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首页> 外文期刊>GSA Bulletin >Structural evolution of the Lewis plate in Glacier National Park, Montana: Implications for regional tectonic development
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Structural evolution of the Lewis plate in Glacier National Park, Montana: Implications for regional tectonic development

机译:蒙大拿州冰川国家公园刘易斯板块的结构演化:对区域构造发展的启示

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摘要

Detailed geologic mapping in southern Glacier National Park, Montana, reveals four episodes of deformation in the hanging wall of the Lewis thrust. (1) Pre-Lewis thrust structures include west- and east-dipping imbricate thrusts, conjugate contraction faults, and west- and east-directed bedding-parallel faults. Although these structures are truncated from below by the Lewis thrust, their development was kinematically compatible with the emplacement of the Lewis plate. Thus, they may have formed during early stages of the emplacement of the Lewis plate. (2) Syn-Lewis thrust structures include the Late Cretaceous-early Tertiary Lewis thrust, west-dipping duplexes, east-dipping normal faults, and the Akamina syncline, a broad fold that lies directly west of the Lewis thrust and extends northwestward for about 120 km from southern Glacier Park, western Montana, to southeastern British Columbia and southwestern Alberta, Canada. The development of the duplexes and the normal faults may have been related to east-verging simple-shear deformation during emplacement of the Lewis plate. The formation of the segment of the Akamina syncline in the study area was the consequence of development of the duplexes in the Lewis plate, because strata above the duplexes are concordant with the syncline. The syncline is, however, disconcordant with the Lewis thrust. This observation contrasts strongly with the well-established concordant relationship between the Lewis thrust and the Akamina syncline in its hanging wall in Canada, about 100 km north of the study area. We propose that the formation of the Akamina syncline on a regional scale was related to the development of duplexes and imbricate thrusts at two structural levels, one above and one below the Lewis thrust. During the development of these duplexes, the Lewis thrust transferred horizontal shortening laterally along the strike of regional compressional structures from its footwall in the Paleozoic-Mesozoic strata to its hanging wall in the Proterozoic strata. We speculate that development of the broad-fold belt, a major structure in the fold-and-thrust belt in the southern Canadian Rocky Mountains and western Montana, was related to duplex formation at deep structural levels below the folds. (3) Post-Lewis thrust contractional structures include a high-angle reverse fault that cuts the Lewis thrust and strikes N70°W, which is about 30°-40° more to the west than the average strike of the syn- Lewis thrust structures. The development of this fault represents a change in compressional direction after emplacement of the Lewis plate. (4) Post-Lewis thrust extensional structures include southwest-dipping normal faults. These faults truncate the post-Lewis thrust reverse fault and are part of the Eocene-Oligocene Rocky Mountain trench normal fault system.
机译:南部冰川国家公园( 蒙大拿州)的详细地质图显示了刘易斯逆冲的悬挂式 壁中的四个变形事件。 (1)刘易斯前冲断构造包括 西,东倾成辫状冲断,共轭收缩 断层,西,东向顺层平行断层。 > 尽管这些结构被Lewis 推力从下方截断,但它们的发展与 路易斯板的位置在运动学上兼容。因此,它们可能在路易斯板放置的早期阶段形成了 。 (2) Syn-Lewis逆冲构造包括晚白垩世-早期 第三纪刘易斯逆冲,西向双相,东向正向 断层,和Akamina向斜线,宽幅褶皱直接位于刘易斯逆冲断层以西 ,从蒙大拿州西部冰川公园南部向东南延伸 120公里,到东南部 不列颠哥伦比亚省和加拿大西南亚伯大省。双相线的发展 和正断层可能与Lewis板块放置 期间向东的简单剪切变形有关。研究区Akamina 向斜线段的形成是Lewis板中双链体发展 的结果,因为在 双工与同步线一致。但是,向斜线 与Lewis推力不一致。该观察 与路易斯推力与赤松向斜线在加拿大约100 km的悬挂 壁中建立的一致关系 形成强烈对比研究区域以北。我们建议 在区域范围内Akamina向斜的形成 与双链体和松动冲动的发展有关,在两个结构层次上,一个在Lewis 推力上方和下方。在这些双体的发育过程中,Lewis 冲断作用从古生代-中生代的底盘 沿着其横向构造的横向收缩横向转移地层到 元古代地层的悬挂壁。我们推测, 皮带的发展是南 加拿大落基山脉和蒙大拿州西部褶皱冲断带的主要构造,与sup> 在褶皱以下的深层结构双工形成。 (3)刘易斯后冲断收缩结构包括一个大角度的 逆断层,该断层切开了刘易斯推力和打击N70°W, 向西大约比syn-Lewis推力结构的平均 打击多30°-40°。断层的发展 表示在刘易斯板块安放后,压缩方向的变化 。 (4)刘易斯后冲断层伸展构造包括西南倾的正断层。这些断层截断了刘易斯后冲断层逆断层,而 是其中的一部分。始新世-渐新世洛矶山脉海沟正常 断层系统。

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  • 来源
    《GSA Bulletin》 |1991年第8期|1073-1089|共17页
  • 作者

    AN YIN; THOMAS K. KELTY;

  • 作者单位

    Department of Earth and Space Sciences, University of California, Los Angeles, California 90024-1567;

    Department of Earth and Space Sciences, University of California, Los Angeles, California 90024-1567;

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