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{{short description|Creationist term for a fossil that extends through more than one geological stratum}}
{{Creationism sidebar}}
[[File:Lycopsid joggins mcr1.JPG|thumb|Ancient ''in situ'' [[w:lycopsid|lycopsid]], probably [[w:Sigillaria|''Sigillaria'']], with attached [[w:stigmaria|stigmarian roots]]. Specimen is from the Joggins Formation ([[Pennsylvanian (geology)|Pennsylvanian]]), Cumberland Basin, Nova Scotia.]]
[[Image:Stigmaria Bear Valley upright.jpg|thumb|Upright ''[[Sigillaria]]'' in dipping beds of [[Pennsylvanian (geology)|Pennsylvanian]] [[Llewellyn Formation]] in [[Bear Valley Strip Mine]], [[Northumberland County, Pennsylvania]]]]
A '''polystrate fossil''' is a [[fossil]] of a single organism (such as a [[tree trunk]]) that extends through more than one geological [[stratum]].<ref name="MacRae1997a">MacRae, A., 1997, [http://www.talkorigins.org/faqs/polystrate/trees.html ''"Polystrate" Tree Fossils'']. [http://www.talkorigins.org/ TalkOrigins Archive.]</ref>
This term is typically applied to "fossil forests" of upright [[Petrified wood|fossil tree trunks]] and stumps that have been found worldwide, i.e. in the [[Eastern United States]], Eastern [[Canada]], [[England]], [[France]], [[Germany]], and [[Australia]], typically associated with coal-bearing strata.<ref name="DiMichele+2011a">DiMichele, W.A., and H.J. Falcon-Lang, 2011, [http://si-pddr.si.edu/dspace/handle/10088/15971 ''Pennsylvanian 'fossil forests' in growth position (T0 assemblages): origin, taphonomic bias and palaeoecological insights.''] Journal of the Geological Society, 168(2):585-605.</ref> Within [[Carboniferous]] coal-bearing strata, it is also very common to find what are called ''Stigmaria'' (root stocks) within the same stratum. [[Stigmaria]] are completely absent in post-Carboniferous strata, which contain either coal, polystrate trees, or both.
==Geological explanation==
In [[geology]], such fossils are referred to as either upright fossil trunks, upright fossil trees, or ''T0 assemblages''. According to mainstream
Upright fossils typically occur in layers associated with an actively subsiding coastal plain or [[Rift (geology)|rift]] basin, or with the accumulation of volcanic material around a periodically erupting [[stratovolcano]]. Typically, this period of rapid sedimentation was followed by a period of time - decades to thousands of years long - characterized by very slow or no accumulation of sediments. In [[river delta]]s and other coastal-plain settings, rapid sedimentation is often the end result of a brief period of accelerated subsidence of an area of coastal plain relative to sea level caused by [[salt tectonics]], global sea-level rise, growth faulting, [[continental margin]] collapse, or some combination of these factors.<ref name=Gastaldo2004a/> For example, geologists such as John W. F. Waldron and Michael C. Rygel have argued that the rapid burial and preservation of polystrate fossil trees found at [[Joggins, Nova Scotia]] directly result from rapid subsidence, caused by salt tectonics within an already subsiding [[pull-apart basin]], and from the resulting rapid accumulation of sediments.<ref name="Waldron+2005a">Waldron, J.W.F., and M.C. Rygel, 2005, ''Role of evaporite withdrawal in the preservation of a unique coal-bearing succession: Pennsylvanian Joggins Formation, Nova Scotia,'' Geology 33(5):337-340.</ref><ref name="Waldron+2005b">John W.F. Waldron, John C. White, Elizabeth MacInnes, and Carlos G. Roselli, 2005, ''Field Trip B7 Transpression and transtension along a continental transform fault: Minas Fault Zone, Nova Scotia.'' Geological Association of Canada Mineralogical Association of Canada - Canadian Society of Petroleum Geologists - Canadian Society of Soil Sciences Joint Meeting - Halifax, May 2005. Special Publication no. 33. Atlantic Geoscience Society, Department of Earth Sciences, Dalhousie University, Halifax, Nova Scotia, Canada. ISBN 0-9737982--2-X</ref> The specific layers containing polystrate fossils occupy only a very limited fraction of the total area of any of these basins.<ref name="Waldron+2005a"/><ref>Popular articles on their findings include (1.) [http://www.geotimes.org/july05/NN_Jogginstrees.html ''Sedimentology: Fossil forests sunk by salt''] by Sara Pratt, July 2005 Geotimes and (2.) [http://
===Yellowstone===
The upright fossil trees of the Gallatin Petrified Forest in the [[Gallatin Range]] and the Yellowstone Petrified Forest at [[Amethyst Mountain]] and [[Specimen Ridge]] in [[Yellowstone National Park]], occur buried within the [[lahar]]s and other volcanic deposits comprising the [[Eocene]] Lamar River Formation as the result of periods of rapid sedimentation associated with explosive volcanism. This type of volcanism generates and deposits large quantities of loose volcanic material as a blanket over the slope of a [[volcano]], as happened during the 1991 eruption of [[Mount Pinatubo]]. Both during and for years after a period of volcanism, lahars and normal stream activity wash this loose volcanic material downslope. These processes result in the rapid burial of large areas of the surrounding countryside beneath several meters of sediment, as directly observed during the 1991 eruption of Mount Pinatubo.<ref name=newhall>Newhall, C.G., and R.S. Punongbayan, 1996, ''Fire and Mud: Eruptions and Lahars of Mount Pinatubo, Philippines'', University of Washington Press. {{ISBN
