Geosites assessment in a volcanic hotspot environment and its impact on geotourism, Santa Cruz-Galapagos Islands, Ecuador

Paúl Carrión-Mero , Emily Sánchez-Zambrano , Josep Mata-Perelló , María Jaya-Montalvo , Gricelda Herrera-Franco , Edgar Berrezueta , Ramón L. Espinel , Milena Baque , Fernando Morante-Carballo

International Journal of Geoheritage and Parks ›› 2024, Vol. 12 ›› Issue (1) : 147 -167.

PDF
International Journal of Geoheritage and Parks ›› 2024, Vol. 12 ›› Issue (1) :147 -167. DOI: 10.1016/j.ijgeop.2024.01.006
Research article
research-article

Geosites assessment in a volcanic hotspot environment and its impact on geotourism, Santa Cruz-Galapagos Islands, Ecuador

Author information +
History +
PDF

Abstract

Volcanic environments offer a unique combination for life development. UNESCO recognized the Galapagos Islands as Natural World Heritage site due to the uniqueness of flora and fauna. In addition, they have relevant geological value because of their volcanic origin associated with a “hotspot” and still evolving geological dynamics. This study aimed to evaluate the geological heritage of Santa Cruz Island by identifying and valuing geosites, considering the scientific, academic, and tourist fields, and the risk of degradation to establish geoheritage management strategies. This study applied four semi-quantitative assessment methodologies and SWOT analysis to identify 15 geosites related to volcanic hotspots, particularly volcanic craters, cracks, beaches, lava tunnels, lagoons, and volcanic depositional landforms. Due to the uniqueness of their geological characteristics, the evaluations applied reflected “very high” and “high-medium” qualifications in the geosites. Their identification and valuation allowed for establishing protection, geo-education, and sustainable use strategies (geotourism). In addition, the study identified a research opportunity associated with the cultural value of geosites of volcanic environments within protected areas with singular ecological value.

Keywords

geodiversity / geoeducation / tourism / volcanic geomorphology / volcanic islands / sustainable development goals / Santa Cruz-Galapagos

Cite this article

Download citation ▾
Paúl Carrión-Mero, Emily Sánchez-Zambrano, Josep Mata-Perelló, María Jaya-Montalvo, Gricelda Herrera-Franco, Edgar Berrezueta, Ramón L. Espinel, Milena Baque, Fernando Morante-Carballo. Geosites assessment in a volcanic hotspot environment and its impact on geotourism, Santa Cruz-Galapagos Islands, Ecuador. International Journal of Geoheritage and Parks, 2024, 12(1): 147-167 DOI:10.1016/j.ijgeop.2024.01.006

登录浏览全文

4963

注册一个新账户 忘记密码

References

[1]

Alomía Herrera I., Paque R., Maertens M., & Vanacker V. (2022). History of land cover change on Santa Cruz Island, Galapagos. Land, 11(7), 1017. https://doi.org/10.3390/land11071017.

[2]

Baadi K., Amine A., Zangmo Tefogoum G., Sabaoui A., & Tekiout B. (2021). Volcanic geosites assessment in the Plio-quaternary Azrou-Timahdite plateau (Middle Atlas, Morocco). Journal of African Earth Sciences, 184, 104352. https://doi.org/10.1016/j.jafrearsci.2021.104352.

[3]

Baadi K., Sabaoui A., & Tekiout B. (2020). Methodological proposal for assessment geosites: Its application in Bou-Iblane region (Middle Atlas, Morocco). Geoheritage, 12(3), 55. https://doi.org/10.1007/s12371-020-00476-1.

[4]

Bastidas G., Soria O., Mulas M., Loaiza S., & Bordehore L. J. (2022). Stability analysis of lava tunnels on Santa Cruz Island (Galapagos Islands, Ecuador) using rock mass classifications: Empirical approach and numerical modeling. Geosciences, 12(10), 380. https://doi.org/10.3390/geosciences12100380.

[5]

Becerra-Ramírez R., Gosálvez R. U., Escobar E., González E., Serrano-Patón M., & Guevara D. (2020). Characterization and geotourist resources of the Campo de Calatrava volcanic region (Ciudad Real, Castilla-La Mancha, Spain) to develop a UNESCO global Geopark project. Geosciences, 10(11), 441. https://doi.org/10.3390/geosciences10110441.

[6]

Beltrán-Yanes E., & Esquivel-Sigut I. (2023). The vegetation landscapes of a oceanic recent volcanic island. In J.Dóniz-Páez, & N. M.Pérez ( El Hierro Island Global Geopark: Diversity of volcanic heritage for geotourism Eds.), (pp. 53-63). Cham: Springer. https://doi.org/10.1007/978-3-031-07289-5_5.

