• Title/Summary/Keyword: 하이브리드 에너지하베스팅

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A Study on the Application Trends of Next-Generation Solar Cells and the Future Prospects of Smart Textile Hybrid Energy Harvesting Devices : Focusing on Convergence with Industrial Materials (차세대 태양전지의 활용 동향 및 스마트 텍스타일 하이브리드 에너지 하베스팅 소자의 미래전망에 관한 연구 : 산업 소재와의 융합 중심)

  • Park, Boong-Ik
    • Journal of Convergence for Information Technology
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    • v.11 no.11
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    • pp.151-158
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    • 2021
  • In this paper, we analyzed the latest research trends, challenges, and potential applications of next-generation solar cell materials in various industrial fields. In addition, future prospects and possibilities of Smart Textile Hybrid Energy Harvesting Devices that will supply electricity by combining with wearable IoT devices are presented. The hybrid textile energy harvesting device fused next-generation solar cells with tribo-piezoelectric devices will develop into new 'Convergence Integrated Smart Wear' by combining the material itself with wearable IoT devices in the era of the 4th industrial revolution. The next-generation nanotechnology and devices proposed in this paper will be applied to the field of smart textile with an energy harvesting function. And we hope it will be a paradigm shift that evolves into creative products which provide AI services such as medical & healthcare by convergence with the future smart wear industry.

Development of Hybrid Energy Harvesting Block and Evaluation on Power Generation Performance (하이브리드 에너지하베스팅 블록 개발 및 발전성능 평가)

  • Kim, Hyo-Jin;Park, Ji-Young;Jin, Kyu-Nam;Noh, Myung-Hyun
    • Land and Housing Review
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    • v.5 no.2
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    • pp.99-106
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    • 2014
  • The purpose of this study is to develop hybrid energy blocks with piezoelectric and electromagnetic induction method. The developed energy block is able to be applied to the housing and facilities in the city and is suitable to adjust the characteristics of facilities. To develop the hybrid energy block, we analyzed the characteristics and requirements of various energy block types and drew improvement and application method to develop energy blocks. We compared and analyzed the characteristics and performance of the prototype energy blocks and the developed hybrid energy blocks. According to result of the comparison and analysis, the developed energy block shows higher performance of 12.7 times for adding one vibration and 28.9 times for five consecutive vibrations than that of a existing prototype energy block. This is consistent with research purposes for W-level electrical energy production. Thus, the new energy block will likely be possible to apply to the housing and urban facility.

The Performance Improvement of Hybrid Energy Harvesting Block and the Evaluation on Power Generation Performance (하이브리드 에너지하베스팅 블록의 성능개선 및 발전성능 평가)

  • Kim, Hyo-Jin;Park, Ji-Young;Jin, Kyu-Nam
    • Land and Housing Review
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    • v.7 no.3
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    • pp.131-136
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    • 2016
  • The aim of this study was to improve the performance of hybrid energy harvesting block merge the vibrations and the pressure developed in the previous study. The power generation performance of the energy block improved in this manner was measured and compared with the energy performance of the products previously developed. In previous models, the center has placed a piezoelectric, the two sides had arranged a vibration applying electromagnetic inducing type. Improved model was disposed three in a row of three unit modules for one block. We change the design in the following way. That is, a unit module has been placed the upper piezoelectric body, the lower portion were arranged three electron donation. In laboratory conditions, the power generation performance evaluation results of the improved energy block is as follows. Once when the vibration, power generation was determined to 1.066W. When compared with previous studies, and power generation performance is improved up to 235%. When the vibration in a row 5, power generation was determined to 1.830W. When compared with previous studies, the performance is improved to 177%. The purpose of developing a hybrid energy block is intended to produce electricity by the pressure and vibration when a vehicle passes through the energy block installed in the car park the mouth portion. Electricity produced will try to take advantage of for the purpose of operating a guiding beacon and LED signage in the parking lot entrance. Therefore, it is determined that there is a need in the experiment to compare the performance of the power generation in the field.

