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This study presents a comprehensive bibliometric analysis of research developments in Eucalyptus replanting, focusing on key trends, influential contributors, and prominent research clusters. Utilizing data from the CrossRef database and network visualization via VOSviewer software, the analysis distilled 245 research papers down to 87 relevant manuscripts. Four primary research clusters were identified: plantation growth, productivity studies, influence and case studies, and impact analyses. The study highlights the pivotal role of optimized replanting strategies, particularly the timing of replanting and balanced fertilization, in enhancing plantation productivity and sustainability. Comparative analysis with existing literature confirms these factors’ relevance in ensuring uniform growth and reducing competition among seedlings. Despite advancements, significant research gaps persist, notably in integrating traditional practices with modern technologies and understanding replanting’s long-term impacts. Future research could explore the implementation of mixed-species plantations or the introduction of nitrogen-fixing species to improve soil quality and nutrient availability, potentially mitigating the negative impacts of monoculture eucalyptus planting and promoting a more resilient ecosystem. Additionally, future studies could investigate the long-term effects of these practices on both water conservation and plantation yields, providing valuable insights for sustainable management. The ecological benefits of such practices, including enhanced biodiversity and ecosystem services, warrant further exploration. The increasing volume of research and identified trends underscore the growing recognition of Eucalyptus replantation’s significance for economic and ecological sustainability. By addressing critical gaps and suggesting future directions, this research supports broader environmental and economic objectives, emphasizing the importance of continued research and collaboration in the field.
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Rocznik
Tom
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130--149
Opis fizyczny
Bibliogr. 87 poz., rys., tab.
Twórcy
autor
- Department of Industrial Engineering, Faculty Engineering, Universitas Sumatera Utara, Medan, Indonesia
- Department of Industrial Engineering, Faculty Engineering, Universitas Sumatera Utara, Medan, Indonesia
Bibliografia
- 1. Abiodun, B.J, Adeyewa, Z.D, & Ajayi, V.O. (2012). Modeling the impacts of reforestation on future climate in West Africa. Theoretical and Applied Climatology, 110, 77–96. https://doi.org/10.1007/s00704-012-0614-1
- 2. Abbad, Z., Rhebbar, F.-Z., Mekaoui, F.-Z., Tahiri, N. E. H., Bengueddour, R., & Lrhorfi, L. A. (2024). The stimulating effect of plant extracts on cultivation. Ecological Engineering & Environmental Technology, 25(11), 365–376. https://doi.org/Sembiring. docx10.12912/27197050/192899
- 3. Afonso, B. (2023). Determinants of small mammals’ body condition in eucalyptus dominated landscapes. Sustainability, 16(1), 128. https://doi.org/10.3390/su16010128
- 4. Almeida, A.C, Siggins, A, Batista, T.R, Beadle, C, Fonseca, S & Loos, R (2010). Mapping the effect of spatial and temporal variation in climate and soils on eucalyptus plantation production with 3-PG, a process-based growth model. Forest Ecology and Management, 259(9), 1730–1740. https://doi.org/10.1016/j.foreco.2009.10.008
- 5. Alemayehu, A., Melka, Y., & Eshete, A. (2023). Eucalyptus woodlot adoption and its determinants in the mecha district, northern ethiopia. Frontiers in Forests and Global Change, 6. https://doi.org/10.3389/ffgc.2023.1111301
