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1Academic Journal
المؤلفون: Dairo J. Pérez, Rodrigo O. Campo, Alfredo Jarma O.
المصدر: Revista de Ciencias Agrícolas, Vol 32, Iss 2, Pp 104-112 (2015)
مصطلحات موضوعية: Fisiología de cultivos, tuberización, índices de crecimiento, intercambio gaseoso, fotosíntesis neta, Agriculture, Agriculture (General), S1-972
وصف الملف: electronic resource
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2Academic Journal
المؤلفون: Tofiño, Adriana, Ceballos, Hernán, Romero, Hernán M.
المصدر: Actualidades Biológicas; Vol. 30 No. 88 (2008); 1-13 ; Actualidades Biológicas; Vol. 30 Núm. 88 (2008); 1-13 ; Actualidades Biológicas; v. 30 n. 88 (2008); 1-13 ; 2145-7166 ; 0304-3584
مصطلحات موضوعية: adaptation drought potential, leaf retention, Manihot, net leaf photosynthesis, root depth, water stress, fotosíntesis neta, longevidad foliar, penetrancia radical, sequía, rendimiento de raíces
جغرافية الموضوع: Caribe colombiano
وصف الملف: application/pdf
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3Academic Journal
المؤلفون: Anundo Polanía, Gerardo Pérez, Saúl Camacho
المصدر: Revista Colombiana de Química, Vol 11, Iss 1, Pp 57-68 (2010)
مصطلحات موضوعية: Química, Equipos de fotosíntesis, fotosíntesis neta, Chemistry, QD1-999
وصف الملف: electronic resource
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4Academic Journal
المؤلفون: Adriana Tofiño, Hernán Ceballos, Hernán M. Romero
المصدر: Actualidades Biológicas, Vol 30, Iss 88, Pp 15-27 (2008)
مصطلحات موضوعية: fotosíntesis neta, longevidad foliar, penetrancia radical, sequía, rendimiento de raíces, Manihot, adaptation drought potential, leaf retention, net leaf photosynthesis, root depth, water stress, Biology (General), QH301-705.5
وصف الملف: electronic resource
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5Academic Journal
المؤلفون: Pagano, Mario, Storchi, Paolo
المصدر: Boletín de la Sociedad Argentina de Botánica (Journal of the Argentine Botanical Society; Vol. 51 No. 4 (2016): December; 683-687 ; Boletín de la Sociedad Argentina de Botánica; Vol. 51 Núm. 4 (2016): Diciembre; 683-687 ; 1851-2372 ; 0373-580X ; 10.31055/1851.2372.v51.n4
مصطلحات موضوعية: Bundle sheath extensions, leaves, net photosynthetic rate, vein density, leaf temperature, Extensiones de la vaina del haz, hojas, tasa de fotosíntesis neta, densidad de venas, temperatura foliar
وصف الملف: application/pdf
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6Academic Journal
المؤلفون: M. ANGÉLICA CASANOVA-KATNY, LEÓN A BRAVO, MARCO MOLINA-MONTENEGRO, LUIS J CORCUERA, LOHENGRIN A CAVIERES
المصدر: Revista Chilena de Historia Natural, Vol 79, Iss 1, Pp 41-53 (2006)
مصطلحات موضوعية: fotosíntesis neta, fluorescencia de la clorofila, apagamiento no fotoquímico, clima andino, plantas andinas, net photosynthesis, chlorophyll fluorescence, NPQ, alpine climate, alpine plants, Andes, Zoology, QL1-991, Botany, QK1-989
وصف الملف: electronic resource
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7Academic Journal
المؤلفون: Lyda Patricia Mosquera Sánchez, Néstor Miguel Riaño Herrera, Yamel López Forero, Jaime Arcila Pulgarín
المصدر: Revista Facultad Nacional de Agronomía Medellín, Vol 58, Iss 2, Pp 2827-2838 (2005)
مصطلحات موضوعية: Café, Coffea arabica L., concentración de compensación de CO2, temperatura de la hoja, fotosíntesis neta, fríjol, maíz, Coffee, CO2 compensation concentration, leaf temperature, net photosynthesis, bean, maize, Agriculture, Agriculture (General), S1-972
وصف الملف: electronic resource
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8
المؤلفون: Pérez Trujillo, María Mercedes
