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NARROW
GeoRef Subject
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all geography including DSDP/ODP Sites and Legs
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Africa
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North Africa
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Morocco
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Tangier Morocco (1)
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Southern Africa
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Invertebrata
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Cnidaria
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Scleractinia (1)
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Mollusca
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geochronology methods
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Cenozoic
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Tertiary
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Paleogene
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middle Eocene
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Oligocene
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middle Oligocene
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Mesozoic
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Carrara Marble (1)
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Cretaceous
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Upper Cretaceous
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Buda Limestone (1)
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Austin Chalk (1)
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Maestrichtian (1)
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Niobrara Formation (2)
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Jurassic
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Paleozoic
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Dunkard Group (1)
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lower Paleozoic
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Conococheague Formation (1)
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Ordovician
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Permian
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Proterozoic
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pyroxene group
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framework silicates
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plagioclase
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silica minerals
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magnesian silicates (1)
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sorosilicates
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sheet silicates
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clay minerals
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illite (7)
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gypsum (2)
-
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sulfides
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chalcopyrite (1)
-
pyrite (2)
-
-
-
Primary terms
-
Africa
-
North Africa
-
Morocco
-
Tangier Morocco (1)
-
-
-
Southern Africa
-
Namibia (1)
-
South Africa
-
Gauteng South Africa (1)
-
-
-
-
Antarctica
-
Marie Byrd Land
-
Byrd Station (1)
-
-
-
Arctic Ocean
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Chukchi Sea (1)
-
-
Asia
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Altai Mountains
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Gorny Altai (1)
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Altai Russian Federation
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Chuya Basin (1)
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Gorny Altai (1)
-
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Arabian Peninsula
-
Bahrain (1)
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Qatar (1)
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Saudi Arabia (2)
-
-
Far East
-
China
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Dabie Mountains (2)
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Gansu China (1)
-
Guangdong China
-
Leizhou Peninsula (1)
-
-
Hainan China (1)
-
Hong Kong (1)
-
Jiangxi China (1)
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Jilin China (1)
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Loess Plateau (1)
-
Shaanxi China (2)
-
Shanghai China (1)
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Sichuan Basin (1)
-
Sichuan China (1)
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Sulu Terrane (1)
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Yunnan China (1)
-
-
Japan (1)
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Malaysia (1)
-
Singapore (1)
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Taiwan (3)
-
Thailand
-
Bangkok Thailand (1)
-
-
-
Himalayas (1)
-
Indian Peninsula
-
India (2)
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Nepal (1)
-
-
Main Central Thrust (1)
-
Middle East
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Cyprus (2)
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Iran (2)
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Iraq (3)
-
Jordan (1)
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Mesopotamia (2)
-
Syria (2)
-
Turkey (3)
-
-
-
Atlantic Ocean
-
North Atlantic
-
Gulf of Mexico (1)
-
-
-
Atlantic Ocean Islands
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Shetland Islands (1)
-
-
Australasia
-
Australia (1)
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barite deposits (1)
-
bibliography (1)
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Canada
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-
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Canadian Rocky Mountains (1)
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-
-
-
Caribbean region
-
West Indies
-
Antilles
-
Greater Antilles
-
Jamaica (1)
-
-
-
-
-
Cenozoic
-
Quaternary
-
Holocene (2)
-
Pleistocene
-
upper Pleistocene
-
Malan Loess (1)
-
-
-
-
Tertiary