Power Generation Performance Evaluation according to the Vehicle Running on the Hybrid Energy Harvesting Block (하이브리드 에너지하베스팅 블록의 차량주행 발전성능 평가)

  • Kim, Hyo-Jin;Park, Ji-Young;Jin, Kyu-Nam;Noh, Myung-Hyun
    • Land and Housing Review
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    • v.7 no.4
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    • pp.307-314
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    • 2016
  • Energy harvesting technique is to utilize energy that is always present but wasted. In this study, we have developed the energy harvester of the hybrid method utilizing both vibration and pressure of the vehicle traveling a road or parking lot. In the previous study, we have developed a prototype energy harvester, improved hybrid energy harvester, and developed a final product that offers improved performance in the hybrid module. The results were published in the previous paper. In this study, we installed the finally developed hybrid module in the actual parking lot. And we measured the power generation performance due to pressure and vibration, and the running speed of the vehicle when the vehicle is traveling. And we compared the results with those obtained in laboratory conditions. In a previous study performed in laboratory conditions the maximum power of the energy block was 1.066W when one single time of vibration, and 1.830W when succession with 5 times. On the other hand, in this study, we obtained the average power output of 0.310W when the vehicle is running at an average 5 km/h, 0.670W when at an average 10 km/h, and 1.250W when at an average 20 km/h, and 2.160W when at an average 5 km/h. That is, the higher the running speed of the vehicle has increased power generation performance. However, when compared to laboratory conditions, the power generation performance of the energy block in driving speed by 20km/h was lower than those in laboratory conditions. In addition, when compared to one time of vibration of laboratory conditions, power generation performance was higher when the running speed 20km/h or more and when five consecutive times in laboratory conditions, it was higher when the running speed 30km/h or more. It could be caused by a difference of load conditions between the laboratory and the actual vehicle. Thus, applying the energy block on the road would be more effective than that on the parking lot.

Development of a Hybrid Power Generation System Using Photovoltaic Cells and Piezoelectric Materials (태양 전지와 압전 재료를 이용한 하이브리드 발전시스템 개발)

  • Kim, Yeongmin;Ahmed, Rahate;Zeeshan, Zeeshan;Chun, Wongee
    • Journal of the Korean Solar Energy Society
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    • v.39 no.1
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    • pp.51-58
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    • 2019
  • This paper deals with the operation of a hybrid power generation system made with photovoltaic cells and piezoelectric materials. The system can produce power from the wind as well as from the sun subject to their availability. Irrespective of the largeness of their power production, the power developed by both generators (i.e., phtovoltaic cells and piezoelectric cells) were combined and stored before it was applied to a load. Especially, the AC power (current) developed from each piezoelectric generator was converted by a full wave bridge rectifier and then combined prior to its storage in a capacitor. It was observed that the system can produce a maximum output power of 6.49 mW at loading resistance of $100{\Omega}$.

Flexible ZnO Nanogenerator의 내구성 개선을 통한 효율 향상 연구

  • Gang, Mul-Gyeol;Kim, Seong-Hyeon;Kim, Seon-Min;Jo, Jin-U;Lee, Cheol-Seung
    • Proceedings of the Korean Vacuum Society Conference
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    • 2013.02a
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    • pp.606-606
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    • 2013
  • ZnO nanowire를 기반으로 하는 nanogenerator는 미세한 움직임을 전기 에너지로 변환 시키는 압전 에너지 하베스팅 기술로 기존 에너지 하베스터와 비교하여 사용환경의 제약이 적고, 소형화가 가능한 장점으로 주목을 받고 있다. 특히 혈류, 심장박동, 호흡 등 인체 활동 에너지를 이용한 발전 소자 등의 활용이 가능하여 활발한 연구가 진행되고 있다. 하지만, 최근 발표된 film like generator나 lateral 구조의 nanogenerator는 nanowire의 구조 취약성으로 인해 내구성이 좋지 못한 단점이 있다. 본 연구에서는 nanogenerator의 내구성을 향상시키기 위해 capping layer로 실리콘 계 유무기 하이브리드를 적용하고자 하였다. 또한 상부 전극을 CNT-Ag소재로 대체하여 유연기판에 대응코자 하였다. 코팅 물질 및 코팅 방법을 최적화하고, 내구성 테스트를 실시하였고, 소자의 발전 특성은 PVDF generator와 비교분석하였다.

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O2 plasma를 이용한 Flexible ZnO nanogenerator 특성 향상 연구

