請用此 Handle URI 來引用此文件:
http://tdr.lib.ntu.edu.tw/jspui/handle/123456789/98866完整後設資料紀錄
| DC 欄位 | 值 | 語言 |
|---|---|---|
| dc.contributor.advisor | 關秉宗 | zh_TW |
| dc.contributor.advisor | Biing T. Guan | en |
| dc.contributor.author | 周聿筠 | zh_TW |
| dc.contributor.author | Yu-Yun Chou | en |
| dc.date.accessioned | 2025-08-20T16:05:05Z | - |
| dc.date.available | 2025-08-21 | - |
| dc.date.copyright | 2025-08-20 | - |
| dc.date.issued | 2025 | - |
| dc.date.submitted | 2025-08-12 | - |
| dc.identifier.citation | 中文文獻
康仲霖 (2020)。以棲蘭山區臺灣扁柏樹輪最大密度重建過往800年溫度。國立臺灣大學森林環境暨資源學研究所 碩士論文。 張世振 (2008)。臺灣西南部大武山氣候對樹輪寬度之影響。輔英科技大學環境工 程與科學系 碩士論文。 黃聖焜 (2013)。應用樹輪生態學方法重建臺灣中部塔塔加地區臺灣雲杉林分動態。國立臺灣大學森林環境暨資源學研究所 碩士論文。 詹明勳、王亞男、葉永廉 (2005)。台灣中部塔塔加地區台灣雲杉樹輪氣候學研究過去245年氣溫與降雨量趨勢。中華林學季刊,38(1),67–82。 齊元義 (2024)。以塔塔加地區臺灣雲杉樹輪最大密度重建過往300年溫度。國立臺灣大學森林環境暨資源學系碩士論文。 陳姿彤 (2011)。以臺灣中部雲杉樹輪重建三百年古氣候: 利用傳統樹輪及總體經驗模態分解法。國立臺灣大學地質科學研究所 碩士論文。 蔣麗雪 (2011)。臺灣中部威氏帝杉樹輪寬變化與當地氣候及中太平洋海面溫度之關係。國立臺灣大學森林環境暨資源學研究所 碩士論文。 蕭英倫、林世宗、王國鼎、柯淳涵 (2007)。環山地區台灣二葉松地面松針分解動態變化。中華林學季刊,40(2),185–196。 鄭可風 (2020)。以臺灣黃杉早材重建過去200年來七家灣溪溪流量。國立臺灣大學森林環境暨資源學研究所 碩士論文。 英文文獻 Abe, H., & Nakai, T. (1999). Effect of the water status within a tree on tracheid morphogenesis in Cryptomeria japonica D. Don. Trees, 14, 124–129. doi:10.1007/PL00009758 Abe, H., Nakai, T., Utsumi, Y., & Kagawa, A. (2003). Temporal water deficit and wood formation in Cryptomeria japonica. Tree Physiology, 23(12), 859–863. doi:10.1093/treephys/23.12.859 Agapova, V. V., Arzac, A., Kukarskih, V. V., Büntgen, U., Esper, J., & Kirdyanov, A. V. (2024). Tree-ring blue intensity measurements from treeline sites in the Ural Mountains exhibit a strong summer temperature signal. Dendrochronologia, 88, 126267. doi:10.1016/j.dendro.2024.126267 Battipaglia, G., Campelo, F., Vieira, J., Grabner, M., De Micco, V., Nabais, C., Cherubini, P., Carrer, M., Bräuning, A., Čufar, K., Di Filippo, A., García-González, I., Koprowski, M., Klisz, M., Kirdyanov, A. V., Zafirov, N., & De Luis, M. (2016). Structure and Function of intra-annual density fluctuations: mind the gaps. Frontiers in Plant Science, 7. doi:10.3389/fpls.2016.00595 Battipaglia, G., De Micco, V., Brand, W. A., Linke, P., Aronne, G., Saurer, M., & Cherubini, P. (2010). Variations of vessel diameter and δ13 C in false rings of Arbutus unedo L. reflect different environmental conditions. New Phytologist, 188(4), 1099–1112. doi:10.1111/j.1469-8137.2010.03443.x Battipaglia, G., De Micco, V., Brand, W. A., Saurer, M., Aronne, G., Linke, P., & Cherubini, P. (2014). Drought impact on water use efficiency and intra‐annual density fluctuations in Erica arborea on Elba (Italy). Plant, Cell & Environment, 37(2), 382–391. doi:10.1111/pce.12160 Battipaglia, G., Kabala, J. P., Pacheco-Solana, A., Niccoli, F., Bräuning, A., Campelo, F., Cufar, K., De Luis, M., De Micco, V., Klisz, M., Koprowski, M., Garcia-Gonzalez, I., Nabais, C., Vieira, J., Wrzesiński, P., Zafirov, N., & Cherubini, P. (2023). Intra-annual density fluctuations in tree rings are proxies of air temperature across Europe. Scientific Reports, 13(1), 12294. doi:10.1038/s41598-023-39610-8 Bouriaud, O., Leban, J.-M., Bert, D., & Deleuze, C. (2005). Intra-annual variations in climate influence growth and wood density of Norway spruce. Tree Physiology, 25(6), 651–660. doi:10.1093/treephys/25.6.651 Briffa, K., & Jones, P. (1990). Basic chronology statistics and assessment. In E. Cook & L. Kairiukstis (Eds.), Methods of Dendrochronology: Applications in the Environmental Sciences (pp. 137–152). Kluwer Academic Publishers. Briffa, K. R., Jones, P. D., Bartholin, T. S., Eckstein, D., Schweingruber, F. H., Karlén, W., Zetterberg, P., & Eronen, M. (1992). Fennoscandian summers from ad 500: Temperature changes on short and long timescales. Climate Dynamics, 7(3), 111–119. doi:10.1007/BF00211153 Briffa, K. R., & Osborn, T. J. (1999). Seeing the wood from the trees. Science, 284(5416), 926–927. doi:10.1126/science.284.5416.926 Briffa, K. R., Osborn, T. J., Schweingruber, F. H., Harris, I. C., Jones, P. D., Shiyatov, S. G., & Vaganov, E. A. (2001). Low‐frequency temperature variations from a northern tree ring density network. Journal of Geophysical Research: Atmospheres, 106(D3), 2929–2941. doi:10.1029/2000JD900617 Brubaker, L. B. (1980). Spatial patterns of tree growth anomalies in the Pacific Northwest. Ecology, 61(4), 798–807. doi:10.2307/1936750 