Sustainable Interpretation Center for Conservation and Environmental Education in Ecologically Sensitive Areas of the Tumbes Mangrove, Peru, 2025
Abstract
1. Introduction
State of the Art
2. Materials and Methods
2.1. Methodological Scheme
2.2. Methodological Process
2.2.1. Literature Review and Conceptual Framework
- Mangrove conservation at global and regional scales.
- Ecological, social, and economic functions of mangrove ecosystems.
- Environmental interpretation centers and environmental education.
- Sustainable and resilient architectural strategies in fragile ecosystems.
2.2.2. Study Area Analysis
- Maximum and minimum temperatures;
- Relative humidity;
- Precipitation;
- Solar radiation and hours of sunshine;
- Prevailing wind speed and direction.
2.2.3. Results
2.2.4. Discussion and Conclusions
2.3. Study Area Location
2.4. Climate Analysis
Hydrological Cycle
2.5. Risk Protection
2.6. Flora Analysis
2.7. Fauna Analysis
3. Results
3.1. Proposal Location
3.2. Urban Analysis
3.3. Conceptualization of the Proposal
3.4. Architectural Parti
3.5. Master Plan and Zoning
3.6. Sustainable Material Strategies
3.7. Reforestation Strategies
3.8. Clean Energy Strategies
Solar-Powered Lighting
3.9. Use of Solar Energy
- Ym: monthly energy per kWp;
- PSHm: monthly peak sun hours;
- Dm: number of days in the month;
- PR: performance ratio.
- nL: number of luminaires;
- Pl: luminaire power (W);
- h: daily operating hours.
3.10. Governance, Financing, and Operational Management Framework
4. Discussion
5. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
- Bimrah, K.; Dasgupta, R.; Hashimoto, S.; Saizen, I.; Dhyani, S. Ecosystem Services of Mangroves: A Systematic Review and Synthesis of Contemporary Scientific Literature. Sustainability 2022, 14, 12051. [Google Scholar] [CrossRef]
- Mialhe, F.; Gunnell, Y.; Mering, C. The Impacts of Shrimp Farming on Land Use, Employment and Migration in Tumbes, Northern Peru. 2013. Available online: https://www.sciencedirect.com/science/article/abs/pii/S096456911200347X (accessed on 26 December 2025).
- Tafur Anzualdo, V.I.; Aguirre Chavez, F.; Vega-Guevara, M.; Esenarro, D.; Vilchez Cairo, J. Causes and Effects of Climate Change 2001 to 2021, Peru. Sustainability 2024, 16, 2863. [Google Scholar] [CrossRef]
- Planeta Futuro. Manglares en el Trópico. 2017. Available online: https://elpais.com/especiales/2017/planeta-futuro/manglares-en-el-tropico/ (accessed on 26 December 2025).
- FAO. Se Intensifican Los Esfuerzos Mundiales Por Proteger Los Manglares. 2023. Available online: https://www.fao.org/newsroom/detail/global-effort-to-safeguard-mangroves-steps-up/es (accessed on 18 June 2025).
- Moreno-Martínez, A.; Álvarez-Arteaga, G.; Orozco-Hernández, M.E. Heterogeneidad Ambiental Y Alteraciones antrópicas En Comunidades De Manglar En El pacífico Sur De México. Rev. Ambient. 2021, 55, 70–85. [Google Scholar] [CrossRef]
- Mira, J.D.; Urrego, L.E.; Monsalve, K. Determinantes Naturales y Antrópicos de la Distribución, Estructura y Composición Florística de Los Manglares de la Reserva Natural Sanguaré, Colombia. Available online: https://dialnet.unirioja.es/servlet/articulo?codigo=9440158 (accessed on 18 June 2025).
- Metropolitan Touring. Los Galápagos: BIG15. 2024. Available online: https://www.finchbayhotel.com/wp-content/uploads/2024/10/galapagos-big15-es.pdf (accessed on 18 June 2025).
- Fundación Charles Darwin. Manglares de Galápagos, Ecosistemas Clave Para Diversidad de Peces. 2021. Available online: https://www.darwinfoundation.org/es/noticias/todas-las-noticias/nuevo-estudio-revela-que-los-manglares-de-las-islas-galapagos-son-ecosistemas-clave-para-gran-diversidad-de-especies-de-peces/ (accessed on 18 June 2025).
