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Effect of greywater reuse on hydraulic performance of water supply pipes networks

Research Abstract

Water scarcity and declining hydraulic performance of water supply pipe networks have increased the difficulty of providing

reliable water services. Greywater reuse represents a potential approach to alleviating these challenges. This study evaluates

the effects of greywater reuse on the hydraulic performance and reliability of a water supply pipe network. Three greywater

reuse scenarios are considered: no reuse, satellite reuse, and on-site reuse, each examined for two water supply configurations,

with and without roof tanks. Hydraulic performance is assessed using a case study network modelled in WaterGEMS.

The results indicate that on-site and satellite greywater reuse increase pressure head by approximately 18% and 20%, respectively,

under peak demand conditions. However, greywater reuse also leads to reduced flow velocities, with values below 0.5 m/s

in certain pipes at peak demand, increasing the potential for sediment deposition. Reliability analysis under critical pipe failure

conditions demonstrates that greywater reuse substantially improves network resilience. In addition, fourteen combined

demand reduction and greywater reuse scenarios are analysed, showing that integrated strategies can reduce overall potable

water demand by up to 42.8%.

Research Authors
Hassan Ibrahim Mohamed Mohamed
Research Date
Research Journal
water practice and Technology
Research Pages
33
Research Publisher
IWA publishing
Research Rank
water resources
Research Vol
Vol. 21 No. 4
Research Website
https://iwaponline.com/wpt/article/21/4/1223/106958/Effect-of-greywater-reuse-on-hydraulic-performance
Research Year
2026

Toward an Integrated Intelligent Framework for Crowd Control and Management (IICCM)

Research Abstract

Managing large-scale gatherings, such as global festivals, sporting events, and religious congregations, presents substantial challenges in ensuring crowd safety and control. Innovative frameworks are essential to address these complexities effectively. The Integrated Intelligent Crowd Control and Management (IICCM) framework combines cutting-edge technologies, including Computer Vision (CV), Artificial Intelligence (AI), and the Internet of Things (IoT), to enhance participant safety and optimize crowd management. CV enables precise real time identification and tracking, AI analyzes crowd behavior to anticipate risks, and IoT gathers environmental data to improve crowd flow, alleviate congestion, and provide timely assistance. Additionally, the framework facilitates emergency evacuation planning by modeling crowd dynamics and identifying safe, efficient escape routes. Although suitable for diverse events, the Hajj pilgrimage—a uniquely large and dynamic annual gathering—provides a rigorous test case for the IICCM framework. Managing millions of participants from varied cultural and linguistic backgrounds highlights the system’s adaptability and robustness. By effectively addressing Hajj specific challenges, the IICCM framework demonstrates its scalability and applicability to other large-scale events. This research offers valuable insights for decision-makers seeking to implement advanced crowd management technologies.

Research Authors
Tarik Alafif, Mohammad Jassas, Alaa E Abdel-Hakim, Ghada Alfattni, Hassan Althobaiti, Mohammed Ikram, Amirah Alharbi, Hussam Alsharif, Mazin Alshamrani, Ebtisam Alharbi, Tahani Alsubait, Abdullah Alhawsawi, Badr Alsolami, Khalid Khayyat
Research Date
Research Department
Research Journal
IEEE Access
Research Member
Research Publisher
IEEE
Research Rank
International
Research Year
2025

Performance assessment of green hydrogen generation using concentrated system of photovoltaic panel with compound parabolic concentrator

Research Abstract

Theoretical work for concentrated solar-operated green hydrogen production system using compound parabolic
concentrator (CPC) integrated with solar photovoltaic (PV) cells driving proton membrane electrolysis (PME)
was developed, analysed, and evaluated under winter and summer conditions. Mathematical models for the
system components, including the CPC-PV integrated unit and the electrolyzer, were developed and solved. Key
system performance parameters were also evaluated. The system of equations was solved using MATLAB. Results
of the mathematical model show that for 1 m2 of the PV panel, the hydrogen production flowrate reaches a peak
on 0.0175 kg/h in summer and 0.0144 kg/h in winter, while the CPC-PV system power output can reach up to
607 W in summer and 590 W in winter. The PV efficiency in the CPC-PV system increases to about 14.75 % in
both seasons. Additionally, the overall system shows a summer and winter efficiency of nearly 13 % with a slight
variation between both seasons. The minimum achieved cost of hydrogen production of the system during
summer and winter is $0.17/kg and $0.271/kg, respectively at concentration ratio of 5. The system shows
promising performance under operation of different concentration ratios provided by CPC-PV system, highlighting
the system ability to enhance the production of green hydrogen gas cost effectively.

