Allometric Models of Aboveground Biomass in Mangroves Compared with Those of the Climate Action Reserve Standard Applied in the Carbon Market
Abstract
:1. Introduction
2. Materials and Methods
2.1. Study Area
2.2. Sampling Design
2.3. Allometric Equations Available for Mangrove Species
2.4. Determination of Variables
2.5. Applicability of the Allometric Equations of FPM V2.0
3. Results
3.1. Comparison of the Applied Allometric Equations
3.2. Mangrove Biomass Analysis with Allometric Equations in the Study Area
3.3. National Forest Inventory 2015–2020 for Tabasco
3.4. Evaluation of the FPM Methodology
4. Conclusions
Supplementary Materials
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
- Velázquez-Salazar, S.; Rodríguez-Zúñiga, M.T.; Alcántara-Maya, J.A.; Villeda-Chávez, E.; Valderrama-Landeros, L.; Troche-Souza, C.; Vázquez-Balderas, B. Manglares de México. Actualización y Análisis de los Datos 2020; Comisión Nacional para el Conocimiento y Uso de la Biodiversidad: Ciudad de México, Mexico, 2021; ISBN 978-607-8570-50-8.
- Komiyama, A.; Eong, O.J.; Poungparn, S. Allometry, biomass, and productivity of mangrove forests: A review. Aquat. Bot. 2008, 89, 128–137. [Google Scholar] [CrossRef]
- Yuen, J.Q.; Fung, T.; Ziegler, A.D. Review of allometric equations for major land covers in SE Asia: Uncertainty and implications for above- and below-ground carbon estimates. For. Ecol. Manag. 2016, 360, 323–340. [Google Scholar] [CrossRef]
- Komiyama, A.; Poungparn, S.; Kato, S. Common allometric equations for estimating the tree weight of mangroves. J. Trop. Ecol. 2005, 21, 471–477. [Google Scholar] [CrossRef]
- Kauffman, J.B.; Donato, D.; Adame, M.F. Protocolo Para la Medición, Monitoreo y Reporte de la Estructura, Biomasa y Reservas de Carbono de los Manglares; Documento de Trabajo 117; Cifor: Bogor, Indonesia, 2013. [Google Scholar] [CrossRef]
- Rahman, M.S.; Donoghue, D.N.M.; Bracken, L.J.; Mahmood, H. Biomass estimation in mangrove forests: A comparison of allometric models incorporating species and structural information. Environ. Res. Lett. 2021, 16, 124002. [Google Scholar] [CrossRef]
- Henry, M.; Picard, N.; Trotta, C.; Manlay, R.J.; Valentini, R.; Bernoux, M.; Saint-André, L. Estimating tree biomass of sub-Saharan African forests: A review of available allometric equations. Silva Fenn. 2011, 45, 477–569. [Google Scholar] [CrossRef]
- Rodríguez-Zúñiga, M.T.; Villeda-Chávez, E.; Vázquez-Lule, A.D.; Bejarano, M.; Cruz-López, M.I.; Olguín, M.; Villela Gaytán, S.A.; Flores, R. Métodos Para la Caracterización de los Manglares Mexicanos: Un Enfoque Espacial Multiescala; Comisión Nacional para el Conocimiento y Uso de la Biodiversidad: Ciudad de México, Mexico, 2018; ISBN 978-607-8570-03-4.
- Day, J.W., Jr.; Conner, W.H.; Ley-Lou, F.; Day, R.H.; Machado-Navarro, A. The productivity and composition of mangrove forests, Laguna de Términos, México. Aquat. Bot. 1987, 27, 267–284. [Google Scholar] [CrossRef]
- Valdez, J.I. Manejo forestal de un manglar al sur de Marismas Nacionales, Nayarit. Maderas Bosques 2004, 2, 93–104. [Google Scholar]
- Protocolo Forestal para México Versión 2.0. Climate Action Reserve. Available online: https://www.climateactionreserve.org/how/protocols/mexico-forest/ (accessed on 27 January 2022).
- Tovilla-Hernández, C.; Infante-Mata, D.M.; Ovalle-Estrada, F.; De la Presa-Pérez, J.C.; García-Alfaro, J.R.; De la Cruz-Montes, G. Informe: Inventario del Manglar y Avance de la Intrusión Salina en el Ejido Úrsulo Galván, Municipio de Jalpa de Méndez, Tabasco, México; Fondo Institucional de Fomento Regional para el Desarrollo Científico, Tecnológico y de Innovación, El Colegio de la Frontera Sur; Consejo Nacional de Ciencia y Tecnología: Tapachula, Mexico, 2013.
