Artigos de revistas sobre o tema "Foliage emissions"
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Bunce, Hubert W. F. "Empirical estimates of loss of value in a second growth coniferous forest related to changes in fluoride emissions". Forestry Chronicle 69, n.º 1 (1 de fevereiro de 1993): 71–74. http://dx.doi.org/10.5558/tfc69071-1.
Texto completo da fonteAalto, J., P. Kolari, P. Hari, V. M. Kerminen, P. Schiestl-Aalto, H. Aaltonen, J. Levula, E. Siivola, M. Kulmala e J. Bäck. "New foliage growth is a significant, unaccounted source for volatiles in boreal evergreen forests". Biogeosciences Discussions 10, n.º 11 (21 de novembro de 2013): 18121–50. http://dx.doi.org/10.5194/bgd-10-18121-2013.
Texto completo da fonteAalto, J., P. Kolari, P. Hari, V. M. Kerminen, P. Schiestl-Aalto, H. Aaltonen, J. Levula, E. Siivola, M. Kulmala e J. Bäck. "New foliage growth is a significant, unaccounted source for volatiles in boreal evergreen forests". Biogeosciences 11, n.º 5 (6 de março de 2014): 1331–44. http://dx.doi.org/10.5194/bg-11-1331-2014.
Texto completo da fonteVanhatalo, A., T. Chan, J. Aalto, J. F. Korhonen, P. Kolari, T. Hölttä, E. Nikinmaa e J. Bäck. "Tree water relations trigger monoterpene emissions from Scots pine stem during spring recovery". Biogeosciences Discussions 12, n.º 10 (22 de maio de 2015): 7783–814. http://dx.doi.org/10.5194/bgd-12-7783-2015.
Texto completo da fonteDehimeche, Nafissa, Bruno Buatois, Nadia Bertin e Michael Staudt. "Insights into the Intraspecific Variability of the above and Belowground Emissions of Volatile Organic Compounds in Tomato". Molecules 26, n.º 1 (5 de janeiro de 2021): 237. http://dx.doi.org/10.3390/molecules26010237.
Texto completo da fonteVanhatalo, A., T. Chan, J. Aalto, J. F. Korhonen, P. Kolari, T. Hölttä, E. Nikinmaa e J. Bäck. "Tree water relations can trigger monoterpene emissions from Scots pine stems during spring recovery". Biogeosciences 12, n.º 18 (17 de setembro de 2015): 5353–63. http://dx.doi.org/10.5194/bg-12-5353-2015.
Texto completo da fonteRochester, I., C. Wood e B. Macdonald. "Quantifying nitrous oxide emissions from the foliage of cotton, maize and soybean crops". Crop and Pasture Science 66, n.º 7 (2015): 689. http://dx.doi.org/10.1071/cp14301.
Texto completo da fonteCanul-Solis, Jorge, María Campos-Navarrete, Angel Piñeiro-Vázquez, Fernando Casanova-Lugo, Marcos Barros-Rodríguez, Alfonso Chay-Canul, José Cárdenas-Medina e Luis Castillo-Sánchez. "Mitigation of Rumen Methane Emissions with Foliage and Pods of Tropical Trees". Animals 10, n.º 5 (13 de maio de 2020): 843. http://dx.doi.org/10.3390/ani10050843.
Texto completo da fontePurser, Gemma, Julia Drewer, Mathew R. Heal, Robert A. S. Sircus, Lara K. Dunn e James I. L. Morison. "Isoprene and monoterpene emissions from alder, aspen and spruce short-rotation forest plantations in the United Kingdom". Biogeosciences 18, n.º 8 (20 de abril de 2021): 2487–510. http://dx.doi.org/10.5194/bg-18-2487-2021.
Texto completo da fonteAshworth, Kirsti, Serena H. Chung, Karena A. McKinney, Ying Liu, J. William Munger, Scot T. Martin e Allison L. Steiner. "Modelling bidirectional fluxes of methanol and acetaldehyde with the FORCAsT canopy exchange model". Atmospheric Chemistry and Physics 16, n.º 24 (15 de dezembro de 2016): 15461–84. http://dx.doi.org/10.5194/acp-16-15461-2016.
