of woody roots of Ulex europaeus. Plant and Soil, 431: 347-369. Go to original source...
  11. Burri K., Graf F., Böll A. (2009): Revegetation measures improve soil aggregate stability: A case study of a landslide area in Central Switzerland. Forest Snow and Landscape Research, 82: 45-60.
  12. Burroughs E.R., Thomas B.R. (1977): Declining Root Strength in Douglas-fir After Felling as a Factor in Slope Stability. Ogden, Intermountain Forest and Range Experiment Station, Forest Service, U.S. Dept. of Agriculture: 27.
  13. Burylo M., Hudek C., Rey F. (2011): Soil reinforcement by the roots of six dominant species on eroded mountainous marly slopes (Southern Alps, France). Catena, 84: 70-78. Go to original source...
  14. Böhm W. (1979): Methods of Studying Root Systems. Berlin, Springer: 188. Go to original source...
  15. Chen L., Wang P., Yang Y., He J. (2014): Constitutive model of single root system's resistance to tensile stress-taking Pinus tabulaeformis, Betula platyphylla, Quercus mongolica and Larix gmelinii as experimental objects. PLoS ONE 9: e93066. Go to original source... Go to PubMed...
  16. Cislaghi A., Bischetti G.B. (2019): Source areas, connectivity, and delivery rate of sediments in mountainous-forested hillslopes: A probabilistic approach. Science of the Total Environment, 652: 1168-1186. Go to original source... Go to PubMed...
  17. Cislaghi A., Bordoni M., Meisina C., Bischetti G.B. (2017): Soil reinforcement provided by the root system of grapevines: Quantification and spatial variability. Ecological Engineering, 109: 169-185. Go to original source...
  18. Cislaghi A., Cohen D., Gasser E., Bischetti G.B., Schwarz M. (2019a): Field measurements of passive earth forces in steep, shallow, landslide-prone areas. Journal of Geophysical Research: Earth Surface, 124: 838-866. Go to original source...
  19. Cislaghi A., Giupponi L., Tamburini A., Giorgi A., Bischetti G.B. (2019b): The effects of mountain grazing abandonment on plant community, forage value and soil properties: observations and field measurements in an alpine area. Catena, 181: 104086. Go to original source...
  20. Cohen D., Lehmann P., Or D. (2009): Fiber bundle model for multiscale modeling of hydromechanical triggering of shallow landslides. Water Resources Research, 45: W10436. Go to original source...
  21. Commandeur P.R., Pyles M.R. (1991): Modulus of elasticity and tensile strength of Douglas-fir roots. Canadian Journal of Forest Research, 21: 48-52. Go to original source...
  22. Cutler D.F., Rudall P.J., Gasson P.E., Gale R.M.O. (1987): Root Identification Manual of Trees and Shrubs: A Guide to the Anatomy of Roots of Trees and Shrubs Hardy in Britain and Northern Europe. London, Chapman and Hall: 247. Go to original source...
  23. De Baets S., Poesen J., Reubens B., Wemans K., De Baerdemaeker J., Muys B. (2008): Root tensile strength and root distribution of typical Mediterranean plant species and their contribution to soil shear strength. Plant and Soil, 305: 207-226. Go to original source...
  24. Deljouei A., Abdi E., Majnonian Garagiz B., Schwarz M. (2018): Comparing roots mechanical characteristics of hornbeam trees in different diameter at breast height classes. Forest and Wood Products, 71: 199-207.
  25. Deljouei A., Abdi E., Schwarz M., Majnounian B., Sohrabi H., Dumroese R.K. (2020): Mechanical characteristics of the fine roots of two broadleaved tree species from the temperate Caspian Hyrcanian ecoregion. Forests, 11: 345. Go to original source...
  26. Dias A.S., Pirone M., Urciuoli G. (2017): Review of the methods for evaluation of root reinforcement in shallow landslides. In: WLF 2017: Advancing Culture of Living with Landslide. Workshop on World Landslide Forum. Ljubljana, Slovenia. May 29, 2017. 641-648. Go to original source...
  27. Endo T., Tsuruta T. (1969): Effects of tree root upon the shearing strengths of soils. Annual Report of the Hokkaido Branch, Tokyo Forest Experiment Station, 18: 168-179.
  28. Ettbeb A.E., Rahman Z.A., Razi Idris W.M., Adam J., Rahim S.A., Ahmad Tarmidzi S.N., Lihan T. (2020): Root tensile resistance of selected pennisetum species and shear strength of root-permeated soil. Applied and Environmental Soil Science, 2020: 3484718. Go to original source...
