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82.
V.I. Konov 《Laser \u0026amp; Photonics Reviews》2012,6(6):739-766
Basic processing operations will be presented. These include diamond polishing and shaping, production of conductive pathways, micro‐ and nanostructures on the diamond surface, such as diffractive optical elements. The possibility to laser produce conductive and hollow structures in the diamond bulk, including curved elements, will be demonstrated. Finally, the techniques of laser assisted diamond CVD, that allow production of smooth or selective‐area grown films will be presented 相似文献
83.
84.
Since its observation in 1985 nuclear resonant scattering of synchrotron radiation has become an excellent tool to study hyperfine
interactions in solids. It combines the advantages of both local probe experiments and scattering techniques and gives valuable
information on magnetic and electronic structures in case of NFS experiments. Experiments benefit from the outstanding beam
quality of 3rd generation synchrotron radiation sources, as the small beam size and divergence.
This revised version was published online in August 2006 with corrections to the Cover Date. 相似文献
85.
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87.
Using a new phenomenological KN interaction which reproduces Λ(1405) as an I=0 bound state of KN, we have investigated K--3 He(T=0) and K--4 He(T=1/2) within the framework of the Brueckner-Hartree-Fock(BHF) theory. Our calculations show that the above kaonic nuclear systems are both deeply bound. The binding energy BK- is 124.4 MeV(94.1 MeV) and the width Γ is 11.8 MeV(25.8 MeV) for K--3He(T=0) (K--4He(T=1/2)). 相似文献
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89.
斜注管是返波振荡器的一种,通过电子注的倾斜,电子距离慢波结构更近,高频场更强,耦合阻抗和互作用效率更高,显著增加输出功率。对带状注斜注管的互作用系统进行了设计,并首次将双排齿慢波结构应用于斜注管。利用电磁模拟软件和3D粒子模拟软件对设计的斜注管的色散曲线和场分布进行了分析,并对其注-波互作用进行了模拟,可以得到大于100 mW的输出功率以及50 GHz的调谐带宽。输出功率在370.5 GHz频点处处达到峰值2.3 W,电子注电压7.0 kV,注电流120 mA,聚焦磁场1.0 T。 相似文献
90.
Lucas C. Wilcox Georg Stadler Carsten Burstedde Omar Ghattas 《Journal of computational physics》2010,229(24):9373-9396
We introduce a high-order discontinuous Galerkin (dG) scheme for the numerical solution of three-dimensional (3D) wave propagation problems in coupled elastic–acoustic media. A velocity–strain formulation is used, which allows for the solution of the acoustic and elastic wave equations within the same unified framework. Careful attention is directed at the derivation of a numerical flux that preserves high-order accuracy in the presence of material discontinuities, including elastic–acoustic interfaces. Explicit expressions for the 3D upwind numerical flux, derived as an exact solution for the relevant Riemann problem, are provided. The method supports h-non-conforming meshes, which are particularly effective at allowing local adaptation of the mesh size to resolve strong contrasts in the local wavelength, as well as dynamic adaptivity to track solution features. The use of high-order elements controls numerical dispersion, enabling propagation over many wave periods. We prove consistency and stability of the proposed dG scheme. To study the numerical accuracy and convergence of the proposed method, we compare against analytical solutions for wave propagation problems with interfaces, including Rayleigh, Lamb, Scholte, and Stoneley waves as well as plane waves impinging on an elastic–acoustic interface. Spectral rates of convergence are demonstrated for these problems, which include a non-conforming mesh case. Finally, we present scalability results for a parallel implementation of the proposed high-order dG scheme for large-scale seismic wave propagation in a simplified earth model, demonstrating high parallel efficiency for strong scaling to the full size of the Jaguar Cray XT5 supercomputer. 相似文献