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首页> 外文期刊>Acta Horticulturae >Characterisation of air flow in a commercial cool store using a carbon monoxide gas tracer technique.
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Characterisation of air flow in a commercial cool store using a carbon monoxide gas tracer technique.

机译:使用一氧化碳气体示踪技术表征商用冷藏库中的气流。

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Uniform air distribution within fruit and vegetable cool stores is important for both maintaining and minimizing quality variability during long-term storage. Air distribution patterns within cool stores are complex and are the result of many interacting factors. Some of these factors are the location of evaporators, number and capacity of fans, loading patterns within the store, packaging used and the type of produce. Design engineers have few tools to optimize cool store air flows. Whilst complex mathematical models using techniques such as computational fluid dynamics have been developed, many of these remain untested against data collected in large commercial cool stores. This work measured air flow patterns and temperature distributions within a commercial controlled atmosphere apple cool store. An array of carbon monoxide (CO) sensors were placed spatially throughout the cool store. CO was injected into a range of positions within the cool store and time of arrival at each of the CO sensors was determined. Air flow patterns were deduced from these readings. Spatial temperature patterns were determined from an array of temperature data loggers placed within the cool store. Results showed an uneven distribution of air flow within the cool store. The top layers and side columns of bins received sufficient air flow. Central positions received lower air flow. Temperature measurements showed warm spots were present within the cool store. These warm spots were found to coincide with the areas of lowest air velocities..
机译:水果和蔬菜冷藏库中均匀的空气分配对于在长期存储过程中保持和最小化质量变化都非常重要。冷藏库中的空气分配模式很复杂,并且是许多相互作用因素的结果。其中一些因素是蒸发器的位置,风扇的数量和容量,商店内的装载方式,使用的包装以及产品的类型。设计工程师几乎没有工具来优化冷库气流。尽管已经开发出使用诸如计算流体动力学之类的技术的复杂数学模型,但其中许多仍未针对大型商业冷藏店中收集的数据进行测试。这项工作测量了商业可控气氛苹果冷藏店内的气流模式和温度分布。一氧化碳(CO)传感器阵列在整个冷藏库中都在空间上放置。将CO注入冷藏库中的一系列位置,并确定到达每个CO传感器的时间。从这些读数推导出气流模式。空间温度模式是根据放置在冷藏库中的一系列温度数据记录器确定的。结果显示,冷库内的气流分布不均匀。垃圾箱的顶层和侧柱接收到足够的空气流。中央位置的空气流量较低。温度测量结果表明,冷藏库中存在热点。发现这些热点与空气流速最低的区域重合。

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