المساهمون: Fischer, Gerhard, Melgarejo Muñoz, Luz Marina, Fisiología del Estrés y Biodiversidad en Plantas y Microorganismos, Horticultura
المصدر: Repositorio UN
Universidad Nacional de Colombia
instacron:Universidad Nacional de Colombiaمصطلحات موضوعية: Potencial hídrico foliar, Biomasa, Stomatal conductance, Dry weight, Conductancia estomática, Anthocyanins, environmental factors, TSS/TTA, Antocianinas, Chlorophyll a fluorescence, Crop yield, Compuestos fenólicos, Factores ambientales, Fresa, Rendimiento, Evapotranspiration, Water use efficiency, Leaf water potential, Capacidad antioxidante, Phenolic compounds, Antioxidant capacity, strawberries, SST/ATT, 634 - Huertos, frutas, silvicultura [630 - Agricultura y tecnologías relacionadas], Uso eficiente del agua, Tasa de fotosíntesis neta, Fluorescencia de la clorofila a, Net photosynthetic rate, Evapotranspiración
وصف الملف: xxiv, 176 páginas; application/pdf
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9Academic Journal
المؤلفون: García-Orellana, Y., Ortuño, M. F., Conejero, W., Ruiz-Sanchez, M. C.
المصدر: Spanish Journal of Agricultural Research; Vol. 11 No. 1 (2013); 137-145 ; Spanish Journal of Agricultural Research; Vol. 11 Núm. 1 (2013); 137-145 ; 2171-9292
مصطلحات موضوعية: Citrus limon, leaf conductance, leaf water potential, maximum daily trunk shrinkage, net photosynthesis, sap flow, stem water potential, conductancia foliar, conductancia hidráulica de la canopia, flujo de savia, fotosíntesis neta, máxima contracción diaria del tronco, potencial hídrico foliar, potencial hídrico del tallo
وصف الملف: application/pdf
Relation: https://revistas.inia.es/index.php/sjar/article/view/3153/1789; https://revistas.inia.es/index.php/sjar/article/view/3153
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10
المؤلفون: Oscar de Jesús Córdoba-Gaona, Aníbal López-Castro, Juan Pablo Gómez-Yarce, Edna Rocío Mompotes-Largo, Juan David Hernández-Arredondo
المصدر: Revista Facultad Nacional de Agronomía Medellín, Volume: 73, Issue: 3, Pages: 9283-9291, Published: DEC 2020
Revista Facultad Nacional de Agronomía Medellín, Vol 73, Iss 3, Pp 9283-9291 (2020)مصطلحات موضوعية: 0106 biological sciences, Canopy, Stomatal conductance, Net photosynthesis, Theobroma, cacao, Transpiración, Randomized block design, Horticulture, Cordia alliodora, theobroma cacao, 01 natural sciences, Transpiration, lcsh:Agriculture, Theobroma cacao, lcsh:Agriculture (General), Mathematics, Cacao, Fotosíntesis neta, biology, Agroforestry, net photosynthesis, lcsh:S, Sowing, Forestry, 04 agricultural and veterinary sciences, biology.organism_classification, cordia alliodora, lcsh:S1-972, Light intensity, stomatal conductance, 040103 agronomy & agriculture, 0401 agriculture, forestry, and fisheries, Animal Science and Zoology, transpiration, Conductividad estomática, Agronomy and Crop Science, 010606 plant biology & botany, Food Science
وصف الملف: text/html
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11Academic Journal
المصدر: Spanish Journal of Agricultural Research; Vol. 9 No. 4 (2011); 1249-1261 ; Spanish Journal of Agricultural Research; Vol. 9 Núm. 4 (2011); 1249-1261 ; 2171-9292
مصطلحات موضوعية: intercellular CO2 concentration, net photosynthesis rate, stomatal conductance, Zea mays L, concentración de CO2 intracelular, conductancia estomática, tasa de fotosíntesis neta
وصف الملف: application/pdf
Relation: https://revistas.inia.es/index.php/sjar/article/view/2458/1578; https://revistas.inia.es/index.php/sjar/article/view/2458
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12Academic Journal
المؤلفون: Nishimura, T., Cha-um, S., Takagaki, M., Ohyama, K., Kirdmanee, C.
