Inorganic phase change energy storage material and preparation method thereof
An energy storage material and inorganic phase change technology, applied in the field of phase change energy storage, can solve the problems that affect the large-scale use of phase change energy storage materials of sodium acetate trihydrate, difficult to control the phase change temperature, and phase separation, etc., and achieve excellent Temperature adjustment function, high latent heat value, easy packaging effect
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Embodiment 1
[0029] 1) Dissolve anhydrous sodium acetate or its hydrate and water in a molar ratio of 1:3 to prepare 50 g of sodium acetate solution;
[0030] 2) Take the functional additive and water to prepare 3g of functional additive liquid in a weight ratio of 1:2, including 0.5g of functional additive potassium chloride and 0.5g of sodium chloride;
[0031] 3) Add the functional additive liquid of step 2 to step 1 and stir continuously to make it evenly mixed;
[0032] 4) Add 0.53gNa respectively to the sample in step 3 2 B 4 o 7 10H 2 O, 2.12g of hydroxyethyl cellulose (CMC) was stirred continuously at 70°C to make it evenly mixed into a fluid state;
[0033] 5) Pour the phase change material obtained in step 4 into a container for packaging test.
[0034] The test results show that the phase transition temperature of this component is 54°C, the supercooling degree is 2.1°C, and the latent heat value is 230.4KJ / Kg.
Embodiment 2
[0036] 1) Dissolve anhydrous sodium acetate or its hydrate and water in a molar ratio of 1:3 to prepare 50 g of sodium acetate solution;
[0037] 2) Take the functional additive and water to prepare 6g of functional additive liquid according to the weight ratio of 1:2, including 1g of potassium chloride and 1g of sodium chloride as functional additive;
[0038] 3) Add the functional additive liquid of step 2 to step 1 and stir continuously to make it evenly mixed;
[0039] 4) Add 1.06gNa respectively to the sample in step 3 2 SiO 3 9H 2 O, 2.24g hydroxyethyl cellulose (CMC) was stirred continuously at 70°C to make it evenly mixed into a fluid state;
[0040] 5) Pour the phase change material obtained in step 4 into a container for packaging test. The test results show that the phase transition temperature of this component is 53°C, the supercooling degree is 1.8°C, and the latent heat value is 236.7KJ / Kg.
Embodiment 3
[0042] 1) Dissolve anhydrous sodium acetate or its hydrate and water in a molar ratio of 1:3 to prepare 50 g of sodium acetate solution;
[0043] 2) Take the functional additive and water to prepare 9g of functional additive liquid in a weight ratio of 1:2, including 2g of functional additive potassium chloride and 1g of sodium chloride;
[0044] 3) Add the functional additive liquid of step 2 to step 1 and stir continuously to make it evenly mixed;
[0045] 4) Add 1.06gNa respectively to the sample in step 3 2 B 4 o 7 10H 2 O, 2.36g of hydroxyethyl cellulose (CMC) was continuously stirred at 70°C to make it evenly mixed into a fluid state;
[0046] 5) Pour the phase change material obtained in step 4 into a container for packaging test. The test results show that the phase transition temperature of this component is 52°C, the supercooling degree is 2.3°C, and the latent heat value is 232.1KJ / Kg.
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