Submitted:
12 December 2024
Posted:
12 December 2024
You are already at the latest version
Abstract
Keywords:
1. Introduction
2. Materials and Methods
2.1. Electrolyzer Apparatus
2.2. Electrical Load Consideration
2.3. Photovoltaic Box Design and Implementation
2.4. Environmental Sensor
2.5. Preliminary Tests
3. Results
3.1. Load Simulations
3.2. PV-Box Implementation
3.3. Load and Solar Data
3.4. Environmental and Gas Concentration Monitoring Results
3.5. Electrolyzer Preliminary Results
4. Discussion & Future Work
5. Conclusions
Supplementary Materials
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
- Lee, J.; Antonini, G.; Pearce, J.M.; Al-Omari, A.; Santoro, D. Electrochemical Methods for Nutrient Removal in Wastewater: A Review of Advanced Electrode Materials, Processes, and Applications. Sustainability 2024, 16, 9764. [Google Scholar] [CrossRef]
- Das, P.P.; Sharma, M.; Purkait, M.K. Recent Progress on Electrocoagulation Process for Wastewater Treatment: A Review. Separation and Purification Technology 2022, 292, 121058. [Google Scholar] [CrossRef]
- Shahedi, A.; Darban, A.K.; Taghipour, F.; Jamshidi-Zanjani, A. A Review on Industrial Wastewater Treatment via Electrocoagulation Processes. Current Opinion in Electrochemistry 2020, 22, 154–169. [Google Scholar] [CrossRef]
- Gil-Carrera, L.; Escapa, A.; Mehta, P.; Santoyo, G.; Guiot, S.R.; Morán, A.; Tartakovsky, B. Microbial Electrolysis Cell Scale-up for Combined Wastewater Treatment and Hydrogen Production. Bioresource Technology 2013, 130, 584–591. [Google Scholar] [CrossRef]
- Katuri, K.P.; Ali, M.; Saikaly, P.E. The Role of Microbial Electrolysis Cell in Urban Wastewater Treatment: Integration Options, Challenges, and Prospects. Current Opinion in Biotechnology 2019, 57, 101–110. [Google Scholar] [CrossRef]
- Kollmann, R.; Neugebauer, G.; Kretschmer, F.; Truger, B.; Kindermann, H.; Stoeglehner, G.; Ertl, T.; Narodoslawsky, M. Renewable Energy from Wastewater - Practical Aspects of Integrating a Wastewater Treatment Plant into Local Energy Supply Concepts. Journal of Cleaner Production 2017, 155, 119–129. [Google Scholar] [CrossRef]
- Maktabifard, M.; Zaborowska, E.; Makinia, J. Achieving Energy Neutrality in Wastewater Treatment Plants through Energy Savings and Enhancing Renewable Energy Production. Rev Environ Sci Biotechnol 2018, 17, 655–689. [Google Scholar] [CrossRef]
- Chauhan, D.; Ahn, Y.-H. Alkaline Electrolysis of Wastewater and Low-Quality Water. Journal of Cleaner Production 2023, 397, 136613. [Google Scholar] [CrossRef]
- Mohammadpour, H.; Cord-Ruwisch, R.; Pivrikas, A.; Ho, G. Utilisation of Oxygen from Water Electrolysis – Assessment for Wastewater Treatment and Aquaculture. Chemical Engineering Science 2021, 246, 117008. [Google Scholar] [CrossRef]
- Hamawand, I. Energy Consumption in Water/Wastewater Treatment Industry—Optimisation Potentials. Energies 2023, 16, 2433. [Google Scholar] [CrossRef]
- Tartakovsky, B.; Mehta, P.; Bourque, J.-S.; Guiot, S.R. Electrolysis-Enhanced Anaerobic Digestion of Wastewater. Bioresource Technology 2011, 102, 5685–5691. [Google Scholar] [CrossRef] [PubMed]
- Simoes, S.G.; Catarino, J.; Picado, A.; Lopes, T.F.; di Berardino, S.; Amorim, F.; Gírio, F.; Rangel, C.M.; Ponce de Leão, T. Water Availability and Water Usage Solutions for Electrolysis in Hydrogen Production. Journal of Cleaner Production 2021, 315, 128124. [Google Scholar] [CrossRef]