Bunn, A. G. (2008). A dendrochronology program library in R (dplR). Dendrochronologia, 26(2), 115–124. doi:10.1016/j.dendro.2008.01.002 Büntgen, U., Frank, D., Trouet, V., & Esper, J. (2010). Diverse climate sensitivity of Mediterranean tree-ring width and density. Trees, 24, 261–273. doi:10.1007/s00468-009-0396-y Buras, A. (2017). A comment on the expressed population signal. Dendrochronologia, 44, 130–132. doi:10.1016/j.dendro.2017.03.005 Buttò, V., Peltier, D. M. P., & Rademacher, T. (2025). From division to ‘divergence’: to understand wood growth across timescales, we need to (learn to) manipulate it. New Phytologist, 245(6), 2393–2401. doi:10.1111/nph.20390 Campelo, F., Nabais, C., Freitas, H., & Gutiérrez, E. (2007). Climatic significance of tree-ring width and intra-annual density fluctuations in Pinus pinea from a dry Mediterranean area in Portugal. Annals of Forest Science, 64(2), 229–238. doi:10.1051/forest:2006107 Campelo, F., Vieira, J., Battipaglia, G., De Luis, M., Nabais, C., Freitas, H., & Cherubini, P. (2015). Which matters most for the formation of intra-annual density fluctuations in Pinus pinaster: age or size? Trees, 29(1), 237–245. doi:10.1007/s00468-014-1108-9 Campelo, F., Vieira, J., & Nabais, C. (2013). Tree-ring growth and intra-annual density fluctuations of Pinus pinaster responses to climate: does size matter? Trees, 27(3), 763–772. doi:10.1007/s00468-012-0831-3 Carrer, M., & Urbinati, C. (2004). Age-dependent tree-ring growth responses to climate in Larix decidua and Pinus cembra. Ecology, 85(3), 730–740. doi:10.1890/02-0478 Cherubini, P., Gartner, B. L., Tognetti, R., Bräker, O. U., Schoch, W., & Innes, J. L. (2003). Identification, measurement and interpretation of tree rings in woody species from Mediterranean climates. Biological Reviews, 78(1), 119–148. doi:10.1017/S1464793102006000 Cleaveland, M. K. (1986). Climatic response of densitometric properties in semiarid site tree rings. Tree-Ring Bulletin, 46, 13–29. Cook, E. R., Bird, T., Peterson, M., Barbetti, M., Buckley, B., D’Arrigo, R., & Francey, R. (1992). Climatic change over the last millennium in Tasmania reconstructed from tree-rings. The Holocene, 2(3), 205–217. doi:10.1177/095968369200200302 Cook, E. R., Briffa, K. R., Meko, D. M., Graybill, D. A., & Funkhouser, G. (1995). The “segment length curse” in long tree-ring chronology development for palaeoclimatic studies. The Holocene, 5(2), 229–237. doi:10.1177/095968369500500211 Cook, E. R., Meko, D. M., Stahle, D. W., & Cleaveland, M. K. (1999). Drought reconstructions for the continental United States. Journal of Climate, 12(4), 1145–1162. doi:10.1175/1520-0442(1999)012<1145:DRFTCU>2.0.CO;2 Cook, E.R., Peters, K. 1981. The smoothing spline: a new approach to standardizing forest interior tree-ring width series for dendroclimatic studies. Tree-Ring Bulletin, 41, 45–53. Copenheaver, C. A., Pokorski, E. A., Currie, J. E., & Abrams, M. D. (2006). Causation of false ring formation in Pinus banksiana: a comparison of age, canopy class, climate and growth rate. Forest Ecology and Management, 236(2–3), 348–355. doi:10.1016/j.foreco.2006.09.013 Correa-Díaz, A., Gomez-Guerrero, A., Vargas-Hernández, J. J., Rozenberg, P., & Horwath, W. R. (2020). Long-term wood micro-density variation in alpine forests at Central México and their spatial links with remotely sensed information. Forests, 11(4), 452. doi:10.3390/f11040452 Correia, I., Almeida, M. H., Aguiar, A., Alia, R., David, T. S., & Pereira, J. S. (2008). Variations in growth, survival and carbon isotope composition (δ13C) among Pinus pinaster populations of different geographic origins. Tree Physiology, 28(10), 1545–1552. doi:10.1093/treephys/28.10.1545 Croudace, I. W., Rindby, A., & Rothwell, R. G. (2006). ITRAX: Description and evaluation of a new multi-function X-ray core scanner. Geological Society, London, Special Publications, 267(1), 51–63. doi:10.1144/GSL.SP.2006.267.01.04 D’Arrigo, R. D., Cook, E. R., Jacoby, G. C., & Briffa, K. R. (1993). NAO and sea surface temperature signatures in tree-ring records from the North Atlantic sector. Quaternary Science Reviews, 12(6), 431–440. doi:10.1016/0277-3791(93)90096-T D’Arrigo, R., Jacoby, G., Frank, D., Pederson, N., Cook, E., Buckley, B., Nachin, B., Mijiddorj, R., & Dugarjav, C. (2001). 