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Thermal Energy Storage Technologies

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Thermal Energy Storage Technologies ( thermal-energy-storage-technologies )

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Table 2. Thermophysical properties of sensible storage media (adapted from [5]). Calculation of volumetric and gravimetric storage densities assume a temperature differential of 350°C. Storage Medium Specific Heat (kJ/kg-K) Density (kg/m3) Temperature Range (°C) Cold Hot Gravimetric Storage Density (kJ/kg) Volumetric Storage Density (MJ/m3) Concrete Sintered bauxite particles NaCI Cast iron Cast steel Silica fire bricks Magnesia fire bricks Graphite Aluminum oxide Slag Nitrate salts (ex. KNO3-0.46NaNO3) Therminol VP-1 ® Silicone oil Carbonate salts Caloria HT-43 ® Sodium liquid metal Na-0.79K metal eutectic Hydroxide salts (ex. NaOH) Silicon 0.9 1.1 0.9 0.6 0.6 1 1.2 1.9 1.3 0.84 1.6 2.5 2.1 1.8 2.8 1.3 1.1 2.1 Solids 2200 200 400 315 693 2000 400 1000 385 770 2160 200 500 315 680 7200 200 400 210 1512 7800 200 700 210 1638 1820 200 700 350 637 3000 200 1200 420 1260 1700 500 850 665 1131 4000 200 700 455 1820 2700 200 700 294 794 Liquids 1815 300 600 560 1016 750 300 400 875 656 900 300 400 735 662 2100 450 850 630 1323 690 150 316 980 676 960 316 700 455 437 900 300 700 385 347 1700 350 1100 735 1250 0.71 2300 1900 2400 250 575 Commercial CSP plants that employ sensible thermal storage with over 1 GWh of storage have been deployed worldwide. For comparison, Figure 3 shows the total number of large-scale battery demonstration facilities in the United States at the end of 2017 along with two CSP plants. Each CSP plant provides more energy storage capacity than all ~100 PV demonstration facilities combined. 5

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