  • Gang, Mul-Gyeol;Park, Seong-Hwak;Ju, Byeong-Gwon;Lee, Cheol-Seung
    • Proceedings of the Korean Vacuum Society Conference
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    • 2013.08a
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    • pp.283.1-283.1
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    • 2013
  • ZnO nanowire를 기반으로 하는 nanogenerator는 미세한 움직임을 전기 에너지로 변환 시키는 압전 에너지 하베스팅 기술로 기존 에너지 하베스터와 비교하여 사용환경의 제약이 적고, 소형화가 가능한 장점으로 주목을 받고 있다. 특히 혈류, 심장박동, 호흡 등 인체 활동 에너지를 이용한 발전 소자 등의 활용이 가능하여 활발한 연구가 진행되고 있다. 하지만, 최근 발표된 film like Vertical 구조의 nanogenerator는 nanowire의 구조 취약성으로 인해 내구성이 좋지 못한 단점이 있다. 또한 ZnO nanowire의 내부 O2 결함 및 표면 OH-기의 흡착에 의한 특성 저하가 나타난다. 본 연구에서는 nanogenerator의 내구성을 향상시키기 위해 capping layer로 실리콘 계 유무기 하이브리드를 적용하여 코팅 물질 및 코팅 방법을 최적화 하였으며 상부 전극을 CNT-Ag nanowire 소재로 대체하여 유연기판에 대응코자 하였다. 또한 APP(Atmosphere Pressure Plasma)와 ICP(Inductively Coupled Plasma)장비를 사용하여 ZnO nanowire를 표면처리하였고, 각각의 플라즈마 표면처리의 영향에 대해 조사하였다. XPS를 통하여 OH-기의 제거 유무를 확인하였으며, 소자의 발전 특성의 향상을 확인 하였다.

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Dynamic Characteristics and Power Generation Performance Evaluation of Customized Energy Block Structures (시설물 맞춤형 에너지 블록 구조의 동적 특성 및 발전 성능 평가)

  • Noh, Myung-Hyun;Kim, Hyo-Jin;Parl, Ji-Young;Lee, Sang-Youl
    • KSCE Journal of Civil and Environmental Engineering Research
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    • v.36 no.2
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    • pp.197-206
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    • 2016
  • This study carried out structural behaviors and power generation performances of customized energy harvesting block structures, especially for infrastructures such as parking facility. The improved energy block structures described in this study were represented by using numerical and experimental models. In particular, the composite-PZT hybrid energy blocks are tentatively proposed for better structural durability and power generation effects. The finite element model using ABAQUS program is used for studying static and dynamic characteristics of block structures made of composite materials. In addition, we evaluated the various power generation capacities of advanced energy block structures through laboratory-scale and field experiments.

Design of Resonance Linear Electric Generator System for Vibration Energy Harvesting in Vehicle Suspension (차량 주행시 진동에너지 하베스팅을 위한 현가장치 선형 발전기 시스템의 설계)

  • Choi, Ji-Hyun;Shin, Doo-Beom;Kim, Jin-Ho
    • Journal of the Korea Academia-Industrial cooperation Society
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    • v.15 no.6
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    • pp.3357-3362
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    • 2014
  • The purpose of this research was to develop a resonance electric power generator to harvest vibration energy while the vehicle is driving on a road surface. The electric power generator in the paper was designed using the resonance phenomenon to effectively respond to vibrations from the road surface, which is a comparatively small energy source. Vibration displacement analysis using MATLAB and transient analysis using Ansys MAXWELL, which is a commercial electromagnetic analysis program, was performed to predict the input velocity for the generator and verify the electric power generation. If this electric power generator is applicable to hybrid or electric vehicles, it can be valuable around an automotive electric system and help maintain the performance of the vehicle battery.

Flexible Energy Harvesting Device based on Hybrid Piezoelectric Nanocomposite made of Lead-Free BCTZ Ceramic and Piezo-polymer (비납계 BCTZ 압전세라믹과 압전폴리머로 제작된 하이브리드 나노복합체 기반의 플렉서블 에너지 하베스팅 소자)

  • Park, Sung Cheol;Lee, Jae Hoon;Kim, Yeon-gyu;Park, Kwi-Il
    • Journal of the Korean Institute of Electrical and Electronic Material Engineers
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    • v.35 no.1
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    • pp.72-79
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    • 2022
  • Piezoelectric energy harvesting technologies, which can be used to convert the electricity from the mechanical energy, have been developed in order to assist or power the wearable electronics. To realize non-toxic and biocompatible electronics, the lead-free (Ba0.85Ca0.15)(Ti0.90Zr0.10)O3 (BCTZ) nanoparticles (NPs) are being studied with a great attention as flexible energy harvesting device. Herein, piezoelectric hybrid nanocomposites were fabricated using BCTZ NPs-embedded poly(vinylidene fluoride-trifluoroethylene) [P(VDF-TrFE)] matrix to improve the performance of flexible energy harvester. Output performance of the fabricated energy device was investigated by the well-optimized measurement system during the periodically bending and releasing motions. The generated open-circuit voltage and the short-circuit current of the piezoelectric hybrid nanocomposite-based energy harvester reached up to ~15 V and ~1.1 ㎂, respectively; moreover, the instantaneous power of 3.5 ㎼ is determined from load voltage and current at the external load of 20 MΩ. This research is expected to cultivate a new approach to high-performance wearable self-powering electronics.