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1

Soil water dynamics. New York, NY: Oxford University Press, 2002.

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2

Kersebaum, Kurt Christian, Jens-Martin Hecker, Wilfried Mirschel, and Martin Wegehenkel, eds. Modelling water and nutrient dynamics in soil–crop systems. Dordrecht: Springer Netherlands, 2007. http://dx.doi.org/10.1007/978-1-4020-4479-3.

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3

Amilcare, Porporato, ed. Ecohydrology of water-controlled ecosystems: Soil moisture and plant dynamics. Cambridge: Cambridge University Press, 2004.

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4

Kätterer, Thomas. Wheat root dynamics, observed in minirhizotrons, in relation to soil water tension and fertilizer regime. Uppsala: Sveriges lantbruksuniversitet, Institutionen för ekologi och miljövård, 1991.

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5

Kätterer, Thomas. Nitrogen dynamics in soil and winter wheat subjected to daily fertilization and irrigation: Measurements and simulations. Uppsala: Swedish University of Agricultural Sciences, Dept. of Ecology and Environmental Research, 1995.

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6

Kumar, Ashwini. Dynamic modelling of wheat production systems (PL 480 funded scheme, June 1979 to June 1984): Terminal report. Ludhiana, India: Dept. of Soil and Water Engineering, College of Agricultural Engineering, Punjab Agricultural University, 1985.

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7

Bastiaanssen, W. G. M. A methodology for the assessment of surface resistance and soil water storage variability at mesoscale based on remote sensing measurements: A case study with HAPEX-EFEDA data. Wallingford: International Association of Hydrological Sciences, 1994.

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8

Warrick, Arthur W. Soil Water Dynamics. Oxford University Press, USA, 2003.

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9

Warrick, Arthur W. Soil Water Dynamics. Oxford University Press, 2003.

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10

Warrick, Arthur W. Soil Water Dynamics. Oxford University Press, 2003. http://dx.doi.org/10.1093/oso/9780195126051.001.0001.

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11

Rodríguez-Iturbe, Ignacio, and Amilcare Porporato. Ecohydrology of Water-Controlled Ecosystems: Soil Moisture and Plant Dynamics. Cambridge University Press, 2005.

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12

Rodríguez-Iturbe, Ignacio, and Amilcare Porporato. Ecohydrology of Water-controlled Ecosystems: Soil Moisture and Plant Dynamics. Cambridge University Press, 2004.

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13

Ecohydrology of Water-Controlled Ecosystems: Soil Moisture and Plant Dynamics. Cambridge University Press, 2007.

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14

Rodríguez-Iturbe, Ignacio, and Amilcare Porporato. Ecohydrology of Water-Controlled Ecosystems: Soil Moisture and Plant Dynamics. Cambridge University Press, 2009.

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15

Christian, Kersebaum Kurt, ed. Modelling water and nutrient dynamics in soil-crop systems: Proceedings of the workshop on "Modelling water and nutrient dynamics in soil-crop systems" held on 14-16 June 2004 in Müncheberg, Germany. Dordrecht, The Netherlands: Springer Verlag, 2007.

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16

A comparison of simulation models for predicting soil water dynamics in bare and vegetated lysimeters. Richland, Wash: Pacific Northwest Laboratory, 1993.

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17

Yan, Tao. Concentration Dynamics of Fecal Indicators in Hawaiian Coastal and Inland Sand, Soil, and Water During Rainfall Events: Werf Report Path6R09. IWA Publishing, 2011.

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18

Kersebaum, K. Ch, Martin Wegehenkel, Jens-Martin Hecker, and W. Mirschel. Modelling Water and Nutrient Dynamics in Soil-Crop Systems: Applications of Different Models to Common Data Sets - Proceedings of a Workshop Held 2004 in Müncheberg, Germany. Springer London, Limited, 2007.

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19

(Editor), K. Ch Kersebaum, Jens-Martin Hecker (Editor), W. Mirschel (Editor), and Martin Wegehenkel (Editor), eds. Modelling water and nutrient dynamics in soil-crop systems: Applications of different models to common data sets - Proceedings of a workshop held 2004 in Müncheberg, Germany. Springer, 2007.

