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Journal articles on the topic 'Temperature-Dependent Materials'

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1

Chavoshi, Saeed Zare, and Shuozhi Xu. "Temperature-dependent nanoindentation response of materials." MRS Communications 8, no. 01 (2018): 15–28. http://dx.doi.org/10.1557/mrc.2018.19.

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2

Cheng, Lin, Fan Wu, and Kun Huang. "Tunable Radiation Patterns on Temperature-Dependent Materials." Photonics 11, no. 7 (2024): 646. http://dx.doi.org/10.3390/photonics11070646.

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The utilization of optical antennas for active control of far-field radiation at the subwavelength scale is crucial in various scientific and technological applications. We propose a thermally tunable disk design of indium tin oxide (ITO) and aluminum gallium nitride (Al0.18Ga0.82As), enabling a switch between absorption and scattering. Furthermore, the control of far-field radiation pattern can be easily realized by combining ITO and Al0.18Ga0.82As to enhance or suppress emission. Our results demonstrate that hybrid structures can be dynamically tuned with temperature variations. In the propo
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3

Song, Yanning, Shoufeng Yang, Peter Y. Zavalij, and M. Stanley Whittingham. "Temperature-dependent properties of FePO4 cathode materials." Materials Research Bulletin 37, no. 7 (2002): 1249–57. http://dx.doi.org/10.1016/s0025-5408(02)00771-7.

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4

Hui, Si, Wenpei Gao, Xu Lu, et al. "Engineering Temperature-Dependent Carrier Concentration in Bulk Composite Materials via Temperature-Dependent Fermi Level Offset." Advanced Energy Materials 8, no. 3 (2017): 1701623. http://dx.doi.org/10.1002/aenm.201701623.

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5

Noda, Naotake. "Thermal Stresses in Materials with Temperature-Dependent Properties." Applied Mechanics Reviews 44, no. 9 (1991): 383–97. http://dx.doi.org/10.1115/1.3119511.

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The present review on thermal stresses in materials with temperature-dependent properties focuses on papers published after 1980. The thermal and mechanical properties in materials subjected to thermal loads due to high temperature, high gradient temperature, and cyclical changes of temperature are dependent on temperature. The main theme of the thermoelastic problems in materials and structures with temperature-dependent material properties is to establish analytical procedures to solve the governing differential equations. In the thermo-inelastic problems, however, we must perform more accur
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6

Lipatov, A. A., and Yu L. Chigirinskii. "Tool’s surface temperature when cutting materials with temperature-dependent thermal conductivity." Russian Engineering Research 33, no. 2 (2013): 114–16. http://dx.doi.org/10.3103/s1068798x13020081.

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7

Deshmukh, Sanchit, Eilam Yalon, Feifei Lian, et al. "Temperature-Dependent Contact Resistance to Nonvolatile Memory Materials." IEEE Transactions on Electron Devices 66, no. 9 (2019): 3816–21. http://dx.doi.org/10.1109/ted.2019.2929736.

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8

Bok, Jan, and Petr Schauer. "Apparatus for temperature-dependent cathodoluminescence characterization of materials." Measurement Science and Technology 25, no. 7 (2014): 075601. http://dx.doi.org/10.1088/0957-0233/25/7/075601.

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9

Zhang, Xuyao, Weiguo Li, Jiaxing Shao, et al. "Temperature dependent vacancy formation energy of metallic materials." Physica B: Condensed Matter 584 (May 2020): 412071. http://dx.doi.org/10.1016/j.physb.2020.412071.

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10

MATSUMOTO, Toshiro, Masataka TANAKA, and Artur GUZIK. "BEM for thermoelastic problems with temperature dependent materials." Proceedings of The Computational Mechanics Conference 2004.17 (2004): 299–300. http://dx.doi.org/10.1299/jsmecmd.2004.17.299.

