Balancing heritage conservation and public accessibility in hypogeal sites: environmental monitoring of occupancy scenarios

Mariella De Fino

https://orcid.org/0000-0002-2675-704X

Italy

Polytechnic University of Bari image/svg+xml

Department of Civil, Environmental, Land, Building Engineering and Chemistry (DICATECh).

Rocco Rubino

Italy

Polytechnic University of Bari image/svg+xml

Department of Civil, Environmental, Land, Building Engineering and Chemistry (DICATECh).

Elena Cantatore

https://orcid.org/0000-0003-2294-6561

Italy

Polytechnic University of Bari image/svg+xml

Department of Civil, Environmental, Land, Building Engineering and Chemistry (DICATECh).

Albina Scioti

https://orcid.org/0000-0003-0794-4314

Italy

Pegaso University image/svg+xml

Department of Engineering (DING).

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Accepted: 2026-02-12

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Published: 2026-03-02

DOI: https://doi.org/10.4995/vitruvio-ijats.2026.24297
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Keywords:

hypogeal heritage, public access, visitor impact, environmental monitoring

Supporting agencies:

Italian Ministry of University and Research

B.Re.D. srl

Municipality of Monopoli

Abstract:

Hypogeal sites represent unique cases of cultural heritage, especially when they feature decorative elements such as graffiti, frescoes, or bas-reliefs. Preserving these sites relies significantly on maintaining stable internal microclimatic conditions, which are often isolated from external environmental influences. However, visitor presence can disrupt this delicate balance by altering key parameters like temperature, relative humidity, and carbon dioxide levels, particularly in small-sized spaces. As a result, making such sites accessible for tourism requires a careful assessment of scenarios that balance visitor numbers, visit duration and conditions, in view of people wellbeing and heritage conservation. This paper explores the findings from environmental monitoring at the Crypt of San Leonardo in Monopoli, Southern Italy, a small yet historically significant site enriched with 13th-century religious paintings and inscriptions. Starting from the acquisition of microclimatic data under undisturbed conditions over one year, the study demonstrates an operational protocol to identify occupancy scenarios that harmonize public accessibility with safety requirements, by experimental assessment of the human impact on inner environment. The proposed protocol is designed to be adaptable and replicable for similar cases, supporting decision-makers in scheduling and managing touristic exploitation, depending on specific visit schemes and modalities.

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References:

Baker, A. & Genty, D. (1998). ‘Environmental pressures on conserving cave speleothems: Effects of changing surface land use and increased cave tourism’, Journal of Environmental Management, 53(2), 165–175. https://doi.org/10.1006/jema.1998.0208

Bourges, F., Genthon, P., Genty, D., Lorblanchet, M., Mauduit, E. & D’Hulst, D. (2014). ‘Conservation of prehistoric caves and stability of their inner climate: Lessons from Chauvet and other French caves’, Science of the Total Environment, 493, 79–91. https://doi.org/10.1016/j.scitotenv.2014.05.137

Calaforra, J. M., Fernández-Cortés, A., Sánchez-Martos, F., Gisbert, J., & Pulido-Bosch, A. (2003). ‘Environmental control for determining human impact and permanent visitor capacity in a potential show cave before tourist use’, Environmental Conservation, 30(2), 160–167. https://doi.org/10.1017/S0376892903000146

Cigna, A.A. (1993). ‘Environmental management of tourist caves’, Environmental Geology, 21(3), 173–180. https://doi.org/10.1007/BF00775302

Costanzo, V., Fabbri, K., Schito, E., Pretelli, M., & Marletta, L. (2021). ‘Microclimate monitoring and conservation issues of a Baroque church in Italy: a risk assessment analysis’, Building Research and Information, 49(7), 729–747. https://doi.org/10.1080/09613218.2021.1899797