Texto completo da fonteTempleton, C. W. G., e S. J. Colombo. "A portable system to quantify seedling damage using stress-induced volatile emissions". Canadian Journal of Forest Research 25, n.º 4 (1 de abril de 1995): 682–86. http://dx.doi.org/10.1139/x95-075.
Texto completo da fonteHarley, P., J. Greenberg, Ü. Niinemets e A. Guenther. "Environmental controls over methanol emission from leaves". Biogeosciences 4, n.º 6 (5 de dezembro de 2007): 1083–99. http://dx.doi.org/10.5194/bg-4-1083-2007.
Texto completo da fonteHarley, P., J. Greenberg, Ü. Niinemets e A. Guenther. "Environmental controls over methanol emission from leaves". Biogeosciences Discussions 4, n.º 4 (6 de agosto de 2007): 2593–640. http://dx.doi.org/10.5194/bgd-4-2593-2007.
Texto completo da fonteJiang, Yifan, Jiayan Ye, Bahtijor Rasulov e Ülo Niinemets. "Role of Stomatal Conductance in Modifying the Dose Response of Stress-Volatile Emissions in Methyl Jasmonate Treated Leaves of Cucumber (Cucumis Sativa)". International Journal of Molecular Sciences 21, n.º 3 (4 de fevereiro de 2020): 1018. http://dx.doi.org/10.3390/ijms21031018.
Texto completo da fonteMusselman, R. C., P. L. Forsline e W. J. Kender. "Effects of Sulfur Dioxide and Ambient Ozone on Concord Grapevine Growth and Productivity". Journal of the American Society for Horticultural Science 110, n.º 6 (novembro de 1985): 882–88. http://dx.doi.org/10.21273/jashs.110.6.882.
Texto completo da fonteÁngeles-Mayorga, Yesenia, Elmi Roseida Cen-Cen, María Magdalena Crosby-Galván, Jacinto Efrén Ramírez-Bribiesca, Bernardino Candelaria-Martínez, Alfredo Sánchez-Villarreal e Mónica Ramírez-Mella. "Foliage of Tropical Trees and Shrubs and Their Secondary Metabolites Modify In Vitro Ruminal Fermentation, Methane and Gas Production without a Tight Correlation with the Microbiota". Animals 12, n.º 19 (30 de setembro de 2022): 2628. http://dx.doi.org/10.3390/ani12192628.
Texto completo da fontede Groot, William J., Chelene C. Hanes e Yonghe Wang. "Crown fuel consumption in Canadian boreal forest fires". International Journal of Wildland Fire 31, n.º 3 (28 de fevereiro de 2022): 255–76. http://dx.doi.org/10.1071/wf21049.
Texto completo da fonteWang, L., A. Ibrom, J. F. J. Korhonen, K. F. Arnoud Frumau, J. Wu, M. Pihlatie e J. K. Schjoerring. "Interactions between leaf nitrogen status and longevity in relation to N cycling in three contrasting European forest canopies". Biogeosciences 10, n.º 2 (13 de fevereiro de 2013): 999–1011. http://dx.doi.org/10.5194/bg-10-999-2013.
Texto completo da fonteHelmig, Detlev, Alex Guenther, Jacques Hueber, Ryan Daly, Wei Wang, Jeong-Hoo Park, Anssi Liikanen e Arnaud P. Praplan. "Ozone reactivity measurement of biogenic volatile organic compound emissions". Atmospheric Measurement Techniques 15, n.º 18 (26 de setembro de 2022): 5439–54. http://dx.doi.org/10.5194/amt-15-5439-2022.
Texto completo da fontePopitanu, Corina, Andreea Lupitu, Lucian Copolovici, Simona Bungău, Ülo Niinemets e Dana Maria Copolovici. "Induced Volatile Emissions, Photosynthetic Characteristics, and Pigment Content in Juglans regia Leaves Infected with the Erineum-Forming Mite Aceria erinea". Forests 12, n.º 7 (15 de julho de 2021): 920. http://dx.doi.org/10.3390/f12070920.
