Francais | English | Espanõl

Geologic time scale

From Wikipedia, the free encyclopedia

Jump to: navigation, search

Contents

The geological time scale is used by geologists and other scientists to describe the timing and relationships between events that have occurred during the history of the Earth. The table of geologic periods presented here is in accordance with the dates and nomenclature proposed by the International Commission on Stratigraphy, and uses the standard color codes of the United States Geological Survey.

Evidence from radiometric dating indicates that the Earth is about 4,570 million years old (expressed with m.y.a. or "Ma" as in "it dates from 4570 Ma"). The geological or deep time of Earth's past has been organized into various units according to events which took place in each period. Different spans of time on the time scale are usually delimited by major geological or paleontological events, such as mass extinctions. For example, the boundary between the Cretaceous period and the Paleogene period is defined by the extinction event that marked the demise of the dinosaurs and of many marine species. Older periods which predate the reliable fossil record are defined by absolute age.

[edit] Graphical timelines

The second and third timelines are each subsections of their preceding timeline as indicated by asterisks. <timeline> ImageSize = width:800 height:100 PlotArea = left:65 right:15 bottom:20 top:5 AlignBars = justify

Colors =

 id:neogene   value:rgb(0.99215,0.8,0.54)
 id:paleogene value:rgb(1,0.7019,0)
 id:cretaceous   value:rgb(0.5,0.764,0.1098)
 id:jurassic      value:rgb(0.302,0.706,0.5) 
 id:triassic    value:rgb(0.403,0.765,0.716) 
 id:permian   value:rgb(0.404,0.776,0.867) 
 id:carboniferous     value:rgb(0.6,0.741,0.855)
 id:devonian  value:rgb(0.6,0.6,0.788)
 id:silurian  value:rgb(0.694,0.447,0.714)
 id:ordovician      value:rgb(0.976,0.506,0.651)
 id:cambrian  value:rgb(0.984,0.5,0.373)
 id:neoproterozoic    value:rgb(0.792,0.647,0.583)
 id:mesoproterozoic    value:rgb(0.867,0.761,0.533)
 id:paleoproterozoic    value:rgb(0.702,0.698,0.369)
 id:eoarchean    value:rgb(0.5,0.565,0.565)   
 id:paleoarchean    value:rgb(0.6,0.592,0.569)   
 id:mesoarchean    value:rgb(0.698,0.65,0.6)   
 id:neoarchean    value:rgb(0.796,0.804,0.784)   
 id:ediacaran     value:rgb(0.918,0.847,0.737)   
 id:cryogenian    value:rgb(0.863,0.671,0.667)
 id:tonian        value:rgb(0.796,0.643,0.424)  
 id:stratherian   value:rgb(1,1,0.8)   # light yellow
 id:calymmian     value:rgb(1,1,0.8)   # light yellow
 id:orosirian     value:rgb(1,1,0.8)   # light yellow
 id:rhyacian      value:rgb(1,1,0.8)   # light yellow
 id:siderian     value:rgb(1,1,0.8)   # light yellow
 id:ectasian      value:rgb(1,1,0.8)   # light yellow
 id:stenian      value:rgb(1,1,0.8)   # light yellow
 id:cenozoic   value:rgb(1,1,0)
 id:mesozoic   value:rgb(0.5,0.6784,0.3176)
 id:paleozoic  value:rgb(0.5,0.7098,0.835)
 id:phanerozoic value:rgb(0.7019,0.886,0.819)
 id:proterozoic value:rgb(0.8,0.85,0.568)
 id:archean   value:rgb(0.6,0.6784,0.6745)
 id:hadean value:rgb(0.4,0.4,0.4)
 id:black  value:black
 id:white  value:white

Period = from:-4567.17 till:0 TimeAxis = orientation:horizontal ScaleMajor = unit:year increment:500 start:-4500 ScaleMinor = unit:year increment:100 start:-4500