Research Authors
Rania S. Nada, Hamdy Hassan
Research Date
Research Journal
Solar Energy
Research Pages
113826
Research Publisher
Elsevier
Research Vol
300
Research Year
2025

Enhancing the performance of low-concentrated solar panel/thermal system via an indirect passive cooling system of phase change material with water

Research Authors
Ramadan Gad, Hamdy Hassan
Research Journal
Applied Thermal Engineering
Research Pages
128125
Research Publisher
Elsevier
Research Year
2025

Enhancing thermal management of lithium-ion batteries using phase change materials and expanded graphite: An experimental study

Research Abstract

Electric and hybrid electric vehicles are promising alternatives to tackle environmental impact and greenhouse
gas emissions associated with internal combustion engine vehicles. Electric vehicles have fueled the need for an
efficient energy storage system to provide high power output, maximum energy density, and rapid charging.
Lithium-ion batteries are a viable alternative as their high power density and energy capacity make them stand
out from their long lifespan and quick charging capabilities. However, thermal energy generated during charging
and discharging can cause safety concerns. In this regard, an experimental study was conducted to assess cooling
performance using four distinct phase-change-materials (PCM): PARA-Block, RT-54 HC, RT-44 HC and RT-35 HC
were tested in a cyclic test, which showed a reduction in the battery's maximum temperature to 59.6 
C, 50.9 ◦ C, 51.9  ◦C respectively, compared to 76.4  C with natural convection cooling. For further modification to
achieve the cell's optimum operating temperature and shape stabilized material, various weight percentages of
expanded graphite (EG) (3 %, 6 %, 12 %, 15 %) were added to obtain composite stable phase change material
(CPCM). The results showed that the battery's highest temperature decreased by almost 55 % by adding 12 % EG
to PCM RT 35 HC compared to natural cooling. In addition, the best conditions were applied for a four-battery
pack.

Research Authors
Mohamed Kh. Saudi, Mohamed Emam, Hamdy Hassan, Hidetoshi Sekiguchi, Ahmed S.G. Khalil
Research Date
Research Journal
Journal of Energy Storage
Research Pages
117427
Research Publisher
Elsevier
Research Vol
130
Research Year
2025

Parametric analysis of water-saturated porous clay structures as evaporative cooling of building integrated photovoltaic systems

Research Abstract

Passive cooling of photovoltaic systems has been demonstrated to enhance their electrical performance at costeffective
methods. Among passive mechanisms, evaporative cooling stands out, particularly when utilizing
water-saturated porous structures. This study explores the parametric analysis of a porous clay structure as an
evaporative cooler for building integrated photovoltaic (BIPV) systems. It examines key parameters such as water
saturation levels and meteorological conditions, including wind velocity and relative humidity, assessing their
influence on system’s cooling performance. A numerical heat and mass transport model, along with the evaporation
model based on energy balance principle were presented and solved for this purpose. Further, experimental
evaluation of material variations was conducted utilizing hollow porous clay and traditional hollow red
brick structures, concurrently validating the numerical model. The experimental results highlight significant
improvements, with a 6 % reduction in peak PV temperature observed when using a porous clay structure
compared to conventional red bricks. The parametric study further revealed a maximum 9.7 % reduction in peak
PV temperature at higher water saturation levels. Notably, PV electrical efficiency and output power showed
peak enhancements of 0.93 % and 1.6 %, respectively, when humidity levels were halved rather than doubled.
Additionally, doubling wind velocity led to a 1.13 % decrease in indoor room temperature compared to halved
velocity values, demonstrating the effectiveness of these parameters in optimizing building cooling and PV
performance. Moreover, water evaporation rates reached a maximum of 6.07 L/h.m
2 and a minimum of 2.4 L/h. m 2 when the wind velocity and humidity values were doubled. Moreover, the system attained its highest water consumption rate of 10.19 L/h.m 2 when wind velocity values were doubled. Hence, these findings offer essential insights, underscoring the considerable impact that different operational conditions have on the effectiveness of evaporative cooling systems.