Texto completo da fonteKumeroa, Fern, Shanika Komahan, Svetla Sofkova-Bobcheva e Andrea Clavijo McCormick. "Characterization of the Volatile Profiles of Six Industrial Hemp (Cannabis sativa L.) Cultivars". Agronomy 12, n.º 11 (27 de outubro de 2022): 2651. http://dx.doi.org/10.3390/agronomy12112651.
Texto completo da fonteJoensuu, Johanna, Nuria Altimir, Hannele Hakola, Michael Rostás, Maarit Raivonen, Mika Vestenius, Hermanni Aaltonen, Markus Riederer e Jaana Bäck. "Role of needle surface waxes in dynamic exchange of mono- and sesquiterpenes". Atmospheric Chemistry and Physics 16, n.º 12 (24 de junho de 2016): 7813–23. http://dx.doi.org/10.5194/acp-16-7813-2016.
Texto completo da fontePregitzer, Kurt S., Andrew J. Burton, Glenn D. Mroz, Hal O. Liechty e Neil W. MacDonald. "Foliar sulfur and nitrogen along an 800-km pollution gradient". Canadian Journal of Forest Research 22, n.º 11 (1 de novembro de 1992): 1761–69. http://dx.doi.org/10.1139/x92-230.
Texto completo da fonteYu, H., J. K. Holopainen, M. Kivimäenpää, A. Virtanen e J. D. Blande. "Potential of Climate Change and Herbivory to Affect the Release and Atmospheric Reactions of BVOCs from Boreal and Subarctic Forests". Molecules 26, n.º 8 (15 de abril de 2021): 2283. http://dx.doi.org/10.3390/molecules26082283.
Texto completo da fonteVibart, R. E., G. B. Douglas, A. D. Mackay, M. B. Dodd e I. R. Mcivor. "Pasture-tree systems - Modelling potential implications for animal performance and greenhouse gas emissions". Journal of New Zealand Grasslands 77 (1 de janeiro de 2015): 153–58. http://dx.doi.org/10.33584/jnzg.2015.77.498.
Texto completo da fonteAltanzagas, Batbaatar, Yongkai Luo, Batbaatar Altansukh, Chimidnyam Dorjsuren, Jingyun Fang e Huifeng Hu. "Allometric Equations for Estimating the Above-Ground Biomass of Five Forest Tree Species in Khangai, Mongolia". Forests 10, n.º 8 (6 de agosto de 2019): 661. http://dx.doi.org/10.3390/f10080661.
Texto completo da fonteKohl, Lukas, Markku Koskinen, Tatu Polvinen, Salla Tenhovirta, Kaisa Rissanen, Marjo Patama, Alessandro Zanetti e Mari Pihlatie. "An automated system for trace gas flux measurements from plant foliage and other plant compartments". Atmospheric Measurement Techniques 14, n.º 6 (17 de junho de 2021): 4445–60. http://dx.doi.org/10.5194/amt-14-4445-2021.
Texto completo da fonteSeok, B., D. Helmig, L. Ganzeveld, M. W. Williams e C. S. Vogel. "Dynamics of nitrogen oxides and ozone above and within a mixed hardwood forest in northern Michigan". Atmospheric Chemistry and Physics 13, n.º 15 (1 de agosto de 2013): 7301–20. http://dx.doi.org/10.5194/acp-13-7301-2013.
Texto completo da fonteTuninetti, Amaro, Yohan Sequeira, Jesse Granger, Cara Webster, Benjamin C. Beiter e Rolf Müller. "Spatiotemporal dynamics of biosonar in navigating Bornean Rhinolophid and Hipposiderid bats". Journal of the Acoustical Society of America 152, n.º 4 (outubro de 2022): A69. http://dx.doi.org/10.1121/10.0015571.
Texto completo da fonteIngram, Dewayne L., Charles R. Hall e Joshua Knight. "Modeling Global Warming Potential, Variable Costs, and Water Use of Young Plant Production System Components Using Life Cycle Assessment". HortScience 52, n.º 10 (outubro de 2017): 1356–61. http://dx.doi.org/10.21273/hortsci12237-17.
