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1

Luehring, Ronald W. Evaluations of collapse susceptibility in alluvial fan deposits: Towaoc Canal, Reach 2, Towaoc, Colorado. U.S. Dept. of the Interior, Bureau of Reclamation, Division of Research and Laboratory Services, Geotechnical Services Branch, 1988.

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2

Luehring, Ronald W. Evaluations of collapse susceptibility in alluvial fan deposits: Towaoc Canal, Reach 2, Towaoc, Colorado. U.S. Dept. of the Interior, Bureau of Reclamation, Division of Research and Laboratory Services, Geotechnical Services Branch, 1988.

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3

Luehring, Ronald W. Evaluations of collapse susceptibility in alluvial fan deposits: Towaoc Canal, Reach 2, Towaoc, Colorado. U.S. Dept. of the Interior, Bureau of Reclamation, Division of Research and Laboratory Services, Geotechnical Services Branch, 1988.

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4

1954-, Harden J. W., and Geological Survey (U.S.), eds. Soil formation on the Trail Canyon alluvial fan, Fish Lake Valley, Nevada. U.S. Dept. of the Interior, Geological Survey, 1991.

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5

Luehring, Ronald W. Investigation and analysis of canal test section and siphon areas Towaoc Canal Reach 2, Colorado. Geotechnical Branch, Research and Laboratory Services Division, Denver Office, U.S. Dept. of the Interior, Bureau of Reclamation, 1990.

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6

Sukop, Michael. Retention of pesticides by alluvial soils in western Washington: Experimental variables, relation to soil properties, and spatial variability. State of Washington Water Research Center, Washington State University and the University of Washington, 1989.

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7

Hansen, Cristi V. Water-table conditions, aquifer properties, and streambed permeability along the Republican River from near Hardy, Nebraska, to Concordia, Kansas. U.S. Dept. of the Interior, U.S. Geological Survey, 1998.

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8

Hansen, Cristi V. Water-table conditions, aquifer properties, and streambed permeability along the Republican River from near Hardy, Nebraska, to Concordia, Kansas. U.S. Dept. of the Interior, U.S. Geological Survey, 1998.

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9

Hansen, Cristi V. Water-table conditions, aquifer properties, and streambed permeability along the Republican River from near Hardy, Nebraska, to Concordia, Kansas. U.S. Dept. of the Interior, U.S. Geological Survey, 1998.

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10

Hansen, Cristi V. Water-table conditions, aquifer properties, and streambed permeability along the Republican River from near Hardy, Nebraska, to Concordia, Kansas. U.S. Dept. of the Interior, U.S. Geological Survey, 1998.

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11

V, Hansen Cristi. Water-table conditions, aquifer properties, and streambed permeability along the Republican River from near Hardy, Nebraska, to Concordia, Kansas. U.S. Dept. of the Interior, U.S. Geological Survey, 1998.

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12

V, Hansen Cristi. Water-table conditions, aquifer properties, and streambed permeability along the Republican River from near Hardy, Nebraska, to Concordia, Kansas. U.S. Dept. of the Interior, U.S. Geological Survey, 1998.

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13

V, Hansen Cristi. Water-table conditions, aquifer properties, and streambed permeability along the Republican River from near Hardy, Nebraska, to Concordia, Kansas. U.S. Dept. of the Interior, U.S. Geological Survey, 1998.

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14

V, Hansen Cristi. Water-table conditions, aquifer properties, and streambed permeability along the Republican River from near Hardy, Nebraska, to Concordia, Kansas. U.S. Dept. of the Interior, U.S. Geological Survey, 1998.

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15

1944-, Gerrard John, ed. Alluvial soils. Van Nostrand Reinhold, 1987.

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16

Gazal, Rico M. Leaf gas exchange of mature bottomland oak trees. U.S. Dept. of Agriculture, Forest Service, Southern Research Station, 2009.

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17

Kelly, Brian P. Vertical hydraulic conductivity of soil and potentiometric surface of the Missouri River alluvial aquifer at Kansas City, Missouri and Kansas, August 1992 and January 1993. U.S. Geological Survey, 1995.

