Climate and seasonal rainfall anomalies along an elevational gradient in the El Sira Mountains, Peru, and their impacts on tree radial growth

Armin Niessner , Manfred Küppers , James Graham , Luis Valenzuela , Aylin Güney , Sabine Remmele , Reiner Zimmermann

Journal of Forestry Research ›› 2019, Vol. 31 ›› Issue (5) : 1521 -1538.

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Journal of Forestry Research ›› 2019, Vol. 31 ›› Issue (5) : 1521 -1538. DOI: 10.1007/s11676-019-00985-y
Original Paper

Climate and seasonal rainfall anomalies along an elevational gradient in the El Sira Mountains, Peru, and their impacts on tree radial growth

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Abstract

The explicit purpose of this study was to characterize climate and vegetation along the western slope of the El Sira Mountains (Peru) and evaluate radial tree growth in response to seasonal rainfall anomalies. From May 2011 until September 2015, we monitored radial stem growth of 67 trees using point dendrometers and measured climate within five sites along an altitudinal gradient. The transect extends from lowland terra firme forests, over submontane forests, late and mid successional montane cloud forests up to exposed elfin forests. Monthly rainfall estimates by the TRMM PR satellite (product 3B42) were highly correlated with our rain gauge observations but underestimate rainfall at high altitudes. Different intra-annual tree growth patterns could be identified within each elevational forest type, showing species with strictly seasonal growth, continuous growth or alternating growth patterns independent of the seasons. Stem growth at each site was generally larger during rainy seasons, except for the elfin forest. The rainy season from October 2013 to March 2014 was extraordinarily dry, with only 73% of long-term mean precipitation received, which resulted in reduced radial growth, again with the exception of the elfin forest. This indicates that montane tropical rain forests may suffer from prolonged droughts, while exposed ridges with elfin forests still receive plenty of precipitation and benefit from receiving more solar radiation for photosynthesis.

Keywords

Cloud forest / Dendrometer / Elfin forest / Seasonality / TRMM PR / Tropical montane forest

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Armin Niessner, Manfred Küppers, James Graham, Luis Valenzuela, Aylin Güney, Sabine Remmele, Reiner Zimmermann. Climate and seasonal rainfall anomalies along an elevational gradient in the El Sira Mountains, Peru, and their impacts on tree radial growth. Journal of Forestry Research, 2019, 31(5): 1521-1538 DOI:10.1007/s11676-019-00985-y

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References

[1]

Aiba S, Kitayama K. Structure, composition and species diversity in an altitude-substrate matrix of rain forest tree communities on Mount Kinabalu, Borneo. Plant Ecol, 1999, 140: 139-157.

[2]

Bellingham PJ, Tanner EVJ. The influence of topography on tree growth, mortality, and recruitment in a tropical montane forest. Biotropica, 2000, 32: 378-384.

[3]

Bookhagen B, Strecker MR. Orographic barriers, high-resolution TRMM rainfall, and relief variations along the eastern Andes. Geophys Res Lett, 2008, 35: L06403.

[4]

Borchert R. Water status and development of tropical trees during seasonal drought. Trees, 1994, 8: 115-124.

[5]

Bräuning A, Homeier J, Cueva E Beck E, Bendix J, Kottke I Growth dynamics of trees in tropical mountain ecosystems. Gradients in a tropical mountain ecosystem of Ecuador, 2008, Berlin: Springer 291 302

[6]

Bruijnzeel LA, Waterloo MJ, Proctor J Hydrological observations in montane rain forests on Gunung Silam, Sabah, Malaysia, with special reference to the ‘Massenerhebung’ effect. J Ecol, 1993, 81: 145-167.

[7]

Casimiro WS, Labat D, Ronchail J Trends in rainfall and temperature in the Peruvian Amazon-Andes basin over the last 40 years (1965–2007). Hydrol Process, 2013, 27: 2944-2957.

[8]

Cavelier J. Mulkey SS, Chazdon RL, Smith AP. Environmental factors and ecophysiological processes along altitudinal gradients in wet tropical mountains. Tropical forest plant ecophysiology, 1996, Boston: Springer US 399 439

[9]

Ciach GJ. Local random errors in tipping-bucket rain gauge measurements. J Atmos Ocean Technol, 2003, 20: 752-759.

[10]

Clark DA, Piper SC, Keeling CD, Clark DB. Tropical rain forest tree growth and atmospheric carbon dynamics linked to interannual temperature variation during 1984–2000. Proc Natl Acad Sci, 2003, 100: 5852-5857.

[11]

Clark DB, Clark DA, Oberbauer SF. Annual wood production in a tropical rain forest in NE Costa Rica linked to climatic variation but not to increasing CO2. Glob Chang Biol, 2010, 16: 747-759.

