The Thermal Evolution of the Grenville Terrane Revealed through U‐Pb and Fission‐Track Analysis of Detrital Zircon from Cambro‐Ordovician Quartz Arenites of the Potsdam and Galway Formations
Tectonothermal studies of Precambrian terranes using detrital zircons have been the domain of U‐Pb dating techniques. Advancements in technology have made it possible to study the low‐temperature evolution of these terranes with the fission‐track (FT) dating method, and combining these two technique...
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Veröffentlicht in: | The Journal of geology 2009-11, Vol.117 (6), p.595-614 |
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description | Tectonothermal studies of Precambrian terranes using detrital zircons have been the domain of U‐Pb dating techniques. Advancements in technology have made it possible to study the low‐temperature evolution of these terranes with the fission‐track (FT) dating method, and combining these two techniques provides a unique look at the thermal evolution of Precambrian terranes. Detrital zircon grains from the upper middle Cambrian to lower middle Cambrian Potsdam and Galway formations in New York State, which uncomformably overlie the Precambrian Grenville terrane, were analyzed by U‐Pb and FT dating. Approximately 90% of the U‐Pb ages fall between 950 and 1200 Ma, fully consistent with the idea that these zircons are derived almost entirely from Grenville‐age rock. Zircon FT (ZFT) ages from the same suite of samples have component populations of ∼540, ∼780, and ∼1200 Ma, with single‐grain ages as old as 2.1 Ga. The most important observations from the FT data are that there is no widespread resetting on either side of the Adirondacks, that the component populations are older than the age of deposition, and therefore that the principle population likely reflects the cooling ages of what was almost exclusively Grenville source rock. The ZFT component populations older than Grenville tectonic events (FT age > 1.6 Ga) suggest that these old grains and the zircon with old U‐Pb ages were transported from other nearby Precambrian terranes, such as the Superior and the Yavapai‐Mazatzal. These FT data show that the Potsdam and Galway formations have not undergone heating significant enough to reset fission tracks in zircon since deposition and that the heating in the source rocks at 540 Ma corresponds to cooling after the breakup of Rodinia and the rifting of the Iapetus Ocean. |
doi_str_mv | 10.1086/605778 |
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J. ; Garver, J. I.</creator><creatorcontrib>Montario, M. J. ; Garver, J. I.</creatorcontrib><description>Tectonothermal studies of Precambrian terranes using detrital zircons have been the domain of U‐Pb dating techniques. Advancements in technology have made it possible to study the low‐temperature evolution of these terranes with the fission‐track (FT) dating method, and combining these two techniques provides a unique look at the thermal evolution of Precambrian terranes. Detrital zircon grains from the upper middle Cambrian to lower middle Cambrian Potsdam and Galway formations in New York State, which uncomformably overlie the Precambrian Grenville terrane, were analyzed by U‐Pb and FT dating. Approximately 90% of the U‐Pb ages fall between 950 and 1200 Ma, fully consistent with the idea that these zircons are derived almost entirely from Grenville‐age rock. Zircon FT (ZFT) ages from the same suite of samples have component populations of ∼540, ∼780, and ∼1200 Ma, with single‐grain ages as old as 2.1 Ga. The most important observations from the FT data are that there is no widespread resetting on either side of the Adirondacks, that the component populations are older than the age of deposition, and therefore that the principle population likely reflects the cooling ages of what was almost exclusively Grenville source rock. The ZFT component populations older than Grenville tectonic events (FT age > 1.6 Ga) suggest that these old grains and the zircon with old U‐Pb ages were transported from other nearby Precambrian terranes, such as the Superior and the Yavapai‐Mazatzal. These FT data show that the Potsdam and Galway formations have not undergone heating significant enough to reset fission tracks in zircon since deposition and that the heating in the source rocks at 540 Ma corresponds to cooling after the breakup of Rodinia and the rifting of the Iapetus Ocean.