'Sequence stratigraphy' is a relatively new branch of
geology that attempts to link
prehistoric relative
sea-level changes to
sedimentary deposits. The essence of the method is mapping of strata based on identification of time lines (e.g. subaerial unconformities, maximum flooding surfaces), and therefore placing stratigraphy in chronostratigraphic framework. Sequence stratigraphy is proving a much better alternative to a lithostratigraphic approach, which emphasized similarity of aspect of rocks rather than time significance.
The 'sequence' part of the name refers to cyclic sedimentary deposits. The term '
stratigraphy' refers to the geologic knowledge about the processes by which sedimentary deposits form and how those deposits change through time and space on the Earth's surface.
Sea level through geologic time

Comparison of two sea level reconstructions during the last 500 Myr. The scale of change during the last glacial/interglacial transition is indicated with a black bar.
Sea level changes over
geologic time. The graph on the right illustrates two recent interpretations of sea level changes during the
Phanerozoic. Today's date is on the far left side, labeled N for
Neogene.
The blue spikes near date zero represent the sea level changes associated with the
most recent glacial period, which reached its maximum extent about 20,000 years
Before Present (BP). During this glaciation event, the world's sea level was about 320
feet (98
meters) lower than today, due to the large amount of
sea water that had evaporated and been deposited as
snow and
ice in
Northern Hemisphere glaciers. When the world's sea level was at this "low stand", former sea bed sediments were subjected to
subaerial weathering (
erosion by rain, frost, rivers, etc.) and a new shoreline was established at the new level, sometimes miles basinward of the former shoreline if the sea floor was shallowly inclined.
Today, sea level is at a relative "high stand" because the majority of the glaciers had melted by about 10,000 BP and minor glacial melting has slowly continued (with occasional reversals) throughout recorded human history. The ancient shoreline of the last glacial period is now under approximately 390 feet (120 meters) of water. For this reason, most early civilization seaport cities are currently under water (this may be the historic origin of the biblical
Noah story). Although there is debate among earth scientists whether we are currently experiencing a "high stand" it is generally accepted that the eustatic sea level is rising.
In the distant past, sea level has been significantly higher than today. During the Cretaceous (labeled K on the graph), sea level was so high that a seaway extended across the center of North America from Texas to the Arctic Ocean (see reconstruction
here).
These alternating high and low sea level stands repeat at several time scales. The smallest of these cycles is approximately 20,000 years, and corresponds to the rate of precession of the
Earth's rotational axis (see
Milankovitch cycles) and are commonly referred to as '5th order' cycles. The next larger cycle ('4th order') is about 40,000 years and approximately matches the rate at which the Earth's inclination to the
Sun varies (again explained by Milankovitch). The next larger cycle ('3rd order') is about 110,000 years and corresponds to the rate at which the Earth's orbit oscillates from elliptical to circular. Lower order cycles are recognized, which seem to result from
plate tectonic events like the opening of new ocean basins by splitting continental masses.
Hundreds of similar glacial cycles have occurred throughout the
Earth's history. The earth scientists who study the positions of coastal sediment deposits through time ("sequence stratigraphers") have noted dozens of similar basinward shifts of shorelines associated with a later recovery. The largest of these sedimentary cycles can in some cases be correlated around the world with great confidence.
The three controls on stratigraphic architecture and sedimentary cycle development are:
★ Eustatic Sea Level Changes
★ Subsidence Rate of the Basin
★ Sediment Supply.
''Eustatic sea level is the sea level with reference to a fixed point, the centre of the Earth. another term used to describe the sea level is the 'Relative Sea Level' which is the one measured with reference to the base level, above which erosion can occur and below which deposition can occur.''Both eustatic sea level changes and subsidence rates tend to be longer cycles. Sediment supply is largely thought to be controlled by local climatic conditions and can vary rapidly. These variations in local sediment supply affect the local and relative sea level which causes local sedimentary cycles.
Smaller and localised sedimentary cycles are not related to world wide (Eustatic) sea level changes but more to the supply of sediment to the adjacent basins where these sediments are being supplied. For example when the basinward (oceanward) shift or progradation of shorelines was occurring in the
Book Cliffs area of Utah the shorelines were receding or transgressing northwards in Wyoming. These sedimentary cycles are representative of the amount of supply of sediment to the basin. In a transgressive system less sediment is being supplied than the rate of increase in the depth of water and thus the shoreline migrates landward. In a progressive system more sediment is being supplied than the basin can accommodate and the shoreline progrades oceanward (basinward).
Economic Significance
These events have economic significance because these changes in sea level cause large lateral shifts in the depositional patterns of seafloor sediments. These lateral shifts in deposition create alternating layers of good reservoir quality rock (porous and permeable sands) and poorer-quality mudstones (capable of providing a reservoir "seal" to prevent the leakage of any accumulated hydrocarbons that may have migrated into the sandstones). Hydrocarbon prospectors look for places in the world where porous and permeable sands are overlain by low permeability rocks, and where conditions are right for hydrocarbons to be generated and migrate into these "traps".
See also
★
Cratonic sequence
External links
★
A chart of sea level for the past 140,000 years (The different orders of cyclicity can be seen as higher frequency chatter on an overall asymmetric cycle. Today's date is on the right side of this chart.)
★
USC's Sequence Stratigraphy Web a fairly extensive online education resource
★
An Online Guide to Sequence Stratigraphy by the University of Georgia's Stratigraphy Lab.