- Kobayashi, T.; Hirose, J.; Sano, K.; Hiro, N.; Ijiri, Y.; Takiuchi, H.; Tamai, H.; Takenaka, H.; Tanaka, K.; Nakano, T. Evaluation of an Electrolysis Apparatus for Inactivating Antineoplastics in Clinical Wastewater. Chemosphere 2008, 72, 659–665. [Google Scholar] [CrossRef] [PubMed]
- Baeza, J.A.; Martínez-Miró, À.; Guerrero, J.; Ruiz, Y.; Guisasola, A. Bioelectrochemical Hydrogen Production from Urban Wastewater on a Pilot Scale. Journal of Power Sources 2017, 356, 500–509. [Google Scholar] [CrossRef]
- Huang, X.; Qu, Y.; Cid, C.A.; Finke, C.; Hoffmann, M.R.; Lim, K.; Jiang, S.C. Electrochemical Disinfection of Toilet Wastewater Using Wastewater Electrolysis Cell. Water Research 2016, 92, 164–172. [Google Scholar] [CrossRef]
- Ramsey, M.H. Challenges for the Estimation of Uncertainty of Measurements Made in Situ. Accred Qual Assur 2021, 26, 183–192. [Google Scholar] [CrossRef]
- Li, B.; Ou, L.; Dang, Q.; Meyer, P.; Jones, S.; Brown, R.; Wright, M. Techno-Economic and Uncertainty Analysis of in Situ and Ex Situ Fast Pyrolysis for Biofuel Production. Bioresource Technology 2015, 196, 49–56. [Google Scholar] [CrossRef]
- Maia Chagas, A. Haves and Have Nots Must Find a Better Way: The Case for Open Scientific Hardware. PLoS Biol 2018, 16, e3000014. [Google Scholar] [CrossRef]
- Allahverdi, A. The Third Comprehensive Survey on Scheduling Problems with Setup Times/Costs. European Journal of Operational Research 2015, 246, 345–378. [Google Scholar] [CrossRef]
- Gibb, A. Building Open Source Hardware: DIY Manufacturing for Hackers and Makers; Addison-Wesley Professional, 2014; ISBN 978-0-13-337390-5.
- Oberloier, S.; Pearce, J.M. General Design Procedure for Free and Open-Source Hardware for Scientific Equipment. Designs 2018, 2, 2. [Google Scholar] [CrossRef]
- Pearce, J.M. Economic Savings for Scientific Free and Open Source Technology: A Review. HardwareX 2020, 8, e00139. [Google Scholar] [CrossRef] [PubMed]
- Hafting, F.; Kulas, D.; Michels, E.; Chipkar, S.; Wisniewski, S.; Shonnard, D.; Pearce, J. Modular Open-Source Design of Pyrolysis Reactor Monitoring and Control Electronics. Electronics 2023, 12, 4893. [Google Scholar] [CrossRef]
- Sadat, S.A.; Pearce, J.M. SAMA (Solar Alone Multi-Objective Advisor). 2023. [Google Scholar] [CrossRef]
- Wissler, M. Graphite and Carbon Powders for Electrochemical Applications. Journal of Power Sources 2006, 156, 142–150. [Google Scholar] [CrossRef]
- Kovendhan, M.; Kang, H.; Jeong, S.; Youn, J.-S.; Oh, I.; Park, Y.-K.; Jeon, K.-J. Study of Stainless Steel Electrodes after Electrochemical Analysis in Sea Water Condition. Environmental Research 2019, 173, 549–555. [Google Scholar] [CrossRef]
- Chen, G. Electrochemical Technologies in Wastewater Treatment. Separation and Purification Technology 2004, 38, 11–41. [Google Scholar] [CrossRef]
- PV-Box Repository Available online: https://osf.io/fbdgc/.
- National Renewable Energy Laboratory (NREL) Home Page Available online:. Available online: https://www.nrel.gov/index.html (accessed on 7 September 2024).
- Mohammed, G.; Messerman, A.; Mayhan, B.; Trauth, K. Theory and Practice of the Hydrodynamic Redesign of Artificial Hellbender Habitat. Herpetological Review 2016, 47, 586–591. [Google Scholar]
- Victron Energy Available online:. Available online: https://www.victronenergy.com/ (accessed on 12 November 2024).
