Performance Assessment of Coupled Concentrated Photovoltaic-Thermal and Vacuum Membrane Distillation (CPVT-VMD) System for Water Desalination

Author:

Santana Juan Pablo1ORCID,Rivera-Solorio Carlos I.1ORCID,Chew Jia Wei2ORCID,Tan Yong Zen2ORCID,Gijón-Rivera Miguel3ORCID,Acosta-Pazmiño Iván1ORCID

Affiliation:

1. Tecnologico de Monterrey, Escuela de Ingeniería y Ciencias, Ave. Eugenio Garza Sada 2501, Monterrey 64849, NL, Mexico

2. School of Chemical and Biomedical Engineering, Nanyang Technological University, 62 Nanyang Drive, Singapore 637459, Singapore

3. Tecnologico de Monterrey, Escuela de Ingeniería y Ciencias, Vía Atlixcáyotl 5718, Reserva Territorial Atlixcáyotl, Puebla 72453, PUE, Mexico

Abstract

Numerical simulations were carried out to assess the technical and economic feasibility of a solar water desalination system that has a novel hybrid Concentrating Photovoltaic Thermal (CPVT) collector coupled with a Vacuum Membrane Distillation (VMD) process. A special characteristic of this CPVT is its triangular receiver with PV cells facing the reflecting surface. This type of receiver has the advantage of generating more electricity with less PV surface area and great potential to be used to hybridize conventional parabolic thermal collectors. TRNSYS was employed to analyze the annual performance of the CPVT-VMD system evaluating parameters such as solar fraction, specific permeate production and specific energy production for different coastal cities. In the dynamic simulations, local annual weather data and specific information about the characteristics and operating conditions of a real CPVT collector and a VMD module were considered. From the parametric analysis the optimal surface area of collectors and the input temperature of the VDM module were determined. A maximum specific permeate of 218.410 m 3/m2VMD for Acapulco, MX, and a minimum of 170.365 m 3/m2VMD for Singapore, SG, were achieved for the proposed CPVT-VMD system of four solar collectors with an operating set temperature of 55 °C. An economic profit was found after 7 years for Acapulco city, which showed great potential to use solar energy from hybrid CPVT collectors for a VMD process to provide freshwater in coastal cities.

Funder

Tecnologico de Monterrey Challenge-Based Research Funding Program

Publisher

MDPI AG

Subject

Energy (miscellaneous),Energy Engineering and Power Technology,Renewable Energy, Sustainability and the Environment,Electrical and Electronic Engineering,Control and Optimization,Engineering (miscellaneous),Building and Construction

Reference50 articles.

1. United Nations World Water Assessment Programme (2018). The United Nations World Water Development report 2018: Nature-Based Solutions for Water, UNESCO.

2. Al-Obaidi, M.A., Zubo, R.H.A., Rashid, F.L., Dakkama, H.J., Abd-Alhameed, R., and Mujtaba, I.M. (2022). Evaluation of Solar Energy Powered Seawater Desalination Processes: A Review. Energies, 15.

3. The global status of desalination: An assessment of current desalination technologies, plants and capacity;Eke;Desalination,2020

4. A comprehensive techno-economical review of indirect solar desalination;Ali;Renew. Sustain. Energy Rev.,2011

5. International Desalination Association (IDA) (2011). The IDA Desalination Yearbook 2011–2012 | Water Desalination Report, IDA.

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