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1

Kasirga, T. Serkan. Thermal Conductivity Measurements in Atomically Thin Materials and Devices. Singapore: Springer Singapore, 2020. http://dx.doi.org/10.1007/978-981-15-5348-6.

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2

Yung, Bee Lang. Measurements of the thermal conductivity of liquid bromine and chlorine. Birmingham: University of Birmingham, 1986.

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3

Hust, J. G. Round-robin measurements of the apparent thermal conductivity of two refractory insulation materials, using high-temperature guarded-hot-plate apparatus. [Washington, D.C.]: U.S. Dept. of Commerce, National Bureau of Standards, 1988.

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4

Hust, J. G. Round-robin measurements of the apparent thermal conductivity of two refractory insulation materials, using high-temperature guarded-hot-plate apparatus. [Washington, D.C.]: U.S. Dept. of Commerce, National Bureau of Standards, 1988.

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5

Hust, J. G. Round-robin measurements of the apparent thermal conductivity of two refractory insulation materials, using high-temperature guarded-hot-plate apparatus. [Washington, D.C.]: U.S. Dept. of Commerce, National Bureau of Standards, 1988.

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6

Hust, J. G. Round-robin measurements of the apparent thermal conductivity of two refractory insulation materials, using high-temperature guarded-hot-plate apparatus. [Washington, D.C.]: U.S. Dept. of Commerce, National Bureau of Standards, 1988.

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7

Rabinovich, V. A. Viscosity and thermal conductivity of individual substances in the critical region. New York: Begell House, 1996.

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8

Roder, H. M. Experimental thermal conductivity values for mixtures of methane and ethane. [Washington, D.C.]: U.S. Dept. of Commerce, National Bureau of Standards, 1985.

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9

Roder, H. M. Experimental thermal conductivity values for mixtures of methane and ethane. [Washington, D.C.]: U.S. Dept. of Commerce, National Bureau of Standards, 1985.

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10

Thermal nanosystems and nanomaterials. Heidelberg [Germany]: Springer, 2009.

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11

Hillard, G. Barry. Experimental measurement of the plasma conductivity of Z93 and Z93P thermal control paint. [Washington, DC: National Aeronautics and Space Administration, 1993.

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12

Hust, J. G. Interlaboratory comparison of two types of line-source thermal- conductivity apparatus measuring five insulating materials. [Washington, D.C.]: U.S. Dept. of Commerce, National Institute of Standards and Technology, 1989.

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13

Jemsek, J. In-situ measurement of thermal conductivity using the continuous-heating line source method and WHOI outrigged probe. Woods Hole, Mass: Woods Hole Oceanographic Institution, 1985.

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14

Jemsek, J. In-situ measurement of thermal conductivity using the continuous-heating line source method and WHOI outrigged probe. Woods Hole, Mass: Woods Hole Oceanographic Institution, 1985.

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15

Smith, Andrew Paul. Application of flash methods to measurement of the thermal conductivity of heterogeneous and non-planar materials. Salford: University of Salford, 1995.

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16

Scott, Elaine P. Optimal experimental designs for the estimation of thermal properties of composite materials: An annual report ... to NASA Langley Research Center ... Blacksburg, VA: Dept. of Mechanical Engineering, Virgina Polytechnic Institute and State University, 1994.

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17

Chandra, G. Sachin. Measurement of thermal conductivity of liquids at temperatures and pressures along the saturation line using a steady state a.c. hot wire technique. Birmingham: University of Birmingham, 1990.

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18

Kasirga, T. Serkan. Thermal Conductivity Measurements in Atomically Thin Materials and Devices. Springer, 2020.

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19

A, Lipa John, and United States. National Aeronautics and Space Administration., eds. High accuracy thermal conductivity measurements near the lambda transition of helium with very high temperature resolution: Final report for NASA-FIR grant #NAG 2-276. [Washington, DC: National Aeronautics and Space Administration, 1989.

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20

1938-, Smith David R., and United States. National Bureau of Standards., eds. Round-robin measurements of the apparent thermal conductivity of two refractory insulation materials, using high-temperature guarded-hot-plate apparatus. [Washington, D.C.]: U.S. Dept. of Commerce, National Bureau of Standards, 1988.

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21

Allen, Michael P., and Dominic J. Tildesley. Nonequilibrium molecular dynamics. Oxford University Press, 2017. http://dx.doi.org/10.1093/oso/9780198803195.003.0011.

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This chapter explains some of the fundamental issues associated with applying perturbations to a molecular dynamics simulation, along with practical details of methods for studying systems out of equilibrium. The main emphasis is on fluid flow and viscosity measurements. Spatially homogeneous perturbations are described to study shear and extensional flow. Non-equilibrium methods are applied to the study of heat flow and the calculation of the thermal conductivity. Issues of thermostatting, and the modelling of surface-fluid interactions for inhomogeneous systems, are discussed. The measurement of free energy changes through non-equilibrium work expressions such as those of Jarzynski and Crooks is also explained.
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22

Wei, J. Carbon fiber thermal conductivity measurement and analysis. 1989.

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23

Imaging Heat And Mass Transfer Processes Visualization And Analysis. Springer, 2012.

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24

Volz, Sebastian. Thermal Nanosystems and Nanomaterials. Springer, 2010.

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25

Volz, Sebastian. Thermal Nanosystems and Nanomaterials. Springer, 2012.

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26

A, Moncman Deborah, and United States. National Aeronautics and Space Administration., eds. Optimal experimental designs for the estimation of thermal properties of composite materials: An annual report ... to NASA Langley Research Center ... Blacksburg, VA: Dept. of Mechanical Engineering, Virgina Polytechnic Institute and State University, 1994.

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27

Standardization, International Organization for, and Versailles Project on Advanced Materials and Standards., eds. Measurement of thermal conductivity of thin films on silicon substrates =: Mesurage de la conductivit́́́́́e thermique des films minces sur substrat de silicium. Geneva, Switzerland: International Organization for Standardization, 2002.

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