Research Article | Open Access | Download PDF
Volume 13 | Issue 7 | Year 2026 | Article Id. IJCE-V13I7P106 | DOI : https://doi.org/10.14445/23488352/IJCE-V13I7P106Innovation in Construction: Electro-Osmosis for the Durability of Masonry Walls in Coastal Areas
Samuel Bernardo Meza Figueroa, Amanda Meza Figueroa, Martha Leon Robladillo, Marko Antonio Lengua Fernandez
| Received | Revised | Accepted | Published |
|---|---|---|---|
| 09 Feb 2026 | 24 Apr 2026 | 16 Jun 2026 | 29 Jul 2026 |
Citation :
Samuel Bernardo Meza Figueroa, Amanda Meza Figueroa, Martha Leon Robladillo, Marko Antonio Lengua Fernandez, "Innovation in Construction: Electro-Osmosis for the Durability of Masonry Walls in Coastal Areas," International Journal of Civil Engineering, vol. 13, no. 7, pp. 81-116, 2026. Crossref, https://doi.org/10.14445/23488352/IJCE-V13I7P106
Abstract
Rising damp is one of the main causes of deterioration in masonry walls, due to the capillary migration of water and soluble salts, which causes efflorescence, loss of strength, and, in extreme cases, structural failure. This research evaluated the effectiveness of electro-osmosis as a technique for dehumidification and salt reduction in walls built with pandereta brick, King Kong brick, solid brick, and concrete block. Sixty 1.00 × 1.00 m walls were constructed, previously saturated with 0.5 M NaCl, applying voltages calculated using the Helmholtz Smoluchowski equation and evaluated at 7, 14, 30, 60, and 90 days. Monitoring included moisture measurements and determination of soluble salts in accordance with NTP 339.152:2015, as well as energy consumption and operating costs. The results showed that electro-osmosis reduced the initial moisture content (6.8 to 13.8%) below the hygroscopic value of 2.5% and soluble salts from 1750 to 2300 mg/kg to 470 to 590 mg/kg, classifying it as ‘very low saline propensity’. The 14-day prototype interval proved to be technically and economically optimal, simultaneously achieving the reference humidity and minimum salt content with reduced material costs. Over longer periods, the improvements were minimal compared to the increase in time and energy. It is concluded that electro-osmosis is an effective, sustainable, and non-invasive method for controlling rising damp in masonry walls, helping to preserve their durability and prevent deterioration associated with salinity.
Keywords
Brick, Electro-Osmosis, Humidity, Soluble Salts, Voltage.
References
- Simon Ayernor Tetteh, Isaac Akwei, and George Andoh, “Rising Damp in Buildings: Causes, Impacts, and Mitigation Strategies in Krofrom and Ampabame New Sites,” Asian Journal of Advanced Research and Reports, vol. 19, no. 3, pp. 179-200, 2025.
[CrossRef] [Google Scholar] [Publisher Link] - Jin Qu et al., “Rising Damp in Heritage Sites under Urban Expansion: A Comprehensive Case Study of the Jinsha Earthen Site,” Building and Environment, vol. 265, 2024.
[CrossRef] [Google Scholar] [Publisher Link] - Eladio Alexander Huamanyauri Cuellar, and Joel Kevin Portilla Serna “Proposal for an Architectural Concrete Enhanced with Beetroot Fibers to Improve Resistance to Salts in Buildings Located in the Marine Environment Zone of Metropolitan Lima,” Thesis, Peruvian University of Applied Sciences, 2022.
[Google Scholar] [Publisher Link] - Peru: Yearbook of Environmental Statistics 2023, National Institute of Statistics and Informatics, pp. 1-581, 2023. [Online]. Available: https://cdn.www.gob.pe/uploads/document/file/5588186/4963255-peru-anuario-de-estadisticas-ambientales-2023%282%29.pdf?v=1706036917
- Domenico Giaccone, Ulderico Santamaria, and Marco Corradi, “An Experimental Study on the Effect of Water on Historic Brickwork Masonry,” Heritage, vol. 3, no.1, pp. 29-46, 2020.
[CrossRef] [Google Scholar] [Publisher Link] - Nicholas Fobbe et al., “Drying of Gypsum Plaster Prisms: Prevention of Visible Sodium Sulfate Efflorescence through Calcium Formate Addition,” Materials and Structures/Materiaux et Constructions, vol. 56, pp. 1-16, 2023.
