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首页> 外文期刊>Chemical Product and Process Modeling >Modelling and Optimization of Crude Oil Hydrotreating Process in Trickle Bed Reactor: Energy Consumption and Recovery Issues
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Modelling and Optimization of Crude Oil Hydrotreating Process in Trickle Bed Reactor: Energy Consumption and Recovery Issues

机译:ckle流床反应器中原油加氢处理过程的建模和优化:能耗和回收问题

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Energy consumption is a very important consideration for reducing environmental impact and maximizing the profitability of operations. Since high temperatures are employed in hydrotreating (HDT) processes, hot effluents can be used to heat other cold process streams. The aim of the present paper is to describe and analyze the heat integration (during hydrotreating of crude oil in trickle bed reactor) of a hydrotreating plant’s process based upon experimental work. In this work, crude oil is hydrotreated upon a commercial cobalt-molybdenum on alumina catalyst presulfided at specified conditions. Detailed pilot plant experiments are conducted in a continuous flow isothermal trickle bed reactor (TBR) in which the main hydrotreating reactions, are hydrodesulfurization (HDS), hydrodenitrogenation (HDN), hydrodeasphaltenization (HDAs) and hydrodemetallization (HDM). The latter includes hydrodevanadization (HDV) and hydrodenickelation (HDNi). The reaction temperature, the hydrogen pressure, and the liquid hourly space velocity (LHSV) are varied within certain ranges, with constant hydrogen to oil ratio (H2/Oil). Experimental information obtained from a pilot plant, together with kinetics and reactor modeling tools,and a commercial process data are employed for heat integration process model. The optimization problem to minimize the overall annual cost is formulated as a Non-Linear Programming (NLP) problem, which is solved using Successive Quadratic Programming (SQP) within gPROMS.
机译:能耗是减少环境影响和最大程度提高运营盈利能力的重要考虑因素。由于在加氢处理(HDT)过程中采用了高温,因此热废液可用于加热其他冷过程物流。本文的目的是基于实验工作来描述和分析加氢处理厂工艺过程的热集成(在滴流床反应器中对原油进行加氢处理期间)。在这项工作中,将原油在指定条件下预硫化的市售钴钼催化剂上加氢处理。在连续流等温滴流床反应器(TBR)中进行了详细的中试实验,其中主要的加氢处理反应为加氢脱硫(HDS),加氢脱氮(HDN),加氢脱沥青(HDA)和加氢脱金属(HDM)。后者包括加氢脱醛(HDV)和加氢脱镍(HDNi)。反应温度,氢气压力和液时空速(LHSV)在一定范围内变化,且氢气与油的比例恒定(H 2 /油)。从中试工厂获得的实验信息,以及动力学和反应堆建模工具以及商业过程数据都用于热集成过程模型。最大限度地降低年度总成本的优化问题被表述为非线性规划(NLP)问题,可使用gPROMS中的连续二次规划(SQP)解决。

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