167
References
1. Dincer I, Rosen MA (2011) Thermal energy storage: systems and applications.2nd edn. Wiley,
Chichester
2. International Energy Agency (2014) Technology roadmap: solar thermal electricity—2014
edition. http://www.iea.org. Accessed 29 June 2018
3. Kalaiselvam S, Parameshwaran R (2014) Thermal energy storage technologies for sustainability: systems design, assessment and applications. Elsevier, Cambridge
4. Hyman LB (2011) Sustainable thermal storage systems: planning, design, and operations.
McGraw-Hill, New York
5. Tian Y, Zhao CY (2013) A review of solar collectors and thermal energy storage in solar thermal applications. Appl Energy 104:538–553. https://doi.org/10.1016/j.apenergy.2012.11.051
6. ASTM International (2011) ASTM E1269–11: standard test method for determining
specific heat capacity by differential scanning calorimetry. ASTM International, West
Conshohocken, PA
7. Zhao CY, Wu ZG (2011) Thermal property characterization of a low melting-temperature
ternary nitrate salt mixture for thermal energy storage systems. Sol Energy Mater Sol Cells
95(12):3341-3346. https://doi.org/10.1016/j.solmat.2011.07.029
8. Kenisarin MM (2010) High-temperature phase change materials for thermal energy storage.
Renew Sust Energ Rev 14(3):955–970. https://doi.org/10.1016/j.rser.2009.11.011
9. Andreu-Cabedo P, Mondragon R, Hernandez L et al (2014) Increment of specific heat capacity of solar salt with SiO2 nanoparticles. Nanoscale Res Lett 9(1):582. https://doi.org/10.118
6/1556- 276X- 9- 582
10. Chieruzzi M, Cerritelli GF, Miliozzi A et al (2013) Effect of nanoparticles on heat capacity
of nanofluids based on molten salts as PCM for thermal energy storage. Nanoscale Res Lett
8:1–9. https://doi.org/10.1186/1556- 276X- 8- 448
11. Dudda B, Shin D (2013) Effect of nanoparticle dispersion on specific heat capacity of a binary
nitrate salt eutectic for concentrated solar power applications. Int J Therm Sci 69:37–42.
https://doi.org/10.1016/j.ijthermalsci.2013.02.003
12. Luo Y, Du X, Awad A et al (2017) Thermal energy storage enhancement of a binary molten salt via in-situ produced nanoparticles. Int J Heat Mass Transf 104:658–664. https://doi.
org/10.1016/j.ijheatmasstransfer.2016.09.004
13. Ho MX, Pan C (2014) Optimal concentration of alumina nanoparticles in molten Hitec
salt to maximize its specific heat capacity. Int J Heat Mass Transf 70:174–184. https://doi.
org/10.1016/j.ijheatmasstransfer.2013.10.078
14. Peng Q, Ding J, Wei X et al (2010) The preparation and properties of multi-component molten
salts. Appl Energy 87(9):2812–2817. https://doi.org/10.1016/j.apenergy.2009.06.022
15. Fernández AG, Ushak S, Galleguillos H, Pérez FJ (2015) Thermal characterisation of an innovative quaternary molten nitrate mixture for energy storage in CSP plants. Sol Energy Mater
Sol Cells 132:172–177. https://doi.org/10.1016/j.solmat.2014.08.020
16. Wang T, Mantha D, Reddy RG (2013) Novel low melting point quaternary eutectic system
for solar thermal energy storage. Appl Energy 102:1422–1429. https://doi.org/10.1016/j.
apenergy.2012.09.001
17. Araki N, Matsuura M, Makino A et al (1988) Measurement of thermophysical properties of
molten salts: mixtures of alkaline carbonate salts. Int J Thermophys 9(6):1071–1080
18. Jo B, Banerjee D (2015) Thermal properties measurement of binary carbonate salt mixtures for concentrating solar power plants. J Renew Sustain Energy 7(3):033121. https://doi.