Research Authors
Mustafa Ghazali Ali, Hamdy Hassan, Sameh A. Nada
Research Date
Research Journal
Energy
Research Publisher
Elsevier
Research Vol
320
Research Year
2025

Performance assessment of integrated heat pipes and evaporative clay hybrid system for concentrated photovoltaic (CPV) cooling and water harvesting

Research Abstract

Solar energy electricity generation with concentrated photovoltaic (CPV) panels delivering substantially higher
power output than non-concentrated panels. However, CPVs suffer from excessive heat accumulation and non-
uniform temperature distribution, both of which severely impact electrical efficiency and shorten the panels’
lifespan. This study explores the implementation of a passive evaporative cooling strategy coupled with heat pipe
to mitigate CPV temperature rise. To address this challenge, a novel dual-function mechanism is proposed,
enabling efficient CPV cooling while simultaneously capturing and condensing fresh water to minimize evaporative
cooling losses. The study evaluates the proposed water harvesting indirect cooling mechanism
(WH-ICM) against two alternative cooling strategies: the direct cooling mechanism (DCM),
where the evaporative structure is directly attached to the panel’s backside, and the indirect cooling mechanism
(ICM),b which incorporates a heat pipe. The findings revealed that the ICM attained the highest average PV temperature reduction of 45.2 C, representing a 45.3 % improvement over the conventional PV system. Meanwhile, the WH-ICM followed closely with a 42.3  C reduction, marking a 42.4 % enhancement. Furthermore, WH-ICM boosted the average PV output power by 36.8 % and improved average efficiency by 30 % compared to the standard PV system. It also harvested
2.87 kg/day.m ◦2 of water, with a consumption of 25.36 kg/day.m2, recovering around 11.3 % of the total water
used. Notably, integrating WH-ICM increased the system’s daily average overall efficiency to 19.43 %, reflecting
a 36.26 % improvement over the conventional PV system, and a 7.7 % and 3.1 % raise compared to the DCM and
ICM, respectively.

Research Authors
Mustafa Ghazali Ali, Hamdy Hassan, Kyaw Thu, Takahiko Miyazaki, Sameh A. Nada
Research Date
Research Journal
Energy
Research Publisher
Elsevier
Research Vol
337
Research Year
2025

Performance assessment of standalone hydrogen water electrolyzer production system based on waste heat power generation and humidification dehumidification system

Research Abstract

This study evaluates the performance of a new standalone integrated system for independent hydrogen production combining waste heat recovery (WHR) via thermoelectric generators, humidification-dehumidification
(HDH), and a proton exchange membrane (PEM) electrolyzer. The system’s behavior is analyzed at varying
steam inlet temperatures and qualities to identify the best configuration for power generation. A complete
mathematical model of the whole system unit is constructed, programmed inside Matlab, solved, and validated.
Four configurations are studied for the thermoelectric generator unit distributions [100 × 100], [50 × 200],
[25 × 400], and [12 × 833]. Configuration 4 (12 ×833 TEG arrangement) outperforms others, generating
36.88 kW at 160 ◦C and 0.97 steam inlet quality, a 130 % increase compared to 100 C. This configuration extracts 337 kW from steam, enabling a hydrogen production rate of 15.5 kg/day with PEM efficiency peaking 73.65 % (declining to 68.94 % at 160 ◦◦C due to overpotentials). The HDH unit is operating at a GOR of 1.892. The system efficiency increased from 4.45 % at 100 ◦C to 4.95 % at 160 C, driven by enhanced TEG power generation. Economic analysis reveals a levelized hydrogen cost (LCOH) of 2.22–2.22–2.96/kg, competitive with blue hydrogen markets. Net Present Value (NPV) analysis shows profitability at 3–5 $/kg hydrogen, with breakeven 10–20 years for 3 $/kg and 4–5 years for 5 $/kg. Excess water utilization in the PEM electrolyzer reaches near-zero at 160 ◦ C, contrasting with 55 % excess at 100 ◦◦C. Trade-offs between steam quality and hydrogen yield are quantified: increasing quality from 0.05 to 0.97 at 100 C raises hydrogen production by 0.45 % (6.97–7.01 kg/day), while higher temperatures prioritize power over electrolyzer efficiency.

