Thermal energy recovery of low grade waste heat in hydrogenation process

The waste heat recovery technologies have become very relevant since many industrial plants continuously reject large amounts of thermal energy during normal operation which contributes to the increase of the production costs and also impacts the environment. The simulation programs used in industri...

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Main Author: Hedström, Sofia
Format: Others
Language:English
Published: Karlstads universitet, Fakulteten för hälsa, natur- och teknikvetenskap (from 2013) 2014
Subjects:
Online Access:http://urn.kb.se/resolve?urn=urn:nbn:se:kau:diva-32335
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spelling ndltd-UPSALLA1-oai-DiVA.org-kau-323352014-06-25T05:00:10ZThermal energy recovery of low grade waste heat in hydrogenation processengÅtervinning av lågvärdig spillvärme från en hydreringsprocessHedström, SofiaKarlstads universitet, Fakulteten för hälsa, natur- och teknikvetenskap (from 2013)2014Low-grade waste heatWaste heat recoveryOrganic Rankine CycleAbsorption RefrigerationAspen PlusSteady-state simulationsModeling and designThe waste heat recovery technologies have become very relevant since many industrial plants continuously reject large amounts of thermal energy during normal operation which contributes to the increase of the production costs and also impacts the environment. The simulation programs used in industrial engineering enable development and optimization of the operational processes in a cost-effective way. The company Chematur Engineering AB, which supplies chemical plants in many different fields of use on a worldwide basis, was interested in the investigation of the possibilities for effective waste heat recovery from the hydrogenation of dinitrotoluene, which is a sub-process in the toluene diisocyanate manufacture plant. The project objective was to implement waste heat recovery by application of the Organic Rankine Cycle and the Absorption Refrigeration Cycle technologies. Modeling and design of the Organic Rankine Cycle and the Absorption Refrigeration Cycle systems was performed by using Aspen Plus® simulation software where the waste heat carrier was represented by hot water, coming from the internal cooling system in the hydrogenation process. Among the working fluids investigated were ammonia, butane, isobutane, propane, R-123, R-134a, R-227ea, R-245fa, and ammonia-water and LiBr-water working pairs. The simulations have been performed for different plant capacities with different temperatures of the hydrogenation process. The results show that the application of the Organic Rankine Cycle technology is the most feasible solution where the use of ammonia, R-123, R-245fa and butane as the working fluids is beneficial with regards to power production and pay-off time, while R-245fa and butane are the most sustainable choices considering the environment. Student thesisinfo:eu-repo/semantics/bachelorThesistexthttp://urn.kb.se/resolve?urn=urn:nbn:se:kau:diva-32335application/pdfinfo:eu-repo/semantics/openAccess
collection NDLTD
language English
format Others
sources NDLTD
topic Low-grade waste heat
Waste heat recovery
Organic Rankine Cycle
Absorption Refrigeration
Aspen Plus
Steady-state simulations
Modeling and design
spellingShingle Low-grade waste heat
Waste heat recovery
Organic Rankine Cycle
Absorption Refrigeration
Aspen Plus
Steady-state simulations
Modeling and design
Hedström, Sofia
Thermal energy recovery of low grade waste heat in hydrogenation process
description The waste heat recovery technologies have become very relevant since many industrial plants continuously reject large amounts of thermal energy during normal operation which contributes to the increase of the production costs and also impacts the environment. The simulation programs used in industrial engineering enable development and optimization of the operational processes in a cost-effective way. The company Chematur Engineering AB, which supplies chemical plants in many different fields of use on a worldwide basis, was interested in the investigation of the possibilities for effective waste heat recovery from the hydrogenation of dinitrotoluene, which is a sub-process in the toluene diisocyanate manufacture plant. The project objective was to implement waste heat recovery by application of the Organic Rankine Cycle and the Absorption Refrigeration Cycle technologies. Modeling and design of the Organic Rankine Cycle and the Absorption Refrigeration Cycle systems was performed by using Aspen Plus® simulation software where the waste heat carrier was represented by hot water, coming from the internal cooling system in the hydrogenation process. Among the working fluids investigated were ammonia, butane, isobutane, propane, R-123, R-134a, R-227ea, R-245fa, and ammonia-water and LiBr-water working pairs. The simulations have been performed for different plant capacities with different temperatures of the hydrogenation process. The results show that the application of the Organic Rankine Cycle technology is the most feasible solution where the use of ammonia, R-123, R-245fa and butane as the working fluids is beneficial with regards to power production and pay-off time, while R-245fa and butane are the most sustainable choices considering the environment.
author Hedström, Sofia
author_facet Hedström, Sofia
author_sort Hedström, Sofia
title Thermal energy recovery of low grade waste heat in hydrogenation process
title_short Thermal energy recovery of low grade waste heat in hydrogenation process
title_full Thermal energy recovery of low grade waste heat in hydrogenation process
title_fullStr Thermal energy recovery of low grade waste heat in hydrogenation process
title_full_unstemmed Thermal energy recovery of low grade waste heat in hydrogenation process
title_sort thermal energy recovery of low grade waste heat in hydrogenation process
publisher Karlstads universitet, Fakulteten för hälsa, natur- och teknikvetenskap (from 2013)
publishDate 2014
url http://urn.kb.se/resolve?urn=urn:nbn:se:kau:diva-32335
work_keys_str_mv AT hedstromsofia thermalenergyrecoveryoflowgradewasteheatinhydrogenationprocess
AT hedstromsofia atervinningavlagvardigspillvarmefranenhydreringsprocess
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