A research on rigid polyurethane foam resistibility to ignition from an electric arc welding spark

N. Poletaev
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Abstract

Introduction. A fire investigation assumes that electric arc welding sparks (hereinafter referred to as “sparks”) are effective sources of ignition. However, the spark ignition of a combustible material depends on the contact time. This work has experimentally proven that a smooth vertical wall, made of combustible rigid polyurethane foam (PUF), is not subjected to spark ignition. To explain this fact, the author calculated the time of contact between the spark and the wall τint, and compared it with the minimal estimated contact time τmin required to ignite the wall.The sample and the testing procedure. Sparks (the arc power up to 6 kW, the current up to 160 A) reached the PUF wall located at a distance of 0.1–0.15 m from the arc. An everyone experiment was continued until the electrode was burned down.Research results and discussion. Neither attempt to inflame the PUF sample by a spark was successful. Sparks bounced off the PUF sample and fell down. The characteristic dimensions of cooled iron droplets ranged from 0.2 to 3 mm.An evaluation of τint. The authors applied a model of elastic interaction between a drop of molten iron and a rigid wall, assuming that the sum of the potential energy of the drop, associated with its surface, and the kine­tic energy of a spreading drop, if flattened, is conserved. The longest contact time is achieved for drops, featuring the maximum diameter of 3 mm: τint ≈ 0.004 s.Estimation τmin. The authors applied the experimental modeling of the process, whereby the effect of an iron drop on PUF was replaced by the time-controlled effect, produced by a wooden cylinder (6 mm in diameter), inflamed at one edge. τmin ≈ 0.3 s. The ratio τint << τmin explains the inability of electric arc welding sparks to ignite the PUF wall.Conclusions. Electric arc welding sparks, having a diameter of up to 3 mm, cannot ignite a vertical wall, made of rigid combustible polyurethane foam, in case of a side impact. The lack of ignition is explained by the short-term contact between the spark and the surface of the polyurethane foam.
硬质聚氨酯泡沫塑料抗电火花点火性能的研究
介绍。火灾调查假设电弧焊接火花(以下简称“火花”)是有效的点火源。然而,可燃材料的火花点火取决于接触时间。这项工作通过实验证明,由可燃硬质聚氨酯泡沫(PUF)制成的光滑垂直壁不会受到火花点燃的影响。为了解释这一事实,作者计算了火花与壁面的接触时间τint,并将其与点燃壁面所需的最小估计接触时间τmin进行了比较。样品和测试程序。火花(电弧功率高达6kw,电流高达160a)到达距离电弧0.1-0.15 m的PUF壁上。实验继续进行,直到电极被烧毁。研究结果与讨论。两次用火花点燃PUF样品的尝试都没有成功。火花从PUF样本上反弹下来。冷却铁液滴的特征尺寸在0.2 ~ 3mm之间。作者应用了一个铁水液滴与刚性壁面之间弹性相互作用的模型,假设液滴的势能(与它的表面有关)和扩散液滴的动能(如果被压平)的总和是守恒的。液滴接触时间最长,其最大直径为3 mm: τint≈0.004 s。估计τ分钟。作者应用了该过程的实验模型,即铁滴对PUF的影响被时间控制的影响所取代,这种影响是由一个木圆柱体(直径6毫米)产生的,在一个边缘发炎。τmin≈0.3 s。比值τint << τmin解释了电弧焊火花不能点燃PUF壁的原因。直径达3mm的弧焊火花,在侧面撞击的情况下,无法点燃由硬质可燃聚氨酯泡沫制成的垂直墙壁。点火不足的原因是火花与聚氨酯泡沫表面的短期接触。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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