Species diversity, regeneration and dominance as influenced by canopy gaps and their characteristics in tropical evergreen forests of Western Ghats, India

Guddappa Mahalingappa Devagiri , Anil Kumar Khaple , Siddagangaiah Mohan , Puttanaik Venkateshamurthy , Sanjay Tomar , Arkalgud Nagaraja Arunkumar , Geeta Joshi

Journal of Forestry Research ›› 2016, Vol. 27 ›› Issue (4) : 799 -810.

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Journal of Forestry Research ›› 2016, Vol. 27 ›› Issue (4) : 799 -810. DOI: 10.1007/s11676-016-0223-4
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Species diversity, regeneration and dominance as influenced by canopy gaps and their characteristics in tropical evergreen forests of Western Ghats, India

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Abstract

Canopy gaps play a significant role in maintaining structure and composition of tropical forests. This study was carried out in tropical evergreen forests of central Western Ghats in India to understand the influence of canopy gap size and the relationship of gap regime attributes to diversity measures and regeneration. The average gap size in the study area was found to be 396 m2 and around half of gaps were 4–8 years old. Gaps created by natural single tree fall were smaller in size but significantly higher in number. Diversity and regeneration of woody species were compared with canopy gaps and intact vegetation. Species richness and diversity was higher in gaps than in intact vegetation. Macaranga peltata, a shade intolerant species dominated gaps while intact vegetation was dominated by shade tolerant Kingiodendron pinnatum. Gap size significantly influenced species diversity and regeneration. Gap area and age were significantly and negatively correlated with diversity measures but positively correlated with regeneration. Among all the attributes of gaps, regeneration was significantly positively correlated with light intensity. Gaps maintained species diversity and favored regeneration of woody species. In addition to gap size and age, other gap ecological attributes also affected species diversity and regeneration.

Keywords

Canopy gaps / Gap characteristics / Central Western Ghats / Tropical evergreen forests / Species diversity / Regeneration

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Guddappa Mahalingappa Devagiri, Anil Kumar Khaple, Siddagangaiah Mohan, Puttanaik Venkateshamurthy, Sanjay Tomar, Arkalgud Nagaraja Arunkumar, Geeta Joshi. Species diversity, regeneration and dominance as influenced by canopy gaps and their characteristics in tropical evergreen forests of Western Ghats, India. Journal of Forestry Research, 2016, 27(4): 799-810 DOI:10.1007/s11676-016-0223-4

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References

[1]

Andrew NG, Thomas AS. Gap size, within gap position and canopy structure effects conifer seedling establishment. J Ecol, 1990, 84: 635-645.

[2]

Arihafa A, Mack LA. Tree gap dynamics in a tropical rain forest in Papua New Guinea. Pac Sci, 2013, 67(1): 47-58.

[3]

Arriaga L. Gap-building phase regeneration in a tropical montane cloud forest of north-eastern Mexico. J Trop Ecol, 2000, 16: 535-562.

[4]

Arunachalam A, Arunachalam K. Influence of gap size and soil properties on microbial biomass in a sub-tropical humid forest of North-East India. Plant Soil, 2000, 23: 185-193.

[5]

Baret SL, Cournac C, Theband P, Edwards D, Strasberg K. Effects of canopy gap size on recruitment and invasion of the non indigenous Rubus alceiformis in lowland tropical rain forest on reunion. J Trop Ecol, 2008, 24: 337-345.

[6]

Barik SK, Pandey HN, Tripathi RS. Micro-environmental variability and species-diversity in tree fall gaps in a sub-tropical broadleaved forest. Vegetation, 1992, 103: 31-40.

[7]

Bhat DM, Ravindranath NH (2007) Effect of gap size on species composition in humid tropical forests of Uttarakannada district, Western Ghats, Technical Report, pp 86–120

[8]

Bray RH, Kurtz LT. Determination of total, organic and available forms of phosphorus in soils. Soil Sci, 1945, 59: 39-45.

[9]

Brokaw NVL. Gap-phase regeneration in a tropical forest. Ecol Lett, 1985, 66: 682-687.

[10]

Brokaw NVL, Scheiner SM. Species composition in gaps and structure of a tropical forest. Ecology, 1989, 70: 538-541.

[11]

Bullock JM. Fenner M. Gaps and seedling colonization. Seeds: the ecology of regeneration in plant communities. 2000, Wallingford: CABI Publishing, 375 395

[12]

Chandrashekara , Ramakrishnan PS. Gap phase regeneration of tree species of differing successional status in a humid tropical forest of Kerala, India. J Biosci, 1993, 18: 279-290.

[13]

Chandrashekara UM, Ramakrishnan PS. Vegetation and gap dynamics of tropical wet evergreen forests in the Western Ghats region of Kerala. J Trop Ecol, 1994, 10: 337-354.