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18

Reheis, Marith C. Soils in granitic alluvium in humid and semiarid climates along Rock Creek, Carbon County, Montana. U.S. G.P.O., 1987.

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19

Harden, Jennifer W. Soils developed in granitic alluvium near Merced, California. Dept. of the Interior, U.S. Geological Survey, 1987.

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20

W, Markewich Helaine, and United States. Soil Conservation Service., eds. Analyses of four inceptisols of Holocene age, east-central Alabama. U.S. G.P.O., 1988.

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21

G, Brown A., and A. G. Brown. Alluvial geoarchaeology: Floodplain archaeology and environmental change. Cambridge University Press, 1997.

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22

Hossner, Lloyd R. Reclamation of alluvial valley soils in Texas using mixed overburden. s.n, 1992.

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23

Busacca, Alan J. Late Cenozoic stratigraphy of the Feather and Yuba Rivers area, California: With a section on soil development in mixed alluvium at Honcut Creek. U.S. G.P.O., 1989.

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24

Angeroth, Cory E. Characterization of hydraulic conductivity of the alluvium and basin fill, Pinal Creek Basin near Globe, Arizona. U.S. Dept. of the Interior, U.S. Geological Survey, 2002.

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25

Angeroth, Cory E. Characterization of hydraulic conductivity of the alluvium and basin fill, Pinal Creek Basin near Globe, Arizona. U.S. Dept. of the Interior, U.S. Geological Survey, 2002.

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26

Detroy, Mark G. Occurrence and distribution of nitrate and herbicides in the Iowa River alluvial aquifer, Iowa--May 1984 to November 1985. Dept. of the Interior, U.S. Geological Survey, 1989.

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27

A, McLain A., U.S. Nuclear Regulatory Commission. Division of Systems Analysis and Regulatory Effectiveness., and Sandia National Laboratories, eds. Use of computerized microtomography to examine the relationships of sorption sites in alluvial soils to iron and pore space distributions. Division of Systems Analysis and Regulatory Effectiveness, Office of Nuclear Regulatory Research, U.S. Nuclear Regulatory Commission, 2002.

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28

Scholl, M. A. Spatial variation in hydraulic conductivity determined by slug tests in the Canadian River alluvium near the Norman Landfill, Norman, Oklahoma. U.S. Dept. of the Interior, U.S. Geological Survey, 1998.

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29

Marron, D. C. Field and laboratory data describing physical and chemical characteristics of metal-contaminated flood-plain deposits downstream from lead, west-central South Dakota. Dept. of the Interior, U.S. Geological Survey, 1988.

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30

Geological Survey (U.S.), ed. Field and laboratory data describing physical and chemical characteristics of metal-contaminated flood-plain deposits downstream from lead, west-central South Dakota. Dept. of the Interior, U.S. Geological Survey, 1988.

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31

Marron, D. C. Field and laboratory data describing physical and chemical characteristics of metal-contaminated flood-plain deposits downstream from lead, west-central South Dakota. Dept. of the Interior, U.S. Geological Survey, 1988.

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32

Kesteren, Walther G. M. van., ed. Introduction to the physics of cohesive sediment in the marine environment. Elsevier, 2004.

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33

Cashon, Jacki. Old Alluvial Soil : Where Is Gold Found: The Old Alluvial Soil Is Known As. Independently Published, 2021.

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34

Pinto, Alexandre, António Cristóvão, António Alberto Correia, et al., eds. 2nd Seminar on Transportation Geotechnics, Soil Improvement Challenges on Alluvial Zones. Portuguese Geotechnical Society, 2019. http://dx.doi.org/10.24849/spg.cpgt.2019.01.

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35

Hagy, Heath M., and Michael L. Schummer. Guide to Moist-Soil Wetland Plants of the Mississippi Alluvial Valley. University Press of Mississippi, 2012.

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36

Rahmatullah. Plant uptake of potassium released from sand, silt and clay fractions of some alluvial and loess derived soils of Pakistan. 1991.

