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タイトル: Coupled Simulation of Seismic Wave Propagation and Failure Phenomena by Use of an MPS Method
著者: Takekawa, Junichi  kyouindb  KAKEN_id  orcid https://orcid.org/0000-0003-2886-3425 (unconfirmed)
Mikada, Hitoshi  KAKEN_id  orcid https://orcid.org/0000-0002-9396-4209 (unconfirmed)
Goto, Tada-nori  KAKEN_id
Sanada, Yoshinori
Ashida, Yuzuru
著者名の別形: 武川, 順一
キーワード: Moving particle semi-implicit method
discontinuous phenomenon
failure
elastic wave propagation
発行日: Apr-2013
出版者: SP Birkhäuser Verlag Basel
誌名: Pure and Applied Geophysics
巻: 170
号: 4
開始ページ: 561
終了ページ: 570
抄録: The failure of brittle materials, for example glasses and rock masses, is commonly observed to be discontinuous. It is, however, difficult to simulate these phenomena by use of conventional numerical simulation methods, for example the finite difference method or the finite element method, because of the presence of computational grids or elements artificially introduced before the simulation. It is, therefore, important for research on such discontinuous failures in science and engineering to analyze the phenomena seamlessly. This study deals with the coupled simulation of elastic wave propagation and failure phenomena by use of a moving particle semi-implicit (MPS) method. It is simple to model the objects of analysis because no grid or lattice structure is necessary. In addition, lack of a grid or lattice structure makes it simple to simulate large deformations and failure phenomena at the same time. We first compare analytical and MPS solutions by use of Lamb’s problem with different offset distances, material properties, and source frequencies. Our results show that analytical and numerical seismograms are in good agreement with each other for 20 particles in a minimum wavelength. Finally, we focus our attention on the Hopkinson effect as an example of failure induced by elastic wave propagation. In the application of the MPS, the algorithm is basically the same as in the previous calculation except for the introduction of a failure criterion. The failure criterion applied in this study is that particle connectivity must be disconnected when the distance between the particles exceeds a failure threshold. We applied the developed algorithm to a suspended specimen that was modeled as a long bar consisting of thousands of particles. A compressional wave in the bar is generated by an abrupt pressure change on one edge. The compressional wave propagates along the interior of the specimen and is visualized clearly. At the other end of the bar, the spalling of the bar is reproduced numerically, and a broken piece of the bar is formed and falls away from the main body of the bar. Consequently, these results show that the MPS method effectively reproduces wave propagation and failure phenomena at the same time.
著作権等: The final publication is available at www.springerlink.com
Available under Open Access.
URI: http://hdl.handle.net/2433/173127
DOI(出版社版): 10.1007/s00024-012-0571-8
出現コレクション:学術雑誌掲載論文等

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