以低度交联的单分散三聚氰胺甲醛(M F)微球作为胶体模板,采用层层静电自组装技术,交替组装带正电的聚二烯丙基二甲基氯化铵(PDDA)和带负电的聚4-苯乙烯磺酸钠(PSS),得到具有核壳结构的复合微球,然后利用盐酸溶液将模板M F微球溶解,制得...以低度交联的单分散三聚氰胺甲醛(M F)微球作为胶体模板,采用层层静电自组装技术,交替组装带正电的聚二烯丙基二甲基氯化铵(PDDA)和带负电的聚4-苯乙烯磺酸钠(PSS),得到具有核壳结构的复合微球,然后利用盐酸溶液将模板M F微球溶解,制得均匀的空腔胶囊。在N aC l浓度为0.7 m o l/L,pH<3时,将抗癌药物盐酸多柔米星(DOX)和磁流体同时封装到聚电解质胶囊中,可得到含磁药物胶囊,磁性粒子分散在胶囊的壳层和空腔内。该含磁药物胶囊具有良好的磁响应性和药物缓释性。展开更多
Electromagnetic forming tests were done at room temperature to reveal the influence of hydrogen content on the compressive properties of Ti-6Al-4V alloy at high strain rate. Microstructure was observed to reveal the m...Electromagnetic forming tests were done at room temperature to reveal the influence of hydrogen content on the compressive properties of Ti-6Al-4V alloy at high strain rate. Microstructure was observed to reveal the mechanism of hydrogen-enhanced compressive properties. The experimental results indicate that hydrogen has favorable effects on the compressive properties of Ti-6Al-4V alloy at high strain rate. Compression of Ti-6Al-4V alloy first increases up to a maximum and then decreases with the increase of hydrogen content at the same discharge energy under EMF tests. The compression increases by 47.0% when 0.2% (mass fraction) hydrogen is introduced into Ti-6Al-4V alloy. The optimal hydrogen content for cold formation of Ti–6Al–4V alloy under EMF was determined. The reasons for the hydrogen-induced compressive properties were discussed.展开更多
文摘以低度交联的单分散三聚氰胺甲醛(M F)微球作为胶体模板,采用层层静电自组装技术,交替组装带正电的聚二烯丙基二甲基氯化铵(PDDA)和带负电的聚4-苯乙烯磺酸钠(PSS),得到具有核壳结构的复合微球,然后利用盐酸溶液将模板M F微球溶解,制得均匀的空腔胶囊。在N aC l浓度为0.7 m o l/L,pH<3时,将抗癌药物盐酸多柔米星(DOX)和磁流体同时封装到聚电解质胶囊中,可得到含磁药物胶囊,磁性粒子分散在胶囊的壳层和空腔内。该含磁药物胶囊具有良好的磁响应性和药物缓释性。
基金Project (51205102) supported by the National Natural Science Foundation of ChinaProject (2012M511401) supported by the China Postdoctoral Science FoundationProject (gf201101001) supported by the National Defense Key Disciplines Laboratory of Light Alloy Processing Science and Technology, Nanchang Hangkong University, China
文摘Electromagnetic forming tests were done at room temperature to reveal the influence of hydrogen content on the compressive properties of Ti-6Al-4V alloy at high strain rate. Microstructure was observed to reveal the mechanism of hydrogen-enhanced compressive properties. The experimental results indicate that hydrogen has favorable effects on the compressive properties of Ti-6Al-4V alloy at high strain rate. Compression of Ti-6Al-4V alloy first increases up to a maximum and then decreases with the increase of hydrogen content at the same discharge energy under EMF tests. The compression increases by 47.0% when 0.2% (mass fraction) hydrogen is introduced into Ti-6Al-4V alloy. The optimal hydrogen content for cold formation of Ti–6Al–4V alloy under EMF was determined. The reasons for the hydrogen-induced compressive properties were discussed.