Surface Waterproofing Techniques: A Case Study in Nova Lima, Brazil
Abstract
:1. Introduction
Research Significance
2. Theoretical Background
2.1. Surface Infiltration
2.1.1. Water Percolation
2.1.2. Capillarity
2.1.3. Condensation
2.1.4. Leaks
2.1.5. Drainage-System Failures
2.2. Surface-Waterproofing Techniques
2.2.1. Waterproofing with Asphalt Membrane
2.2.2. Waterproofing with Polymers
2.2.3. Waterproofing with Polymeric Mortar
2.2.4. Waterproofing with Special Paints
2.2.5. Waterproofing with Cold-Applied and Hot-Applied Bituminous Mastic Compounds
3. Materials and Methods
3.1. Selecting the State-of-the-Art Bibliography
3.2. Case Study
4. Results and Discussions
4.1. Review and Discussion of the Selected Papers
4.2. Case Study
4.2.1. Floors and External Areas
4.2.2. Slab and Water Tank
4.2.3. Bathrooms
4.2.4. Pool, Fireplace, and Deck
5. Conclusions
- (i)
- The main mechanisms of water infiltration into surfaces in construction are percolation, capillarity, condensation, leaks, and drainage-system failures. These mechanisms can cause damage to structures, such as humidity, stains, mold, deterioration, and corrosion, compromising the integrity and durability of buildings;
- (ii)
- Surface waterproofing techniques are widely used in civil construction to avoid problems caused by water infiltration, such as corrosion, humidity, and detachment of coatings. Among the available techniques are the application of asphalt blankets, polymers, polymeric mortars, special paints, and cold or hot mastic compounds. Waterproofing with asphalt blankets is one of the most used due to its high efficiency and durability;
- (iii)
- State-of-the-art information has shown, among several aspects, that (a) different sealing methods can significantly reduce the rate of air leakage in construction joints, depending on the sealing material used; (b) the correct execution of waterproofing, with appropriate materials and qualified professionals, can avoid future inconveniences and high maintenance costs; (c) the implementation of proper design, installation, inspection, and maintenance techniques can significantly reduce waterproofing failure rates and repair costs; (d) concrete admixtures can be used to improve the water-tightness of construction without compromising the mechanical properties of the material; and (e) the proper choice of waterproofing materials, along with the skill of labor in the application, is critical to ensure the proper performance of these materials in buildings;
- (iv)
- The case study described the methods and materials used to waterproof different areas of the residence. Specifically, it was shown that (a) for waterproofing the floors and external areas, a 150-micron canvas, thicker than common canvas, was used, along with EPS sheets to avoid the capillarity phenomenon; (b) the slab and the water tank were waterproofed with the use of aluminized asphalt blanket due to its high waterproofing capacity; (c) in the bathrooms, a polymeric mortar was used as the waterproofing method due to its ease of application and low cost, with the subsequent laying of ceramic tiles; (d) the waterproofing of the pool, fireplace, and deck was conducted with the use of polyethylene asphalt blanket, due to its flexibility, resistance, and durability, and later these surfaces were coated with porcelain tiles or ceramic tiles. Thus, the importance of choosing the appropriate method for each environment was highlighted, aiming to prevent damage caused by water infiltration.