D’Orazio, M., Quagliarini, E., Bernardini, G., Gregorini, B., & Gianangeli, A. (2020). ‘Sustainable fruition as a preventive conservation strategy for hypogeum artefacts’, Journal of Cultural Heritage, 46, 235–243. https://doi.org/10.1016/j.culher.2020.07.011

Fatiguso, F., De Fino, M., Rondinelli, M.F.L., Guida, A., Gabellone, F., & Masini, N. (2025). DIGIT-ACCESS: DIGITal Gateway for Low ACCESSible Heritage Architectures. In: Dobjani, E., et al. Sustainable Living Solutions: Renewable Energy and Engineering. EDMSET 2024. Advances in Science, Technology & Innovation. Springer, Cham. https://doi.org/10.1007/978-3-031-76837-8_2

Gallo, C., Motta, O., Napoli, C., Faggiano, A., Ricciardi, M., Fiorillo, R., Caliano, E., & Proto, A. (2025). A Multi-Analytical Approach to Investigate Fresco Paintings in a Hypogeum Environment. Applied Sciences, 15(13), 7286. https://doi.org/10.3390/app15137286

Germinario, L., Oguchi, C.T., Tamura, Y., Ahn, S., & Ogawa, M . (2020). ‘Taya Caves, a Buddhist marvel hidden in underground Japan: stone properties, deterioration, and environmental setting’, Heritage Science, 8(1), 1–20. https://doi.org/10.1186/s40494-020-00433-9

Gong, Y., Wang, X., Wang, S., Lin, W., & Jin, K. (2025). ‘Impact of open visits on the indoor climate of Mogao Caves Check for updates’, Heritage Science, 1–14. https://doi.org/10.1038/s40494-025-01740-9

Hoyos, M., Soler, V., Cañaveras, J., Sánchez-Moral, S., & Sanz-Rubio, E. (1998). ‘Microclimatic characterization of a karstic cave: Human impact on microenvironmental parameters of a prehistoric rock art cave (Candamo Cave, northern Spain)’, Environmental Geology, 33(4), 231–242. https://doi.org/10.1007/s002540050242

Italian Standardization Body, U. (1999). ‘Cultural Heritage of Historical and Artistic Interest – Environmental Conservation Conditions – Measurement and Analysis’.

Italian Standardization Body, U. (2010). ‘Cultural Heritage Conservation – Procedures and Tools for Measuring Air Temperature and Object Surface Temperature.’

Italian Standardization Body, U. (2013). ‘Conservation of cultural heritage — Environmental conditions — Determination of temperature and relative humidity for storage and display of collections’.

Kilian, R., Borgatta, L., & Wendler, E. (2023). ‘Investigation of the deterioration mechanisms induced by moisture and soluble salts in the necropolis of Porta Nocera, Pompeii (Italy)’, Heritage Science, 11(1), 72. https://doi.org/10.1186/s40494-023-00900-z

Liu, H., Zhang, Q., Zhang, Z., Guo, Q., Lin, W, & Gao, W. (2023). ‘Rainfall influence and risk analysis on the mural deterioration of Dunhuang Mogao Grottoes, China’, Heritage Science, 11(1), 176. https://doi.org/10.1186/s40494-023-01019-x

Lobo, H.A.S. (2015). ‘Tourist carrying capacity of Santana cave (PETAR-SP, Brazil): A new method based on a critical atmospheric parameter’, Tourism Management Perspectives, 16, 67–75. https://doi.org/https://doi.org/10.1016/j.tmp.2015.07.001

Lombardo, L., Parvis, M., Grassini, S., & Angelini, E. (2022). ‘Environmental monitoring solution for cultural heritage’, Journal of Physics: Conference Series, 2204(1), 12099. https://doi.org/10.1088/1742-6596/2204/1/012099

Luvidi, L., Prestileo, F., De Paoli, M., Riminesi, C., Manganelli Del Fà, R., Magrini, D., & Fratini, F. (2021). ‘Diagnostics and monitoring to preserve a hypogeum site: The case of the mithraeum of marino laziale (rome)’, Heritage, 4(4), 4264–4285. https://doi.org/10.3390/heritage4040235

