SIMULATION OF HEAT AND MASS EXCHANGE PROCESS HEAT EXCHANGER OF SIDE-EVAPORATIVE TYPE

Grygorii Kaletnіk, V. Yaropud
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引用次数: 2

Abstract

It is known that the share of influence of the microclimate on the productivity of animals is about 20-25%. In the process of life, animals emit a large amount of heat, moisture, harmful gases, including carbon dioxide, ammonia and hydrogen sulfide. If the ventilation system does not work satisfactorily, the concentration of water vapor and harmful gases may exceed the standards, as a result of which animals drastically reduce productivity and may die. Currently, when creating livestock enterprises, it is necessary to resolve issues related to the reduction of investments, 40% of which is equipment. More than 20% of the cost of equipment falls on the heating and ventilation system; it is on it that they most often try to save money. Disagreements often arise between specialists on the deviation of microclimate parameters from optimal values for the productive qualities of farm animals. The article presents the physical and mathematical apparatus and methods for simulating the process of heat and mass transfer in an indirect-evaporative type heat exchanger for livestock buildings. The description of the process of heat and mass transfer in the heat exchanger of the indirect evaporative type of the Maisotsenko cycle is complex and requires the solution of many important mathematical problems (for example, the algorithmic solution of the combined heat and mass transfer on the surface with existing walls). Of particular importance is the development of an efficient algorithm that allows one to calculate differential equations of heat and mass transfer in partial derivatives. Therefore, the aim of the research is to describe the physical and mathematical apparatus and simulation technique (numerical simulation) of the heat and mass transfer process in an indirect evaporative type heat exchanger. As a result of analytical studies, the physico-mathematical apparatus of the process of heat and mass transfer in the heat exchanger of the indirect evaporative type of the Maisotsenko cycle was compiled, including the energy balance equation, taking into account sensitive and latent heat transfer on the surface of the wall of the wet and dry channels. The initial and limiting conditions of the heat and mass transfer model in the working part of the evaporative cooler under study are determined, which form the basis of numerical simulation in the Star CCM+ software package. A simulation technique (numerical modeling) has been developed and preliminary studies of the heat and mass transfer process in the heat exchanger of the indirect evaporative type of the Maysocenka cycle have been carried out. As a result of numerical simulation, the distributions of the temperature field, the vector field of velocities and the absolute humidity of the air flow in the heat exchanger of the indirect evaporative type of the Maysocenka cycle were obtained.
侧蒸发式换热器热质交换过程模拟
据了解,小气候对动物生产力的影响份额约为20-25%。在生命的过程中,动物会释放出大量的热量、水分、有害气体,包括二氧化碳、氨和硫化氢。如果通风系统不能令人满意地工作,水蒸气和有害气体的浓度可能会超过标准,从而导致动物的生产力大大降低并可能死亡。目前,在创建畜牧企业时,必须解决与减少投资有关的问题,其中40%是设备。超过20%的设备成本落在供暖和通风系统上;这是他们最经常尝试省钱的地方。关于小气候参数偏离农场动物生产品质的最佳值,专家之间经常产生分歧。本文介绍了畜舍用间接蒸发式换热器传热传质过程的物理和数学模拟装置和方法。Maisotsenko循环间接蒸发式换热器传热传质过程的描述是复杂的,需要解决许多重要的数学问题(例如,具有现有壁面的表面上的联合传热传质的算法解)。特别重要的是发展了一种有效的算法,使人们能够计算偏导数的传热和传质微分方程。因此,研究的目的是描述间接蒸发式换热器传热传质过程的物理和数学装置和模拟技术(数值模拟)。通过分析研究,建立了Maisotsenko循环间接蒸发式换热器传热传质过程的物理数学模型,包括考虑干湿通道壁面上的敏感传热和潜热传递的能量平衡方程。确定了所研究的蒸发冷却器工作部分传热传质模型的初始条件和极限条件,为Star CCM+软件包的数值模拟奠定了基础。本文发展了一种模拟技术(数值模拟),并对梅氏循环间接蒸发型换热器的传热传质过程进行了初步研究。通过数值模拟,得到了梅氏循环间接蒸发式换热器内空气流动的温度场、速度矢量场和绝对湿度的分布。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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