</description><identifier>ISSN: 0022-1376</identifier><identifier>EISSN: 1537-5269</identifier><identifier>DOI: 10.1086/605778</identifier><identifier>CODEN: JGEOAZ</identifier><language>eng</language><publisher>Chicago: The University of Chicago Press</publisher><subject>Annealing ; Basement rocks ; Cooling ; Grains ; Lead ; Macroevolution ; Orogeny ; Precambrian supereon ; Quartz ; Radiation damage ; Rocks ; Sediments ; Uranium ; Zirconium</subject><ispartof>The Journal of geology, 2009-11, Vol.117 (6), p.595-614</ispartof><rights>2009 by The University of Chicago. All rights reserved.</rights><rights>Copyright University of Chicago, acting through its Press Nov 2009</rights><lds50>peer_reviewed</lds50><woscitedreferencessubscribed>false</woscitedreferencessubscribed><citedby>FETCH-LOGICAL-a363t-970c55227cfaa86f2a919ab16a57ee61109c0b9f3cbdbcc33e37f29ff63b60223</citedby><cites>FETCH-LOGICAL-a363t-970c55227cfaa86f2a919ab16a57ee61109c0b9f3cbdbcc33e37f29ff63b60223</cites></display><links><openurl>$$Topenurl_article</openurl><openurlfulltext>$$Topenurlfull_article</openurlfulltext><thumbnail>$$Tsyndetics_thumb_exl</thumbnail><link.rule.ids>314,776,780,799,27901,27902</link.rule.ids></links><search><creatorcontrib>Montario, M. J.</creatorcontrib><creatorcontrib>Garver, J. I.</creatorcontrib><title>The Thermal Evolution of the Grenville Terrane Revealed through U‐Pb and Fission‐Track Analysis of Detrital Zircon from Cambro‐Ordovician Quartz Arenites of the Potsdam and Galway Formations</title><title>The Journal of geology</title><description>Tectonothermal studies of Precambrian terranes using detrital zircons have been the domain of U‐Pb dating techniques. Advancements in technology have made it possible to study the low‐temperature evolution of these terranes with the fission‐track (FT) dating method, and combining these two techniques provides a unique look at the thermal evolution of Precambrian terranes. Detrital zircon grains from the upper middle Cambrian to lower middle Cambrian Potsdam and Galway formations in New York State, which uncomformably overlie the Precambrian Grenville terrane, were analyzed by U‐Pb and FT dating. Approximately 90% of the U‐Pb ages fall between 950 and 1200 Ma, fully consistent with the idea that these zircons are derived almost entirely from Grenville‐age rock. Zircon FT (ZFT) ages from the same suite of samples have component populations of ∼540, ∼780, and ∼1200 Ma, with single‐grain ages as old as 2.1 Ga. The most important observations from the FT data are that there is no widespread resetting on either side of the Adirondacks, that the component populations are older than the age of deposition, and therefore that the principle population likely reflects the cooling ages of what was almost exclusively Grenville source rock. The ZFT component populations older than Grenville tectonic events (FT age > 1.6 Ga) suggest that these old grains and the zircon with old U‐Pb ages were transported from other nearby Precambrian terranes, such as the Superior and the Yavapai‐Mazatzal. These FT data show that the Potsdam and Galway formations have not undergone heating significant enough to reset fission tracks in zircon since deposition and that the heating in the source rocks at 540 Ma corresponds to cooling after the breakup of Rodinia and the rifting of the Iapetus Ocean.</description><subject>Annealing</subject><subject>Basement rocks</subject><subject>Cooling</subject><subject>Grains</subject><subject>Lead</subject><subject>Macroevolution</subject><subject>Orogeny</subject><subject>Precambrian supereon</subject><subject>Quartz</subject><subject>Radiation damage</subject><subject>Rocks</subject><subject>Sediments</subject><subject>Uranium</subject><subject>Zirconium</subject><issn>0022-1376</issn><issn>1537-5269</issn><fulltext>true</fulltext><rsrctype>article</rsrctype><creationdate>2009</creationdate><recordtype>article</recordtype><recordid>eNqNkcFu1DAQhi1EJZYCz2ABQlxC7XjjJMfV0l0qVWpB2wuXaOLYXS9JvB07i5YTj9CH6pPwJPU2FE5IHKyRPN_8_28PIa84-8BZIU8ky_K8eEImPBN5kqWyfEomjKVpwkUun5Hn3m8Y4yLN2ITcrdaaxoMdtPR059ohWNdTZ2iIjSXqfmfbNiIaEXpNv-idhlY3sY1uuF7Tq18_by9rCn1DF9b7OBwvVgjqG5310O699Qe1jzqgDdHjq0UVDQy6js6hq9FF_gIbt7PKQk8_D4DhB51FZxu0f0xy6YJvoHvwWUL7HfZ04WLoQ1r_ghwZaL1--bsek6vF6Wr-KTm_WJ7NZ-cJCClCUuZMZVma5soAFNKkUPISai4hy7WWnLNSsbo0QtVNrZQQWuQmLY2Ropbx_8QxeT3qbtHdDNqHauMGjK_0FS-nU1GwaRGhdyOk0HmP2lRbtB3gvuKsOiyoGhcUwbcjOKi1VXDttqi9_yv5B3v_H1i1bUxE34zoxgeH__K9B9i1rwM</recordid><startdate>200911</startdate><enddate>200911</enddate><creator>Montario, M. J.