[7]

Berrezueta E., Sánchez-Cortez J. L., & Aguilar-Aguilar M. (2021). Inventory and characterization of geosites in Ecuador: A review. Geoheritage, 13(4), 93. https://doi.org/10.1007/s12371-021-00619-y.

[8]

Bow C. S., & Geist D. J. (1992). Geology and petrology of Floreana Island, Galapagos Archipelago, Ecuador. Journal of Volcanology and Geothermal Research, 52(1-3), 83-105. https://doi.org/10.1016/0377-0273(92)90134-Y.

[9]

Božić S., & Tomić N. (2015). Canyons and gorges as potential geotourism destinations in Serbia: Comparative analysis from two perspectives - generalgeotourists’ and pure geotourists’. Open Geosciences, 7(1), 531-546. https://doi.org/10.1515/geo-2015-0040.

[10]

Brilha J. (2016). Inventory and quantitative assessment of geosites and geodiversity sites: A review. Geoheritage, 8(2), 119-134. https://doi.org/10.1007/s12371-014-0139-3.

[11]

Brilha J. (2018). Geoheritage:Inventories and evaluation. In J.Reynard, & E.Brilha ( Geoheritage: protection, and management(Eds.), Assessment, pp. 69-85). Amsterdam: Elsevier. https://doi.org/10.1016/B978-0-12-809531-7.00004-6.

[12]

Brilha J., Gray M., Pereira D. I., & Pereira P. (2018). Geodiversity: An integrative review as a contribution to the sustainable management of the whole of nature. Environmental Science and Policy, 86, 19-28. https://doi.org/10.1016/j.envsci.2018.05.001.

[13]

Burbano D. V., Meredith T. C., & Mulrennan M. E. (2020). Exclusionary decision-making processes in marine governance: The rezoning plan for the protected areas of the ‘iconic’ Galapagos Islands, Ecuador. Ocean Coast. Manage., 185, 105066. https://doi.org/10.1016/j.ocecoaman.2019.105066.

[14]

Cañizares A. D., & Bourotte C. L. M. (2021). Strategic diagnosis of geocommunication using SWOT analysis in the Varvite Geological Park, São Paulo, Brazil. Journal of the Geological Survey of Brazil, 4(SI 1), 89-102. https://doi.org/10.29396/jgsb.2021.v4.si1.1.

[15]

Carlton J. T., Keith I., & Ruiz G. (2019). Assessing marine bioinvasions in the Galápagos Islands: Implications for conservation biology and marine protected areas. Aquatic Invasions, 14(1), 1-20. https://doi.org/10.3391/ai.2019.14.1.01.

[16]

Carrión- Mero P., Borja- Bernal C., Herrera- Franco G., Morante- Carballo F., Jaya- Montalvo M., Maldonado- Zamora A.,... Berrezueta E. (2021). Geosites and geo- tourism in the local development of communities of the Andes Mountains. A case study. Sustainability, 13(9), 4624. https://doi.org/10.3390/su13094624.

[17]

Carrión-Mero P., Ayala-Granda A., Serrano-Ayala S., Morante-Carballo F., Aguilar-Aguilar M., Gurumendi-Noriega M.,... Berrezueta E. (2020). Assessment of geo- morphosites for geotourism in the northern part of the “Ruta Escondida” (Quito, Ecuador). Sustainability, 12(20), 8468. https://doi.org/10.3390/su12208468.

[18]

Carrión-Mero P., Dueñas-Tovar J., Jaya-Montalvo M., Berrezueta E., & Jiménez-Orellana N. (2022). Geodiversity assessment to regional scale: Ecuador as a case study. Environmental Science & Policy, 136, 167-186. https://doi.org/10.1016/j.envsci.2022.06.009.

[19]

Carrión-Mero P., & Morante-Carballo F. (2020). The context of Ecuador’s world heritage, for sustainable development strategies. International Journal of Design & Nature and Ecodynamics, 15(1), 39-46. https://doi.org/10.18280/ijdne.150106.

[20]

Casadevall T. J., Tormey D., & Van Sistine D. (2019). Protecting our global volcanic estate: Review of international conservation efforts. International Journal of Geoheritage and Parks, 7(4), 182-191. https://doi.org/10.1016/j.ijgeop.2020.01.002.

[21]

Casillas Ruiz R., Pérez Candelario Y., & Ferro Fernández C. (2023). Geoheritage inventory of the El Hierro UNESCO Global Geopark. In J.Dóniz-Páez, & N. M.Pérez ( El Hierro Island Global Geopark: Diversity of volcanic heritage for geotourism Eds.), (pp. 43-51). Cham: Springer. https://doi.org/10.1007/978-3-031-07289-5_4.

