Skip to main content

Advertisement

Log in

Dendrochronology in Southeast Asia

  • Review
  • Published:
Trees Aims and scope Submit manuscript

Abstract

Dendrochronological research in Southeast Asia is under development; however, the amount of tress with potential for dendrochronological studies is restricted. For example, teak trees from India, Myanmar, Thailand, and Java are valuable dendrochronologic studies for ready climate response. Teak from Java is best suited for studying the El Niño-Southern Oscillation and sea-surface temperatures, whereas Indian teak is used to reconstruct periods of drought in India. Further, Thai teak and Vietnamese cypress trees captured the long drought period that led to the demise of the Angkor reign (fourteenth–fifteenth century). Diverse techniques including anatomical observation, cambial markings, cell differentiation, and isotopic analysis prove the age and growth of invisible tropical tree rings. A number of invisible growth rings in trees from both tropical and subtropical forests have been identified, resulting in the advancement of dendrochronology. Climate change is a substantial challenge for most living things and natural resources. A greater understanding of tree species adaptation in this region is necessary. The understanding of long-term paleoclimate can be gained by researching old samples and archaeological materials from this region.

This is a preview of subscription content, log in via an institution to check access.

Access this article

Price excludes VAT (USA)
Tax calculation will be finalised during checkout.

Instant access to the full article PDF.

Fig. 1
Fig. 2
Fig. 3
Fig. 4

Similar content being viewed by others

References

  • Asia-Pacific network for global change research (APN) (2010) Collaborative studies in tropical Asian dendrochronology: addressing challenges in climatology and forest ecology. Final report for APN project—ARCP2008-03CMY-Baguinon. Asia-Pacific network for global change research, 48 p

  • Baker PJ, Bunyavejchewin S, Oliver CD, Ashton PS (2005) Disturbance history and historical stand dynamics of a seasonal tropical forest in western Thailand. Ecol Monogr 75(3):317–343

    Article  Google Scholar 

  • Bass P, Vetter RE (eds) (1989) Growth rings in tropical woods. IAWA Bull 10:95–174

  • Bell AR, Cook BI, Anchukaitis KJ, Buckley BM, Cook ER (2011) Repurposing climate reconstructions for drought prediction in Southeast Asia. Climatic Change 106:691–698

    Article  Google Scholar 

  • Berlage HP (1931) Over het verband tusschen de dikte der jaarringgen van Djatiboomen (Tectona grandis L.f.) en den regenval op Java. About the relationship between annual ring width of Djati trees (Tectona grandis L.f.) and rainfall on Java. Tectona 24:939–953

    Google Scholar 

  • Bhattacharyya A, Yadav RR, Borgaonkar HP, Pant GB (1992) Growth-ring analysis of Indian tropical trees: dendroclimatic potential. Curr Sci 62:736–741

    Google Scholar 

  • Bhattacharyya A, Eckstein D, Shah SK, Chaudhary V (2007) Analyses of climatic changes around Perambikulum, South India, based on early wood mean vessel area of teak. Curr Sci 93(8):1159–1164

    Google Scholar 

  • Bijaksana S, Ngkoimani LO, D’Arrigo R, Krusic P, Palmer J, Sakulich J, Zulaikah S (2007) Status of tree-ring research from teak (Tectona grandis) for climate studies. J Geofisika 2:1–7

    Google Scholar 

  • Borchert R (1980) Phenology and ecophysiology of tropical trees: Erythrina poeppigiana O.F. COOK. Ecology 61(5):1065–1074

    Article  Google Scholar 

  • Borgaonkar HP, Sikder AB, Ram S, Kumar KR, Pant GB (2007) Dendroclimatological investigations of high altitude Himalayan conifers and tropical teak in India. Korean J Quart Res 21(1):15–25

    Google Scholar 

  • Borgaonkar HP, Sikder AB, Ram S, Pant GB (2010) El Niño and related monsoon drought signals in 523-year-long ring width records of teak (Tectona grandis L.F.) trees from south India. Palaeogeogr Palaeoclimatol Palaeoecol 285:74–84