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20

Wegehenkel, Martin, K. Ch Kersebaum, Jens-Martin Hecker, and W. Mirschel. Modelling water and nutrient dynamics in soil-crop systems: Applications of different models to common data sets - Proceedings of a workshop held 2004 in Müncheberg, Germany. Kersebaum K Ch Hecker Jens Martin Mirschel W, 2010.

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21

Hussain, Shaukat. Effect of soil water pressures on population dynamics of Fusarium equiseti, Glocladium virens, Talaromyces flavus and Trichoderma viride, biocontrol agents of Verticillium dahliae in potatoes. 1994.

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22

Bourrié, Guilhem. Soils As a Key Component of the Critical Zone 3: Soils and Water Circulation. Wiley & Sons, Incorporated, John, 2018.

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23

Bourrié, Guilhem. Soils As a Key Component of the Critical Zone 3: Soils and Water Circulation. Wiley & Sons, Incorporated, John, 2018.

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24

Esler, Karen J., Anna L. Jacobsen, and R. Brandon Pratt. Ecosystems processes. Oxford University Press, 2018. http://dx.doi.org/10.1093/oso/9780198739135.003.0007.

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Ecosystems are assemblages of organisms interacting with one another and their environment (Chapter 1). Key to the functioning of ecosystems is the flow of energy, carbon, mineral nutrients, and water in these systems. The numerous processes involved are chiefly driven by climate, soil, and fire (Chapter 2). In cases where the key drivers are the same in different areas, then ecosystems should converge in their structure and function, which has been a motivation for comparing across mediterranean-type climate (MTC) regions. Convergence of MTC regions has been evaluated, but such comparisons at
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25

White, Robert E. Understanding Vineyard Soils. Oxford University Press, 2015. http://dx.doi.org/10.1093/oso/9780199342068.001.0001.

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The first edition of Understanding Vineyard Soils has been praised for its comprehensive coverage of soil topics relevant to viticulture. However, the industry is dynamic--new developments are occurring, especially with respect to measuring soil variability, managing soil water, possible effects of climate change, rootstock breeding and selection, monitoring sustainability, and improving grape quality and the "typicity" of wines. All this is embodied in an increased focus on the terroir or "sense of place" of vineyard sites, with greater emphasis being placed on wine quality relative to quanti
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26

Lippmann, Morton, and Richard B. Schlesinger. Characterization of Contaminants and Environments. Oxford University Press, 2017. http://dx.doi.org/10.1093/med/9780190688622.003.0002.

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This chapter describes the extensive scientific terminology needed to describe the various classes of chemical contaminants as they occur in environmental media (air, water, soil, etc.) and the structural aspects and dynamic mass and energy transfers within and among the atmosphere, hydrosphere, lithosphere, and biosphere. It also introduces: the characteristics of occupational environments; health effects attributable to occupational and environmental exposures; dose response relationships in populations; and how they are affected by anthropogenic (human activity caused) inputs and disruption
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27

Bastiaanssen, W. G. M., D. H. Hoekman, and R. A. Roebeling. Special Publication: A Methodology for the Assessment of Surface Resistance and Soil Water Storage Variability at Mesoscale Based on Remote Sensing Measurements ... with HAPEX-EFEDA Data (Special Publication). IAHS Press, 1994.

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28

Zydroń, Tymoteusz. Wpływ systemów korzeniowych wybranych gatunków drzew na przyrost wytrzymałości gruntu na ścinanie. Publishing House of the University of Agriculture in Krakow, 2019. http://dx.doi.org/10.15576/978-83-66602-46-5.

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The aim of the paper was to determine the influence of root systems of chosen tree species found in the Polish Flysch Carpathians on the increase of soil shear strength (root cohesion) in terms of slope stability. The paper's goal was achieved through comprehensive tests on root systems of eight relatively common in the Polish Flysch Carpathians tree species. The tests that were carried out included field work, laboratory work and analytical calculations. As part of the field work, the root area ratio (A IA) of the roots was determined using the method of profiling the walls of the trench at a
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