  29. Fan C.-C., Su C.-F. (2008): Role of roots in the shear strength of root-reinforced soils with high moisture content. Ecological Engineering, 33: 157-166. Go to original source...
  30. FAO (2014): World Reference Base for Soil Resources 2014: International Soil Classification System for Naming Soils and Creating Legends for Soil Maps. Rome, FAO: 181.
  31. Finér L., Ohashi M., Noguchi K., Hirano Y. (2011): Factors causing variation in fine root biomass in forest ecosystems. Forest Ecology and Management, 261: 265-277. Go to original source...
  32. Genet M., Stokes A., Salin F., Mickovski S.B., Fourcaud T., Dumail J.-F., Van Beek R. (2005): The influence of cellulose content on tensile strength in tree roots. Plant and Soil, 278: 1-9. Go to original source...
  33. Genet M., Kokutse N., Stokes A., Fourcaud T., Cai X., Ji J., Mickovski S. (2008): Root reinforcement in plantations of Cryptomeria japonica D. Don: Effect of tree age and stand structure on slope stability. Forest Ecology and Management, 256: 1517-1526. Go to original source...
  34. Genet M., Li M., Luo T., Fourcaud T., Clément-Vidal A., Stokes A. (2011): Linking carbon supply to root cell-wall chemistry and mechanics at high altitudes in Abies georgei. Annals of Botany, 107: 311-320. Go to original source... Go to PubMed...
  35. Giadrossich F., Schwarz M., Cohen D., Cislaghi A., Vergani C., Hubble T., Phillips C., Stokes A. (2017): Methods to measure the mechanical behaviour of tree roots: A review. Ecological Engineering, 109: 256-271. Go to original source...
  36. Giadrossich F., Schwarz M., Marden M., Marrosu R., Phillips C. (2020): Minimum representative root distribution sampling for calculating slope stability in Pinus radiata D. Don plantations in New Zealand. New Zealand Journal of Forestry Science, 50: 1-12. Go to original source...
  37. Giupponi L., Pentimalli D., Manzo A., Panseri S., Giorgi A. (2018): Effectiveness of fine root fingerprinting as a tool to identify plants of the Alps: Results of a preliminary study. Plant Biosystems - An International Journal Dealing with all Aspects of Plant Biology, 152: 464-473. Go to original source...
  38. Gray D.H., Ohashi H. (1983): Mechanics of fiber reinforcement in sand. Journal of Geotechnical Engineering, 109: 335-353. Go to original source...
  39. Gray D.H., Sotir R.B. (1996): Biotechnical and Soil Bioengineering Slope Stabilization: A Practical Guide for Erosion Control. New York, John Wiley & Sons: 400.
  40. Hales T.C., Ford C.R., Hwang T., Vose J.M., Band L.E. (2009): Topographic and ecologic controls on root reinforcement. Journal of Geophysical Research, 114: F03013. Go to original source...
  41. Hales T.C., Cole-Hawthorne C., Lovell L., Evans S.L. (2013): Assessing the accuracy of simple field based root strength measurements. Plant and Soil, 372: 553-565. Go to original source...
  42. Hales T.C., Miniat C.F. (2017): Soil moisture causes dynamic adjustments to root reinforcement that reduce slope stability. Earth Surface Processes and Landforms, 42: 803-813. Go to original source...
  43. Hathaway R.L., Penny D. (1975): Root strength in some Populus and Salix clones. New Zealand Journal of Botany, 13: 333-344. Go to original source...
  44. Ji J., Kokutse N., Genet M., Fourcaud T., Zhang Z. (2012): Effect of spatial variation of tree root characteristics on slope stability. A case study on Black Locust (Robinia pseudoacacia) and Arborvitae (Platycladus orientalis) stands on the Loess Plateau, China. Catena, 92: 139-154. Go to original source...
  45. Kerstens S., Decraemer W.F., Verbelen J.-P. (2001): Cell walls at the plant surface behave mechanically like fiber-reinforced composite materials. Plant Physiology, 127: 381-385. Go to original source...
  46. Lee J.-T., Chu M.-Y., Lin Y.-S., Kung K.-N., Lin W.-C., Lee M.-J. (2020): Root traits and biomechanical properties of three tropical pioneer tree species for forest restoration in landslide areas. Forests, 11: 179. Go to original source...
  47. Levene H. (1960): Robust tests for equality of variances. In: Olkin I., Ghurye S.G., Hoeffding W., Madow W.G., Mann H.B. (eds): Contributions to Probability and Statistics: Essays in Honor of Harold Hotelling. Stanford, Stanford University Press: 278-292.