    Article  Google Scholar 

  • Bormann FH, Berlyn G (eds) (1980) Age and growth rate of tropical trees. New directions for research. School of Forest and Environmental studies. Bull 94. Yale University, New Haven

  • Buajan S (2010) Ecological system of mangrove forest: cambial activity, soil property and distribution of heavy metals in mangrove forest at Samut Sakhon province. Unpublished master’s thesis, Mahidol University, Nakhon Pathom, Thailand

  • Buckley BM, Barbetti M, Watanasak M, D’Arrigo RD, Boonchirdchoo S, Sarutanon S (1995) Dendrochronological investigations in Thailand. IAWA J 16(4):393–409

    Google Scholar 

  • Buckley BM, Cook ER, Bhattacharyya A, Dukpa D, Chaudhary V (2005) Global surface temperature signals in pine ring-width chronologies from southern monsoon Asia. Geophys Res Lett 32(1–4):L20704. doi:10.1029/2005GL023745

    Article  Google Scholar 

  • Buckley BM, Palakit K, Duangsathaporn K, Sanguantham P, Prasomsin P (2007a) Decadal scale droughts over northwestern Thailand over the past 448 years: links to the tropical Pacific and Indian Ocean sectors. Clim Dyn 29(1):63–71

    Article  Google Scholar 

  • Buckley BM, Duangsathaporn K, Palakit K, Butler S, Syhapanya V, Xaybouangeun N (2007b) Analyses of growth rings of Pinus merkusii from Lao P.D.R. For Ecol Manage 253:120–127

    Article  Google Scholar 

  • Buckley BM, Anchukaitis KJ, Penny D, Fletcher R, Cook ER, Sano M, Nam LC, Wichienkeeo A, Minh TT, Hong TM (2010) Climate as a contributing factor in the demise of Angkor, Cambodia. PNAS 107:6748–6752

    Article  PubMed  CAS  Google Scholar 

  • Bunyavejchewin S, LaFrankie JV, Baker PJ, Davies SJ, Ashton PS (2009) Forest Trees of Huai Kha Khaeng Wildlife Sanctuary, Thailand. National Parks, Wildlife and Plant Conservation Department, Thailand

    Google Scholar 

  • Chaudhary V, Bhattacharyya A (2002) Suitability of Pinus kesiya in Shillong, Meghalaya for tree-ring analyses. Curr Sci 83:1010–1015

    Google Scholar 

  • Chowdhury KA (1940) The formation of growth rings in Indian trees. Part III, vol II, No. 3, Indian Forest Records

  • Cook ER, Anchukaitis KJ, Buckley BM, D’Arrigo RD, Jacoby GC, Wright WE (2010) Asian Monsoon failure and megadrought during the last millennium. Science 328:486–489

    Article  PubMed  CAS  Google Scholar 

  • Coster C (1927) Zur Anatomie und Physiologie der Zuwachszonen-und Jahresringbildung in den Tropen. Ann Jard Bot Buitenzorg 37:49–161

    Google Scholar 

  • Coster C (1928) Einiges über das Dickenwachstum und die Inhaltsstoffe des Djatistammes, Tectona grandis L.f. Tectona 17:1056–1057

    Google Scholar 

  • D’Arrigo R, Jacoby GC, Krusic PJ (1994) Progress in Dendroclimatic studies in Indonesia. TAO 5(3):349–363

    Google Scholar 

  • D’Arrigo R, Barbetti M, Wattanasak M, Buckley B, Krusic P, Boonchirdchoo S (1997) Progress in dendroclimatic studies of mountain pine in northern Thailand. IAWA J 18(4):433–444

    Google Scholar 

  • D'Arrigo RD, Wilson R, Palmer J, Krusic PJ, Curtis A, Sakulich J, Bijaksana S, Zulaikah S, Ngkoimani LO (2006) Monsoon drought over Java, Indonesia, during the past two centuries. Geophys Res Lett 33, L04709. doi:10.1029/2005GL025465

