While not usually stated, detailed topographic maps show well-mapped anomalous drainage system and other erosional landform evidence the accepted North American Cenozoic geologic and glacial history paradigm (accepted paradigm) does not permit geomorphologists to satisfactorily explain. A new and fundamentally different paradigm able to explain the drainage system and other erosional landform evidence has recently emerged, but requires what the accepted paradigm considers to be the preglacial (and probably mid-Cenozoic) Bell River drainage system to have formed on a melting continental ice sheet’s floor. The new paradigm’s melting ice sheet had previously eroded bedrock underneath it and caused crustal warping that raised continental regions and mountain ranges so as to create and occupy a deep “hole” while massive and prolonged meltwater floods flowed across rising continental regions and mountain ranges to the south. The new paradigm leads to a completely different middle Cenozoic geologic and glacial history than the accepted paradigm describes and the two paradigms are analyzed according to good science expectations such as using evidence anyone can see, applying common sense logic during each research step, producing consistent results, and simplicity of paradigm generated explanations. The new paradigm uses topographic map evidence anyone can see, appears to use common sense logic during each research step, and produces remarkably consistent results leading to a simpler Cenozoic northern Missouri River drainage basin region geologic and glacial history than what the accepted paradigm describes. Further work is needed to test the new paradigm’s ability to explain drainage system and erosional landform evidence in other geographic regions such as in the Ohio River drainage basin.
References
[1]
Fenneman, N.M. (1931) Physiography of Western United States. McGraw-Hill Book Company, Inc., New York, 534 p.
[2]
Fenneman, N.M. (1938) Physiography of Eastern United States. McGraw-Hill Book Company, Inc., New York, 714 p.
[3]
Thornbury, W.D. (1965) Regional geomorphology of the United States. John Wiley and Sons, Inc., New York, 609 p.
[4]
Strahler, A.N. (1945) Hypotheses of Stream Development in the Folded Appalachians of Pennsylvania. Geological Society of America Bulletin. 56, 45-88.
https://doi.org/10.1130/0016-7606(1945)56[45:HOSDIT]2.0.CO;2
[5]
Strahler, A.N. (1952) Dynamic Basis of Geomorphology. Bulletin of the Geological Society of America, 63, 923-938.
https://doi.org/10.1130/0016-7606(1952)63[923:DBOG]2.0.CO;2
[6]
Kuhn, T.S. (1970) The Structure of Scientific Revolutions. Second Edition, Enlarged. The University of Chicago Press, Chicago, 210 p.
[7]
McMillan, J.N. (1973) Shelves of the Labrador Sea and Baffin Bay, Canada. Canadian Society of Petroleum Geologists Memoir, 1, 473-515.
[8]
Duk-Rodkin, A. and Hughes, O.L. (1994) Tertiary-Quaternary Drainage of the Pre-Glacial MacKenzie River Basin. Quaternary International, 22-23, 221-241.
https://doi.org/10.1016/1040-6182(94)90015-9
[9]
Jackson, L. (2018) The Paleo-Bell River: North America’s Vanished Amazon. Earth, 63, 74-81.
[10]
Sears, J.W. (2013) Late Oligocene—Early Miocene Grand Canyon: A Canadian Connection? GSA Today, 23, 4-10. https://doi.org/10.1130/GSATG178A.1
[11]
White, W.A. (1972) Deep Erosion by Continental Ice Sheets. Geological Society of America Bulletin, 83, 1037-1056.
https://doi.org/10.1130/0016-7606(1972)83[1037:DEBCIS]2.0.CO;2
[12]
White, W.A. (1988) More on Deep Glacial Erosion by Continental Ice Sheets and Their Tongues of Distributary Ice. Quaternary Research, 30, 137-150.
https://doi.org/10.1016/0033-5894(88)90019-1
[13]
Gravenor, C.P. (1975) Erosion by Continental Ice Sheets. American Journal of Science, 275, 594-604. https://doi.org/10.2475/ajs.275.5.594
[14]
Sugden, D.E. (1976) A Case against Deep Erosion of Shields by Continental Ice Sheets. Geology, 4, 580-582.
https://doi.org/10.1130/0091-7613(1976)4<580:ACADEO>2.0.CO;2
[15]
Russell, W.L. (1929) Drainage Alignment in the Western Great Plains. The Journal of Geology, 37, 249-255. https://doi.org/10.1086/623618
[16]
White, E.M. (1961) Drainage Alignment in Western South Dakota. American Journal of Science, 259, 207-210. https://doi.org/10.2475/ajs.259.3.207
[17]
Shurr, G.W. (1982) Geological Significance of Lineaments Interpreted from Landsat Images near the Northern Black Hills. In: Christopher, J.E. and Kaldi, J., Eds., 4th International Williston Basin Symposium, North Dakota Geological Society and Saskatchewan Geological Society, Regina, 313-320.
