Astronomical and tectonic influences on climate and deposition revealed through radioisotopic geochronology and Bayesian age-depth modeling of the early Eocene Green River Formation, Wyoming, USA

GSA Bulletin Pub Date : 2023-03-16 DOI:10.1130/b36584.1
Ben Bruck, B. Singer, M. Schmitz, A. Carroll, S. Meyers, Andrew P Walters, B. Jicha
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引用次数: 1

Abstract

The Wilkins Peak Member (WPM) of the Green River Formation in Wyoming, USA, comprises alternating lacustrine and alluvial strata that preserve a record of terrestrial climate during the early Eocene climatic optimum. We use a Bayesian framework to develop age-depth models for three sites, based on new 40Ar/39Ar sanidine and 206Pb/238U zircon ages from seven tuffs. The new models provide two- to ten-fold increases in temporal resolution compared to previous radioisotopic age models, confirming eccentricity-scale pacing of WPM facies, and permitting their direct comparison to astronomical solutions. Starting at ca. 51 Ma, the median ages for basin-wide flooding surfaces atop six successive alluvial marker beds coincide with short eccentricity maxima in the astronomical solutions. These eccentricity maxima have been associated with hyperthermal events recorded in marine strata during the early Eocene. WPM strata older than ca. 51 Ma do not exhibit a clear relationship to the eccentricity solutions, but accumulated 31%−35% more rapidly, suggesting that the influence of astronomical forcing on sedimentation was modulated by basin tectonics. Additional high-precision radioisotopic ages are needed to reduce the uncertainty of the Bayesian model, but this approach shows promise for unambiguous evaluation of the phase relationship between alluvial marker beds and theoretical eccentricity solutions.
美国怀俄明州早始新世绿河组放射性同位素年代学和贝叶斯年龄深度模拟揭示了天文和构造对气候和沉积的影响
美国怀俄明州绿河组的威尔金斯峰段(WPM)由湖泊和冲积层交替组成,保存了始新世早期气候最佳时期的陆地气候记录。基于7个凝灰岩的40Ar/39Ar sanidine和206Pb/238U锆石年龄,采用贝叶斯框架建立了3个测点的年龄深度模型。与以前的放射性同位素年龄模型相比,新模型的时间分辨率提高了2到10倍,证实了WPM相的偏心尺度速度,并允许它们与天文解直接比较。从约51 Ma开始,6个连续冲积标志层上的全盆地泛洪面年龄中值与天文学解中的短偏心最大值相吻合。这些偏心率最大值与始新世早期海相地层记录的高温事件有关。年龄大于约51 Ma的WPM地层与偏心率解的关系不明显,但积累速度快31% ~ 35%,表明天文强迫对沉积的影响受到盆地构造的调节。需要额外的高精度放射性同位素年龄来减少贝叶斯模型的不确定性,但这种方法显示了对冲积标志层和理论偏心解之间的相位关系进行明确评估的希望。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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