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CAS IR Grid
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地质与地球物理研究所 [6]
长春光学精密机械与物... [3]
数学与系统科学研究院 [2]
物理研究所 [1]
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OAI收割 [12]
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期刊论文 [10]
会议论文 [2]
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2023 [1]
2022 [1]
2021 [1]
2020 [2]
2019 [3]
2018 [1]
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Accurate and fast simulation of electromagnetic waves for well-to-ground transmission in transverse isotropic media
期刊论文
OAI收割
CHINESE JOURNAL OF GEOPHYSICS-CHINESE EDITION, 2023, 卷号: 66, 期号: 1, 页码: 122-130
作者:
Liang PengFei
;
Zhen QiHui
;
Yun Zhe
;
Fu ChangMin
;
Wang Ruo
  |  
收藏
  |  
浏览/下载:24/0
  |  
提交时间:2023/03/30
Moment methods
Integral equation
Elemetry
Electromagnetic
Efficient modeling
Three-dimensional anisotropy modelling and simulation of gas hydrate borehole-to-surface responses
期刊论文
OAI收割
JOURNAL OF NATURAL GAS SCIENCE AND ENGINEERING, 2022, 卷号: 106, 页码: 19
作者:
Omisore, Busayo Oreoluwa
;
Fayemi, Olalekan
;
Brantson, Eric Thompson
;
Jin, Sheng
;
Ansah, Ebenezer
  |  
收藏
  |  
浏览/下载:22/0
  |  
提交时间:2023/04/03
Anisotropy
Controlled source electromagnetic
Electromagnetic methods
Gas hydrate
Finite difference frequency domain
Accelerated Bayesian Inversion of Transient Electromagnetic Data Using MCMC Subposteriors
期刊论文
OAI收割
IEEE TRANSACTIONS ON GEOSCIENCE AND REMOTE SENSING, 2021, 卷号: 59, 期号: 12, 页码: 10000-10010
作者:
Li, Hai
;
Xue, Guoqiang
;
Zhang, Linbo
  |  
收藏
  |  
浏览/下载:82/0
  |  
提交时间:2022/07/04
Bayes methods
Data models
Uncertainty
Computational modeling
Numerical models
Proposals
Markov processes
Bayesian inversion
Markov chain Monte Carlo
subposterior
transient electromagnetic method (TEM)
Inverse electromagnetic obstacle scattering problems with multi-frequency sparse backscattering far field data
期刊论文
OAI收割
Inverse Problems, 2020, 卷号: 36, 期号: 10
作者:
Arens,Tilo
;
Ji,Xia
;
Liu,Xiaodong
  |  
收藏
  |  
浏览/下载:39/0
  |  
提交时间:2021/01/14
electromagnetic obstacle scattering
sparse backscattering data
uniqueness
direct sampling methods
Electromagnetic methods for mineral exploration in China: A review
期刊论文
OAI收割
ORE GEOLOGY REVIEWS, 2020, 卷号: 118, 页码: 8
作者:
Guo, Zhenwei
;
Xue, Guoqiang
;
Liu, Jianxin
;
Wu, Xin
  |  
收藏
  |  
浏览/下载:42/0
  |  
提交时间:2020/05/18
Electromagnetic methods
Metal deposits
Mineral exploration
Cases studies
China
Comparison of response characteristics between the electromagnetic method of "Earth-ionosphere" mode and traditional magnetotellurics
期刊论文
OAI收割
EXPLORATION GEOPHYSICS, 2019, 页码: 11
作者:
Yang, Liangyong
;
Lei, Da
;
Li, HuaLin
;
Lu, Juntao
  |  
收藏
  |  
浏览/下载:36/0
  |  
提交时间:2020/05/18
3D modelling
electromagnetic methods
magnetotellurics
finite element
A Review of Electrical and Electromagnetic Methods for Coal Mine Exploration in China
期刊论文
OAI收割
IEEE ACCESS, 2019, 卷号: 7, 页码: 177332-177341
作者:
Xue, Guoqiang
;
Chen, Wen
;
Cheng, Jiulong
;
Liu, Shucai
;
Yu, Jingcun
  |  
收藏
  |  
浏览/下载:36/0
  |  
提交时间:2020/05/18
Electromagnetic methods
coal mines
coal resources
mining safety procedures
INVERSE ELECTROMAGNETIC SOURCE SCATTERING PROBLEMS WITH MULTIFREQUENCY SPARSE PHASED AND PHASELESS FAR FIELD DATA
期刊论文
OAI收割
SIAM JOURNAL ON SCIENTIFIC COMPUTING, 2019, 卷号: 41, 期号: 6, 页码: B1368-B1388
作者:
Ji, Xia
  |  
收藏
  |  
浏览/下载:25/0
  |  
提交时间:2020/09/23
electromagnetic source scattering
phaseless far field data
uniqueness
phase retrieval
direct sampling methods
Grating diffractive behavior of surface plasmon wave on meta-surface
期刊论文
OAI收割
Chinese Optics, 2018, 卷号: 11, 期号: 1, 页码: 60-73
作者:
Wang, Xue-Fei
;
Lu, Zhen-Wu
;
Wang, Tai-Sheng
;
Yu, Wei-Xing
  |  
收藏
  |  
浏览/下载:13/0
  |  
提交时间:2019/09/17
Diffraction gratings
Diffraction
Electromagnetic wave polarization
Light
Metals
Numerical methods
Phonons
Photons
Surface plasmon resonance
Surface plasmons
Analysis of a diffractive microlens using the finite-difference time-domain method (EI CONFERENCE)
会议论文
OAI收割
作者:
Liu Y.
;
Liu H.
;
Liu H.
;
Liu H.
;
Liu Y.
收藏
  |  
浏览/下载:27/0
  |  
提交时间:2013/03/25
The finite-difference time-domain (FDTD) method is used as rigorous electromagnetic analysis model to calculate the field for a diffractive microlens (DML). The FDTD is used for the entire solution rather than using a near- to far-field propagation method to obtain the far-field energy distribution
thus
all the results are vector based. We derived a formula to calculate the magnitude of electric field
which is time dependent and can be used to graphically show the light wave propagation and focusing process through a DML. Both the comparison and the integral methods are presented to obtain wave amplitude in full solution space
and the distribution of light energy behind a DML is illustrated based on the wave amplitude. The formula of diffractive efficiency of the DML is derived from a time-averaged Ponyting vector
which can indicate the propagation direction of light energy. Application of these formulations in the analysis of a DML example demonstrates the high accuracy and efficiency of our method. 2010 Society of Photo-Optical Instrumentation Engineers.