[22]

Cayambe J., Diaz-Ambrona C. G. H., Torres B., & Heredia-R M. (2021). Decision support systems for the Imbabura Geopark:Ecuadorian Andes. In Á. Rocha, C. Ferrás, P. C. López-López, & T. Guarda (Eds.), Informationtechnology and systems (pp.310-320). Cham: Springer. https://doi.org/10.1007/978-3-030-68418-1_30.

[23]

CBD (2021). Convention on biological diversity. Retrieved from https://www.cbd.int/countries/profile/?country=ec.

[24]

Charvis P., Laesanpura A., Gallart J., Hirn A., Lépine J. -C., de Voogd B.,... Pontoise B. (1999). Spatial distribution of hotspot material added to the lithosphere under La Réunion, from wide-angle seismic data. Journal of Geophysical Research: Solid Earth, 104(B2), 2875-2893. https://doi.org/10.1029/98JB02841.

[25]

Comănescu L., & Nedelea A. (2017). Geomorphosites assessments of the glacial and periglacial landforms from southern Carpathians. In A. V. -S.M.Radoane (Ed.), Landform dynamics and evolution in Romania (pp. 215-246). Cham: Springer. https://doi.org/10.1007/978-3-319-32589-7_10.

[26]

Congreso Nacional (1998). Official Register No. 278, March 18, 1998 [National Congress Legislative Committees, pp. 1-31].

[27]

De la Cruz-Modino R., Piñeiro-Corbeira C., Aswani S., González-Cruz C., Domínguez D., Ordóñez García P.,... Pascual-Fernández J. (2023). Cultural seascapes in the ‘sea of calms’ and La Restinga coast. In J.Dóniz-Páez, & N. M.Pérez ( El Hierro Island Global Geopark: Diversity of volcanic heritage for geotourism Eds.), (pp. 105-113). Cham: Springer. https://doi.org/10.1007/978-3-031-07289-5_10.

[28]

Dirección del Parque Nacional Galápagos (2022). Informe Anual de Ingreso de visitantes a las áreas protegidas de Galápagos del año 2022 [Annual report on visitor entry to the Galapagos protected areas for the year 2022]. Retrieved from https://galapagos.gob.ec/wp-content/uploads/2023/02/INFORME_ANUAL_ VISITANTES_2022_DUP.pdf.

[29]

Erfurt P. (2022). Volcano tourism and visitor safety: Still playing with fire? A 10-year update. Geoheritage, 14(2), 56. https://doi.org/10.1007/s12371-022-00691-y.

[30]

Fepuleai A., Németh K., & Muliaina T. (2021). Geopark impact for the resilience of communities in Samoa, SW Pacific. Geoheritage, 13(3), 50. https://doi.org/10.1007/s12371-021-00578-4.

[31]

Fiantis D., Ginting F., Gusnidar N. M., & Minasny B. (2019). Volcanic ash, insecurity for the people but securing fertile soil for the future. Sustainability, 11(11), 3072. https://doi.org/10.3390/su11113072.

[32]

Fundación Charles Darwin (FCD), &World Wildlife Fund Ecuador ( 2018). Atlas de Galápagos, Ecuador: Especies nativas e invasoras [Galapagos Atlas, Ecuador: Native and invasive species]. Retrieved from https://www.darwinfoundation.org/es/publicaciones/atlas-galapagos.

[33]

Galindo I., Vegas J., Romero C., Llorente M., Martín-González E., Rubio J. C.,... Sánchez N. (2019). Geoheritage inventory of the Lanzarote and Chinijo Islands UNESCO Global Geopark. In E.Mateo, J.Martínez-Frías, & J.Vegas ( Lanzarote and Chinijo Islands Geopark: From earth to space. (Eds.), pp.31-45). Cham: Springer. https://doi. org/10.1007/978-3-030-13130-2_3.

[34]

García-Cortés Á., Carcavilla L., Díaz-Martínez E., & Vegas J. (2013). Documento metodológico para la elaboración del inventario español de lugares de interés geológico (IELIG) [Methodological document for the development of the Spanish inventory of geological sites of interest (IELIG)]. Retrieved from https://www. igme.es/patrimonio/novedades/METODOLOGIA/IELIG/V16/Web.pdf.

[35]

García-Cortés A., Vegas J., Carcavilla L., & Díaz-Martínez E. (2018). Conceptual base and methodology of the Spanish Inventory of Sites of Geological Interest (IELIG). Retrieved from https://www.igme.es/patrimonio/descargas/CONCEPTUAL%20BASE%20AND%20METHODOLOGY%20OF%20THE%20SPANISH%20INVENTORY%20OF%20SITES%20OF%20GEOLOGICAL%20INTEREST%20(IELIG).pdf.

