Academic literature on the topic 'Temperature conductivity'

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Journal articles on the topic "Temperature conductivity"

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Voyevodin, V. N. "Low-temperature anomalies of the hardened tin conductivity." Functional materials 22, no. 4 (2015): 470–74. http://dx.doi.org/10.15407/fm22.04.470.

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Shi, Jinyan, Yuanchun Liu, Baoju Liu, and Dan Han. "Temperature Effect on the Thermal Conductivity of Expanded Polystyrene Foamed Concrete: Experimental Investigation and Model Correction." Advances in Materials Science and Engineering 2019 (June 17, 2019): 1–9. http://dx.doi.org/10.1155/2019/8292379.

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In this research, ultralightweight expanded polystyrene foamed concrete (EFC) was made by the chemical foaming method, and its thermal insulation property was measured by the transient method at different environment temperatures (from −10 to 40°C). Then, the effect of temperature and EPS volume fraction on the thermal conductivity and dry density of EFC were observed. Ultimately, the Cheng–Vachon equation was modified by introducing the temperature parameter. The results indicated that EFC thermal conductivity decreases with increasing temperature. It was also demonstrated that the suitable v
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PERES, N. M. R., and T. STAUBER. "TRANSPORT IN A CLEAN GRAPHENE SHEET AT FINITE TEMPERATURE AND FREQUENCY." International Journal of Modern Physics B 22, no. 16 (2008): 2529–36. http://dx.doi.org/10.1142/s0217979208039794.

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We calculate the conductivity of a clean graphene sheet at finite temperatures starting from the tight-binding model. We obtain a finite value for the dc-conductivity at zero temperature. For finite temperature, the spontaneous electron-hole creation, responsible for the finite conductivity at zero temperature, is washed out and the dc-conductivity yields zero. Our results are in agreement with calculations based on the field-theoretical model for graphene.
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Volcheck, V. S., M. S. Baranava, and V. R. Stempitsky. "Thermal conductivity of wurtzite gallium nitride." Proceedings of the National Academy of Sciences of Belarus, Physical-Technical Series 67, no. 3 (2022): 285–97. http://dx.doi.org/10.29235/1561-8358-2022-67-3-285-297.

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This paper reviews the theoretical and experimental works concerning one of the most important parameters of wurtzite gallium nitride – thermal conductivity. Since the heat in gallium nitride is transported almost exclusively by phonons, its thermal conductivity has a temperature behavior typical of most nonmetallic crystals: the thermal conductivity increases proportionally to the third power of temperature at lower temperatures, reaches its maximum at approximately 1/20 of the Debye temperature and decreases proportionally to temperature at higher temperatures. It is shown that the thermal c
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HU Ke, SUN Qianhui, HU Cuie, Wang Yan, ZENG Zhaoyi, and CHEN Jun. "First principles calculations of lattice dynamics and thermal transport properties of alpha uranium under high pressure." Acta Physica Sinica 74, no. 17 (2025): 0. https://doi.org/10.7498/aps.74.20250619.

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Through first-principles calculations based on Density Functional Theory (DFT) and the Boltzmann Transport Equation (BTE), we investigated the thermal transport properties of α-uranium under high pressure. In order to investigate the effect of pressure on the phonon dispersion relations and thermal conductivity of α-U, the phonon dispersion relations and lattice thermal conductivity at different pressures were calculated using a 4×4×4 supercell. For the calculation of electronic thermal conductivity, the ratio of conductivity to relaxation time is first calculated using the Boltzmann Transport
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Lucas, Killian, Sévan Bouchy, Pierre Bélanger, and Ricardo J. Zednik. "High-temperature electrical conductivity in piezoelectric lithium niobate." Journal of Applied Physics 131, no. 19 (2022): 194102. http://dx.doi.org/10.1063/5.0089099.

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Lithium niobate is a promising candidate for use in high-temperature piezoelectric devices due to its high Curie temperature ([Formula: see text]1483 K) and strong piezoelectric properties. However, the piezoelectric behavior has, in practice, been found to degrade at various temperatures as low as 573 K, with no satisfactory explanation available in the literature. We, therefore, studied the electrical conductivity of congruent lithium niobate single crystals in the temperature range of 293–1273 K with an 500 mV excitation at frequencies between 20 Hz and 20 MHz. An analytical model that gene
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Junaid, Massab, Taqi Ahmad Cheema, Hani Haleem, Saad-ul-Fatah, Khalid Rahman, and Cheol Woo Park. "Effects of thermal material properties on precision of transient temperatures in pulsed laser welding of Ti6Al4V alloy." Proceedings of the Institution of Mechanical Engineers, Part C: Journal of Mechanical Engineering Science 233, no. 9 (2018): 3170–81. http://dx.doi.org/10.1177/0954406218802604.