- Quinlan, K. The Niger Delta Red Colobus. 2022. Available online: https://neprimateconservancy.org/niger-delta-red-colobus/ (accessed on 18 June 2025).
- Aransiola, S.A.; Zobeashia, S.L.-T.; Ikhumetse, A.; Musa, O.I.; Abioye, O.; Ijah, U.; Maddela, N.R. Niger Delta mangrove ecosystem: Biodiversity, past and present pollution, threat and mitigation. Reg. Stud. Mar. Sci. 2024, 75, 103568. [Google Scholar] [CrossRef]
- Kuta, A.A.; Grebby, S.; Boyd, D.S. Remote Monitoring of the Impact of Oil Spills on Vegetation in the Niger Delta, Nigeria. Appl. Sci. 2025, 15, 338. [Google Scholar] [CrossRef]
- Melana, D.M.; Melana, E.E.; Mapalo, A.M. Mangrove Management and Development in the Philippines. Available online: https://oneocean.org/download/20000427/mangrove_management_phils.pdf (accessed on 18 June 2025).
- Manos Unidas. Preservación del Medio Marino y Las Aguas Costeras en Luzón. Available online: https://www.manosunidas.org/proyecto/preservacion-del-medio-marino-aguas-costeras-luzon (accessed on 18 June 2025).
- Mongabay. A Philippine Town and Its Leaders Show How Mangrove Restoration Can Succeed. 2023. Available online: https://news.mongabay.com/2023/05/a-philippine-town-and-its-leaders-show-how-mangrove-restoration-can-succeed/ (accessed on 18 June 2025).
- Shearman, P.L. Recent Change in the Extent of Mangroves in the Northern Gulf of Papua, Papua New Guinea. AMBIO 2010, 39, 181–189. [Google Scholar] [CrossRef] [PubMed]
- World Rainforest Movement. Papua Nueva Guinea: Dos Enfoques Opuestos Sobre el Uso de Los Bosques. 2001. Available online: https://www.wrm.org.uy/es/articulos-del-boletin/papua-nueva-guinea-dos-enfoques-opuestos-sobre-el-uso-de-los-bosques (accessed on 18 June 2025).
- Cobeñas, P.; Esenarro, D.; Vilchez Cairo, J.; Gómez, A.; Prado, M.; Pérez Sosa, A.A.; Raymundo, V.; Garcia, F.L.P.; Peña, J.; Porras, E.; et al. Strategies for the Revalorization of the Natural Environment and Landscape Regeneration at La Herradura Beach, Chorrillos, Peru 2024. Urban Sci. 2026, 10, 2. [Google Scholar] [CrossRef]
- Contreras, D. ¿Por Qué Son Tan Importantes Los Manglares? 2023. Available online: https://inte.pucp.edu.pe/noticias-y-eventos/noticias/por-que-son-tan-importantes-los-manglares/ (accessed on 20 June 2025).
- SERNANP. Plan Maestro del Santuario Nacional Los Manglares de Tumbes. 2021. Available online: https://sinia.minam.gob.pe/sites/default/files/archivos/public/docs/PM_SNLMT_2017-2021.pdf (accessed on 20 June 2025).
- World Rainforest Movement. Manglares: Las Estrellas de la Conservación. 2023. Available online: https://www.wwf.org.pe/?384370/Manglares-Las-estrellas-de-la-conservacion (accessed on 20 June 2025).
- SERNANP. Santuario Nacional Los Manglares de Tumbes. 2019. Available online: https://www.gob.pe/institucion/sernanp/informes-publicaciones/1928742-santuario-nacional-los-manglares-de-tumbes (accessed on 20 June 2025).
- SPDA. Declaran Santuario Nacional Superficie Ubicada en Zarumilla, Tumbes. 1988. Available online: https://legislacionanp.org.pe/declaran-santuario-nacional-superficie-ubicada-en-zarumilla-tumbes/ (accessed on 20 June 2025).
- IGP. Gestión Sostenible de Recursos Naturales en el Ecosistema de Manglares de Tumbes: Análisis del Territorio y Diagnóstico Socioeconómico. 2014. Available online: https://repositorio.igp.gob.pe/items/6e6b69c7-6b75-405c-8643-c7ccabd09941 (accessed on 20 June 2025).