Texto completo da fonteWalker, J. T., M. R. Jones, J. O. Bash, L. Myles, T. Meyers, D. Schwede, J. Herrick, E. Nemitz e W. Robarge. "Processes of ammonia air-surface exchange in a fertilized <i>Zea mays</i> canopy". Biogeosciences Discussions 9, n.º 6 (28 de junho de 2012): 7893–941. http://dx.doi.org/10.5194/bgd-9-7893-2012.
Texto completo da fonteWalker, J. T., M. R. Jones, J. O. Bash, L. Myles, T. Meyers, D. Schwede, J. Herrick, E. Nemitz e W. Robarge. "Processes of ammonia air–surface exchange in a fertilized <i>Zea mays</i> canopy". Biogeosciences 10, n.º 2 (12 de fevereiro de 2013): 981–98. http://dx.doi.org/10.5194/bg-10-981-2013.
Texto completo da fontePryor, S. C., K. E. Hornsby e K. A. Novick. "Forest canopy interactions with nucleation mode particles". Atmospheric Chemistry and Physics Discussions 14, n.º 12 (4 de julho de 2014): 18181–206. http://dx.doi.org/10.5194/acpd-14-18181-2014.
Texto completo da fonteZahradnik, Tracy, Stephen Takács, Ward Strong, Robb Bennett, Anastasia Kuzmin e Gerhard Gries. "Douglas-fir cone gall midges respond to shape and infrared wavelength attributes of host tree branches". Canadian Entomologist 144, n.º 5 (21 de agosto de 2012): 658–66. http://dx.doi.org/10.4039/tce.2012.71.
Texto completo da fonteWang, L., A. Ibrom, J. F. J. Korhonen, K. F. Arnoud Frumau, J. Wu, M. Pihlatie e J. K. Schjoerring. "Interactions between leaf nitrogen status and longevity in relation to N cycling in three contrasting European forest canopies". Biogeosciences Discussions 9, n.º 7 (31 de julho de 2012): 9759–90. http://dx.doi.org/10.5194/bgd-9-9759-2012.
Texto completo da fonteBalling, Johannes, Jan Verbesselt, Veronique De Sy, Martin Herold e Johannes Reiche. "Exploring Archetypes of Tropical Fire-Related Forest Disturbances Based on Dense Optical and Radar Satellite Data and Active Fire Alerts". Forests 12, n.º 4 (9 de abril de 2021): 456. http://dx.doi.org/10.3390/f12040456.
Texto completo da fonteOpacka, Beata, Jean-François Müller, Trissevgeni Stavrakou, Maite Bauwens, Katerina Sindelarova, Jana Markova e Alex B. Guenther. "Global and regional impacts of land cover changes on isoprene emissions derived from spaceborne data and the MEGAN model". Atmospheric Chemistry and Physics 21, n.º 11 (3 de junho de 2021): 8413–36. http://dx.doi.org/10.5194/acp-21-8413-2021.
Texto completo da fonteMoore, Roderquita K., Mark A. Dietenberger, Doreen H. Mann, Patricia K. Lebow e David R. Weise. "Utilizing two-dimensional gas chromatography time of flight mass spectrometry (GCxGC ToFMS) to characterize volatile products from pyrolysis of living vegetation foliage". BioResources 17, n.º 1 (10 de dezembro de 2021): 862–89. http://dx.doi.org/10.15376/biores.17.1.862-889.
Texto completo da fonteByčenkienė, Steigvilė, Daria Pashneva, Ieva Uogintė, Julija Pauraitė, Agnė Minderytė, Lina Davulienė, Kristina Plauškaitė et al. "Evaluation of the anthropogenic black carbon emissions and deposition on Norway spruce and silver birch foliage in the Baltic region". Environmental Research 207 (maio de 2022): 112218. http://dx.doi.org/10.1016/j.envres.2021.112218.
Texto completo da fonteBerger, Torsten W., Erich Inselsbacher e Sophie Zechmeister-Boltenstern. "Carbon dioxide emissions of soils under pure and mixed stands of beech and spruce, affected by decomposing foliage litter mixtures". Soil Biology and Biochemistry 42, n.º 6 (junho de 2010): 986–97. http://dx.doi.org/10.1016/j.soilbio.2010.02.020.