org/10.1063/1.4922029
19. Liu M, Gomez JC, Turchi CS et al (2015) Determination of thermo-physical properties and
stability testing of high-temperature phase-change materials for CSP applications. Sol Energy
Mater Sol Cells 139:81–87. https://doi.org/10.1016/j.solmat.2015.03.014
Nanomaterials Enhanced Heat Storage in Molten Salts
References
1. Dincer I, Rosen MA (2011) Thermal energy storage: systems and applications.2nd edn. Wiley,
Chichester
2. International Energy Agency (2014) Technology roadmap: solar thermal electricity—2014
edition. http://www.iea.org. Accessed 29 June 2018
3. Kalaiselvam S, Parameshwaran R (2014) Thermal energy storage technologies for sustainability: systems design, assessment and applications. Elsevier, Cambridge
4. Hyman LB (2011) Sustainable thermal storage systems: planning, design, and operations.
McGraw-Hill, New York
5. Tian Y, Zhao CY (2013) A review of solar collectors and thermal energy storage in solar thermal applications. Appl Energy 104:538–553. https://doi.org/10.1016/j.apenergy.2012.11.051
6. ASTM International (2011) ASTM E1269–11: standard test method for determining
specific heat capacity by differential scanning calorimetry. ASTM International, West
Conshohocken, PA
7. Zhao CY, Wu ZG (2011) Thermal property characterization of a low melting-temperature
ternary nitrate salt mixture for thermal energy storage systems. Sol Energy Mater Sol Cells
95(12):3341-3346. https://doi.org/10.1016/j.solmat.2011.07.029
8. Kenisarin MM (2010) High-temperature phase change materials for thermal energy storage.
Renew Sust Energ Rev 14(3):955–970. https://doi.org/10.1016/j.rser.2009.11.011
9. Andreu-Cabedo P, Mondragon R, Hernandez L et al (2014) Increment of specific heat capacity of solar salt with SiO2 nanoparticles. Nanoscale Res Lett 9(1):582. https://doi.org/10.118
6/1556- 276X- 9- 582
10. Chieruzzi M, Cerritelli GF, Miliozzi A et al (2013) Effect of nanoparticles on heat capacity
of nanofluids based on molten salts as PCM for thermal energy storage. Nanoscale Res Lett
8:1–9. https://doi.org/10.1186/1556- 276X- 8- 448
11. Dudda B, Shin D (2013) Effect of nanoparticle dispersion on specific heat capacity of a binary
nitrate salt eutectic for concentrated solar power applications. Int J Therm Sci 69:37–42.
https://doi.org/10.1016/j.ijthermalsci.2013.02.003
12. Luo Y, Du X, Awad A et al (2017) Thermal energy storage enhancement of a binary molten salt via in-situ produced nanoparticles. Int J Heat Mass Transf 104:658–664. https://doi.
org/10.1016/j.ijheatmasstransfer.2016.09.004
13. Ho MX, Pan C (2014) Optimal concentration of alumina nanoparticles in molten Hitec
salt to maximize its specific heat capacity. Int J Heat Mass Transf 70:174–184. https://doi.
org/10.1016/j.ijheatmasstransfer.2013.10.078
14. Peng Q, Ding J, Wei X et al (2010) The preparation and properties of multi-component molten
salts. Appl Energy 87(9):2812–2817. https://doi.org/10.1016/j.apenergy.2009.06.022
15. Fernández AG, Ushak S, Galleguillos H, Pérez FJ (2015) Thermal characterisation of an innovative quaternary molten nitrate mixture for energy storage in CSP plants. Sol Energy Mater
Sol Cells 132:172–177. https://doi.org/10.1016/j.solmat.2014.08.020
16. Wang T, Mantha D, Reddy RG (2013) Novel low melting point quaternary eutectic system
for solar thermal energy storage. Appl Energy 102:1422–1429. https://doi.org/10.1016/j.
apenergy.2012.09.001
17. Araki N, Matsuura M, Makino A et al (1988) Measurement of thermophysical properties of
molten salts: mixtures of alkaline carbonate salts. Int J Thermophys 9(6):1071–1080
18. Jo B, Banerjee D (2015) Thermal properties measurement of binary carbonate salt mixtures for concentrating solar power plants. J Renew Sustain Energy 7(3):033121. https://doi.
org/10.1063/1.4922029
19. Liu M, Gomez JC, Turchi CS et al (2015) Determination of thermo-physical properties and
stability testing of high-temperature phase-change materials for CSP applications. Sol Energy
Mater Sol Cells 139:81–87. https://doi.org/10.1016/j.solmat.2015.03.014
Nanomaterials Enhanced Heat Storage in Molten Salts