- IGP. Identificación de Servicios Ecosistémicos en el Santuario Nacional Los Manglares de Tumbes. 2013. Available online: https://repositorio.igp.gob.pe/items/15ace4c4-0d58-4435-b0b7-d89181ba984c (accessed on 20 June 2025).
- INRENA. Estrategia de Conservación del Ecosistema de los Manglares de Tumbes. 2001. Available online: https://sinia.minam.gob.pe/sites/default/files/sinia/archivos/public/docs/321.pdf (accessed on 20 June 2025).
- INRENA. Plan Maestro del Santuario Nacional Los Manglares de Tumbes. 2011. Available online: https://sinia.minam.gob.pe/sites/default/files/sinia/archivos/public/docs/319.pdf (accessed on 20 June 2025).
- Takahashi, K.; Martínez, A. Impacto de la Variabilidad y Cambio Climático en el Ecosistema de Manglares de Tumbes, Perú. 2015. Available online: https://repositorio.igp.gob.pe/items/653ef482-b087-42e3-a347-1c964038e84c (accessed on 20 June 2025).
- Idrogo, I. Estructura de Las Especies de Mangle en el Santuario Nacional Los Manglares de Tumbes. 2016. Available online: https://core.ac.uk/download/pdf/250077657.pdf (accessed on 20 June 2025).
- INRENA. Plan Maestro del Santuario Nacional Los Manglares de Tumbes. 2001. Available online: https://sinia.minam.gob.pe/sites/default/files/sinia/archivos/public/docs/320.pdf (accessed on 20 June 2025).
- Cuya, N.; Estrada, P.; Esenarro, D.; Vega, V.; Vilchez Cairo, J.; Mancilla-Bravo, D.C. Comfort for Users of the Educational Center Applying Sustainable Design Strategies, Carabayllo-Peru-2023. Buildings 2024, 14, 2143. [Google Scholar] [CrossRef]
- Rebolledo Monsalve, E.; Verduga, L.; Hurtado Ferreira, F. Wetland Ecosystem Service Preservation? Geochemical Changes in Systems with Mangroves and Shrimp Farms in the Northern Ecuadorean Coast. Sustainability 2024, 16, 11083. [Google Scholar] [CrossRef]
- Hajj-Hassan, M.; Chaker, R.; Cederqvist, A.-M. Environmental Education: A Systematic Review on the Use of Digital Tools for Fostering Sustainability Awareness. Sustainability 2024, 16, 3733. [Google Scholar] [CrossRef]
- Velempini, K. Assessing the Role of Environmental Education Practices Towards the Attainment of the 2030 Sustainable Development Goals. Sustainability 2025, 17, 2043. [Google Scholar] [CrossRef]
- Esenarro, D.; Montenegro, L.K.; Medina, C.; Cairo, J.V.; Legua Terry, A.I.; Veliz Garagatti, M.; Salas Delgado, G.W.; Escate Lira, M.M. Green Corridor Along the Chili River as an Ecosystem-Based Strategy for Social Connectivity and Ecological Resilience in Arequipa, Arequipa, Peru, 2025. Urban Sci. 2025, 9, 488. [Google Scholar] [CrossRef]
- Vilchez Cairo, J.; Rodriguez Chumpitaz, A.N.; Esenarro, D.; Ruiz Huaman, C.; Alfaro Aucca, C.; Ruiz Reyes, R.; Veliz, M. Green Infrastructure and the Growth of Ecotourism at the Ollantaytambo Archeological Site, Urubamba Province, Peru, 2024. Urban Sci. 2025, 9, 317. [Google Scholar] [CrossRef]
- Niesenbaum, R.A. The Integration of Conservation, Biodiversity, and Sustainability. Sustainability 2019, 11, 4676. [Google Scholar] [CrossRef]
- Diab, Z.; Younes, J.; Ghaddar, N. Optimal Passive Interventions for Enhancing Resilience of Naturally Ventilated Residential Buildings in Future Climatic Extremes. Buildings 2025, 15, 4016. [Google Scholar] [CrossRef]
- Pontificia Universidad Católica del Perú. Consideraciones Bioclimáticas en el Diseño Arquitectónico: El Caso Peruano. 2011. Available online: https://arquitectura.pucp.edu.pe/wp-content/uploads/2018/06/CUADERNOS-14_edicion-digital.pdf (accessed on 24 June 2025).