[CrossRef] [Google Scholar] [Publisher Link] - Kristin Balksten, and Paulien Strandberg-de Bruijn, “Understanding Deterioration due to Salt and Ice Crystallization in Scandinavian Massive Brick Masonry,” Heritage, vol. 4, no. 1, pp. 349-370, 2021.
[CrossRef] [Google Scholar] [Publisher Link] - A. Del Puente, Old Houses Collapse Due to Dampness, Panamericana, 2025. [Online]. Available: https://panamericana.pe/eldominical/locales/416307-viviendas-antiguas-colapsan-humedad-20-familias-salir-afectadas
- J. Zapata, “Dampness in Your Home? A Senamhi Expert Explains How to Combat it in Winter, Peru21, 2025. [Online]. Available: https://peru21.pe/lima/humedad-en-casa-experto-del-senamhi-te-explica-como-combatirla-en-el-invierno/
- National University of Engineering Faculty of Civil Engineering Peruvian Japanese Center for Seismic Research and Disaster Mitigation Budget Program, Cismid – Uni. [Online]. Available: https://www.cismid.uni.edu.pe/cismid-2/
- Peru: Characteristics of Private Dwellings and Households - Access to Basic Services. INEI, 2025. [Online]. Available: https://m.inei.gob.pe/prensa/noticias/en-el-pais-existen-mas-de-diez-millones-de-viviendas-particulares-censadas-10893/
- Economic Report on Construction, No. 9 - July 2016, Institute of Construction and Development (ICD), Lima, Peru, Peruvian Chamber of Construction (CAPECO), 2016. [Online]. Available: https://iec.capeco.org/descargas/IEC09_0716.pdf
- Dana Garlet Arauco-Quispialaya et al., “Automatic Temperature Control System for the Firing of Bricks in the Company "Ladrillera el Toro S.A.C,"” 2023 3rd International Conference on Computer, Control and Robotics (ICCCR), Shanghai, China, pp. 303-308, 2023.
[CrossRef] [Google Scholar] [Publisher Link] - Roy Moises Ticsihua Taipe, “Pressed Bricks Made from a Combination of Hardened Cement and Clay from the Quarries of the San Agustín-Huancayo-Junín District,” Thesis, Continental University, Huancayo, Peru, pp. 1-104, 2025.
[Google Scholar] [Publisher Link] - Celestino Palomino Pozo, and Fabian Melchor Portocarrero Romero, “For the Production and Marketing of Vibrated Concrete Blocks Aimed at the Population of Lower Resources Socioeconomic Level “C”: San Juan de Lurigancho District,” Thesis, Peruvian University of Applied Sciences, Lima, Peru, 2017. [Google Scholar] [Publisher Link]
- Itzel Lopez-Carreon et al., “Moisture Ingress in Building Envelope Materials: (II) Transport Mechanisms and Practical Mitigation Approaches,” Buildings, vol. 15, no. 5, pp. 1-26, 2025.
[CrossRef] [Google Scholar] [Publisher Link] - Qiuling Xiong et al., “Review on the Application Research of Covers with Capillary Barrier Effects,” Journal of Research in Science and Engineering, vol. 7, no. 1, pp. 125-139, 2025.
[CrossRef] [Google Scholar] [Publisher Link] - Elisa Franzoni, “State-of-the-Art on Methods for Reducing Rising Damp in Masonry,” Journal of Cultural Heritage, vol. 31, pp. S3-S9, 2018.
[CrossRef] [Google Scholar] [Publisher Link] - Julie Desarnaud et al., “Effectiveness of Electromagnetic and Electro-Osmosis Methods for the Treatment of Rising Damp,” 1st International Conference on Moisture in Buildings, UCL London, 2021.
[CrossRef] [Google Scholar] [Publisher Link] - Jacopo Melada et al., “Does Electro-Osmosis Work in Moisture Damage Prevention? Applicability of Infrared-Based Methods to Verify Water Distribution Under Electric Fields,” Journal of Cultural Heritage, vol. 31, pp. S38-S45, 2018.