Define $markred = text:"*" textcolor:red shift:(0,3) fontsize:10

PlotData=

 align:center textcolor:black fontsize:8 mark:(line,black) width:25 shift:(0,-5)
 bar:eon
 at:      0   align:right  $markred
 at:   -542   align:left   $markred shift:(2,3)
 from: -542   till:    0   text:Phanerozoic  color:phanerozoic   
 from:-2500   till: -542   text:Proterozoic  color:proterozoic   
 from:-3800   till: -2500  text:Archean      color:archean   
 from: start  till: -3800  text:Hadean       color:hadean


 bar:era
 from:  -65.5 till:    0   text:C~z shift:(0,1.5)        color:cenozoic        
 from: -251   till:  -65.5 text:Meso~zoic shift:(0,1.5)  color:mesozoic        
 from: -542   till: -251 text:Paleo~zoic shift:(0,1.5)  color:paleozoic 
 from: -1000  till:  -542  text:Neoprote-~rozoic shift:(0,1.8) color:neoproterozoic   
 from:-1600   till:  -1000  text:Mesoproterozoic color:mesoproterozoic  
 from:-2500   till: -1600  text:Paleoproterozoic color:paleoproterozoic 
 from:-2800   till: -2500  text:Neo-~archean shift:(0,1.5)     color:neoarchean       
 from:-3200   till: -2800  text:Meso-~archean shift:(0,1.5)   color:mesoarchean      
 from:-3600   till: -3200  text:Paleo-~archean shift:(0,1.5) color:paleoarchean     
 from:-3800   till: -3600  text:Eoar-~chean shift:(0,0.5) color:eoarchean fontsize:6       
 from:start   till: -3800  color:white
 bar:period
 fontsize:6
 from:   -23.03 till:    0    color:neogene
 from:  -65.5 till:   -23.03  color:paleogene
 from: -145.5   till:  -65.5  color:cretaceous
 from: -199.6   till: -145.5  color:jurassic
 from: -251   till: -199.6    color:triassic
 from: -299   till: -251      color:permian
 from: -359.2   till: -299    color:carboniferous
 from: -416 till: -359.2      color:devonian
 from: -443.7 till: -416      color:silurian
 from: -488.3   till: -443.7  color:ordovician
 from: -542   till: -488.3    color:cambrian
 from: -630   till:  -542  text:Ed. color:ediacaran
 from: -850   till:  -630  text:Cryo-~genian color:cryogenian shift:(0,0.5)
 from: -1000  till:  -850  text:Ton-~ian color:tonian shift:(0,0.5)
 from: -1200  till:  -1000 text:Ste-~nian color:mesoproterozoic shift:(0,0.5)
 from: -1400  till:  -1200 text:Ect-~asian color:mesoproterozoic shift:(0,0.5)
 from: -1600  till:  -1400 text:Calym-~mian color:mesoproterozoic shift:(0,0.5)
 from: -1800  till:  -1600 text:Stath-~erian color:paleoproterozoic shift:(0,0.5)
 from: -2050  till:  -1800 text:Oro-~sirian color:paleoproterozoic shift:(0,0.5)
 from: -2300  till:  -2050 text:Rhy-~acian color:paleoproterozoic shift:(0,0.5)
 from: -2500  till:  -2300 text:Sid-~erian color:paleoproterozoic shift:(0,0.5)
 from: start  till:  -2500 color:white

</timeline>

<timeline> ImageSize = width:800 height:100 PlotArea = left:65 right:15 bottom:20 top:5 AlignBars = justify

