• 제목/요약/키워드: Department of Energy

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Fabrication of BSCCO Tube by Melting Centrifugal Process

  • Kim, Ki-Ik;Oh, Sung-Young;Seo, Chang-Eui;Jun, Byung-Hyuk;Kim, Hyoung-Seop;Hyun, Ok-Bae;Kim, Chan-Joong
    • 한국초전도학회:학술대회논문집
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    • 한국초전도학회 2004년도 High Temperature Superconductivity Vol.XIV
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    • pp.96-96
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    • 2004
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홀뮴 도핑된 TiO2를 이용한 광전기화학 수소 제조 (Photoelectrochemical Hydrogen Production with Holmium-doped TiO2)

  • 정현민;김민서;조혜경;주현규;강경수;이광복;김한성;윤재경
    • 한국수소및신에너지학회논문집
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    • 제34권5호
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    • pp.413-420
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    • 2023
  • Holmium-doped TiO2 nanotubes (Ho-TNTs) were manufactured through anodization treatment and electrochemical deposition, and optimization experiments were conducted using various Holmium doping concentrations and time as variables. Surface as well as electrochemical characteristics were analyzed to study the prepared photocatalysts. Ho-TNTs were found to exist only in anatase phase through X-ray diffraction analysis. Ho-TNTs with 0.01 wt% 100 seconds shows a photocurrent density of 3.788 mA/cm2 and an effective photo-conversion efficiency (PCE) of 4.30%, which is more efficient than pure TiO2 nanotubes (pure-TNTs) (at bias potential 1.5 V vs. Hg/HgO). The photocatalytic activity of the aforementioned Ho-TNTs for hydrogen production was evaluated with the result of -29.20 µmol/h·cm2.

Minimum Covering Randic Energy of a Graph

  • Prakasha, Kunkunadu Nanjundappa;Polaepalli, Siva Kota Reddy;Cangul, Ismail Naci
    • Kyungpook Mathematical Journal
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    • 제57권4호
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    • pp.701-709
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    • 2017
  • In this paper, we introduce the minimum covering Randic energy of a graph. We compute minimum covering Randic energy of some standard graphs and establish upper and lower bounds for this energy. Also we disprove a conjecture on Randic energy which is proposed by S. Alikhani and N. Ghanbari, [2].

혁신도시의 에너지수요절감 및 신재생에너지도입계획 분석연구 (A Study on analyzing the Plan to save the Demand for Energy and introduce the Renewable Energy System in Innovation City)

  • 김지연;홍성희;박효순;서승직
    • 대한설비공학회:학술대회논문집
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    • 대한설비공학회 2007년도 동계학술발표대회 논문집
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    • pp.474-479
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    • 2007
  • The innovation city, which meets the best innovation condition to cooperate with the public institution and the industry-university-researcher closely and the good environment of housing, education, health and culture, was promoted to make the local city characteristic and independent. The plan to make the locally independent base have to consider the economical condition, the quality of life and the sustainable development. First of all The balanced city-planning is demanded to build friendly environmental and sustainable city. energy-efficient buildings shuld be designed to deal with the energy and environment problem. So we analyze the energy demand plan and the method to introduce the renewable energy system. As a result, the reduction ratio of the energy demand are greatly imbalanced between innovation cities. and only the Gwang-ju Jeon-nam innovation city is planed to apply the renewable energy to 5% of total energy demand.

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플러스에너지하우스 설계 및 에너지 성능 평가 (Design and Energy Performance Evaluation of Plus Energy House)

  • 김민휘;임희원;신우철;김효중;김현기;김종규
    • 한국태양에너지학회 논문집
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    • 제38권2호
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    • pp.55-66
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    • 2018
  • South Korea aims to shift the 20 percent of electricity supplement from the fossil fuel including the nuclear to renewable energy systems by 2030. In order to realize this agenda in the buildings, the plus energy house is necessary to increase the renewable energy supplement beyond the zero energy house. This paper suggested KePSH (KIER Energy-Plus Solar House) and energy performance of house and renewable energy systems was investigated. The KePSH has the target of generating 40% surplus energy than the conventional house energy consumption. The plus energy house is the house that generates surplus energy from the renewable energy sources than that consumes. In order to minimize the cooling and heating load of the house, the shape design and passive parameters design were conducted. Based on the experimental data of the plug load in the typical house, the total energy consumption of the house was estimated. This paper also suggested renewable energy sources integrated HVAC system using air-source heat pump system. Two cases of renewable energy system integration methods were suggested, and energy performance of the cases was investigated using TRNSYS 17 program. The results showed that the BIPV (building integrated photovoltaic) system (i.e., CASE 1) and BIPV and BIST system (i.e., CASE 2) shows 42% and 29% of plus energy rate, respectivey. Also, CASE 1 can generate 59% more surplus energy compared with the CASE 2 under the same installation area.