- Corporation, G.S. German Solar Corporation Available online:. Available online: https://germansolarcorp.com/ (accessed on 12 November 2024).
- 2024.
- 2024.
- Wins MQ8 - v1. 2024.
- Winsen MQ136 - v1. 2024.
- Winsen MQ137 v1. 2024.
- Winsen MQ-9B- v1. 2024.
- Nagamora, J.A.; Vertudes, R.; Ken, J.; Halil, A. Design and Implementation of Water Quality Control and Monitoring Devices in a Small-Scale Aquaculture System. International Journal of Biosciences 2022, 21, 91–105. [Google Scholar]
- Sells, E.; Bailard, S.; Smith, Z.; Bowyer, A.; Olliver, V. RepRap: The Replicating Rapid Prototyper: Maximizing Customizability by Breeding the Means of Production. In Handbook of Research in Mass Customization and Personalization; World Scientific Publishing Company, 2009; pp. 568–580 ISBN 978-981-4280-25-9.
- Jones, R.; Haufe, P.; Sells, E.; Iravani, P.; Olliver, V.; Palmer, C.; Bowyer, A. RepRap – the Replicating Rapid Prototyper. Robotica 2011, 29, 177–191. [Google Scholar] [CrossRef]
- Gebremariam, G.K.; Jovanović, A.Z.; Pašti, I.A. The Effect of Electrolytes on the Kinetics of the Hydrogen Evolution Reaction. Hydrogen 2023, 4, 776–806. [Google Scholar] [CrossRef]
- Sun, C.-W.; Hsiau, S.-S. Effect of Electrolyte Concentration Difference on Hydrogen Production during PEM Electrolysis. J. Electrochem. Sci. Technol 2019, 9, 99–108. [Google Scholar] [CrossRef]
- Staff, C.B. Solar Is Now ‘Cheapest Electricity in History’, Confirms IEA Available online:. Available online: https://www.carbonbrief.org/solar-is-now-cheapest-electricity-in-history-confirms-iea/ (accessed on 23 July 2024).
- Saefong, M.P. Why Solar Is the Fastest-Growing Source of U.S. Electricity - MarketWatch Available online:. Available online: https://www.marketwatch.com/story/why-solar-is-the-fastest-growing-source-of-u-s-electricity-72e7d489 (accessed on 17 July 2024).
- Ghafoor, A.; Munir, A. Design and Economics Analysis of an Off-Grid PV System for Household Electrification. Renewable and Sustainable Energy Reviews 2015, 42, 496–502. [Google Scholar] [CrossRef]
- Feron, S. Sustainability of Off-Grid Photovoltaic Systems for Rural Electrification in Developing Countries: A Review. Sustainability 2016, 8, 1326. [Google Scholar] [CrossRef]
- ALLPOWERS Canada Official Generator and Power Station & Solar Panels Available online:. Available online: https://iallpowers.ca/ (accessed on 16 September 2024).
- Solar Generators, Portable Power Stations & Solar Panels Available online:. Available online: https://ca.jackery.com/ (accessed on 16 September 2024).
- Anker SOLIX - Portable Power Stations & Solar Generators Available online:. Available online: https://www.anker.com/ca/anker-solix (accessed on 16 September 2024).
- Demir, M.E.; Dincer, I. An Integrated Solar Energy, Wastewater Treatment and Desalination Plant for Hydrogen and Freshwater Production. Energy Conversion and Management 2022, 267, 115894. [Google Scholar] [CrossRef]
- Pandey, A.K.; Reji Kumar, R.; B, K.; Laghari, I.A.; Samykano, M.; Kothari, R.; Abusorrah, A.M.; Sharma, K.; Tyagi, V.V. Utilization of Solar Energy for Wastewater Treatment: Challenges and Progressive Research Trends. Journal of Environmental Management 2021, 297, 113300. [Google Scholar] [CrossRef]
- Merabet, N.H.; Kerboua, K.; Hoinkis, J. Hydrogen Production from Wastewater: A Comprehensive Review of Conventional and Solar Powered Technologies. Renewable Energy 2024, 226, 120412. [Google Scholar] [CrossRef]
- Wang, B.; Jiang, H.; Gu, D.; Li, C.; Nie, C.; Yan, C.; Yuan, D.; Wang, X. An Insight into Solar Thermo-Assisted and Organic-Molecule Alternated Water Splitting Chemistry for Hydrogen Production and Wastewater Treatment by Elucidating Redox Model and Thermodynamics. Energy Conversion and Management 2020, 226, 113551. [Google Scholar] [CrossRef]
- isoosi Modular Genius | New & Used Modular Buildings Available online:. Available online: https://www.modulargenius.com/ (accessed on 16 September 2024).
