• 제목/요약/키워드: thermoelectric.

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열전소자를 이용한 적외선 방사량 감소 기술에 관한 연구 (Research for Actively Reducing Infrared Radiation by Thermoelectric Refrigerator)

  • 김훈;김교민;김우철
    • 대한기계학회논문집B
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    • 제41권3호
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    • pp.199-204
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    • 2017
  • 열전소자를 이용하여 고온의 표면을 능동적으로 냉각하여 적외선 방사량을 줄이는 기술을 소개한다. 공력가열이나 자체 발열 등에 의한 고온 표면 환경을 구현하였고, 여기에 열전소자를 설치하여 냉각하였을 때의 표면 온도와 적외선 방사량을 상용 수치해석 소프트웨어를 사용하여 계산하였다. 이를 통해 특정 환경에서 열전냉각소자를 이용하여 고온 표면에 있어 외부 환경과 비교했을 때의 적외선 방사량 대비를 이론적으로 완전히 제거할 수 있음을 확인하였다.

운전 온도에 따른 열전발전 모듈의 전기적 내부 저항 변화에 대한 연구 (Study on the Variation of Electrical Internal Resistance for Thermoelectric Generator Module with Operating Temperature)

  • 김윤호;김명기;김서영;리광훈;엄석기
    • 설비공학논문집
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    • 제22권1호
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    • pp.1-12
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    • 2010
  • An analysis model considered the manufacturing factors and the pellet size has been developed in order to predict the performance characteristics of thermoelectric modules as generators. Since the electrical internal resistance has a significant role in the performance of thermoelectric modules, the variations of electrical internal resistance with operating temperature are experimentally measured. The modified electrical internal resistance calculated from an experimental correlation is applied to the analysis model. To verify the modified analysis model, the output voltage, output current and output power are compared with experimental results for the operating temperature conditions of $T_h=85^{\circ}C$ and ${\Delta}T=40^{\circ}C$. The modified analysis shows a good agreement with the experimental results in terms of the output voltage, current, and power.

Numerical simulation of the thermoelectric behavior of CNTs/CFRP aircraft composite laminates

  • Lin, Yueguo;Lafarie-Frenot, Marie Christine;Bai, Jinbo;Gigliotti, Marco
    • Advances in aircraft and spacecraft science
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    • 제5권6호
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    • pp.633-652
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    • 2018
  • The present paper focuses on the development of a model for simulating the thermoelectric behavior of CNTs/CFRP Organic Matrix Composite (OMC) laminates for aeronautical applications. The model is developed within the framework of the thermodynamics of irreversible processes and implemented into commercial ABAQUS Finite Element software and validated by comparison with experimental thermoelectric tests on two types of composites materials, namely Type A with Carbon Nanotubes (CNT) and Type B without CNT. A simplified model, neglecting heat conduction, is also developed for simplifying the identification process. The model is then applied for FEM numerical simulation of the thermoelectric response of aircraft panel structures subjected to electrical loads, in order to discuss the potential danger coming from electrical solicitations. The structural simulations are performed on quasi-isotropic stacking sequences (QI) $[45/-45/90/0]_s$ using composite materials of type A and type B and compared with those obtained on plates made of metallic material (aluminum). For both tested cases-transit of electric current of intermediate intensity (9A) and electrical loading on panels made of composite material-higher heating intensity is observed in composites materials with respect to the corresponding metallic ones.

냉각재킷의 설계인자에 따른 열전냉각장치의 성능에 관한 연구 (A Study on the Performance of Thermoelectric Cooling System for Design Parameters of the Cooling Jacket)

  • 박상희;이정은;김경진;김동주
    • 설비공학논문집
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    • 제21권3호
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    • pp.149-156
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    • 2009
  • A small-scale thermoelectric cooling system was built in an effort to enhance the performance of the refrigeration system by utilizing the water-cooled jacket which was attached to the hot side of the thermoelectric module. Considered design parameters for the water-cooled jacket were the geometry of the flow passage inside the jacket and the flow rate of cooling water. The higher flow rate of cooling water in the jacket resulted in a better performance of the refrigeration system. The increase in the number of channels for water flow passage inside the cooling jacket also showed significant improvement on the performance of the thermoelectric cooling system such as the cooling capacity and the COP of the refrigeration system.

6H-SiC로부터 제작한 SiC 세라믹스의 열전변환 특성 (Thermoelectric Conversion Characteristics of SiC Ceramics Fabricated from 6H-SiC Powder)

  • 배철훈
    • 한국세라믹학회지
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    • 제27권3호
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    • pp.412-422
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    • 1990
  • Porous SiC ceramics were proposed to be promising materials for high-temperature thermoelectric energy conversion. Throughthe thermoelectric property measurements and microstructure observations on the porous alpha SiC and the mixture of $\alpha$-and $\beta$-SiC, it was experimentally clarified that elimination of stacking faults and twin boundaries by grain growth is effective to increase the seebeck coefficient and increasing content of $\alpha$-SiC gives rise to lower electrical conductivity. Furthermore, the effects of additives on the thermoelectric properties of 6H-SiC ceramics were also studied. The electrical conductivity and the seebeck coefficient were measured at 35$0^{\circ}C$ to 105$0^{\circ}C$ in argon atmospehre. The thermoelectric conversion efficiency of $\alpha$-SiC ceramics was lower than that of $\beta$-SiC ceramics. The phase homogeneity would be needed to improve the seebeck coefficient and electrical conductivity decreased with increasing the content of $\alpha$-phase. In the case of B addition, XRD analysis showed that the phase transformation did not occur during sintering. On the other hand, AlN addiiton enhanced the reverse phase transformation from 6H-SiC to 4H-SiC, and this phenomenon had a great effect upon the electrical conductivity.

