晶化钯基合金热输运性质实验研究

PDF(276 KB)
PDF(276 KB)
Frontiers in Energy ›› 2018, Vol. 12 ›› Issue (1) : 121-126. DOI: 10.1007/s11708-018-0531-9

晶化钯基合金热输运性质实验研究

作者信息 +

Experimental research on thermal transport properties of crystallized palladium-based alloys

Author information +
History +

Abstract

Palladium-based alloy is a kind of material with a high glass forming ability and can be easily formed into an amorphous state. After an annealing process, it can also be maintained at a crystallized state. To study the thermal and electrical transport properties of crystallized palladium-based alloys, the steady-state T-type method, standard four-probe method, and AC heating-DC detecting T-type method were used to measure the thermal conductivity, electrical conductivity, and Seebeck coefficient of crystallized Pd40Ni10Cu30P20 and Pd43Ni10Cu27P20 alloys respectively. The results show that compared to amorphous samples, the thermal conductivity and electrical conductivity of crystallized palladium-based alloys are significantly higher, while the Seebeck coefficient is lower. The ratio of crystallized and amorphous thermal conductivity is higher for Pd43Ni10Cu27P20 alloy fiber which has a higher glass forming ability, while the ratio of electronic thermal conductivity almost remains constant for both alloy fibers. The results also show that the slope of electrical resistivity to temperature is a function of elemental composition for crystallized quaternary palladium-based alloy fibers. The sensitivity of thermal conductivity and electrical conductivity to the composition is high, while the correlation between Seebeck coefficient and composition is relatively weak.

Keywords

palladium-based alloy / T-type method / thermal conductivity / electrical conductivity / Seebeck coefficient

引用本文

导出引用
. . Frontiers in Energy. 2018, 12(1): 121-126 https://doi.org/10.1007/s11708-018-0531-9

参考文献

[1]
Lu I R, Wilde G, Görler G P, Willnecker R. Thermodynamic properties of Pd-based glass-forming alloys. Journal of Non-Crystalline Solids, 1999, 250–252: 577–581
CrossRef ADS Google scholar
[2]
Schroers J, Johnson W L, Busch R. Crystallization kinetics of the bulk-glass-forming Pd43Ni10Cu27P20 melt. Applied Physics Letters, 2000, 77(8): 1158–1160
CrossRef ADS Google scholar
[3]
Nishiyama N, Inoue A. Glass-forming ability of bulk Pd40Ni10Cu30P20 alloy. Materials Transactions JIM, 1996, 37(10): 1531–1539
CrossRef ADS Google scholar
[4]
Maitrepierre P. Electrical resistivity of amorphous Ni-Pd-P Alloys. Journal of Applied Physics, 1970, 41(2): 498–503
CrossRef ADS Google scholar
[5]
Schindler A I, Smith R J, Salkovitz E I. Preliminary electrical-resistivity measurements of the nickel-palladium alloy system. Journal of Physics and Chemistry of Solids, 1956, 1(1–2): 39–41
CrossRef ADS Google scholar
[6]
Tangonan G L. Electrical resistivity of amorphous Pd-Cu-P alloys. Physics Letters A, 1975, 54(4): 307–308
CrossRef ADS Google scholar
[7]
Fujii M, Zhang X, Xie H, Ago H, Takahashi K, Ikuta T, Abe H, Shimizu T. Measuring the thermal conductivity of a single carbon nanotube. Physical Review Letters, 2005, 95(6): 065502
CrossRef ADS Pubmed Google scholar
[8]
Miao T, Ma W, Zhang X. AC heating-DC detecting method for Seebeck coefficient measurement of the thermoelectric micro/nano devices. Journal of Vacuum Science & Technology B, 2012, 30(05): 1804
[9]
Gu M. Thermal conductivity measurement of an individual carbon fiber by modified T-type method. Dissertation for the Master’s Degree. Beijing: Tsinghua University, 2010 (in Chinese)
[10]
Shi X, Cheng S, Ma W, Zhang X, Liu G, Pan M, Wang W. Experimental research on thermal transport properties of palladium-based amorphous alloys. Journal of Non-Crystalline Solids, 2017, 458: 157–161
CrossRef ADS Google scholar
[11]
Ziman J M. Electrons and Phonons: the Theory of Transport Phenomena in Solids. London: Oxford University Press, 1960

Acknowledgments

This work was supported by the National Natural Science Foundation of China (Grant Nos. 51327001, 51576105, 51336009, and 51636002), the Science Fund for Creative Research Groups (Grant No. 51621062), and the Initiative Scientific Research Program of Tsinghua University.

版权

2018 Higher Education Press and Springer-Verlag GmbH Germany, part of Springer Nature
PDF(276 KB)

Accesses

Citation

Detail

段落导航
相关文章

/