- SENAMHI. Pronóstico del Tiempo Para Tumbes. Available online: https://www.senamhi.gob.pe/?p=pronostico-detalle&dp=24&localidad=0002 (accessed on 24 June 2025).
- Naciones Unidas. Objetivos de Desarrollo Sostenible. Available online: https://www.un.org/sustainabledevelopment/es/objetivos-de-desarrollo-sostenible/ (accessed on 24 June 2025).
- IGP. Estudio de la Vulnerabilidad Presente y Futura Ante el Cambio Climático en la Región Tumbes. 2017. Available online: https://repositorio.igp.gob.pe/items/4dd5493c-562d-47e5-98f2-a4219fbe88d5 (accessed on 20 June 2025).
- Martínez, A. Relaciones Sociales de Poder y Desarrollo Territorial en la Creación de Áreas Naturales Protegidas: Caso del Santuario Nacional Los Manglares de Tumbes (SNLMT). 2021. Available online: https://hdl.handle.net/20.500.12404/18668 (accessed on 24 June 2025).
- Fundación Omacha. El Papel de Los Manglares en la Captura y Almacenamiento de Dióxido de Carbono CO2. 2021. Available online: https://omacha.org/manglares-captura-almacenamiento-dioxido-carbono/#:~:text=,protecci%C3%B3n%20ante%20tormentas%20y%20huracanes (accessed on 24 June 2025).
- Garcés, B.; Lozano, J. Características Estructurales del Mangle Rojo (Rhizophora Mangle) en Isla Payardi, Colón, Panamá. 2021. Available online: https://hdl.handle.net/1834/43822 (accessed on 24 June 2025).
- Lambs, L.; Saenger, A. Sap Flow Measurements of Ceriops Tagal and Rhizophora Mucronata Mangrove Trees by Deuterium Tracing and Lysimetry. 2011. Available online: https://www.researchgate.net/publication/51633337_Sap_flow_measurements_of_Ceriops_tagal_and_Rhizophora_mucronata_mangrove_trees_by_deuterium_tracing_and_lysimetry (accessed on 24 June 2025).
- Dazzini, M.; Navarrete, H. Bosques Azules: Humedales en Riesgo. Una Visión Latinoamericana. 2021. Available online: https://repositorio.puce.edu.ec/handle/123456789/1078 (accessed on 24 June 2025).
- González, D.; Grimaldo, O.; Cervantes, L. Los Elementos Potencialmente Tóxicos en las Plantas de Manglar: Una Revisión de Los Mecanismos de Tolerancia Involucrados. 2008. Available online: https://ve.scielo.org/scielo.php?script=sci_arttext&pid=S0378-18442008001100009&lng=es&nrm=iso (accessed on 24 June 2025).
- Emerhi, E. Variations in Anatomical Properties of Rhizophora Racemosa (Leechm) and Rhizophora Harrisonii (G. Mey) in a Nigerian Mangrove Forest Ecosystem. Available online: https://www.researchgate.net/publication/344299228_Research_Paper_variations_in_anatomical_properties_of_rhizophora_racemosa_leechm_and_rhizophora_harrisonii_g_mey_in_a_nigerian_mangrove_forest_ecosystem (accessed on 24 June 2025).
- Muller, E.; Lambs, L.; Fromard, F. Variaciones en el uso del agua por un manglar maduro de Avicennia germinans, Guayana Francesa. Ann. For. Sci. 2009, 66, 803. [Google Scholar] [CrossRef][Green Version]
- Pérez, H.; Victoria, S.; Millán, A.; Olivia, G.; Manzano, S.; Mercedes, M.; Hurtado, O.; Miguel, A.; Osuna, M.; Carmen, C. Mangles al Rescate: Cómo Estos Árboles Purifican Ecosistemas Costeros. 2024. Available online: https://www.revista.unam.mx/wp-content/uploads/v25_n5_a8.pdf (accessed on 24 June 2025).
