Update search
- Abstract
- Affiliation
- All
- Authors
- Book Series
- DOI
- EISBN
- EISSN
- Full Text
- GeoRef ID
- ISBN
- ISSN
- Issue
- Keyword (GeoRef Descriptor)
- Meeting Information
- Report #
- Title
- Volume
- Abstract
- Affiliation
- All
- Authors
- Book Series
- DOI
- EISBN
- EISSN
- Full Text
- GeoRef ID
- ISBN
- ISSN
- Issue
- Keyword (GeoRef Descriptor)
- Meeting Information
- Report #
- Title
- Volume
- Abstract
- Affiliation
- All
- Authors
- Book Series
- DOI
- EISBN
- EISSN
- Full Text
- GeoRef ID
- ISBN
- ISSN
- Issue
- Keyword (GeoRef Descriptor)
- Meeting Information
- Report #
- Title
- Volume
- Abstract
- Affiliation
- All
- Authors
- Book Series
- DOI
- EISBN
- EISSN
- Full Text
- GeoRef ID
- ISBN
- ISSN
- Issue
- Keyword (GeoRef Descriptor)
- Meeting Information
- Report #
- Title
- Volume
- Abstract
- Affiliation
- All
- Authors
- Book Series
- DOI
- EISBN
- EISSN
- Full Text
- GeoRef ID
- ISBN
- ISSN
- Issue
- Keyword (GeoRef Descriptor)
- Meeting Information
- Report #
- Title
- Volume
- Abstract
- Affiliation
- All
- Authors
- Book Series
- DOI
- EISBN
- EISSN
- Full Text
- GeoRef ID
- ISBN
- ISSN
- Issue
- Keyword (GeoRef Descriptor)
- Meeting Information
- Report #
- Title
- Volume
NARROW
Format
Article Type
Journal
Publisher
Section
GeoRef Subject
-
all geography including DSDP/ODP Sites and Legs
-
Asia
-
Far East
-
China
-
Kunlun Mountains (1)
-
-
-
-
Europe
-
Southern Europe
-
Iberian Peninsula
-
Spain (1)
-
-
-
Western Europe
-
France (1)
-
-
-
North America
-
Rocky Mountains
-
U. S. Rocky Mountains
-
Absaroka Range
-
Beartooth Mountains (1)
-
-
-
-
-
United States
-
Montana (1)
-
U. S. Rocky Mountains
-
Absaroka Range
-
Beartooth Mountains (1)
-
-
-
Vermont
-
Windham County Vermont (1)
-
-
-
-
commodities
-
brines (1)
-
-
elements, isotopes
-
carbon (1)
-
hydrogen (1)
-
metals
-
alkaline earth metals
-
calcium (1)
-
magnesium (1)
-
-
iron (2)
-
platinum group (1)
-
rhenium (1)
-
tin (2)
-
-
oxygen (4)
-
-
geochronology methods
-
paleomagnetism (1)
-
Rb/Sr (1)
-
-
geologic age
-
Precambrian (1)
-
-
igneous rocks
-
igneous rocks
-
plutonic rocks
-
granites (1)
-
ultramafics
-
peridotites (1)
-
-
-
volcanic rocks
-
basalts (1)
-
-
-
-
metamorphic rocks
-
metamorphic rocks
-
metaigneous rocks (1)
-
-
-
meteorites
-
meteorites
-
stony meteorites
-
chondrites
-
carbonaceous chondrites
-
CV chondrites
-
Allende Meteorite (1)
-
-
-
-
-
-
-
minerals
-
alloys
-
carbides (2)
-
-
halides
-
chlorides
-
halite (3)
-
sylvite (4)
-
-
-
minerals (2)
-
native elements
-
graphite (1)
-
-
oxides
-
brucite (2)
-
cassiterite (2)
-
chrome spinel (1)
-
periclase (1)
-
spinel (1)
-
-
silicates
-
chain silicates
-
pyroxene group
-
clinopyroxene
-
diopside (1)
-
-
-
-
framework silicates
-
feldspar group
-
plagioclase (1)
-
-
-
orthosilicates
-
nesosilicates
-
garnet group
-
grossular (3)
-
pyrope (3)
-
-
mullite (1)
-
olivine group
-
olivine (2)
-
-
-
-
-
sulfates
-
gypsum (1)
-
-
-
Primary terms
-
absolute age (1)
-
Asia
-
Far East
-
China
-
Kunlun Mountains (1)
-
-
-
-
brines (1)
-
carbon (1)
-
chemical analysis (1)
-
core (3)
-
crust (1)
-
crystal chemistry (1)
-
crystal growth (1)
-
crystal structure (2)
-
deformation (1)
-
diagenesis (1)
-
Earth (1)
-
Europe
-
Southern Europe
-
Iberian Peninsula
-
Spain (1)
-
-
-
Western Europe
-
France (1)
-
-
-
geophysics (1)
-
hydrogen (1)
-
igneous rocks
-
plutonic rocks
-
granites (1)
-
ultramafics
-
peridotites (1)
-
-
-
volcanic rocks
-
basalts (1)
-
-
-
magmas (3)
-
mantle (5)
-
metals
-
alkaline earth metals
-
calcium (1)
-
magnesium (1)
-
-
iron (2)
-
platinum group (1)
-
rhenium (1)
-
tin (2)
-
-
metamorphic rocks
-
metaigneous rocks (1)
-
-
metamorphism (1)
-
metasomatism (1)
-
meteorites
-
stony meteorites
-
chondrites
-
carbonaceous chondrites
-
CV chondrites
-
