A kind of solid-solid composite phase change material with high stability and preparation method thereof
A composite phase change material, high stability technology, applied in heat exchange materials, chemical instruments and methods, etc., can solve the problems of low heat storage/release rate, easy leakage in molten state, etc., to achieve simple operation and easy availability of raw materials , the effect of high stability
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Embodiment 1
[0045] The high stability solid-solid composite phase change material described in this example was prepared according to the following formula and steps.
[0046] Step 1, preparation of double-terminal aldehyde group polyethylene glycol aqueous solution:
[0047] The preparation mechanism is as figure 1 As shown, the specific operation process is as follows:
[0048]2.50mmol of polyethylene glycol with a molar mass of 600, 6.00mmol of p-formylbenzoic acid, 7.50mmol of 1-(3-dimethylaminopropyl)-3-ethylcarbodiimide hydrochloride and 7.50mmol of pyridine Dissolved in 250ml of dichloromethane successively, stirred at room temperature for 48 hours, removed the dichloromethane by rotary evaporation, washed 5 times with glacial ether, and vacuum-dried at 25°C for 12 hours to obtain double-terminal aldehyde polyethylene glycol ; Dissolve double-ended aldehyde-based polyethylene glycol into deionized water to make 60wt% double-ended aldehyde-based polyethylene glycol aqueous solutio...
Embodiment 2
[0056] Step 1, preparation of double-terminal aldehyde group polyethylene glycol aqueous solution:
[0057] 2.50mmol of polyethylene glycol with a molar mass of 2000, 7.50mmol p-formylbenzoic acid, 7.50mmol1-(3-dimethylaminopropyl)-3-ethylcarbodiimide hydrochloride and 7.50mmol pyridine Dissolved in 250ml of dichloromethane successively, stirred at room temperature for 48 hours, removed the dichloromethane by rotary evaporation, washed 5 times with glacial ether, and vacuum-dried at 25°C for 12 hours to obtain double-terminal aldehyde polyethylene glycol ; Dissolve double-ended aldehyde-based polyethylene glycol into deionized water to make 50wt% double-ended aldehyde-based polyethylene glycol aqueous solution for subsequent use.
[0058] Step 2, prepare chitosan solution:
[0059] Weigh 1.2g of chitosan and dissolve it into a mixed solution containing 99.5ml of deionized water and 0.5ml of acetic acid to prepare a chitosan solution for subsequent use.
[0060] Step 3, addit...
Embodiment 3
[0066] Step 1, preparation of double-terminal aldehyde group polyethylene glycol aqueous solution:
[0067] 2.50mmol of polyethylene glycol with a molar mass of 4000, 10.00mmol p-formylbenzoic acid, 7.50mmol1-(3-dimethylaminopropyl)-3-ethylcarbodiimide hydrochloride and 7.50mmol pyridine Dissolved in 250ml of dichloromethane successively, stirred at room temperature for 48 hours, removed the dichloromethane by rotary evaporation, washed 5 times with glacial ether, and vacuum-dried at 25°C for 12 hours to obtain double-terminal aldehyde polyethylene glycol ; Dissolve double-ended aldehyde-based polyethylene glycol into deionized water to make 40wt% double-ended aldehyde-based polyethylene glycol aqueous solution for subsequent use.
[0068] Step 2, prepare chitosan solution:
[0069] Weigh 0.35g of chitosan and dissolve it into a solution containing 99.5ml and 0.5ml of acetic acid to prepare a chitosan solution for subsequent use.
[0070] Step 3, addition of inorganic framew...
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