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Microchannel geometry vs flow parameters for controlling nanoprecipitation of polymeric nanoparticles

Research Abstract

Channel-based microfluidics was proven to be a helpful platform for reproducible preparation of nanoparticles (NPs), where controlled mixing of fluids allows homogeneous and tuned process of NPs formation. Nanoprecipitation is a popular method for polymeric NPs formation based on controlled precipitation of a polymer upon mixing of two miscible solvents. Conventionally, flow rate, flow rate ratio and polymer concentration have been utilized to control NPs size and polydispersity. However, minimum attention has been given to the effect of channel geometry on nanoprecipitation process. In our study, we investigated the effect of channel geometry and design on the size and polydispersity index (PDI) of poly (lactic-co-glycolic) acid (PLGA) NPs. Ten different designs with varied channel length, aspect ratio, number of interfaces and channel curvature were fabricated and tested. These variations were introduced to modify the diffusion rate, the interface area or to introduce Dean flow, all of which will change the mixing time . The effects of these variations were compared to that of different flow parameters. Change in channel length did not have a significant effect on particle size. However, increasing the diffusion area and reducing significantly reduced NPs’ size. Moreover, when curvature was introduced into the channel, mixing was enhanced, and particle size was decreased in a manner dependent on the velocity of the generated Dean flow. While different flow parameters continue to be the main approach for adjusting NPs properties, we demonstrate that channel geometry modification enables tuning of NPs’ size using simple designs that can be easily adapted.

Research Authors
Mahmoud Abdelkarim, Noura H. Abd Ellah, Mahmoud Elsabahy, Sara A. Abouelmagd, And Mohamed Abdelgawad
Research Journal
Colloids and Surfaces A: Physicochemical and Engineering Aspects
Research Pages
NULL
Research Publisher
Elsevier
Research Rank
1
Research Vol
Volume 611, 125774
Research Website
https://doi.org/10.1016/j.colsurfa.2020.125774
Research Year
2021

A Comprehensive Study of the Effect of Spatial Resolution and Color of Digital Images on Vehicle Classification

Research Abstract

NULL

Research Authors
Khaled F. Hussain, Mahmoud Afifi,, Ghada Moussa
Research Journal
EEE Transactions on Intelligent Transportation Systems
Research Member
Research Pages
NULL
Research Publisher
NULL
Research Rank
1
Research Vol
NULL
Research Website
NULL
Research Year
2018

Design Scheme of Multiple-Subway Lines for Minimizing Passengers Transfers in Mega-Cities Transit Networks

Research Abstract

NULL

Research Authors
Mahmoud Owais, Abdou SH Ahmed, Ghada Moussa Ahmed Abdelmoamen Khalil
Research Journal
nternational Journal of Rail Transportation
Research Member
Research Pages
NULL
Research Publisher
NULL
Research Rank
1
Research Vol
NULL
Research Website
NULL
Research Year
2020

Innovative nanocomposite formulations for enhancing biogas andbiofertilizers production from anaerobic digestion of organic waste

Research Abstract

Herein, the design of nanocomposite (NC) formulations that consist of metal enzyme cofactors, highly conductive carbon materials, DIET activators, to boost AD biogas production from anaerobically incubated cattle manure are investigated and discussed. Three different NC formulations were designed and synthesized: zinc ferrite (ZnFe), ZnFe with 10% carbon nanotubes (ZFCNTs), and zinc ferrite with 10% C76 fullerene (ZFC76). The structure and morphology of the nano-additives were investigated via x-ray diffraction (XRD), field emission scanning electron microscopy (FESEM), energy dispersive x-ray (EDX), and transmission electron microscopy (TEM). NCs were supplemented to lab-scale biodigesters containing organic slurry. Biogas production was monitored daily and compared to blank biodigesters for 50 days. The maximum methane enhancement was obtained for ZnFe, which promoted methane production to 185.3%. ZFCNTs and ZFC76 showed a positive impact on the hydraulic retention time and enhanced methane production to 162% and 145.9%, respectively compared to the blank reactors.

Research Authors
Fatma Y. Hassaneen, Muhammed S. Abdallah, Nashaat Ahmed, Manar M. Taha,Shereen Mohamed. M. Abd ElAziz, Mohamed A. El-Mokhtar, Mohamed S. Badary,Nageh K. Allam
Research Journal
Bioresource Technology
Research Pages
NULL
Research Publisher
Elsevier
Research Rank
1
Research Vol
309
Research Website
NULL
Research Year
2020

Innovative nanocomposite formulations for enhancing biogas andbiofertilizers production from anaerobic digestion of organic waste

Research Abstract

Herein, the design of nanocomposite (NC) formulations that consist of metal enzyme cofactors, highly conductive carbon materials, DIET activators, to boost AD biogas production from anaerobically incubated cattle manure are investigated and discussed. Three different NC formulations were designed and synthesized: zinc ferrite (ZnFe), ZnFe with 10% carbon nanotubes (ZFCNTs), and zinc ferrite with 10% C76 fullerene (ZFC76). The structure and morphology of the nano-additives were investigated via x-ray diffraction (XRD), field emission scanning electron microscopy (FESEM), energy dispersive x-ray (EDX), and transmission electron microscopy (TEM). NCs were supplemented to lab-scale biodigesters containing organic slurry. Biogas production was monitored daily and compared to blank biodigesters for 50 days. The maximum methane enhancement was obtained for ZnFe, which promoted methane production to 185.3%. ZFCNTs and ZFC76 showed a positive impact on the hydraulic retention time and enhanced methane production to 162% and 145.9%, respectively compared to the blank reactors.