- Cruz, D. Evaluación de Los Cambios en la Composición de Especies de Manglar Mediante Análisis Geoespacial en Marismas Nacionales. 2025. Available online: https://hdl.handle.net/20.500.14330/TES01000866600 (accessed on 20 June 2025).
- Cabañas, M. Efectos Fisiológicos, Morfológicos y Bioquímicos de la Exposición al Plomo en Las Especies Avicennia Germinans, Laguncularia Racemosa y Rhizophora Mangle. 2014. Available online: https://cicy.repositorioinstitucional.mx/jspui/handle/1003/997 (accessed on 24 June 2025).
- Ramanjaneyulu, A.; Chaitanya, T.; Joseph, B. Conocarpus Tree—A Boon or Bane. 2023. Available online: https://www.researchgate.net/publication/372649162_Conocarpus_Tree_-A_Boon_or_Bane (accessed on 24 June 2025).
- Rodriguez, Y.; Orta, S.; González, M.; Rodríguez, O. Estado Actual de Conocarpus erectus L., en el Sector Costero Cacongo, Provincia de Cabinda, Angola. 2021. Available online: https://www.researchgate.net/publication/351481564_Estado_actual_de_Conocarpus_erectus_L_en_el_sector_costero_Cacongo_provincia_de_Cabinda_Angola (accessed on 24 June 2025).
- Matović, S.; Lović Obradović, S.; Gajić, T. Sustainable Tourism in Protected Areas: Comparative Governance and Lessons from Tara and Triglav National Parks. Sustainability 2025, 17, 7048. [Google Scholar] [CrossRef]
- Tello Chan, J.M.; Magio, K.O.; Gayosso Soto, E. The Tourist Carrying Capacity as a Basis for Sustainable Management of Ecotourism Activities: Case Study of the Southern Mexican Caribbean. Sustainability 2025, 17, 7492. [Google Scholar] [CrossRef]
- Wyman, M.; Barborak, J.R.; Inamdar, N.; Stein, T. Best Practices for Tourism Concessions in Protected Areas: A Review of the Field. Forests 2011, 2, 913–928. [Google Scholar] [CrossRef]
- Costa, D.C.; Pereira, H.S.; Marchand, G.A.E.L.; Silva, S.C.P. Challenges of Participatory Community Monitoring of Biodiversity in Protected Areas in Brazilian Amazon. Diversity 2018, 10, 61. [Google Scholar] [CrossRef]
- Esenarro Vargas, D.; Arteaga Vega, D.J.; Vilchez Cairo, J.; Villena Móvil, M.F.; Raymundo Martínez, V.; Sánchez Medina, A.G. Structural system in wood and its impact on environmental design in the Surfer Bungalow in Canoas, Tumbes, Peru. In Lecture Notes in Networks and Systems, Proceedings of the 8th ASRES International Conference on Intelligent Technologies (ICIT 2023), Jakarta, Indonesia, 15–17 December 2025; Tripathi, V.K., Arya, K.V., Rodriguez, C., Eds.; Springer: Singapore, 2025; Volume 1031, pp. 431–451. [Google Scholar]
- Deepthi, A.S.; Joseph, N.; Thomas, R.P.; Karnaver, P.; Binu, M.S. Studies on Carbon Sequestration Potential of Trees with Epiphytic Orchid Association. Curr. Bot. 2025, 16, 76–80. [Google Scholar] [CrossRef]
- Postillon, E. Anatomia y Propiedades Físicas de Prosopis Pallida, k. Tumbes. 2009. Available online: https://hdl.handle.net/20.500.12894/2573 (accessed on 24 June 2025).
- Buitrago Hurtado, G.; Bustamante Rodríguez, S.L.; Corredor Huertas, G.A.; Saavedra Correa, J.D.; Pinzón Gutiérrez, Y.A.; Pinzón Pinzón, D.R.; Pérez González, D.A.; Diaz Rodríguez, D. Guayaba (Psidium guajava L.): Manual de Recomendaciones Técnicas Para su Cultivo en el Departamento de Cundinamarca. 2024. Available online: https://hdl.handle.net/20.500.12324/40711 (accessed on 24 June 2025).
