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HEAT TRANSFER FROM THE WALLS OF A COMPRESSOR CYLINDER TO THE GAS IN THE COURSE OF GAS INTAKE INTO A RECIPROCATING COMPRESSOR

机译:在进气进入往复式压缩机的过程中,从压缩机圆筒的墙壁从压缩机圆柱的壁传递到气体中

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摘要

As moist gas enters a reciprocating compressor in the course of the operation of the compressor, heating of the gas depends on the degree of dryness of the gas and the rate of evaporation of the liquid droplets in the gas as well as on the coefficient of thermal conductivity of the moist gas and on the coefficient of heat transfer from the walls of the compressor cylinder to the gas. However, once the rotational speed of the compressor shaft reaches 300 min(-1), the length of the gas intake process falls to one-tenth the length of the period of total evaporation of the droplets, hence the process of evaporation begins to exert a practical influence on the temperature of the gas. The gas temperature increases substantially due to the increase in the thermal conductivity coefficient of the moist gas and in the coefficient of heat transfer from the walls of the compressor cylinder to the gas. With a decrease in the degree of dryness of the gas from 1.0 to 0.6, preheating of the gas grows 7-8-fold, which leads to a reduction in the density of the gas in the filled work space of the cylinder and, as a consequence, to a decrease in the adiabatic efficiency of the compressor eta(i) by 14-16%, and this must be taken into account in the management of the production process.
机译:由于湿气体在压缩机的操作过程中进入往复式压缩机,因此气体的加热取决于气体的干燥度和气体中液滴的蒸发速率以及热量系数湿气的电导率和从压缩机圆柱壁到气体的热传递系数。然而,一旦压缩机轴的旋转速度达到300分钟(-1),就液体进气过程的长度落到了液滴总蒸发周期的十分之一,因此蒸发过程开始发挥对气体温度的实际影响。由于湿气体的导热系数的增加和从压缩机圆柱壁的热传递系数增加,气体温度基本上增加基本上增加。随着气体的干燥度降低,气体的预热量为7-8倍,这导致气缸的填充工作空间中的气体密度降低,并且作为a结果,减少了压缩机ETA(i)的绝热效率14-16%,这必须考虑到生产过程的管理方面。

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