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고전력 전자소자에서 열전생성기의 생성효율과 열적성능 (Generation Efficiency and Thermal Performance of a Thermoelectric Generator with a High Power Electronic Component)

  • 김경준
    • Journal of Advanced Marine Engineering and Technology
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    • 제36권1호
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    • pp.51-56
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    • 2012
  • 본 논문은 고파워 전자소자의 폐열로부터 에너지 수확을 목적으로 하는 열전생성기의 생성효율과 열적 성능에 대하여 논한다. 열경계저항을 포함하는 열전모델이 적용되어 생성효율과 고전력 전자소자의 junction 온도를 예측하였고 그 결과는 실험치로 검증되어진다. 검증결과는 예측치와 계측치의 오차가 작음을 보인다. 검증후 열전모델은 다양한 로드저항과 열원의 열율에서 생성효율, 열전생성기 양면의 온도차, 소자의 junction 온도를 예측한다. 본 연구는 로드저항이 생성효율, 열전생성기 양면의 온도차, junction 온도에 미치는 영향에 대해서도 탐구한다.

열전 모듈의 SPICE 모델링 (SPICE Modeling for Thermoelectric Modules)

  • 박순서;조성규;;김시호
    • 대한전자공학회논문지SD
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    • 제47권4호
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    • pp.7-12
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    • 2010
  • 열전소자의 SPICE 모델을 유도하였고, Harman method를 이용하여 전기적인 측정과 열전 소자 양단면의 온도 측정값 만으로 모델 파라미터를 추출하기 위한 방법을 제시하였다. 본 논문에서 제시된 SPICE 모델 파라미터 추출방식은 열전도 측정 데이터를 사용하지 않고, 모델 파라미터를 추출할 수 있으며, 기존의 열전도 측정에 의한 값과 비교하였을 때 오차가 크지 않아서 실제로 열전 모듈을 제작하였을 때 유용하게 사용할 수 있는 방법이 될 수 있음을 보였다. 제시된 SPICE 모델은 열전모듈을 이용한 냉각 장치와 열전 발전 장치의 열적 시뮬레이션과 전기적인 시뮬레이션에 모두 적용이 가능하다.

NaxCo2O4의 열전특성에 미치는 Na 함량변화와 첨가제의 효과 (Determination of the Thermolelectric Properties of NaxCo2O4 by Controlling the Concentration of Na and Additive)

  • 최순목;정성민;서원선
    • 한국세라믹학회지
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    • 제46권6호
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    • pp.689-694
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    • 2009
  • Layer-structured $Na_xCo_2O_4$ was synthesized from $Na_2CO_3\;and\;Co_3O_4$ powders. The chemical concentrations of Na and additive were controlled to enhance the thermoelectric properties over the temperature range from 400 K to 1,150 K. As a result, we obtained the maximum thermoelectric properties at a single phase region with Na content of x=1.5. When Na content was smaller than x=1.5, the thermoelectric properties was low due to formation of second phases of CoO and other oxides. Additionally, Mn was doped to improve thermoelectric properties by means of decreasing thermal conductivity. The results showed that the concentrations of both Na and Mn are all governing factors to determine the thermoelectric properties of $Na_xCo_2O_4$ system.

Bi2Te3계 열전박막의 열전 출력인자에 미치는 첨가제의 영향 (Doping Effects to the Thermoelectric Power Factor of Bi2Te3 Thin Films)

  • 배상현;최순목
    • 한국전기전자재료학회논문지
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    • 제33권2호
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    • pp.141-146
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    • 2020
  • Thermoelectric Bi2Te3 thin films were synthesized by a co-sputtering method at 300℃. A Fe dopant was considered to enhance the thermoelectric properties of the system. The Seebeck coefficient of the Fe-doped films increased whereas the electrical conductivity decreased. As a result, the power factor of the system increased owing to the enhanced Seebeck coefficient. Grain growth inhibition was detected in the Fe-doped system, which produced more grain boundaries in the Fe-doped films than in the undoped system. The increased grain boundary scattering was deemed to be effective for a reduced thermal conductivity. This is advantageous for the preparation of high-performance thermoelectric films.

ErAs 나노입자가 첨가된 InGaAlAs 박막의 평면정렬방향으로의 열전특성 (In-Plane Thermoelectric Properties of InGaAlAs Thin Film with Embedded ErAs Nanoparticles)

  • 이영중
    • 한국재료학회지
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    • 제21권8호
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    • pp.456-460
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    • 2011
  • Microelectromechanical systems (MEMS)-fabricated suspended devices were used to measure the in-plane electrical conductivity, Seebeck coefficient, and thermal conductivity of 304 nm and 516 nm thick InGaAlAs films with 0.3% ErAs nanoparticle inclusions by volume. The suspended device allows comprehensive thermoelectric property measurements from a single thin film or nanowire sample. Both thin film samples have identical material compositions and the sole difference is in the sample thickness. The measured Seebeck coefficient, electrical conductivity, and thermal conductivity were all larger in magnitude for the thicker sample. While the relative change in values was dependent on the temperature, the thermal conductivity demonstrated the largest decrease for the thinner sample in the measurement temperature range of 325 K to 425 K. This could be a result of the increased phonon scattering due to the surface defects and included ErAs nanoparticles. Similar to the results from other material systems, the combination of the measured data resulted in higher values of the thermoelectric figure of merit (ZT) for the thinner sample; this result supports the theory that the reduced dimensionality, such as in twodimensional thin films or one-dimensional nanowires, can enhance the thermoelectric figure of merit compared with bulk threedimensional materials. The results strengthen and provide a possible direction in locating and optimizing thermoelectric materials for energy applications.