[36]

Gioncada A., Pitzalis E., Cioni R., Fulignati P., Lezzerini M., Mundula F., & Funedda A. (2019). The volcanic and mining geoheritage of San Pietro Island (Sulcis, Sar- dinia, Italy): The potential for geosite valorization. Geoheritage, 11(4), 1567-1581. https://doi.org/10.1007/s12371-019-00418-6.

[37]

Grandgirard V. (1997). Géomorphologie et gestion du patrimoine naturel : la mémoire de la Terre Est notre mémoire [Geomorphology and management of natural heritage: The memory of the earth is our memory]. Geographica Helvetica, 52(2), 47-56. https://doi.org/10.5194/gh-52-47-1997.

[38]

Gravis I., Németh K., & Procter J. N. (2017). The role of cultural and indigenous values in geosite evaluations on a quaternary monogenetic volcanic landscape at Ihumātao, Auckland Volcanic Field, New Zealand. Geoheritage, 9(3), 373-393. https://doi.org/10.1007/s12371-016-0198-8.

[39]

Grehan J. (2001). Biogeography and evolution of the Galapagos: Integration of the biological and geological evidence. Biological Journal of the Linnean Society, 74(3), 267-287. https://doi.org/10.1006/bijl.2001.0576.

[40]

Guilbaud M. -N., Ortega-Larrocea M. P., Cram S., & van Wyk de Vries B. (2021). Xitle volcano geoheritage, Mexico City: Raising awareness of natural hazards and environmental sustainability in active volcanic areas. Geoheritage, 13(1), 6. https://doi.org/10.1007/s12371-020-00525-9.

[41]

Harpp K. S., & Geist D. J. (2018). The evolution of Galápagos volcanoes: An alternative perspective. Frontiers in Earth Science, 6, 50. https://doi.org/10.3389/feart.2018.00050.

[42]

Harpp K. S., Geist D. J., Koleszar A. M., Christensen B., Lyons J., Sabga M., & Rollins N. (2014). The geology and geochemistry of Isla Floreana, Galápagos. In K. S. Harpp, E. Mittelstaedt, N. D’Ozouville, & D. W. Graham (Eds.), The Galápagos: A natural laboratory for the earth sciences (pp. 71-117). Washtington, DC: American Geophys- ical Union. https://doi.org/10.1002/9781118852538.ch6.

[43]

Harpp K. S., & Weis D. (2020). Insights into the origins and compositions of mantle plumes: A comparison of Galápagos and Hawai’i. Geochemistry, Geophysics, Geosystems, 21(9), e2019GC008887. https://doi.org/10.1029/2019GC008887.

[44]

Heads M., & Grehan J. R. (2021). The Galápagos Islands: Biogeographic patterns and geology. Biological Reviews, 96(4), 1160-1185. https://doi.org/10.1111/brv.12696.

[45]

Herrera-Franco G., Carrión-Mero P., Alvarado N., Morante-Carballo F., Maldonado A., Caldevilla P.,... Berrezueta E. (2020). Geosites and georesources to foster geo- tourism in communities: Case study of the Santa Elena Peninsula Geopark project in Ecuador. Sustainability, 12(11), 4484. https://doi.org/10.3390/su12114484.

[46]

Herrera-Franco G., Carrión-Mero P., Montalván-Burbano N., Caicedo-Potosí J., & Berrezueta E. (2022). Geoheritage and geosites: A bibliometric analysis and literature review. Geosciences, 12(4), 169. https://doi.org/10.3390/geosciences12040169.

[47]

Herrera-Franco G., Mora-Frank C., Kovács T., & Berrezueta E. (2022). Georoutes as a basis for territorial development of the Pacific coast of South America: A case study. Geoheritage, 14(3), 78. https://doi.org/10.1007/s12371-022-00711-x.

[48]

Holden J. C., & Dietz R. S. (1972). Galapagos Gore, NazCoPac triple junction and Carnegie/Cocos ridges. Nature, 235(5336), 266-269. https://doi.org/10.1038/235266a0.

[49]

Instituto Nacional de Estadística y Censos (INEC) (2015). Análisis de resultados definitivos. Censo de Población y Vivienda Galápagos 2015 [Analysis of final results. Galapagos 2015 Population and Housing Census]. Retrieved from https://www.ecuadorencifras.gob.ec/documentos/web-inec/Poblacion_y_Demografia/CPV_ Galapagos_2015/Analisis_Galapagos%202015.pdf.

[50]

IUCN (2015). Harmonizing the integrated management systems of areas with multiple international designations (Ramsar Sites, World Heritage Sites, Biosphere Re- serves, Global Geoparks). Retrieved from https://www.ramsar.org/sites/default/files/documents/library/final_report_idas_workshop_jeju.pdf.

