Integrating the process of Ni (II) ions removal from aqueous solution and cooling of a photovoltaic module by 1.7 MHz ultrasound waves

In this study, Ni+2 removal from aqueous solution was investigated by concurrent usage of Fe3O4 nanoparticles and a high frequency ultrasound (1.7 MHz). In addition to Ni+2 removal, presence of the high frequency ultrasound led to being cooled photovoltaic (PV) module. Studied variables were pH and...

Full description

Bibliographic Details
Main Authors: Zakie Rostami, Masoud Rahimi, Neda Azimi
Format: Article
Language:English
Published: Razi University 2020-06-01
Series:Journal of Applied Research in Water and Wastewater
Subjects:
Online Access:https://arww.razi.ac.ir/article_1421_5e8a1cd09646baafe6b7bd029706cd97.pdf
id doaj-ada4972f8e4f4217a5b6da85264615bc
record_format Article
spelling doaj-ada4972f8e4f4217a5b6da85264615bc2021-02-12T08:21:57ZengRazi UniversityJournal of Applied Research in Water and Wastewater 2476-62832476-62832020-06-0171707610.22126/arww.2020.5091.11601421Integrating the process of Ni (II) ions removal from aqueous solution and cooling of a photovoltaic module by 1.7 MHz ultrasound wavesZakie Rostami0Masoud Rahimi1Neda Azimi2Department of Chemical Engineering, Kermanshah Branch, Islamic Azad University, Kermanshah, Iran.Department of Chemical Engineering, Faculty of Petroleum and Chemical Engineering, Razi University, Kermanshah, Iran.Department of Chemical Engineering, Kermanshah Branch, Islamic Azad University, Kermanshah, Iran.In this study, Ni+2 removal from aqueous solution was investigated by concurrent usage of Fe3O4 nanoparticles and a high frequency ultrasound (1.7 MHz). In addition to Ni+2 removal, presence of the high frequency ultrasound led to being cooled photovoltaic (PV) module. Studied variables were pH and adsorbent dose (AD). Results indicated that the Ni+2 removal efficiency increased with an increase in the pH ranging from 2 to 9. Furthermore, the Ni+2 removal efficiency boosted by an increase in the AD. However, no significant enhancement in Ni+2 removal efficiency was observed at the AD above 9 g. Generally, the maximum Ni+2 removal efficiency was about 79 % for contact time of 50 min at pH=9 and AD=9 g in the presence of ultrasound. At the efficient condition (pH=9, AD=9 g and contact time=50 min), using ultrasound showed 16-20 % enhancement in Ni+2 removal efficiency compared to no ultrasound usage. From heat transfer view, it was observed that propagation of 1.7 MHz ultrasound into nanofluid significantly has cooled the photovoltaic (PV) module. Moreover, an increase in concentration of nanofluid (AD) showed a positive effect on reduction of heat from the PV module surface and maximum generated power. Obtained data demonstrated that agitating nanofluid by 1.7 MHz ultrasound decreased temperature of the PV module up to 15.5 % compared to no cooling system.https://arww.razi.ac.ir/article_1421_5e8a1cd09646baafe6b7bd029706cd97.pdfadsorptionultrasoundfe3o4bentonitenanoparticlessono-separator
collection DOAJ
language English
format Article
sources DOAJ
author Zakie Rostami
Masoud Rahimi
Neda Azimi
spellingShingle Zakie Rostami
Masoud Rahimi
Neda Azimi
Integrating the process of Ni (II) ions removal from aqueous solution and cooling of a photovoltaic module by 1.7 MHz ultrasound waves
Journal of Applied Research in Water and Wastewater
adsorption
ultrasound
fe3o4
bentonite
nanoparticles
sono-separator
author_facet Zakie Rostami
Masoud Rahimi
Neda Azimi
author_sort Zakie Rostami
title Integrating the process of Ni (II) ions removal from aqueous solution and cooling of a photovoltaic module by 1.7 MHz ultrasound waves
title_short Integrating the process of Ni (II) ions removal from aqueous solution and cooling of a photovoltaic module by 1.7 MHz ultrasound waves
title_full Integrating the process of Ni (II) ions removal from aqueous solution and cooling of a photovoltaic module by 1.7 MHz ultrasound waves
title_fullStr Integrating the process of Ni (II) ions removal from aqueous solution and cooling of a photovoltaic module by 1.7 MHz ultrasound waves
title_full_unstemmed Integrating the process of Ni (II) ions removal from aqueous solution and cooling of a photovoltaic module by 1.7 MHz ultrasound waves
title_sort integrating the process of ni (ii) ions removal from aqueous solution and cooling of a photovoltaic module by 1.7 mhz ultrasound waves
publisher Razi University
series Journal of Applied Research in Water and Wastewater
issn 2476-6283
2476-6283
publishDate 2020-06-01
description In this study, Ni+2 removal from aqueous solution was investigated by concurrent usage of Fe3O4 nanoparticles and a high frequency ultrasound (1.7 MHz). In addition to Ni+2 removal, presence of the high frequency ultrasound led to being cooled photovoltaic (PV) module. Studied variables were pH and adsorbent dose (AD). Results indicated that the Ni+2 removal efficiency increased with an increase in the pH ranging from 2 to 9. Furthermore, the Ni+2 removal efficiency boosted by an increase in the AD. However, no significant enhancement in Ni+2 removal efficiency was observed at the AD above 9 g. Generally, the maximum Ni+2 removal efficiency was about 79 % for contact time of 50 min at pH=9 and AD=9 g in the presence of ultrasound. At the efficient condition (pH=9, AD=9 g and contact time=50 min), using ultrasound showed 16-20 % enhancement in Ni+2 removal efficiency compared to no ultrasound usage. From heat transfer view, it was observed that propagation of 1.7 MHz ultrasound into nanofluid significantly has cooled the photovoltaic (PV) module. Moreover, an increase in concentration of nanofluid (AD) showed a positive effect on reduction of heat from the PV module surface and maximum generated power. Obtained data demonstrated that agitating nanofluid by 1.7 MHz ultrasound decreased temperature of the PV module up to 15.5 % compared to no cooling system.
topic adsorption
ultrasound
fe3o4
bentonite
nanoparticles
sono-separator
url https://arww.razi.ac.ir/article_1421_5e8a1cd09646baafe6b7bd029706cd97.pdf
work_keys_str_mv AT zakierostami integratingtheprocessofniiiionsremovalfromaqueoussolutionandcoolingofaphotovoltaicmoduleby17mhzultrasoundwaves
AT masoudrahimi integratingtheprocessofniiiionsremovalfromaqueoussolutionandcoolingofaphotovoltaicmoduleby17mhzultrasoundwaves
AT nedaazimi integratingtheprocessofniiiionsremovalfromaqueoussolutionandcoolingofaphotovoltaicmoduleby17mhzultrasoundwaves
_version_ 1724273422652932096