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以丁二酸(SA),1,4-丁二醇(BDO)为原料,通过熔融聚合法合成聚丁二酸丁二醇酯(PBS)。通过对催化剂筛选及用量、缩聚反应温度、总反应时间和酸醇比等因素对产品粘均分子量影响的探讨,优化出了熔融法合成PBS的最佳工艺条件:选择SnCl2做催化剂,用量在2%(以催化剂加入SA的质量比表示),缩聚反应温度在230℃,总反应时间5h,在酸醇配比为1∶1.1时,反应得到的PBS产品的粘均分子量最大,粘均分子量为5.14×104g/mol,产品颜色为白色。用IR、TG、1H-NMR等表征证明产品合成成功。 相似文献
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以新疆伊犁蛭石为原料,首先对蛭石进行预处理,主要经过酸化、热处理及钠化处理,其次采用离子交换法制备了载银蛭石抗菌剂,最后通过对反应温度、反应时间、硝酸银浓度和pH对产品载银量影响的探讨,优化出制备载银蛭石的最佳工艺条件:反应温度为50 ℃;反应时间为5 h;硝酸银浓度为0.1 mol/L;pH为5。在最佳工艺条件下得到的产品载银量最大,最大载银量为5.23%(载银质量分数)。通过抑菌环法测试产品对大肠杆菌和金黄色葡萄球菌的抗菌活性,表明载银蛭石具有很强的抗菌性能。 相似文献
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With the rapid increase in the number of cars and the development of industry, nitrogen oxide(NO_x)emissions have become a serious and pressing problem. This work reports on the development of a water-cooled dielectric barrier discharge reactor for gaseous NOxremoval at low temperature. The characteristics of the reactor are evaluated with and without packing of the reaction tube with 2 mm diameter dielectric beads composed of glass, ZnO, MnO_2, ZrO_2, or Fe_2O_3. It is found that the use of a water-cooled tube reduces the temperature, which stabilizes the reaction, and provides a much greater NO conversion efficiency(28.8%) than that obtained using quartz tube(14.1%) at a frequency of 8 k Hz with an input voltage of 6.8 k V. Furthermore,under equivalent conditions, packing the reactor tube with glass beads greatly increases the NO conversion efficiency to 95.85%. This is because the dielectric beads alter the distribution of the electric field due to the influence of polarization at the glass bead surfaces, which ultimately enhances the plasma discharge intensity. The presence of the dielectric beads increases the gas residence time within the reactor. Experimental verification and a theoretical basis are provided for the industrial application of the proposed plasma NO removal process employing dielectric bead packing. 相似文献
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氢能有望成为脱碳时代的“理想燃料”。高性能储氢材料的发现、开发和改性是未来发展固态储氢和氢能源利用的关键。而氢化镁(MgH2)具有储氢能力强、自然储量丰富、环境友好等特点,在固态储氢材料领域备受关注。但是氢化镁较高的热力学稳定性、缓慢的动力学性能,以及循环过程中不可避免的团聚和粗化等问题在一定程度上限制了镁基固态储氢材料的大规模投产和实际应用。近年来,大量研究工作聚焦于镁基储氢材料的热/动力学改性,目前已经取得了大量的成果。本文通过回顾国内外相关文献,综述了改善镁基固态储氢材料储氢性能的最新研究进展,着重介绍了合金化、纳米化、引入催化剂等改性策略,阐述了不同策略具体的改性机理。最后对未来的发展方向进行了展望,旨在为高性能镁基储氢材料的研发提供借鉴与指导。 相似文献