  • D’Arrigo R, Allan R, Wilson R, Palmer J, Sakulich J, Smerdon JE, Bijaksana S, Ngkoimani LO (2008) Pacific and Indian Ocean climate signals in a tree-ring record of Java monsoon drought. Int J Climatol 28:1889–1901. doi:10.1002/joc.1679

    Article  Google Scholar 

  • D’Arrigo R, Abram N, Ummenhofer C, Palmer J, Mudelsee M (2009) Reconstructed stream flow for Citarum river, Java, Indonesia: linkages to tropical climate dynamics. Clim Dyn. doi:10.1007/s00382-009-0717-2

  • D’Arrigo R, Palmer J, Ummenhofer CC, Kyaw NN, Krusic P (2011) Three centuries of Myanmar monsoon climate variability inferred from teak tree rings. Geophys Res Lett 38:L24705. doi:10.1029/2011GL049927

    Google Scholar 

  • Dahms KG (1989) Das Holzportrait Teak (Tectona grandis L.f., Familie Verbenaceen). Holz als Roh-und Werkstoff 47:81–85

    Article  CAS  Google Scholar 

  • De Boer HJ (1951) Tree-ring measurements and weather fluctuations in Java from A.D. 1514. Kon Ned Akad wetensch 54:194–209

    Google Scholar 

  • Douglass AE (1914) A method of estimating rainfall by the growth of trees. In: The climatic factors. Carnegie Institution, Washington, DC

  • Dünisch O, Bauch J, Sack M, Müller M (1999) Growth dynamics in wood formation of plantation-grown Swietenia macrophylla King and Carapa guianensis. Aubl Mitteilungen der Bundesforschungsanstalt für Forst- und Holzwirtschaft, Hamburg 193:79–96

    Google Scholar 

  • Eckstein D, Ogden J, Jacoby GC, Ash J (1981) Age and growth rate determination in tropical trees: the application of dendrochronological methods, In: Bormann FH, Berlyn G (eds) Age and growth rate of tropical trees. School of Forestry and Environmental Studies, Bull. 94, Yale Univ., New Haven, pp 83–106

  • Eckstein D, Sass U, Baas P (eds) (1995) Growth periodicity in tropical trees. IAWA J 16:323–442

    Google Scholar 

  • Fahn A, Burley J, Longman KA, Mariaux A, Tomlingson PB (1981) Possible contributions of wood anatomy to the determination of the age of tropical trees. In: Bormann FH, Berlyn G (eds) Age and growth rate of tropical trees. School of Forestry and Environmental Studies, Bull. 94, Yale University, New Haven, pp 31–54

  • Fritts HC (1976) Tree rings and climate. Academic Press, London, p 567

    Google Scholar 

  • Fujii T, Salang AT, Fujiwara T (1999) Growth periodicity in relation to the xylem development in three Shorea spp. (Dipterocarpaceae) growing in Sarawak. In: Wimmer R, Vetter RE (eds) Tree-ring analysis: biological, methodological, and environmental aspects. CABI Publishing, Oxon, UK, pp 169–183

    Google Scholar 

  • Geiger F (1915) Anatomische Untersuchungen über die Jahresringbildung von Tectona grandis. Jahrb f Wiss Botanik 55:522–607

    Google Scholar 

  • Gorman CF (1970) Excavation at spirit Cave, north Thailand: some interim interpretation. Asian Perspect 13:79–107

    Google Scholar 

  • Gyi K, Tint K (1998) Natural teak forest management practiced under the Myanmar selection system. http://www.fao.org. Accessed 1 Nov 2011

  • Gyi K, Tint K (1985) Management of natural teak forests in teak for future. In: Proceeding of the second regional seminar on Teak, 249 p. http://www.fao.org/DOCREP/005/AC773E/AC773E00.HTM

  • Huber B (1941) Aufbau einer mitteleuropäischen Jahrringchronologie. Mitt Akad Dtsch Forstwiss 1:110–125

    Google Scholar 

  • Hughes MK (2002) Dendrochronology in climatology-the state of the art. Dendrochronologia 20(1–2):95–116

    Article  Google Scholar 

  • Jacoby GC, D’Arrigo R (1990) Teak (Tectona grandis L.f.), a tropical species of large-scale dendroclimatic potential. Dendrochronologia 8:83–98