Research Authors
M.A. Mahmoud, Sameh Nada, Shinsuke Mori, Hamdy Hassan
Research Date
Research Journal
Process Safety and Environmental Protection
Research Publisher
Elsevier
Research Vol
200
Research Year
2025

Hydrogen production from tea waste via fluidized bed gasification reactor of multi-ports injection: Experimental investigation

Research Abstract

This study investigates the gasification of tea waste biomass in a fluidized bed reactor, with a focus on optimizing
syngas composition and energy content. A lab-scale hot flow fluidization bed reactor is designed, fabricated and
installed. The impact of fluidization parameters, velocity and gasification temperature on the quality of syngas
products is investigated. The effect of these parameters on the CO and H
percentages and calorific value of the produced syngas is studied. The results show that increasing air injection velocity enhances carbon monoxide (CO) production and reduces carbon dioxide (CO2) levels, with an optimal air injection velocity of 15 m/s for maximizing syngas calorific value. Furthermore, a gasification temperature of around 400  C is found to be optimal for producing syngas with high calorific value, balancing CO and hydrogen (H) production while minimizing CO2 . A higher CO/CO ratio is closely linked to increased syngas energy content, while the methane to hydrogen ratio also influences calorific value, though its impact is less predictable.

Research Authors
Mohamad M. Alashmawy, Ahmed Elwardany, Hassan Shokry, Hamdy Hassan
Research Date
Research Journal
Renewable Energy
Research Pages
122713
Research Publisher
Elsevier
Research Vol
244
Research Year
2025

Techno-enviro-economic evaluation of on-grid and off-grid hybrid photovoltaics and vertical axis wind turbines system with battery storage for street lighting application

Research Abstract

To achieve affordable and clean energy as part of the sustainable development goals, a techno-enviro-economic
performance of solar Photovoltaics (PV) and Vertical Axis Wind Turbines (VAWT) hybrid system for street
lighting load of New Borg El-Arab city, Egypt is presented. The system is designed for both standalone battery
storage and grid-connected at different ratios of energy sources “PV 100%”, “VAWT 100%”, “PV 50% and VAWT
50%”, “PV 33.3%, and VAWT 66.7%” and “PV 66.7% and VAWT 33.3%”. The physical model was created in
Autodesk INVENTOR, the spacing of the wind turbine was simulated on ANSYS FLUENT, the spacing of the solar
photovoltaic panels was simulated in Autodesk REVIT, the mathematical model was solved in MATLAB and
Microsoft EXCEL. The study outcomes reveal that the energy system distribution for the grid-connected and
standalone systems are about the same achieving smaller turbine numbers, PV panels, and land space in the case
of grid-connected systems. The minimum capital and payback period are achieved by the grid-connected system
with a land ratio of “PV 100%”. It has a payback period of 12 years while using a land area of 139 m
. It used 30 Solar PV panels to supply a total energy of 20,829 kWh for 1 year. This resulted in a levelized cost of electricity of 0.0096 $/kWh and 450 tonnes of CO emission savings. This shows 100% PVs grid-connected system is more economically viable than the hybrid system.

Research Authors
Masoyi Garba Sanda, Mohamed Emam, , Shinichi Ookawara, Hamdy Hassan
Research Date
Research Journal
Journal of Cleaner Production
Research Pages
144866
Research Publisher
Elsevier
Research Vol
491
Research Year
2025
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