Air cavity-based vibrational piezoelectric energy harvesters

IF 1.6 Q3 ENGINEERING, ELECTRICAL & ELECTRONIC Electrical Engineering & Electromechanics Pub Date : 2021-10-18 DOI:10.20998/2074-272x.2021.5.06
A. A. Mohamad Yusoff, K. Ahmad, S. N. Sulaiman, Z. Hussain, N. Abdullah
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Abstract

Introduction. Known vibrational energy harvesting methods use a source of vibration to harvest electric energy. Piezoelectric material works as a sensing element converted mechanical energy (vibration) to electrical energy (electric field). The existing piezoelectric energy harvesting (PEHs) devices have low sensitivity, low energy conversion, and low bandwidth. The novelty of the proposed work consists of the design of PEH’s structure. Air cavity was implemented in the design where it is located under the sensing membrane to improve sensitivity. Another novelty is also consisting in the design structure where the flexural membrane was located at the top of electrodes. The third novelty is a new design structure of printed circuit board (PCB). The purpose of improvised design is to increase the stress in between the edges of PEH and increase energy conversion. With the new structure of PCB, it will work as a substrate that absorbs surrounding vibration energy and transfers it to sensing element. Methods. Three techniques were successfully designed in PEH and fabricated namely PEH A, PEH B, and PEH C were characterized by two experiments: load and vibration. The load experiment measured load pressure towards the PEH, whereas the vibration experiment measured stress towards the PEH. Results. PEH C has the highest induced voltage for a weight of 5.2 kg at the frequency of 50 Hz and the highest stored voltage for a period of 4 min. The three techniques applied in PEHs were showed improvement in transducer sensitivity and energy conversion. Practical value. A piezoelectric acoustic generator was used in the experiment to compare the performance of the designed PEH with available piezoelectric transducers in the market. The new flexible membrane worked as a sensing element was worked as a cantilever beam. PVDF was used as a sensing element due to the flexibility of the polymer material, which is expected to improve sensitivity and operating bandwidth.
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基于空气腔的振动压电能量采集器
介绍已知的振动能量获取方法使用振动源来获取电能。压电材料是一种将机械能(振动)转换为电能(电场)的传感元件。现有的压电能量采集(PEHs)装置具有低灵敏度、低能量转换和低带宽。拟议工作的新颖之处在于PEH的结构设计。在设计中,空气腔位于传感膜下方,以提高灵敏度。另一个新颖之处还在于设计结构,其中弯曲膜位于电极的顶部。第三个新颖之处是一种新的印刷电路板(PCB)设计结构。简易设计的目的是增加PEH边缘之间的应力,并增加能量转换。随着PCB的新结构,它将作为一个基底,吸收周围的振动能量并将其传递给传感元件。方法。在PEH中成功地设计和制造了三种技术,即PEH A、PEH B和PEH C。通过两个实验:载荷和振动进行了表征。负载实验测量朝向PEH的负载压力,而振动实验测量朝向PE的应力。后果PEH C在50 Hz的频率下对5.2 kg的重量具有最高的感应电压,并且在4分钟的时间内具有最高的存储电压。在PEH中应用的三种技术显示出换能器灵敏度和能量转换的改善。实用价值。在实验中使用压电声学发生器来比较所设计的PEH与市场上可用的压电换能器的性能。这种新型柔性薄膜作为传感元件,被用作悬臂梁。由于聚合物材料的灵活性,PVDF被用作传感元件,这有望提高灵敏度和工作带宽。
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来源期刊
Electrical Engineering & Electromechanics
Electrical Engineering & Electromechanics ENGINEERING, ELECTRICAL & ELECTRONIC-
CiteScore
2.40
自引率
50.00%
发文量
53
审稿时长
10 weeks
期刊最新文献
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