Colors =

 id:neogene   value:rgb(0.99215,0.8,0.54)
 id:paleogene value:rgb(1,0.7019,0)
 id:cretaceous   value:rgb(0.5,0.764,0.1098)
 id:jurassic      value:rgb(0.302,0.706,0.5) 
 id:triassic    value:rgb(0.403,0.765,0.716) 
 id:permian   value:rgb(0.404,0.776,0.867) 
 id:carboniferous     value:rgb(0.6,0.741,0.855)
 id:devonian  value:rgb(0.6,0.6,0.788)
 id:silurian  value:rgb(0.694,0.447,0.714)
 id:ordovician      value:rgb(0.976,0.506,0.651)
 id:cambrian  value:rgb(0.984,0.5,0.373)
 id:cenozoic   value:rgb(1,1,0)
 id:mesozoic   value:rgb(0.5,0.6784,0.3176)
 id:paleozoic  value:rgb(0.5,0.7098,0.835)
 id:phanerozoic value:rgb(0.7019,0.886,0.819)
 id:black  value:black
 id:white  value:white
 id:darkgreen value:rgb(0,0.35,0)


Period = from:-542 till:0 TimeAxis = orientation:horizontal ScaleMajor = unit:year increment:100 start:-500 ScaleMinor = unit:year increment:10 start:-540

Define $markred = text:"*" textcolor:red shift:(0,3) fontsize:10 Define $markgreen = text:"*" textcolor:darkgreen shift:(0,3) fontsize:10

PlotData=

 align:center textcolor:black fontsize:8 mark:(line,black) width:25 shift:(0,-5)
 bar:eon
 at:      0   align:right  $markred 
 at:   -542   align:left   $markred shift:(2,3)
 from: -542   till:    0   text:Phanerozoic color:phanerozoic
 bar:era
 at:      0   align:right  $markgreen
 at:    -65.5 align:left   $markgreen shift:(2,3)
 from:  -65.5 till:    0   text:Cenozoic color:cenozoic
 from: -251   till:  -65.5 text:Mesozoic color:mesozoic
 from: -542   till: -251   text:Paleozoic color:paleozoic
 bar:period fontsize:8
 from: -23.03    till:  0     text:Neo-~gene shift:(0,0.5) color:neogene
 from: -65.5  till:  -23.03   text:Paleo-~gene shift:(0,0.5) color:paleogene
 from: -145.5   till:  -65.5 text:Cretaceous color:cretaceous
 from: -199.6   till: -145.5   text:Jurassic color:jurassic
 from: -251   till: -199.6   text:Triassic   color:triassic
 from: -299   till: -251   text:Permian      color:permian
 from: -359.2   till: -299   text:Carboniferous color:carboniferous
 from: -416 till: -359.2   text:Devonian        color:devonian
 from: -443.7 till: -416 text:Sil-~urian shift:(0,0.5) color:silurian
 from: -488.3   till: -443.7 text:Ordovician color:ordovician
 from: -542   till: -488.3   text:Cambrian   color:cambrian

</timeline>

<timeline> ImageSize = width:800 height:100 PlotArea = left:65 right:15 bottom:20 top:5 AlignBars = justify

Colors =

 id:neogene   value:rgb(0.99215,0.8,0.54)
 id:paleogene value:rgb(1,0.7019,0)
 id:cenozoic   value:rgb(1,1,0)
 id:holocene   value:rgb(1,1,0.702)
 id:pleistocene  value:rgb(1,0.922,0.384)
 id:pliocene     value:rgb(1,0.922,0.675)
 id:miocene      value:rgb(1,0.871,0)
 id:oligocene    value:rgb(0.918,0.776,0.447)
 id:eocene       value:rgb(0.918,0.678,0.263)
 id:paleocene    value:rgb(0.92,0.576,0.005)
 id:black  value:black
 id:white  value:white
 id:darkgreen value:rgb(0,0.35,0)

Period = from:-65.5 till:0 TimeAxis = orientation:horizontal ScaleMajor = unit:year increment:10 start:-60 ScaleMinor = unit:year increment:1 start:-65