[18]
Clayton, L., Moran, S.R. and Bluemle, J.P. (1980) Geologic Map of North Dakota. United States Geologic Survey, Reston, Scale: 1:500,000.
[19]
Flint, R.F. (1955) Pleistocene Geology of Eastern South Dakota. Professional Paper 262, United States Geological Survey, Reston, 174 p. https://doi.org/10.3133/pp262
[20]
Clausen, E. (2017) Using Map Interpretation Techniques for Relative Dating of a Western North Dakota and South Dakota Drainage Basin Formation Sequence, Missouri River Drainage Basin, USA. Journal of Geography and Geology, 9, 1-18.
https://doi.org/10.5539/jgg.v9n4p1
[21]
Clausen, E. (2019) Origin of the Redwater River Drainage Basin Determined by Topographic Map Interpretation: Eastern Montana, USA. Journal of Geography and Geology, 11, 42-54. https://doi.org/10.5539/jgg.v11n1p42
[22]
Clausen, E. (2019) How a Fundamentally Different and New Glacial History Paradigm Explains North America Glaciated Prairie Region Erosional Escarpments and Drainage Patterns. Earth Science Research, 8, 23-34.
[23]
Clausen, E. (2020) Topographic Map Analysis of Mountain Passes Crossing the Continental Divide between Colorado River Headwaters and North and South Platte River Headwaters to Test a New Geomorphology Paradigm. Journal of Geography and Geology, 12, 50-64. https://doi.org/10.5539/jgg.v12n1p50
[24]
Clausen, E. (2020) Use of Topographic Map Evidence from Drainage Divides Surrounding Wyoming’s Great Divide Basin to Compare Two Fundamentally Different Regional Geomorphology Paradigms. Earth Science Research, 9, 45-57.
[25]
Clausen, E. (2018) Topographic Map Analysis of High Elevation Black Hills through Valleys Linking Spearfish and Rapid Creek Headwaters Valleys, Lawrence County, South Dakota, USA. Journal of Geography and Geology, 10, 8-21.
http://www.ccsenet.org/journal/index.php/jgg/article/view/72098
https://doi.org/10.5539/jgg.v10n1p8
[26]
Clausen, E. (2017) Solving a Perplexing Scenic and Sage Creek Drainage History Problem, Pennington County, South Dakota, USA. Journal of Geography and Geology, 9, 1-10. https://doi.org/10.5539/jgg.v9n2p1
[27]
Clausen, E. (2018) Belle Fourche River-Cheyenne River Drainage Divide Area in the Wyoming Powder River Basin Analyzed by Topographic Map Interpretation Methods, USA. Journal of Geography and Geology, 10, 1-16.
https://doi.org/10.5539/jgg.v10n2p1
[28]
Todd, J.E. (1902) Hydrographic History of South Dakota. Geological Society of America Bulletin, 13, 27-40. https://doi.org/10.1130/GSAB-13-27
[29]
Harksen, J.C. (1966) The Pliocene-Pleistocene Medicine Root Gravel of Southwestern South Dakota. Bulletin of the Southern California Academy of Sciences, 65, 251-257. http://www.sdgs.usd.edu/pubs/pdf/NR-09.pdf
[30]
Zaprowski, B.J., Evenson, E.B., Pazzaglia, F.J. and Epstein, J.B. (2001) Knickzone Propagation in the Black Hills and Northern High Plains: A Different Perspective on the Late Cenozoic Exhumation of the Laramide Rocky Mountains. Geology, 29, 547-550. https://doi.org/10.1130/0091-7613(2001)029<0547:kpitbh>2.0.co;2
[31]
Stamm, J.F., Hendricks, R.R., Sawyer, J.F., Mahan, S.A., Zaprowski, B.J., Geibel, N.M. and Azzolimi, D.C. (2013) Late Quaternary Stream Piracy and Strath Terrace Formation along the Belle Fourche and Lower Cheyenne Rivers, South Dakota and Wyoming. Geomorphology, 197, 10-20.
https://doi.org/10.1016/j.geomorph.2013.03.028
[32]
Straffin, E.C. (1993) Alluvial Terrace Development in the Southeastern Black Hills of South Dakota. Northern Arizona University, Flagstaff, 91 p.