- Palma-López, D.J.; Jiménez-Ramírez, R.; Zavala-Cruz, J.; Bautista-Zúñiga, F.; Gavi-Reyes, F.; Palma-Cancino, D.Y. Actualización de la clasificación de suelos de Tabasco, México. Rev. Agro Product. 2017, 10, 29–35. [Google Scholar]
- Domínguez-Domínguez, M.; Zavala-Cruz, J.; Rincón-Ramírez, J.A.; Martínez-Zurimendi, P. Management Strategies for the Conservation, Restoration and Utilization of Mangroves in Southeastern Mexico. Wetlands 2019, 39, 907–919. [Google Scholar] [CrossRef]
- Domínguez-Domínguez, M.; Zavala-Cruz, J.; Martínez-Zurimendi, P. Manejo Forestal Sustentable de los Manglares de Tabasco; Secretaría de Recursos Naturales y Protección Ambiental, Colegio de Postgraduados: Villahermosa, Mexico, 2011. [Google Scholar]
- Smith, T.J., III; Whelan, K.R.T. Development of allometric relations for three mangrove species in South Florida for use in the Greater Everglades Ecosystem restoration. Wetl. Ecol. Manag. 2006, 14, 409–419. [Google Scholar] [CrossRef]
- Imbert, D.; Rollet, B. Phytmassaerienne et production primaire dans la mangrove du Grand Cul-de-sac Marine (Guadeloupe, Antilles francaises). Bull. Ecol. 1989, 20, 27–39. [Google Scholar]
- Fromard, F.; Puig, H.; Mougin, E.; Marty, G.; Betoulle, J.L.; Cadamuro, L. Structure, above ground biomass and dynamics of mangrove ecosystems: New data from French Guiana. Oecologia 1998, 115, 39–53. [Google Scholar] [CrossRef] [PubMed]
- Gomes, S.M.L.; Schaeffer-Novelli, Y. Above-ground biomass of mangrove species. I. Analysis of models. Estuar. Coast. Shelf Sci. 2005, 65, 1–18. [Google Scholar]
- Chave, J.; Andalo, C.; Brown, S.; Cairns, M.A.; Chambers, J.Q.; Eamus, D.; Folster, H.; Fromard, F.; Higuchi, N.; Kira, T.; et al. Tree allometry and improved estimation of carbon stocks and balance in tropical forests. Oecologia 2005, 145, 87–99. [Google Scholar] [CrossRef]
- Medeiros, T.C.C.; Sampaio, E.V.S.B. Allometry of aboveground biomasses in mangrove species in Itamaracá, Pernambuco, Brazil. Wetl. Ecol. Manag. 2008, 16, 323–330. [Google Scholar] [CrossRef]
- Yepes, A.; Zapata, M.; Bolivar, J.; Monsalve, A.; Espinosa, S.M.; Sierra-Correa, P.C.; Sierra, A. Ecuaciones alométricas de biomasa aérea para la estimación de los contenidos de carbono en manglares del Caribe Colombiano. Rev. Biol. Trop. 2016, 64, 913–926. [Google Scholar] [CrossRef] [PubMed]
- Inventario Nacional Forestal y de Suelos 2015–2020. Comisión Nacional Forestal. Available online: https://snmf.cnf.gob.mx (accessed on 13 December 2022).
- Vorster, A.G.; Evangelista, P.H.; Stovall, A.E.L.; Ex, S. Variability and uncertainty in forest biomass estimates from the tree to landscape scale: The role of allometric equations. Carbon Balance Manag. 2020, 15, 8. [Google Scholar] [CrossRef]
- Daba, D.E.; Soromessa, T. The accuracy of species-specific allometric equations for estimating aboveground biomass in tropical moist montane forests: Case study of Albizia grandibracteata and Trichilia dregeana. Carbon Balance Manag. 2019, 14, 18. [Google Scholar] [CrossRef]
- Krauss, K.W.; Doyle, T.W.; Twilley, R.R.; Rivera-Monroy, V.H.; Sullivan, J.K. Evaluating the relative contributions of hydroperiod and soil fertility on growth of south Florida mangroves. Hydrobiologia 2006, 569, 311–324. [Google Scholar] [CrossRef]
- Anuario Estadístico de Tabasco 2009. Instituto Nacional de Estadística y Geografía. Available online: https://www.inegi.org.mx/contenidos/productos/prod_serv/contenidos/espanol/bvinegi/productos/historicos/2104/702825200930/702825200930_1.pdf (accessed on 30 January 2024).
- Protocolo Forestal para México Versión 3.0. Climate Action Reserve. Available online: https://www.climateactionreserve.org/how/protocols/ncs/mexico-forest/ (accessed on 20 June 2024).
- Métodos Estandarizados de VCS: Ampliando la Escala en Reducción de GEI. Verified Carbon Standard. Available online: https://verra.org/wp-content/uploads/2016/05/FactSheet-STAMAS-2013-FINAL_ESP-v3_PT_PM_0.pdf (accessed on 25 August 2024).