Define $markgreen = text:"*" textcolor:darkgreen shift:(0,3) fontsize:10

PlotData=

 align:center textcolor:black fontsize:8 mark:(line,black) width:25 shift:(0,-5)
 bar:era
 at:     0  align:right $markgreen 
 at: start  align:left  $markgreen shift:(2,3)
 from:start  till:  0    text:Cenozoic color:cenozoic
 bar:period
 from: -23.03   till:  0   text:Neogene color:neogene
 from:start  till: -23.03   text:Paleogene color:paleogene
 bar:epoch
 from: -0.1  till:  0  color:holocene
 from: -1.806  till: -0.1  text:P color:pleistocene
 from: -5.332    till: -1.806  text:Plio-~cene shift:(0,1) color:pliocene fontsize:7
 from:-23.03    till: -5.332    text:Miocene color:miocene
 from:-33.9    till:-23.03    text:Oligocene color:oligocene
 from:-55.8    till:-33.9    text:Eocene     color:eocene
 from:start  till:-55.8    text:Paleocene    color:paleocene

</timeline>

Millions of Years</center>


The Holocene (the latest epoch) and the present (from 1950 to now) are too small to be shown clearly on this timeline.

[edit] Terminology

The largest defined unit of time is the Eon. Eons are divided into Eras, which are in turn divided into Periods, Epochs and Stages. At the same time paleontologists define a system of faunal stages, of varying lengths, based on changes in the observed fossil assemblages. In many cases, such faunal stages have been adopted in building the geological nomenclature, though in general there are far more recognized faunal stages than defined geological time units.

Geologists tend to talk in terms of Upper/Late, Lower/Early and Middle parts of periods and other units , such as "Upper Jurassic", and "Middle Cambrian". Upper, Middle, and Lower are terms applied to the rocks themselves, as in "Upper Jurassic sandstone," while Late, Middle, and Early are applied to time, as in "Early Jurassic deposition" or "fossils of Early Jurassic age." The adjectives are capitalized when the subdivision is formally recognized, and lower case when not; thus "early Miocene" but "Early Jurassic." Because geologic units occurring at the same time but from different parts of the world can often look different and contain different fossils, there are many examples where the same period was historically given different names in different locales. For example, in North America the Lower Cambrian is referred to as the Waucoban series that is then subdivided into zones based on trilobites. The same timespan is split into Tommotian, Atdabanian and Botomian stages in East Asia and Siberia. It is a key aspect of the work of the International Commission on Stratigraphy to reconcile this conflicting terminology and define universal horizons that can be used around the world.

[edit] History of the time scale

The principles underlying geologic (geological) time scales were laid down by Nicholas Steno in the late 17th century. Steno argued that rock layers (or strata) are laid down in succession, and that each represents a "slice" of time. He also formulated the principle of superposition, which states that any given stratum is probably older than those above it and younger than those below it. While Steno's principles were simple, applying them to real rocks proved complex. Over the course of the 18th century geologists came to realize that: 1) Sequences of strata were often eroded, distorted, tilted, or even inverted after deposition; 2) Strata laid down at the same time in different areas could have entirely different appearances; 3) The strata of any given area represented only part of the Earth's long history.

The first serious attempts to formulate a geological time scale that could be applied anywhere on Earth took place in the late 18th century. The most influential of those early attempts (championed by Abraham Werner, among others) divided the rocks of the Earth's crust into four types: Primary, Secondary, Tertiary, and Quaternary. Each type of rock, according to the theory, formed during a specific period in Earth history. It was thus possible to speak of a "Tertiary Period" as well as of "Tertiary Rocks." Indeed, "Tertiary" and "Quaternary" remained in use as names of geological periods well into the 20th century.

The identification of strata by the fossils they contained, pioneered by William Smith, Georges Cuvier, Jean d'Omalius d'Halloy and Alexandre Brogniart in the early 19th century, enabled geologists to divide Earth history more precisely. It also enabled them to correlate strata across national (or even continental) boundaries. If two strata (however distant in space or different in composition) contained the same fossils, chances were good that they had been laid down at the same time. Detailed studies of the strata and fossils of Europe produced, between 1820 and 1850, the sequence of geological periods still used today.