Evaluation of input-output energy use in strawberry production in single-span double-layered greenhouses with different thermal-curtain positions

  • Timothy Denen Akpenpuun;Wook-Ho Na;Qazeem Opeyemi Ogunlowo;Anis Rabiu;Misbaudeen Aderemi Adesanya;Prabhat Dutta;Ezatullah Zakir;Hyeon-Tae Kim;Hyun-Woo Lee
    • 농업과학연구
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    • 제50권3호
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    • pp.395-406
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    • 2023
  • The large amount of energy required for successful crop production is the main challenge in greenhouse cropping systems. As a response to this challenge a comprehensive evaluation of greenhouse energy consumption was carried out in two structurally similar single-span greenhouses with different thermal curtain positions, with particular attention to energy productivity, specific energy, net energy, and energy ratio. The greenhouses are used for strawberry production. In the R-greenhouse (RGH), the thermal curtain hanged directly at the roof ridge, whereas in the Q-greenhouse (QGH), the thermal curtain was placed 5° from an imaginary vertical axis, from the middle of the roof ridge downwards to the north side of the greenhouse roof. The relevant data were recorded using standard methods. The results indicated that the energy expended in the RGH and QGH systems was 2,186.48 and 2,189.26 MJ/m2, respectively. Electricity and nitrogen fertilizer contributed the highest energy input in both greenhouses and in all seasons. The output energy was 3.12 and 3.82 MJ/m2, respectively, in RGH and QGH in season I and 4.40 and 4.87 MJ/m2 in season II. In terms of energy expended, there was no significant difference between the two greenhouses, nor between the two seasons. These results indicate that greenhouses of the size used in this investigation are not viable in terms of energy productivity, energy-use efficiency, and subsequent economic performance. However, further studies should be conducted to scale-up the information obtained from this investigation.

태양전지 모듈 고장진단센서를 이용한 모니터링 시스템 (The Monitoring System of Photovoltaic Module using Fault Diagnosis Sensor)

  • 박유나;강기환;주영철;김수현;고석환;장길수
    • 한국태양에너지학회 논문집
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    • 제36권5호
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    • pp.91-100
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    • 2016
  • This paper proposes the PV module fault diagnosis sensor which is applied to Zigbee wireless network, and monitoring system using the developed sensor. It is designed with embedded sensor in junction box. The diagnosis elements for algorithm were voltage and temperature. For that reason, It is able to reduce the price and separate the fault of bypass diode from shading differently from other monitoring systems. This fault diagnosis algorithm verified through the Field-installed operations of PV module.

압전-마찰전기 복합 소재 기반의 고출력 에너지 하베스팅 기술 개발 리뷰 (Review on the Recent Advances in Composite Based Highoutput Piezo-Triboelectric Energy Harvesters)

  • ;박현제;손민균;이태형;강대준
    • 세라미스트
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    • 제23권1호
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    • pp.54-88
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    • 2020
  • Global effort has resulted in tremendous progress with energy harvesters that extract mechanical energy from ambient sources, convert it to electrical energy, and use it for systems such as wrist watches, mobile electronic devices, wireless sensor nodes, health monitoring, and biosensors. However, harvesting a single energy source only still pauses a great challenge in driving sustainable and maintenance-free monitoring and sensing devices. Over the last few years, research on high-performance mechanical energy harvesters at the micro and nanoscale has been directed toward the development of hybrid devices that either aim to harvest mechanical energy in addition to other types of energies simultaneously or to exploit multiple mechanisms to more effectively harvest mechanical energy. Herein, we appraise the rational designs for multiple energy harvesting, specifically state-of-the-art hybrid mechanical energy harvesters that employ multiple piezoelectric and triboelectric mechanisms to efficiently harvest mechanical energy. We identify the critical material parameters and device design criteria that lead to high-performance hybrid mechanical energy harvesters. Finally, we address the future perspectives and remaining challenges in the field.