- 6. Attia, A, Nouvellon, Y, Vianna Cuadra, S, Cabral, OMR, Laclau, J.-P, Laclau, J.-P, Guillemot, J, Guillemot, J, Camargo Campoe, O, Stape, J.L, Galdos, MV, Lamparelli, R.A.C, Le Maire, G & Le Maire, G (2019). Modelling carbon and water balance of eucalyptus plantations at regional scale: Effect of climate, soil and genotypes. Forest Ecology and Management, 449, 117460. https://doi.org/10.1016/j.foreco.2019.117460
- 7. Barbier, E.B (2006). Natural barriers to natural disasters: Replanting mangroves after the tsunami. Frontiers in Ecology and the Environment, 4(3), 124–131. https://doi.org/10.1890/1540-9295(2006)004[0124:NBTN DR]2.0.CO;2
- 8. Battie-Laclau, P, Laclau, J-P, Beri, C, Mietton, L, Almeida Muniz, M.R, Arenque, B.C, de Cássia Piccolo, M, Jordan-Meille, L, Bouillet, J-P & Nouvellon, Y (2014). Photosynthetic and anatomical responses of eucalyptus grandis leaves to potassium and sodium supply in a field experiment. Plant, Cell and Environment, 37(1), 70–81. https://doi.org/10.1111/pce.12131
- 9. Bayle, G.K (2019) Ecological and social impacts of eucalyptus tree plantation on the environment. Journal of Biodiversity Conservation and Bioresource Management, 5(1), 93–104. https://doi.org/10.3329/ jbcbm.v5i1.42189
- 10. Belay, Z, Warkineh, B, Teketay, D & Woldetsadik, M (2021). The sustainability of reforesting landscapes with exotic species: A case study of eucalypts in Ethiopia. Sustainable Earth, 4(5), 1–11. https://doi.org/10.1186/s42055-021-00044-7
- 11. Cabral, O.M.R, Rocha, H.R da, Gash, J.H.C, Ligo, M.A.V, Freitas, H.C & Tatsch, J.D. (2010). The energy and water balance of a eucalyptus plantation in Southeast Brazil. Journal of Hydrology, 388(3–4), 208–216. http://dx.doi.org/10.1016/j. jhydrol.2010.04.041.
- 12. Cabral, O.M.R, Gash, J.H.C, Rocha, H.R da, Marsden, C, Ligo, M.A.V, Freitas, H.C, Tatsch, J.D & Gomes, E (2011). Fluxes of CO2 above a plantation of eucalyptus in Southeast Brazil. Agricultural and Forest Meteorology, 151(1), 49–59. http://dx.doi.org/10.1016/j.agrformet.2010.09.003.
- 13. Carrijo, J.V.N, Ferreira, A.B de F, Ferreira, M.C, Aguiar, M.C de, Miguel, E.P, Matricardi, E.A.T & Rezende, AV (2020). The growth and production modeling of individual trees of eucalyptus urophylla plantations. Journal of Forestry Research, 31(5), 1663–1672. https://doi.org/10.1007/s11676-019-00920-1
- 14. Chen, F, Zheng, H, Zhang, K, Ouyang, Z, Li, H, Wu, B & Shi, Q. (2013). Soil microbial community structure and function responses to successive planting of eucalyptus. Journal of Environmental Sciences 25(10), 2102–2111. http://dx.doi.org/10.1016/s1001-0742(12)60319-2
- 15. Chen, F, Zheng, H, Zhang, K, Ouyang, Z, Wu, Y, Shi, Q & Li, H. (2013). Non-linear impacts of eucalyptus plantation stand age on soil microbial metabolic diversity. Journal of Soils and Sediments, 13(5), 887–894. https://doi.org/10.1007/s11368-013-0669-3
- 16. Chen, L. (2023). Integrating variation in bacterial‐fungal co‐occurrence network with soil carbon dynamics. Journal of Applied Ecology, 61(1), 36–50. https://doi.org/10.1111/1365-2664.14535
- 17. Chow, A (2014). Replanting the flower in different soil? A critical analysis of education borrowing in Hong Kong. International Journal of Education, 6(2), 114. http://dx.doi.org/10.5296/ije.v6i2.5815
- 18. Cortez, C.T, Nunes, L.A.P.L, Rodrigues, L.B, Eisenhauer, N & Araújo, A.S.F de (2014). Soil microbial properties in eucalyptus grandis plantations of different ages. Journal of Soil Science and Plant Nutrition, 14(3), 734–742. http://dx.doi.org/10.4067/s0718-95162014005000059
- 19. Cunningham, S.C, Nally, M, Baker, P.J, Cavagnaro, T.R, Beringer, J, Thomson, J.R & Thompson, R.M. (2015). Balancing the environmental benefits of reforestation in agricultural regions. Perspectives in Plant Ecology, Evolution and Systematics, 17(4), 301–317. http://dx.doi.org/10.1016/j. ppees.2015.06.001.
