Evaluation of the performance of pressure retarded osmosis (pro) membrane modules and systems for renewable energy recovery

Pressure retarded osmosis (PRO) is an osmotically-driven membrane process (ODMP) to recover renewable osmotic energy from salinity gradients. This project aims to evaluate performance of PRO membrane modules and systems for osmotic energy recovery. Numerical models were developed to simulate hollow...

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Main Author: Ang, Pancy
Other Authors: She Qianhong
Format: Final Year Project
Language:English
Published: 2016
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Online Access:http://hdl.handle.net/10356/67370
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Institution: Nanyang Technological University
Language: English
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spelling sg-ntu-dr.10356-673702023-03-03T17:27:26Z Evaluation of the performance of pressure retarded osmosis (pro) membrane modules and systems for renewable energy recovery Ang, Pancy She Qianhong School of Civil and Environmental Engineering Nanyang Environment and Water Research Institute DRNTU::Engineering Pressure retarded osmosis (PRO) is an osmotically-driven membrane process (ODMP) to recover renewable osmotic energy from salinity gradients. This project aims to evaluate performance of PRO membrane modules and systems for osmotic energy recovery. Numerical models were developed to simulate hollow fibre module performance. The effects of flow configuration (i.e., co-current vs counter-current flow of draw solution (DS) and feed solution (FS)), hollow fibre module parameters (i.e., fibre diameter and module length), DS and FS flow rate on module performance were investigated. Different configurations for connecting a group of modules were designed and their performance were evaluated. Three possible designs of PRO system were developed and compared for their performance. The results obtained shown that smaller module diameter, shorter module length, draw flow rate 6000L/h, feed flow rate 6000L/h and counter-current configuration rendered a better PRO module performance, defined by a higher peak !"#$. Parallel module configuration in PRO system design 3 provided the highest overall PRO system performance with !%" = 3.67+,. This was due to additional ERDs to recover hydraulic pressure energy generated. While this research aims to determine which PRO module configuration and PRO system design has the highest PRO system performance, future research can use the developed model and simulation results to optimize PRO system design and parameters. Additionally, investigation of performance of PRO hollow fibre (HF) modules in a PRO pilot plant must be carried out to verify the numerical modeling results obtained in this research. Bachelor of Engineering (Environmental Engineering) 2016-05-16T05:38:29Z 2016-05-16T05:38:29Z 2016 Final Year Project (FYP) http://hdl.handle.net/10356/67370 en Nanyang Technological University 76 p. application/pdf
institution Nanyang Technological University
building NTU Library
continent Asia
country Singapore
Singapore
content_provider NTU Library
collection DR-NTU
language English
topic DRNTU::Engineering
spellingShingle DRNTU::Engineering
Ang, Pancy
Evaluation of the performance of pressure retarded osmosis (pro) membrane modules and systems for renewable energy recovery
description Pressure retarded osmosis (PRO) is an osmotically-driven membrane process (ODMP) to recover renewable osmotic energy from salinity gradients. This project aims to evaluate performance of PRO membrane modules and systems for osmotic energy recovery. Numerical models were developed to simulate hollow fibre module performance. The effects of flow configuration (i.e., co-current vs counter-current flow of draw solution (DS) and feed solution (FS)), hollow fibre module parameters (i.e., fibre diameter and module length), DS and FS flow rate on module performance were investigated. Different configurations for connecting a group of modules were designed and their performance were evaluated. Three possible designs of PRO system were developed and compared for their performance. The results obtained shown that smaller module diameter, shorter module length, draw flow rate 6000L/h, feed flow rate 6000L/h and counter-current configuration rendered a better PRO module performance, defined by a higher peak !"#$. Parallel module configuration in PRO system design 3 provided the highest overall PRO system performance with !%" = 3.67+,. This was due to additional ERDs to recover hydraulic pressure energy generated. While this research aims to determine which PRO module configuration and PRO system design has the highest PRO system performance, future research can use the developed model and simulation results to optimize PRO system design and parameters. Additionally, investigation of performance of PRO hollow fibre (HF) modules in a PRO pilot plant must be carried out to verify the numerical modeling results obtained in this research.
author2 She Qianhong
author_facet She Qianhong
Ang, Pancy
format Final Year Project
author Ang, Pancy
author_sort Ang, Pancy
title Evaluation of the performance of pressure retarded osmosis (pro) membrane modules and systems for renewable energy recovery
title_short Evaluation of the performance of pressure retarded osmosis (pro) membrane modules and systems for renewable energy recovery
title_full Evaluation of the performance of pressure retarded osmosis (pro) membrane modules and systems for renewable energy recovery
title_fullStr Evaluation of the performance of pressure retarded osmosis (pro) membrane modules and systems for renewable energy recovery
title_full_unstemmed Evaluation of the performance of pressure retarded osmosis (pro) membrane modules and systems for renewable energy recovery
title_sort evaluation of the performance of pressure retarded osmosis (pro) membrane modules and systems for renewable energy recovery
publishDate 2016
url http://hdl.handle.net/10356/67370
_version_ 1759855056655482880