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11

Longhitano, Maria Roberta, Fabien Sixdenier, Riccardo Scorretti, Laurent Krähenbühl, and Christophe Geuzaine. "Temperature-dependent hysteresis model for soft magnetic materials." COMPEL - The international journal for computation and mathematics in electrical and electronic engineering 38, no. 5 (2019): 1595–613. http://dx.doi.org/10.1108/compel-12-2018-0535.

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Purpose To understand the behavior of the magnetization processes in ferromagnetic materials in function of temperature, a temperature-dependent hysteresis model is necessary. This study aims to investigate how temperature can be accounted for in the energy-based hysteresis model, via an appropriate parameter identification and interpolation procedure. Design/methodology/approach The hysteresis model used for simulating the material response is energy-consistent and relies on thermodynamic principles. The material parameters have been identified by unidirectional alternating measurements, and
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12

Llera-Hurlburt, D., A. S. Dalton, and E. G. Seebauer. "Temperature-dependent surface diffusion parameters on amorphous materials." Surface Science 504 (April 2002): 244–52. http://dx.doi.org/10.1016/s0039-6028(02)01106-8.

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13

Bian, Q., and M. Niewczas. "Model for temperature-dependent magnetization of nanocrystalline materials." Journal of Applied Physics 117, no. 1 (2015): 013909. http://dx.doi.org/10.1063/1.4905543.

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14

Marchant, T. R., and A. H. Pincombe. "Microwave heating of materials with temperature-dependent wavespeed." Wave Motion 19, no. 1 (1994): 67–81. http://dx.doi.org/10.1016/0165-2125(94)90013-2.

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15

Li, Weiguo, Ruzhuan Wang, Dingyu Li, and Daining Fang. "A Model of Temperature-Dependent Young's Modulus for Ultrahigh Temperature Ceramics." Physics Research International 2011 (January 18, 2011): 1–3. http://dx.doi.org/10.1155/2011/791545.

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Based on the different sensitivities of material properties to temperature between ultrahigh temperature ceramics (UHTCs) and traditional ceramics, the original empirical formula of temperature-dependent Young's modulus of ceramic materials is unable to describe the temperature dependence of Young's modulus of UHTCs which are used as thermal protection materials. In this paper, a characterization applied to Young's modulus of UHTC materials under high temperature which is revised from the original empirical formula is established. The applicable temperature range of the characterization extend
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16

Teng, Chong, Wenbin Yu, and Ming Y. Chen. "Variational asymptotic homogenization of temperature-dependent heterogeneous materials under finite temperature changes." International Journal of Solids and Structures 49, no. 18 (2012): 2439–49. http://dx.doi.org/10.1016/j.ijsolstr.2012.05.006.

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17

Zhang, Xun, Sheng Sun, Tao Xu, and TongYi Zhang. "Temperature dependent Grüneisen parameter." Science China Technological Sciences 62, no. 9 (2019): 1565–76. http://dx.doi.org/10.1007/s11431-019-9526-3.

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18

Feng, Xing, Jianwei Xiao, Bin Wen, et al. "Temperature-dependent hardness of zinc-blende structured covalent materials." Science China Materials 64, no. 9 (2021): 2280–88. http://dx.doi.org/10.1007/s40843-020-1620-4.

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19

Kou, Haibo, Yaowen Gao, Jiaxing Shao, Kaiyue Dou, and Nan Wang. "Temperature-porosity-dependent elastic modulus model for metallic materials." REVIEWS ON ADVANCED MATERIALS SCIENCE 61, no. 1 (2022): 769–77. http://dx.doi.org/10.1515/rams-2022-0270.