- 20. Currie, M.J, Mapel, J.K, Heidel, T.D, Goffri, S & Baldo, M.A. (2008). High-efficiency organic solar concentrators for photovoltaics. Science, 321(5886), 226–228. https://www.science.org/doi/10.1126/science.1158342
- 21. Daim, T.U, Rueda, G, Martin, H, & Gerdsri, P (2006). Forecasting emerging technologies: Use of bibliometrics and patent analysis. Technological Forecasting and Social Change, 73(8), 981–1012. https://doi.org/10.1016/j.techfore.2006.04.004
- 22. Delgado-Matas, C & Pukkala, T (2011). Comparison of the growth of six eucalyptus species in Angola. International Journal of Forestry Research, 2011(980259), 1–9. https://doi.org/10.1155/2011/980259
- 23. Dong, B, Xu, G, Luo, X, Cai, Y & Gao, W (2012). A bibliometric analysis of solar power research from 1991 to 2010. Scientometrics, 93(3), 1101–1117. https://doi.org/10.1371/journal.pone.0081094
- 24. Filho, GMP, Jacovine, LAG, Schettini, BLS, de Paiva, HN, Villanova, PH, da Rocha, SJSS & Leite, HG (2020). Influence of the replanting age on yield and growth of eucalypt clonal stands. Revista Árvore, 44. http://dx.doi.org/10.1590/1806-908820200000002
- 25. Florencio, G.W.L., Martins, F.B., & Fagundes, F.F.A. (2022). Climate change on Eucalyptus plantations and adaptive measures for sustainable forestry development across Brazil. Industrial Crops and Products, 163, 113–126. https://doi.org/10.1016/j.indcrop.2022.115616
- 26. Forrester, D.I (2013) Growth responses to thinning, pruning and fertiliser application in eucalyptus plantations: A review of their production ecology and interactions. Forest Ecology and Management, 310, 336–347.
- 27. Gholampour, S, Noruzi, A, Gholampour, B, & Elahi, A (2019). Research trends and bibliometric analysis of a journal: Sport management review. Webology, 16(2), 223–241. http://www.webology.org/abstract. php?id=108
- 28. Gichuru, II, (2015). Factors contributing to the success of pelis strategy in forest plantation establishment: case study of Mucheene Forest. International Academic Journal of Social Sciences and Education, 1(3), 15–43. http://www.iajournals.org/ articles/iajsse_v1_i4_15_43
- 29. Goded, S, Ekroos, J, Domínguez, J, Giménez de Azcárate, J, Guitián, J.A, Smith, H.G & Smith, H.G (2019). Effects of eucalyptus plantations on avian and herb species richness and composition in North- West Spain. Global Ecology and Conservation, 19. https://doi.org/10.1016/j.gecco.2019.e00690
- 30. Graça, M.A.S, Pozo, J, Canhoto, C & Elosegi, A (2002). Effects of eucalyptus plantations on detritus, decomposers, and detritivores in streams. The Scientific World Journal, 2, 1173–1185. https://doi.org/10.1100/tsw.2002.193
- 31. Guaita Martínez, J.M, Carracedo, P, Gorgues Comas, D & Siemens, C.H (2022). An analysis of the blockchain and COVID-19 research landscape using a bibliometric study. Sustainable Technology and Entrepreneurship, 1(1), 100006. https://doi.org/10.1016/j.stae.2022.100006
- 32. Guiling, Y, Panatik, S.A, Mohd Sukor, M.S, Rusbadrol, N & Cunlin, L (2022). Bibliometric analysis of global research on organizational citizenship behavior from 2000 to 2019. Sage Open, 12(1). https://doi.org/10.1177/21582440221079898.
- 33. Harwood, C.E & Nambiar, E.K.S (2014). Productivity of Acacia and eucalypt plantations in Southeast Asia. 2. Trends and variations. International Forestry Review, 16(2), 249–260. https://doi.org/10.1505/146554814811724766
- 34. Horas, J & Purba, V (2019). Replanting policy of Indonesian palm oil plantation in strengthening the implementation of sustainable development goals. IOP Conference Series: Earth and Environmental Science, 336(1). https://doi.org/10.1088/1755-1315/336/1/012012
- 35. Hua, L.S, Chen, L.W, Antov, P, Kristak, L & Md Tahir, P (2022). Engineering wood products from Eucalyptus spp. Advances in Materials Science and Engineering, 1–14. https://doi.org/10.1155/2022/8000780.
