Hybrid Full-Wave Analysis of Surface Acoustic Wave Devices for Accuracy and Fast Performance Prediction
In this paper, a hybrid full-wave analysis of surface acoustic wave (SAW) devices is proposed to achieve accurate and fast simulation. The partial differential equation (PDE) models of the physical system in question and graphics processing unit (GPU)-assisted hierarchical cascading technology (HCT)...
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doaj-3bf6dd447d6f49e88234328b99d9814d2020-12-23T00:03:34ZengMDPI AGMicromachines2072-666X2021-12-01125510.3390/mi12010005Hybrid Full-Wave Analysis of Surface Acoustic Wave Devices for Accuracy and Fast Performance PredictionZhenglin Chen0Qiaozhen Zhang1Sulei Fu2Xiaoyu Wang3Xiaojun Qiu4Haodong Wu5School of Electronic Science and Engineering, Nanjing University, Nanjing 210093, ChinaMechanical and Electrical Engineering, College of Information, Shanghai Normal University, Shanghai 200234, ChinaKey Laboratory of Advanced Materials (MOE), School of Materials Science and Engineering, Tsinghua University, Beijing 100084, ChinaKey Laboratory of Modern Acoustics, Ministry of Education, Department of Acoustic Science and Engineering, School of Physics, Nanjing University, Nanjing 210093, ChinaSchool of Electronic Science and Engineering, Nanjing University, Nanjing 210093, ChinaKey Laboratory of Modern Acoustics, Ministry of Education, Department of Acoustic Science and Engineering, School of Physics, Nanjing University, Nanjing 210093, ChinaIn this paper, a hybrid full-wave analysis of surface acoustic wave (SAW) devices is proposed to achieve accurate and fast simulation. The partial differential equation (PDE) models of the physical system in question and graphics processing unit (GPU)-assisted hierarchical cascading technology (HCT) are used to calculate acoustic-electric characteristics of a SAW filter. The practical solid model of the radio frequency (RF) filter package is constructed in High Frequency Structure Simulator (HFSS) software and the parasitic electromagnetics of the entire package is considered in the design process. The PDE-based models of the two-dimensional finite element method (2D-FEM) are derived in detail and solved by the PDE module embedded in COMSOL Multiphysics. Due to the advantages of PDE-based 2D-FEM, it is universal, efficient and not restricted to handling arbitrary materials and crystal cuts, electrode shapes, and multi-layered substrate. Combining COMSOL Multiphysics with a user-friendly interface, a flexible way of modeling and mesh generation, it can greatly reduce the complicated process of modeling and physical properties definition. Based on a hybrid full-wave analysis, we present an example application of this approach on a TC-SAW ladder filter with 5° YX-cut LiNbO<sub>3</sub> substrate. Numerical results and measurements were calculated for comparison, and the accuracy and efficiency of the proposed method were verified.https://www.mdpi.com/2072-666X/12/1/5partial differential equationsgraphics processing unit (GPU)hierarchical cascading technologyparasitic electromagneticsfinite element methodperfect match layer |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Zhenglin Chen Qiaozhen Zhang Sulei Fu Xiaoyu Wang Xiaojun Qiu Haodong Wu |
spellingShingle |
Zhenglin Chen Qiaozhen Zhang Sulei Fu Xiaoyu Wang Xiaojun Qiu Haodong Wu Hybrid Full-Wave Analysis of Surface Acoustic Wave Devices for Accuracy and Fast Performance Prediction Micromachines partial differential equations graphics processing unit (GPU) hierarchical cascading technology parasitic electromagnetics finite element method perfect match layer |
author_facet |
Zhenglin Chen Qiaozhen Zhang Sulei Fu Xiaoyu Wang Xiaojun Qiu Haodong Wu |
author_sort |
Zhenglin Chen |
title |
Hybrid Full-Wave Analysis of Surface Acoustic Wave Devices for Accuracy and Fast Performance Prediction |
title_short |
Hybrid Full-Wave Analysis of Surface Acoustic Wave Devices for Accuracy and Fast Performance Prediction |
title_full |
Hybrid Full-Wave Analysis of Surface Acoustic Wave Devices for Accuracy and Fast Performance Prediction |
title_fullStr |
Hybrid Full-Wave Analysis of Surface Acoustic Wave Devices for Accuracy and Fast Performance Prediction |
title_full_unstemmed |
Hybrid Full-Wave Analysis of Surface Acoustic Wave Devices for Accuracy and Fast Performance Prediction |
title_sort |
hybrid full-wave analysis of surface acoustic wave devices for accuracy and fast performance prediction |
publisher |
MDPI AG |
series |
Micromachines |
issn |
2072-666X |
publishDate |
2021-12-01 |
description |
In this paper, a hybrid full-wave analysis of surface acoustic wave (SAW) devices is proposed to achieve accurate and fast simulation. The partial differential equation (PDE) models of the physical system in question and graphics processing unit (GPU)-assisted hierarchical cascading technology (HCT) are used to calculate acoustic-electric characteristics of a SAW filter. The practical solid model of the radio frequency (RF) filter package is constructed in High Frequency Structure Simulator (HFSS) software and the parasitic electromagnetics of the entire package is considered in the design process. The PDE-based models of the two-dimensional finite element method (2D-FEM) are derived in detail and solved by the PDE module embedded in COMSOL Multiphysics. Due to the advantages of PDE-based 2D-FEM, it is universal, efficient and not restricted to handling arbitrary materials and crystal cuts, electrode shapes, and multi-layered substrate. Combining COMSOL Multiphysics with a user-friendly interface, a flexible way of modeling and mesh generation, it can greatly reduce the complicated process of modeling and physical properties definition. Based on a hybrid full-wave analysis, we present an example application of this approach on a TC-SAW ladder filter with 5° YX-cut LiNbO<sub>3</sub> substrate. Numerical results and measurements were calculated for comparison, and the accuracy and efficiency of the proposed method were verified. |
topic |
partial differential equations graphics processing unit (GPU) hierarchical cascading technology parasitic electromagnetics finite element method perfect match layer |
url |
https://www.mdpi.com/2072-666X/12/1/5 |
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