British geologists dominated the process, and the names of the periods reflect that dominance. The "Cambrian," "Ordovician," and "Silurian" periods were named after ancient British tribes (and defined using stratigraphic sequences from Wales). The "Devonian" was named for the English county of Devon, and the name "Carboniferous" was simply an adaptation of "the Coal Measures," the old British geologists' term for the same set of strata. The "Permian" was named after Perm, Russia, because it was defined using strata in that region by a British geologist Roderick Murchison. However, some periods were defined by geologists from other countries. The "Triassic" was named in 1834 by a German geologist Friedrich Von Alberti from the three distinct layers (Latin trias meaning triad) —red beds, capped by chalk, followed by black shales— that are found throughout Germany and Northwest Europe, called the 'Trias'. The "Jurassic" was named by a French geologist Alexandre Brogniart for the extensive marine limestone exposures of the Jura Mountains. The "Cretaceous" (from Latin creta meaning 'chalk') as a separate period was first defined by a Belgian geologist Jean d'Omalius d'Halloy in 1822, using strata in the Paris basin<ref> (1974) Great Soviet Encyclopedia, 3rd ed. (in Russian), Moscow: Sovetskaya Enciklopediya, vol. 16, p. 50.</ref> and named for the extensive beds of chalk (calcium carbonate deposited by the shells of marine invertebrates).

British geologists were also responsible for the grouping of periods into Eras and the subdivision of the Tertiary and Quaternary periods into epochs.

When William Smith and Sir Charles Lyell first recognized that rock strata represented successive time periods, time scales could be estimated only very imprecisely since various kinds of rates of change used in estimation were highly variable. While creationists had been proposing dates of around six or seven thousand years for the age of the Earth based on their Christian heritage, early geologists were suggesting millions of years for geologic periods with some even suggesting a virtually infinite age for the Earth. Geologists and paleontologists constructed the geologic table based on the relative positions of different strata and fossils, and estimated the time scales based on studying rates of various kinds of weathering, erosion, sedimentation, and lithification. Until the discovery of radioactivity in 1896 and the development of its geological applications through radiometric dating during the first half of the 20th century (pioneered by such geologists as Arthur Holmes) which allowed for more precise absolute dating of rocks, the ages of various rock strata and the age of the Earth were the subject of considerable debate.

In 1977, the Global Commission on Stratigraphy (now the International Commission) started an effort to define global references (Global Boundary Stratotype Sections and Points) for geologic periods and faunal stages. The commission's most recent work is described in the 2004 geologic time scale of Gradstein et al. (ISBN 0-521-78673-8), and is used as the basis of this page.

[edit] Table of geologic time

(This table is not to any scale.)

