[1] 李术才, 刘斌, 孙怀凤, 等. 隧道施工超前地质预报研究现状及发展趋势[J]. 岩石力学与工程学报, 2014, 33(06): 1090-113.
[2] 赵永贵, 刘浩, 孙宇, 等. 隧道地质超前预报研究进展[J]. 地球物理学进展, 2003, (03): 460-4.
[3] BONECHI L, D’ALESSANDRO R, GIAMMANCO A. Atmospheric muons as an imaging tool[J]. Reviews in Physics, 2020, 5.
[4] LECHMANN A, MAIR D, ARIGA A, et al. Muon tomography in geoscientific research – A guide to best practice[J]. Earth-Science Reviews, 2021, 222.
[5] PROCUREUR S. Muon imaging: Principles, technologies and applications[J]. Nuclear Instruments and Methods in Physics Research Section A: Accelerators, Spectrometers, Detectors and Associated Equipment, 2018, 878: 169-79.
[6] OLáH L. Research and development of particle detectors for muon tomography and the CERN ALICE experiment[J]. 2016.
[7] SHUKLA P, SANKRITH S. Energy and angular distributions of atmospheric muons at the Earth[J]. International Journal of Modern Physics A, 2018, 33(30): 1850175.
[8] LESPARRE N, GIBERT D, MARTEAU J, et al. Geophysical muon imaging: feasibility and limits[J]. Geophysical Journal International, 2010, 183(3 : 1348 -61.
[9] 叶邦角, 李样, 周志浩. 缪子成像及元素成分分析[J]. 物理, 2021, 50(04 : 248-56.
[10] 杨紫艳, 王鹤, 张荣庆, 等. 宇宙线μ子成像技术研究进展 [J]. 地球科学前沿(汉斯), 2021, 11(4 : 9.
[11] KAISER R. Muography: overview and future directions[J]. Philos Trans A Math Phys Eng Sci, 2018, 377(2137).
[12] ALVAREZ L W, ANDERSON J A, BEDWEI F E, et al. Search for Hidden Chambers in the Pyramids: The structure of the Second Pyramid of Giza is determined by cosmic -ray absorption[J]. Science, 1970, 167(3919): 832-9.
[13] TANAKA H K M, OLAH L. Overview of muographers[J]. Philos Trans A Math Phys Eng Sci, 2018, 377(2137).
[14] TANAKA H, NAKANO T, TAKAHASHI S, et al. High resolution imaging in the inhomogeneous crust with cosmic-ray muon radiography: The density structure below the volcanic crater floor of Mt. Asama, Japan[J]. Earth and Planetary Science Letters, 2007, 263(1-2): 104-13.
[15] LESPARRE N, GIBERT D, MARTEAU J, et al. Density muon radiography of La Soufrière of Guadeloupe volcano: comparison with geological, electrical resistivity and gravity data[J]. Geophysical Journal International, 2012, 190(2): 1008-19.
[16] LO PRESTI D, RIGGI F, FERLITO C, et al. Muographic monitoring of the volcano -tectonic evolution of Mount Etna[J]. Sci Rep, 2020, 10(1): 11351.
[17] NISHIYAMA R, MIYAMOTO S, NAGANAWA N. Application of Emulsion Cloud Chamber to cosmic-ray muon radiography[J]. Radiation Measurements, 2015, 83: 56-8.
[18] OLáH L, TANAKA H K M, OHMINATO T, et al. Plug Formation Imaged Beneath the Active Craters of Sakurajima Volcano With Muography[J]. Geophysical Research Letters, 2019, 46(17-18): 10417-24.
[19] ROSAS-CARBAJAL M, JOURDE K, MARTEAU J, et al. Three-dimensional density structure of La Soufrière de Guadeloupe lava dome from simultaneous muon radiographies and gravity data[J]. Geophysical Research Letters, 2017, 44(13): 6743-51.
[20] TANAKA H K M, MIYAJIMA H, KUSAGAYA T, et al. Cosmic muon imaging of hidden seismic fault zones: Rainwater permeation into the mechanical fractured zones in Itoigawa–Shizuoka Tectonic Line, Japan[J]. Earth and Planetary Science Letters, 2011, 306(3-4): 156-62.
[21] TANAKA H K M, NAGAMINE K, NAKAMURA S N, et al. Radiographic measurements of the internal structure of Mt. West Iwate with near-horizontal cosmic-ray muons and future developments[J]. Nuclear Instruments and Methods in Physics Research Section A: Accelerators, Spectrometers, Detectors and Associated Equipment, 2005, 555(1-2): 164-72.
[22] TANAKA H K M, UCHIDA T, TANAKA M, et al. Development of a portable assembly-type cosmic-ray muon module for measuring the density structure of a column of magma[J]. Earth, Planets and Space, 2010, 62(2): 119-29.
[23] TANAKA H K M, UCHIDA T, TANAKA M, et al. Detecting a mass change inside a volcano by cosmic-ray muon radiography (muography : First results from measurements at Asama volcano, Japan[J]. Geophysical Research Letters, 2009, 36(17 .
[24] TIOUKOV V, ALEXANDROV A, BOZZA C, et al. First muography of Stromboli volcano[J]. Sci Rep, 2019, 9(1): 6695.
[25] LECHMANN A, MAIR D, ARIGA A, et al. SMAUG v1.0 – a user-friendly muon simulator for the imaging of geological objects in 3-D[J]. Geoscientific Model Development, 2022, 15(6): 2441-73.
[26] NISHIYAMA R, ARIGA A, ARIGA T, et al. First measurement of ice-bedrock interface of alpine glaciers by cosmic muon radiography[J]. Geophysical Research Letters, 2017, 44(12): 6244-51.