[33]
Clausen, E. (2017) Origin of Little Missouri River-South Fork Grand River and Nearby Drainage Divides in Harding County, South Dakota and Adjacent Eastern Montana, USA. Open Journal of Geology, 7, 1063-1077.
https://doi.org/10.4236/ojg.2017.78071
[34]
Toepelman, W.C. (1925) The Geology of a Portion of the Slim Buttes Region of Northwestern South Dakota, with Special Reference to Unusual Structural Features due to Slumping. University of Chicago, Chicago, 76 p.
[35]
Gill, J.R. (1962) Tertiary Landslides, Northwestern South Dakota and Southeastern Montana. Geological Society of America Bulletin, 73, 725-735.
https://doi.org/10.1130/0016-7606(1962)73[725:TLNSDA]2.0.CO;2
[36]
Lillegraven, J.A. (1970) Stratigraphy, Structure, and Vertebrate Fossils of the Oligocene Brule Formation, Slim Buttes, Northwestern South Dakota. Geological Society of America Bulletin, 81, 831-850.
https://doi.org/10.1130/0016-7606(1970)81[831:SSAVFO]2.0.CO;2
[37]
Clausen, E. (1989) Presence of Rounded Boulders and Large Cobbles at Base of White River Group (Oligocene) Strata in Southwest North Dakota and northwest South Dakota. Contributions to Geology, University of Wyoming, 27, 1-6.
[38]
Bishop, P. (1995) Drainage Rearrangement by River Capture, Beheading and Diversion. Progress in Physical Geography, 19, 449-473.
https://doi.org/10.1177/030913339501900402
[39]
Syverson, K.M. and Colgan, P.M. (2011) Chapter 42: The Quaternary of Wisconsin: An Updated Review of Stratigraphy, Glacial History and Landforms. In: Ehlers, J., Gibbard, P.L. and Hughes, P.D., Eds., Developments in Quaternary Science, Vol. 15, 537-552. https://doi.org/10.1016/B978-0-444-53447-7.00042-8
[40]
Mears Jr., B. (1993) Geomorphic History of Wyoming and High-Level Erosion Surfaces. In: Snoke, A.W., et al., Eds., Geology of Wyoming, Geological Survey Wyoming, Laramie, Memoir, No. 5, 608-626.
[41]
Fan, M., Heller, P., Allen, S.D. and Hough, B.G. (2014) Middle Cenozoic Uplift and Concomitant Drying in the Central Rock Mountains and Adjacent Great Plains. Geology, 42, 547-550. https://doi.org/10.1130/G35444.1
[42]
McMillan, M.E., Heller, P.L. and Wing, S.L. (2006) History and Causes of Post-Laramide Relief in the Rocky Mountain Orogenic Plateau. Geological Society of America Bulletin, 118, 393-405. https://doi.org/10.1130/B25712.1
[43]
Anderson, D.L. (2002) Occam’s Razor: Simplicity, Complexity, and Global Dynamics. Proceeding of the American Philosophical Society, 146, 56-76.
[44]
Love, J.D. and Christiansen, A.C. (1985) Geologic Map of Wyoming. United States Geological Survey, Reston, Scale 1:500,000.
[45]
Pelletier, J.D. (2009) The Impact of Snowmelt on the Late Cenozoic Landscape of the Southern Rocky Mountains, USA. GSA Today, 19, 4-11.
https://doi.org/10.1130/GSATG44A.1
[46]
Sella, G.F., Stein, S., Dixon, T.H., Craymer, M., James, T.S., Mazzotti, S. and Dokka, R.K. (2007) Observation of Glacial Isostatic Adjustment in “Stable” North America with GPS. Geophysical Research Letters, 34, Article ID: L02306.
https://doi.org/10.1029/2006GL027081