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This study investigates the effect of temperature-dependent material properties on the precision of a simulation in pulsed laser beam welding of Ti6Al4V alloy. Ti6Al4V is one of the most extensively used titanium alloys. The precision in transient temperature distributions developed in the thermal modeling part of a sequentially coupled thermo-mechanical simulation is crucial to the end results of structural mechanics. The temperature profile obtained by a finite element model at two distinct locations is validated by experimental results using temperature-dependent material properties. Then,
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Liu, Xiaoxia, Tingting Wang, Mingyu Zhuang, Binjie Xin, and Wei Liu. "Investigation of the Thermal Transfer Behavior of Single Layer Woven Fabrics at Different Temperatures." Journal of Engineered Fibers and Fabrics 11, no. 2 (2016): 155892501601100. http://dx.doi.org/10.1177/155892501601100202.

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The thermal conductivity of several high performance woven fabrics at temperatures ranging from −50? to 200? was measured using the hot wire method to explore the relationship between the thermal conductivity and temperature. Data regression of the least squares was used to obtain curves of the thermal conductivity of various fabrics vs. temperature. Results show that the thermal transfer process in woven fabrics is mainly thermal conduction consisting of phonon and molecular conduction. Thermal conductivity as a function of temperature varies as temperature range changes, and is significantly
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Yue, Peng, Lin Qiu, Xing Hua Zheng, and Da Wei Tang. "The Effective Thermal Conductivity of Porous Polymethacrylimide Foams." Key Engineering Materials 609-610 (April 2014): 196–200. http://dx.doi.org/10.4028/www.scientific.net/kem.609-610.196.

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A freestanding sensor-based 3ω method was employed to measure the effective thermal conductivity of porous polymethacrylimide (PMI) foams with different densities at different temperatures. Experimental data showed that within the measuring temperature range, the effective thermal conductivity increased with temperature. Moreover, the formation mechanism of the relationship between the effective thermal conductivity and temperature was analyzed in this paper.
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Sen, Pabitra N., and Peter A. Goode. "Influence of temperature on electrical conductivity on shaly sands." GEOPHYSICS 57, no. 1 (1992): 89–96. http://dx.doi.org/10.1190/1.1443191.

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In boreholes, temperatures vary and to extract hydrocarbon saturation from conductivity measurements, the influence of temperature on water and rock conductivities must be accounted for. The mobility [Formula: see text] of the counter‐ions due to clays and the electrical conductivity of pore‐filling brine show large changes with variation in temperature, whereas the microgeometry of the pore space exhibits negligible change. Using this idea, the temperature dependence of [Formula: see text] is extracted using data on dc electrical conductivity of shaly sands (σ) containing varying amounts of c
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Dissertations / Theses on the topic "Temperature conductivity"

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Regan, Simon Edmund. "The low temperature thermal conductivity of polymers." Thesis, University of Leeds, 1990. http://ethos.bl.uk/OrderDetails.do?uin=uk.bl.ethos.277153.

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Rashidi, Mohammadi Abdolreza. "MEMS pressure, temperature and conductivity sensors for high temperature and harsh environments." Thesis, University of British Columbia, 2011. http://hdl.handle.net/2429/33783.

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Kraft pulp digesters have been used to convert wood chips into pulp for manufacturing a wide variety of paper products. Inside a kraft digester, chemical reactions remove lignin from their wood matrix in a caustic environment (pH~13.5, 170°C, 2MPa). Data on actual internal operating conditions in a kraft digester is needed to optimize kraft digester operation and obtain maximum production quality. Currently, this information is limited to selected static locations on the periphery of the digester. The objective of this thesis is to develop miniature temperature, pressure, and liquid conductivi
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Delap, Martin Richard. "Thermal conductivity studies of YBa₂Cu₃O₇₋δ". Thesis, Durham University, 1990. http://etheses.dur.ac.uk/9301/.

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Apparatus to measure the thermal conductivity of YBa(_2)Cu(_3)O(_7-δ) at temperatures between 20K and 120K has been designed and constructed. The thermal conductivity is measured using a longitudinal steady state heat flow technique. Thermal conductivity measurements have been performed upon a sample of YBa(_2)Cu(_3)O(_7-δ) which has been subjected to a series of heat treatments in order to remove oxygen from the material. The measurements show conclusively that the thermal conductivity of YBa(_2)Cu(_3)O(_7-δ) is very strongly influenced by the oxygen content of the material. A reduction of th
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Hardy, N. D. "The low temperature thermal conductivity of semi-crystalline polymers." Thesis, University of Leeds, 1985. http://ethos.bl.uk/OrderDetails.do?uin=uk.bl.ethos.371443.

