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Study on preparation and resistance properties of sodium salt microcapsules[J]. Safety in Coal Mines, 2022, 53(9): 94-99.
Citation: Study on preparation and resistance properties of sodium salt microcapsules[J]. Safety in Coal Mines, 2022, 53(9): 94-99.

Study on preparation and resistance properties of sodium salt microcapsules

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  • Published Date: September 19, 2022
  • The microencapsulation technology can protect the core material and make the core material release slowly. In order to improve the inhibition effect of salt inhibitor, microcapsule inhibitor was prepared by melting dispersion condensation method based on microencapsulation technology. The wall-core ratio with the lowest moisture absorption at room temperature is selected. The inhibition performance of non-caking coal with different mass fractions of inhibitor was tested by temperature programmed experimental system. The results show that with the increase of the mass fraction of microcapsule inhibitor, the oxygen consumption rate and CO release rate of coal sample decrease at first and then increase, and the inhibition effect is the best when the concentration is 15%. The maximum inhibition rate is 83% at 110 ℃, and the average inhibition rate in the whole temperature range is 67%. At the same concentration, the inhibition performance of microcapsule inhibitor is better than that of sodium salt inhibitor. The microencapsulated inhibitor wall material absorbs heat during the heating process of the coal sample, wraps it on the surface of the coal sample after phase transformation melting and slowly releases the core material, which can maintain an excellent inhibition effect when the coal temperature is high.
  • [1]
    邓军,白祖锦,肖旸,等.煤自燃灾害防治技术现状与挑战[J].煤矿安全,2020,51(10):118-125.

    DENG Jun, BAI Zujin, XIAO Yang, et al. Present situation and challenge of coal spontaneous combustion disasters prevention and control technology[J]. Safety in Coal Mines, 2020, 51(10): 118-125.
    [2]
    朱红青,胡超,周全涛,等.泥浆泡沫性能及影响因素研究[J].矿业科学学报,2019,4(4):343-348.

    ZHU Hongqing, HU Chao, ZHOU Quantao, et al. Study on performances and influence factors of mud foam[J]. Journal of Mining Science and Technology, 2019, 4(4): 343-348.
    [3]
    张玉涛,史学强,李亚清,等.环保型煤自燃阻化剂的阻化特性及机理研究[J].中国矿业大学学报,2018, 47(6):1224-1232.

    ZHANG Yutao, SHI Xueqiang, LI Yaqing, et al. Mechanism and inhibiting effects of environmental-friendly inhibitor on coal spontaneous combustion[J]. Journal of China Mining & Technology, 2018, 47(6): 1224-1232.
    [4]
    郭军,蔡国斌,金彦,等.煤自燃火灾防治技术研究进展及趋势[J].煤矿安全,2020,51(11):180-184.

    GUO Jun, CAI Guobin, JIN Yan, et al. Research progress and trend of coal spontaneous combustion fire prevention technology[J]. Safety in Coal Mines, 2020, 51(11): 180-184.
    [5]
    LI Qingwei, XIAO Yang, ZHONG Kaiqi, et al. Overview of commonly used materials for coal spontaneous combustion prevention[J]. Fuel, 2020, 275: 117981.
    [6]
    胡拉,吕少一,傅峰,等.微胶囊技术在木质功能材料中的应用及展望[J].林业科学,2016,52(7):148.

    HU La, LU Shaoyi, FU Feng, et al. Review of application of microencapsulation in wood functional materials and its future trends[J]. Scientia Silvae Sinicae, 2016, 52(7): 148-157.
    [7]
    马超.高倍微胶囊阻化剂泡沫防灭火技术在煤矿的应用[J].煤矿安全,2010,41(9):48-50.

    MA Chao. Application of fire extinguishing technology with microcapsule inhibitor and high poser foam in coal mine[J]. Safety in Coal Mines, 2010, 41(9): 48-50.
    [8]
    李孜军,郭兆东,吴靓.氯化镁微胶囊泡沫作用机理及阻化效果研究[J].中国安全生产科学技术,2016,12(6):54-58.