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37

A guide to moist-soil wetland plants of the Mississippi Alluvial Valley. University Press of Mississippi, 2012.

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38

Brewbaker, Erica. Golden Triangle : How to Locate Gold: The Old Alluvial Soil Is Known As. Independently Published, 2021.

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39

Pinto, Alexandre, António Cristóvão, António Alberto Correia, et al., eds. 2nd Seminar on Transportation Geotechnics, Soil Improvement Challenges on Alluvial Zones, Presentations, Volume 1. Portuguese Geotechnical Society, 2019. http://dx.doi.org/10.24849/spg.cpgt.2019.02.

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40

Pinto, Alexandre, António Cristóvão, António Alberto Correia, et al., eds. 2nd Seminar on Transportation Geotechnics, Soil Improvement Challenges on Alluvial Zones, Presentations, Volume 2. Portuguese Geotechnical Society, 2019. http://dx.doi.org/10.24849/spg.cpgt.2019.03.

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41

Pinto, Alexandre, António Cristóvão, António Alberto Correia, et al., eds. 2nd Seminar on Transportation Geotechnics, Soil Improvement Challenges on Alluvial Zones, Presentations, Volume 3. Portuguese Geotechnical Society, 2019. http://dx.doi.org/10.24849/spg.cpgt.2019.04.

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42

Trigg, Clive, and Merle Trigg. Wildflowers of the Brisbane Ranges. CSIRO Publishing, 2000. http://dx.doi.org/10.1071/9780643101494.

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The Brisbane Ranges area, situated 80 km west of Melbourne and 30 km north-west of Geelong, is extraordinarily rich in diversity. With basalt grasslands, heathy woodland, alluvial soils, buckshot gravel and granite rocks, it boasts more than 430 species of native plants.
 Wildflowers of the Brisbane Ranges contains magnificent photographs of more than 400 species, many of them orchids, including rare and vulnerable species such as the Naked Sun Orchid (Thelymitra circumsepta) and the Hyacinth Orchid (Dipodium pardalinum).
 A list of references, colour guide, glossary, comprehensive i
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43

G, Brown A. Alluvial Geoarchaeology: Floodplain Archaeology and Environmental Change. Cambridge University Press, 2009.

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44

G, Brown A. Alluvial Geoarchaeology: Floodplain Archaeology and Environmental Change. Cambridge University Press, 2011.

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45

Otto, John. The Final Frontiers, 1880-1930. Praeger, 1999. http://dx.doi.org/10.5040/9798400651120.

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An examination of the settlement history of the alluvial bottomlands of the lower Mississippi Valley from 1880 to 1930, this study details how cotton-growers transformed the swamplands of northwestern Mississippi, northeastern Louisiana, northeastern Arkansas, and southern Missouri into cotton fields. Although these alluvial bottomlands contained the richest cotton soils in the American South, cotton-growers in the Southern bottomlands faced a host of environmental problems, including dense forests, seasonal floods, water-logged soils, poor transportation, malarial fevers and insect pests. Thi
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46

Maltman, Alex. Vineyards, Rocks, and Soils. Oxford University Press, 2018. http://dx.doi.org/10.1093/oso/9780190863289.001.0001.

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Jurassic, basalt, moraine, flint, alluvial, magma: what are these words and what do they have to do with wine? The answers are here in this book. They are geological terms that reflect a bond between wine and the land. Understanding geology, however, is tricky. Geological concepts are obscure; processes can be imperceptibly slow, invisible, and unimaginably ancient. The terminology is formidable, such that even the names of common rocks carry an air of mystery. Geology is introduced plainly, starting with basic principles, all in the context of wine. The emphasis is on the kinds of processes t
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47

Gypsic soils on the Kane alluvial fans, Big Horn County, Wyoming. U.S. G.P.O., 1987.

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48

Soils developed in granitic alluvium near Merced, California. U.S. G.P.O., 1987.

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49

McLain, A. A. Use of Computerized Microtomography to Examine the Relationships of Sorption Sites in Alluvial Soils to Iron and Pore Space Distributions. United States Government Printing Office, 2002.

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