[51]

Kelley D., Page K., Quiroga D., & Salazar R. (2019). In the footsteps of Darwin: geoheritage, Geotourism and conservation in the Galapagos Islands. Cham: Springer. https://doi.org/10.1007/978-3-030-05915-6.

[52]

Kelley D., & Salazar R. (2017). Geosites in the Galápagos Islands used for geology education programs. Geoheritage, 9(3), 351-358. https://doi.org/10.1007/s12371-016-0190-3.

[53]

Ki J. S., Jeon Y., Ryu C. K., & Kim S. S. (2016). A significantion and meaning of Geomunoreum as a representative geosite of Global Geoparks. Journal of the Geological Society of Korea, 52(5), 763-774. https://doi.org/10.14770/jgsk.2016.52.5.763. (in Korean with English abstract).

[54]

Kubalíková L. (2013). Geomorphosite assessment for geotourism purposes. Czech Journal of Tourism, 2(2), 80-104. https://doi.org/10.2478/cjot-2013-0005.

[55]

Lee-Niinioja H. S. (2022). The Haenyeo community:Local expert facilitator for tangible-intangible cultural heritage and its economic contributions to the Jeju Society, Korea. In F. Calabrò L. Della Spina, & M. J. Piñeira Mantiñán (Eds.), Newmetropolitan perspectives (pp.2371-2382). Cham: Springer. https://doi.org/10.1007/978-3-031-06825-6_227.

[56]

Leigh D. (2010). SWOT Analysis. In K. H.Silber, W. R.Foshay, R.Watkins, D. Leigh, J. L.Moseley, Eds.), & J. C. Dessinger (Handbook of improving performance in the work- place Vols. 1-3. (pp.115-140). Hoboken: Wiley. https://doi.org/10.1002/9780470592663.ch24.

[57]

Martí-Molist J., Dorado-García O., & López-Saavedra M. (2022). The volcanic geoheritage of El Teide National Park (Tenerife, Canary Islands, Spain). Geoheritage, 14 (2), 65. https://doi.org/10.1007/s12371-022-00698-5.

[58]

Mckenzie D., & Bickle M. J. (1988). The volume and composition of melt generated by extension of the lithosphere. Journal of Petrology, 29(3), 625-679. https://doi.org/10.1093/petrology/29.3.625.

[59]

Megerle H. E. (2020). Geoheritage and geotourism in regions with extinct volcanism in Germany; case study Southwest Germany with UNESCO Global Geopark Swa- bian Alb. Geosciences, 10(11), 445. https://doi.org/10.3390/geosciences10110445.

[60]

Merlen G. (2014). Plate tectonics, evolution, and the survival of species. In K. S.Harpp, E.Mittelstaedt, N.d’Ozouville, & D. W.Graham ( The Galápagos: A natural laboratory for the earth sciences Eds.), (pp. 119-144). Hoboken: Wiley. https://doi.org/10.1002/9781118852538.ch7.

[61]

Ministerio de Turismo (2018). Atlas turístico [Atlas tourist]. Retrieved from https://servicios.turismo.gob.ec/atlas-turistico.

[62]

Ministerio del Ambiente (1998). Reserva Marina Galápagos [Galapagos Marine Reserve]. Retrieved from http://areasprotegidas.ambiente.gob.ec/es/areas-protegidas/ reserva-marina-galápagos.

[63]

Moon S. -W., Lim H. -M., Kim H. -S., & Seo Y. -S. (2023). Estimation of ground vibration around lava tubes in Jeju Island Geopark, Korea. Geoheritage, 15(1), 37. https://doi.org/10.1007/s12371-023-00805-0.

[64]

Mucivuna V. C., da Garcia, M. d. G. M., & Reynard E. (2022). Criteria for assessing geological sites in national parks: A study in the Itatiaia National Park, Brazil. Geoheritage, 14(1), 1. https://doi.org/10.1007/s12371-021-00633-0.

[65]

Németh K., Casadevall T., Moufti M. R., & Marti J. (2017). Volcanic geoheritage. Geoheritage, 9(3), 251-254. https://doi.org/10.1007/s12371-017-0257-9.

[66]

Paltán H. A., Benitez F. L., Rosero P., Escobar-Camacho D., Cuesta F., & Mena C. F. (2021). Climate and sea surface trends in the Galapagos Islands. Scientific Reports, 11 (1), 14465. https://doi.org/10.1038/s41598-021-93870-w.

[67]

Panizza M., & Piacente S. (1993). Geomorphological assets evaluation. Zeitschrift für Geomorphologie Supplementband, 87, 13-18.