-
Neogene
-
Miocene
-
middle Miocene
-
Langhian (1)
-
-
upper Miocene
-
Tortonian (1)
-
-
-
Pliocene (1)
-
-
Paleogene
-
Eocene
-
lower Eocene
-
Ypresian
-
London Clay (1)
-
-
-
middle Eocene
-
Barton Clay (1)
-
-
-
Oligocene
-
middle Oligocene
-
Bucatunna Formation (1)
-
Byram Formation (1)
-
-
Vicksburg Group (1)
-
-
-
-
-
Central America
-
El Salvador
-
San Salvador El Salvador (1)
-
-
-
ceramic materials (2)
-
chemical analysis (1)
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clay mineralogy (9)
-
climate change (2)
-
construction materials
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-
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continental drift (1)
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-
crust (10)
-
crystal chemistry (3)
-
crystal growth (3)
-
crystal structure (9)
-
dams (7)
-
data processing (16)
-
deformation (68)
-
diagenesis (3)
-
earthquakes (40)
-
East Pacific Ocean Islands
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Hawaii
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Honolulu County Hawaii
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Oahu
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Honolulu Hawaii (1)
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Europe
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Spain
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Jaen Spain (1)
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Guadalquivir Basin (1)
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Italy
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Apennines
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Southern Apennines (1)
-
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Basilicata Italy (1)
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Ivrea-Verbano Zone (1)
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Ukraine (1)
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France
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plasticity
Experimental study of the effect of bound water on the shear strength and structural units of Malan loess
Crystal plasticity enhances trace element mobility in garnet
Origin of magmatic and tectonic fabrics in the Remal granite-gneiss, Singhbhum Craton, India
Experimental investigation on dynamic and static rock mechanical behavior, failure modes, and sequences of frequent interbedded sand and shale reservoirs
The influence of weathering on index properties and undrained shear strength for the Charmouth Mudstone Formation of the Lias Group at a site near Banbury, Oxfordshire, UK
Loess Is More: Field Investigation and Slope Stability Analysis of the Tanana 440 Landslide, Interior Alaska
Reply to “Comment on ‘If Not Brittle: Ductile, Plastic, or Viscous?’ by Kelin Wang” by Marco A. Lopez‐Sanchez, Sylvie Demouchy, and Catherine Thoraval
Comment on “If Not Brittle: Ductile, Plastic, or Viscous?” by Kelin Wang
Factors Affecting Shrinkage Crack Development in Clay Soils: An Experimental Study
Stratigraphic and Geochemical Evidence for the Alteration of Calcareous Glauconitic Marine Sediments to Calcium Bentonite
Bearing capacity and geotechnical properties of sandy soil substrate contaminated with oil derivatives (diesel fuel and kerosene)
Effect of chemical stabilization on index and engineering properties of a remoulded expansive soil
Factors Contributing to Landslide Susceptibility of the Kope Formation, Cincinnati, Ohio
An archive of data from resonant column and cyclic torsional shear tests performed on Italian clays
Effect of cement and fly-ash on the geotechnical properties of expansive clay soils
Comparison of predicted and actual states in tunnels: lessons to be learned from the Gerede Water Transmission Tunnel, Turkey
In situ seepage testing method for fractured zones of rock mass
Depth Sensitivity of Apparent Magnetic Susceptibility Measurements using Multi-coil and Multi-frequency Electromagnetic Induction
Volume change behaviour of an expansive clay blended with lime and pond ash – controlling swell
Chapter 6 Collapsible Soils in the UK
Abstract Metastable soils may collapse because of the nature of their fabric. Generally speaking, these soils have porous textures, high void ratios and low densities. They have high apparent strengths at their natural moisture content, but large reductions of void ratio take place upon wetting and, particularly, when they are loaded because bonds between grains break down upon saturation. Worldwide, there is a range of natural soils that are metastable and can collapse, including loess, residual soils derived from the weathering of acid igneous rocks and from volcanic ashes and lavas, rapidly deposited and then desiccated debris flow materials such as some alluvial fans; for example, in semi-arid basins, colluvium from some semi-arid areas and cemented, high salt content soils such as some sabkhas. In addition, some artificial non-engineered fills can also collapse. In the UK, the main type of collapsible soil is loess, though collapsible non-engineered fills also exist. Loess in the UK can be identified from geological maps, but care is needed because it is usually mapped as ‘brickearth’. This is an inappropriate term and it is suggested here that it should be replaced, where the soils consist of loess, by the term ‘loessic brickearth’. Loessic brickearth in the UK is found mainly in the south east, south and south west of England, where thicknesses greater than 1 m are found. Elsewhere, thicknesses are usually less than 1 m and, consequently, of limited engineering significance. There are four steps in dealing with the potential risks to engineering posed by collapsible soils: (1) identification of the presence of a potentially collapsible soil using geological and geomorphological information; (2) classification of the degree of collapsibility, including the use of indirect correlations; (3) quantification of the degree of collapsibility using laboratory and/or in situ testing; (4) improvement of the collapsible soil using a number of engineering options.