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Abstract Elastic modulus plays a key role in the application of porous metallic materials. However, to the best of our knowledge, few attempts have been made to model the simultaneous dependence of elastic modulus on temperature and porosity for metallic materials. The present article contributes to a rational temperature-porosity-dependent elastic modulus model for metallic materials with all parameters having definite physical significance. The model can well predict the elastic moduli of porous metallic materials, from extremely low temperature to ultrahigh temperature, and from dense mater
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20

Chung, Peter W., Kumar K. Tamma, and Raju R. Namburu. "Homogenization of Temperature-Dependent Thermal Conductivity in Composite Materials." Journal of Thermophysics and Heat Transfer 15, no. 1 (2001): 10–17. http://dx.doi.org/10.2514/2.6590.

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21

Kaczmarek, Anna M., Dolores Esquivel, Judith Ouwehand, Pascal Van Der Voort, Francisco J. Romero-Salguero, and Rik Van Deun. "Temperature dependent NIR emitting lanthanide-PMO/silica hybrid materials." Dalton Transactions 46, no. 24 (2017): 7878–87. http://dx.doi.org/10.1039/c7dt01620d.

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A mesoporous silica and a periodic mesoporous organosilica functionalized with dipyridyl-pyridazine were grafted with Nd<sup>3+</sup>, Er<sup>3+</sup>, and Yb<sup>3+</sup> complexes to obtain hybrid NIR emitting materials.
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22

Che, Kaikai, Chao Yuan, H. Jerry Qi, and Julien Meaud. "Viscoelastic multistable architected materials with temperature-dependent snapping sequence." Soft Matter 14, no. 13 (2018): 2492–99. http://dx.doi.org/10.1039/c8sm00217g.

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23

Ravindra, N. M., S. Abedrabbo, Wei Chen, F. M. Tong, A. K. Nanda, and A. C. Speranza. "Temperature-dependent emissivity of silicon-related materials and structures." IEEE Transactions on Semiconductor Manufacturing 11, no. 1 (1998): 30–39. http://dx.doi.org/10.1109/66.661282.

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24

Boehme, Bjoern, and Klaus-Juergen Wolter. "Study of temperature dependent properties of organic substrate materials." Microelectronics Reliability 48, no. 6 (2008): 876–80. http://dx.doi.org/10.1016/j.microrel.2008.03.023.

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25

Li, Weiguo, Haibo Kou, Xuyao Zhang, et al. "Temperature-dependent elastic modulus model for metallic bulk materials." Mechanics of Materials 139 (December 2019): 103194. http://dx.doi.org/10.1016/j.mechmat.2019.103194.

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26

Suvorova, J. V., N. G. Ohlson, and S. I. Alexeeva. "Temperature influence in the description of time-dependent materials." Materials & Design 24, no. 4 (2003): 299–304. http://dx.doi.org/10.1016/s0261-3069(02)00068-7.

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27

Nelson, S. O., and P. G. Bartley. "Measuring frequency- and temperature-dependent permittivities of food materials." IEEE Transactions on Instrumentation and Measurement 51, no. 4 (2002): 589–92. http://dx.doi.org/10.1109/tim.2002.802244.

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28

Šćepanović, Maja, Mirjana Grujić-Brojčin, Nenad Lazarević, and Zoran V. Popović. "Temperature-Dependent Raman Study of Nanostructured and Multifunctional Materials." physica status solidi (a) 216, no. 13 (2019): 1800763. http://dx.doi.org/10.1002/pssa.201800763.

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29

Silva, Luciano A., Eric M. Austin, and Daniel J. Inman. "Time-Varying Controller for Temperature-Dependent Viscoelasticity." Journal of Vibration and Acoustics 127, no. 3 (2005): 215–22. http://dx.doi.org/10.1115/1.1897740.

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There are internal-variable techniques that account for the frequency-dependent behavior of viscoelastic materials, but the temperature dependence of these materials has received much less attention. Two methods for designing controllers robust to temperature disturbances are given: (1) Modal reference adaptive control and (2) time-varying pole placement control. Examples that demonstrate the strengths and weaknesses of each are given. The results show that it is possible to achieve vibration reduction while simultaneously rejecting the effects of a temperature disturbance. This work shows tha
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30

Schurig, Sandra, Lucas Armster, Eric Steingruber, Sebastian Marx, and Wolfgang Sickenberger. "Temperaturabhängige Vermessung weicher Kontaktlinsen." Optometry & Contact Lenses 4, no. 1 (2023): 20–27. http://dx.doi.org/10.54352/dozv.dkor3596.