[14]

Chazdon RL, Colwell RL, Denslow JS. Tropical tree richness and resource based niches. Science, 1999, 285: 1459-1471.

[15]

Christel CK, Rebecca AM, Peter BR, Terry FS. Harvest created canopy gaps increase species and functional trait diversity of the forest ground layer community. J For Sci, 2014, 60: 13-21.

[16]

Coates KD, Burton PJ. A gap based approach for development of silvicultural system to address ecosystem management objectives. For Ecol Manag, 1997, 99(3): 337-354.

[17]

Connell JH. Diversity in tropical rain forests and coral reefs. Science, 1978, 199: 1302-1303.

[18]

Curtis JT, McIntosh RP. The interrelations of certain analytic and synthetic phytosociological characters. Ecology, 1950, 31: 434-455.

[19]

Dalling JW, Hubbell SP, Silvera K. Seed dispersal, seedling establishment and gap partitioning among tropical pioneer trees. J Ecol, 1998, 86: 674-689.

[20]

Dekker M, van Breugel M, Sterck FJ. Effective height development of four co-occurring species in the gap-phase regeneration of Douglas fir monocultures under native oriented conversion. For Ecol Manag, 2007, 238: 189-198.

[21]

Denslow JS. Gap partitioning among tropical rain-forest trees. Biotropica, 1980, 12: 47-55.

[22]

Denslow JS. Tropical rainforest gaps and tree species diversity. Annu Rev Ecol Syst, 1987, 18: 431-451.

[23]

Denslow JS. Disturbance and diversity in tropical rain forests: the density effect. Ecol Appl, 1995, 5: 962-968.

[24]

Denslow JS, Hartshorn GS. McDade LA, Bawa KS, Hespenheide HA, Hartshorn GS. Tree fall gap environments and forest dynamic processes. La Selva: ecology and natural history of a neo-tropical rain forest. 1994, Chicago: University of Chicago Press, 120 127

[25]

Denslow JS, Aaron ME, Sanford RE. Tree fall gap size effects on above and below-ground processes in a tropical wet forest. J Ecol, 1998, 86: 597-609.

[26]

Feeley KJ, Daves SJ, Ashton PS, Bunyavejchewin S, Supardi MN, Kassim AR, Tan S, Chave J. The role of gap phase processes in the biomass dynamics of tropical forests. Biol Sci, 2007, 274: 2857-2864.

[27]

Felton AM, Felton AM, Wood J, Lindenmayer DB. Vegetation structure, phenology and regeneration in the natural and anthropogenic tree fall gaps of a reduced-impact logged subtropical Bolivian forests. For Ecol Manag, 2006, 235: 186-193.

[28]

Gagnon JL, Jokela EJ, Moser WK. Characteristics of gaps and natural regeneration in mature longleaf pine flat woods ecosystems. For Ecol Manag, 2004, 187: 373-380.

[29]

Galhidy L, Mihok B, Hagyo A, Rajkal K, Standovar T. Effects of gap size and associated changes in light and soil moisture on the understory vegetation of a Hungarian beech forest. Plant Ecol, 2006, 183(1): 133-145.

[30]

Goodale UM, Aston MS, Berlyn GP, Gregoire TG, Singhakumara BMP, Tennakoon KU. Disturbance and tropical pioneer species: patterns of association across life history stages. For Ecol Manag, 2012, 277: 54-66.

[31]

Hubbell SP, Foster RB, O’Brien ST, Harms KE, Condit R, Wechsler B, Wright SJ, de Lao SL. Light-gap disturbance, recruitment limitation, and tree diversity in a neo-tropical forest. Science, 1999, 283: 554-557.

[32]

Jackson JK (1994) Manual of afforestation in Nepal (2nd edition). Forest Research and Survey Centre Kathmandu. Published by Nepal–UK Forestry Research Project, Nepal, pp 186–198

[33]

Keshavamoorthy KR, Yoganarasimhan SN. Flora of Coorg. 1989, New Delhi, Bangalore: Vimsat Publishers, Vedams Books Pvt. Ltd.

[34]

Kushalappa CG, Kushalappa KA (1998) Impact assessment of forest extraction in Kodagu. State Forest Department, Government of Karnataka, Bangalore, Technical report, pp 1–140

[35]

Lawton RO, Putz FE. Natural disturbance and gap-phase regeneration in wind-exposed tropical cloud forest. Ecology, 1988, 69: 764-777.

[36]

Lima RAF, Moura LC. Gap disturbance regime and composition in the Atlantic Montane Rain Forest: the influence of topography. Plant Ecol, 2008, 197: 239-253.