Mugnai, G., Borruso, L., Wu, Y., Gallinaro, M., Cappitelli, F., Zerboni, A., & Villa, F. (2024). ‘Ecological strategies of bacterial communities in prehistoric stone wall paintings across weathering gradients: A case study from the Borana zone in southern Ethiopia’, Science of The Total Environment, 907, 168026. https://doi.org/https://doi.org/10.1016/j.scitotenv.2023.168026

Novas, N., Gázquez, J.A., MacLennan, J., García, R.M., Fernández-Ros, M., & Manzano-Agugliaro, F. (2017). ‘A real-time underground environment monitoring system for sustainable tourism of caves’, Journal of Cleaner Production, 142, 2707–2721. https://doi.org/10.1016/j.jclepro.2016.11.005

Pretelli, M., Signorelli, L., & De Vivo, M.A. (2023). ‘Digital microclimate simulation models to support innovative management and preventive conservation processes in cultural sites’, VITRUVIO - International Journal of Architectural Technology and Sustainability, 8(2 SE-Articles), 88–101. https://doi.org/10.4995/vitruvio-ijats.2023.20536

Saraiva, N.B., Taborda Ribeiro, J., Dias Pereira, L., Pereira, G., Rufino, A.C., Rodrigues Gaspar, A., & Costa, J.J. (2025). ‘Preventive conservation guidelines versus damage risk models: the hygrothermal environment for organic collections in heritage museums in a Mediterranean climate’, Journal of Building Engineering, 111, 113173. https://doi.org/https://doi.org/10.1016/j.jobe.2025.113173

Scatigno, C., Gaudenzi, S., Sammartino, M.P., & Visco, G. (2016). ‘A microclimate study on hypogea environments of ancient roman building’, Science of the Total Environment, 566–567, 298–305. https://doi.org/10.1016/j.scitotenv.2016.05.050

Sileo, M., Gizzi, F.T., & Masini, N. (2017). ‘Low cost monitoring approach for the conservation of frescoes: The crypt of St. Francesco d’Assisi in Irsina (Basilicata, Southern Italy)’, Journal of Cultural Heritage, 23, 89–99. https://doi.org/https://doi.org/10.1016/j.culher.2016.11.011

Vâlcea, A. E., Mariș, I., Negrea, A. D., Cimpoeșu, N., Gârbea, G., Grecu, D., Moga, S. G., Istrate, B., Finta, F. N., Rizea, A. D., Anghel, D. C., Munteanu, C., Petrescu, M. I., & Abrudeanu, M. (2023). ‘Interdisciplinary Research on Medieval Fresco Subjected to Degradation Processes in the Corbii de Piatră Cave Church’, Materials, 5257. https://doi.org/10.3390/ma16155257

Varas-Muriel, M.J., Fort, R., Martínez-Garrido, M.I., Zornoza-Indart, A., & López-Arce, P. (2014). ‘Fluctuations in the indoor environment in Spanish rural churches and their effects on heritage conservation: Hygro-thermal and CO2 conditions monitoring’, Building and Environment, 82, 97–109. https://doi.org/https://doi.org/10.1016/j.buildenv.2014.08.010

Wang, C., Tavares, A., Fonseca, J., Soares, F., & Li, Z. (2022). ‘Real-time condition assessment of a painted megalithic cave using Wireless Sensor Network’, Tunnelling and Underground Space Technology, 120(May 2021), 104270. https://doi.org/10.1016/j.tust.2021.104270

Zerboni, A., Villa, F., Wu, Y.-L., Solomon, T., Trentini, A., Rizzi, A., Cappitelli, F., & Gallinaro, M. (2022). ‘The Sustainability of Rock Art: Preservation and Research’, Sustainability. https://doi.org/10.3390/su14106305

Show more Show less