Eon Era Period<ref name="note1">Paleontologists often refer to faunal stages rather than geologic (geological) periods. The stage nomenclature is quite complex. See The Paleobiology Database. Retrieved on 2006-03-19. for an excellent time ordered list of faunal stages.</ref> Series/
Epoch
Major Events Start, Million
Years Ago<ref>Dates are slightly uncertain with differences of a few percent between various sources being common. This is largely due to uncertainties in radiometric dating and the problem that deposits suitable for radiometric dating seldom occur exactly at the places in the geologic column where they would be most useful. The dates and errors quoted above are according to the International Commission on Stratigraphy 2004 time scale. Dates labeled with a * indicate boundaries where a Global Boundary Stratotype Section and Point has been internationally agreed upon: see List of Global Boundary Stratotype Sections and Points for a complete list.</ref>
Phane-
rozoic
Cenozoic Neogene<ref name="note3">Historically, the Cenozoic has been divided up into the Quaternary and Tertiary sub-eras, as well as the Neogene and Paleogene periods. However, the International Commission on Stratigraphy has recently decided to stop endorsing the terms Quaternary and Tertiary as part of the formal nomenclature.</ref> Holocene End of recent glaciation and rise of modern civilization. 0.011430 ± 0.00013<ref name="note9">The start time for the Holocene epoch is here given as 11,430 years ago ± 130 years (that is, between 9610 B.C. and 9350 B.C.). For further discussion of the dating of this epoch, see Holocene.</ref>
Pleistocene Flourishing and then extinction of many large mammals (Pleistocene megafauna). Evolution of anatomically modern humans. 1.806 ± 0.005 *
Pliocene Intensification of present ice age; cool and dry climate. Australopithecines, many of the existing genera of mammals, and recent mollusks appear. Homo habilis appears. 5.332 ± 0.005 *
Miocene Moderate climate; Orogeny in northern hemisphere. Modern mammal and bird families became recognizable. Horses and mastodons diverse. Grasses become ubiquitous. First apes appear. 23.03 ± 0.05 *
Paleogene
<ref name="note3"/>
Oligocene Warm climate; Rapid evolution and diversification of fauna, especially mammals. Major evolution and dispersal of modern types of flowering plants 33.9±0.1 *
Eocene Archaic mammals (e.g. Creodonts, Condylarths, Uintatheres, etc) flourish and continue to develop during the epoch. Appearance of several "modern" mammal families. Primitive whales diversify. First grasses. Reglaciation of Antarctica; current ice age begins. 55.8±0.2 *
Paleocene Climate tropical. Modern plants appear; Mammals diversify into a number of primitive lineages following the extinction of the dinosaurs. First large mammals (up to bear or small hippo size). 65.5±0.3 *
Mesozoic Cretaceous Upper/Late Flowering plants proliferate, along with new types of insects. More modern teleost fish begin to appear. Ammonites, belemnites, rudist bivalves, echinoids and sponges all common. Many new types of dinosaurs (e.g. Tyrannosaurs, Titanosaurs, duck bills, and horned dinosaurs) evolve on land, as do modern crocodilians; and mosasaurs and modern sharks appear in the sea. Primitive birds gradually replace pterosaurs. Monotremes, marsupials and placental mammals appear. Break up of Gondwana. 99.6±0.9 *
Lower/Early 145.5 ± 4.0
Jurassic Upper/Late Gymnosperms (especially conifers, Bennettitales and cycads) and ferns common. Many types of dinosaurs, such as sauropods, carnosaurs, and stegosaurs. Mammals common but small. First birds and lizards. Ichthyosaurs and plesiosaurs diverse. Bivalves, Ammonites and belemnites abundant. Sea urchins very common, along with crinoids, starfish, sponges, and terebratulid and rhynchonellid brachiopods. Breakup of Pangea into Gondwana and Laurasia. 161.2 ± 4.0
Middle 175.6 ± 2.0 *
Lower/Early 199.6 ± 0.6
Triassic Upper/Late Archosaurs dominant on land as dinosaurs, in the oceans as Ichthyosaurs and nothosaurs, and in the air as pterosaurs. cynodonts become smaller and more mammal-like, while first mammals and crocodilia appear. Dicrodium flora common on land. Many large aquatic temnospondyl amphibians. Ceratitic ammonoids extremely common. Modern corals and teleost fish appear, as do many modern insect clades. 228.0 ± 2.0