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Mackay, Kenneth Donald. "The low temperature electronic transport properties of amorphous metallic alloys." Thesis, University of Cambridge, 1991. http://ethos.bl.uk/OrderDetails.do?uin=uk.bl.ethos.386132.

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Alonzo-Proulx, Olivier. "Low-temperature thermal conductivity of the amorphous superconductor FexNi₁-xZr₂." Thesis, McGill University, 2005. http://digitool.Library.McGill.CA:80/R/?func=dbin-jump-full&object_id=97890.

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Thermal conductivity is a powerful tool to probe the phonon and electron exitations in a solid, especially in superconductors were one can basically tune the respective electronic and phononic contributions by applying a magnetic field below Tc.<br>After a short review on the concepts of superconductivity, thermal conductivity and amorphous matter, we present a study of the thermal conductivity of an exotic material, the amorphous metallic superconductor Fe0.5Ni 0.5Zr2. The results indicate an unexpected dominant electonic contribution to the thermal conductivity across the superconducting tra
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Gold, Ziv. "The thermal conductivity of the high temperature superconductor YBa2Cu3O7-delta /." Thesis, McGill University, 1994. http://digitool.Library.McGill.CA:80/R/?func=dbin-jump-full&object_id=55497.

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Previous measurements show that the thermal conductivity of $Y Ba sb2 Cu sb3 O sb{7- delta}$ in the basal plane is anisotropic with a large peak in the superconducting state. The magnitude of this anisotropy in the superconducting and normal states, and the dominant mechanism for heat conduction in the superconducting state are currently the subject of debate. We have measured the thermal conductivity of high quality $Y Ba sb2 Cu sb3 O sb{7- delta}$ for deoxygenated, twinned and detwinned samples along the a and b axes to shade light on this issue. We were able to measure the electrical and th
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Asgari, Mohammadreza. "FULLY-INTEGRATED CMOS PH, ELECTRICAL CONDUCTIVITY, AND TEMPERATURE SENSING SYSTEM." University of Akron / OhioLINK, 2018. http://rave.ohiolink.edu/etdc/view?acc_num=akron1533827604228324.

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Cole, M. "Structure-conductivity-temperature relationships in calcium and other divalent polymer electrolytes." Thesis, De Montfort University, 1989. http://ethos.bl.uk/OrderDetails.do?uin=uk.bl.ethos.234266.

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Mascaro, Mark Daniel. "Temperature effects on the electronic conductivity of single-walled carbon nanotubes." Thesis, Massachusetts Institute of Technology, 2007. http://hdl.handle.net/1721.1/44817.

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Thesis (S.B.)--Massachusetts Institute of Technology, Dept. of Materials Science and Engineering, 2007.<br>Includes bibliographical references (p. 57-59).<br>The room-temperature electronic conductivity and temperature dependence of conductivity were measured for samples of carbon nanotubes of three types: pristine; functionalized with a nitrobenzene covalent functionalization, which are expected to display poor electronic conductivity; and functionalized with a carbene covalent functionalization, which are expected to display pristine-like conductivity. Measurements were taken via four-point
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Books on the topic "Temperature conductivity"

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Levine, Murray D. Moored temperature and conductivity observations during AIWEX. College of Oceanography, Oregon State University, 1986.

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Zhamaletdinov, Abdullkhay A., and Yury L. Rebetsky, eds. The Study of Continental Lithosphere Electrical Conductivity, Temperature and Rheology. Springer International Publishing, 2019. http://dx.doi.org/10.1007/978-3-030-35906-5.

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Cole, Michael. Structure-conductivity-temperature relationships in calcium and other divalent polymer electrolytes. Leicester Polytechnic, 1989.

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Center, Langley Research, ed. Effective thermal conductivity of high temperature insulations for reusable launch vehicles. National Aeronautics and Space Administration, Langley Research Center, 1999.

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C, Gillies Daniel, Lehoczky S. L, and United States. National Aeronautics and Space Administration., eds. Fluctuations of thermal conductivity and morphological stability. National Aeronautics and Space Administration, 1995.

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L, Riscassi Ami. Flow velocity, water temperature, and conductivity in Shark River Slough, Everglades National Park, Florida: August 2001-June 2002. U.S. Dept. of the Interior, U.S. Geological Survey, 2003.

