夹点技术在空分装置中多流板翅式换热器的建模与设计

IF 2.3 4区 工程技术 Q3 ENGINEERING, CHEMICAL International Journal of Chemical Engineering Pub Date : 2023-11-30 DOI:10.1155/2023/9204268
Nazar Oudah Mousa Alyaseen, Salem Mehrzad, Mohammad Reza Saffarian
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引用次数: 0

摘要

近年来,低温技术取得了相当大的进步。空气分离装置在许多应用中都采用了带板式翅片换热器的冷箱。低温技术在许多工业过程中用于回收热量和减少能源消耗。多流板翅式换热器(MSPFHE)在空分装置(ASU)设计中得到了广泛的应用。板翅式换热器是低温工业中最重要的应用之一,是目前研究的重点。通过利用来自空气分离装置(ASU)蒸馏塔的气流的能量来冷却进入该操作的空气,以减少能源的使用。本项目旨在研制一种多流板翅式换热器(MSPFHE),该换热器可在空分机组冷箱中实际使用,且不受限制。基于复合曲线的捏点技术被用于MSPFHE的创建。使用夹紧技术,可以将多流交换器划分为代表焓区间的块部分,并确定流的进入和离开位置。首先对MSPFHE热设计模型中使用的相关性进行建模,并将其与早期模型进行比较,作为这项工作的一部分。该模型已转化为MATLAB代码,并在两个案例研究中使用,以在分级步骤中产生可接受的结果。热力学性质的计算、传热、压降、翅片类型的选择以及最终换热器的尺寸都是MSPFHE设计的一部分。最后,基于软件重现自然产生的相同环境条件的能力,案例研究结果已使用Aspen EDR进行验证。这些发现与文献中的发现相匹配,并被确定为可靠和一致。
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Modeling and Design of a Multistream Plate-Fin Heat Exchanger in the Air Separation Units by Pinch Technology
Recent years have seen considerable advancement in cryogenic technology. Air separation devices have used the cold box with heat exchanger plate-fin (PFHE) in numerous applications. Cryogenic technologies are used in many industrial processes to recover heat and reduce energy consumption. The multistream plate-fin heat exchanger (MSPFHE) is heavily utilized in the air separation plant’s (ASU) design. The plate-fin heat exchanger, one of the most important applications in the cryogenic industry, is the focus of the current investigation. The air entering this operation has been cooled by utilizing energy from streams originating from the distillation tower in the air separation unit (ASU) to reduce energy usage. The project aims to develop and create a multistream plate-fin heat exchanger (MSPFHE) that may be used in the cold box of an air separation unit practically and without limitations. The pinch technique, a method based on the usage of composite curves, was used in the creation of MSPFHE. With pinch technology, it is possible to divide a multistream exchanger into block portions that represent enthalpy intervals and identify the entry and departure sites for the streams. The correlations used in the MSPFHE thermal design model were first modeled and compared to earlier models as part of this effort. This model has been turned into MATLAB code and utilized in two case studies to yield acceptable results during the sizing step. Calculations of thermodynamic properties, heat transfer, pressure drop, choice of fin type, and final heat exchanger size were all part of the design of the MSPFHE. Finally, based on the software’s ability to reproduce the identical environmental conditions nature produces, the case study results have been validated using Aspen EDR. These findings were matched to findings from the literature and determined to be reliable and consistent.
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来源期刊
International Journal of Chemical Engineering
International Journal of Chemical Engineering Chemical Engineering-General Chemical Engineering
CiteScore
4.00
自引率
3.70%
发文量
95
审稿时长
14 weeks
期刊介绍: International Journal of Chemical Engineering publishes papers on technologies for the production, processing, transportation, and use of chemicals on a large scale. Studies typically relate to processes within chemical and energy industries, especially for production of food, pharmaceuticals, fuels, and chemical feedstocks. Topics of investigation cover plant design and operation, process design and analysis, control and reaction engineering, as well as hazard mitigation and safety measures. As well as original research, International Journal of Chemical Engineering also publishes focused review articles that examine the state of the art, identify emerging trends, and suggest future directions for developing fields.
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