[68]

Pásková M., Zelenka J., Ogasawara T., Zavala B., & Astete I. (2021). The ABC concept: Value added to the earth heritage interpretation? Geoheritage, 13(2), 38. https://doi.org/10.1007/s12371-021-00558-8.

[69]

Pistolesi M., Rosi M., Malaguti A. B., Lucchi F., Tranne C. A., Speranza F.,... Billotta E. (2021). Chrono-stratigraphy of the youngest (last 1500 years) rhyolitic eruptions of Lipari (Aeolian Islands, Southern Italy) and implications for distal tephra correlations. Journal of Volcanology and Geothermal Research, 420, 107397. https://doi.org/10.1016/j.jvolgeores.2021.107397.

[70]

Planagumà-Guàrdia L., Martí-Molist J., & Vila-Subirós J. (2022). Conservation of the geological heritage of volcanic fields: La Garrotxa Volcanic Zone Natural Park, Spain. Geoheritage, 14(2), 39. https://doi.org/10.1007/s12371-022-00677-w.

[71]

Poulakakis N., Russello M., Geist D., & Caccone A. (2012). Unravelling the peculiarities of island life: Vicariance, dispersal and the diversification of the extinct and extant giant Galápagos tortoises. Molecular Ecology, 21(1), 160-173. https://doi.org/10.1111/j.1365-294X.2011.05370.x.

[72]

Prosser C. D. (2019). Communities, quarries and geoheritage: Making the connections. Geoheritage, 11(4), 1277-1289. https://doi.org/10.1007/s12371-019-00355-4.

[73]

Prosser C. D., Díaz-Martínez E., & Larwood J. G. (2018). The conservation of geosites. In E.Reynard, & J.Brilha (Eds.), Geoheritage (pp. 193-212). Amsterdam: Elsevier. https://doi.org/10.1016/B978-0-12-809531-7.00011-3.

[74]

Ramsar (2002). Humedales del sur de Isabela [Wetlands of southern Isabela]. Retrieved from https://rsis.ramsar.org/ris/1202?language=en.

[75]

Re V., Rizzi J., Tuci C., Tringali C., Mancin M., Mendieta E., & Marcomini A. (2023). Challenges and opportunities of water quality monitoring and multi-stakeholder management in small islands: The case of Santa Cruz, Galápagos (Ecuador). Environment, Development and Sustainability, 25(5), 3867-3891. https://doi.org/10.1007/s10668-022-02219-4.

[76]

Reynard E., Fontana G., Kozlik L., & Scapozza C. (2007). A method for assessing “scientific” and “additional values” of geomorphosites. Geographica Helvetica, 62(3), 148-158. https://doi.org/10.5194/gh-62-148-2007.

[77]

Reynard E., Perret A., Bussard J., Grangier L., & Martin S. (2016). Integrated approach for the inventory and management of geomorphological heritage at the regional scale. Geoheritage, 8(1), 43-60. https://doi.org/10.1007/s12371-015-0153-0.

[78]

Rial M., Martínez Cortizas A., Taboada T., & Rodríguez-Lado L. (2017). Soil organic carbon stocks in Santa Cruz Island, Galapagos, under different climate change sce- narios. Catena, 156, 74-81. https://doi.org/10.1016/j.catena.2017.03.020.

[79]

Riascos-Flores L., Bruneel S., Van der Heyden C., Deknock A., Van Echelpoel W., Forio M. A. E.,... Goethals P. (2021). Polluted paradise: Occurrence of pesticide res- idues within the urban coastal zones of Santa Cruz and Isabela (Galapagos, Ecuador). Science of the Total Environment, 763, 142956. https://doi.org/10.1016/j.scitotenv.2020.142956.

[80]

Salinas-de-León P., Andrade S., Arnés-Urgellés C., Bermudez J. R., Bucaram S., Buglass S., & Worm B. (2020). Evolution of the Galapagos in the Anthropocene. Nature Climate Change, 10(5), 380-382. https://doi.org/10.1038/s41558-020-0761-9.

[81]

Sallarès V., Charvis P., Flueh E. R., & Bialas J. (2003). Seismic structure of Cocos and Malpelo volcanic ridges and implications for hot spot-ridge interaction. Journal of Geophysical Research, 108(B12), 2564. https://doi.org/10.1029/2003JB002431.

[82]

Sallarès V., Charvis P., Flueh E. R., & Bialas J. (2005). Seismic structure of the Carnegie ridge and the nature of the Galápagos hotspot. Geophysical Journal International, 161(3), 763-788. https://doi.org/10.1111/j.1365-246X.2005.02592.x.

[83]

Sanchéz Cortez J., & Zurita Benavides M. (2017). Guía Espeleológica de la Provincia de Napo [Cave guide of Napo Province]. Retrieved from https://www.researchgate. net/publication/322319003_Guia_Espeleologica_de_la_Provincia_de_Napo.