</creator><creator>Garver, J. I.</creator><general>The University of Chicago Press</general><general>University of Chicago, acting through its Press</general><scope>AAYXX</scope><scope>CITATION</scope><scope>7UA</scope><scope>8FD</scope><scope>C1K</scope><scope>F1W</scope><scope>FR3</scope><scope>H96</scope><scope>KR7</scope><scope>L.G</scope></search><sort><creationdate>200911</creationdate><title>The Thermal Evolution of the Grenville Terrane Revealed through U‐Pb and Fission‐Track Analysis of Detrital Zircon from Cambro‐Ordovician Quartz Arenites of the Potsdam and Galway Formations</title><author>Montario, M. J. ; Garver, J. 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I.</creatorcontrib><collection>CrossRef</collection><collection>Water Resources Abstracts</collection><collection>Technology Research Database</collection><collection>Environmental Sciences and Pollution Management</collection><collection>ASFA: Aquatic Sciences and Fisheries Abstracts</collection><collection>Engineering Research Database</collection><collection>Aquatic Science & Fisheries Abstracts (ASFA) 2: Ocean Technology, Policy & Non-Living Resources</collection><collection>Civil Engineering Abstracts</collection><collection>Aquatic Science & Fisheries Abstracts (ASFA) Professional</collection><jtitle>The Journal of geology</jtitle></facets><delivery><delcategory>Remote Search Resource</delcategory><fulltext>fulltext</fulltext></delivery><addata><au>Montario, M. J.</au><au>Garver, J. I.</au><format>journal</format><genre>article</genre><ristype>JOUR</ristype><atitle>The Thermal Evolution of the Grenville Terrane Revealed through U‐Pb and Fission‐Track Analysis of Detrital Zircon from Cambro‐Ordovician Quartz Arenites of the Potsdam and Galway Formations</atitle><jtitle>The Journal of geology</jtitle><date>2009-11</date><risdate>2009</risdate><volume>117</volume><issue>6</issue><spage>595</spage><epage>614</epage><pages>595-614</pages><issn>0022-1376</issn><eissn>1537-5269</eissn><coden>JGEOAZ</coden><abstract>Tectonothermal studies of Precambrian terranes using detrital zircons have been the domain of U‐Pb dating techniques. Advancements in technology have made it possible to study the low‐temperature evolution of these terranes with the fission‐track (FT) dating method, and combining these two techniques provides a unique look at the thermal evolution of Precambrian terranes. Detrital zircon grains from the upper middle Cambrian to lower middle Cambrian Potsdam and Galway formations in New York State, which uncomformably overlie the Precambrian Grenville terrane, were analyzed by U‐Pb and FT dating. Approximately 90% of the U‐Pb ages fall between 950 and 1200 Ma, fully consistent with the idea that these zircons are derived almost entirely from Grenville‐age rock. Zircon FT (ZFT) ages from the same suite of samples have component populations of ∼540, ∼780, and ∼1200 Ma, with single‐grain ages as old as 2.1 Ga. The most important observations from the FT data are that there is no widespread resetting on either side of the Adirondacks, that the component populations are older than the age of deposition, and therefore that the principle population likely reflects the cooling ages of what was almost exclusively Grenville source rock. The ZFT component populations older than Grenville tectonic events (FT age > 1.6 Ga) suggest that these old grains and the zircon with old U‐Pb ages were transported from other nearby Precambrian terranes, such as the Superior and the Yavapai‐Mazatzal. These FT data show that the Potsdam and Galway formations have not undergone heating significant enough to reset fission tracks in zircon since deposition and that the heating in the source rocks at 540 Ma corresponds to cooling after the breakup of Rodinia and the rifting of the Iapetus Ocean.</abstract><cop>Chicago</cop><pub>The University of Chicago Press</pub><doi>10.1086/605778</doi><tpages>20</tpages></addata></record> |
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subjects | Annealing Basement rocks Cooling Grains Lead Macroevolution Orogeny Precambrian supereon Quartz Radiation damage Rocks Sediments Uranium Zirconium |
title | The Thermal Evolution of the Grenville Terrane Revealed through U‐Pb and Fission‐Track Analysis of Detrital Zircon from Cambro‐Ordovician Quartz Arenites of the Potsdam and Galway Formations |
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