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Purpose. The study objective was to measure the tempera- ture-dependent change in the refractive index, base curve, and back vertex power of soft contact lenses. Material and Methods. For each material group according to ISO 18369-1 a representative soft contact lens brand was selected according to ISO 18369-1 (polymacon, nelfilcon A, ocufilcon D, balafilcon A, somofilcon A, lotrafilcon B). The parameters were measured in vitro at 20 °C and 35 °C. First, the refractive index was determined using the automatic refractometer (VariRef C, Schmidt + Haensch), followed by the base curve measurement
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31

Sutton, A. P. "Temperature-dependent interatomic forces." Philosophical Magazine A 60, no. 2 (1989): 147–59. http://dx.doi.org/10.1080/01418618908219278.

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32

Alden, Thomas H. "Temperature-dependent strain rate discontinuity." Materials Science and Engineering: A 103, no. 2 (1988): 213–21. http://dx.doi.org/10.1016/0025-5416(88)90511-3.

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33

Hua, Yuyang, Shuo Li, Xiaofeng Wang, and Chunqing He. "Novel method and instrument for temperature-dependent tensile test of metallic materials without thermometers." Review of Scientific Instruments 93, no. 11 (2022): 115104. http://dx.doi.org/10.1063/5.0107213.

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A novel method for measuring temperature and conducting tensile tests of metallic wires at elevated temperatures is presented. Ohmic heating is used to elevate the sample temperature with a uniform distribution, which could vary from room temperature to its melting point. The temperatures of the wires in steady states are determined by using a heat transfer model without measuring directly by thermometers, which reduces the error introduced by contact temperature measurement or optical pyrometers. This technique for temperature measurement can be applied to measuring temperature-dependent elec
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34

He, Yi, Weiguo Li, Mengqing Yang, et al. "Modeling of temperature-dependent ultimate tensile strength for metallic materials." Journal of Constructional Steel Research 191 (April 2022): 107184. http://dx.doi.org/10.1016/j.jcsr.2022.107184.

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35

Govindaiah, T. N. "Temperature-dependent Anisotropic Nano-Molecular Orientations of Liquid Crystalline Materials." Molecular Crystals and Liquid Crystals 626, no. 1 (2016): 151–59. http://dx.doi.org/10.1080/15421406.2015.1106296.

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36

YOSHIDA, Keigo, Tadashige IKEDA, and Tetsuhiko UEDA. "Constitutive Model of Ferroelectric Materials for Expressing Temperature Dependent Property." TRANSACTIONS OF THE JAPAN SOCIETY OF MECHANICAL ENGINEERS Series A 78, no. 791 (2012): 1079–89. http://dx.doi.org/10.1299/kikaia.78.1079.

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37

Bozorg-Grayeli, Elah, John P. Reifenberg, Matthew A. Panzer, Jeremy A. Rowlette, and Kenneth E. Goodson. "Temperature-Dependent Thermal Properties of Phase-Change Memory Electrode Materials." IEEE Electron Device Letters 32, no. 9 (2011): 1281–83. http://dx.doi.org/10.1109/led.2011.2158796.

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38

Ren, F., E. D. Case, J. E. Ni, et al. "Temperature-dependent elastic moduli of lead telluride-based thermoelectric materials." Philosophical Magazine 89, no. 2 (2009): 143–67. http://dx.doi.org/10.1080/14786430802607119.

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39

Zhang, Xuyao, Weiguo Li, Haibo Kou, et al. "Temperature and size dependent surface energy of metallic nano-materials." Journal of Applied Physics 125, no. 18 (2019): 185105. http://dx.doi.org/10.1063/1.5090301.