  48. Loades K.W., Bengough A.G., Bransby M.F., Hallett P.D. (2013): Biomechanics of nodal, seminal and lateral roots of barley: Effects of diameter, waterlogging and mechanical impedance. Plant and Soil, 370: 407-418. Go to original source...
  49. Löbmann M.T., Geitner C., Wellstein C., Zerbe S. (2020): The influence of herbaceous vegetation on slope stability - A review. Earth-Science Reviews, 209: 103328. Go to original source...
  50. Makarova O.V., Cofie P., Koolen A.J. (1998): Axial stress- strain relationships of fine roots of beech and larch in loading to failure and in cyclic loading. Soil and Tillage Research, 45: 175-187. Go to original source...
  51. Mao Z., Jourdan C., Bonis M.-L., Pailler F., Rey H., Saint-André L., Stokes A. (2013): Modelling root demography in heterogeneous mountain forests and applications for slope stability analysis. Plant and Soil, 363: 357-382. Go to original source...
  52. Mattia C., Bischetti G.B., Gentile F. (2005): Biotechnical characteristics of root systems of typical Mediterranean species. Plant and Soil, 278: 23-32. Go to original source...
  53. Meijer G.J., Bengough A.G., Knappett J.A., Loades K.W., Nicoll B.C. (2018a): In situ measurement of root-reinforcement using the corkscrew extraction method. Canadian Geotechnical Journal, 55: 1372-1390. Go to original source...
  54. Meijer G.J., Bengough G., Knappett J., Loades K, Nicoll B. (2018b): In situ root identification through blade penetrometer testing - part 2: Field testing. Géotechnique, 68: 320-331. Go to original source...
  55. Meijer G.J., Bengough G.A., Knappett J., Loades K., Nicoll B. (2019): Measuring the strength of root-reinforced soil on steep natural slopes using the corkscrew extraction method. Forests, 10: 1135. Go to original source...
  56. Meyer F.H., Gottsche D. (1971): Distribution of root tips and tender roots of beech. In: Ellenberg H. (ed): Integrated Experimental Ecology. Berlin, Heidelberg, Springer: 48-52. Go to original source...
  57. Mickovski S.B., Hallett P.D., Bransby M.F., Davies M.C., Sonnenberg R., Bengough A.G. (2009): Mechanical reinforcement of soil by willow roots: Impacts of root properties and root failure mechanism. Soil Science Society of America Journal, 73: 1276-1285. Go to original source...
  58. Naghdi R., Maleki S., Abdi E., Mousavi R., Nikooy M. (2013): Assessing the effect of Alnus roots on hillslope stability in order to use in soil bioengineering. Journal of Forest Science, 59: 417-423. Go to original source...
  59. O'Loughlin C.L. (1974a): A study of tree root strength deterioration following clearfelling. Canadian Journal of Forest Research, 4: 107-113. Go to original source...
  60. O'Loughlin C.L. (1974b): The effect of timber removal on the stability of forest soils. Journal of Hydrology (New Zealand), 13: 121-134.
  61. Operstein V., Frydman S. (2000): The influence of vegetation on soil strength. Proceedings of the Institution of Civil Engineers-Ground Improvement, 4: 81-89. Go to original source...
  62. Pollen N., Simon A. (2005): Estimating the mechanical effects of riparian vegetation on stream bank stability using a fiber bundle model. Water Resources Research, 41: W07025. Go to original source...
  63. Pourmalekshah A.A.M.A., Moayeri M.H., Parsakhoo A. (2019): Effect of the root biotechnical characteristics of Alnus subcordata, Paulownia fortunei and Populus deltoides on the soil mechanics. Journal of Forest Science, 65: 283-290. Go to original source...
  64. Rewald B., Meinen C., Trockenbrodt M., Ephrath J.E., Rachmilevitch S. (2012): Root taxa identification in plant mixtures - current techniques and future challenges. Plant and Soil, 359: 165-182. Go to original source...
  65. Sanchez-Castillo L., Kubota T., Cantu-Silva I., Yañez-Diaz M., Pequeño-Ledezma M. (2017): Comparisons of the root mechanical properties of three native Mexican tree species for soil bioengineering practices. Botanical Sciences, 95: 259-269. Go to original source...
  66. Schmidt K.M., Roering J.J., Stock J.D., Dietrich W.E., Montgomery D.R., Schaub T. (2001): The variability of root cohesion as an influence on shallow landslide susceptibility in the Oregon Coast Range. Canadian Geotechnical Journal, 38: 995-1024. Go to original source...
