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A study of the energy efficiency of convective drying systems assisted by ultrasound in the production of clipfish

机译:超声波辅助对流干燥系统在旗鱼生产中的能效研究

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摘要

High intensity, airborne ultrasound is a promising hybrid technology for reducing the drying time for convective drying processes. The drying kinetics of the convective drying of clipfish with and without the assistance of ultrasound are compared in a laboratory scale pilot plant. Tests carried out showed that the drying time at a temperature of 20 ℃ can be reduced by 43% at an ultrasonic intensity of 25 W kg~(-1). The drying rate is especially increased during the initial period of the drying process, while the effect is minor toward the end of process. The data obtained was used for a dynamic simulation of a batch tunnel drier with a capacity of 40 tons, assisted by ultrasound. Process simulations for heat pump drying (HPD) and heated ambient air drying (HAAD) were performed and compared with ultrasonic assisted drying. Heat pump drying without ultrasound is the most energy efficient dehydration process for clipfish (206 kWh ton~(-1)), followed by heat ambient air drying without ultrasound (915 kWh ton~(-1)). The energy consumptions for ultrasonic drying increase multiple times despite its faster dehydration. In order to be energy efficient, ultrasonic intensities in the convective drying of clipfish should not exceed 2 W kg~1, while resulting in a drying time reduction of at least 50%.
机译:高强度的机载超声是减少对流干燥过程的干燥时间的有前途的混合技术。在实验室规模的中试工厂中,对有无超声辅助下对鳞鱼对流干燥的干燥动力学进行了比较。测试表明,在超声强度为25 W kg〜(-1)的情况下,在20℃的温度下干燥时间可减少43%。干燥速率在干燥过程的最初阶段特别增加,而在过程结束时效果很小。获得的数据用于在超声波辅助下对40吨容量的间歇式隧道干燥机进行动态模拟。进行了热泵干燥(HPD)和加热的环境空气干燥(HAAD)的过程模拟,并与超声辅助干燥进行了比较。对于ultrasound鱼(206 kWh ton〜(-1)),不使用超声波的热泵干燥是最节能的脱水过程,其次是不使用超声波的热环境空气干燥(915 kWh ton〜(-1))。尽管脱水更快,但超声波干燥的能耗却增加了数倍。为了提高能源效率,对鱼的对流干燥中的超声强度不应超过2 W kg〜1,同时干燥时间至少减少50%。

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