真空 ›› 2026, Vol. 63 ›› Issue (4): 72-80.doi: 10.13385/j.cnki.vacuum.2026.04.11
靳海1, 申一鸣2, 詹衡1, 王泽鹏2, 张素辉1, 陆春华3, 陈舟2
JIN Hai1, SHEN Yiming2, ZHAN Heng1, WANG Zepeng2, ZHANG Suhui1, LU Chunhua3, CHEN Zhou2
摘要: 以玻璃纤维与不同含量、成分的相变微胶囊为原料,采用湿法成型工艺,制备了储能式纤维增强真空绝热板(VIP)复合芯材。随着相变粉末含量由0%增至45%,导热系数受固相传热影响从2.61 mW/(m·K)升至4.84 mW/(m·K),其中含37℃相变材料的芯材综合性能最优(2.84 mW/(m·K))。通过将单层芯材厚度从2 mm减薄至0.8 mm,导热系数可显著降至2.22 mW/(m·K)。真空度对性能影响显著,内压低于100 Pa时性能稳定,反之导热系数急剧上升。尽管相变材料的引入使初始内压略有升高,但有效抑制了静置期间的内压增长,提升了板材的长期服役稳定性。该储能式纤维增强VIP在保持优异隔热性能的同时,赋予芯材蓄热调温功能,在节能降耗领域展现出重要的应用价值。
中图分类号: TB79
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