Труды сотрудников ИЛ им. В.Н. Сукачева СО РАН

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Найдено документов в текущей БД: 6

    Postpyrogenic transformation of soils under Pinus sibirica forests in the southern Lake Baikal basin
/ Y. N. Krasnoshchekov, Y. S. Cherednikova // Eurasian Soil Sci. - 2012. - Vol. 45, Is. 10. - P929-938, DOI 10.1134/S1064229312100055. - Cited References: 24. - This work was supported by the Russian Foundation for Basic Research (project no. 08-04-00027). . - 10. - ISSN 1064-2293
РУБ Soil Science
Рубрики:
FIRE

Аннотация: The results of experimental investigations of the postpyrogenic dynamics of the widespread rawhumus podzols under Pinus sibirica forests in the southern Lake Baikal basin are discussed. Ground fires transform the diagnostic surface organic soil horizons into organic pyrogenic horizons (Opir, OL/Opir, and AOpir). The adverse effect of ground fires of different intensities on the changes in the reserves, the fractional composition of the litters, and the chemical composition of the organic horizons is shown. The soils of dark coniferous forests are inclined to long-lasting restoration. The Pinus sibirica regrowth under the canopy of deciduous species serves as the basis for the restoration of native stands and the formation of the soils characteristic of the southern part of the Lake Baikal basin.

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Scopus

Держатели документа:
[Krasnoshchekov, Yu. N.
Cherednikova, Yu. S.] Russian Acad Sci, Sukachev Inst Forestry, Siberian Branch, Krasnoyarsk 660036, Russia

Доп.точки доступа:
Krasnoshchekov, Y.N.; Cherednikova, Y.S.

    Changing regimes: Forested land cover dynamics in Central Siberia 1974 to 2001
[Text] / K. M. Bergen [et al.] // Photogramm. Eng. Remote Sens. - 2008. - Vol. 74, Is. 6. - P787-798. - Cited References: 47 . - 12. - ISSN 0099-1112
РУБ Geography, Physical + Geosciences, Multidisciplinary + Remote Sensing + Imaging Science & Photographic Technology

Аннотация: The twentieth century saw fundamental shifts in northern Eurasian political and land-management paradigms, in Russia culminating in the political transition of 1991, We used the 1972 to 2001 Landsat archive bracketing this transition to observe change trends in southern central Siberian Russia in primarily forested study sites. Landsat resolved conifer, mixed, deciduous and young forest; cuts, burns, and insect disturbance; and wetland, agriculture, bare, urban, and water land covers. Over 70 percent of forest area in the three study sites was likely disturbed prior to 1974. Conifer forest decreased over the 1974 to 2001 study period, with the greatest decrease 1974 to 1990. Logging activity (primarily in conifers) declined more during the 1991 to 2001 post-Soviet period. The area of Young forest increased more during the 1974 to 1990 time period. Deciduous forest increased over both time periods. Agriculture declined over both time periods contributing to forest regrowth in this region.

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Scopus

Держатели документа:
[Bergen, K. M.
Brown, D. G.] Univ Michigan, Sch Nat Resources & Environm, Ann Arbor, MI 48109 USA
[Zhao, T.] Florida State Univ, Dept Geog, Tallahassee, FL 32306 USA
[Kharuk, V.] VN Sukachev Inst Forest, Krasnoyarsk 660036, Russia
[Blam, Y.] Inst Econ & Ind Engn, Dept Econ Informat, Novosibirsk, Russia
[Peterson, L. K.] US Forest Serv, Int Programs Outreach & Partnerships Unit, Washington, DC 20005 USA
[Miller, N.] Radiance Technol Inc, Stennis Space Ctr, MS 39529 USA
[Miller, N.] ERIM Int, Ann Arbor, MI USA

Доп.точки доступа:
Bergen, K.M.; Zhao, T...; Kharuk, V...; Blam, Y...; Brown, D.G.; Peterson, L.K.; Miller, N...

