Localization of Vibration Weak Position of Composites Based on Weighted Modal Strain Energy Summation
In this paper, two typical examples are used to illustrate the weak position of aircraft structure in the process of vibration. Through the modal analysis of the typical composite plate and I-shaped beam, the first 20-order modal strain energy of the plate is extracted, which is difficult to locate...
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MDPI AG
2022-10-01
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Series: | Journal of Composites Science |
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Online Access: | https://www.mdpi.com/2504-477X/6/11/324 |
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author | Ju Qiu Wei Lian Huaxiang Rao Caiyun Wang Tengteng Luo Jiali Tang |
author_facet | Ju Qiu Wei Lian Huaxiang Rao Caiyun Wang Tengteng Luo Jiali Tang |
author_sort | Ju Qiu |
collection | DOAJ |
description | In this paper, two typical examples are used to illustrate the weak position of aircraft structure in the process of vibration. Through the modal analysis of the typical composite plate and I-shaped beam, the first 20-order modal strain energy of the plate is extracted, which is difficult to locate the weak spot due to the highly scattered location of the higher modal strain energy. The modal participation factor is introduced as the weight factor of the summation of the modal strain energy. The modal participation factor is large, the weighting factor is large, and the high modal strain energy of the composite plate moves diagonally in the 45° direction of the composite plate and the high strain energy region is consistent with the previous modes of the plate. This is the result of the weak in-plane shear stiffness of the composite panel, which shows the effectiveness of the mode weighted summation method. The I-shaped composite beam uses the modal strain energy summation of the weight factor, and the higher modal strain energy is concentrated on the middle part of the beam and at 1/4 and 3/4 of it. Therefore, the weak part of the vibration can be clearly identified. The higher modal strain energy is extracted by the method proposed to this paper, which can be used as a reference to structural design and dynamic on-line monitoring. |
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issn | 2504-477X |
language | English |
last_indexed | 2024-03-09T18:57:20Z |
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spelling | doaj.art-099301bfa0ce496891e65e207d1a1b2e2023-11-24T05:20:24ZengMDPI AGJournal of Composites Science2504-477X2022-10-0161132410.3390/jcs6110324Localization of Vibration Weak Position of Composites Based on Weighted Modal Strain Energy SummationJu Qiu0Wei Lian1Huaxiang Rao2Caiyun Wang3Tengteng Luo4Jiali Tang5Composites Center, COMAC Shanghai Aircraft Manufacturing Co., Ltd., Shanghai 200123, ChinaComposites Center, COMAC Shanghai Aircraft Manufacturing Co., Ltd., Shanghai 200123, ChinaComposites Center, COMAC Shanghai Aircraft Manufacturing Co., Ltd., Shanghai 200123, ChinaComposites Center, COMAC Shanghai Aircraft Manufacturing Co., Ltd., Shanghai 200123, ChinaComposites Center, COMAC Shanghai Aircraft Manufacturing Co., Ltd., Shanghai 200123, ChinaComposites Center, COMAC Shanghai Aircraft Manufacturing Co., Ltd., Shanghai 200123, ChinaIn this paper, two typical examples are used to illustrate the weak position of aircraft structure in the process of vibration. Through the modal analysis of the typical composite plate and I-shaped beam, the first 20-order modal strain energy of the plate is extracted, which is difficult to locate the weak spot due to the highly scattered location of the higher modal strain energy. The modal participation factor is introduced as the weight factor of the summation of the modal strain energy. The modal participation factor is large, the weighting factor is large, and the high modal strain energy of the composite plate moves diagonally in the 45° direction of the composite plate and the high strain energy region is consistent with the previous modes of the plate. This is the result of the weak in-plane shear stiffness of the composite panel, which shows the effectiveness of the mode weighted summation method. The I-shaped composite beam uses the modal strain energy summation of the weight factor, and the higher modal strain energy is concentrated on the middle part of the beam and at 1/4 and 3/4 of it. Therefore, the weak part of the vibration can be clearly identified. The higher modal strain energy is extracted by the method proposed to this paper, which can be used as a reference to structural design and dynamic on-line monitoring.https://www.mdpi.com/2504-477X/6/11/324modal analysismodal strain energymodal participation factorweighting factor |
spellingShingle | Ju Qiu Wei Lian Huaxiang Rao Caiyun Wang Tengteng Luo Jiali Tang Localization of Vibration Weak Position of Composites Based on Weighted Modal Strain Energy Summation Journal of Composites Science modal analysis modal strain energy modal participation factor weighting factor |
title | Localization of Vibration Weak Position of Composites Based on Weighted Modal Strain Energy Summation |
title_full | Localization of Vibration Weak Position of Composites Based on Weighted Modal Strain Energy Summation |
title_fullStr | Localization of Vibration Weak Position of Composites Based on Weighted Modal Strain Energy Summation |
title_full_unstemmed | Localization of Vibration Weak Position of Composites Based on Weighted Modal Strain Energy Summation |
title_short | Localization of Vibration Weak Position of Composites Based on Weighted Modal Strain Energy Summation |
title_sort | localization of vibration weak position of composites based on weighted modal strain energy summation |
topic | modal analysis modal strain energy modal participation factor weighting factor |
url | https://www.mdpi.com/2504-477X/6/11/324 |
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