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Lagrangian characterization of multi-phase turbulent flow in a solar reactor for particle deposition prediction

机译:用于粒子沉积预测的太阳能反应堆中多相湍流的拉格朗日表征

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摘要

Solar cracking of methane is a promising technology for emission free hydrogen production. One of the major problems affecting methane cracking solar reactors' performance is the carbon particle deposition on the window, walls, and at the exit. In present study, a Lagrangian particle dispersion model has been implemented for predicting the particle deposition on the window of a seeded solar thermal reactor. A three-dimensional Computational Fluid Dynamics (CFD) analysis using Discrete Phase Model (DPM) has been done for qualitative validation of the experimental observations. In order to evaluate the turbulent quantities in the solar reactor; RNG k-ε model has been applied. Species transport has been solved by taking the gas for window screening as different from that used in the main flow. In addition, this paper presents a thorough parametric study predicting the particle deposition on reactor window for various flow configurations and flow conditions, which can be summarized as; (1) when the inlet flow angle is smaller, higher tangential velocities or swirl strength is obtained, (2) higher tangential velocities help in maintaining a stronger swirl, which keeps the screening flow close to the reactor window, (3) by increasing the main flow and the screening flow rates, the particle deposition on window is reduced, (4) when a lower density fluid is used as window screening gas, the particle deposition is reduced because the Taylor instabilities are avoided. The CFD work and the findings presented in this paper would be used as a guide in designing a solar reactor or improving the configuration of existing reactor.
机译:甲烷的太阳能裂解是一种用于生产无排放氢气的有希望的技术。影响甲烷裂化太阳能反应堆性能的主要问题之一是碳颗粒沉积在窗户,墙壁和出口处。在当前的研究中,已经实施了拉格朗日粒子扩散模型,以预测粒子在播种太阳能热反应堆窗口上的沉积。使用离散相模型(DPM)进行了三维计算流体动力学(CFD)分析,以对实验观察进行定性验证。为了评估太阳能反应堆中的湍流量;已应用RNGk-ε模型。通过将用于窗筛的气体与主流中使用的气体不同,解决了物种运输。此外,本文还提供了详尽的参数研究,预测了各种流动形态和流动条件下反应器窗口上的颗粒沉积情况,可以总结为: (1)当入口流动角较小时,可获得较高的切向速度或旋流强度;(2)较高的切向速度有助于保持较强的旋流,从而使筛分流保持接近反应器窗口;(3)通过增大在主流量和筛分流速下,减少了在窗口上的颗粒沉积。(4)当使用较低密度的流体作为窗户筛分气体时,由于避免了泰勒不稳定性,从而减少了颗粒沉积。本文介绍的CFD工作和发现将作为设计太阳能反应堆或改进现有反应堆配置的指南。

著录项

  • 来源
    《International journal of hydrogen energy》 |2010年第10期|P.4496-4507|共12页
  • 作者

    Nesrin Ozalp; Anoop Kanjirakat;

  • 作者单位

    Mechanical Engineering Department, Texas A&M University at Qatar, P.O. Box 23874, Doha, Qatar;

    rnMechanical Engineering Department, Texas A&M University at Qatar, P.O. Box 23874, Doha, Qatar;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    CFD; carbon deposition; solar reactor; methane cracking; hydrogen;

    机译:差价合约碳沉积太阳能反应堆甲烷裂解氢;
  • 入库时间 2022-08-18 00:29:22

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