首页> 外文会议>ASME International Conference on Nanochannels, Microchannels, and Minichannels >INVESTIGATION OF THE EFFECT OF NON-UNIFORM MEMBRANE PROPERTIES ON PERFORMANCE OF MINI/MICROCHANNEL ENERGY RECOVERY VENTILATOR DEVICES
【24h】

INVESTIGATION OF THE EFFECT OF NON-UNIFORM MEMBRANE PROPERTIES ON PERFORMANCE OF MINI/MICROCHANNEL ENERGY RECOVERY VENTILATOR DEVICES

机译:非均匀膜特性对迷你/微通道能量回收呼吸器装置性能影响的研究

获取原文

摘要

Membrane based energy recovery ventilators (ERV) can be used to recover sensible and latent energy from exhaust-to-supply air in building applications. These typically consist of parallel layers of membrane separating the air streams, across which heat and moisture are exchanged. Reducing equipment cost and size remain a key challenge for continued commercialization and adoption of these devices. As membrane effectiveness improves, the air-side heat resistance can begin to dominate transport. To mitigate this, minichannel flow passages (D_H < 2 mm) can be used to reduce convective heat and mass transfer. Channels can be formed through direct manipulation of membrane (e.g., pleating, corrugating, etc.), or through the use of spacer or other insert. The use of multiple parallel channels can result in large spatial variations in driving temperature and humidity ratio differences in a single layer membrane, impacting overall transport. Furthermore, the local membrane mass transfer resistance is typically a function of the surface temperature and relative humidity and not a constant value throughout the device. Accurate design models are required to appropriately size ERV equipment and maximize performance for a given equipment volume. Thus, the goal of this study is to use simulation tools to understand how the use of parallel mini- and microchannels and non-uniform membrane properties effect the performance of a membrane ERV in a building application. A two dimensional coupled heat and mass transfer resistance network model is developed. The model is compared against existing data from more detailed CFD analysis, and used to parametrically investigate effects different inlet conditions on device performance.
机译:基于膜的能量回收呼吸机(ERV)可用于从建筑物应用中从排气到供气的空气中恢复明智和潜能。这些通常由分离空气流的平行层组成,可以交换热流和水分。降低设备成本和规模仍然是持续商业化和采用这些设备的关键挑战。随着膜的有效性改善,空气侧耐热可以开始支配运输。为了缓解这一点,可以使用MinioCannel流动通道(D_H <2 mm)来减少对流热和传质。通过直接操纵膜(例如,褶皱,瓦楞等)或通过使用间隔物或其他插入物来形成通道。使用多个平行通道可以导致单层膜中的驱动温度和湿度比差异的大空间变化,影响整体运输。此外,局部膜传质电阻通常是表面温度和相对湿度的函数,而不是整个装置的恒定值。适当尺寸的ERV设备需要精确的设计型号,并最大限度地提高给定的设备容量的性能。因此,本研究的目的是使用仿真工具来了解平行迷你和微通道和非均匀膜特性的使用如何实现膜ERV在建筑应用中的性能。开发了二维耦合热和传质电阻网络模型。该模型与来自更详细的CFD分析的现有数据进行比较,并且用于参数上调查不同的入口条件对设备性能的影响。

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