[CrossRef] [Google Scholar] [Publisher Link] - Aliihsan Koca, Mehmet Nurettin Uğural, and Ergün Yaman, “Rising Damp Treatment in Historical Buildings by Electro-Osmosis: A Case Study,” Buildings, vol. 14, no. 5, pp. 1-22, 2024.
[CrossRef] [Google Scholar] [Publisher Link] - Alice Roza, “A Case Study of Electro-Osmosis for Rising Damp Treatment in Historical Buildings,” Journal of Civil and Environmental Engineering, vol. 14, no. 3, pp. 1-2, 2024.
[Publisher Link] - Naser Eslami et al., “Experimental Study of Electroosmosis and (Cl-) Diffusion in Fired-Clay Bricks,” Construction and Building Materials, vol. 447, pp. 1-10, 2024.
[CrossRef] [Google Scholar] [Publisher Link] - Pablo Daniel Benítez Mongelós, and Fabiana Belen Silvero, Viability of Electro Osmosis for the Moisture Treatment in Stone Walls, Proceedings of the XII International Conference on Structural Repair and Rehabilitation (CINPAR 2016), Porto, Portugal, 2016. [Online]. Available: https://www.researchgate.net/publication/309349559_Viability_of_Electro_Osmosis_for_the_moisture_treatment_in_stone_walls
- Folke Björk et al., “Electroosmosis - A Method Applied for Handling of Moisture in Foundations,” E3S Web of Conferences, vol. 172, pp. 1-5, 2020.
[CrossRef] [Google Scholar] [Publisher Link] - Jianming Ling et al., “Performance Comparison of Different Electrode Materials for Electro-Osmosis Treatment on Subgrade Soil,” Construction and Building Materials, vol. 271, 2021.
[CrossRef] [Google Scholar] [Publisher Link] - Silvio Huayanay Lliuyacc, Hector Elmer Quispe Ruiz, “Evaluation of Concrete Permeability Using Different Types of Cement for Single-Family Homes in Punta Hermosa,” Bachelor’s Thesis, Peruvian University of Applied Sciences, 2025.
[Google Scholar] [Publisher Link] - R. Castro Mendoza, “Disaster Risk Assessment for Natural and Anthropogenic Hazards in the Urban Area of the Punta Hermosa District,” Thesis, National University of San Marcos, 2014.
[Google Scholar] - Hugo Fernando Peixoto Macas, and Sergio Jhonatan Aparco Ccancce, “Areas Affected in the Malanche Ravine, Due to the Activation of the Seco River in Punta Hermosa, using a Hydrodynamic Model,” U.G. Thesis, Peruvian University of Applied Sciences, 2024.
[Google Scholar] [Publisher Link] - Anna Kaczmarek, and Maria Wesołowska, “Factors Affecting Humidity Conditions of a Face Wall Layer of a Heated Building,” Procedia Engineering, vol. 193, pp. 205-210, 2017.
[CrossRef] [Google Scholar] [Publisher Link] - Jinpeng Feng et al., “A Novel Humidity Self-Regulating Interior Wall Coating Composite based on Red Mud Derived from Alumina Production,” Construction and Building Materials, vol. 349, 2022.
[CrossRef] [Google Scholar] [Publisher Link] - Nicola Tarque, and Daniel Quiun, “Experimental Tests of Strengthened Small Masonry Walls Made of Horizontally-Hollow Bricks (‘Pandereta’) in Seismic Zones,” Conference Contribution, 14th Canadian Masonry Symposium, Montréal, Canada, 2021.
[Publisher Link] - Roberth Jackson Atencia Ariza, and James Andres Ramos Herrera, “Experimental Evaluation of Unconfined Walls of Hollow Brick Laid in a Vaulted Position,” Bachelor’s Thesis, Saint Ignatius of Loyola University, 2024.
[Google Scholar] [Publisher Link] - Sixto Melanio Alvarado Sullca, “Mechanical Properties of Masonry Made with Fiberglass-Reinforced Hollow Bricks in Pisco, 2022,” Thesis, National University of Central Peru, 2024.
[Google Scholar] [Publisher Link] - Pirámide 12 Concrete Block, Pirámide Bricks, 2023. [Online]. Available: https://www.ladrillospiramide.com/productos/bloqueta-12-piramide/
- R. M. Sotelo Carhuachin, “Structural Behavior of 18-Hole King Kong Brick and Mortar in Confined Masonry Prisms, San Martín de Porres – 2020,” Bachelor’s Thesis, Cesar Vallejo University, 2020.