1738 years of Mongolian temperature variability inferred from a tree‐ring width chronology of Siberian pine. Geophysical Research Letters, 28(3), 543–546. doi:10.1029/2000GL011845 De Luis, M., Gričar, J., Čufar, K., & Raventós, J. (2007). Seasonal dynamics of wood formation in Pinus halepensis from dry and semi-arid ecosystems in Spain. IAWA Journal, 28(4), 389–404. doi:10.1163/22941932-90001651 De Luis, M., Novak, K., Čufar, K., & Raventós, J. (2009). Size mediated climate–growth relationships in Pinus halepensis and Pinus pinea. Trees, 23, 1065–1073. doi:10.1007/s00468-009-0349-5 De Luis, M., Novak, K., Raventós, J., Gričar, J., Prislan, P., & Čufar, K. (2011). Climate factors promoting intra-annual density fluctuations in Aleppo pine (Pinus halepensis) from semiarid sites. Dendrochronologia, 29(3), 163–169. doi:10.1016/j.dendro.2011.01.005 De Micco, V., Battipaglia, G., Brand, W. A., Linke, P., Saurer, M., Aronne, G., & Cherubini, P. (2012). Discrete versus continuous analysis of anatomical and δ13C variability in tree rings with intra-annual density fluctuations. Trees, 26, 513–524. doi:10.1007/s00468-011-0612-4 De Micco, V., Battipaglia, G., Cherubini, P., & Aronne, G. (2014). Comparing methods to analyse anatomical features of tree rings with and without intra-annual density fluctuations (IADFs). Dendrochronologia, 32(1), 1–6. doi:10.1016/j.dendro.2013.06.001 De Micco, V., Campelo, F., De Luis, M., Bräuning, A., Grabner, M., Battipaglia, G., & Cherubini, P. (2016). Intra-annual density fluctuations in tree rings: how, when, where and why? IAWA Journal, 37(2), 232–259. doi:10.1163/22941932-20160132 Denne, M. P. (1989). Definition of Latewood According to Mork (1928). IAWA Journal, 10(1), 59–62. doi:10.1163/22941932-90001112 Dobbertin, M. K., & Grissino-Mayer, H. D. (2004). The online bibliography of dendrochronology. Dendrochronologia, 21(2), 85–90. doi:10.1078/1125-7865-00042 Dorado Liñán, I., Gutiérrez, E., Heinrich, I., Andreu-Hayles, L., Muntán, E., Campelo, F., & Helle, G. (2012). Age effects and climate response in trees: a multi-proxy tree-ring test in old-growth life stages. European Journal of Forest Research, 131, 933–944. doi:10.1007/s10342-011-0566-5 Douglass, A. E. (1917). Climatic records in the trunks of trees. American Forestry 23(288): 732–735. Du, S., Yamanaka, N., Yamamoto, F., Otsuki, K., Wang, S., & Hou, Q. (2007). The effect of climate on radial growth of Quercus liaotungensis forest trees in Loess Plateau, China. Dendrochronologia, 25(1), 29–36. doi:10.1016/j.dendro.2007.01.005 Esper, J., Cook, E. R., & Schweingruber, F. H. (2002). Low-Frequency signals in long tree-ring chronologies for reconstructing past temperature variability. Science, 295(5563), 2250–2253. doi:10.1126/science.1066208 Esper, J., Niederer, R., Bebi, P., & Frank, D. (2008). Climate signal age effects—evidence from young and old trees in the Swiss Engadin. Forest Ecology and Management, 255(11), 3783–3789. doi:10.1016/j.foreco.2008.03.015 Fritts, H. (1976). Tree Rings and Climate. Academic Press. New York. 567p. Fritts, H. C., Blasing, T. J., Hayden, B. P., & Kutzbach, J. E. (1971). Multivariate techniques for specifying tree-growth and climate relationships and for reconstructing anomalies in paleoclimate. Journal of Applied Meteorology and Climatology, 10(5), 845–864. doi:10.1175/1520-0450(1971)010<0845:MTFSTC>2.0.CO;2 Gao, J., Rossi, S., & Yang, B. (2021). Origin of intra-annual density fluctuations in a semi-arid area of northwestern China. Frontiers in Plant Science, 12, 777753. doi:10.3389/fpls.2021.777753 Grissino Mayer, H. D., & Swetnam, T. W. (2000). Century scale climate forcing of fire regimes in the American Southwest. The Holocene, 10(2), 213–220. doi:10.1191/095968300668451235 Grudd, H. (2008). Torneträsk tree-ring width and density ad 500–2004: a test of climatic sensitivity and a new 1500-year reconstruction of north Fennoscandian summers. Climate Dynamics, 31(7–8), 843–857. doi:10.1007/s00382-007-0358-2 Guan, B. T., Wright, W. E., & Cook, E. R. (2018a). Ensemble empirical mode decomposition as an alternative for tree-ring chronology development. Tree-Ring Research, 74(1), 28–38. doi:10.3959/1536-1098-74.1.28 Guan, B. T., Wright, W. E., Chiang, L.