[84]

Sánchez-Cortez J. L. (2019). Conservation of geoheritage in Ecuador: Situation and perspectives. International Journal of Geoheritage and Parks, 7(2), 91-101. https://doi.org/10.1016/j.ijgeop.2019.06.002.

[85]

Shao Y., Wan H., Rosenman A., Laso F. J., & Kennedy L. M. (2020). Evaluating land cover change on the island of Santa Cruz, Galapagos Archipelago of Ecuador through cloud-gap filling and multi-sensor analysis. In S. J.Walsh, D.Riveros-Iregui, J.Arce-Nazario, & P. H.Page ( Land cover and land use change on islands Eds.), (pp. 167-182). Cham: Springer. https://doi.org/10.1007/978-3-030-43973-6_7.

[86]

Shengtao L., Tianfu X., Senqi Z., Xiaofeng J., Puyuan T., Dongdong Y.,... Zhaolong F. (2019). Hot dry rock geothermal resource potential in the Wudalianchi Volcanic Field, NE China: Implications from geophysical exploration. Energy Exploration & Exploitation, 37(2), 663-676. https://doi.org/10.1177/0144598718810257.

[87]

Simkin T. (1984). Geology of Galapagos. Biological Journal of the Linnean Society, 21(1-2), 61-75. https://doi.org/10.1111/j.1095-8312.1984.tb02053.x.

[88]

Sisto M., Di Lisio A., & Russo F. (2020). The Mefite in the Ansanto Valley (Southern Italy): A geoarchaeosite to promote the geotourism and geoconservation of the Irpinian cultural landscape. Geoheritage, 12(1), 29. https://doi.org/10.1007/s12371-020-00450-x.

[89]

Stenchikov G. (2021). The role of volcanic activity in climate and global changes. In T. E.Letcher (Ed.), Climate change (3rd ed., pp. 607-643), Amsterdam: Elsevier. https://doi.org/10.1016/B978-0-12-821575-3.00029-3.

[90]

Stix J., & Heiken G. (2022). Communication when it is needed most: The past, present and future of volcano geoheritage. Bulletin of Volcanology, 84(7), 68. https://doi.org/10.1007/s00445-022-01574-4.

[91]

Štrba L., Rybár P., Baláž B., Molokáč M., Hvizdák L., Kršák B.,... Ferenčíková J. (2015). Geosite assessments: Comparison of methods and results. Current Issues in Tourism, 18(5), 496-510. https://doi.org/10.1080/13683500.2014.882885.

[92]

Sümer Ö., Akbulut M., Kazancı N., Drahor M. G., Berge M. A., Ongar A.,... Tuzcu S. (2023). Valorisation of the geological values (future geosite candidates) around the UNESCO World Heritage asset of Hittite Capital Ḫattuša, Türkiye. Geoheritage, 15(1), 17. https://doi.org/10.1007/s12371-022-00786-6.

[93]

Szepesi J., Harangi S., Ésik Z., Novák T. J., Lukács R., & Soós I. (2017). Volcanic geoheritage and geotourism perspectives in Hungary: A case of an UNESCO World Heritage site, Tokaj Wine Region Historic Cultural Landscape, Hungary. Geoheritage, 9(3), 329-349. https://doi.org/10.1007/s12371-016-0205-0.

[94]

Tomić N., & Božić S. (2014). A modified geosite assessment model (M-GAM) and its application on the Lazar Canyon area (Serbia). International Journal of Environmental Research, 8(4), 1041-1052.

[95]

Tomić N., Marković S. B., Antić A., & Tešić D. (2020). Exploring the potential for geotourism development in the Danube region of Serbia. International Journal of Geoheritage and Parks, 8(2), 123-139. https://doi.org/10.1016/j.ijgeop.2020.05.001.

[96]

Toulkeridis T. (2011). Volcanic Galápagos Volcánico [Volcanic Galápagos] (CGVG-USFQ ed., p. 24). EcuaEditorial. UNESCO (1978). Galápagos Islands. Retrieved from https://whc.unesco.org/en/list/1.

[97]

UNESCO (1984). Galapagos Biosphere Reserve, Ecuador. Retrieved from https://en.unesco.org/biosphere/lac/galapagos. UNESCO (2002). Biosphere Reserves in Asia and the Pacific. Retrieved from https://en.unesco.org/biosphere/aspac.

[98]

UNESCO (2021). El Hierro UNESCO Global Geopark (Spain). Retrieved from https://en.unesco.org/global-geoparks/el-hierro.

