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Simple scaling relations in geodynamics: the role of pressure in mantle convection and plume formation
引用本文:DonL.Anderson. Simple scaling relations in geodynamics: the role of pressure in mantle convection and plume formation[J]. 科学通报(英文版), 2004, 49(19): 2017-2020. DOI: 10.1360/03wd0321
作者姓名:DonL.Anderson
作者单位:SeismologicalLaboratory,CaliforniaInstituteofTechnology,Pasadena,Ca9l125,USA
摘    要:Scaling relations are important in extrapolating laboratory experiments to the Earth‘s mantle. In planetary interiors, compression becomes an important parameter and it is useful to explore scalings that involve volume. I use simple volume scaling relations that allow one to extrapolate laboratory experiments and upper mantle behavior, in a thermodynamically self-consistent way, to predict lower mantle behavior. The relations are similar to the quasi-har-monic approximation. Slabs and plates have characteristic dimensions of hundreds of kilometers and time constants of 100 million years, but the volume scalings predict order of magnitude higher values in the deep mantle. The scaling relations imply that the deep mantle is a sluggish system with ancient features. They imply irreversible chemical stratification and do not favor the plume hypothesis.

关 键 词:地幔对流 地幔涌流 比例关系 容积附属性质 缓慢流动性 深部地慢 化学成层现象
收稿时间:2004-04-09
修稿时间:2004-06-12

Simple scaling relations in geodynamics:the role of pressure in mantle convection and plume formation
Don L. Anderson. Simple scaling relations in geodynamics:the role of pressure in mantle convection and plume formation[J]. Chinese science bulletin, 2004, 49(19): 2017-2020. DOI: 10.1360/03wd0321
Authors:Don L. Anderson
Affiliation:(1) Seismological Laboratory, California Institute of Technology, 91125 Pasadena, Ca, USA
Abstract:Scaling relations are important in extrapolating laboratory experiments to the Earth’s mantle. In planetary interiors, compression becomes an important parameter and it is useful to explore scalings that involve volume. I use simple volume scaling relations that allow one to extrapolate laboratory experiments and upper mantle behavior, in a thermodynamically self-consistent way, to predict lower mantle behavior. The relations are similar to the quasi-harmonic approximation. Slabs and plates have characteristic dimensions of hundreds of kilometers and time constants of 100 million years, but the volume scalings predict order of magnitude higher values in the deep mantle. The scaling relations imply that the deep mantle is a sluggish system with ancient features. They imply irreversible chemical stratification and do not favor the plume hypothesis.
Keywords:scaling relations  volume-dependent properties  sluggish flow in deep mantle  chemical stratification  no mantle plumes.
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