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Rule, D. L. Low-temperature thermal conductivity of composites: Alumina fiber/epoxy and alumina fiber/PEEK. U.S. Dept. of Commerce, National Bureau of Standards, 1989.

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Rule, D. L. Low-temperature thermal conductivity of composites: Alumina fiber/epoxy and alumina fiber/PEEK. U.S. Dept. of Commerce, National Bureau of Standards, 1989.

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Rule, D. L. Low-temperature thermal conductivity of composites: Alumina fiber/epoxy and alumina fiber/PEEK. U.S. Dept. of Commerce, National Bureau of Standards, 1989.

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G, Hust J., and United States. National Bureau of Standards, eds. An Automated high-temperature guarded-hot-plate apparatus for measuring apparent thermal conductivity. U.S. Dept. of Commerce, National Bureau of Standards, 1988.

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Book chapters on the topic "Temperature conductivity"

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Salmon, D. R. "The NPL High Temperature Guarded Hot-Plate." In Thermal Conductivity 23. CRC Press, 2021. http://dx.doi.org/10.1201/9781003210719-45.

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Bogaard, Ronald H., and C. Y. Ho. "Thermal Conductivity of Gallium Arsenide at High Temperature." In Thermal Conductivity 20. Springer US, 1989. http://dx.doi.org/10.1007/978-1-4613-0761-7_15.

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Harrington, Gregory J. K., and Greg E. Hilmas. "Thermal Conductivity of ZrB2and HfB2." In Ultra-High Temperature Ceramics. John Wiley & Sons, Inc, 2014. http://dx.doi.org/10.1002/9781118700853.ch9.

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Tye, R. P., A. O. Desjarlais, and S. E. Smith. "The Thermal Transmission Properties of High Temperature Thermal Insulation Materials." In Thermal Conductivity 18. Springer US, 1985. http://dx.doi.org/10.1007/978-1-4684-4916-7_32.

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Kim, Hayoung, and Peter S. Riseborough. "Frequency Dependent Conductivity of High Tc Oxide Superconductors." In High-Temperature Superconductivity. Springer US, 1991. http://dx.doi.org/10.1007/978-1-4615-3338-2_13.

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Reiss, H., and B. Ziegenbein. "Temperature-Dependent Extinction Coefficients and Solid Thermal Conductivities of Glass Fiber Insulations." In Thermal Conductivity 18. Springer US, 1985. http://dx.doi.org/10.1007/978-1-4684-4916-7_40.

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Belle, J., and R. M. Berman. "The High-Temperature Ex-Reactor Thermal Conductivity of Thoria and Thoria-Urania." In Thermal Conductivity 18. Springer US, 1985. http://dx.doi.org/10.1007/978-1-4684-4916-7_45.

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Roth, E. P. "Measurement of Thermal Conductivity from High Temperature Pulse Diffusivity and Calorimetry Measurements." In Thermal Conductivity 18. Springer US, 1985. http://dx.doi.org/10.1007/978-1-4684-4916-7_48.

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Czarnetzki, W., and W. Roetzel. "Measurement of Thermal Diffusivity and Conductivity of a Multi-Layer Specimen with Temperature Oscillation Techniques." In Thermal Conductivity 23. CRC Press, 2021. http://dx.doi.org/10.1201/9781003210719-51.

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Degiovanni, Alain, Gilbert Sinicki, and Michel Laurent. "Heat Pulse Thermal Diffusivity Measurements-Thermal Properties Temperature Dependence and Non-Uniformity of the Pulse Heating." In Thermal Conductivity 18. Springer US, 1985. http://dx.doi.org/10.1007/978-1-4684-4916-7_50.

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Conference papers on the topic "Temperature conductivity"

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Akasaka, Shunsuke, Koji Terumoto, and Isaku Kanno. "Temperature Dependence of Accuracy of Thermal Conductivity Hydrogen Sensor." In 2024 IEEE SENSORS. IEEE, 2024. https://doi.org/10.1109/sensors60989.2024.10784458.

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Dattatreya, Sneha, Manoj Sain, Archit Khurana, K. Jena, and Gaurav Chatterjee. "Enhanced Soil Nutrient-NPK Measurement Using Electrical Conductivity and Temperature." In 2024 International Conference on Communication, Control, and Intelligent Systems (CCIS). IEEE, 2024. https://doi.org/10.1109/ccis63231.2024.10931890.

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Chen, Xinkang, and Sumeet Kumar Gupta. "Modeling of Via Resistance considering Spatially-Resolved Conductivity and Temperature-Dependence." In 2024 IEEE International Interconnect Technology Conference (IITC). IEEE, 2024. http://dx.doi.org/10.1109/iitc61274.2024.10732223.