Future Research Directions
- (i)
- Investigate the importance of labor skills and training in adequately applying sealing materials and their relationship to the overall performance of building waterproofing;
- (ii)
- Conduct experimental studies to evaluate the performance of different admixtures that can be added to concrete to improve its waterproofing, considering mechanical properties, resistance to water penetration, and crack-sealing ability;
- (iii)
- Investigate the environmental, economic, and performance impacts of different waterproofing options available on the market, considering factors such as global warming, consumption of energy resources, life-cycle cost, and durability.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
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Stage | Description | Details | Articles |
---|---|---|---|
1 | Preliminary research | Definition of databases: Science Direct, Scopus, and Google Acadêmico. Time frame: 2015 to 2022. Keywords: (1) Waterproofing, sealing, or impermeabilization; (2) Blanket, coating, or covering; (3) Slab or floor; (4) Roof; (5) Infiltration or seepage; (6) Pathology or condition. Keyword combinations: (a) 1 + 2 + 3; (b) 1 + 2 + 4; (c)1 + 2 + 5; (d) 1 + 4 + 5; (e) 3 + 5 + 6; (f) 4 + 5 + 6; (g) 2 + 3 + 5. Database filters: title, abstract and keywords. | 447 |
2 | Extraction of articles from the databases | Type of work: full papers published in journals or conferences | 250 |
4 | Elimination of duplicates | Exclusion of articles published in more than one database | 232 |
5 | Alignment by title | Articles with a title aligned with the research topic | 45 |
6 | Alignment by abstract | Articles with the abstract fully aligned with the research topic | 26 |
7 | Full-text retrieval | Manuscripts made available in full by the databases | 26 |
8 | Full alignment | Articles fully aligned with the research theme | 17 |
Reference | Title | Journal/Conference | Year |
---|---|---|---|
Alev et al. [44] | Air leakage of concrete floor and foundation junctions | Energy Procedia | 2015 |
Figueiredo et al. [45] | Impermeabilização com manta asfáltica de uma laje plana de cobertura | Construindo | 2017 |
Pinto and Aguiar [46] | Sistema de impermeabilização com manta asfáltica e manta líquida em lajes de coberturas | Projectus | 2017 |
Sriravindrarajah and Tran [47] | Waterproofing practices in Australia for building construction | 4th International Conference on Rehabilitation and Maintenance in Civil Engineering | 2018 |
Coppola et al. [48] | Innovative carboxylic acid waterproofing admixture for self-sealing water-tight concretes | Construction and Building Materials | 2018 |
Gonçalves et al. [49] | Environmental and economic comparison of the life cycle of waterproofing solutions for flat roofs | Journal of Building Engineering | 2019 |
Ribeiro et al. [50] | Impermeabilização a base de polímero acrílico: estudo de caso no tratamento de infiltração da laje de cobertura | Revista Eletrônica da Estácio Recife | 2019 |
Ksit and Plich [51] | Liquid plastic films as a solution in terms of tightness problems and roofs aesthetics improvement–review | Budownictwo i Architektura | 2019 |
Scheidegger [20] | Impermeabilização de edificações: mantas asfálticas e argamassas poliméricas | Revista Científica Multidisciplinar Núcleo do Conhecimento | 2019 |
Pinto et al. [52] | Infiltration: The disease of the structure | ITEGAM-JETIA | 2020 |
Pettersson et al. [53] | On the impact of porous media microstructure on rainfall infiltration of thin homogeneous green roof growth substrates | Journal of Hydrology | 2020 |
Van Linden and Van Den Bossche [54] | Airtightness of sealed building joints: Comparison of performance before and after artificial ageing | Building and Environment | 2020 |
Neves et al. [55] | Desenvolvimento de um guia de reparos para diferentes tipos de patologia relativos à umidade nas edificações | XVI Congreso Latinoamericano de Patología de la Construcción | 2021 |
Silva and Coelho [56] | Pathological manifestations due to infiltration in garage floors–Case study in Salvador-BA | XVI International Conference on Pathology and Constructions Rehabilitation | 2021 |
Reis et al. [57] | Pathologies caused by infiltration in a long-stay institution for the elderly: A case study | RECIMA21-Revista Científica Multidisciplinar | 2021 |
Heinlein et al. [58] | Pre-applied bonded waterproofing membranes: A review of the history and the state of the art in Europe and North America | Construction and Building Materials | 2021 |
Maj and Ubysz [59] | The reasons for the loss of polyurea coatings adhesion to the concrete substrate in chemically aggressive water tanks | Engineering Failure Analysis | 2022 |
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Gomes, L.C.d.F.; Gomes, H.C.; Reis, E.D. Surface Waterproofing Techniques: A Case Study in Nova Lima, Brazil. Eng 2023, 4, 1871-1890. https://doi.org/10.3390/eng4030106
Gomes LCdF, Gomes HC, Reis ED. Surface Waterproofing Techniques: A Case Study in Nova Lima, Brazil. Eng. 2023; 4(3):1871-1890. https://doi.org/10.3390/eng4030106
Chicago/Turabian StyleGomes, Lorena Carias de Freitas, Henrique Comba Gomes, and Elvys Dias Reis. 2023. "Surface Waterproofing Techniques: A Case Study in Nova Lima, Brazil" Eng 4, no. 3: 1871-1890. https://doi.org/10.3390/eng4030106
APA StyleGomes, L. C. d. F., Gomes, H. C., & Reis, E. D. (2023). Surface Waterproofing Techniques: A Case Study in Nova Lima, Brazil. Eng, 4(3), 1871-1890. https://doi.org/10.3390/eng4030106