[Google Scholar] [Publisher Link] - Marlo Diego Moreno Torres, “Quality Control of King Kong 18-Hole Brick Types on Their Mechanical, Physical and Chemical Properties, Trujillo 2018,” Bachelor’s Thesis, Private University of the North, Trujillo, Perú, 2021.
[Google Scholar] [Publisher Link] - Aceros Arequipa, “Build Safe: Owner's Manual,” Technical Manual, Aceros Arequipa, Lima, Perú, 2020.
[Google Scholar] - Bricks for Load-Bearing Walls, Technical Sheet, Aceros Arequipa, Lima, Perú, 2020. [Online]. Available: https://www.acerosarequipa.com/manuales/manual-de-construccion-para-propietarios/los-ladrillos
- King Kong 30 Pyramid, Pyramid Bricks, 2024. [Online]. Available: https://www.ladrillospiramide.com/productos/king-kong-30-piramide/
- National Building Regulations, Proposal for Standard E.070 Masonry, National Training Service for the Construction Industry (SENCICO), Ministry of Housing, Construction and Sanitation,Republic of Peru, 2019. [Online]. Available: https://www.cip.org.pe/publicaciones/2021/enero/portal/e.070-alba-ileria-sencico.pdf
- Saeed M. Al-Tarbi et al., “Development of Eco-Friendly Hollow Concrete Blocks in the Field Using Wasted High-Density Polyethylene, Low-Density Polyethylene, and Crumb Tire Rubber,” Journal of Materials Research and Technology, vol. 21, pp. 1915-1932, 2022.
[CrossRef] [Google Scholar] [Publisher Link] - Wallison Angelim Medeiros, Guilherme Aris Parsekian, and Armando Lopes Moreno, “Residual Mechanical Properties of Hollow Concrete Blocks with Different Aggregate Types after Exposure to High Temperatures,” Construction and Building Materials, vol. 377, 2023.
[CrossRef] [Google Scholar] [Publisher Link] - Joseph Dgheim et al., “Enhancements in Hollow Block Technology: Comprehensive Thermal and Mechanical Characterizations,” Energies, vol. 17, no. 23, pp. 1-18, 2024.
[CrossRef] [Google Scholar] [Publisher Link] - Wall Block 14, Technical Specifications, Pacasmayo, 2021. [Online]. Available: https://construproductos.com/producto/bloque-pared-14-aNqcD
- Felice Saviano, Gian Piero Lignola, and Fulvio Parisi, “Experimental Compressive and Shear Behaviour of Clay Brick Masonry with Degraded Joints,” Construction and Building Materials, vol. 452, pp. 1-14, 2024.
[CrossRef] [Google Scholar] [Publisher Link] - Abed Soleymani, Mohammad Amir Najafgholipour, and Ali Johari, “An Experimental Study on the Mechanical Properties of Solid Clay Brick Masonry with Traditional Mortars,” Journal of Building Engineering, vol. 58, 2022.
[CrossRef] [Google Scholar] [Publisher Link] - Construex Peru, Ladrillo Macizo King Kong, 2021. [Online]. Available:https://www.construex.com.pe/exhibidores/ladrillera_mvf/producto/ladrillo_macizo_king_kong
- Alugunuri Raghu et al., “Enhanced Heat Transfer and Flow Control in Oldroyd-B Hybrid Nanofluids: A Study on Electro-Osmosis Effects and Thermal Characteristics,” Results in Engineering, vol. 27, pp. 1-15, 2025.
[CrossRef] [Google Scholar] [Publisher Link] - Kangwei Tang et al., “Moisture Migration and Electric Distribution of Unsaturated Clay under Electro-Osmosis with Carbon Fiber Tape As Electrode,” Engineering Geology, vol. 294, 2021.
