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Heat source modelling and natural ventilation efficiency

机译:热源建模和自然通风效率

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We compare natural ventilation flows established by a range of heat source distributions at floor level. Both evenly distributed and highly localised line and point source distributions are considered. We demonstrate that modelling the ventilation flow driven by a uniformly distributed heat source is equivalent to the flow driven by a large number of localised sources. A model is developed for the transient flow development in a room with a uniform heat distribution and is compared with existing models for localised buoyancy inputs. For large vent areas the flow driven by localised heat sources reaches a steady state more rapidly than the uniformly distributed case. For small vent areas there is little difference in the transient development times. Our transient model is then extended to consider the time taken to flush a neutrally buoyant pollutant from a naturally ventilated room. Again comparisons are drawn between uniform and localised (point and line) heat source geometries. It is demonstrated that for large vent areas a uniform heat distribution provides the fastest flushing. However, for smaller vent areas, localised heat sources produce the fastest flushing. These results are used to suggest a definition for the term 'natural ventilation efficiency', and a model is developed to estimate this efficiency as a function of the room and heat source geometries.
机译:我们比较了由地板水平的一系列热源分布建立的自然通风流量。同时考虑均匀分布和高度局部化的线和点源分布。我们证明,对由均匀分布的热源驱动的通风流进行建模等效于由大量局部热源驱动的通风流。开发了一个模型,该模型用于在具有均匀热量分布的房间内进行瞬态流动开发,并将其与用于局部浮力输入的现有模型进行比较。对于较大的通风口区域,由局部热源驱动的流比均匀分布的情况更快地达到稳态。对于较小的通风口区域,瞬态发展时间几乎没有差异。然后扩展我们的瞬态模型,以考虑从自然通风的房间冲洗中性浮力污染物所花费的时间。再次比较了均匀和局部(点和线)热源的几何形状。结果表明,对于较大的通风口区域,均匀的热量分布提供了最快的冲洗速度。但是,对于较小的通风口区域,局部热源产生最快的冲洗。这些结果用于为“自然通风效率”一词提供定义,并开发了一个模型来根据房间和热源的几何形状估算该效率。

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