材料科学
过滤(数学)
多孔性
微观结构
微粒
粒径
多孔介质
粒子(生态学)
汽油
复合材料
扩散
沉积(地质)
流出
柴油颗粒过滤器
分形维数
粒度分布
航程(航空)
流量(数学)
机械
压力降
滤波器(信号处理)
惯性参考系
体积热力学
曲折
离散元法
纵横比(航空)
环境科学
粒度
毛细管作用
背压
毛细管压力
堵塞
矿物学
还原(数学)
作者
Xianyang Xiong,Ze Qing,Jian Zhang,Ting Li
摘要
<div class="section abstract"> <div class="htmlview paragraph">Stricter environmental legislation is driving ever-more-demanding performance targets for gasoline particulate filters (GPFs). This study constructs a multi-scale filtration model based on fractal characteristics, taking into account particle size distribution and particle deposition, to investigate the influence of the microstructure of porous media on GPF performance and analyze the impact of structural parameters on capture efficiency and pressure drop. The results show that: (1) Increasing the wall thickness can improve the capture efficiency and pressure drop, and a thicker wall has a stronger inertial interception capacity for larger particles. (2) A reduction in porosity markedly alters both filtration efficacy and flow pressure drop. For particles in the intermediate size range (0.1-0.5 μm), the capture efficiency of a low-porosity structure is more sensitive to the diffusion deposition of small particles, while the inertial collision efficiency of large particles is higher. (3) Shrinking the pore size markedly enhances capture efficiency while simultaneously increasing pressure drop; the finer pore network markedly improves the retention of sub-micron particles, but the passage restriction of large particles is more obvious.</div> </div>
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