[12]

Cox PM, Harris PP, Huntingford C Increasing risk of Amazonian drought due to decreasing aerosol pollution. Nature, 2008, 453: 212-215.

[13]

Doughty CE. An in situ leaf and branch warming experiment in the Amazon. Biotropica, 2011, 43: 658-665.

[14]

Espinoza JC, Fraizy P, Guyot JL et al (2006) La variabilité des débits du Rio Amazonas au Pérou. Climate variability and change-hydrological impacts, 424–429. IAHS Publ 308:424–429

[15]

Espinoza JC, Ronchail J, Guyot JL Spatio-temporal rainfall variability in the Amazon basin countries (Brazil, Peru, Bolivia, Colombia, and Ecuador). Int J Climatol, 2009, 29: 1574-1594.

[16]

Espinoza JC, Chavez S, Ronchail J Rainfall hotspots over the southern tropical Andes: spatial distribution, rainfall intensity, and relations with large-scale atmospheric circulation. Water Resour Res, 2015, 51: 3459-3475.

[17]

Esquivel-Muelbert A, Baker TR, Dexter KG Seasonal drought limits tree species across the Neotropics. Ecography (Cop), 2016, 39: 1-12.

[18]

Feldpausch TR, Phillips OL, Brienen RJW Amazon forest response to repeated droughts. Global Biogeochem Cycles, 2016, 30: 964-982.

[19]

Figueroa SN, Nobre CA. Precipitation distribution over central and western tropical South America. Climanalise, 1990, 5: 36-45.

[20]

Frahm J-P, Gradstein SR. An altitudinal zonation of tropical rain forests using byrophytes. J Biogeogr, 1991, 18: 669-678.

[21]

Franchito SH, Rao VB, Vasques AC Validation of TRMM precipitation radar monthly rainfall estimates over Brazil. J Geophys Res, 2009, 114: D02105.

[22]

Gentry AH. Changes in plant community diversity and floristic composition on environmental and geographical gradients. Ann Mo Bot Gard, 1988, 75: 1-34.

[23]

Gentry AH. Churchill SP, Baslev H, Forero E, Luteyn JL. Patterns of diversity and floristic composition in neotropical montane forests. Biodiversity and conservation of neotropical montane forests: proceedings, 1995, Bronx: New York Botanical Garden 103 126

[24]

Goff JA, Gratch S (1946) Low-pressure properties of water from −160 to 212°F. In: 52nd annual meeting of the American Society of Heating and Ventilating Engineers. New York, pp 95–122

[25]

Graham EA, Mulkey SS, Kitajima K Cloud cover limits net CO2 uptake and growth of a rainforest tree during tropical rainy seasons. Proc Natl Acad Sci, 2003, 100: 572-576.

[26]

Graham JG, Fischer M, Pócs T. Bryoflora and landscapes of the eastern Andes of central Peru : I. Liverworts of the El Sira Communal Reserve. Acta Biol Planatarum Agriensis, 2016, 4: 3-60.

[27]

Grubb PJ. Control of forest growth and distribution on wet tropical mountains: with special reference to mineral nutrition. Annu Rev Ecol Syst, 1977, 8: 83-107.

[28]

Güney A, Küppers M, Rathgeber C Intra-annual stem growth dynamics of Lebanon Cedar along climatic gradients. Trees, 2017, 31: 1375.

[29]

Habib E, Krajewski WF, Kruger A. Sampling errors of tipping-bucket rain gauge measurements. J Hydrol Eng, 2001, 6: 159-166.

[30]

Herrmann R. Die zeitliche Änderung der Wasserbindung im Boden unter verschiedenen Vegetationsformationen der Höhenstufen eines tropischen Hochgebirges (Sierra Nevada de Sta Marta/Kolumbien) (Temporal Change in Soil Moisture Potential under Different Vegetation Format). Erdkunde, 1971, 25: 90-102.

[31]

Herwitz SR, Young SS. Mortality, recruitment, and growth rates of montane tropical rain forest canopy trees on Mount Bellenden-Ker, Northeast Queensland, Australia. Biotropica, 1994, 26: 350-361.

[32]

Holder CD. Diameter growth and decline in a tropical montane cloud forest of the Sierra de Las Minas, Guatemala. J Trop For Sci, 2008, 20: 292-299.

[33]

Homeier J. Baumdiversität, Waldstruktur und Wachstumsdynamik zweier tropischer Bergregenwälder in Ecuador und Costa Rica, 2004, Stuttgart: Schweizerbart Science Publishers.

[34]

Homeier J, Breckle S-W, Günter S Tree diversity, forest structure and productivity along altitudinal and topographical gradients in a species-rich Ecuadorian montane rain forest. Biotropica, 2010, 42: 140-148.