- Lease or Buy Modular Buildings | BOXX Modular US Available online:. Available online: https://www.boxxmodular.com/ (accessed on 16 September 2024).
- Wang, J.; Viciano-Tudela, S.; Parra, L.; Lacuesta, R.; Lloret, J. Evaluation of Suitability of Low-Cost Gas Sensors for Monitoring Indoor and Outdoor Urban Areas. IEEE Sensors Journal 2023, PP, 1–1. [Google Scholar] [CrossRef]
- Dorcea, D.; Hnatiuc, M.; Lazar, I. Acquisition and Calibration Interface for Gas Sensors. In Proceedings of the 2018 IEEE 24th International Symposium for Design and Technology in Electronic Packaging (SIITME); October 2018; pp. 120–123. [Google Scholar]
- Jiang, H.; Han, Y.; Zalhaf, A.S.; Yang, P.; Wang, C. Low-Cost Urban Carbon Monitoring Network and Implications for China: A Comprehensive Review. Environ Sci Pollut Res 2023, 30, 105012–105029. [Google Scholar] [CrossRef]
- Khadim, H.J.; Obaed, F.K.; Abd Ali, Z.T. Application of MQ-Sensors to Indoor Air Quality Monitoring in Lab Based on IoT. In Proceedings of the 2021 International Conference on Intelligent Technology, System and Service for Internet of Everything (ITSS-IoE); November 2021; p. 1. [Google Scholar]
- Popescu, S.M.; Mansoor, S.; Wani, O.A.; Kumar, S.S.; Sharma, V.; Sharma, A.; Arya, V.M.; Kirkham, M.B.; Hou, D.; Bolan, N.; et al. Artificial Intelligence and IoT Driven Technologies for Environmental Pollution Monitoring and Management. Front. Environ. Sci. 2024, 12. [Google Scholar] [CrossRef]
- Zeng, K.; Zhang, D. Recent Progress in Alkaline Water Electrolysis for Hydrogen Production and Applications. Progress in Energy and Combustion Science 2010, 36, 307–326. [Google Scholar] [CrossRef]
- Park, H.; Choo, K.-H.; Park, H.-S.; Choi, J.; Hoffmann, M.R. Electrochemical Oxidation and Microfiltration of Municipal Wastewater with Simultaneous Hydrogen Production: Influence of Organic and Particulate Matter. Chemical Engineering Journal 2013, 215–216, 802–810. [Google Scholar] [CrossRef]
- Pischke, C. The Current State of Bidirectional EV Charging in Canada. Electric Vehicle Association of Alberta 2024.
- Davis, J.T.; Brown, D.E.; Pang, X.; Esposito, D.V. High Speed Video Investigation of Bubble Dynamics and Current Density Distributions in Membraneless Electrolyzers. J. Electrochem. Soc. 2019, 166, F312. [Google Scholar] [CrossRef]
- Antonini, G.; Pearce, J.M.; Berruti, F.; Santoro, D. A Novel Camera-Based Sensor for Real-Time Wastewater Quality Monitoring. Water Practice and Technology 2024, (pt2024211), wpt2024211. [Google Scholar] [CrossRef]












| Component | Estimated power required [W] |
|---|---|
| Electrolyzer | 160 |
| Pump | 160 |
| Fan | 30 |
| Pipe heater | 15 |
| LED lights | 10 |
| Sensors | 5 |
| Description | Symbol | Value |
|---|---|---|
| Impact surface wind | A | 2 m2 |
| Structure weight | m | 250 kg |
| Drag coefficient perpendicular panel | Cd | 2 [30] |
| Air density | 1.225 kg/m3 | |
| Flipping moment | MF | Nm |
| Stabilizing moment | MS | Nm |
| Flipping moment arm | 1.3 m | |
| Stabilizing moment arm | 0.5 m |
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