...
首页> 外文期刊>Mathematical Problems in Engineering: Theory, Methods and Applications >Towards a Computational Fluid Dynamics-Based Fuzzy Logic Controller of the Optimum Windcatcher Internal Design for Efficient Natural Ventilation in Buildings
【24h】

Towards a Computational Fluid Dynamics-Based Fuzzy Logic Controller of the Optimum Windcatcher Internal Design for Efficient Natural Ventilation in Buildings

机译:朝向最佳卷绕机内部设计的基于计算流体动力学的模糊逻辑控制器,以实现建筑物的高效自然通风

获取原文
           

摘要

Recently, increased attention has been given to the coupling of computational fluid dynamics (CFD) with the fuzzy logic control system for obtaining the optimum prediction of many complex engineering problems. The data provided to the fuzzy system can be obtained from the accurate computational fluid dynamics of such engineering problems. Windcatcher performance to achieve thermal comfort conditions in buildings, especially in hot climate regions, is considered as one such complex problem. Windcatchers can be used as natural ventilation and passive cooling systems in arid and windy regions in Saudi Arabia. Such systems can be considered as the optimum solution for energy-saving and obtaining thermal comfort in residential buildings in such regions. In the present paper, three-dimensional numerical simulations for a newly-developed windcatcher model have been performed using ANSYS FLUENT-14 software. The adopted numerical algorithm is first validated against previous experimental measurements for pressure coefficient distribution. Different turbulence models have been firstly applied in the numerical simulations, namely, standard k-epsilon model (1st and 2nd order), standard Wilcox k-omega model (1st and 2nd order), and SST k-omega model. In order to assess the accuracy of each turbulence model in obtaining the performance of the proposed model of the windcatcher system, it is found that the second order k-epsilon turbulence model gave the best results when compared with the previous experimental measurements. A new windcatcher internal design is proposed to enhance the ventilation performance. The fluid dynamics characteristics of the proposed model are presented, and the ventilation performance of the present model is estimated. The numerical velocity profiles showed good agreement with the experimental measurements for the turbulence model. The obtained results have shown that the second order k-epsilon turbulence can predict the different important parameters of the windcatcher model. Moreover, the coupling algorithm of CFD and the fuzzy system for obtaining the optimum operating parameters of the windcatcher design are described.
机译:最近,对计算流体动力学(CFD)的耦合提高了对许多复杂工程问题的最佳预测的模糊逻辑控制系统的增加。提供给模糊系统的数据可以从这种工程问题的准确计算流体动力学获得。挡风机性能在建筑物中实现热舒适条件,特别是在热气候区域,被认为是一个如此复杂的问题。卷管器可作为沙特阿拉伯干旱和风大区的自然通风和被动冷却系统。这种系统可以被认为是用于在这些区域中的居住建筑物中节能和获得热舒适度的最佳解决方案。在本文中,已经使用ANSYS FLUENT-14软件进行了新开发的绕组模型的三维数值模拟。采用的数值算法首先验证了先前的压力系数分布的实验测量。已经首先应用于数值模拟,即标准K-EPSILON模型(第1和第2阶),标准WILCOX K-OMEGA模型(第1和第2阶)和SSTK-OMEGA模型的不同湍流模型。为了评估每个湍流模型的准确性在获得卷绕器系统的所提出的模型的性能方面,发现与先前的实验测量相比,第二阶K-Epsilon湍流模型给出了最佳效果。建议采用新的卷绕器内部设计来提高通风性能。提出了所提出的模型的流体动力学特性,估计本模型的通风性能。数值速率谱与湍流模型的实验测量结果良好。所获得的结果表明,二阶K-Epsilon湍流可以预测卷绕器模型的不同重要参数。此外,描述了CFD的耦合算法和用于获得卷绕器设计的最佳操作参数的模糊系统。

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