Middle 245.0 ± 1.5
Lower/Early 251.0 ± 0.4 *
Paleozoic Permian Lopingian Landmasses unite into supercontinent Pangea, creating the Appalachians. End of Permo-Carboniferous glaciation. Synapsid reptiles (pelycosaurs and therapsids) become plentiful, while parareptiles and temnospondyl amphibians remain common. In the mid-Permian, coal-age flora are replaced by cone-bearing gymnosperms (the first true seed plants) and by the first true mosses. Beetles and flies evolve. Marine life flourishes in warm shallow reefs; productid and spiriferid brachiopods, bivalves, forams, and ammonoids all abundant. Permian-Triassic extinction event occurs 251 mya: 95 percent of life on Earth becomes extinct, including all trilobites, graptolites, and blastoids. 260.4 ± 0.7 *
Guadalupian 270.6 ± 0.7 *
Cisuralian 299.0 ± 0.8 *
Carbon-
iferous
<ref name="note4">In North America, the Carboniferous is subdivided into Mississippian and Pennsylvanian Periods.</ref>/
Pennsyl-
vanian
Upper/Late Winged insects radiate suddenly; some (esp. Protodonata and Palaeodictyoptera) are quite large. Amphibians common and diverse. First reptiles and coal forests (scale trees, ferns, club trees, giant horsetails, Cordaites, etc.). Highest-ever oxygen levels. Goniatites, brachiopods, bryozoa, bivalves, and corals plentiful in the seas. Testate forams proliferate. 306.5 ± 1.0
Middle 311.7 ± 1.1
Lower/Early 318.1 ± 1.3 *
Carbon-
iferous
<ref name="note4"/>/
Missis-
sippian
Upper/Late Large primitive trees, first land vertebrates, and amphibious sea-scorpions live amid coal-forming coastal swamps. Lobe-finned rhizodonts are big fresh-water predators. In the oceans, early sharks are common and quite diverse; echinoderms (esp. crinoids and blastoids) abundant. Corals, bryozoa, goniatites and brachiopods (Productida, Spiriferida, etc.) very common. But trilobites and nautiloids decline. Glaciation in East Gondwana. 326.4 ± 1.6
Middle 345.3 ± 2.1
Lower/Early 359.2 ± 2.5 *
Devonian Upper/Late First clubmosses, horsetails and ferns appear, as do the first seed-bearing plants (progymnosperms), first trees (the tree-fern Archaeopteris), and first (wingless) insects. Strophomenid and atrypid brachiopods, rugose and tabulate corals, and crinoids are all abundant in the oceans. Goniatite ammonoids are plentiful, while squid-like coleoids arise. Trilobites and armoured agnaths decline, while jawed fishes (placoderms, lobe-finned and ray-finned fish, and early sharks) rule the seas. First amphibians still aquatic. "Old Red Continent" of Euramerica. 385.3 ± 2.6 *
Middle 397.5 ± 2.7 *
Lower/Early 416.0 ± 2.8 *
Silurian Pridoli First vascular plants (the whisk ferns and their relatives), first millipedes and arthropleurids on land. First jawed fishes, as well as many armoured jawless fish, populate the seas. Sea-scorpions reach large size. Tabulate and rugose corals, brachiopods (Pentamerida, Rhynchonellida, etc.), and crinoids all abundant. Trilobites and mollusks diverse; graptolites not as varied. 418.7 ± 2.7 *
Upper/Late (Ludlow) 422.9 ± 2.5 *
Wenlock 428.2 ± 2.3 *
Lower/Early (Llandovery) 443.7 ± 1.5 *
Ordovician Upper/Late Invertebrates diversify into many new types (e.g., long straight-shelled cephalopods). Early corals, articulate brachiopods (Orthida, Strophomenida, etc.), bivalves, nautiloids, trilobites, ostracods, bryozoa, many types of echinoderms (crinoids, cystoids, starfish, etc.), branched graptolites, and other taxa all common. Conodonts (early planktonic vertebrates) appear. First green plants and fungi on land. Ice age at end of period. 460.9 ± 1.6 *
Middle 471.8 ± 1.6
Lower/Early 488.3 ± 1.7 *
Cambrian Upper/Late (Furongian) Major diversification of life in the Cambrian Explosion. Many fossils; most modern animal phyla appear. First chordates appear, along with a number of extinct, problematic phyla. Reef-building Archaeocyatha abundant; then vanish. Trilobites, priapulid worms, sponges, inarticulate brachiopods (unhinged lampshells), and many other animals numerous. Anomalocarids are giant predators, while many Ediacaran fauna die out. Prokaryotes, protists (e.g., forams), fungi and algae continue to present day. Gondwana emerges. 501.0 ± 2.0 *
Middle 513.0 ± 2.0
Lower/Early 542.0 ± 0.3 *
Proter-
ozoic

