提高压缩机泵送系统和制冷装置的效率,为尿素合成装置提供液态co2和nh3

G. K. Lavrenchenko, B. Hrudka
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引用次数: 1

摘要

二氧化碳被大量用于生产尿素,这是一种高效的氮肥。在多级压缩机中压缩至15mpa压力,送入尿素合成装置。压缩机压缩二氧化碳的比能耗为0.16 kWh/kg。在压缩机泵送和制冷机组的系统中使用可能更有利可图。它们可以用来液化二氧化碳并将其压缩到15 MPa的压力,然后再将其用于尿素的合成。在最简单的方案中,系统中加入氨压缩制冷机(ACRM)以提高效率。该系统用于液化和压缩CO2的比能耗为0.118 kWh/kg。若将ACRM更换为吸收式制冷机,单位成本可降至0.09 kWh/kg。这两种系统可用于提高尿素产量或确保装置在夏季运行期间的稳定运行。分析表明,进一步改进整个系统的工艺方案,将彻底放弃采用将CO2压缩至15 MPa压力后再供给尿素合成装置的压缩机方法。要做到这一点,你需要在系统中包括一个额外的吸收式溴化锂制冷机。在本方案中,压缩机-抽油机将同时为尿素合成提供压力为15 MPa的液态二氧化碳和氨。尿素日产量由1400吨提高到2000吨,需增加进料液CO2 62 t/h,液NH3 - 47.5 t/h。圣经14,图3
本文章由计算机程序翻译,如有差异,请以英文原文为准。
INCREASING THE EFFICIENCY OF THE SYSTEMS OF COMPRESSOR-PUMPING AND REFRIGERATION UNITS SUPPLYING LIQUID CO2 AND NH3 TO THE UNIT FOR CARBAMIDE SYNTHESIS
Carbon dioxide is used in large volumes to produce urea, a highly efficient nitrogen fertilizer. It is compressed in a multistage compressor to a pressure of 15 MPa and fed to the urea synthesis unit. The specific energy consumption for the compression of carbon dioxide by a compressor reaches 0.16 kWh/kg. It may be more profitable to use in the system of compressor-pumping and refrigeration units. They can be used to liquefy carbon dioxide and compress it to pressure 15 MPa before feeding it to the synthesis of urea. In the simplest scheme, an ammonia compression refrigeration machine (ACRM) is included in the system to improve efficiency. The specific energy consumption in such a system for the liquefaction and compression of CO2 is 0.118 kWh/kg. In case of replacement of the ACRM with an absorption refrigeration machine, unit costs can be reduced to 0.09 kWh/kg. These two systems can be used to increase urea production or to ensure stable operation of the units during the summer period of their operation. The analysis showed that further improvement of the technological scheme of the entire system will completely abandon the use of the compressor method of compression of CO2 to pressure 15 MPa before its supply to the urea synthesis unit. To do this, you need to include an additional absorption lithium bromide refrigeration machine in the system. In this scheme, the compressor-pumping unit will provide the simultaneous supply of liquid carbon dioxide and ammonia for the synthesis of urea with a pressure of 15 MPa. To increase the daily production of urea from 1400 to 2000 tons, it is necessary to increase the feed liquid CO2 in the amount of 62 t/hour and liquid NH3 — 47.5 t/hour. Bibl. 14, Fig. 3.
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