    Google Scholar 

  • Killman W, Thong HL (1995) The periodicity of growth in tropical trees with special reference to Dipterocarpaceae—a review. IWAW J 16(4):329–335

    Google Scholar 

  • Kyaw NN (2003) Site influence on growth and phenotype of teak (Tectona grandis Linn.f.) in natural forests of Myanmar. Dissertation, University of Göttingen, 163 p

  • Lamprecht H (1986) Waldbau in den Tropen. Parey-Verl, Hamburg-Berlin, pp 287–290

    Google Scholar 

  • Liese W (1986) To the memory of Sir Dietrich Brandis. Indian For 112:639–644

    Google Scholar 

  • Linasmita V (2004) Seasonal variation on cambial activity of Pinus kesiya in Doi Khun Tan National Park, Thailand. Unpublished master’s thesis, Mahidol University. Nakhon Pathom, Thailand

  • Loader NJ, Walsh RPD, Robertson I, Bidin K, Ong RC, Reynolds G, McCarroll D, Gegan M, Young GHF (2011) Recent trend in the intrinsic water-use efficiency of ringless rainforest trees in Borneo. Phi Trans R Soc B 366(1582):3330–3339

    Article  CAS  Google Scholar 

  • Managave SR, Sheshshayee MS, Borgaonka HP, Ramesh R (2010) Intra-annual oxygen isotope variations in central Indian teak cellulose: possibility of improved resolution for past monsoon reconstruction. Curr Sci 98(7):930–937

    CAS  Google Scholar 

  • Managave SR, Sheshshayee MS, Ramesh R, Borgaonkar HP, Shah SK, Bhattacharyya A (2011) Response of cellulose oxygen isotope values of teak trees in differing monsoon environments to monsoon rainfall. Dendrochronologia 29:89–97

    Article  Google Scholar 

  • Mariaux A (1967) Tree-rings in tropical woods. Bois et Forêts des Tropiques 113:3–14

    Google Scholar 

  • Mariaux A (1976) The nature and periodicity of tree-rings in Samba wood. Bois et Forêts des Tropiques 169:29–35

    Google Scholar 

  • Mariaux A (1995) Growth periodicity in tropical trees. IAWA J 16(4):327–328

    Google Scholar 

  • Murphy JO, Whetton PH (1989) A re-analysis of tree ring chronology from Java. Proc Kon Ned Akad Wetensch 92:241–257

    Google Scholar 

  • Nobuchi T, Ogata Y, Siripatanadilok S (1995) Seasonal characteristics of wood formation in Hopea odorata and Shorea henryana. IAWA J 16:361–369

    Google Scholar 

  • Nock CA, Baker P, Wanek W, Leis A, Grabner M, Bunyavejchewin S, Hietz P (2010) Long-term increases stem growth in a tropical monsoon forest in western Thailand. Global Change Biol 1–14. doi:10.1111/j.1365-2486.2010.02222.x

  • Ohashi S, Okada N, Nobochi T, Siripatanadilok S, Veenin T (2009) Detecting invisible growth rings of trees in seasonally dry forests in Thailand: isotopic and wood anatomical approaches. Trees 23:813–822

    Article  Google Scholar 

  • Palakit K (2004) Dendroclimatological studies of Teak (Tectona grandis L.): a case study in Mae Hong Son province, Thailand. Unpublished master’s thesis, Mahidol University, Nakorn Pathom, Thailand

  • Palmer JG, Murphy JO (1993) An extended tree ring chronology (teak) from Java. Proc Kon Ned Akad Wetensch 96:27–41

    Google Scholar 

  • Pant GB, Borgaonkar HP (1983) Growth rings of teak trees and regional climatology. In: Singh LR, Singh S, Tiwari RC, Srivastava RP (eds) Environmental management. The Allahabad Geographical Society, Department of Geography, University of Allahabad, India, pp 154–158

    Google Scholar 

  • Poussart PM, Schrag DP (2005) Seasonally resolved stable isotope chronologies from northern Thailand deciduous trees. Earth Planet Sci Lett 235:752–765