[CrossRef] [Google Scholar] [Publisher Link] - Materials Testing Manual, Ministry of Transport and Communications, 2016. [Online]. Available: https://www.slideshare.net/slideshow/manual-ensayo-de-materiales/67429586
- Shan Ali Khan et al., “Mathematical and Artificial Neural Network Modeling to Predict the Heat Transfer of Mixed Convective Electroosmotic Nanofluid Flow with Helmholtz-Smoluchowski Velocity and Multiple Slip Effects: An Application of Soft Computing,” Case Studies in Thermal Engineering, vol. 61, pp. 1-24, 2024. [CrossRef] [Google Scholar] [Publisher Link]
- Aravind Krishnamoorthy et al., “Dielectric Constant of Liquid Water Determined with Neural Network Quantum Molecular Dynamics,” Physical Review Letters, vol. 126, no. 21, 2021.
[CrossRef] [Google Scholar] [Publisher Link] - Marlene Schmid, and Johann Plank, “Interaction of Individual Meta Clays with Polycarboxylate (PCE) Superplasticizers in Cement Investigated via Dispersion, Zeta Potential and Sorption Measurements,” Applied Clay Science, vol. 207, 2021.
[CrossRef] [Google Scholar] [Publisher Link] - Cesare Malosso et al., “Viscosity in Water from First-Principles and Deep-Neural-Network Simulations,” NPJ Computational Materials, vol. 8, pp. 1-10, 2022.
[CrossRef] [Google Scholar] [Publisher Link] - Moisture Meter for Wood, Paper and Walls, Technical sheet, Grupo C&M, 2020. [Online]. Available: https://www.grupocym.pe/cms/_imgs/ficha/FICHA-TECNICA--MEDIDOR-DE-HUMEDAD-PARA-MADERA,-PAPEL-Y-PARED(MATERIAL.pdf
- Afv Tools, s.f, Sodimac [Online]. Available: https://www.sodimac.com.pe/sodimac-pe/articulo/128334475/Higrometro-Medidor-de-Humedad-Digital-para-Madera-Concreto-Drywall/128334476
- Peruvian Technical Standard, SOILS. Standard Test Method for the Determination of Soluble Salt Content of Soils and Ground Water Technical Corrigendum 1, INACAL/DN, 2025. [Online]. Available: https://servicios.inacal.gob.pe/cidalerta/biblioteca-detalle.aspx?id=39131
- Luong Duy Thanh et al., “Drying of Fluid Saturated Porous Materials by Electroosmosis,” Current Applied Science and Technology, vol. 21, no. 1, pp. 26-35, 2021.
[CrossRef] [Google Scholar] [Publisher Link] - ASTM C67/C67M-21: Standard Test Methods for Sampling and Testing Brick and Structural Clay Tile, ASTM International, 2021.
[Publisher Link] - Navaratnarajah Sathiparan, and Udayakumar Rumeshkumar, “Effect of Moisture Condition on Mechanical Behavior of Low Strength Brick Masonry,” Journal of Building Engineering, vol. 17, pp. 23-31, 2018.
[CrossRef] [Google Scholar] [Publisher Link] - UNE-EN 771-1:2011+A1:2016 SPECIFICATIONS for Masonry Factory Parts. Part 1: Fired Clay Pieces., UNE, 2016.
[Publisher Link] - José Wilson Guevara Fustamante, “Levels of Salts and Efflorescence in Masonry Units Produced in Five Quarries in the District of Bambamarca, Chota, 2022,” Thesis, National Autonomous University of Chota, 2023.
[Google Scholar] [Publisher Link] - Occupational Safety and Health Administration, U.S. Department of Labor, 2015. [Online]. Available: https://www.osha.gov/laws-regs/standardinterpretations/2015-09-04-0
- Hamed Layssi et al., “Electrical Resistivity of Concrete,” Concrete International, pp. 41-46, 2015.
[Google Scholar] [Publisher Link] - T. A. Nguyen et al., “Evaluating the Effectiveness of Wenner Mode Configurations for Resistivity-based Moisture Monitoring in Compressed Earth Bricks,” Engineering, Technology and Applied Science Research, vol. 14, no. 6, pp. 17657-17664, 2024.
[CrossRef] [Google Scholar] [Publisher Link] - Xunli Zhang et al., “Electroosmotic Reinforcement Mechanism and Laboratory Tests of Pulsating Direct Current with a High Energy Efficiency Ratio,” Soils and Foundations, vol. 64, no. 1, pp. 1-9, 2024.
[CrossRef] [Google Scholar] [Publisher Link]