Allende Meteorite (1)
-
-
-
-
-
-
minerals (2)
-
Moon (2)
-
North America
-
Rocky Mountains
-
U. S. Rocky Mountains
-
Absaroka Range
-
Beartooth Mountains (1)
-
-
-
-
-
oxygen (4)
-
paleomagnetism (1)
-
petrology (2)
-
phase equilibria (7)
-
plate tectonics (1)
-
Precambrian (1)
-
sedimentary petrology (1)
-
sedimentary rocks
-
chemically precipitated rocks
-
evaporites (1)
-
-
-
spectroscopy (1)
-
United States
-
Montana (1)
-
U. S. Rocky Mountains
-
Absaroka Range
-
Beartooth Mountains (1)
-
-
-
Vermont
-
Windham County Vermont (1)
-
-
-
-
sedimentary rocks
-
sedimentary rocks
-
chemically precipitated rocks
-
evaporites (1)
-
-
-
GeoRef Categories
Era and Period
Date
Availability
Origin and consequences of non-stoichiometry in iron carbide Fe 7 C 3 Available to Purchase
Microscopic strain in a grossular-pyrope solution anti-correlates with excess volume through local Mg-Ca cation arrangement, more strongly at high Ca/Mg ratio Available to Purchase
Excess mixing volume, microstrain, and stability of pyrope-grossular garnets Available to Purchase
Thermal, compositional, and compressional demagnetization of cementite Available to Purchase
The whole-block approach to measuring hydrogen diffusivity in nominally anhydrous minerals Available to Purchase
Thermo-compression of pyrope-grossular garnet solid solutions: Non-linear compositional dependence Available to Purchase
Plates, planets, and phase changes: 50 years of petrology Available to Purchase
Three advances of the previous half-century fundamentally altered petrology, along with the rest of the Earth sciences. Planetary exploration, plate tectonics, and a plethora of new tools all changed the way we understand, and the way we explore, our natural world. And yet the same large questions in petrology remain the same large questions. We now have more information and understanding, but we still wish to know the following. How do we account for the variety of rock types that are found? What does the variety and distribution of these materials in time and space tell us? Have there been secular changes to these patterns, and are there future implications? This review examines these bigger questions in the context of our new understandings and suggests the extent to which these questions have been answered. We now do know how the early evolution of planets can proceed from examples other than Earth, how the broad rock cycle of the present plate tectonic regime of Earth works, how the lithosphere atmosphere hydrosphere and biosphere have some connections to each other, and how our resources depend on all these things. We have learned that small planets, whose early histories have not been erased, go through a wholesale igneous processing essentially coeval with their formation. By inference, this also happened to Earth. The early differentiation on a small planet produces observable basaltic rock types—and produces little else besides a residue and a planetary core. In contrast, the larger Earth's preservation of its original differentiation products has been eroded by continued activity which still involves extensive basaltic volcanism with further reprocessing through plate tectonic cycles to form continents and cratons. We also now have a good understanding of the pressure-induced phase changes that are responsible for the Earth's mantle's seismic layered structure. It is unclear the extent to which this layered seismic structure corresponds to chemical layering as well as to mineralogical layering. Earth's transition zone, lower, and upper mantles may not have the same composition. It is possible that still larger exoplanets might be expected to develop additional modes of activity with emphasis on additional phase changes producing more internal layering and differentiation.