-H., & Cook, E. R. (2018b). A dry season streamflow reconstruction of the critically endangered Formosan landlocked salmon habitat. Dendrochronologia, 52, 152–161. doi:10.1016/j.dendro.2018.10.008 Hansen, J., & Beck, E. (1994). Seasonal changes in the utilization and turnover of assimilation products in 8-year-old Scots pine (Pinus sylvestris L.) trees. Trees, 8, 172–182. Harris, I., Osborn, T. J., Jones, P., & Lister, D. (2020). Version 4 of the CRU TS monthly high-resolution gridded multivariate climate dataset. Scientific Data, 7(1), 109. doi:10.1038/s41597-020-0453-3 Hayes, M. J., Svoboda, M. D., Wilhite, D. A., & Vanyarkho, O. V. (1999). Monitoring the 1996 Drought using the standardized precipitation index. Bulletin of the American Meteorological Society, 80(3), 429–438. doi:10.1175/1520-0477(1999)080<0429:MTDUTS>2.0.CO;2 Helama, S., Holopainen, J., Fuentes, M., Rocha, E., & Gunnarson, B. E. (2025). Boreal temperature variability inferred from latewood maximum density and historical plant phenology records. Estonian journal of earth sciences, 74(2), 83–95. Hirschboeck, K. K., Ni, F., Wood, M.L. & Woodhouse, C.A. (1996). Synoptic dendroclimatology: Overview and outlook. Tree Rings, Environment, and Humanity, 205–223. Hoffer, M., & Tardif, J. C. (2009). False rings in jack pine and black spruce trees from eastern Manitoba as indicators of dry summers. Canadian Journal of Forest Research, 39(9), 1722-1736. doi:10.1139/x09-088 Huang, J.-G., & Zhang, Q.-B. (2007). Tree rings and climate for the last 680 years in Wulan area of northeastern Qinghai-Tibetan Plateau. Climatic Change, 80(3–4), 369–377. doi:10.1007/s10584-006-9135-1 Huang, W. R., Wang, S. Y. S., & Guan, B. T. (2018). Decadal fluctuations in the western Pacific recorded by long precipitation records in Taiwan. Climate Dynamics, 50(5), 1597-1608. doi:10.1007/s00382-017-3707-9 IPCC, 2023: Summary for Policymakers. In: Climate Change 2023: Synthesis Report. Contribution of Working Groups I, II and III to the Sixth Assessment Report of the Intergovernmental Panel on Climate Change [Core Writing Team, H. Lee and J. Romero (eds.)]. IPCC, Geneva, Switzerland, pp. 1–34. doi:10.59327/IPCC/AR6-9789291691647.001 Jayawickrama, K. J., McKeand, S. E., Jett, J. B., & Wheeler, E. A. (1997). Date of earlywood-latewood transition in provenances and families of loblolly pine, and its relationship to growth phenology and juvenile wood specific gravity. Canadian Journal of Forest Research, 27(8), 1245–1253. doi:10.1139/x97-091 Kaennel, M., & Schweingruber, F. H. (1995). Multilingual glossary of dendrochronology. WSL FNP, Haupt, 133, 162–184. Lacointe, A. (2000). Carbon allocation among tree organs: a review of basic processes and representation in functional-structural tree models. Annals of Forest Science, 57(5), 521–533. doi:10.1051/forest:2000139 LaMarche, V. J., Holmes, R. L., Dunwiddie, P. W., & Drew, L. G. (1979). Tree-ring Chronologies of the Southern Hemisphere. 305p. LaMarche Jr, V. C., & Fritts, H. C. (1971). Anomaly patterns of climate over the western United States, 1700–1930, derived from principal component analysis of tree-ring data. Monthly Weather Review, 99(2), 138–142. doi:10.1175/1520-0493(1971)099<0138:APCOTW>2.3.CO;2 Lebourgeois, F. (2000). Climatic signals in earlywood, latewood and total ring width of Corsican pine from western France. Annals of Forest Science, 57(2), 155–164. doi:10.1051/forest:2000166 Luckman, B. H. (2000). The little ice age in the Canadian Rockies. Geomorphology, 32(3–4), 357–384. doi:10.1016/S0169-555X(99)00104-8 Lupi, C., Morin, H., Deslauriers, A., & Rossi, S. (2010). Xylem phenology and wood production: resolving the chicken‐or‐egg dilemma. Plant, Cell & Environment, 33(10), 1721–1730. doi:10.1111/j.1365-3040.2010.02176.x Luukko, P. J., Helske, J., & Räsänen, E. (2016). Introducing libeemd: a program package for performing the ensemble empirical mode decomposition. Computational Statistics, 31, 545–557. doi:10.1007/s00180-016-0659-2 Mann, M. E., Bradley, R. S., & Hughes, M. K. (1998). Global-scale temperature patterns and climate forcing over the past six centuries. Nature, 392(6678), 779–787. doi:10.1038/33859 Marchand, N., & Filion, L. (2012). False rings in the white pine (Pinus strobus) of the Outaouais Hills, Québec (Canada), as indicators of water stress. Canadian Journal of Forest Research, 42(1), 12–22. doi:10.1139/x11-151 Maurya, R. S., Misra, K. G., Vishwakarma, S., Singh, V., Misra, S., & Yadava, A. K. (2023). Analyses of intra-annual density fluctuation signals in Himalayan cedar trees from Himachal Pradesh, western