首页> 外文会议>ASME international heat transfer conference;IHTC14 >MODELING MASS TRANSFER AND NANOPARTICLE CAPTURE IN ELECTROSTATICALLY CHARGED MONOLITH FILTERS
【24h】

MODELING MASS TRANSFER AND NANOPARTICLE CAPTURE IN ELECTROSTATICALLY CHARGED MONOLITH FILTERS

机译:静电带电MONOLITH滤波器中的质量传递和纳米粒子捕获建模

获取原文

摘要

Analyzing trajectories of particles in monolith filters is important for predicting the capture efficiency and improving the design of this class of filters. Modeling and simulations of the particle trajectories are carried out to evaluate the probability of capture by the filter's front surface and filter channel's inner wall. Due to Brownian motion and electrostatic attraction, the particles exhibit a random walk and their trajectories deviate from the streamlines of the fluid flow. Particle trajectories are computed by the integration of Newton's second law, where the electrostatic force, the Brownian motion force resulting from random collisions of the particle with air molecules, and the drag force from the surrounding fluid are all taken into account. A computer simulation for computing the particle trajectories and evaluating the probability of particle capture by the filter was developed. For this model, both flow field and electric field must be provided. The electric charge was assumed to be uniformly distributed along the edge of the channels of the filter and calculated numerically. The flow field is difficult to obtain due to the complex geometry of the model. The commercial CFD package AN SYS CFX [1] is used to compute the flow field. The resulting velocity flow field is then used to evaluate the drag force on the particles. We assume a one-way coupling between the fluid flow and the particle motion. Although there can be over one million uniformly distributed channels per square centimeter in the monolith filter, for simulation purposes, a single unit cell which models only onechannel is used. The single unit model effectively describes the behavior of particles outside and inside the channels of monolith filter. The effects of different forces and different particle sizes were analyzed to investigate which factors affect the capture efficiency.
机译:分析整体式过滤器中颗粒的轨迹对于预测捕获效率和改进此类过滤器的设计非常重要。进行了粒子轨迹的建模和仿真,以评估被过滤器的前表面和过滤器通道的内壁捕获的可能性。由于布朗运动和静电吸引,粒子表现出随机游动,并且其轨迹偏离流体流线。通过牛顿第二定律的积分来计算粒子的轨迹,其中将静电力,粒子与空气分子的随机碰撞产生的布朗运动力以及来自周围流体的阻力都考虑在内。开发了用于计算粒子轨迹并评估过滤器捕获粒子概率的计算机仿真。对于此模型,必须同时提供流场和电场。假定电荷沿滤波器通道边缘均匀分布并进行数值计算。由于模型的复杂几何形状,流场很难获得。商业CFD软件包AN SYS CFX [1]用于计算流场。然后将所得的速度流场用于评估颗粒上的阻力。我们假设流体流动与粒子运动之间存在单向耦合。尽管在整体过滤器中每平方厘米可以有超过一百万个均匀分布的通道,但是出于仿真目的,单个单元只能模拟一个 使用通道。单一单元模型有效地描述了整体过滤器通道外部和内部的颗粒行为。分析了不同力和不同粒径的影响,以研究哪些因素影响捕获效率。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号