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微波熱解法制備氧化鈰過程的可視化研究

Visualization study on preparation of CeO2 by pyrolysis method via microwave heating

  • 摘要: 針對傳統液相法制備氧化鈰納米顆粒存在工藝流程復雜、高污水排放等問題,提出了一種高效綠色的實驗方案,以七水合氯化鈰為原料,采用微波射流熱解技術制備出了高純度氧化鈰納米顆粒。通過X射線衍射儀(XRD)、掃描電鏡(SEM)和能譜儀(EDS)分析手段對產物進行了表征,借助數值模擬手段可視化分析了各物理場、各組分分布。考察了不同工藝條件(熱解溫度、氣相速度、和添加檸檬酸)對實驗產物中殘余氯根含量和產物微觀形貌的影響。結果表明,熱解溫度達到500 ℃時便可獲得單相氧化鈰,溫度越高氧化鈰純度越高,顆粒形貌越規則。增大氣相入口速度導致產物殘余氯根增多,但有利于改善顆粒團聚。添加檸檬后氧化鈰從球狀顆粒逐漸破碎為伴有少量多孔結構的不規則形狀顆粒,顆粒比表面積增大。檸檬酸濃度大于0.1 mol?L?1后利于減少氯根含量。

     

    Abstract: Preparation of cerium oxide by conventional liquid phase method has the disadvantages of complex technological process and effluent discharge. Spray pyrolysis for making CeO2 has the disadvantages of nozzle plugging, and this traditional heating method produces a significant temperature gradient that results in unevenly heated reactants. To prevent the above issues, this study proposed an effective and environmental experimental scheme. Cerium chloride heptahydrate and deionized water were utilized for the raw material. High-purity nano cerium oxide particles were prepared by jet-flow pyrolysis technology via microwave heating. Combining the technology of microwave heating with jet-flow pyrolysis, whose Venturi reactor served as the primary piece of equipment, can improve the mixing of gas and liquid, increase chemical reaction efficiency, and reduce carbon emissions. It was a new effort in the area of pyrolysis. To visually analyze the distribution of each physical field and substance, numerical simulation was combined with x-ray diffraction, scanning electron microscopy, and energy dispersive spectroscopy to characterize the products. Effects of the various technological conditions (pyrolysis temperature, gas velocity, and adding citric acid) on the content of residual chloride element and microstructure of the product were examined. Results demonstrated that the temperature error between the experiment and simulation was below 20 ℃ with the condition of the same microwave power. When the pyrolysis temperature was at 500 ℃, CeO2 could be produced in a single phase, but the particle profile was unclear. The particles had sharp profiles when the temperature was 600 ℃. Nanoscale spherical CeO2 particles appeared when the average temperature reached 700 ℃. The results of the study’s simulations and experiments indicated that higher temperatures were associated with more regular microcosmic morphology and a lower content of residual chloride element. Increasing the gas velocity caused an obvious decrease in the average temperature, which led to more content of residual chloride elements. However, the gas collided with the solution more fiercely, which improved the mixing of the two phases. Experimental and simulated results showed that when gas velocity reached 1.2 m?s?1, better dispersity and less agglomeration of the product were obtained. Additionally, the residual chloride content was less than 1%. Because a significant amount of CO2 was produced during the burning of the citric acid, the spherical cerium oxide particles broke into irregular particles. Porous structures also appeared when citric acid was added. The residual chloride content decreased with the increase of citric acid concentration when citric acid concentration was greater than 0.05 mol?L?1.

     

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