Himalaya, India, and its relationship with apple production. Frontiers in Forests and Global Change, 6, 1243352. doi:10.3389/ffgc.2023.1243352 McKee, T. B., Doesken, N. J., & Kleist, J. (1993). The relationship of drought frequency and duration to time scales. In Proceedings of the 8th Conference on Applied Climatology, 17(22), 179–183. Medlyn, B. E., Loustau, D., & Delzon, S. (2002). Temperature response of parameters of a biochemically based model of photosynthesis. I. Seasonal changes in mature maritime pine (Pinus pinaster Ait.). Plant, Cell & Environment, 25(9), 1155–1165. doi:10.1046/j.1365-3040.2002.00890.x Miller, E. W., Rademacher, T., Fonti, P., Seyednasrollah, B., & Richardson, A. D. (2022). Assessing intra-annual density fluctuations across and along white pine stems. Botany, 100(7), 583-591. doi:10.1139/cjb-2021-0218 Morgan, P., Aplet, G. H., Haufler, J. B., Humphries, H. C., Moore, M. M., & Wilson, W. D. (1994). Historical range of variability: A useful tool for evaluating ecosystem change. Journal of Sustainable Forestry, 2(1–2), 87–111. doi:10.1300/J091v02n01_04 Morino, K., Minor, R. L., Barron-Gafford, G. A., Brown, P. M., & Hughes, M. K. (2021). Bimodal cambial activity and false-ring formation in conifers under a monsoon climate. Tree Physiology, 41(10), 1893-1905. doi:10.1093/treephys/tpab045 Nabais, C., Campelo, F., Vieira, J., & Cherubini, P. (2014). Climatic signals of tree-ring width and intra-annual density fluctuations in Pinus pinaster and Pinus pinea along a latitudinal gradient in Portugal. Forestry, 87(4), 598–605. doi:10.1093/forestry/cpu021 Novak, K., Sánchez, M. A. S., Čufar, K., Raventós, J., & De Luis, M. (2013). Age, climate and intra-annual density fluctuations in Pinus halepensis in Spain. IAWA Journal, 34(4), 459–474. doi:10.1163/22941932-00000037 Paiva, J. A. P., Garnier‐Géré, P. H., Rodrigues, J. C., Alves, A., Santos, S., Graça, J., Le Provost, G., Chaumeil, P., Da Silva‐Perez, D., Bosc, A., Fevereiro, P., & Plomion, C. (2008). Plasticity of maritime pine (Pinus pinaster) wood‐forming tissues during a growing season. New Phytologist, 179(4), 1180–1194. doi:10.1111/j.1469-8137.2008.02536.x Richardson, D. M. (Ed.). (2000). Ecology and Biogeography of Pinus. Cambridge University Press. 548p. Rigling, A., Bräker, O., Schneiter, G., & Schweingruber, F. (2002). Intra-annual tree-ring parameters indicating differences in drought stress of Pinus sylvestris forests within the Erico-Pinion in the Valais (Switzerland). Plant Ecology, 163(1), 105–121. doi:10.1023/A:1020355407821 Rigling, A., Waldner, P. O., Forster, T., Bräker, O. U., & Pouttu, A. (2001). Ecological interpretation of tree-ring width and intraannual density fluctuations in Pinus sylvestris on dry sites in the central Alps and Siberia. Canadian Journal of Forest Research, 31(1), 18–31. doi:10.1139/x00-126 Rochner, M. L., Heeter, K. J., Harley, G. L., Bekker, M. F., & Horn, S. P. (2021). Climate-induced treeline mortality during the termination of the Little Ice Age in the Greater Yellowstone Ecoregion, USA. The Holocene, 31(8), 1288–1303. doi:10.1177/09596836211011656 Rossi, S., Deslauriers, A., Anfodillo, T., & Carrer, M. (2008). Age‐dependent xylogenesis in timberline conifers. New Phytologist, 177(1), 199–208. doi:10.1111/j.1469-8137.2007.02235.x Rozas, V., García-González, I., & Zas, R. (2011). Climatic control of intra-annual wood density fluctuations of Pinus pinaster in NW Spain. Trees, 25, 443–453. doi:10.1007/s00468-010-0519-2 Rozenberg, P., Van Loo, J., Hannrup, B., & Grabner, M. (2002). Clonal variation of wood density record of cambium reaction to water deficit in Picea abies (L.) Karst. Annals of Forest Science, 59(5–6), 533–540. doi:10.1051/forest:2002039 Rustemeier Elke, Becker, A., Finger, P., Schneider, U., & Ziese, M. (2020). GPCC Precipitation Climatology Version 2020 at 0.25°: Monthly Land-Surface Precipitation Climatology for Every Month and the Total Year from Rain-Gauges built on GTS-based and Historic Data: Globally Gridded Monthly Totals. Global Precipitation Climatology Centre (GPCC). doi:10.5676/DWD_GPCC/CLIM_M_V2020_025 Schaberg, P. G., Shane, J. B., Cali, P. F., Donnelly, J. R., & Strimbeck, G. R. (1998). Photosynthetic capacity of red spruce during winter. Tree Physiology, 18(4), 271–276. doi:10.1093/treephys/18.4.271 Schoch, C. L., Ciufo, S., Domrachev, M., Hotton, C. L., Kannan, S., Khovanskaya, R., Leipe, D., Mcveigh, R., O’Neill, K., Robbertse, B., Sharma, S., Soussov, V., Sullivan, J. P., Sun, L., Turner, S., & Karsch-Mizrachi, I. (2020). NCBI Taxonomy: A comprehensive update on curation, resources and tools. Database, 2020, baaa062. doi:10.1093/database/baaa062 Schulman, E. (1938). Classification of false annual rings in Monterey pine. Tree-Ring Bulletin, 4(3), 4–7. Schweingruber, F. H. (2012). Tree rings: Basics and Applications of Dendrochronology. Springer Science & Business Media. 