Efficient Solution Strategy for Stage-wise MINLP Model of Interplant Heat Integration using Heat Recovery Loop

Interplant Heat Integration using Heat Recovery Loop (HRL) is very different from intra-plant Heat Integration. As the heat sources and sinks are always separated in different regions, some additional factors should be focused on, i.e. capital cost of heat exchangers, installation cost of pumps and...

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Main Authors: C. Chang, Y. Wang, X. Feng, P. Zhang
Format: Article
Language:English
Published: AIDIC Servizi S.r.l. 2015-09-01
Series:Chemical Engineering Transactions
Online Access:https://www.cetjournal.it/index.php/cet/article/view/4419
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spelling doaj-844383bd10dd4050825c4e46f2a09e642021-02-20T21:07:01ZengAIDIC Servizi S.r.l.Chemical Engineering Transactions2283-92162015-09-014510.3303/CET1545012Efficient Solution Strategy for Stage-wise MINLP Model of Interplant Heat Integration using Heat Recovery LoopC. ChangY. WangX. FengP. ZhangInterplant Heat Integration using Heat Recovery Loop (HRL) is very different from intra-plant Heat Integration. As the heat sources and sinks are always separated in different regions, some additional factors should be focused on, i.e. capital cost of heat exchangers, installation cost of pumps and pipelines for long distance, and operation cost of pumping power and heat loss during the transportation. Based on economic criteria, this paper presents a stage-wise MINLP model for HRL designs considering the factors aforementioned. Unlike traditional heat exchanger networks (HENS), the flow rate of intermediate-fluid is considered as an important variable which results in a large complex, non-convex model. An efficient strategy is proposed for the problem by sequentially solving an MILP, an MINLP and a NLP. The distance plays a significant role in the design of HRL and it significantly affects the investment of pipelines. The optimum results show that the influence of pumps is relatively less. An industry case study is demonstrated to illustrate the efficiency of the strategy.https://www.cetjournal.it/index.php/cet/article/view/4419
collection DOAJ
language English
format Article
sources DOAJ
author C. Chang
Y. Wang
X. Feng
P. Zhang
spellingShingle C. Chang
Y. Wang
X. Feng
P. Zhang
Efficient Solution Strategy for Stage-wise MINLP Model of Interplant Heat Integration using Heat Recovery Loop
Chemical Engineering Transactions
author_facet C. Chang
Y. Wang
X. Feng
P. Zhang
author_sort C. Chang
title Efficient Solution Strategy for Stage-wise MINLP Model of Interplant Heat Integration using Heat Recovery Loop
title_short Efficient Solution Strategy for Stage-wise MINLP Model of Interplant Heat Integration using Heat Recovery Loop
title_full Efficient Solution Strategy for Stage-wise MINLP Model of Interplant Heat Integration using Heat Recovery Loop
title_fullStr Efficient Solution Strategy for Stage-wise MINLP Model of Interplant Heat Integration using Heat Recovery Loop
title_full_unstemmed Efficient Solution Strategy for Stage-wise MINLP Model of Interplant Heat Integration using Heat Recovery Loop
title_sort efficient solution strategy for stage-wise minlp model of interplant heat integration using heat recovery loop
publisher AIDIC Servizi S.r.l.
series Chemical Engineering Transactions
issn 2283-9216
publishDate 2015-09-01
description Interplant Heat Integration using Heat Recovery Loop (HRL) is very different from intra-plant Heat Integration. As the heat sources and sinks are always separated in different regions, some additional factors should be focused on, i.e. capital cost of heat exchangers, installation cost of pumps and pipelines for long distance, and operation cost of pumping power and heat loss during the transportation. Based on economic criteria, this paper presents a stage-wise MINLP model for HRL designs considering the factors aforementioned. Unlike traditional heat exchanger networks (HENS), the flow rate of intermediate-fluid is considered as an important variable which results in a large complex, non-convex model. An efficient strategy is proposed for the problem by sequentially solving an MILP, an MINLP and a NLP. The distance plays a significant role in the design of HRL and it significantly affects the investment of pipelines. The optimum results show that the influence of pumps is relatively less. An industry case study is demonstrated to illustrate the efficiency of the strategy.
url https://www.cetjournal.it/index.php/cet/article/view/4419
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AT ywang efficientsolutionstrategyforstagewiseminlpmodelofinterplantheatintegrationusingheatrecoveryloop
AT xfeng efficientsolutionstrategyforstagewiseminlpmodelofinterplantheatintegrationusingheatrecoveryloop
AT pzhang efficientsolutionstrategyforstagewiseminlpmodelofinterplantheatintegrationusingheatrecoveryloop
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