在实验室风洞运输过程中从聚合物碎片中产生尘埃
C McKenna Neuman1, G Saarenvirta1, P O'Brien1
1Trent Environmental Wind Tunnel Trent University Peterborough ON Canada.
概括
颗粒聚合物在运输过程中分解,产生尘埃. 风洞实验表明,聚合物尺寸随着距离的增长而减少,更粗的表面会增加分解,但不会增加尘埃悬浮.
科学领域:
- 地球和行星科学 地球和行星科学
- 环境科学 环境科学
- 地质形态学 地质形态学
背景情况:
- 表面吹散的粒子聚合物在球体上有助于粒子间纽带的破坏,碎片化和产生尘埃.
- 了解这些过程对于准确的尘埃排放建模和环境管理至关重要.
研究的目的:
- 为了研究运输过程中聚合物的碎片化速度.
- 检查床的粗度,湿度和系统动态对碎片和尘埃产生的影响.
- 量化聚合物碎片的灰尘产生潜力,与分类材料相比.
主要方法:
- 风洞实验使用来自加利福尼亚州奥文斯湖的Playa沉积物.
- 分离颗粒聚合物 (500-710微米) 并将其引入风洞.
- 测量总直径在运输距离上的变化,并捕获悬浮在粘性板上的颗粒.
主要成果:
- 聚合物直径与运输距离 (r2=0.43) 线性减少 (30-56μm/m).
- 床的粗度增加增加了碎碎率,但没有增加尘埃悬浮.
- 与分解材料相比,碎片只产生了0.5% - 4%的悬浮PM10.
结论:
- 聚合物碎片化是平原尘埃动态的一个重要因素,但其对悬浮PM10的贡献相对较低.
- 风场结构,包括流动不稳定性,强烈影响尘埃传输.
- 风洞模拟尘埃排放需要采用多维方法,考虑摩擦速度以外的因素.
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