276p. doi:10.1007/978-94-007-1173-9 Schweingruber, F. H., Eckstein, D., Serre-Bachet, F., & Bräker, O. U. (1990). Identification, presentation and interpretation of event years and pointer years in dendrochronology. Dendrochronologia, 8, 9–38. Schweingruber, F. H., Fritts, H. C., Bräker, O. U., Drew, L. G., & Schär, E. (1978). The X-ray technique as applied to dendroclimatology. Tree-Ring Bulletin, 38, 61–91. Shah, S. K., 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(1), 57–64. doi:10.1016/j.dendro.2007.02.001 Shi, F., Yang, B., Von Gunten, L., Qin, C., & Wang, Z. (2012). Ensemble empirical mode decomposition for tree-ring climate reconstructions. Theoretical and Applied Climatology, 109(1–2), 233–243. doi:10.1007/s00704-011-0576-8 Singh, N. D., Yadav, R. R., Venugopal, N., Singh, V., Yadava, A. K., Misra, K. G., Singh, T. B., & Sanjita, C. (2016). Climate control on ring width and intra-annual density fluctuations in Pinus kesiya growing in a sub-tropical forest of Manipur, Northeast India. Trees, 30(5), 1711–1721. doi:10.1007/s00468-016-1402-9 Speer, J. H. (2010). Fundamentals of Tree-ring Research. University of Arizona Press. Stockton, C. W., & Meko, D. M. (1975). A long-term history of drought occurrence in Western United States as inferred from tree rings. Weatherwise, 28(6), 244–249. doi:10.1080/00431672.1975.9931775 Stokes, M. A. (1996). An Introduction to Tree-ring Dating. University of Arizona Press. Thomson, J. & Croudace, Ian & Rothwell, R.G. (2006). A geochemical application of the ITRAX scanner to a sediment core containing eastern Mediterranean sapropel units. Geological Society Special Publications, 267, 65-77. doi:10.1144/GSL.SP.2006.267.01.24 Torbenson, M. C. A., Stahle, D. W., Villanueva Díaz, J., Cook, E. R., & Griffin, D. (2016). The relationship between earlywood and latewood ring-growth across North America. Tree-Ring Research, 72(2), 53–66. doi:10.3959/1536-1098-72.02.53 Touchan, R., Akkemik, Ü., Hughes, M. K., & Erkan, N. (2007). May–June precipitation reconstruction of southwestern Anatolia, Turkey during the last 900 years from tree rings. Quaternary Research, 68(2), 196–202. doi:10.1016/j.yqres.2007.03.005 Touchan, R., Garfin, G. M., Meko, D. M., Funkhouser, G., Erkan, N., Hughes, M. K., & Wallin, B. S. (2003). Preliminary reconstructions of spring precipitation in southwestern Turkey from tree‐ring width. International Journal of Climatology, 23(2), 157–171. doi:10.1002/joc.850 Trouet, V., & Van Oldenborgh, G. J. (2013). KNMI Climate Explorer: a web-Based research tool for high-resolution paleoclimatology. Tree-Ring Research, 69(1), 3–13. doi:10.3959/1536-1098-69.1.3 Tucker, C. S., Pearl, J. K., Elliott, E. A., Bregy, J. C., Friedman, J. M., & Therrell, M. D. (2022). Baldcypress false ring formation linked to summer hydroclimatic extremes in the southeastern United States. Environmental Research Letters, 17(11), 114030. doi:10.1088/1748-9326/ac9745 Uggla, C., Magel, E., Moritz, T., & Sundberg, B. (2001). Function and dynamics of auxin and carbohydrates during earlywood/latewood transition in Scots pine. Plant Physiology, 125(4), 2029–2039. doi:10.1104/pp.125.4.2029 Vaganov, E. A., Hughes, M. K., & Shashkin, A. V. (2006). Growth Dynamics of Conifer Tree Rings: Images of Past and Future Environments (Vol. 183). Springer Science & Business Media. 358p. doi:10.1007/3-540-31298-6 Vicente-Serrano, S. M., Beguería, S., & López-Moreno, J. I. (2010). A multiscalar drought index sensitive to global warming: the standardized precipitation evapotranspiration index. Journal of Climate, 23(7), 1696–1718. doi:10.1175/2009JCLI2909.1 Vieira, J., Campelo, F., & Nabais, C. (2009). Age-dependent responses of tree-ring growth and intra-annual density fluctuations of Pinus pinaster to Mediterranean climate. Trees, 23(2), 257–265. doi:10.1007/s00468-008-0273-0 Vieira, J., Campelo, F., & Nabais, C. (2010). Intra-annual density fluctuations of Pinus pinaster are a record of climatic changes in the western Mediterranean region. Canadian Journal of Forest Research, 40(8), 1567–1575. doi:10.1139/X10-096 Villalba, R., & Veblen, T. T. (1996). A tree-ring record of dry spring-wet summer events in the forest-steppe ecotone, northern Patagonia, Argentina. Tree Rings, Environment and Humanity, 107, 116. Webb, G. E. (1983). Tree Rings and Telescopes: The Scientific Career of A.E. Douglass. 