- Ruiz-Blandon, B.A.; Hernández-Alvarez, E.; Bertolini, V.; Martínez-Trinidad, T. Productivity and Carbon Sequestration in Pure and Mixed Tropical Forest Plantations in Western Mexico. Forests 2025, 16, 1558. [Google Scholar] [CrossRef]
- Souza, R.; Assreuy, A.; Madeira, J.; Chagas, F.; Parreiras, L.; Santos, G.; Mourão, P.; Pereira, M. Purified polysaccharides of Geoffroea spinosa barks have anticoagulant and antithrombotic activities devoid of hemorrhagic risks. Carbohydr. Polym. 2015, 124, 208–215. [Google Scholar] [CrossRef] [PubMed]
- Marin, O.; Salazar, K. Captura del Carbono Azul Mediante La Grama Salada (Distichlis spicata (L.) Greene) en El Refugio de Vida Silvestre Los Pantanos De Villa. 2019. Available online: https://repositorio.untels.edu.pe/item/8a69f644-174f-46b6-a055-0a24cb12b7f6 (accessed on 24 June 2025).
- Orozco-Ospino, J.; Florez-Yepes, G.; Diaz-Muegue, L. Governance of Protected Areas Based on Effectiveness and Justice Criteria: A Qualitative Study with Artificial Intelligence-Assisted Coding. Sustainability 2025, 17, 8734. [Google Scholar] [CrossRef]
- Mincetur. Mincetur Entrega Centro de Interpretación “Casa del Manglar” de Puerto Pizarro. 2019. Available online: https://www.gob.pe/institucion/mincetur/noticias/65975-mincetur-entrega-centro-de-interpretacion-casa-del-manglar-de-puerto-pizarro (accessed on 24 June 2025).
- Ecoturismo Mallorquín. Beneficios del Turismo Sostenible: Proyecto Ciénaga de Mallorquín. Available online: https://ecoturismocienagademallorquin.com/beneficios-del-turismo-sostenible-proyecto-cienaga-de-mallorquin/ (accessed on 24 June 2025).
- Iñiguez, A. En Construcción: El Ecoparque de la Ciénaga de Mallorquín en Barranquilla. 2022. Available online: https://www.archdaily.pe/pe/985255/en-construccion-el-ecoparque-de-la-cienaga-de-mallorquin-en-barranquilla (accessed on 24 June 2025).






















| Species | Useful Precipitation Range (mm/Year) | Water Required ≈ L/Day per 1000 m2 | Consumption ≈ L/Month per 1000 m2 | Estimated Sequestration ≈ kg CO2/m2/Year | Estimated Sequestration ≈ kg C/m2/Year | Pollution Tolerance (%) |
|---|---|---|---|---|---|---|
| Rhizophora Mangle (Mangle rojo) | 800–10,000 mm/year [45] | 500–1000 L/day [46] | 15,000–30,000 L/month | 0.48–0.74 kg CO2·m−2·yr−1 [47] | 0.13–0.20 kg C·m−2·yr−1 | 70% [48] |
| Rhizophora Harrisonii (Mangle colorado) | 600–10,000 mm/year [49] | 500–1000 L/day [49] | 15,000–30,000 L/month | 0.48–0.74 kg CO2·m−2·yr−1 [49] | 0.13–0.20 kg C·m−2·yr−1 | 70% [49] |
| Avicennia Germinans (Mangle salado) | 800–7000 mm/year [50] | 600–1200 L/day [50] | 18,000–36,000 L/month | 0.48–0.74 kg CO2·m−2·yr−1 [51] | 0.13–0.20 kg C·m−2·yr−1 | 90% [51] |
| Laguncularia Racemosa (Mangle blanco) | 800–7000 mm/year [52] | 600–1000 L/day [52] | 18,000–30,000 L/month | 0.48–0.74 kg CO2·m−2·yr−1 [53] | 0.13–0.20 kg C·m−2·yr−1 | 60% [53] |
| Conocarpus Erectus (Mangle piña) | 800–7000 mm/year [54] | 500/800 L/day [54] | 15,000–24,000 L/month | 0.48–0.74 kg CO2·m−2·yr−1 [55] | 0.13–0.20 kg C·m−2·yr−1 | 60% [55] |
