在造粒塔中与空气接触后矿物肥料颗粒温度变化的研究

Al-Khyatt Muhamad Nadhem, Vsevolod Sklabinskyi, Ruslan Ostroha, Maksym Skydanenko, Mykola Yukhymenko, Jozef Bocko, Denys Ostroha, Dmitry Zabitsky, Oleksii Moskalchuk, Andrii Serhiienko
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引用次数: 0

摘要

研究的对象是氮矿肥用喷淋法制粒的过程。其中一个最有问题的领域是缺乏确定性关于颗粒的温度变化的动态,当它是由空气在造粒塔冷却。研究了用旋转振动造粒机对尿素进行造粒的工艺过程。介绍了旋转振动造粒机作为液体尿素造粒试验台的组成部分的设计方案,阐述了进行实验研究的方法和造粒机的设计参数。结果表明,在实验研究过程中,记录了熔体、颗粒和冷却空气的温度。需要强调的是,冷却空气与热颗粒流动的接触,由于颗粒传递的热量,导致空气温度不断升高,这使得有必要确定离开造粒塔的空气的最终温度。为此,建立了一个数学模型,并得到了计算方程,以确定与球团表面接触的空气的温度和球团内部的温度分布。对计算方程进行数值计算,可以得到颗粒沿其半径的温度分布。强调的是,理论上得到的温度分布不能准确地指示颗粒在造粒塔中下落时的实际温度。计算结果分析表明,造粒塔下部颗粒温度为60 ~ 62℃。该温度与实际确认的颗粒最终温度相对应,该温度是在实验台上测量的。
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Study of temperature changes in mineral fertiliser granules after contact with air in a granulation tower
The object of research is the process of granulation of nitrogen mineral fertilizers by the method of sprinkling. One of the most problematic areas is the lack of certainty regarding the dynamics of the temperature change of the granule when it is cooled by air in the granulation tower. The paper considers the process of urea granulation using a rotating vibrating granulator. The scheme of the rotating vibrating granulator as part of the experimental stand for granulating liquid urea is presented, the method of conducting experimental studies and the design parameters of the granulator are described. It is indicated that in the process of experimental research, the temperatures of the melt, granules and cooling air were recorded. It is emphasized that the contact of the cooling air with the flow of hot granules leads to a constant increase in air temperature due to the heat transferred from the granules, which makes it necessary to determine the final temperature of the air leaving the granulation tower. For this purpose, a mathematical model was developed and calculation equations were obtained to determine the temperature of the air in contact with the surface of the pellet and the temperature profile inside the pellet. Numerical calculations of the calculation equations made it possible to obtain temperature profiles of the granule along its radius. It is emphasized that the theoretically obtained temperature profile cannot be an accurate indicator of the real temperature of the pellet when it falls in the granulation tower. Analysis of the calculated results shows that the temperature of the granules in the lower part of the granulation tower is 60–62 °C. This temperature corresponds to the practically confirmed final temperature of the granule, which was measured on the experimental stand.
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发文量
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审稿时长
8 weeks
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