242p. University of Arizona Press. Wigley, T. M., Briffa, K. R., & Jones, P. D. (1984). On the average value of correlated time series, with applications in dendroclimatology and hydrometeorology. Journal of Applied Meteorology and Climatology, 23(2), 201–213. doi:10.1175/1520-0450(1984)023<0201:OTAVOC>2.0.CO;2 Wimmer, R., Strumia, G., & Holawe, F. (2000). Use of false rings in Austrian pine to reconstruct early growing season precipitation. Canadian Journal of Forest Research, 30(11), 1691–1697. doi:10.1139/x00-095 Yamaguchi, D. K., Filion, L., & Savage, M. (1993). Relationship of temperature and light ring formation at subarctic treeline and implications for climate reconstruction. Quaternary Research, 39(2), 256–262. doi:10.1006/qres.1993.1023 Zalloni, E., De Luis, M., Campelo, F., Novak, K., De Micco, V., Di Filippo, A., Vieira, J., Nabais, C., Rozas, V., & Battipaglia, G. (2016). Climatic signals from intra-annual density fluctuation frequency in Mediterranean pines at a regional scale. Frontiers in Plant Science, 7, 579. doi:10.3389/fpls.2016.00579 Zhang, S. H., & Romane, F. (1991). Variations de la croissance radiale de Quercus ilex L en fonction du climat. Annales Des Sciences Forestières, 48(2), 225–234. doi:10.1051/forest:19910209 Zhao, Y., Shi, J., Shi, S., Ma, X., Zhang, W., Wang, B., Sun, X., Lu, H., & Bräuning, A. (2019). Early summer hydroclimatic signals are captured well by tree-ring earlywood width in the eastern Qinling Mountains, central China. Climate of the Past, 15(3), 1113–1131. doi:10.5194/cp-15-1113-2019 Zhu, Y., Liu, Y., Wang, W., Singh, V. P., & Ren, L. (2021). A global perspective on the probability of propagation of drought: From meteorological to soil moisture. Journal of Hydrology, 603, 126907. doi:10.1016/j.jhydrol.2021.126907 Zweifel, R., Zimmermann, L., Zeugin, F., & Newbery, D. M. (2006). Intra-annual radial growth and water relations of trees: implications towards a growth mechanism. Journal of Experimental Botany, 57(6), 1445–1459. doi:10.1093/jxb/erj127 | - |
| dc.identifier.uri | http://tdr.lib.ntu.edu.tw/jspui/handle/123456789/98866 | - |
| dc.description.abstract | 在山區生態系統中,季節性乾濕變異對植物生長產生顯著影響。樹輪學提供了高時間解析度的氣候替代資料,其中樹輪年內密度變化 (Intra-annual Density Fluctuation,IADF) 被認為能敏感記錄生長季中的氣候變化。本研究以臺灣中部武陵地區的臺灣二葉松 (Pinus taiwanensis) 為對象,將IADF區分為四種類型,包含IADF-E、IADF-E+、IADF-L及IADF-L+,探討其與乾旱指標之關聯性,以評估IADF作為過往季節性氣候訊號指標的可行性。
本研究共挑選出45根樹芯樣本,建立樹輪寬度及密度資料,記錄並計算IADF穩定化出現頻率 (Stabilized frequency,Fstab)。使用環山與臺中氣象站氣候資料並計算SPI與SPEI指標,再以CRU TS 4.08、GPCC及CSIC SPEI等網格資料分析場域相關性。結果顯示:(1) 臺灣二葉松樹輪密度對最低氣溫最為敏感,樹輪寬度則無明顯相關性;(2) IADF-E的生成與春季短期乾旱有關;IADF-E+與春季至夏季長時段濕潤條件呈正相關;IADF-L則在夏季持續乾旱、秋季突降雨時最易形成;(3) 場域分析再次證實IADF-E+及IADF-L與上述氣候變化的關係,並指出IADF-E+可能對中國華南至臺灣初夏水氣路徑具高靈敏度。 綜合而言,本研究證實臺灣中部地區之臺灣二葉松IADF與季節性乾旱變異的關聯性,指出IADF能作為解析季節尺度乾濕變異的高時間解析度替代資訊。未來可擴展樣本區域,改善IADF判斷的準確度,並結合其他氣候資料,以提升對季節性氣候事件歷史重建的準確性,為森林資源管理與氣候適應策略提供科學依據。 | zh_TW |
| dc.description.abstract | The seasonal alternation between wet and dry conditions has a marked influence on plant growth in mountain ecosystems. Dendrochronology offers high-temporal-resolution climate proxy data, and intra-annual density fluctuations (IADF) within tree rings are regarded as sensitive recorders of climatic variation during the growing season. Focusing on Taiwan red pine (Pinus taiwanensis) in the Wuling area of central Taiwan, this study classified IADF into four types: IADF-E, IADF-E+, IADF-L, and IADF-L+. It examined the relationships between these types and drought indices to evaluate the feasibility of using IADF as indicators of seasonal climate signals.