[37]

Marthews TR, Burslem FRP, Phillips TR, Mullins EC. Modeling direct radiation and canopy gap regimes in tropical forests. Biotropica, 2008, 6: 676-685.

[38]

Naaf T, Wulf M. Effects of gap size, light and herbivory on the herb layer vegetation in European beech forest gaps. For Ecol Manag, 2007, 244: 141-149.

[39]

Netravathi T, Basavaraj LT, Devagiri GM. The influence of canopy gaps on natural regeneration of Dipterocarpus indicus (BEDD.) and Kingiodendron pinnatum (ROXB.ex DC.) in evergreen forests of Central Western Ghats of Karnataka. My For, 2009, 45: 291-297.

[40]

Numata S, Yasuda M, Okuda T, Kachi N, Nursupardi MN. Canopy gap dynamics of two different forest stands in a Malaysian lowland rain forest. J Trop For Sci, 2006, 18: 109-116.

[41]

Ostertag R. Below-ground effects of canopy gaps in a tropical wet forest. Ecology, 1998, 79: 1294-1304.

[42]

Pascal JP, Ramesh BR. A field key to the trees and lianas of evergreen forest of Western Ghats (India). 1987, Pondichery: French Institute of Pondichery, 1 265

[43]

Pourbabaei H, Moghaddam HH, Faghir BM, Abedi T. The influence of gap size on plant species diversity and composition in beech (Fagus orientalis) forests, Ramsar, Mazandaran province, North of Iran. Biodiversiteas, 2013, 14: 89-94.

[44]

R Development Core Team (2013) R: a language and environment for statistical computing. R Foundation for Statistical Computing, Vienna, ISBN 3-900051-07-0. http://www.R-project.org/. Accessed Apr 20 2014

[45]

Rajesh N, Mohan Kumar B, Vijayakumar NK. Regeneration characteristics of selection felled forest gaps of different ages in the evergreen forests of Sholayar, Kerala, India. J Trop For Sci, 1996, 8: 355-368.

[46]

Ruger NA, Hutch R, Hubbell SP. Response of recruitment to light availability across a tropical lowland rain forest community. J Ecol, 2009, 97: 1360-1368.

[47]

Saldanha CJ. Flora of Karnataka, volume-I. 1996, New Delhi: Oxford and IBH Publishing Company Pvt. Ltd., 1 535

[48]

Sanchez E, Gallery R, Dalling JW. Importance of nurse logs as a substrate for the regeneration of pioneer tree species on Barro Colorado Island, Panama. J Trop Ecol, 2009, 25: 429-437.

[49]

Sapkota IP, Oden PC. Gap characteristics and their effects on regeneration, dominance and early growth of woody species. J Plant Ecol, 2009, 2: 21-29.

[50]

Sapkota IP, Tigabu M, Oden PC. Species diversity and regeneration of old-growth seasonally dry Shorea robusta forests following gap formation. J For Res, 2009, 20: 7-14.

[51]

Sarma VAK, Krishnan P, Budihal SL (1987) Laboratory methods. NBSS Publication No. 14, Technical Bulletin, NBSS & LUP, Nagpur. pp 1–156

[52]

Schnitzer SA (2001) Tree fall gaps and the maintenance of species diversity: redefining and explaining the gap hypothesis. Doctoral thesis, submitted to the University of Pittsburgh, Pittsburgh, pp 1–280

[53]

Schnitzer SA, Carson WP. Tree fall gaps and the maintenance of species diversity in a tropical forest. Ecology, 2001, 82: 913-919.

[54]

Schuman ME, White AS, Witham JW. The effects of harvest created gap on plant species diversity, composition, and abundance in a main oak pine forest. For Ecol Manag, 2004, 176: 543-561.

[55]

Strong TF, Teclaw RM, Zasada JC (1997) Monitoring the effects of partial cutting and gap size on micro-climate and vegetation responses in northern hardwood forest in Wisconsin. In: Proceeding of the national silvicultural workshop. USAD Forest Service, NE-238, Northeastern Research Station, Radnor. pp 42–47

[56]

Subbaiah BV, Asija GL. A rapid procedure for the estimation of available nitrogen in soils. Curr Sci, 1956, 25: 518-522.

[57]

Walkley AA, Black IA. An estimation of the Degtjaeff method for determining soil organic matter and a proposed modification of the chromic acid titration method. Soil Sci, 1934, 37: 29-38.

[58]

Xi W, Peet RK, Urban DL. Changes in forest structure, species diversity and spatial pattern following hurricane disturbance in a Piedmont North Carolina forest, USA. J Plant Ecol, 2008, 1: 43-57.

[59]

Yamamoto SI. Forest gap dynamics and tree regeneration. J For Res, 2000, 5: 223-230.

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