Texto completo da fonteTaipale, Ditte, Juho Aalto, Pauliina Schiestl-Aalto, Markku Kulmala e Jaana Bäck. "The importance of accounting for enhanced emissions of monoterpenes from new Scots pine foliage in models - A Finnish case study". Atmospheric Environment: X 8 (dezembro de 2020): 100097. http://dx.doi.org/10.1016/j.aeaoa.2020.100097.
Texto completo da fonteSulaiman, Hassan Yusuf, Bin Liu, Yusuph Olawale Abiola, Eve Kaurilind e Ülo Niinemets. "Impact of heat priming on heat shock responses in Origanum vulgare: Enhanced foliage photosynthetic tolerance and biphasic emissions of volatiles". Plant Physiology and Biochemistry 196 (março de 2023): 567–79. http://dx.doi.org/10.1016/j.plaphy.2023.02.013.
Texto completo da fonteZhong, Hongtao, Carol Smith, Brett Robinson, Young-Nam Kim e Nicholas Dickinson. "Plant litter variability and soil N mobility". Soil Research 55, n.º 3 (2017): 253. http://dx.doi.org/10.1071/sr16132.
Texto completo da fonteBekele, A. Z., C. Clément, M. Kreuzer e C. R. Soliva. "Efficiency of Sesbania sesban and Acacia angustissima in limiting methanogenesis and increasing ruminally available nitrogen in a tropical grass-based diet depends on accession". Animal Production Science 49, n.º 2 (2009): 145. http://dx.doi.org/10.1071/ea08202.
Texto completo da fonteMoraes, E. C., Sergio H. Franchito e V. Brahmananda Rao. "Amazonian Deforestation: Impact of Global Warming on the Energy Balance and Climate". Journal of Applied Meteorology and Climatology 52, n.º 3 (março de 2013): 521–30. http://dx.doi.org/10.1175/jamc-d-11-0258.1.
Texto completo da fonteIsidorov, Valery A., e Andrej A. Zaitsev. "Reviews and syntheses: VOC emissions from soil cover in boreal and temperate natural ecosystems of the Northern Hemisphere". Biogeosciences 19, n.º 19 (7 de outubro de 2022): 4715–46. http://dx.doi.org/10.5194/bg-19-4715-2022.
Texto completo da fonteSommar, Jonas, Wei Zhu, Lihai Shang, Che-Jen Lin e Xinbin Feng. "Seasonal variations in metallic mercury (Hg<sup>0</sup>) vapor exchange over biannual wheat–corn rotation cropland in the North China Plain". Biogeosciences 13, n.º 7 (7 de abril de 2016): 2029–49. http://dx.doi.org/10.5194/bg-13-2029-2016.
Texto completo da fonteSommar, J., W. Zhu, L. Shang, C. J. Lin e X. B. Feng. "Seasonal variations in metallic mercury (Hg<sup>0</sup>) vapor exchange over biannual wheat – corn rotation cropland in the North China Plain". Biogeosciences Discussions 12, n.º 18 (30 de setembro de 2015): 16105–58. http://dx.doi.org/10.5194/bgd-12-16105-2015.
Texto completo da fonteCrim, Philip M., Louis M. McDonald e Jonathan R. Cumming. "Soil and Tree Nutrient Status of High Elevation Mixed Red Spruce (Picea rubens Sarg.) and Broadleaf Deciduous Forests". Soil Systems 3, n.º 4 (11 de dezembro de 2019): 80. http://dx.doi.org/10.3390/soilsystems3040080.
Texto completo da fonteBelykh, Olga, e Elena Chuparina. "Elemental Composition of Needle Foliage of Pinaceae Forest Forming Species in the Territory with Cumulative Environmental Damage (South Baikal Region)". Bulletin of Baikal State University 31, n.º 1 (31 de março de 2021): 103–8. http://dx.doi.org/10.17150/2500-2759.2021.31(1).103-108.
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