|
广西师范大学学报(自然科学版) ›› 2017, Vol. 35 ›› Issue (1): 16-20.doi: 10.16088/j.issn.1001-6600.2017.01.003
孟齐1,沈洪涛1,毛立强1,梁维刚1,赵子珍1,梁钊燕1,赖鸣凤1,黄保健2,李世琢3,何明3,姜山3
MENG Qi1,SHEN Hongtao1,MAO Liqiang1,LIANG Weigang1,ZHAO Zizhen1,LIANG Zhaoyan1, LAI Mingfeng1,HUANG Baojian2,LI Shizhuo3,HE Ming3,JIANG Shan3
摘要: 加速器质谱技术(AMS)是一种高灵敏的核素分析技术。本文利用加速器质谱技术测定岩石中原地宇生放射性核素36Cl含量来研究广西乐业大石围天坑的暴露年龄,实现了对广西大石围天坑的定年。研究结果表明,大石围天坑的最低暴露年龄为10~20万年。该研究为喀斯特地貌及演化提供重要参考价值。
中图分类号:
[1]BENTLEY H W, PHILLIPS F M, DAVIS S N, et al. 36 Cl in the terrestrial environment[J]. Handbook of Environmental Isotope Geochemistry, 1986,2(1):427-475. [2]HOUMARK N M, LINGE H, FABEL D, et al. Cosmogenic surface exposure dating the last deglaciation in Denmark: Discrepancies with independent age constraints suggest delayed periglacial landform stabilisation[J]. Quaternary Geochronology, 2012, 13(6):1-17. [3]MATSUSHI Y, SASA K, TAKAHASHI T, et al. Denudation rates of carbonate pinnacles in Japanese karst areas: estimates from cosmogenic 36Cl in calcite[J]. Nuclear Instruments & Methods in Physics Research, 2010, 268(7/8):1205-1208. [4]ZERATHE S, LEBOURG T, BRAUCHER R, et al. Mid-Holocene cluster of large-scale landslides revealed in the Southwestern Alps by 36Cl dating. Insight on an Alpine-scale landslide activity[J]. Quaternary Science Reviews, 2014, 90(1):106-127. [5]晁念英, 潘欢迎, 刘存富,等. 北京石花洞地区奥陶纪灰岩 36Cl侵蚀速率初探[J]. 地球学报, 2005, 26(s1):272-274. [6]武绍勇, 汪越, 仇九子,等. 加速器质谱法测定北京地区灰岩的侵蚀速率[J]. 质谱学报, 2005, 26(s1):77-78. [7]CIZDZIEL J V, WEI Y, STETZENBACH K J, et al. Recent measurements of 36Cl in Yucca Mountain rock, soil and seepage[J]. Journal of Radioanalytical and Nuclear Chemistry, 2008, 275(1):133-144. [8]SCHLAGENHAUF A, MANIGHETTI I, BENEDETTI L, et al. Earthquake supercycles in Central Italy, inferred from 36Cl exposure dating[J]. Earth & Planetary Science Letters, 2011, 307(3/4):487-500. [9]SCHIMMELPFENNIG I, BENEDETTI L, GARRETA V, et al. Calibration of cosmogenic 36Cl production rates from Ca and K spallation in lava flows from Mt. Etna (38°N, Italy) and Payun Matru (36°S, Argentina)[J]. Geochimica Et Cosmochimica Acta, 2011, 75(10):2611-2632. [10]朱学稳, 陈伟海. 中国的喀斯特天坑[J]. 中国岩溶, 2006, 25(8):7-24. [11]TONY W, 朱学稳. 2005年中国天坑考察报告[J]. 中国岩溶, 2006, 25(8):1-6. [12]MERCHEL S, BENEDETTI L, BOURLS D L, et al. A multi-radionuclide approach for in situ produced terrestrial cosmogenic nuclides: 10 Be, 26 Al, 36Cl and 41 Ca from carbonate rocks[J]. Nuclear Instruments & Methods in Physics Research, 2010, 268(7):1179-1184. [13]HETZEL R. Active faulting, mountain growth, and erosion at the margins of the Tibetan Plateau constrained by in situ-produced cosmogenic nuclides[J]. Tectonophysics, 2013, 582(1):1-24. [14]VOCKENHUBER C, GOLSER R, KUTSCHERA W, et al. Accelerator mass spectrometry of the heaviest long-lived radionuclides with a 3-MV tandem accelerator[J]. Pramana, 2002, 59(6):1041-1051. [15]李世琢. 利用宇生 36Cl测定天坑暴露年龄的方法研究[D]. 南宁:广西大学, 2010. |
[1] | 李昭梅, 李文琳, 孟安欣, 赵振池, 覃永富, 蓝海会, 卢慧金, 陈丽莎, 梁维刚, 沈洪涛. 古代字画加速器质谱14C测年研究[J]. 广西师范大学学报(自然科学版), 2019, 37(2): 38-43. |
|
版权所有 © 广西师范大学学报(自然科学版)编辑部 地址:广西桂林市三里店育才路15号 邮编:541004 电话:0773-5857325 E-mail: gxsdzkb@mailbox.gxnu.edu.cn 本系统由北京玛格泰克科技发展有限公司设计开发 |