- Phan, S.M.; Nguyen, H.T.T.; Nguyen, T.K.; Lovelock, C. Modelling above ground biomass accumulation of mangrove plantations in Vietnam. For. Ecol. Manag. 2019, 432, 376–386. [Google Scholar] [CrossRef]
- Picard, N.; Saint-André, L.; Henry, M. Manual de Construcción de Ecuaciones Alométricas para Estimar el Volumen y la Biomasa de los Árboles: Del Trabajo de Campo a la Predicción; Las Naciones Unidas para la Alimentación y la Agricultura y el Centre de Coopération Internationale en Recherche Agronomique pour le Développement: Rome, Italy, 2012; ISBN 978-92-5-307347-4. [Google Scholar]
- Feliciano, E.A.; Wdowinski, S.; Potts, M.D. Assessing Mangrove Above-Ground Biomass and Structure using Terrestrial Laser Scanning: A Case Study in the Everglades National Park. Wetlands 2014, 34, 955–968. [Google Scholar] [CrossRef]
- Donato, D.C.; Kauffman, J.B.; Murdiyarso, D.; Kurnianto, S.; Stidham, M.; Kanninen, M. Mangroves among the most carbon-rich forests in the tropics. Nat. Geosci. 2011, 4, 293–297. [Google Scholar] [CrossRef]
- Kauffman, J.B.; Heider, C.; Cole, T.G.; Dwire, K.A.; Donato, D.C. Ecosystem carbon stocks of Micronesian mangrove forests. Wetlands 2011, 31, 343–352. [Google Scholar] [CrossRef]
- Herrera Silveira, J.A.; Camacho, R.A.; Pech, E.; Pech, M.; Ramírez, R.J.; Teutli, H.C. Dinámica del carbono (almacenes y flujos) en manglares de México. Terra Latinoam 2016, 34, 61–72. [Google Scholar]
Species Group | N | D (cm) | Location | Aboveground Biomass Equation | R2 | Reference: |
---|---|---|---|---|---|---|
R. mangle | 20 | 1.0–10.0 | Campeche, Mexico | 0.94 | Day et al. [9] | |
R. mangle | 14 | 0.5–20.0 | Florida, USA | 0.94 | Smith and Whelan [16] | |
R. mangle | 9 | 1.0–32.0 | French Guiana | 0.92 | Fromard et al. [18] | |
R. mangle | 17 | 6.6–23.2 | Guadeloupe, French Antilles | Imbert and Rollet [17] | ||
R. mangle | 33 | 1.3–22.0 | Bertioga, Brazil | 0.99 | Gomes and Schaeffer-Novelli [19] | |
R. mangle | 30 | 2.5–42.5 | Cispatá Bay, Colombia | 0.99 | Yepes et al. [22] | |
R. mangle | 36 | 2.0–20.7 | Pernambuco, Brazil | 0.92 | Medeiros and Sampaio [21] | |
L. racemosa | 20 | 1.0–10.0 | Campeche, Mexico | 0.97 | Day et al. [9] | |
L. racemosa | 10 | 0.5–18.0 | Florida, USA | 0.98 | Smith and Whelan [16] | |
L. racemosa | 70 | 1.0–10.0 | French Guiana | 0.97 | Fromard et al., [18] | |
L. racemosa | 17 | 7.7–25.9 | Guadeloupe, French Antilles | Imbert and Rollet [17] | ||
L. racemosa | 35 | 2.0–17.8 | Pernambuco, Brazil | 0.96 | Medeiros and Sampaio [21] | |
A. germinans | 8 | 0.7–21.5 | Florida, USA | 0.95 | Smith and Whelan [16] | |
A. germinans | 20 | 1.0–10.0 | Campeche, Mexico | 0.97 | Day et al. [9] | |
A. germinans | 25 | 1.0–42.0 | French Guiana | 0.97 | Fromard et al. [18] | |
A. germinans | 21 | 6.7–40.7 | Guadeloupe, French Antilles | Imbert and Rollet [17] | ||
A. germinans | 30 | 2.5–62.5 | Cispatá Bay, Colombia | 0.99 | Yepes et al. [22] | |
* Common Equation | 104 | 5.0–48.9 | Thailand (Pang-nga, Trat, Satun, Ranong, Halmahera) | Komiyama et al. [4] | ||
** Common Equation | 136 | 5.0–42.0 | French Guyana and Guadeloupe, French Antilles | Chave et al. [20] |
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. |
© 2024 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 (https://creativecommons.org/licenses/by/4.0/).
Share and Cite
Ávila-Acosta, C.R.; Domínguez-Domínguez, M.; Vázquez-Navarrete, C.J.; Acosta-Pech, R.G.; Martínez-Zurimendi, P. Allometric Models of Aboveground Biomass in Mangroves Compared with Those of the Climate Action Reserve Standard Applied in the Carbon Market. Resources 2024, 13, 129. https://doi.org/10.3390/resources13090129
Ávila-Acosta CR, Domínguez-Domínguez M, Vázquez-Navarrete CJ, Acosta-Pech RG, Martínez-Zurimendi P. Allometric Models of Aboveground Biomass in Mangroves Compared with Those of the Climate Action Reserve Standard Applied in the Carbon Market. Resources. 2024; 13(9):129. https://doi.org/10.3390/resources13090129
Chicago/Turabian StyleÁvila-Acosta, Carlos Roberto, Marivel Domínguez-Domínguez, César Jesús Vázquez-Navarrete, Rocío Guadalupe Acosta-Pech, and Pablo Martínez-Zurimendi. 2024. "Allometric Models of Aboveground Biomass in Mangroves Compared with Those of the Climate Action Reserve Standard Applied in the Carbon Market" Resources 13, no. 9: 129. https://doi.org/10.3390/resources13090129