This study analyzed 45 increment cores, constructing ring width and density datasets, recording IADF values, and then calculated the stabilized frequency (Fstab) of each IADF type. Climate data from the Huanshan and Taichung meteorological stations were employed to derive SPI and SPEI; field correlations were further explored with gridded products such as CRU TS4.08, GPCC, and CSIC SPEI. The results revealed that (1) ring density in P. taiwanensis was highly sensitive to monthly mean of daily minimum temperature, whereas ring width showed no clear climatic relationship; (2) formation of IADF-E was linked to short-term spring drought; IADF-E+ was positively associated with prolonged wet conditions from spring to summer; IADF-L formed most readily when persistent summer drought was followed by abrupt autumn rainfall; and (3) spatial analyses confirmed the connections between IADF-E+/IADF-L and the climate patterns, indicating that IADF-E+ was particularly sensitive to summer moisture transport from South China to Taiwan. In summary, this study substantiates the strong association between IADF in P. taiwanensis and seasonal drought variability in central Taiwan, demonstrating that IADF constitutes a high-resolution proxy for deciphering hydro-climatic fluctuations at the seasonal scale. Future work that expands the sampling area, refines IADF identification, and integrates additional climate data will enhance the accuracy of historical reconstructions of seasonal climate events, supporting forest-resource management and climate-adaptation strategies. | en |
| dc.description.provenance | Submitted by admin ntu (admin@lib.ntu.edu.tw) on 2025-08-20T16:05:05Z No. of bitstreams: 0 | en |
| dc.description.provenance | Made available in DSpace on 2025-08-20T16:05:05Z (GMT). No. of bitstreams: 0 | en |
| dc.description.tableofcontents | 口試委員審定書 i
誌謝 ii 中文摘要 iii Abstract iv 目次 vi 圖次 ix 表次 xii 第一章 緒論 1 1.1 研究背景 1 1.2 研究目的 2 第二章 文獻回顧 3 2.1 樹輪形成 3 2.2 樹輪變異 3 2.3 樹輪年代學基本原理 4 2.4 樹木生長模式 6 2.5 年表建立方式 6 2.6 樹輪氣候學(DENDROCLIMATOLOGY) 8 2.7 全球樹輪氣候學研究發展 9 2.8 臺灣樹輪與氣候研究現況 11 2.9 樹輪密度與氣候的關係 11 2.10 樹輪年內密度變化之概念與分類 12 2.11 乾旱指標 14 2.12 年內密度變化與氣候的關係 16 第三章 材料與方法 18 3.1 研究區域及材料介紹 18 3.1.1 地理位置與基本環境概況 18 3.1.2 研究材料 19 3.1.3 氣候特徵與資料來源 19 3.1.4 全球地表氣象網絡資料 21 3.1.5 環山站與臺中站氣候分析 22 3.2 樣本採集與處理 23 3.2.1 樹輪樣本採集方法 23 3.2.2 樹芯樣本前處理 23 3.2.3 目視定年及樹輪寬度測量 23 3.2.4 統計交叉定年 23 3.2.5 挑選樣本 24 3.2.6 密度掃描前處理 24 3.2.7 樹輪薄片掃描 24 3.3 年表生成與年內密度變化辨識 25 3.3.1 樹輪特徵值資料取得方法 25 3.3.2 年表建立方法 25 3.3.3 分析樹輪與氣候的關係 27 3.3.4 IADF的判讀標準及分類 28 3.3.5 IADF頻率計算 32 3.3.6 分析IADF與輪寬及樹齡之關係 33 3.3.7 分析IADF與氣候之關係 33 第四章 結果 35 4.1 樹輪各特徵值年表 35 4.1.1 樹輪數據 35 4.1.2 各特徵值年表之間的差異 35 4.1.3 寬度年表和氣候的關係 37 4.1.4 密度年表和氣候的關係 40 4.2 年內密度變化出現頻率 44 4.2.1 IADF於樣本出現數量及總出現比例 44 4.2.2 各類型IADF穩定化出現頻率及指標年 45 4.2.3 IADF和樹齡及輪寬的關係 48 4.3 年內密度變化與乾旱指標相關性 50 4.3.1 環山氣象站與臺中氣象站之氣候比較 50 4.3.2 IADF與SPI及SPEI之Spearman相關分析 52 4.3.3 IADF與SPI及SPEI之GLM分析 63 4.3.4 IADF和CRU TS4.08及GPCC降水量場域分析 73 4.3.5 IADF和SPEI場域分析 83 第五章 討論 85 5.1 溫度對輪寬與密度的異質影響 85 5.2 IADF 辨識的不確定性 86 5.3 IADF之空間分布 87 5.4 IADF與樹齡及輪寬的關係 87 5.5 IADF-E與氣候的關係 89 5.6 IADF-E+與氣候的關係 90 5.7 IADF-L與氣候的關係 91 5.8 場域分析突顯夏季水氣路徑 94 第六章 結論 95 參考文獻 96 | - |
| dc.language.iso | zh_TW | - |
| dc.subject | 臺灣二葉松 | zh_TW |
| dc.subject | 季節性氣候波動 | zh_TW |
| dc.subject | 乾旱指標 | zh_TW |
| dc.subject | 樹輪年內密度變化 | zh_TW |
| dc.subject | 樹輪氣候學 | zh_TW |
| dc.subject | Seasonal climate variability | en |
| dc.subject | Tree-ring intra-annual density fluctuation (IADF) | en |
| dc.subject | Dendroclimatology | en |
| dc.subject | Pinus taiwanensis | en |
| dc.subject | Drought index | en |
| dc.title | 臺灣中部武陵地區臺灣二葉松樹輪年內密度變化之季節氣候訊號 | zh_TW |
| dc.title | Seasonal Climate Signals in Tree-ring Intra-annual Density Fluctuations of Pinus taiwanensis in Wuling, Central Taiwan | en |
| dc.type | Thesis | - |
| dc.date.schoolyear | 113-2 | - |
| dc.description.degree | 碩士 | - |
| dc.contributor.oralexamcommittee | 魏國彥;黃婉如;吳奇樺 | zh_TW |
| dc.contributor.oralexamcommittee | Kuo-Yen Wei;Wan-Ru Huang;Chi-Hua Wu | en |
| dc.subject.keyword | 臺灣二葉松,樹輪氣候學,樹輪年內密度變化,乾旱指標,季節性氣候波動, | zh_TW |
| dc.subject.keyword | Pinus taiwanensis,Dendroclimatology,Tree-ring intra-annual density fluctuation (IADF),Drought index,Seasonal climate variability, | en |
| dc.relation.page | 112 | - |
| dc.identifier.doi | 10.6342/NTU202504022 | - |
| dc.rights.note | 同意授權(限校園內公開) | - |
| dc.date.accepted | 2025-08-14 | - |
| dc.contributor.author-college | 生物資源暨農學院 | - |
| dc.contributor.author-dept | 森林環境暨資源學系 | - |
| dc.date.embargo-lift | 2030-08-05 | - |
| 顯示於系所單位: | 森林環境暨資源學系 | |
文件中的檔案:
| 檔案 | 大小 | 格式 | |
|---|---|---|---|
| ntu-113-2.pdf 未授權公開取用 | 10.47 MB | Adobe PDF | 檢視/開啟 |
系統中的文件,除了特別指名其著作權條款之外,均受到著作權保護,並且保留所有的權利。
