纺织学报 ›› 2026, Vol. 47 ›› Issue (07): 54-62.doi: 10.13475/j.fzxb.20260303401
• 第二十八届中国科协年会学术论文·减污降碳共性技术突破专栏· • 上一篇 下一篇
曹先仲1,2,3(
), 娄辉清2,4, 陈骁军1, 沈一峰3
CAO Xianzhong1,2,3(
), LOU Huiqing2,4, CHEN Xiaojun1, SHEN Yifeng3
摘要:
为解决定形机废气余热回收换热器易堵塞、腐蚀及效率衰减问题,系统开展了材料筛选、结构优化、污垢建模与工程验证研究。通过测试碳钢、304不锈钢、316不锈钢、316L不锈钢及钛合金5种材料在20~300 ℃下的热导率及模拟废气环境中的耐腐蚀性能。采用计算流体力学模拟与非支配排序遗传算法 II对通道间距与翅片间距比进行多目标优化,结合逼近理想解排序法决策,引入壁面剪切力修正建立渐进式污垢预测模型,结果表明:通过成本分析,确定304不锈钢为最优选材,其在100 ℃下的热导率为16.3 W/(m·K),腐蚀速率低于0.01 mm/a;确定最优参数为通道间距2.0 mm、翅片间距比0.5;与初始设计相比,定形机余热回收换热器换热量提升18.7%,压降降低22.3%,材料体积减少15%,经3 000 h试验验证,平均预测误差为3.94%。工程应用表明,系统废气平均温降56 ℃,热回收效率25.2%,㶲效率18.7%,年节约天然气7.38万m3,减排CO2 199 t。
中图分类号:
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