Diffraction-enhanced X-ray imaging under low-temperature conditions: non-destructive observations of clathrate gas hydrates.
暂无分享,去创建一个
Kazumasa Honda | Kazuyuki Hyodo | Tohoru Takeda | Kazuhiro Ueda | Akio Yoneyama | Satoshi Takeya | Takeo Hondoh | K. Ueda | S. Takeya | R. Ohmura | A. Yoneyama | K. Hyodo | T. Takeda | K. Honda | T. Hondoh | A. Hori | A. Miyamoto | Ryo Ohmura | Y. Gotoh | Akira Hori | Atsushi Miyamoto | Yoshito Gotoh | Duo Sun | Duo Sun
[1] T. Hondoh,et al. Lattice Constants and Thermal Expansion Coefficient of Air Clathrate Hydrate in Deep Ice Cores from Vostok, Antarctica , 2000 .
[2] S. Takeya,et al. Preservation of Carbon Dioxide Clathrate Hydrate at Temperatures below the Water Freezing Point under Atmospheric Pressure , 2011 .
[3] Walter G Chapman,et al. NMR/MRI study of clathrate hydrate mechanisms. , 2005, The journal of physical chemistry. B.
[4] Fast X-ray Digital Imager for High-Speed Phase-Contrast X-ray Imaging , 2007 .
[5] Peter Englezos,et al. Gas hydrates: A cleaner source of energy and opportunity for innovative technologies , 2005 .
[6] A. Higashi,et al. The crystallographic structure of the natural air-hydrate in Greenland dye-3 deep ice core , 1990 .
[7] John A. Ripmeester,et al. Structure, Composition, and Thermal Expansion of CO2 Hydrate from Single Crystal X-ray Diffraction Measurements† , 2001 .
[8] Akio Yoneyama,et al. Large‐Area Phase‐Contrast X‐ray Imaging System Using a Two‐Crystal X‐ray Interferometer—Development of an Interference‐Pattern‐Based Feedback Positioning System , 2004 .
[9] Atsushi Momose,et al. Phase-contrast x-ray computed tomography for observing biological specimens and organic materials , 1995 .
[10] M. Trainer,et al. Enhanced CO2 trapping in water ice via atmospheric deposition with relevance to Mars , 2010 .
[11] H. Wakita,et al. Venting of Carbon Dioxide-Rich Fluid and Hydrate Formation in Mid-Okinawa Trough Backarc Basin , 1990, Science.
[12] S. Takeya,et al. Imaging and density mapping of tetrahydrofuran clathrate hydrates by phase-contrast x-ray computed tomography , 2007 .
[13] Michael D. Max,et al. Natural gas hydrate : in oceanic and permafrost environments , 2000 .
[14] Wu Jin,et al. Quantitative comparison of imaging performance of x-ray interferometric imaging and diffraction enhanced imaging. , 2008, Medical physics.
[15] C. Ratcliffe,et al. Hydrate Layers on Ice Particles and Superheated Ice: a 1H NMR Microimaging Study† , 1999 .
[16] W. Kuhs,et al. Raman spectroscopic study on the nitrogen/oxygen ratio in natural ice clathrates in the GRIP ice core , 1995 .
[17] S. Takeya,et al. Observation of low-temperature object by phase-contrast x-ray imaging : Nondestructive imaging of air clathrate hydrates at 233 K , 2006 .
[18] T. Ebinuma,et al. Observation of Xe hydrate growth at gas-ice interface by microfocus X-ray computed tomography , 2008 .
[19] Stan Tomov,et al. Direct observations of three dimensional growth of hydrates hosted in porous media , 2009 .
[20] U. Bonse,et al. AN X‐RAY INTERFEROMETER , 1965 .
[21] T. Ebinuma,et al. Structure Analyses of Artificial Methane Hydrate Sediments by Microfocus X-ray Computed Tomography , 2004 .
[22] E. Pisano,et al. Diffraction enhanced x-ray imaging. , 1997, Physics in medicine and biology.
[23] M. G. Sarwar Murshed,et al. Natural gas hydrate investigations by synchrotron radiation X‐ray cryo‐tomographic microscopy (SRXCTM) , 2008 .
[24] K. Ueda,et al. Nondestructive Imaging of Anomalously Preserved Methane Clathrate Hydrate by Phase Contrast X-ray Imaging , 2011 .