[35]

Huete AR, Didan K, Shimabukuro YE Amazon rainforests green-up with sunlight in dry season. Geophys Res Lett, 2006, 33: 2-5.

[36]

Huffman GJ, Bolvin DT, Nelkin EJ The TRMM multisatellite precipitation analysis (TMPA): quasi-global, multiyear, combined-sensor precipitation estimates at fine scales. J Hydrometeorol, 2007, 8: 38-55.

[37]

Huffman GJ, Adler RF, Bolvin DT, Nelkin EJ. Gebremichael M, Hossain F. The TRMM multi-satellite precipitation analysis (TMPA). Satellite rainfall applications for surface hydrology, 2010, Dordrecht: Springer 3 22

[38]

IGP (2005) Vulnerabilidad Actual y Futura ante el Cambio Climático y Medidas de Adaptación en la Cuenca del Río Mantaro

[39]

Iguchi T, Kozu T, Meneghini R Rain-profiling algorithm for the TRMM precipitation radar. J Appl Meteorol, 2000, 39: 2038-2052.

[40]

Iguchi T, Kozu T, Kwiatkowski J Uncertainties in the rain profiling algorithm for the TRMM precipitation radar. J Meteorol Soc Jpn Ser II, 2009, 87A: 1-30.

[41]

Kapos V, Tanner EVJ. Water relations of jamaican upper montane rain forest trees. Ecology, 1985, 66: 241-250.

[42]

Kessler M. The elevational gradient of Andean plant endemism: varying influences of taxon-specific traits and topography at different taxonomic levels. J Biogeogr, 2002, 29: 1159-1165.

[43]

Köcher P, Horna V, Leuschner C. Environmental control of daily stem growth patterns in five temperate broad-leaved tree species. Tree Physiol, 2012, 32: 1021-1032.

[44]

Kummerow C, Simpson J, Thiele O The status of the tropical rainfall measuring mission (TRMM) after two years in orbit. J Appl Meteorol, 2000, 39: 1965-1982.

[45]

Küppers M, Motzer T, Schmitt D Beck E, Bendix J, Kottke I Stand structure, transpiration responses in trees and vines and stand transpiration of different forest types within the mountain rainforest. Gradients in a tropical mountain ecosystem of Ecuador, 2008, Berlin: Springer 243 258

[46]

Lang GE, Knight DH. Tree growth, mortality, recruitment, and canopy gap formation during a 10-year period in a tropical moist forest. Ecology, 1983, 64: 1075-1080.

[47]

Lauer W. Die Vegetationszonierung der Neotropis und ihr Wandel seit der Eiszeit. Plant Biol, 1986, 99: 211-235.

[48]

Laurance WF, Curran TJ. Impacts of wind disturbance on fragmented tropical forests: a review and synthesis. Austral Ecol, 2008, 33: 399-408.

[49]

Laurance WF, Nascimento HEM, Laurance SG Inferred longevity of Amazonian rainforest trees based on a long-term demographic study. For Ecol Manag, 2004, 190: 131-143.

[50]

Lawton RO. Wind stress and elfin stature in a montane rain forest tree: an adaptive explanation. Am J Bot, 1982, 69: 1224-1230.

[51]

Leuschner C, Moser G, Bertsch C Large altitudinal increase in tree root/shoot ratio in tropical mountain forests of Ecuador. Basic Appl Ecol, 2007, 8: 219-230.

[52]

Lieberman D, Lieberman M, Peralta R, Hartshorn GS. Tropical forest structure and composition on a large-scale altitudinal gradient in Costa Rica. J Ecol, 1996, 84: 137-152.

[53]

Lloyd J, Farquhar GD. Effects of rising temperatures and [CO2] on the physiology of tropical forest trees. Philos Trans R Soc B Biol Sci, 2008, 363: 1811-1817.

[54]

Lomolino M. Elevation gradients of species-density: historical and prospective views. Glob Ecol Biogeogr, 2001, 10: 3-13.

[55]

Lozano PC, Bussmann RW, Küppers M. Montane forest diversity influencing pioneer flora on natural landslides at the Western side of Podocarpus National Park, South Ecuador. Rev UDO Agrícola, 2007, 7: 142-159.

[56]

Lyford WH. ecology of an elfin forest in Puerto Rico. 7. Soil, root, and earthworm relationships. J Arnold Arbor, 1969, 50: 210-224.

[57]

Malhi Y, Phillips OLL, Lloyd J An international network to monitor the structure, composition and dynamics of Amazonian forests (RAINFOR). J Veg Sci, 2002, 13: 439-450.

[58]

Mantas VM, Liu Z, Caro C, Pereira AJSCJSC. Validation of TRMM multi-satellite precipitation analysis (TMPA) products in the Peruvian Andes. Atmos Res, 2015, 163: 132-145.

