首页> 外文OA文献 >Numerical simulations of liquid-gas-solid three-phase flows in microgravity
【2h】

Numerical simulations of liquid-gas-solid three-phase flows in microgravity

机译:液-气-固三相流在微重力中的数值模拟

代理获取
本网站仅为用户提供外文OA文献查询和代理获取服务,本网站没有原文。下单后我们将采用程序或人工为您竭诚获取高质量的原文,但由于OA文献来源多样且变更频繁,仍可能出现获取不到、文献不完整或与标题不符等情况,如果获取不到我们将提供退款服务。请知悉。

摘要

Three-phase liquid-gas-solid flows under microgravity condition are studied. An Eulerian- Lagrangian computational model was developed and used in the simulations. In this approach, the liquid flow was modeled by a volume-averaged system of governing equations, whereas motions of particles and bubbles were evaluated using the Lagrangian trajectory analysis procedure. It was assumed that the bubbles remained spherical, and their shape variations were neglected. The bubble-liquid, particle-liquid and bubbl- particle two-way interactions were accounted for in the analysis. The discrete phase equations used included drag, lift, buoyancy, and virtual mass forces. Particle-particle interactions and bubble-bubble interactions were accounted for by the hard sphere model. Bubble coalescence was also included in the model. The transient flow characteristics of the three-phase flow were studied; and the effects of gravity, inlet bubble size and g-jitter acceleration on variation of flow characteristics were discussed. The low gravity simulations showed that most bubbles are aggregated in the inlet region. Also, under microgravity condition, bubble transient time is much longer than that in normal gravity. As a result, the Sauter mean bubble diameter, which is proportional to the transient time of the bubble, becomes rather large, reaching to more than 9 mm. The bubble plume in microgravity exhibits a plug type flow behavior. After the bubble plume reaches the free surface, particle volume fraction increases along the height of the column. The particles are mainly located outside the bubble plume, with very few particles being retained in the plume. In contrast to the normal gravity condition, the three phases in the column are poorly mixed under microgravity conditions. The velocities of the three phases were also found to be of the same order. Bubble size significantly affects the characteristics of the three-phase flows under microgravity conditions. For the same inlet bubble number density, the flow with larger bubbles evolves faster. The simulation results showed that the effect of g-jitter acceleration on the gas-liquid-particle three phase flows is small.
机译:研究了微重力条件下的三相气固两相流动。开发了欧拉-拉格朗日计算模型并将其用于仿真中。在这种方法中,液体流量是由控制方程的体积平均系统建模的,而粒子和气泡的运动是使用拉格朗日轨迹分析程序进行评估的。假定气泡保持球形,而其形状变化被忽略。在分析中考虑了气泡-液体,颗粒-液体和气泡-颗粒的双向相互作用。使用的离散相位方程包括阻力,升力,浮力和虚拟质量力。硬球体模型解释了颗粒间相互作用和气泡间相互作用。该模型中还包括气泡合并。研究了三相流的瞬态流动特性;讨论了重力,入口气泡尺寸和g-抖动加速度对流动特性变化的影响。低重力模拟显示,大多数气泡聚集在入口区域。而且,在微重力条件下,气泡瞬态时间比正常重力下的瞬态时间长得多。结果,与气泡的瞬变时间成比例的索特平均气泡直径变得相当大,达到9mm以上。微重力中的气泡羽流呈现出塞型流动行为。气泡羽流到达自由表面后,颗粒体积分数沿色谱柱高度增加。粒子主要位于气泡羽流的外部,极少的粒子保留在羽流中。与正常重力条件相比,色谱柱中的三相在微重力条件下混合不良。三相的速度也被发现是相同的。气泡大小会在微重力条件下显着影响三相流的特性。对于相同的入口气泡数密度,较大气泡的流动发展得更快。仿真结果表明,g-抖动加速度对气-液-颗粒三相流的影响很小。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
代理获取

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