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Kainat, Niba, and Vincenzo Gulizzi. "Flow with Temperature Dependent Viscosity and Thermal Conductivity Over Radiative Needles." In IAF Microgravity Sciences and Processes Symposium, Held at the 75th International Astronautical Congress (IAC 2024). International Astronautical Federation (IAF), 2024. https://doi.org/10.52202/078356-0011.

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Bourgeois, Olivier, Thierry Fournier, and Jacques Chaussy. "Thermal Conductivity of Silicon Nanowires." In LOW TEMPERATURE PHYSICS: 24th International Conference on Low Temperature Physics - LT24. AIP, 2006. http://dx.doi.org/10.1063/1.2355196.

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Bacon, Sasha. "Relationship Between Conductivity and Temperature in ADMX RF Cavities." In Relationship Between Conductivity and Temperature in ADMX RF Cavities. US DOE, 2023. http://dx.doi.org/10.2172/1996531.

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SONG, ZHUORUI, TYSON WATKINS, and HENG BAN. "Measurement of Thermal Diffusivity at High Temperature by Laser Flash Method." In Thermal Conductivity 33/Thermal Expansion 21. DEStech Publications, Inc., 2019. http://dx.doi.org/10.12783/tc33-te21/30334.

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XIE, YANGSU, MENG HAN, and XINWEI WANG. "Directional Selective Thermal Diffusivity Jump by Temperature in High Purity Graphene Paper." In Thermal Conductivity 33/Thermal Expansion 21. DEStech Publications, Inc., 2019. http://dx.doi.org/10.12783/tc33-te21/30346.

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Löfwander, Tomas, and Mikael Fogelström. "Low-Temperature Thermal Conductivity of Superconductors With Gap Nodes." In LOW TEMPERATURE PHYSICS: 24th International Conference on Low Temperature Physics - LT24. AIP, 2006. http://dx.doi.org/10.1063/1.2354838.

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Sandu, V., T. Katuwal, B. J. Taylor, M. B. Maple, and C. C. Almasan. "Scaling of Conductivity through the Critical Temperature in Y0.54Pr0.46Ba2Cu3O7." In LOW TEMPERATURE PHYSICS: 24th International Conference on Low Temperature Physics - LT24. AIP, 2006. http://dx.doi.org/10.1063/1.2354954.

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Reports on the topic "Temperature conductivity"

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Rule, D. L., and L. L. Sparks. Low-temperature thermal conductivity of composites :. National Institute of Standards and Technology, 1989. http://dx.doi.org/10.6028/nist.ir.89-3914.

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Hunter, J. A., P. J. Kurfurst, and S. M. Birk. Water - Column Temperature, Salinity and Conductivity Measurements. Natural Resources Canada/ESS/Scientific and Technical Publishing Services, 1991. http://dx.doi.org/10.4095/132224.

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Snead, L. L., and T. D. Burchell. Thermal conductivity degradation of graphites irradiated at low temperature. Office of Scientific and Technical Information (OSTI), 1995. http://dx.doi.org/10.2172/114941.

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Lancaster, Richard W. Expendable Conductivity, Temperature, and Depth System (XCTD) development Program. Defense Technical Information Center, 1988. http://dx.doi.org/10.21236/ada192182.

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Zhao, Y., and H. Wang. Experiment of electrical conductivity at low temperature (preliminary measurement). Office of Scientific and Technical Information (OSTI), 1998. http://dx.doi.org/10.2172/661634.

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Farruggia, Guy J. A Multi-Use Low-Cost, Integrated, Conductivity/Temperature Sensor. Defense Technical Information Center, 2001. http://dx.doi.org/10.21236/ada627722.

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Savrun, E., C. Toy, and M. Sarikaya. High Thermal Conductivity AlN Packages for High-Temperature Electronics. Defense Technical Information Center, 1998. http://dx.doi.org/10.21236/ada359647.

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N.S. Brodsky. Pretest Caluculations of Temperature Changes for Field Thermal Conductivity Tests. Office of Scientific and Technical Information (OSTI), 2002. http://dx.doi.org/10.2172/899935.

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Yoshikawa, S. Temperature distribution of a tokamak with a constant heat conductivity. Office of Scientific and Technical Information (OSTI), 1990. http://dx.doi.org/10.2172/6914342.

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Eric D. Wachsman. STABLE HIGH CONDUCTIVITY BILAYERED ELECTROLYTES FOR LOW TEMPERATURE SOLID OXIDE FUEL CELLS. Office of Scientific and Technical Information (OSTI), 2000. http://dx.doi.org/10.2172/809195.

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