Meteorite 3-D synchrotron microtomography: Methods and applications

被引:88
|
作者
Ebel, Denton S. [1 ]
Rivers, Mark L. [2 ,3 ]
机构
[1] Amer Museum Nat Hist, Dept Earth & Planetary Sci, New York, NY 10024 USA
[2] Univ Chicago, Consortium Adv Radiat Sources, Chicago, IL 60637 USA
[3] Univ Chicago, Dept Geophys Sci, Chicago, IL 60637 USA
关键词
D O I
10.1111/j.1945-5100.2007.tb00595.x
中图分类号
P3 [地球物理学]; P59 [地球化学];
学科分类号
0708 ; 070902 ;
摘要
Methods of synchrotron X-ray computed microtomograpby (XRCMT) are described, which allow nondestructive, high spatial and contrast resolution imaging of the density structures of meteorites and their components in three dimensions. Images of bulk chondrites (to one cubic centimeter in size) reveal compound chondrules, chondrule/matrix volumetric ratios, metal and sulfide distribution, petrofabrics, and 3-D chondrule and calcium-aluminum inclusion (CAI) sizes and shapes. Images of separated chondrules and CAIs reveal void spaces, mineral intergrowth textures, and the true locations of crystal rims and cores, at resolutions to <8 cubic micron/volume element. Images of achondrites reveal mineral fabrics and crystal zoning. Lunar glass spherules can be searched for phenocrysts bearing deeply sourced melt inclusions. A companion DVD and URL contain images for classroom and research use. Numerical techniques for quantification of X-ray computed microtomography (XRCMT) data and its potential applications are discussed. Three-dimensional X-ray images of meteorites provide a way to discover components of interest and to precisely slice samples to expose these components with minimal damage and loss of material. Three-dimensional studies of petrographic features (size, shape, texture, and modal abundance) of chondrites and their components, as well as other meteorites, have definite advantages over standard 2-D studies using randomly sliced thin sections.
引用
下载
收藏
页码:1627 / 1646
页数:20
相关论文
共 50 条
  • [1] 3-D elemental imaging by synchrotron computed microtomography
    Rivers, M. L.
    Sutton, S. R.
    Newville, M.
    GEOCHIMICA ET COSMOCHIMICA ACTA, 2006, 70 (18) : A536 - A536
  • [2] Microtomography with 3-D visualization
    Peskin, A
    Andrews, B
    Dowd, B
    Jones, K
    Siddons, P
    APPLICATIONS OF DIGITAL IMAGE PROCESSING XIX, 1996, 2847 : 28 - 34
  • [3] Microtomography with 3-D visualization
    Brookhaven National Laboratory, United States
    Proc SPIE Int Soc Opt Eng, 1600, (28-34):
  • [4] Assessment of bone mineral content from 3-D synchrotron radiation microtomography images
    Nuzzo, S
    Peyrin, F
    Martín-Badosa, E
    Lafage-Proust, MH
    Boivin, G
    IEEE TRANSACTIONS ON NUCLEAR SCIENCE, 2001, 48 (03) : 859 - 863
  • [5] Assessment of pore geometry and 3-D architecture of filtration membranes by synchrotron radiation computed microtomography
    Remigy, Jean-Christophe
    Meireles, Martine
    DESALINATION, 2006, 199 (1-3) : 501 - 503
  • [6] 3-D particle transport methods and their applications
    Haghighat, A
    Sjoden, GE
    ABSTRACTS OF PAPERS OF THE AMERICAN CHEMICAL SOCIETY, 2005, 230 : U2283 - U2283
  • [7] 3-D characterization of weathered building limestones by high resolution synchrotron X-ray microtomography
    Rozenbaum, O.
    SCIENCE OF THE TOTAL ENVIRONMENT, 2011, 409 (10) : 1959 - 1966
  • [8] Applications of synchrotron microtomography in osteoporosis research
    Kinney, JH
    Haupt, DL
    Ladd, AJC
    DEVELOPMENTS IN X-RAY TOMOGRAPHY, 1997, 3149 : 64 - 68
  • [9] Local reconstruction in 3D Synchrotron Radiation MicroTomography
    Peyrin, F
    Bonnet, S
    Ludwig, W
    Baruchel, J
    DEVELOPMENTS IN X-RAY TOMOGRAPHY II, 1999, 3772 : 128 - 137
  • [10] Early pore formation in aluminium foams studied by synchrotron-based microtomography and 3-D image analysis
    Rack, A.
    Helwig, H. -M.
    Buetow, A.
    Rueda, A.
    Matijasevic-Lux, B.
    Helfen, L.
    Goebbels, J.
    Banhart, J.
    ACTA MATERIALIA, 2009, 57 (16) : 4809 - 4821