[27] NISHIYAMA R, ARIGA A, ARIGA T, et al. Bedrock sculpting under an active alpine glacier revealed from cosmic-ray muon radiography[J]. Sci Rep, 2019, 9(1): 6970.
[28] BRYMAN D, BUENO J, JANSEN J. Blind test of muon geotomography for mineral exploration[J]. ASEG Extended Abstracts, 2015, 2015(1): 1-3.
[29] SCHOUTEN D. Muon geotomography: selected case studies[J]. Philos Trans A Math Phys Eng Sci, 2018, 377(2137).
[30] SCHOUTEN D, LEDRU P. Muon Tomography Applied to a Dense Uranium Deposit at the McArthur River Mine[J]. Journal of Geophysical Research: Solid Earth, 2018, 123(10): 8637-52.
[31] MORISHIMA K, KUNO M, NISHIO A, et al. Discovery of a big void in Khufu’s Pyramid by observation of cosmic-ray muons[J]. Nature, 2017, 552(7685): 386-90.
[32] NEDDERMEYER S H, ANDERSON C D. Note on the Nature of Cosmic-Ray Particles[J]. Physical Review, 1937, 51(10): 884-6.
[33] BUGAEV E V, MISAKI A, NAUMOV V A, et al. Atmospheric muon flux at sea level, underground, and underwater[J]. Physical Review D, 1998, 58(5): 054001.
[34] GUARNACCIA E T. Modeling and Measurement of the Cosmic Muon Flux at Underground Sites[D]; Virginia Polytechnic Institute and State University, 2014.
[35] SU N, LIU Y, WANG L, et al. A Comparison of Muon Flux Models at Sea Level for Muon Imaging and Low Background Experiments[J]. Frontiers in Energy Research, 2021, 9.
[36] GUAN M, CHU M-C, CAO J, et al. A parametrization of the cosmic-ray muon flux at sea-level[J]. arXiv preprint arXiv:150906176, 2015.
[37] REYNA D. A simple parameterization of the cosmic-ray muon momentum spectra at the surface as a function of zenith angle[J]. arXiv preprint hep -ph/0604145, 2006.
[38] TANG A, HORTON-SMITH G, KUDRYAVTSEV V A, et al. Muon simulations for Super-Kamiokande, KamLAND, and CHOOZ[J]. Physical Review D, 2006, 74(5).
[39] GROOM D E, MOKHOV N V, STRIGANOV S I. MUON STOPPING POWER AND RANGE TABLES 10 MeV–100 TeV[J]. Atomic Data and Nuclear Data Tables, 2001, 78(2): 183-356.
[40] LECHMANN A, MAIR D, ARIGA A, et al. The effect of rock composition on muon tomography measurements[J]. Solid Earth, 2018, 9(6): 1517-33.
[41] 张建鸣, 李志伟, 刘芳, 等. 多重库仑散射对小尺度物体缪子透射成像精度的影响 [J]. 物理学报, 2023, 72(02): 41-50.
[42] ANASTASIO A, AMBROSINO F, BASTA D, et al. The MU-RAY experiment. An application of SiPM technology to the understanding of volcanic phenomena[J]. Nuclear Instruments and Methods in Physics Research Section A: Accelerators, Spectrometers, Detectors and Associated Equipment, 2013, 718: 134-7.
[43] BACCANI G, BONECHI L, BORSELLI D, et al. The MIMA project. Design, construction and performances of a compact hodoscope for muon radiography applications in the context of archaeology and geophysical prospections[J]. Journal of Instrumentation, 2018, 13(11): P11001.
[44] SARACINO G, AMBROSINO F, BONECHI L, et al. The MURAVES muon telescope: technology and expected performances[J]. Annals of Geophysics, 2017, 60(1).
[45] GIBERT D, BEAUDUCEL F, DéCLAIS Y, et al. Muon tomography: Plans for observations in the Lesser Antilles[J]. Earth, Planets and Space, 2010, 62(2): 153-65.
[46] AMBROSINO F, ANASTASIO A, BROSS A, et al. Joint measurement of the atmospheric muon flux through the Puy de Dôme volcano with plastic scintillators and Resistive Plate Chambers detectors[J]. Journal of Geophysical Research: Solid Earth, 2015, 120(11): 7290-307.
[47] BOZZA C, CONSIGLIO L, D’AMBROSIO N, et al. Nuclear emulsion techniques for muography[J]. Annals of Geophysics, 2017, 60(1).
[48] MORISHIMA K. Latest Developments in Nuclear Emulsion Technology [J]. Physics Procedia, 2015, 80: 19-24.
[49] NISHIO A, MORISHIMA K, KUWABARA K, et al. Development of Nuclear Emulsion Detector for Muon Radiography[J]. Physics Procedia, 2015, 80: 74-7.
[50] OLáH L, BARNAFöLDI G, HAMAR G, et al. CCC-based muon telescope for examination of natural caves[J]. Geoscientific Instrumentation, Methods and Data Systems, 2012, 1(2): 229-34.
[51] SARACINO G, AMATO L, AMBROSINO F, et al. Imaging of underground cavities with cosmic-ray muons from observations at Mt. Echia (Naples [J]. Sci Rep, 2017, 7(1): 1181.
[52] LESPARRE N, CABRERA J, MARTEAU J. 3-D density imaging with muon flux measurements from underground galleries[J]. Geophysical Journal International, 2017, 208(3): 1579-91.
[53] CONRAD J, BOTNER O, HALLGREN A, et al. Including systematic uncertainties in confidence interval construction for Poisson statistics[J]. Physical Review D, 2003, 67(1): 012002.
修改评论