Climate Change Data Portal
DOI | 10.1016/j.earscirev.2019.05.018 |
Variability of subducting slab morphologies in the mantle transition zone: Insight from petrological-thermomechanical modeling | |
Li Z.-H.; Gerya T.; Connolly J.A.D. | |
发表日期 | 2019 |
ISSN | 00128252 |
卷号 | 196 |
英文摘要 | Variable morphologies of subducting slabs are observed in tomographic images of the mantle transition zone (MTZ), where slabs appear to stagnate in the MTZ or enter the lower mantle. These contrasting morphologies of subducting slabs are dependent on the joint effects of various dynamic, kinematic and geometric factors. Force balance analysis indicates that the favorable conditions of slab stagnation in the MTZ include old/cold slab subducting into the mantle with large Clapeyron slopes at 410 km and 660 km discontinuities, as well as the significant trench retreat and shallow dip angle. However, these conditions are often not achieved together for specific subduction zones on the Earth, which thus require systematic studies to distinguish their relative effects. Here, we analyze the slab mode selection in the MTZ based on coupled petrological-thermomechanical numerical model. The model results indicate that (1) water activity and partial melting weaken the subduction channel and form a hot and weak mantle wedge beneath the island arc that affects slab dynamics. (2) The Clapeyron slope of phase transition at 660 km can significantly contribute to the slab stagnation in the MTZ, whereas the Clapeyron slope at 410 km does not change the general mode selection, but does affect the trench motion and further the length of flattened slab. (3) A sharp viscosity jump between the lower and upper mantles can promote slab stagnation in the MTZ, which has a similar effect with a strong viscosity-depth gradient. (4) Fast trench retreat is the most critical factor controlling slab stagnation, especially the long slab flattening in the MTZ. (5) The age/thickness of converging plates can also influence the slab/MTZ interaction by modifying the slab dip angle and trench motion. (6) A thin, weak layer at the bottom of MTZ does not play significant roles in the slab mode selection. The combined force balance analysis and numerical studies are compared with the comprehensive observations of natural subduction zones, which improve understanding of the dynamics of slab/MTZ interaction and the resulting variability of subducting slab morphologies. © 2019 Elsevier B.V. |
关键词 | Aqueous fluid activityMantle transition zoneNumerical modelingPhase transitionSubduction mode selection |
英文关键词 | aqueous solution; geomorphology; numerical model; petrology; phase transition; slab; subduction zone; thermomechanics; transition zone |
语种 | 英语 |
来源期刊 | Earth Science Reviews |
文献类型 | 期刊论文 |
条目标识符 | http://gcip.llas.ac.cn/handle/2XKMVOVA/203480 |
作者单位 | Key Laboratory of Computational Geodynamics, College of Earth and Planetary Sciences, University of Chinese Academy of Sciences, Beijing, China; Laboratory for Marine Geology, Qingdao National Laboratory for Marine Science and Technology, Qingdao, China; Department of Earth Sciences, ETH-Zurich, Switzerland |
推荐引用方式 GB/T 7714 | Li Z.-H.,Gerya T.,Connolly J.A.D.. Variability of subducting slab morphologies in the mantle transition zone: Insight from petrological-thermomechanical modeling[J],2019,196. |
APA | Li Z.-H.,Gerya T.,&Connolly J.A.D..(2019).Variability of subducting slab morphologies in the mantle transition zone: Insight from petrological-thermomechanical modeling.Earth Science Reviews,196. |
MLA | Li Z.-H.,et al."Variability of subducting slab morphologies in the mantle transition zone: Insight from petrological-thermomechanical modeling".Earth Science Reviews 196(2019). |
条目包含的文件 | 条目无相关文件。 |
除非特别说明,本系统中所有内容都受版权保护,并保留所有权利。