  67. Schoeneberger P.J. (2002): Field Book for Describing and Sampling Soils, Version 3.0. Lincoln, National Soil Survey Center, Natural Resources Conservation Service, U.S. Dept. of Agriculture: 300.
  68. Schwarz M., Lehmann P., Or D. (2010): Quantifying lateral root reinforcement in steep slopes - from a bundle of roots to tree stands. Earth Surface Processes and Landforms: The Journal of the British Geomorphological Research Group, 35: 354-367. Go to original source...
  69. Schwarz M., Giadrossich F., Cohen D. (2013): Modeling root reinforcement using a root-failure Weibull survival function. Hydrology and Earth System Sciences, 17: 4367-4377. Go to original source...
  70. Schwarz M., Rist A., Cohen D., Giadrossich F., Egorov P., Büttner D., Stolz M., Thormann J.-J. (2015): Root reinforcement of soils under compression. Journal of Geophysical Research: Earth Surface, 120: 2103-2120. Go to original source...
  71. Shapiro S.S., Wilk M.B. (1965): An analysis of variance test for normality (complete samples). Biometrika, 52: 591-611. Go to original source...
  72. Stokes A., Ghani M.A., Salin F., Danjon F., Jeannin H., Berthier S., Kokutse A.D., Frochot H. (2007): Root morphology and strain distribution during tree failure on mountain slopes. In: Stokes A., Spanos I., Norris J.E., Cammeraat E. (eds): Eco-and Ground Bio-Engineering: The Use of Vegetation to Improve Slope Stability. Dordrecht, Springer Netherlands: 165-173. Go to original source...
  73. Sun H.-L., Li S.-C., Xiong W.-L., Yang Z.-R., Cui B.-S., TaoYang (2008): Influence of slope on root system anchorage of Pinus yunnanensis. Ecological Engineering, 32: 60-67. Go to original source...
  74. Thomas R.E., Pollen-Bankhead N. (2010): Modeling rootreinforcement with a fiber-bundle model and Monte Carlo simulation. Ecological Engineering, 36: 47-61. Go to original source...
  75. Vergani C., Graf F. (2016): Soil permeability, aggregate stability and root growth: A pot experiment from a soil bioengineering perspective. Ecohydrology, 9: 830-842. Go to original source...
  76. Vergani C., Chiaradia E.A., Bischetti G.B. (2012): Variability in the tensile resistance of roots in Alpine forest tree species. Ecological Engineering, 46: 43-56. Go to original source...
  77. Vergani C., Giadrossich F., Buckley P., Conedera M., Pividori M., Salbitano F., Rauch H.S., Lovreglio R., Schwarz M. (2017): Root reinforcement dynamics of European coppice woodlands and their effect on shallow landslides: A review. Earth-Science Reviews, 167: 88-102. Go to original source...
  78. Waisel Y., Eshel A., Kafkafi, U. (1991): Plant Roots: The Hidden Half. New York, Marcel Dekker, Inc: 948.
  79. Waldron L.J. (1977): The shear resistance of root-permeated homogeneous and stratified soil. Soil Science Society of America Journal, 41: 843-849. Go to original source...
  80. Waldron L.J., Dakessian S. (1981): Soil reinforcement by roots: Calculation of increased soil shear resistance from root properties. Soil Science, 132: 427-435. Go to original source...
  81. Watson A., Marden M., Rowan D. (1997): Root-wood strength deterioration in kanuka after clearfelling. New Zealand Journal of Forestry Science, 27: 205-215.
  82. Yang Y., Chen L., Li N., Zhang Q. (2016): Effect of root moisture content and diameter on root tensile properties. PLoS ONE, 11: e0151791. Go to original source... Go to PubMed...
  83. Zavala-González R., Cantú-Silva I., Sánchez-Castillo L., González-Rodríguez H., Kubota T., Hasnawir (2019): Ten native tree species for potential use in soil bioengineering in northeastern Mexico. Botanical Sciences, 97: 291-300. Go to original source...
  84. Zhang C., Chen L., Jiang J., Zhou S. (2012): Effects of gauge length and strain rate on the tensile strength of tree roots. Trees, 26: 1577-1584. Go to original source...
  85. Zhang C.-B., Chen L.-H., Jiang J. (2014): Why fine tree roots are stronger than thicker roots: the role of cellulose and lignin in relation to slope stability. Geomorphology, 206: 196-202. Go to original source...
  86. Zhou W.-H., Qi X.-H. (2019): Root cohesion estimation of riparian trees based on model uncertainty characterization. Journal of Materials in Civil Engineering, 31: 04018389. Go to original source...

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