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针对光伏火灾的新型凝胶泡沫制备方法及关键参数
李信江, 武聪沛, 孔鑫, 张帅, 赵金龙
清华大学学报(自然科学版) ›› 2026, Vol. 66 ›› Issue (9) : 1737-1745.
PDF(9352 KB)
PDF(9352 KB)
针对光伏火灾的新型凝胶泡沫制备方法及关键参数
Preparation method and key parameters of a novel gel foam for photovoltaic fire suppression
该文针对光伏火灾中传统泡沫稳定性与附着性不足等问题,研发了一种新型凝胶泡沫,并系统研究了其制备方法及关键参数。通过正交实验,对十二烷基硫酸钠(SDS)、魔芋葡甘聚糖(KGM)和硫酸钠(Na2SO4)这3种组分的配比进行优化,筛选出综合性能最优配比为0.5 wt% SDS、0.8 wt% KGM、1.0 mol·L–1 Na2SO4。保有率测试表明,在不同风速(0 m/s,6 m/s,25 m/s)下的最优配方泡沫均能在倾角45°的光伏玻璃表面保持80%以上的保有率,显著高于传统A类泡沫性能指标。隔热性能测试及模型分析结果显示,最佳配方泡沫的隔热时间较A类泡沫延长243.2%,隔热量提升了250.5%。大尺度热防护实验结果进一步证实,该凝胶泡沫可显著抑制光伏组件表面温升,降低组件因受热不均引发的破裂风险。研究结果为光伏火灾防护材料的开发及应用提供了新的理论依据和技术支持。
Objective: Photovoltaic (PV) fire accidents caused by arc faults and hotspot effects pose growing safety risks globally. Conventional Class A foam fails in PV fire scenarios owing to poor adhesion on smooth inclined glass surfaces and wind dispersion susceptibility, leaving modules vulnerable to sustained heat exposure and thermal-stress-induced fractures. In this study, we develop a novel gel foam (NGF) with superior adhesion, wind resistance, and thermal protection performance specifically tailored for PV fire suppression. Methods: The NGF was formulated from sodium dodecyl sulfate (SDS), konjac glucomannan (KGM), and sodium sulfate (Na2SO4). A three-factor, three-level orthogonal experiment was used to optimize their concentrations using the expansion ratio (E), the drainage half-life (T1/2), and a composite foam comprehensive index (FCI) as evaluation metrics, yielding three candidate formulations. Foam retention was assessed on a 45° inclined glass platform at wind speeds of 0, 6, and 25 m/s. Thermal insulation performance was quantified under a far-infrared radiation system at 15 kW/m2, with thermocouples at the foam surface and at 10 and 20 mm depths; total heat absorption was calculated via radiative heat transfer modeling. Finally, two sets of full-scale thermal protection experiments were performed using a 35 cm-diameter gasoline pool fire beneath a standard-size PV module (1 640 mm × 990 mm), with visible and infrared cameras recording surface damage and temperature distribution in real time. Results: Among the three factors, KGM concentration had the greatest influence on E and T1/2, followed by Na2SO4 and SDS concentrations. Increasing KGM and Na2SO4 concentrations enhanced solution viscosity and promoted three-dimensional gel network formation through hydrogen bonding and polar interactions, thereby increasing T1/2 while decreasing E. The optimal formulation (0.5 wt% SDS, 0.8 wt% KGM, and 1.0 mol/L Na2SO4) achieved the highest FCI of 3 528.7, with E = 5.2 and T1/2 = 904.8 min. In retention tests on a 45° inclined glass surface, this formulation maintained retention rates of 82.04%, 80.39%, and 82.13% at wind speeds of 0, 6, and 25 m/s, respectively. Meanwhile, conventional Class A foam retained only 15.27% at 0 m/s and collapsed entirely at 6 and 25 m/s. These results demonstrate that NGF provides considerably more stable surface adhesion under static and high-wind conditions. In thermal insulation experiments, compared with conventional Class A foam, the foam collapse time of the optimal formulation was extended by 243.2% and total heat absorption capacity increased by 250.5%. In full-scale fire tests, NGF-coated PV modules exhibited substantially more uniform surface temperature distributions than uncoated modules. During early combustion, the foam absorbed heat through liquid drainage, stabilizing module temperature; as burning continued, the foam drained downward and hardened. Post-experiment inspection confirmed that NGF-protected modules sustained substantially less physical damage. Conclusions: The developed NGF, leveraging the synergistic salting-out gelation between KGM and Na2SO4, forms a robust three-dimensional network that delivers superior adhesion, wind resistance, and thermal stability on inclined smooth PV glass surfaces. Compared with conventional Class A foam, the optimal formulation offers markedly higher retention under wind exposure, a 243.2% longer thermal insulation duration, and a 250.5% improvement in heat absorption capacity. Full-scale fire experiments validate its effectiveness in suppressing temperature rise and preventing thermally induced module fracture under realistic fire conditions. This study provides a scientific foundation and technical reference for developing next-generation fire suppression and thermal protection materials tailored to PV fire scenarios.
光伏火灾 / 凝胶泡沫 / 隔热性能 / 热防护 / 保有率
photovoltaic fire / gel foam / thermal insulation performance / thermal protection / retention rate
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