<ref name="note5">The Proterozoic, Archean and Hadean are often collectively referred to as the Precambrian or Cryptozoic.</ref>
Neo-
proterozoic
Ediacaran Good fossils of multi-celled animals. Ediacaran fauna (or Vendobionta) flourish worldwide in seas. Trace fossils of worm-like Trichophycus, etc. First sponges and trilobitomorphs. Enigmatic forms include oval-shaped Dickinsonia, frond-shaped Charniodiscus, and many soft-jellied creatures. 630

+5/-30 *

Cryogenian Possible "snowball Earth" period. Fossils still rare. Rodinia landmass begins to break up. 850 <ref name="note6">Defined by absolute age (Global Standard Stratigraphic Age).</ref>
Tonian Rodinia supercontinent persists. Trace fossils of simple multi-celled eukaryotes. First radiation of dinoflagellate-like acritarchs. 1000 <ref name="note6"/>
Meso-
proterozoic
Stenian Narrow highly metamorphic belts due to orogeny as supercontinent Rodinia is formed. 1200 <ref name="note6"/>
Ectasian Platform covers continue to expand. Green algae colonies in the seas. 1400 <ref name="note6"/>
Calymmian Platform covers expand. 1600 <ref name="note6"/>
Paleo-
proterozoic
Statherian First complex single-celled life: protists with nuclei. Columbia is the primordial supercontinent. 1800 <ref name="note6"/>
Orosirian The atmosphere became oxygenic. Vredefort and Sudbury Basin asteroid impacts. Much orogeny. 2050 <ref name="note6"/>
Rhyacian Bushveld Formation occurs. Huronian glaciation. 2300 <ref name="note6"/>
Siderian Oxygen Catastrophe: banded iron formations result. 2500 <ref name="note6"/>
Archean
<ref name="note5"/>
Neoarchean Stabilization of most modern cratons; possible mantle overturn event. 2800 <ref name="note6"/>
Mesoarchean First stromatolites (probably colonial cyanobacteria). Oldest macrofossils. 3200 <ref name="note6"/>
Paleoarchean First known oxygen-producing bacteria. Oldest definitive microfossils. 3600 <ref name="note6"/>
Eoarchean Simple single-celled life (probably bacteria and perhaps archaea). Oldest probable microfossils. 3800
Hadean
<ref name="note5"/><ref name="note7">Though commonly used, the Hadean is not a formal eon and no lower bound for the Archean has been agreed upon. The Hadean has also sometimes been called the Priscoan or the Azoic.</ref>
Lower Imbrian<ref name="note8">These era names were taken from the Lunar geologic timescale. Their use for Earth geology is unofficial.</ref>   c.3850
Nectarian<ref name="note8"/>   c.3920
Basin Groups<ref name="note8"/> Oldest known rock (4100 mya). c.4150
Cryptic<ref name="note8"/> Formation of earth (4570 mya). Oldest known mineral, zircon (4400 mya). c.4570

[edit] References and footnotes

<references/>

[edit] See also

[edit] External links

<span class="FA" id="pl" style="display:none;" />

ar:مقياس زمني جيولوجي ast:Escala de los tiempos xeolóxicos ca:Escala dels temps geològics cs:Geologická časová osa cy:Cyfnodau Daearegol da:Jordens historie de:Geologische Zeitskala et:Geokronoloogiline skaala el:Γεωλογική χρονολογική κλίμακα es:Geología histórica eo:Terhistorio fr:Échelle des temps géologiques ko:지질 시대 it:Scala dei tempi geologici he:לוח הזמנים הגאולוגי hu:Földtörténeti korok la:Aevum geologicum lb:Geologesch Zäitskala lt:Geologinė laiko skalė nl:Geologisch tijdvak ja:地質時代 no:Jordens tidsaldre pl:Tabela stratygraficzna pt:Escala de tempo geológico ru:Геохронологическая шкала sk:Chronostratigrafická tabuľka sl:Geološka doba su:Geologic timescale fi:Geologinen ajanlasku sv:Geologisk tidsskala vi:Niên đại địa chất tr:Jeolojik devirler uk:Геохронологічна таблиця zh:地質時代

Personal tools