===Fossil soils===
Geologists have recognized innumerable
Geologists, who have
===Formation by regeneration===
Geologists have also found that some of the larger upright fossil trees found within Carboniferous coal-bearing strata show evidence of regeneration after being partially buried by sediments. In these cases, the trees were clearly alive when they were partially buried by sediments. The accumulated sediment was insufficient to kill the trees immediately because of their size. As a result, some of them developed a new set of roots from their trunks just below the new ground surface. Until they either died or were overwhelmed by the accumulating sediments, these trees would likely continue to regenerate by adding height and new roots with each increment of sediment, eventually leaving several meters of former "trunk" buried underground as sediments accumulated.<ref name=Gastaldo2004a/><ref name= Gastaldo1997a>Gastaldo, R.A., 1992, ''Regenerative growth in fossil horsetails (Calamites) following burial by alluvium''. Historical Biology, 6(3):203-220.</ref>
===Formation by Carboniferous deglacial meltwater-pulses===
In addition, part of the Carboniferous Period was a period of extensive and thick continental [[ice sheet]]s. During the Carboniferous ice age, the repeated [[Glacial period|glacial]] – [[interglacial]] cycles caused major changes in the thickness and extent of continental ice sheets. When these ice sheets expanded in extent and thickness, [[eustatic sea level]] typically fell by over {{convert|100|m|ft|sp=us}}. When these ice sheets shrank in extent and thickness, eustatic sea level typically rose again by typically over {{convert|100|m|ft|sp=us}}.<ref name="Heckel1986a">Heckel, P.H., 1986. ''Sea-level curve for Pennsylvanian eustatic marine transgressive-regressive depositional cycles along midcontinent outcrop belt, North America.'' Geology, 14(4), pp.330-334.</ref><ref name="VeerversOthers1987a">Veervers, J.T. and Powell, C.M., 1987. ''Late Paleozoic glacial episodes in Gondwanaland reflected in transgressive-regressive depositional sequences in Euramerica.'' Geological Society of America Bulletin, 98(4), pp.475-487.</ref> As occurred during the [[Holocene]] Epoch for [[Meltwater pulse 1A]] and [[Meltwater pulse 1B]],<ref name="Gornitz2009a">Gornitz, V., 2009. ''Sea level change, post-glacial.'' In ''Encyclopedia of paleoclimatology and ancient environments'' (pp. 887-893). Springer Netherlands. In: Encyclopedia of paleoclimatology and ancient environments (Ed. V. Gornitz) pp. 887–893. Springer, Dordrecht, The Netherlands.</ref> brief episodes of rapid melting of Carboniferous, Gondwanan continental ice sheets likely caused very rapid rises in sea level that would have abruptly inundated low-lying coastal swamps and drowned the forests growing on them. Based on the sedimentology of roof strata of surface and underground coal mines and cyclothems containing the fossils of upright and ''[[in situ]]'' tree trunks, geologists proposed that the flooding of coastal swamp by [[Deglaciation|deglacial]] [[meltwater]] pulses resulted in the rapid flooding of coastal forests, particularly along preexisting coastal rivers and streams, over large areas of coastal swamp. During and after their submergence, upright trunks of drowned coastal forests were buried by tidally influenced sedimentation.<ref name="ArcherOthers2016a"/><ref name="CecilOthers2014a">Cecil, C.B., DiMichele, W.A. and Elrick, S.D., 2014. ''Middle and Late Pennsylvanian cyclothems, American Midcontinent: Ice-age environmental changes and terrestrial biotic dynamics.'' Comptes Rendus Geoscience, 346(7), pp.159-168.</ref>
===Association with marine fossils===
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====Glacial deposits====
Unfossilized, late [[Pleistocene]] upright trees have been found buried beneath [[glacial deposit]]s within North America along the southern edge of the [[Laurentide
</ref><ref>
Illustrated articles about unfossilized upright trees found within glacial deposits of North America include: (1.) [http://www.museum.state.il.us/muslink/forest/htmls/how_bury.html ''How Do We Know?:Buried Forests'']; (2.) [http://www.admin.mtu.edu/urel/breaking/2000/forest.html ''Researchers Study 10,000-Year-Old Buried Forest'']; and (3.) [http://www.geo.msu.edu/geogmich/chippewa.html ''Glacial Lake Chippewa and Stanley''].
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==References==
{{reflist|2}}
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