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Temperature and energy performance of refrigerated retail display and commercial catering cabinets under test conditions

机译:测试条件下冷藏零售展示柜和商业餐饮柜的温度和能量性能

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摘要

An analysis of the performance of well freezers, chest freezers, frozen and chilled door cabinets (solid or glass door) and open fronted chilled cabinets under EN441 test conditions demonstrated that maximum temperatures in cabinets were generally in the most exposed (to ambient) areas and that minimum temperatures were located in the least exposed areas. Detailed positions of maximum and minimum temperature varied between cabinet types. In chest freezers 95% of the maximum temperature positions were located in the top layer and 95% of the minimum temperature positions were located in the middle layer of the cabinets. In full door frozen cabinets the maximum temperature position was in the majority of cases on the top shelf (64%) with most maximum packs being at the front of the top shelf (53%). In the chilled full door cabinets 94% of the maximum temperature packs were situated at the front of the cabinet. In open fronted cabinets the majority of maximum temperature packs (97%) were located at the front of the cabinet, the largest number (60%) being at the front of the base of the cabinet. In well cabinets the majority of maximum temperature packs (81%) were located in the top layer of the cabinet and the majority (91%) of minimum temperature packs were located in the bottom of the cabinet. Large differences in energy consumed by cabinets of similar size and temperature performance were found indicating that large reductions in energy and CO{sub}2 emissions could be achieved by selection of the most efficient cabinets.
机译:在EN441测试条件下对冷柜,箱式冷冻柜,冷冻和冷藏门柜(实心或玻璃门)和敞开式冷藏柜的性能进行的分析表明,柜内的最高温度通常位于最暴露(暴露于周围)的区域中,并且最低温度位于暴露最少的区域。最高和最低温度的详细位置在机柜类型之间有所不同。在胸部冰柜中,最高温度位置的95%位于橱柜的顶层,最低温度位置的95%位于橱柜的中层。在大多数情况下,在全门冷冻柜中,最高温度位置位于顶部搁板(64%),而最大包装数量最多位于顶部搁板的前部(53%)。在冷藏全开门柜中,最高温度包的94%位于柜的前部。在敞开式正面机柜中,大多数最高温度包(97%)位于机柜的正面,最大数量(60%)位于机柜底部的正面。在井柜中,大多数最高温度包(81%)位于柜的顶层,而大多数(91%)最低温度包位于柜的底部。发现尺寸和温度性能相似的机柜所消耗的能源差异很大,这表明通过选择最高效的机柜可以实现能源和CO {sub} 2排放量的大幅减少。

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