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40

S. O. Nelson and P. G. Bartley Jr. "MEASURING FREQUENCY- AND TEMPERATURE-DEPENDENT DIELECTRIC PROPERTIES OF FOOD MATERIALS." Transactions of the ASAE 43, no. 6 (2000): 1733–36. http://dx.doi.org/10.13031/2013.3075.

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41

Sah, Sanjay, and Jayasimha Atulasimha. "Energy based model for temperature dependent behavior of ferromagnetic materials." Journal of Magnetism and Magnetic Materials 426 (March 2017): 654–57. http://dx.doi.org/10.1016/j.jmmm.2016.10.152.

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42

Curry, John F., Adam R. Hinkle, Tomas F. Babuska, et al. "Atomistic Origins of Temperature-Dependent Shear Strength in 2D Materials." ACS Applied Nano Materials 1, no. 10 (2018): 5401–7. http://dx.doi.org/10.1021/acsanm.8b01454.

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43

Borino, Guido. "Consistent shakedown theorems for materials with temperature dependent yield functions." International Journal of Solids and Structures 37, no. 22 (2000): 3121–47. http://dx.doi.org/10.1016/s0020-7683(99)00114-6.

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44

Smedskjaer, Morten M., John C. Mauro, Sabyasachi Sen, and Yuanzheng Yue. "Quantitative Design of Glassy Materials Using Temperature-Dependent Constraint Theory." Chemistry of Materials 22, no. 18 (2010): 5358–65. http://dx.doi.org/10.1021/cm1016799.

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45

Tzavaras, A. E. "Shearing of materials exhibiting thermal softening or temperature dependent viscosity." Quarterly of Applied Mathematics 44, no. 1 (1986): 1–12. http://dx.doi.org/10.1090/qam/840438.

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46

Ayappa, K. G., H. T. Davis, E. A. Davis, and J. Gordon. "Analysis of microwave heating of materials with temperature-dependent properties." AIChE Journal 37, no. 3 (1991): 313–22. http://dx.doi.org/10.1002/aic.690370302.

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47

Li, Weiguo, Xianhe Zhang, Haibo Kou, Ruzhuan Wang, and Daining Fang. "Theoretical prediction of temperature dependent yield strength for metallic materials." International Journal of Mechanical Sciences 105 (January 2016): 273–78. http://dx.doi.org/10.1016/j.ijmecsci.2015.11.017.

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48

Gan, Ming, and Vikas Tomar. "Scale and temperature dependent creep modeling and experiments in materials." JOM 63, no. 9 (2011): 27–34. http://dx.doi.org/10.1007/s11837-011-0154-7.

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49

Kou, Hai Bo, Yao Wen Gao, Jia Xing Shao, Kai Yue Dou, and Jian Zhang. "Temperature-strain rate-dependent flow stress model of ceramic materials." Journal of the Ceramic Society of Japan 132, no. 5 (2024): 197–204. http://dx.doi.org/10.2109/jcersj2.23199.

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50

Simonelli, Laura, Shehab Ali, Wojciech Olszewski, Carlo Marini, and Naurang Saini. "Temperature Dependent EXAFS to Address Functional Mechanisms in Battery Materials." ECS Meeting Abstracts MA2023-02, no. 1 (2023): 90. http://dx.doi.org/10.1149/ma2023-02190mtgabs.

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Increasing the contribution of renewable energy sources is necessary to meet the fast increase of global energy needs and match the CO2 reduction targets. In order to address these challenges, intensive research efforts are ongoing both in energy harvesting and storage technologies such as solar panels, fuel cells, supercapacitors and batteries. The latter are required to match the energy demand and supply; in fact, batteries are by far the most ubiquitous energy storage technology currently employed. Synchrotron x-ray spectroscopies have played a key role in the continuous development and bre
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