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    年輪元素分析系統(tǒng)在中科院寒旱所安裝運(yùn)行

    發(fā)布時(shí)間: 2015-09-09  點(diǎn)擊次數(shù): 2723次

    日前,由北京易科泰生態(tài)技術(shù)有限公司*代理的Multiscanner年輪元素分析系統(tǒng)在寒旱所公共實(shí)驗(yàn)室平臺(tái)完成安裝調(diào)試和使用培訓(xùn),這是目前上功能zui為強(qiáng)大的集X-光密度成像(CT)和XRF元素分析的年輪分析平臺(tái)。  


    MultiScanner年輪元素分析系統(tǒng)同時(shí)采用了XRF元素分析技術(shù)和X-射線(xiàn)數(shù)碼成像技術(shù)(CT),用于樹(shù)木年輪密度和元素分析。可測(cè)量的元素有Al、Si、P、S、Cl、K、Ca、Ti、Cr、Mn、Fe、Ni、Cu、Zn、As、Rb、Sr、Hg、Pb等。其的同類(lèi)產(chǎn)品為用于巖石樣芯、沉積樣芯密度與元素分析的CoreScanner。
    下圖是對(duì)某一年輪樣品CT/XRF分析結(jié)果,包括光學(xué)成像、X-光密度成像(CT,中間的高分辨率黑白圖像)及Ca在不同年輪中的濃度分布(藍(lán)色曲線(xiàn))。


    MultiScanner不僅用于一般的年輪分析和古氣候、環(huán)境變遷等研究分析,Yvonne Fors等在2014年的《Nature》上還發(fā)表了應(yīng)用于海洋考古學(xué)研究的論文“Sulfur and iron accumulation in three marine-archaeological shipwrecks in the Baltic Sea: The Ghost, the Crown and the Sword "
    Colette等(2013)利用MultiScanner對(duì)加拿大不列顛哥倫比亞中西部河流不同樹(shù)木年輪寬度和密度進(jìn)行了分析,并據(jù)此重建了到AD1660年的年輪水文氣候,研究成果發(fā)表在《Hydrological Processes》(Dendrohydroclimate reconstructions of July–August runoff for two nival-regime rivers in west central British Columbia)。
    Charlotte等(2006)利用MultiScanner對(duì)森林樹(shù)木樣品年輪密度及Mn元素和Bi元素進(jìn)行了分析,以揭示氣候變化對(duì)樹(shù)木生長(zhǎng)的影響。研究成果發(fā)表在《Applied Geochemistry》(A dendrochemical study of Pinus sylvestris from Siljansfors Experimental Forest, central Sweden)。 


    下面這則案例則利用Multiscanner研究分析重金屬污染對(duì)樹(shù)木生長(zhǎng)的影響。


    參考文獻(xiàn)
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    2.Frühwald K., Hasenstab A., Osterloh K., Detection of Incipient Decay of Wood with Non- and Minor-Destructive Testing Methods. Nondestructive Testing of Materials and Structures; O. Büyük?ztürk et al. (eds.), DOI 10.1007/978-94-007-0723-8_51
    3.Luostarinen K., Her?j?rvi H., Relation of arabinogalactans to density, growth rate and shear strength in wood of c*ted Siberian larch. Eur. J. Wood Prod. (2013) 71: p29–36, DOI 10.1007/s00107-012-0651-6
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    5.Starheim C.C.A., Smith D.J., Prowse T.D., Dendrohydroclimate reconstructions of July–August runoff for two nival-regime rivers in west central British Columbia. Hydrol. Process. 27, 405–420 (2013) (2012), DOI: 10.1002/hyp.9257
    6.Helama S., Bégin Y., Vartiainen M., Peltola H., Kolstr?m T., Meril?inen J., Quantifications of dendrochronological information from contrasting microdensitometric measuring circumstances of experimental wood samples. Applied Radiation and Isotopes v70 p1014–1023 (2012)
    7.Fries A., Genetic parameters, genetic gain and correlated responses in growth, fibre dimensions and wood density in a Scots pine. breeding population. Annals of Forest Science (2012), DOI 10.1007/s13595-012-0202-7
    8.Luostarinen, K., Tracheid Wall Thickness and Lumen Diameter in Different Axial and Radial Locations in C*ted Larix sibirica Trunks. Silva Fennica 46(5) p707-716
    9.M?kinen H., Hynynen J., Predicting wood and tracheid properties of Scots pine. Forest Ecology and Management 279 (2012) p11–20
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    12.Routa J., Kellom?ki S. , Strandman H., Bergh J., Pulkkinen P., Peltola H., The timber and energy biomass potential of intensively managed cloned Norway spruce stands. GCB Bioenergy (2013) 5, p43–52, doi: 10.1111/gcbb.12002
    13.Melvin T.M., Grudd H., Briffa K.R., Potential bias in ‘updating’ tree-ring chronologies using regional curve standardisation: Re-processing 1500 years of Tornetr?sk density and ring-width data. The Holocene 23(3) p364–373 DOI: 10.1177/0959683612460791
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