- 36. Huang, Z, He, Z, Wan, X, Hu, Z, Fan, S & Yang, Y (2013). Harvest residue management effects on tree growth and ecosystem carbon in a Chinese fir plantation in subtropical China. Plant and Soil, 364(1–2), 303–314. https://doi.org/10.1007/s11104-012-1341-1
- 37. Hubbard, R.M, Stape, J.L, Ryan, M.G, Ryan, M.G, Almeida, A.C & Rojas, J.D (2010). Forest ecology and management effects of irrigation on water use and water use efficiency in two fast growing eucalyptus plantations. Forest Ecology and Management, 259(9), 1714–1721. http://dx.doi.org/10.1016/j.foreco.2009.10.028
- 38. Jiang, W, Yang, S, Yang, X & Gu, N (2016). Negative impacts of afforestation and economic forestry on the Chinese Loess plateau and proposed solutions. Quaternary International, 399, 165–173. http://dx.doi.org/10.1016/j.quaint.2015.04.011.
- 39. Khan, SAR, Yu, Z, Golpîra, H, Sharif, A & Mardani, A (2021). A state-of-the-art review and meta-analysis on sustainable supply chain management: Future research directions. Journal of Cleaner Production, 278. https://doi.org/10.1016/j.jclepro.2020.123357
- 40. Kusumawardhana, R, Darmawan, D.H & Chen J.K (2020). Indonesian oil palm replanting program will support achieving sustainable development goals. American Journal of Humanities and Social Sciences Research, 4(7), 271–278. https://doi.org/10.1088/1755-1315/336/1/012012
- 41. le Maire, G, Marsden, C, Nouvellon, Y, Grinand, C, Hakamada, R, Stape, J.L & Laclau, J.-P (2011). MODIS NDVI time-series allow the monitoring of eucalyptus plantation biomass. Remote Sensing of Environment, 115(10), 2613–2625. http://dx.doi.org/10.1016/j.rse.2011.05.017.
- 42. Le, H.D, Smith, C, Herbohn, J & Harrison, S (2012). More than just trees: Assessing reforestation success in tropical developing countries. Journal of Rural Studies, 28(1), 5–19. http://dx.doi.org/10.1016/j. jrurstud.2011.07.006
- 43. Luke, S.H, et al. (2019). Effects of replanting and retention of mature oil palm riparian buffers on ecosystem functioning in oil palm plantations. 2. https://doi.org/10.3389/ffgc.2019.00029
- 44. Marsden, C, Nouvellon, Y, Laclau, J.-P, Corbeels, M, McMurtrie, R.E, Stape, J.L, Epron, D & Le Maire, G (2013). Modifying the G’DAY process-based model to simulate the spatial variability of eucalyptus plantation growth on deep tropical soils. Forest Ecology and Management, 301, 112–128. http://dx.doi.org/10.1016/j.foreco.2012.10.039.