    Soil microbial activities in tree-based cropping systems and natural forests of the Central Amazon, Brazil
[Text] / O. V. Menyailo [et al.] // Biol. Fertil. Soils. - 2003. - Vol. 38, Is. 1. - P1-9, DOI 10.1007/s00374-003-0631-4. - Cited References: 23 . - 9. - ISSN 0178-2762
РУБ Soil Science

Аннотация: Little information is available about the factors controlling soil C and N transformations in natural tropical forests and tree-based cropping systems. The aim of this work was to study the effects of single trees on soil microbiological activities from plantations of timber and non-timber species as well as species of primary and secondary forests in the Central Amazon. Soil samples were taken in the primary forest under Oenocarpus bacaba and Eschweilera spp., in secondary regrowth with Vismia spp., under two non-timber tree species (Bixa orellana L. and Theobroma grandiflorum Willd.), and two species planted for wood production (Carapa guianensis Aubl. and Ceiba pentandra). In these soils, net N mineralization, net nitrification, denitrification potential, basal and substrate-induced respiration rates were studied under standardized soil moisture and temperature conditions. Individual tree species more strongly affected N transformations, particularly net nitrification, than C respiration. Our results suggest that soil C respiration can be affected by tree species if inorganic N becomes a limiting factor. We found a strong correlation among almost all microbiological processes suggesting close inter-relationship between C and N transformations in the studied soils. Correlation analysis between soil chemical properties and microbiological activities suggest that such strong inter-relationships are likely due to competition between the denitrifying and C-mineralizing communities for NO3-, which might be an important N source for the microbial population in the studied soils.

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Scopus

Держатели документа:
Russian Acad Sci, Inst Forest, Siberain Branch, Krasnoyarsk 660036, Russia
Univ Bayreuth, Inst Soil Sci & Soil Geog, D-95447 Bayreuth, Germany
EMBRAPA, BR-69011970 Manaus, Amazonas, Brazil

Доп.точки доступа:
Menyailo, O.V.; Lehmann, J...; Cravo, M.D.; Zech, W...

    Productivity of forests in the Eurosiberian boreal region and their potential to act as a carbon sink - a synthesis
[Text] / E. D. Schulze [et al.] // Glob. Change Biol. - 1999. - Vol. 5, Is. 6. - P703-722, DOI 10.1046/j.1365-2486.1999.00266.x. - Cited References: 93 . - 20. - ISSN 1354-1013
РУБ Biodiversity Conservation + Ecology + Environmental Sciences

Аннотация: Based on review and original data, this synthesis investigates carbon pools and fluxes of Siberian and European forests (600 and 300 million ha, respectively). We examine the productivity of ecosystems, expressed as positive rate when the amount of carbon in the ecosystem increases, while (following micrometeorological convention) downward fluxes from the atmosphere to the vegetation (NEE=Net Ecosystem Exchange) are expressed as negative numbers. Productivity parameters are Net Primary Productivity (NPP=whole plant growth), Net Ecosystem Productivity (NEP = CO2 assimilation minus ecosystem respiration), and Net Biome Productivity (NBP=NEP minus carbon losses through disturbances bypassing respiration, e.g. by fire and logging). Based on chronosequence studies and national forestry statistics we estimate a low average NPP for boreal forests in Siberia: 123 gC m(-2) y(-1). This contrasts with a similar calculation for Europe which suggests a much higher average NPP of 460 gC m(-2) y(-1) for the forests there. Despite a smaller area, European forests have a higher total NPP than Siberia (1.2-1.6 vs. 0.6-0.9 x 10(15) gC region(-1) y(-1)). This arises as a consequence of differences in growing season length, climate and nutrition. For a chronosequence of Pinus sylvestris stands studied in central Siberia during summer, NEE was most negative in a 67-y old stand regenerating after fire (-192 mmol m(-2) d(-1)) which is close to NEE in a cultivated forest of Germany (-210 mmol m(-2) d(-1)). Considerable net ecosystem CO2-uptake was also measured in Siberia in 200- and 215-y old stands (NEE:174 and - 63 mmol m(-2) d(-1)) while NEP of 7- and 13-y old logging areas were close to the ecosystem compensation point. Two Siberian bogs and a bog in European Russia were also significant carbon sinks (-102 to - 104 mmol m(-2) d(-1)). Integrated over a growing season (June to September) we measured a total growing season NEE of -14 mol m(-2) summer(-1) (-168 gC m(-2) summer(-1)) in a 200-y Siberian pine stand and -5 mol m(-2) summer(-1) (-60 gC m(-2) summer(-1)) in Siberian and European Russian bogs. By contrast, over the same period, a spruce forest in European Russia was a carbon source to the atmosphere of (NEE: + 7 mol m(-2) summer(-1) = + 84 gC m(-2) summer(-1)). Two years after a windthrow in European Russia, with all trees being uplifted and few successional species, lost 16 mol C m(-2) to the atmosphere over a 3-month in summer, compared to the cumulative NEE over a growing season in a German forest of -15.5 mol m(-2) summer(-1) (-186 gC m(-2) summer(-1); European flux network annual averaged - 205 gC m(-2) y(-1)). Differences in CO2-exchange rates coincided with differences in the Bowen ratio, with logging areas partitioning most incoming radiation into sensible heat whereas bogs partitioned most into evaporation (latent heat). Effects of these different surface energy exchanges on local climate (convective storms and fires) and comparisons with the Canadian BOREAS experiment are discussed. Following a classification of disturbances and their effects on ecosystem carbon balances, fire and logging are discussed as the main processes causing carbon losses that bypass heterotrophic respiration in Siberia. Following two approaches, NBP was estimated to be only about 13-16 mmol m(-2) y(-1) for Siberia. It may reach 67 mmol m(-2) y(-1) in North America, and about 140-400 mmol m(-2) y(-1) in Scandinavia. We conclude that fire speeds up the carbon cycle, but that it results also in long-term carbon sequestration by charcoal formation. For at least 14 years after logging, regrowth forests remain net sources of CO2 to the atmosphere. This has important implications regarding the effects of Siberian forest management on atmospheric concentrations. For many years after logging has taken place, regrowth forests remain weaker sinks for atmospheric CO2 than are nearby old-growth forests.

