IMR OpenIR
SiC泡沫陶瓷热电性能的研究
其他题名Investigation of Thermoelectric Properties of SiC Foam
魏薇
学位类型博士
导师张劲松
2008-01-31
学位授予单位中国科学院金属研究所
学位授予地点金属研究所
学位专业材料加工工程
关键词Sic泡沫陶瓷 Seebeck系数 电阻率 热导率 热电优值
摘要热电材料是能将热能与电能直接相互转换的一类功能材料。寻找能够显著提高热电转换效率的方法,使温差发电和电制冷技术可与传统发电和制冷技术竞争,是当前和今后相当长时期内,热电材料领域的国际竞争热点。本实验室在前期研究中发现, 泡沫SiC陶瓷比块状SiC陶瓷的热电性能有显著的提高,这一结果暗示着改变材料的宏观几何结构可能是提高材料热电性能的一条新途径,明确这一途径的有效性,从而得到提高泡沫结构热电材料性能的可行方法是非常重要的。本文利用可控溶渗反应烧结法制备SiC泡沫陶瓷,通过系统研究宏观结构、筋结构以及泡沫结构尺寸等因素对SiC泡沫陶瓷热电性能的影响,得到以下主要结论: 宏观结构对SiC泡沫陶瓷热电性能影响的研究结果表明:(1) SiC泡沫陶瓷的Seebeck系数明显大于SiC块状陶瓷的Seebeck系数;(2) 当SiC陶瓷的宏观结构由块状变为泡沫状时,由于热导率与电导率的下降不同步,使得SiC泡沫陶瓷的热电性能得到了明显的改善;(3) 通过与添加5%wtSi的SiC块状陶瓷的热电性能比较,进一步肯定了三维连通网络结构能够显著提高SiC陶瓷材料的的热电性能。宏观几何结构的改变为提高材料的热电性能提供了一条新的思路。 筋结构对SiC泡沫陶瓷热电性能影响的研究结果表明:(1) SiC泡沫陶瓷的Seebeck系数和电导率随筋层数的增加而增大;(2) 具有三层筋结构(外层Si/SiC层/Si芯)SiC泡沫陶瓷的热电功率因子具有最大值。筋结构的多层化有利于SiC泡沫陶瓷电学性能的提高,也为其热电性能的改善提供了条件。 Si含量(8%、15%、45%、60%)对SiC泡沫陶瓷热电性能影响的研究结果表明:(1) 当温度高于250℃时,SiC泡沫陶瓷的Seebeck系数随着Si含量的增加而增大;(2) SiC泡沫陶瓷的电阻率随Si含量的增加急剧下降。在整个测量温度范围内,Si含量为60%的SiC泡沫样品的热电功率因子最高,热电性能最优异。 泡沫尺寸因素对SiC泡沫陶瓷热电性能影响的研究结果表明:(1) 当SiC泡沫陶瓷的体积分数由30%增大到50%时,样品的Seebeck系数减小、电阻率降低、热导率增大,三者的综合作用导致SiC泡沫陶瓷的热电性能随体积分数的增加而减小。体积分数为30%时,SiC泡沫陶瓷的热电性能最好。(2) 随着孔径尺寸(2mm、1mm、0.1mm)的减小,SiC泡沫陶瓷的Seebeck系数、电导率和热导率都增大。SiC泡沫陶瓷的热电优值随孔径尺寸的减小而增加,即孔径为0.1mm的SiC泡沫陶瓷的热电优值最大,热电性能最优异。
其他摘要Thermoelectric material is a kind of functional materials that can directly convert heat energy to electricity. In order to compete with traditional techniques for power generation and refrigenation, the method to improve the thermoelectric efficiency for power generation and refrigenation is a key subject in a long period of time. It is of importance to confirm the validity of improving the performance of thermoelectric materials by changing their macrostructure, and put forward feasible approach for enhancing the thermoelectric properties of foamed materials. In our previous work, it was found that the thermoelectric performance of SiC foam is much better than that of SiC bulk, which indicated that changing the macrostructure of SiC may be a new effective way to improve the properties of thermoelectric materials. In this dissertation, the influences of the macrostructure, strut layer structures and pore size of SiC foam on the thermoelectric performance, which were fabricated by controlled melt-infiltration reaction sintering, were investigated. The main results obtained are as follows: The influence of the macrostructure on the thermoelectric property of SiC foam was studied. The results show that: (1) SiC foam exhibits a much greater Seebeck coefficient than SiC bulk. (2) When the macrostructure of SiC ceramics changes from bulk to foam, the thermal conductivity decreases more deeply than the electrical conductivity does, which results in an improvement of the thermoelectric performance of SiC foam. (3) Compared with 5wt% Si addition to SiC bulk, SiC foam has a larger figure of merit, which confirms the improvement of the thermoelectric property of SiC ceramics by the foam structure. Therefore, changing the macrostructure for enhancing the performance of thermoelectric materials is a feasible way. The influence of the strut layer structures on the thermoelectric properties of SiC foam was discussed. The results show that: (1) the Seebeck coefficient and the electrical conductivity increase with the numbers of the strut layers increase. (2) The power factor of SiC foam with a three-layer strut structure (Si layer/SiC layer/Si core) is the largest. It is advantageous for improving the thermoelectric performance by adding the strut layers in SiC foam. The effects of Si content on the thermoelectric properties of SiC foam were investigated. The results show that: (1) At 250℃, the Seebeck coefficient of SiC foam increases as Si content increases. (2) The electrical resistivity of SiC foam decreases drastically as Si content increases. In the whole temperature range, the power factor and the thermoelectric performance of SiC foam with 60% Si addition is the best. The effects of pore size factor on the thermoelectric properties of SiC foam were studied. The results show that: (1) When the volume fraction of SiC foam increases from 30% to 50%, the seebeck coefficient and the electrical resistivity decrease, while the themal conductivity increases. However, the influence of volume fraction on the thermoelectric figure of merit of SiC foam is not strong when the seebeck coefficient, the electrical resistivity and the themal conductivity were considered together at lower temperature. When the temperature increases over 450℃, the figure of merit of SiC foam ceramics with the volume fraction of 30% is the largest, which shows the best thermoelectric property. (2) As the pore diameter decreases, the Seebeck coefficient, the electrical conductivity and the thermal conductivity all increase. When the temperature increases over 450℃, the thermoelectric figure of merit of SiC foam with 0.1mm pore diameter is the largest, which results in the best thermoelectric performance.
页数103
语种中文
文献类型学位论文
条目标识符http://ir.imr.ac.cn/handle/321006/16851
专题中国科学院金属研究所
推荐引用方式
GB/T 7714
魏薇. SiC泡沫陶瓷热电性能的研究[D]. 金属研究所. 中国科学院金属研究所,2008.
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