Investigation and hybrid deep belief neural network-based validation of piezoelectric bimorph cantilever composites assisted with tip mass

Q3 Physics and Astronomy Noise and Vibration Worldwide Pub Date : 2023-11-09 DOI:10.1177/09574565231212688
Prashant Vishnu Bhosale, Sudhir D Agashe
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Abstract

This work fabricated the piezoelectrical material using PMMA (polymethyl methacrylate) and Ce-doped ZnO nano-powders. The study was conducted to validate the piezoelectric performance of the proposed material and its suitability for the cantilever structure. The PMMA/Ce-ZnO makes the cantilever structure more flexible and performs better. The frequency response is applied to the beam using an electrical circuit to analyze the power and voltage output. The acceleration is given to the cantilever beams to analyze their resonant frequencies. The change in resonant frequencies results in a high voltage and power output. The resistive loads are used in the circuit to find the electrical load. The frequency response is analyzed in three different inner (18 mm, 20 mm, 22 mm) and outer (23 mm, 25mm, 27 mm) active layer lengths of beams. As a result, the maximum voltage of 21.94 V with 13.67 mW power and 2.9 mA current is obtained at a resonant frequency of 51.06 Hz and 1 g acceleration amplitude, which are approximately 42%, 45% and 15% higher voltage, power and current obtained from the lowest performer of proposed piezoelectric cantilevers. The experiment results are validated using the hybrid DBN-SSO (Deep Belief Network based Salp Swarm Optimization) machine learning technique. The proposed DBN-SSO achieved 0.9998 and 0.9966 regression coefficients for voltage and power outputs, thus proving the fitness of predicted results with the experiments. As per findings, a 27 mm inner and 18 mm outer active layer based energy harvesting system is suggested as a suitable energy source where ever 10-12 mW power, 2.5-2.9 mA current and 20-21.94 V voltage are applicable.
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尖端质量辅助下压电双晶片悬臂复合材料的研究与混合深度信念神经网络验证
本工作采用PMMA(聚甲基丙烯酸甲酯)和ce掺杂ZnO纳米粉末制备了压电材料。为了验证所提出材料的压电性能及其对悬臂结构的适用性,进行了研究。PMMA/Ce-ZnO使悬臂结构更灵活,性能更好。利用电路将频率响应应用于光束以分析功率和电压输出。给出了悬臂梁的加速度,分析了其谐振频率。谐振频率的变化导致高电压和高功率输出。电阻性负载在电路中用于寻找电负载。在三种不同的梁的内部(18毫米,20毫米,22毫米)和外部(23毫米,25毫米,27毫米)有效层长度下分析频率响应。结果表明,在51.06 Hz的谐振频率和1g的加速度幅值下,最大电压为21.94 V,功率为13.67 mW,电流为2.9 mA,比性能最差的压电悬臂梁的电压、功率和电流分别高出约42%、45%和15%。利用DBN-SSO (Deep Belief Network based Salp Swarm Optimization)混合机器学习技术对实验结果进行了验证。所提出的DBN-SSO对电压和功率输出的回归系数分别达到0.9998和0.9966,证明了预测结果与实验的拟合性。根据研究结果,建议在功率为10-12 mW、电流为2.5-2.9 mA、电压为20-21.94 V的情况下,采用27 mm内层和18 mm外层的能量收集系统作为合适的能量来源。
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来源期刊
Noise and Vibration Worldwide
Noise and Vibration Worldwide Physics and Astronomy-Acoustics and Ultrasonics
CiteScore
1.90
自引率
0.00%
发文量
34
期刊介绍: Noise & Vibration Worldwide (NVWW) is the WORLD"S LEADING MAGAZINE on all aspects of the cause, effect, measurement, acceptable levels and methods of control of noise and vibration, keeping you up-to-date on all the latest developments and applications in noise and vibration control.
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