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Держатели документа:
Max Planck Inst Biogeochem, D-07701 Jena, Germany
Landcare Res, Lincoln, New Zealand
Russian Acad Sci, Inst Evolut & Ecol, Moscow 117071, Russia
Univ Tubingen, Inst Bot, D-72076 Tubingen, Germany
Comenius Univ, Dept Biophys & Chem Phys, Bratislava 84215, Slovakia
Univ Tuscia, Dept Forest Sci & Environm, I-01100 Viterbo, Italy
Moscow MV Lomonosov State Univ, Ecol Travel Ctr, Moscow 119899, Russia
Russian Acad Sci, Siberian Branch, Forest Inst, Krasnoyarsk 660036, Russia

Доп.точки доступа:
Schulze, E.D.; Lloyd, J...; Kelliher, F.M.; Wirth, C...; Rebmann, C...; Luhker, B...; Mund, M...; Knohl, A...; Milyukova, I.M.; Schulze, W...; Ziegler, W...; Varlagin, A.B.; Sogachev, A.F.; Valentini, R...; Dore, S...; Grigoriev, S...; Kolle, O...; Panfyorov, M.I.; Tchebakova, N...; Vygodskaya, N.N.

    Spatiotemporal Structure and Dynamics of the Late Succession Stage of Taiga Cedar Pine of the Western Sayan Mountains
/ D. M. Danilina, D. I. Nazimova, M. E. Konovalova // Contemp. Probl. Ecol. - 2021. - Vol. 14, Is. 7. - P750-759, DOI 10.1134/S1995425521070064. - Cited References:31. - This study was held within the framework of the State Contract of the FRS KSC RAS (0356-2019-0024), and with the financial support from the RFBR (18-05-00781.). . - ISSN 1995-4255. - ISSN 1995-4263
РУБ Ecology

