纺织学报 ›› 2026, Vol. 47 ›› Issue (06): 148-158.doi: 10.13475/j.fzxb.20250910301
吴杰凯1, 骆祎岚1,2, 董威威1,2, 白云峰1,2, 朱世根1,2(
)
WU Jiekai1, LUO Yilan1,2, DONG Weiwei1,2, BAI Yunfeng1,2, ZHU Shigen1,2(
)
摘要:
为研究电加热潜水服和人体组织在水下低温环境下的温度分布规律,并对潜水服进行优化设计,考虑电加热片在潜水服上的排布区域,并参照人体建立了上臂、躯干、大腿3个部位的简化组织模型。结合实际电加热潜水服织物参数,采用 ANSYS 建立含防水隔热层、加热层、亲肤层、内胆层和3种不同组织的传热模型,根据模拟结果验证模型,并进行整体温度预测。在此基础上,进一步分析穿着电加热潜水服时,不同环境温度、不同内胆层厚度、不同内胆种类和人体不同部位下的皮肤温度分布特征。结果表明,水下低温环境中电加热片有效加热范围有限,气凝胶织物内胆保温性能远优于新雪丽内胆且在 0 ℃ 极寒下优势突出,内胆增厚的保温效果存在边际效益递减,冷应激下手臂热脆弱性最强。据此应摒弃“越厚越保暖”的设计误区,在肢端优选气凝胶内胆并针对手臂末端实施高功率补偿加热,实现主动加热与被动隔热的耦合优化。本研究对于改进电加热潜水服结构和优化电加热潜水服的设计,具有重要的指导意义。
中图分类号:
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