| Species | Estimated Sequestration ≈ kg C/m2/Year | Canopy Diameter (m) | Canopy Area (m2) | Total Quantity | % of Assigned Area | Assigned Area (m2) |
|---|---|---|---|---|---|---|
| Cattleya Maxima | 0.005 kg C·m−2·year−1 [61] | 0.5 | 0.2 | 4550 | 10% | 910 |
| Prosopis Pallida | 0.30 kg C·m−2·year−1 [62] | 10 | 79 | 35 | 30% | 2730 |
| Psidium Guajava | 0.05 kg C·m−2·year−1 [63] | 8 | 50 | 27 | 15% | 1365 |
| Tabebuia Rosea | 0.32 kg C·m−2·year−1 [64] | 12 | 113 | 16 | 20% | 1820 |
| Geoffroea Spinosa | 0.10 kg C·m−2·year−1 [65] | 6 | 28 | 49 | 15% | 1365 |
| Distichlis Spicata | 0.15 kg C·m−2·year−1 [66] | 1 | 0.8 | 1150 | 10% | 910 |
| Areas | Luminaires | Power (W) | Daily Hours | Daily Energy (kWh) | Monthly Energy (kWh) | Required kWp | 450 W Panels | % of Monthly Energy |
|---|---|---|---|---|---|---|---|---|
| Interpretation Center | 16 | 20 | 4 | 1.28 | 38.4 | 1.44 | 3.2 | 26.7 |
| Flora Workshop | 12 | 20 | 4 | 0.96 | 28.8 | 1.08 | 2.4 | 20.0 |
| Fauna Workshop | 12 | 20 | 4 | 0.96 | 28.8 | 1.08 | 2.4 | 20.0 |
| Viewpoint | 8 | 20 | 4 | 0.64 | 19.2 | 0.72 | 1.6 | 13.3 |
| Bridges | 12 | 20 | 4 | 0.96 | 28.8 | 1.08 | 2.4 | 20.0 |
| TOTAL | 60 | 20 | 4 | 4.8 | 144.0 | 5.4 | 12 | 100.0 |
Disclaimer/Publisher’s Note: The statements, opinions and data contained in all publications are solely those of the individual author(s) and contributor(s) and not of MDPI and/or the editor(s). MDPI and/or the editor(s) disclaim responsibility for any injury to people or property resulting from any ideas, methods, instructions or products referred to in the content. |
© 2026 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license.
Share and Cite
Esenarro, D.; Garcia, M.; Calampa, Y.; Vasquez, P.; Aguilar Vizcarra, D.; Vargas, C.; Tafur Anzualdo, V.I.; Cairo, J.V.; Cobeñas, P. Sustainable Interpretation Center for Conservation and Environmental Education in Ecologically Sensitive Areas of the Tumbes Mangrove, Peru, 2025. Urban Sci. 2026, 10, 57. https://doi.org/10.3390/urbansci10010057
Esenarro D, Garcia M, Calampa Y, Vasquez P, Aguilar Vizcarra D, Vargas C, Tafur Anzualdo VI, Cairo JV, Cobeñas P. Sustainable Interpretation Center for Conservation and Environmental Education in Ecologically Sensitive Areas of the Tumbes Mangrove, Peru, 2025. Urban Science. 2026; 10(1):57. https://doi.org/10.3390/urbansci10010057
Chicago/Turabian StyleEsenarro, Doris, Miller Garcia, Yerika Calampa, Patricia Vasquez, Duilio Aguilar Vizcarra, Carlos Vargas, Vicenta Irene Tafur Anzualdo, Jesica Vilchez Cairo, and Pablo Cobeñas. 2026. "Sustainable Interpretation Center for Conservation and Environmental Education in Ecologically Sensitive Areas of the Tumbes Mangrove, Peru, 2025" Urban Science 10, no. 1: 57. https://doi.org/10.3390/urbansci10010057
APA StyleEsenarro, D., Garcia, M., Calampa, Y., Vasquez, P., Aguilar Vizcarra, D., Vargas, C., Tafur Anzualdo, V. I., Cairo, J. V., & Cobeñas, P. (2026). Sustainable Interpretation Center for Conservation and Environmental Education in Ecologically Sensitive Areas of the Tumbes Mangrove, Peru, 2025. Urban Science, 10(1), 57. https://doi.org/10.3390/urbansci10010057