Research Authors
Fatma Y. Hassaneen, Muhammed S. Abdallah, Nashaat Ahmed, Manar M. Taha,Shereen Mohamed. M. Abd ElAziz, Mohamed A. El-Mokhtar, Mohamed S. Badary,Nageh K. Allam
Research Journal
Bioresource Technology
Research Pages
NULL
Research Publisher
Elsevier
Research Rank
1
Research Vol
309
Research Website
NULL
Research Year
2020

Innovative nanocomposite formulations for enhancing biogas andbiofertilizers production from anaerobic digestion of organic waste

Research Abstract

Herein, the design of nanocomposite (NC) formulations that consist of metal enzyme cofactors, highly conductive carbon materials, DIET activators, to boost AD biogas production from anaerobically incubated cattle manure are investigated and discussed. Three different NC formulations were designed and synthesized: zinc ferrite (ZnFe), ZnFe with 10% carbon nanotubes (ZFCNTs), and zinc ferrite with 10% C76 fullerene (ZFC76). The structure and morphology of the nano-additives were investigated via x-ray diffraction (XRD), field emission scanning electron microscopy (FESEM), energy dispersive x-ray (EDX), and transmission electron microscopy (TEM). NCs were supplemented to lab-scale biodigesters containing organic slurry. Biogas production was monitored daily and compared to blank biodigesters for 50 days. The maximum methane enhancement was obtained for ZnFe, which promoted methane production to 185.3%. ZFCNTs and ZFC76 showed a positive impact on the hydraulic retention time and enhanced methane production to 162% and 145.9%, respectively compared to the blank reactors.

Research Authors
Fatma Y. Hassaneen, Muhammed S. Abdallah, Nashaat Ahmed, Manar M. Taha,Shereen Mohamed. M. Abd ElAziz, Mohamed A. El-Mokhtar, Mohamed S. Badary,Nageh K. Allam
Research Journal
Bioresource Technology
Research Pages
NULL
Research Publisher
Elsevier
Research Rank
1
Research Vol
309
Research Website
NULL
Research Year
2020

Innovative nanocomposite formulations for enhancing biogas andbiofertilizers production from anaerobic digestion of organic waste

Research Abstract

Herein, the design of nanocomposite (NC) formulations that consist of metal enzyme cofactors, highly conductive carbon materials, DIET activators, to boost AD biogas production from anaerobically incubated cattle manure are investigated and discussed. Three different NC formulations were designed and synthesized: zinc ferrite (ZnFe), ZnFe with 10% carbon nanotubes (ZFCNTs), and zinc ferrite with 10% C76 fullerene (ZFC76). The structure and morphology of the nano-additives were investigated via x-ray diffraction (XRD), field emission scanning electron microscopy (FESEM), energy dispersive x-ray (EDX), and transmission electron microscopy (TEM). NCs were supplemented to lab-scale biodigesters containing organic slurry. Biogas production was monitored daily and compared to blank biodigesters for 50 days. The maximum methane enhancement was obtained for ZnFe, which promoted methane production to 185.3%. ZFCNTs and ZFC76 showed a positive impact on the hydraulic retention time and enhanced methane production to 162% and 145.9%, respectively compared to the blank reactors.

Research Authors
Fatma Y. Hassaneen, Muhammed S. Abdallah, Nashaat Ahmed, Manar M. Taha,Shereen Mohamed. M. Abd ElAziz, Mohamed A. El-Mokhtar, Mohamed S. Badary,Nageh K. Allam
Research Journal
Bioresource Technology
Research Pages
NULL
Research Publisher
Elsevier
Research Rank
1
Research Vol
309
Research Website
NULL
Research Year
2020

Biogas production enhancement using nanocomposites and its combustion characteristics in a concentric flow slot burner

Research Abstract

Biogas combustion is a very essential topic for the development of many industrial combustion systems and engines. This fuel can replace current fossil fuels used in burners, engines, and many other applications. Understanding the combustion characteristics of this fuel and its stability in highly turbulent flames of practical interest is the aim of this work. The percentage of CO2 in Biogas varies between 25% and 45%, which affects the combustion stability and flame structure. The present work shows that the generation of Biogas is improved by adding Ni-Co-Ferrite or Ni-ferrite nano-additives. In this work, we selected 25 flames of mixtures of natural gas and CO2, where the ratio of CO2 varies from 0% to 40%. The flames are generated in a concentric flow slot burner that produces planar two-dimensional flames. The stability characteristics and the flame structure were investigated. The flame structure is presented in …

Research Authors
Mohy S Mansour, Muhammed S Abdallah, Nageh K Allam, AM Ibrahim, Alaa M Khedr, Hazem M Al-Bulqini, Mohamed F Zayed
Research Journal
Experimental Thermal and Fluid Science
Research Pages
110014
Research Publisher
Elsevier
Research Rank
1
Research Vol
113
Research Website
https://www.sciencedirect.com/science/article/pii/S0894177719318308
Research Year
2020
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