- 45. McIntosh, S, Vancov, T, Palmer, J & Spain, M (2012). Ethanol production from eucalyptus plantation thinnings. Bioresource Technology, 110, 264–272. http://dx.doi.org/10.1016/j.biortech.2012.01.114
- 46. Meza-Peralta, K, Gonzalez-Feliu, J, Montoya-Torres, J.R & Khodadad-Saryazdi, A (2020) A unified typology of urban logistics spaces as interfaces for freight transport. Supply Chain Forum: An International Journal, 21(4), 274–289. https://doi.org/10.1 080/16258312.2020.1801107
- 47. Mhamdi, S, Elaieb, M.T, Souayah, N, Khouja, M, Khouja, M.L, Aloui, A, Candelier, K (2022). Growth and productivity modeling of seven eucalyptus species in souiniet’s arboretum in the northwestern of Tunisia. Forestist, 72(1), 48–61. https://doi.org/10.5152/forestist.2021.20062
- 48. Naidoo, S, Külheim, C, Zwart, L, Mangwanda, R, Oates, CN, Visser, EA, Wilken, FE, Mamni, TB & Myburg, AA (2014). Uncovering the defence responses of eucalyptus to pests and pathogens in the genomics age. Tree Physiology, 34(9), 931–943. https://doi.org/10.1093/treephys/tpu075
- 49. Ngai, A. D., Ibrahim, R., & Selintung, M. (2024). Acid mine drainage treatment with organic waste in constructed wetlands. Ecological Engineering & Environmental Technology, 25(8), 245–260. https://doi.org/10.12912/27197050/189817
- 50. Nilsson, U, Luoranen, J, Kolström, T, Örlander, G & Puttonen, P (2010). Reforestation with planting in Northern Europe. Scandinavian Journal of Forest Research, 25(4), 283–294. https://doi.org/10.1080/02827581.2010.498384
- 51. Norton, M.J (2010). Introductory Concepts in Information Science. Retrieved from https:// www.goodreads.com/book/show/230663. Introductory_Concepts_in_Information_Science
- 52. Nouvellon, Y, Laclau, J-P, Epron, D, Epron, D, Kinana, A, Mabiala, A, Roupsard, O, Bonnefond, J-M, Le Maire, G, Marsden, C, Marsden, C, Bontemps, J-D & Saint-André, L (2010). Within-stand and seasonal variations of specific leaf area in a clonal eucalyptus plantation in the Republic of Congo. Forest Ecology and Management, 259(9), 1796– 1807. https://doi.org/10.1016/j.foreco.2009.05.023
- 53. Nurfatriani, F, Ramawati, G.K.S & Komarudin, H (2019). Optimization of crude palm oil funds to support smallholder oil palm planting in reducing deforestation in Indonesia. Sustainability, 11(18), 4914. https://doi.org/10.3390/su11184914
- 54. Nugroho, A.S.E, Tjhin, V.U, Kosasih, W & Prabowo, H (2022). Bibliometric analysis of research trend on agile IT governance. Business and Accounting Research (IJEBAR) Peer Reviewed-International Journal, 6(1), 1–15. https://doi.org/10.29040/ijebar.v6i2.2976
- 55. Ospina-Mateus, H, Quintana Jiménez, L.A, Lopez- Valdes, F.J & Salas-Navarro, K (2019). Bibliometric analysis in motorcycle accident research: A global overview. Scientometrics, 121(2), 793–815. https://doi.org/10.1007/s11192-019-03234-5
- 56. Packalén, P, Mehtätalo, L & Maltamo, M (2011). ALS-based estimation of plot volume and site index in a eucalyptus plantation with a nonlinear mixed-effect model that accounts for the clone effect. Annals of Forest Science, 68(6), 1085–1092. https://doi.org/10.1007/s13595-011-0124-9
- 57. Paquette, A & Messier, C (2010). The role of plantations in managing the world’s forests in the anthropocene. Frontiers in Ecology and the Environment, 8(1), 27–34. https://doi.org/10.1890/080116
- 58. Paul, K.I, Cunningham, S.C, Cunningham, S.C, England, J.R, Roxburgh, S.H, Preece, N.D, Lewis, T, Brooksbank, K, Crawford, D & Polglase, P.J (2016). Land use policy managing reforestation to sequester carbon , increase biodiversity potential and minimize loss of agricultural land. Land Use Policy, 51, 135–149. https://doi.org/10.1016/j. landusepol.2015.10.027
