介绍了改性水葫芦多孔生物炭中月桂-肉豆蔻-棕榈酸的结构特征及热性能。

IF 8.2 1区 环境科学与生态学 Q1 ENVIRONMENTAL SCIENCES Science of the Total Environment Pub Date : 2023-07-15 DOI:10.1016/j.scitotenv.2023.163670
Jiahong Zhou, Hua Fei, Qian He, Peisheng Li, Yucheng Pan, Ximei Liang
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引用次数: 2

摘要

本研究利用水葫芦(WH)制备生物炭用于相变储能领域,实现相变材料(PCMs)的包封,提高相变材料的导热性。900℃冻干碳化改性水葫芦生物炭(MWB)最大比表面积为479.966 m2/g。采用月桂-肉豆酱-棕榈酸(LMPA)作为相变储能材料,LWB900和VWB900分别作为多孔载体。采用真空吸附法制备了改性水葫芦生物炭基复合相变储能材料(MWB@CPCMs),其负荷率分别为80%和70%。LMPA/LWB900的焓值为105.16 J/g,比LMPA/VWB900的焓值高25.79%,储能效率为99.1%。LWB900的引入使LMPA的导热系数(k)由0.2528 W/(m·k)提高到0.3574 W/(m·k)。MWB@CPCMs具有良好的温度控制能力,LMPA/LWB900的加热时间比LMPA/VWB900的加热时间长15.03%。500次热循环后,LMPA/LWB900的最大焓变化率为6.56%,并保持相变峰,耐久性优于LMPA/VWB900。本研究表明,LWB900的制备工艺最好,对LMPA的吸附焓值高,热工性能稳定,实现了生物炭的可持续发展。
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Structural characteristics and thermal performances of lauric-myristic-palmitic acid introduced into modified water hyacinth porous biochar for thermal energy storage.

Water hyacinth (WH) was used to prepare biochar for phase change energy storage field to realize encapsulation and enhance thermal conductivity of phase change materials (PCMs) in this work. The maximum specific surface area of modified water hyacinth biochar (MWB) obtained by lyophilization and carbonization at 900 °C was 479.966 m2/g. Lauric-myristic-palmitic acid (LMPA) was used as phase change energy storage material, LWB900 and VWB900 were used as porous carriers respectively. Modified water hyacinth biochar matrix composite phase change energy storage materials (MWB@CPCMs) were prepared by vacuum adsorption method, with loading rates of 80 % and 70 % respectively. The enthalpy of LMPA/LWB900 was 105.16 J/g, which was 25.79 % higher than that of LMPA/VWB900, and the energy storage efficiency was 99.1 %. Moreover, the introduction of LWB900 increased the thermal conductivity (k) of LMPA from 0.2528 W/(m·K) to 0.3574 W/(m·K). MWB@CPCMs have good temperature control capability, and the heating time of LMPA/LWB900 was 15.03 % higher than that of LMPA/VWB900. In addition, after 500 thermal cycles, the maximum change rate of enthalpy of LMPA/LWB900 was 6.56 %, and it maintains a phase change peak, showing better durability than LMPA/VWB900. This study shows that the preparation process of LWB900 is the best, and the adsorption of LMPA has high enthalpy value and stable thermal performance, realizing the sustainable development of biochar.

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来源期刊
Science of the Total Environment
Science of the Total Environment 环境科学-环境科学
CiteScore
17.60
自引率
10.20%
发文量
8726
审稿时长
2.4 months
期刊介绍: The Science of the Total Environment is an international journal dedicated to scientific research on the environment and its interaction with humanity. It covers a wide range of disciplines and seeks to publish innovative, hypothesis-driven, and impactful research that explores the entire environment, including the atmosphere, lithosphere, hydrosphere, biosphere, and anthroposphere. The journal's updated Aims & Scope emphasizes the importance of interdisciplinary environmental research with broad impact. Priority is given to studies that advance fundamental understanding and explore the interconnectedness of multiple environmental spheres. Field studies are preferred, while laboratory experiments must demonstrate significant methodological advancements or mechanistic insights with direct relevance to the environment.
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