    Article  CAS  Google Scholar 

  • Poussart PM, Evans MN, Schrag DP (2004) Resolving seasonality in tropical trees: multi-decade, high-resolution oxygen and carbon isotope records from Indonesia and Thailand. Earth Planet Sci Lett 218:301–316

    Article  CAS  Google Scholar 

  • Poussart PM, Myneni SCB, Lanzirotti A (2006) Tropical dendrochemistry: a novel approach to estimate age and growth from ringless trees. Geophys Res Lett 33:L17711. doi:10.1029/2006GL026929

    Article  Google Scholar 

  • Pumijumnong N (1995) Dendrochrnologie mit Teak (Tectona grandis L.) in Nord-Thailand. Dissertation, Universität Hamburg, 109 p

  • Pumijumnong N, Eckstein D (2010) Reconstruction of pre-monsoon weather conditions in northwest Thailand from the tree-ring widths of Pinus merkusii and Pinus kesiya. Trees 25(1):125–132

    Article  Google Scholar 

  • Pumijumnong P, Park W-K (1999) Vessel Chronologies from Teak in Northern Thailand and their Climate Signal. IAWA J 20(3):285–294

    Google Scholar 

  • Pumijumnong N, Park W-K (2001) Teak vessel chronologies as an indicator of Southeast Asian Pre-monsoon temperature. Palaobotanist 50:21–26

    Google Scholar 

  • Pumijumnong N, Wanyaphet T (2006) Seasonal cambial activity and tree-ring formation of Pinus merkusii and Pinus kesiya in Northern Thailand in dependence on climate. For Ecol Manage 226:279–289

    Article  Google Scholar 

  • Pumijumnong N, Eckstein D, Sass U (1995a) Tree-Ring research on Tectona grandis in Northern Thailand. IAWA J 16(4):385–392

    Google Scholar 

  • Pumijumnong N, Eckstein D, Sass U (1995b) Reconstruction of rainfall in northern Thailand from tree-ring series of teak. IGBP-PAGES/PEP-II Symposium on Paleoclimate and environment variability in Austral-Asian transect during the past 2000 years, Nov 28–Dec 1, 1995, Nagoya Japan, pp 186–191

  • Pumijumnong N, Eckstein D, Park W-K (2001) Teak tree-ring chronologies in Myanmar—a first attempt. Palaeobotanist 50:35–40

    Google Scholar 

  • Ram S, Borgaonkar HP, Sikder AB (2008) Tree-ring analysis of Teak (Tectona grandis L.F.) in central India and its relationship with rainfall. J Earth Syst Sci 117(5):637–645

    Article  Google Scholar 

  • Rao KS, Dave YS (1981) Seasonal variations in the cambial anatomy of Tectona grandis (Verbenaceae). Nord J Bot 1:535–542

    Article  Google Scholar 

  • Roberts C (2011) Regional and identity: the many faces of Southeast Asia. Asian Politics Policy 3(3):365–382

    Article  Google Scholar 

  • Rozendaal DMA, Zuidema PA (2011) Dendroecology in the tropics: a review. Trees 25:3–16

    Article  Google Scholar 

  • Sano M, Buckley BM, Sweda T (2009) Tree-ring based hydroclimate reconstruction over northern Vietnam from Fokienia hodginsii: eighteenth century mega-drought and tropical Pacific influence. Clim Dyn 33:331–340

    Article  Google Scholar 

  • Sass U, Killman W, Eckstein D (1995) Wood formation in two species of Dipterocarpaceae in Peninsular Malaysia. IAWA J 16(4):371–384

    Google Scholar 

  • Shah SK, Bhattacharyya A, Chaudhary V (2007) Reconstruction of June-September precipitation based on tree-ring data of teak (Tectona grandis L.) from Hoshangabad, Madhya Pradesh, India. Dendrochronologia 25:57–64

    Article  Google Scholar 

  • Shiokura T (1989) A method to measure radial increment in tropical trees. IAWA Bull 10:147–154