- 59. Pima, N.E, Chamshama, S.A.O, Iddi, S & Maguzu, J (2016). Growth performance of eucalypt clones in Tanzania. Environment and Ecology Research, 4(3), 146–154. https://doi.org/10.13189/eer.2016.040306
- 60. Pinheiro, A. (2023). Five-years post commercial approval monitoring of eucalyptus h421. Frontiers in Bioengineering and Biotechnology, 11. https://doi.org/10.3389/fbioe.2023.1257576
- 61. Pestana, L., Martello, F., & Fonseca, R. (2023). Richness and composition of terrestrial mammals vary in eucalyptus plantations due to stand age. Austral Ecology, 48(4), 743-760. https://doi.org/10.1111/aec.13297
- 62. Porto, A. (2024). Characterization of glyphosate-tolerant genetically modified eucalyptus. Gm Crops & Food, 15(1), 361–373. https://doi.org/10.1080/2 1645698.2024.2429200
- 63. Prasetyo, A, Aiso, H, Ishiguri, F, Wahyudi, I, Wijaya, I.P.G, Ohshima, J & Yokota, S (2017). Variations on growth characteristics and wood properties of three eucalyptus species planted for pulpwood in Indonesia. Tropics, 26(2), 59–69. https://doi.org/10.3759/tropics.MS16-15
- 64. Ramalho, Q, Tourinho, L, Almeida-Gomes, M, Vale, M.M & Prevedello, J.A (2021). Reforestation can compensate negative effects of climate change on amphibians. Biological Conservation, 260, 109187. https://doi.org/10.1016/j.biocon.2021.109187
- 65. Reyes, J.J Rojas, Solano-Charris, E.L & Montoya- Torres, J.R (2019). The storage location assignment problem: A literature review. International Journal of Industrial Engineering Computations, 10(2), 199–224. https://doi.org/10.5267/j.ijiec.2018.8.001
- 66. Saadaoui, E, Ben Yahia, K, Dhahri, S, Ben Jamaa, ML & Khouja, ML (2017). An overview of adaptative responses to drought stress in Eucalyptus Spp. Forestry Studies, 67(1), 86–96. https://doi.org/10.1515/fsmu-2017-0014
- 67. Sarto, M., Borges, W., Bassegio, D., Nunes, M., Rice, C., & Rosolem, C. (2022). Deep soil water content and forage production in a tropical agroforestry system. Agriculture, 12(3), 359. https://doi.org/10.3390/agriculture12030359
- 68. Sembiring, N. (2024). Replanting eucalyptus as a sustainable solution for pulp industry: a review. Iop Conference Series Earth and Environmental Science, 1352(1), 012031. https://doi.org/10.1088/1755-1315/1352/1/012031
- 69. Sembiring, N., Mansurin, M., Banurea, M., Tarigan, C., & Waruwu, T. (2022). Designing eucalyptus replanting model using hybrid simulation method: A review. Iop Conference Series Earth and Environmental Science, 1115(1), 012091. https://doi.org/10.1088/1755-1315/1115/1/012091
- 70. Sembiring, N., Napitupulu, H., Sembiring, M., Sipahutar, A., & Yesica, L. (2022). Eucalyptus replanting model representation for sustainable productivity: A review. Iop Conference Series Earth and Environmental Science, 974(1), 012107. https://doi.org/10.1088/1755-1315/974/1/012107
- 71. Shi, M., Xu, J., Liu, S., & Xu, Z. (2022). Productivity-based land suitability and management sensitivity analysis: the eucalyptus E. urophylla × E. grandis case. Forests, 13(2), 340. https://doi.org/10.3390/ f13020340
- 72. Stape, J.L, Binkley, D, Ryan, M.G, Ryan, MG, Fonseca, S, Loos, R.A, Takahashi, E.N, Silva, C.R, Silva, S, Hakamada, R, Ferreira, J.M, Lima, A.M.N, Gava, J.L, Leite, F.P, Andrade, H.B, Alves, J.M, Silva, G.G.C da & Azevedo, M.R (2010). The Brazil eucalyptus potential productivity project: Influence of water, nutrients and stand uniformity on wood production. Forest Ecology and Management, 259, 1684–1694. https://doi.org/10.1016/j.foreco.2010.01.012
- 73. Tanudjaja, I., & Yu Kow, G. (2018). Exploring bibliometric mapping in NUS using BibExcel and VOSviewer. IFLA WLIC Kuala Lumpur, 1–9. http:// library.ifla.org/2190/1/163-tanudjaja-en.pdf