[59]

Manz B, Buytaert W, Zulkafli Z High-resolution satellite-gauge merged precipitation climatologies of the tropical Andes. J Geophys Res Atmos, 2016, 121: 1190-1207.

[60]

Marengo J. Estudio sinoptico-climatico de los Friajes (Friagems) en la Amazonia Peruana. Rev For del Perú, 1983, 12: 1-26.

[61]

Martin PH, Bellingham PJ. Towards integrated ecological research in tropical montane cloud forests. J Trop Ecol, 2016, 32: 345-354.

[62]

Montegudo AL, Valenzuela Gamarra L, Vásquez Martínez R Primer catálogo de los árboles y afines de la Reserva Comunal El Sira, Perú. Arnaldo, 2014, 21: 127-164.

[63]

Moser G, Hertel D, Leuschner C. Altitudinal change in LAI and Stand leaf biomass in tropical montane forests: a transect study in Ecuador and a pan-tropical meta-analysis. Ecosystems, 2007, 10: 924-935.

[64]

Motzer T, Munz N, Küppers M, Schmitt D, Anhuf D. Stomatal conductance, transpiration and sap flow of tropical montane rain forest treesin the southern Ecuadorian Andes. Tree Physiology, 2005, 25: 1283-1293.

[65]

Nešpor V, Sevruk B. Estimation of wind-induced error of rainfall gauge measurements using a numerical simulation. J Atmos Ocean Technol, 1999, 16: 450-464.

[66]

Newstrom LE, Frankie GW, Baker HG. A new classification for plant phenology based on flowering patterns in lowland tropical rain forest trees at La Selva, Costa Rica. Biotropica, 1994, 26: 141-159.

[67]

Phillips OL, Aragao LEOC, Lewis SL Drought sensitivity of the Amazon rainforest. Science (80-), 2009, 323: 1344-1347.

[68]

Romatschke U, Houze RA. Extreme summer convection in South America. J Clim, 2010, 23: 3761-3791.

[69]

Salazar LF, Nobre CA, Oyama MD. Climate change consequences on the biome distribution in tropical South America. Geophys Res Lett, 2007, 34: 2-7.

[70]

Semire FA, Mohd-Mokhtar R, Ismail W Ground validation of space-borne satellite rainfall products in Malaysia. Adv Space Res, 2012, 50: 1241-1249.

[71]

Shreve F. A montane rain-forest: a contribution to the physiological plant geography of Jamaica, 1914, Washington: Carnegie Institution of Washington

[72]

Simpson J, Adler RF, North GR. A proposed tropical rainfall measuring mission (TRMM) satellite. Bull Am Meteorol Soc, 1988, 69: 278-295.

[73]

Soethe N, Wilcke W, Homeier J Beck E, Bendix J, Kottke I Plant growth along the altitudinal gradient—role of plant nutritional status, fine root activity, and soil properties. Gradients in a tropical mountain ecosystem of Ecuador, 2008, Berlin: Springer 259 266

[74]

Tyree MT, Cochard H, Davis SD. Biophysical perspectives of xylem evolution: is there a tradeoff of hydraulic efficiency for vulnerability to dysfunction?. IAWA J, 1994, 15: 335-360.

[75]

Unger M, Homeier J, Leuschner C. Relationships among leaf area index, below-canopy light availability and tree diversity along a transect from tropical lowland to montane forests in NE Ecuador. Trop Ecol, 2013, 54: 33-45.

[76]

Valenzuela L, Vásquez Martínez R, Rojas Gonzáles R del P Línea base para el monitoreo de la vegetación en la Reserva Comunal El Sira (RCS) Baseline for screening the vegetation of El Sira Comunal Reserve. Arnaldo, 2015, 22: 243-268.

[77]

Von Humboldt A (1849) Aspects of nature, in different lands and different climates; with scientific elucidations. Translated by M. Sabine. Longman, Brown, Green and Longman, London

[78]

Wagner F, Rossi V, Aubry-Kientz M Pan-tropical analysis of climate effects on seasonal tree growth. PLoS ONE, 2014, 9: 20-22.

[79]

Walker LR, Zimmerman JK, Lodge DJ, Guzman-Grajales S. An altitudinal comparison of growth and species composition in hurricane-damaged forests in Puerto Rico. J Ecol, 1996, 84: 877-889.

[80]

Weaver PL, Medina E, Pool D Ecological observations in the dwarf cloud forest of the Luquillo Mountains in Puerto Rico. Biotropica, 1986, 18: 79-85.

[81]

Xiao X, Hagen S, Zhang Q Detecting leaf phenology of seasonally moist tropical forests in South America with multi-temporal MODIS images. Remote Sens Environ, 2006, 103: 465-473.

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