[99]

UNESCO (2007a). Jeju Volcanic Island and Lava Tubes. Retrieved from https://whc.unesco.org/en/list/1264.

[100]

UNESCO (2007b). Teide National Park. Retrieved from https://whc.unesco.org/en/list/1258.

[101]

UNESCO (2015). Jeju Island UNESCO Global Geopark (Republic of Korea). Retrieved from https://en.unesco.org/global-geoparks/jeju-island.

[102]

UNESCO (2022). UNESCO Global Geoparks. Retrieved from https://www.unesco.org/en/iggp/geoparks/about.

[103]

Višnić T., Spasojević B., & Vujičić M. (2016). The potential for geotourism development on the Srem Loess Plateau based on a preliminary geosite assessment model (GAM). Geoheritage, 8(2), 173-180. https://doi.org/10.1007/s12371-015-0149-9.

[104]

Vujičić M. D., Vasiljević D. A., Marković S. B., Hose T. A., Lukić T., Hadžić O., & Janićević S. (2011). Preliminary geosite assessment model (GAM) and its application on fruška gora mountain, potential geotourism destination of Serbia. Acta Geographica Slovenica, 51(2), 361-377. https://doi.org/10.3986/AGS51303.

[105]

Wang L., Tian M., Wen X., Zhao L., Song J., Sun M.,... Sun M. (2014). Geoconservation and geotourism in Arxan-Chaihe volcano area, Inner Mongolia, China. Quaternary International, 349, 384-391. https://doi.org/10.1016/j.quaint.2014.06.024.

[106]

Watts A. B., & Ten Brink U. S. (1989). Crustal structure, flexure, and subsidence history of the Hawaiian Islands. Journal of Geophysical Research: Solid Earth, 94(B8), 10473-10500. https://doi.org/10.1029/JB094iB08p10473.

[107]

White W. M., McBirney A. R., & Duncan R. A. (1993). Petrology and geochemistry of the Galápagos Islands: Portrait of a pathological mantle plume. Journal of Geophysical Research: Solid Earth, 98(B11), 19533-19563. https://doi.org/10.1029/93JB02018.

[108]

Wilson E. L., Harpp K. S., Schwartz D. M., & Van Kirk R. (2022). The geochemical evolution of Santa Cruz Island, Galápagos Archipelago. Frontiers in Earth Science, 10, 845544. https://doi.org/10.3389/feart.2022.845544.

[109]

Woo K. S., Kim L., Ji H., Jeon Y., Ryu C. G., & Wood C. (2019). Geological heritage values of the Yongcheon Cave (lava tube cave), Jeju Island, Korea. Geoheritage, 11(2), 615-628. https://doi.org/10.1007/s12371-018-0315-y.

[110]

Wood C. (2009). World Heritage volcanoes. Retrieved from https://policycommons.net/artifacts/1376504/world-heritage-volcanoes/1990768/.

[111]

Ye S., Canales J., Rihm R., Dañobeitia J., & Gallart J. (1999). A crustal transect through the northern and northeastern part of the volcanic edifice of Gran Canaria, Canary Islands. Journal of Geodynamics, 28(1), 3-26. https://doi.org/10.1016/S0264-3707(98)00028-3.

[112]

Zafeiropoulos G., & Drinia H. (2022). Comparative analysis of two assessment methods for the geoeducational values of geosites: A case study from the Volcanic Island of Nisyros, SE Aegean Sea, Greece. Geosciences, 12(2), 82. https://doi.org/10.3390/geosciences12020082.

[113]

Zhang C., Quan J. -Y., Zhang Y. -J., Liu Z. -H., Li W., Wang Y.,... Ge J. -T. (2020). Late Mesozoic tectonic evolution of the southern Great Xing’an Range, NE China: Evidence from whole-rock geochemistry, and zircon U-Pb ages and Hf isotopes from volcanic rocks. Lithos, 362-363, 105409. https://doi.org/10.1016/j.lithos.2020.105409.

[114]

Ziem A., Bidias L. A., Mouchili Nguegni S., Ilouga D. C. I., Kenna H. S., Moundi A., & Kamgang P. (2023). Geomorphological component of volcanic geoheritage of Kouoptamo, Cameroon Volcanic Line: Geoconservation and perspectives for geotourism industry. International Journal of Geoheritage and Parks, 11(3), 365-384. https://doi.org/10.1016/j.ijgeop.2023.06.001.

[115]

Zinsli M. J. (2022). Authorizing the ‘taste of place’ for Galápagos Islands coffee: Scientific knowledge, development politics, and power in geographical indication implementation. Agriculture and Human Values, 40(2), 1572-8366. https://doi.org/10.1007/s10460-022-10364-9.

PDF

228

Accesses

0

Citation

Detail

Sections
Recommended

/