Аннотация: The results of stationary studies (1965-2017) on the regularities of the dynamics of the spatial structure of old-growth, cedar-pine forests are shown on the example of a natural-growth, cedar-pine sedge-tall herb-fern forest of the late succession stage (Western Sayan, 53 degrees 01 ' N, 92 degrees 59 ' E, individual test site area of 1.56 ha). It was found that a dynamic balance has been maintained in the structure of the edificator layer for a period of 50 years, while the subedificator layer (fir) has undergone more rapid changes in age structure and affects the relations between the synusiae of lower layer and their role in the regrowth of cedar pine (Pinus sibirica (Du Tour) and Siberian fir (Abies sibirica (Ledeb.). Each synusia is characterised by a relatively constant number of species, dominant-species structure, and ratio of ecocoenotic groups. Tall herb-fern, calamagrostis-dryopteris, aconite-sedge, sedge and oxalis synusiae of different complexities remain the constant structural elements of this type of forest. The roles of the individual herbaceous synusia in cedar pine regrowth have been shown for the tall grass-fern group of forest types. Cedar-pine regrowth is slow in the dominant tall grass-fern synusia and occurs mostly on microrelief, at sites of windfall and fallen trees. Conversely, the competition with the grass is lower in the sedge synusia, and periodical outbreaks of cedar-pine regrowth occur in years of high productivity. However, the probability of seedlings' further survival is low due to competition with the parent trees. The results allow the prediction of the age dynamics of a natural-growth cedar pine forest for the next several decades, under the assumption of climate and weather trends that are typical for the latter century cycle and are without any catastrophic changes. The diversity of microtypes and synusiae supports the sustainability of the entire mountain ecosystem and will play an important role in the modeling of the regrowth and spatial distribution of individual trees during the later stages of fir-cedar pine forest development in the taiga zone of the Sayan mountains.

WOS

Держатели документа:
Russian Acad Sci, Forest Inst, Siberian Branch, Krasnoyarsk 660036, Russia.

Доп.точки доступа:
Danilina, D. M.; Nazimova, D., I; Konovalova, M. E.; FRS KSC RAS [0356-2019-0024]; RFBRRussian Foundation for Basic Research (RFBR) [18-05-00781]

    Современное экологическое состояние компонентов сосновых экосистем Красноярской лесостепи
[Текст] / Л. Н. Скрипальщикова, А. П. Барченков, И. А. Гончарова, Т. В. Пономарева [и др.] // Лесоведение. - 2022. - № 1. - С. 61-71, DOI 10.31857/S0024114822010090 . - ISSN 0024-1148
ГРНТИ

Аннотация: Приведена оценка современного экологического состояния компонентов (древостой, подрост, живой напочвенный покров, почва) сосновых экосистем Красноярской лесостепи, произрастающих в зоне многолетнего антропогенного воздействия г. Красноярска и фоновых условиях. Исследования проводили на мониторинговых пробных площадях в сосняках разнотравных. Современное состояние сосняков, произрастающих в зоне многолетнего антропогенного воздействия Красноярска, оценивается как удовлетворительное. Санитарное и жизненное состояние пригородных сосновых древостоев не отличается от фоновых. В сосняках установлено хорошее возобновление сосны. Зафиксировано наличие всходов и значительного количества жизнеспособного подроста. Живой напочвенный покров в сосняках на данный момент (за исключением фоновой пробной площади) находится на стадии слабой рекреационной трансформации. Почвы под изучаемыми сосновыми экосистемами в зоне влияния города относятся к антропогенно-преобразованным, имеют развитые профили с признаками деградации верхних горизонтов
An assessment was given regarding the current ecological state of the pine biogeocenoses components (forest stand, undergrowth, living ground cover, soil) in the Krasnoyarsk forest-steppe, growing in both the zone of long-term anthropogenic impact of Krasnoyarsk and under natural conditions (control plot). The studies were carried out on monitoring sample plots in forb pine forests. The current state of pine forests growing in the zone of long-term anthropogenic impact of Krasnoyarsk is assessed as satisfactory. The sanitary and vital state of suburban pine stands does not differ from the background ones. A good rate of pine regrowth has been established in the pine forests. The presence of seedlings and a significant amount of viable undergrowth was recorded. The living ground cover in pine forests at the moment is at the stage of weak recreational transformation (with the exception of the control sample plot). The soils under the studied pine stands in the zone of city’s influence are anthropogenically transformed, have developed profiles with signs of degradation of the upper horizons

РИНЦ

Держатели документа:
ИЛ СО РАН : 660036, Красноярск, Академгородок, 50, стр. 28

Доп.точки доступа:
Барченков, Алексей Павлович; Barchenkov Alexey Pavlovich; Гончарова, Ирина Александровна; Goncharova, Irina Alexandrovna; Пономарева, Татьяна Валерьевна; Ponomaryeva Tat'yana Valer'yevna; Шушпанов, Александр Сергеевич; SHUSHPANOV A.S.; Татаринцев, Андрей Иванович; Tatarintsev Andrey Ivanovich; Skripalshchikova, Larisa Nikolayevna