- 74. Tan, Y. (2024). Soil hydrology characteristics among forest type, stand age and successive rotation in eucalyptus plantations in southern china. Forests, 15(3), 423. https://doi.org/10.3390/f15030423
- 75. Tomé, M, Almeida, M.H, Barreiro, S, Branco, M, Deus, E, Pinto, G, Silva, J.S, Soares, P & Rodríguez- Soalleiro, R (2021). Opportunities and challenges of eucalyptus plantations in Europe: The Iberian Peninsula experience. European Journal of Forest Research, 140(3), 489–510. https://doi.org/10.1007/s10342-021-01358-z
- 76. Trac, C.J, Harrell, S, Hinckley, T.M & Henck, A.C (2007). Reforestation programs in Southwest China: Reported success, observed failure, and the reasons why. Journal of Mountain Science, 4, 275–292. https://doi.org/10.1007/s11629-007-0275-1
- 77. Valadares, R.V, Neves, J.C.L, Costa, M.D, Smethurst, P.J, Peternelli, L.A, Jesus, G.L de, Cantarutti, R.B & Silva, I.R (2018). Modeling rhizosphere carbon and nitrogen cycling in eucalyptus plantation soil. Biogeosciences, 15(16), 4943–4954. https://doi.org/10.5194/bg-15-4943-2018
- 78. Viera, M, Fernández, F.R & Rodríguez-Soalleiro, R (2016). Nutritional prescriptions for eucalyptus plantations: Lessons learned from Spain. Forests, 7(4), 84. https://doi.org/10.3390/f7040084
- 79. Wang, B, Pan, S-Y, Ke, R-Y, Wang, K & Wei, Y-M (2014). An overview of climate change vulnerability: A bibliometric analysis based on web of science database. Natural Hazards, 74(3), 1649–1666.
- 80. Wang, Y. (2023). Long‐term effects of intercropping on multi‐trophic structure and bio‐thermodynamic health of mixed eucalyptus‐native tree plantations. Journal of Applied Ecology, 61(1), 103–119. https://doi.org/10.1111/1365-2664.14558
- 81. Wolff, NH, Vargas Zeppetello, LR, Parsons, LA, Aggraeni, I, Battisti, DS, Ebi, KL, Game, ET, Kroeger, T, Masuda, YJ & Spector, JT (2021). The effect of deforestation and climate change on all-cause mortality and unsafe work conditions due to heat exposure in Berau, Indonesia: A modelling study. The Lancet Planetary Health, 5(12), 882–e892. http:// dx.doi.org/10.1016/S2542-5196(21)00279-5
- 82. Xiao, P, Qian, P, Xu, J & Lu, M (2022). A bibliometric analysis of the application of remote sensing in crop spatial patterns: Current status, progress and future directions. Sustainability, 12(7), 4104. https://doi.org/10.3390/su14074104
- 83. Xu, Y., Li, C., Zhu, W., Wang, Z., Wu, L., & Du, A. (2022). Effects of enrichmemt planting with native tree species on bacterial community structure and potential impact on eucalyptus plantations in southern china. Journal of Forestry Research, 33(4), 1349–1363. https://doi.org/10.1007/s11676-021-01433-6
- 84. Yao, X., Hui, D., Hou, E., Xiong, J., Xing, S., & Deng, Q. (2023). Differential responses and mechanistic controls of soil phosphorus transformation in eucalyptus plantations with n fertilization and introduced n2‐fixing tree species. New Phytologist, 237(6), 2039–2053. https://doi.org/10.1111/nph.18673
- 85. Zahra, A.A, Nurmandi, A, Tenario, C.B, Rahayu, R, Benectitos, S.H, Mina, F.L.P & Haictin, KM (2021). Bibliometric analysis of trends in theory-related policy publications. Emerging Science Journal, 5(1), 96–110. https://doi.org/10.28991/esj-2021-01261
- 86. Zegeye, H. (2010). Environmental and socio-economic implications of eucalyptus in Ethiopia. In Eucalyptus species management, history, status and trends in Ethiopia: Proceedings from the congress held in Addis Ababa, September 15th–17th, 2010 (pp. 184–205).
- 87. Zhang, Y.X & Wang, X.J (2021). Geographical spatial distribution and productivity dynamic change of eucalyptus plantations in China. Scientific Reports, 11(1), 1–15. https://doi.org/10.1038/s41598-021-97089-7
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-0b74ce10-9c8d-4c62-9ea9-2567553fc661
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