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首页> 外文期刊>Acta Chimica Slovaca >An active indirect solar system for food products drying
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An active indirect solar system for food products drying

机译:主动间接太阳能系统,用于食品干燥

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An energy independent active indirect solar drying system for the study of food products drying at specific climate conditions was developed and tested. As a model material, sliced tomato was selected because of its short shelf live, high humidity and potential to be a high value dried product. Indirect solar dryer enabled complete protection of the dried material against sunlight, birds, insects, rain and dust during the drying process. The solar dryer system design includes a rectangular section (1000 × 600 × 400) mm chamber and a flat solar collector (1500 × 600 × 100) mm with the surface area of 0.9 m2. Air flow was induced by a fan installed at the inlet of the collector and powered by a photovoltaic solar panel and a battery system. Temperature and humidity of air were monitored at the collector inlet, collector outlet and the drying chamber outlet. The key element of the collector is a 10.5 m long rectangular section aluminum pipe (55 × 35) mm coated with an absorption layer. The maximum dryer capacity is around 3 kg of wet material (sliced tomato) per batch. Average air temperature increase in the collector was measured to be 30 °C during the winter season. Air relative humidity decreased from 21 % to 15 % after passing through the collector. The moisture of tomato slices decreased from the initial value of 92 % down to 22 % during the time of the experiment (30 h). Quality of tomatoes dried using the designed solar dryer differed significantly in color as well as in texture from those dried by the commonly used methods, like an open sun drying system. Equilibrium moisture content of the product was reached after 30 h in December when the maximum outside temperature was 17.6 °C. The tomato mass decreased from 333 g to 33.15 g; the mass loss being approximately 90 %. The heated air temperature and humidity at the dryer inlet and outlet were influenced by the change of the ambient temperature and humidity during the day. Variation of the drying rate with the change of the ambient temperature and humidity was observed. During summer, when the sun radiation increases, the drying time for sliced tomato with 9 mm thickness decreased from 25 h to 15 h. The sample thickness also has an impact on the drying process. When the sample thickness increased from 9 mm to 12 mm, the drying time increased from 15 h to 20 h of active device time.
机译:开发并测试了一种用于研究食品在特定气候条件下干燥的独立于能源的主动式间接太阳能干燥系统。由于切片番茄的保质期短,高湿度和成为高价值干燥产品的潜力,因此选择切片番茄作为模型材料。间接太阳能干燥机能够在干燥过程中完全保护干燥的物料免受阳光,鸟类,昆虫,雨水和灰尘的侵害。太阳能干燥器系统设计包括一个矩形截面(1000×600×400)mm的腔室和一个扁平的太阳能收集器(1500×600×100)mm,其表面积为0.9 m2。气流由安装在集热器入口的风扇引起,并由光伏太阳能电池板和电池系统提供动力。在收集器入口,收集器出口和干燥室出口处监测空气的温度和湿度。集热器的关键是一根长10.5 m的矩形截面铝管(55×35)mm,上面涂有吸收层。每批最大干燥机容量约为3千克湿物料(切成薄片的番茄)。在冬季,收集器中的平均气温升高为30°C。通过收集器后,空气相对湿度从21%降低到15%。在实验期间(30小时),番茄片的水分从初始值的92%下降到22%。使用设计的太阳能干燥机干燥后的西红柿的颜色和质地与采用开放式阳光干燥系统等常用方法干燥的西红柿的颜色和质地差异很大。当最高外部温度为17.6°C时,12月30小时后达到了产品的平衡水分含量。番茄质量从333 g减少至33.15 g;质量损失约为90%。干燥机入口和出口处的加热空气温度和湿度受白天环境温度和湿度变化的影响。观察到干燥速率随环境温度和湿度的变化而变化。在夏季,当太阳辐射增加时,9毫米厚的切片番茄的干燥时间从25小时减少到15小时。样品厚度也对干燥过程有影响。当样品厚度从9 mm增加到12 mm时,干燥时间从有源设备的15 h增加到20 h。

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