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AN OPTIMAL ENERGY RECOVERY SCHEM FOR CATALYTIC REFORMER GASES

机译:催化重整炉的最佳能量回收方案

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摘要

Based on the idea of integrated energy utilization of process system, an original forced cooling scheme for catalytic gases is presented. Catalytic gases release heat to an additional steam generator, which works as heat source for LiBr absorption chiller. The absorption chiller supplies cold energy and further cools the process gases in order to increase the production of LPG and decrease the energy consumption.Liquor condensate quantity of the mixed hydrocarbons is calculated under a range of temperature and a certain pressure. In the case of 50t/h catalytic reformer, the theoretical calculation shows the technical feasibility of this scheme. The heat released from catalytic gases completely satisfies the heat load of LiBr absorption chiller. Production of LPG is increased by about 0.50t/h. Economic analysis proves that the forced cooling scheme is superior in benefit. For the energy recovery scheme and forced cooling system, the total capital cost is roughly RMB2,500,000, annual benefit amounts to RMB3,346,000 and the payback period is less than 9 months. It is an optimal scheme to recover the released heat from work process and drive absorption chiller, and then to utilize the cold energy in the process itself.
机译:基于过程系统集成能源利用的思想,提出了一种催化气体的原始强制冷却方案。催化气体将热量释放到另一个蒸汽发生器,该蒸汽发生器用作LiBr吸收式制冷机的热源。吸收式制冷机提供冷能并进一步冷却工艺气体,以增加液化石油气的产量并降低能耗。在一定温度和一定压力下,混合烃的冷凝液量可以计算出来。在50t / h催化重整器的情况下,理论计算表明该方案的技术可行性。催化气体释放的热量完全满足LiBr吸收式制冷机的热负荷。 LPG的产量提高了约0.50t / h。经济分析证明,强制冷却方案具有优越的效益。对于能源回收计划和强制冷却系统,总资本成本约为人民币250万元,年收益约为人民币334.6万元,投资回收期少于9个月。这是从工作过程中回收释放的热量并驱动吸收式冷却器,然后在过程本身中利用冷能的最佳方案。

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