    LI Zijun, GUO Zhaodong, WU Jing. Study on action mechanism and inhibition effect of magnesium chloride microcapsules foam[J]. Journal of Safety Science and Technology, 2016, 12(6): 54-58.
    [9]
    陈少康.防治煤自燃的阻化微胶囊制备及性能研究[D].西安:西安科技大学,2020.
    [10]
    QI Xuyao, WEI Cunxiang, LI Qizhong, et al. Controlled-release inhibitor for preventing the spontaneous combustion of coal[J]. Natural Hazards, 2016, 82(2): 891-901.
    [11]
    ZHAI Xiaowei, YANG Chong, SHI Bobo, et al. Inhibition performance of microcapsule material on coal oxidation[J]. Journal of Thermal Analysis and Calorimetry, 2022, 147: 2665-2677.
    [12]
    WANG Deming, DOU Guolan, ZHONG Xiaoxing, et al. An experimental approach to selecting chemical inhibitors to retard the spontaneous combustion of coal[J]. Fuel, 2014, 117: 218-223.
    [13]
    何丽红,王浩,杨帆,等.聚乙二醇二元体系的相变特性研究[J].应用化工,2018,47(3):448-451.

    HE Lihong, WANG Hao, YANG Fan, et al. Study on phase change characteristics of two component pol-yethylene glycol system[J]. Applicated Chemical Industry, 2018, 47(3): 448-451.
    [14]
    刘旭光,辛梅华,李明春,等.壳聚糖/N-乙烯基吡咯烷酮接枝共聚物的制备及其性能[J].化工进展,2020,39(9):3535-3542.

    LIU Xuguang, XIN Meihua, LI Mingchun, et al. Preparation and properties of chitosan/N-vinyl pyrrolidone copolymer[J]. Chemical Industry and Engineering Progress, 2020, 39(9): 3535-3542.
    [15]
    王建利,苏宏刚,李军岐,等.硫含量对煤自燃特性及极限参数的影响[J].煤矿安全,2020,51(6):43-48.

    WANG Jianli, SU Honggang, LI Junqi, et al. Effect of sulfur content on characteristics and limiting parameters of coal spontaneous combustion[J]. Safety in Coal Mines, 2020, 51(6): 43-48.
    [16]
    汪洁生,徐明婵,李春,等.银/金刚石微粉复合材料对硝酸盐红外吸收特性的影响[J].光谱学与光谱分析,2017.37(9):2737-2742.

    WANG Jiesheng, XU Mingchan, LI Chun, et al. Influence of infrared adsorption property of sodium nitrate with silver/diamond powder(Ag/DP) composite[J]. Spectroscopy and Spectral Analysis, 2017, 37(9): 2737.
    [17]
    DENG Jun, ZHAO Jingyu, ZHANG Yanni, et al. Thermal analysis of spontaneous combustion behavior of partially oxidized coal[J]. Process Safety and Environmental Protection, 2016, 104: 218-224.
    [18]
    郭志国,王蓉,张俊,等.CO2防控氧化煤复燃效率的试验研究[J].矿业科学学报,2021,6(2):160.

    GUO Zhiguo, WANG Rong, ZHANG Jun, et al. Experimental research on the fire-fighting effects of CO2 on the recrudescence process of oxidized coal[J]. Journal of Mining Science and Technology, 2021, 6(2): 160.
    [19]
    QIAO Ling, DENG Cunbao, DAI Fengwei, et al. Experimental study on a metal-chelating agent inhibiting spontaneous combustion of coal[J]. Energy & Fuels, 2019, 33(9): 9232-9240.
    [20]
    REN Wanxing, SHI Jingtai, GUO Qing, et al. The influence of dust particles on the stability of foam used as dust control in underground coal mines[J]. Process Safety and Environmental Protection, 2017, 111: 740.
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