    Google Scholar 

  • Sørensen P (1973) Prehistoric iron implements from Thailand. Asian perspective XVII (2). The university press, Hong Kong

    Google Scholar 

  • Suwanpatra K (2006) Seasonal variation in cambial activity of Podocarpus neriifolius at Khao Yai National Park. Unpublished master’s thesis, Mahidol University, Nakhon Pathom, Thailand

  • Tiwary M (2003) Fluid boundaries of India’s forests: concessions and conflicts in joint forest management in Bihar and west Bengal, India. UNU/IAS working paper no 104: 48 p

  • Troup RS (1921) Silviculture of Indian trees, vol 2. Clarendon Press, Oxford, pp 337–783

    Google Scholar 

  • Truyen NP, Osborn T (eds) (2006) Report on the trade and utilization of Fokienia hodginsii in Lao Cai and son La provinces, north Vietnam. Fauna and Flora International. Vietnam conservation Support Programme, Vietnam, p 117

    Google Scholar 

  • Venugopal N, Krishnamurthy KV (1987) Seasonal production of secondary xylem in the twigs of certain tropical trees. IAWA Bull 8:31–40

    Google Scholar 

  • Wahl ER, Morrill C (2010) Toward understanding and predicting monsoon patterns. Science 328:437–438

    Article  PubMed  CAS  Google Scholar 

  • Waisel Y, Fahn A (1965) The effect of environment on wood formation and cambial activity in Robinia pseudoacacia L. New Phytol 64:436–442

    Article  Google Scholar 

  • Wannasri S, Pumijumnong N, Shoocongdej R (2007) Teak log coffin head styles in Northern Thailand: time sequencing with dendrochronology. Sci Asia 33:47–56

    Article  Google Scholar 

  • Williams LJ, Bunyavejchewin S (2008) Deciduousness in a seasonal tropical forest in western Thailand: interannual and intraspecific variation in timing, duration and environmental cues. Oecologia 155:571–582

    Article  PubMed  Google Scholar 

  • Worbes M (1983) Vegetationskundliche Untersuchungen zweier Überschwemmungswälder in Zentralamazonien. Amazoniana 8:47–65

    Google Scholar 

  • Worbes M (1984) Periodische Zuwachszonen an Bäumen zentralamazonischer Überschwemmungswälder. Naturewissenschaften 71:157–158

    Article  Google Scholar 

  • Worbes M (1986) Lebenbedingungen und Holzwachstum in zentralamazonischen Überschwemmungswälder. Scripta Geobotanica 17:1–112

    Google Scholar 

  • Worbes M (1989) Growth rings and age of trees in inundation forest, savannas and a mountain forest in the Neotropic. IAWA Bull 10:109–122

    Google Scholar 

  • Xu C, Sano M, Nakatsuka T (2011) Tree-ring cellulose δ18O of Fokienia hodginsii in Northern Laos: a promising proxy to reconstruct ENSO? J Geophys Res 116:D 24109. doi:10.1029/2011JD016694

  • Zimmer H, Baker P (2009) Climate and historical stand dynamics in the tropical pine forests of northern Thailand. For Ecol Manage 257:190–198

    Article  Google Scholar 

Download references

Acknowledgments

The authors wish to express their thanks for the support received from Mahidol University. We are deeply thankful to Prof. Dr. Achim Bräuning, Friedrich-Alexander Universität Erlangen-Nürnberg, Germany, for the critique of our review. We also thank the anonymous referees for their valuable input and criticism regarding the manuscript.

Author information

Authors and Affiliations

Authors

Corresponding author

Correspondence to Nathsuda Pumijumnong.

Additional information

Communicated by A. Braeuning.

Special topic: Dendroecology in Asia.

Rights and permissions

Reprints and permissions

About this article

Cite this article

Pumijumnong, N. Dendrochronology in Southeast Asia. Trees 27, 343–358 (2013). https://doi.org/10.1007/s00468-012-0775-7

Download citation

  • Received:

  • Revised:

  • Accepted:

  • Published:

  • Issue Date:

  • DOI: https://doi.org/10.1007/s00468-012-0775-7

Keywords

Navigation