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A finite element model of propagation on the Southern and Western Australian continental shelf

机译:在澳大利亚南部和西部大陆架上传播的有限元模型

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Much of the littoral region of Southern and Western Australia is composed of a soft limestone bed covered by a layer of unconsolidated sand [2]. The limestone bed, composed of calcarenite, has a high shear wave speed and there is often efficient coupling between the water born wave and the shear mode. Although studies of the effect of the elastic mode in the calcarenite on transmission loss have been undertaken, the effects of the thin sand layer and interface roughness must be quantified in order to determine a robust inversion scheme. It is found that a 1.0 m sand layer decreases the transmission loss by more than 5 dB while a 2.5 m layer can decrease the loss by as much as 20 dB. Interface roughness affects higher frequencies by increasing transmission loss and a rough interface waveguide with a sand layer can have a similar level of transmission loss as a waveguide with a bare calcarenite bottom. However, the frequency dependence and model interference patterns of the two waveguides are different. An inversion scheme based on a bare calcarenite model which would lead incorrect results.
机译:南澳大利亚州和西澳大利亚州的大部分沿海地区由柔软的石灰岩层组成,上面覆盖着一层未固结的沙子[2]。由钙钙铁矿组成的石灰岩床具有较高的剪切波速度,并且在水生波与剪切模式之间通常存在有效的耦合。尽管已经研究了钙钙长石中弹性模态对传输损耗的影响,但必须量化薄砂层和界面粗糙度的影响,才能确定可靠的反演方案。发现1.0 m的沙层可将传输损耗降低5 dB以上,而2.5 m的沙层可将传输损耗降低20 dB之多。界面粗糙度会通过增加传输损耗来影响较高的频率,带有砂层的粗糙界面波导的传输损耗与裸钙钙榴石底部的波导具有相似的传输损耗。但是,两个波导的频率相关性和模型干涉图样是不同的。基于裸钙钙石模型的反演方案会导致错误的结果。

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