المصدر: Spanish Journal of Agricultural Research; Vol. 9 No. 1 (2011); 262-270 ; Spanish Journal of Agricultural Research; Vol. 9 Núm. 1 (2011); 262-270 ; 2171-9292
مصطلحات موضوعية: net-photosynthetic rate, photosynthetic pigments, salt stress, water deficit, estrés hídrico, estrés salino, pigmentos fotosintéticos, tasa de fotosíntesis neta
وصف الملف: application/pdf
Relation: https://revistas.inia.es/index.php/sjar/article/view/1556/1410; https://revistas.inia.es/index.php/sjar/article/view/1556
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13Dissertation/ Thesis
المؤلفون: Pérez Trujillo, María Mercedes
المساهمون: Fischer, Gerhard, Melgarejo Muñoz, Luz Marina, Fisiología del Estrés y Biodiversidad en Plantas y Microorganismos, Horticultura
مصطلحات موضوعية: 630 - Agricultura y tecnologías relacionadas::634 - Huertos, frutas, silvicultura, Fresa, Factores ambientales, strawberries, environmental factors, Tasa de fotosíntesis neta, Fluorescencia de la clorofila a, Conductancia estomática, Potencial hídrico foliar, Evapotranspiración, Uso eficiente del agua, Rendimiento, Biomasa, SST/ATT, Compuestos fenólicos, Antocianinas, Capacidad antioxidante, Net photosynthetic rate, Chlorophyll a fluorescence, Stomatal conductance, Leaf water potential, Evapotranspiration, Water use efficiency, Crop yield, Dry weight, TSS/TTA, Phenolic compounds, Anthocyanins
وصف الملف: xxiv, 176 páginas; application/pdf
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Scientia Horticulturae 62(1-2), 25–31. https://doi.org/10.1016/0304-4238(95)00770-T.; Azzini, E., Intorre,F., Vitaglione, P., Napolitano, A., Foddai, M.S., Durazzo, A., Fumagalli, A., Catasta, G., Rossi, L., Venneria, E., Testa, M.F., Raguzzini, A., Palomba, L., Fogliano, V., Maiani, G., 2010. Absorption of strawberry phytochemicals and antioxidant status changes in humans. Journal of Berry Research 1, 81–89. https://doi.org/10.3233/BR-2010-009.; Blanke, M.M., Cooke, D.T., 2004. Effects of flooding and drought on stomatal activity, transpiration, photosynthesis, water potential and water channel activity in strawberry stolons and leaves. Plant Growth Regulation 42, 153–160; Borkowska, B., 2005. The photosynthetic activity of plants growing under different environmental conditions. International Journal of Fruit Science 5 (2), 3-16. https://doi.org/10.1300/J492v05n02_02.; Bruce, A.B., Maynard, E.T., Farmer, J.R., 2019. Farmers’ perspectives on challenges and opportunities associated with using high tunnels for specialty crops. HortTecnology, 04258- 18. https://doi.org/10.21273/HORTTECH04258-18.; Casierra-Posada, F., Vargas, Y.A., 2007. Crecimiento y producción de fruta en cultivares de fresa (Fragaria sp.) afectados por encharcamiento. Revista Colombiana de Ciencias Hortícolas 1 (1), 21 – 32.; Casal, C., Vílchez, C., Forján, E., De La Morena, B.A., 2009. The absence of UV-radiation delays the strawberry ripening but increases the final productivity, not altering the main fruit nutritional properties. Acta Horticulturae 842, 159–162.; Casierra-Posada, F., Peña-Olmos, J.E., Ulrichs, C., 2011. Crecimiento y eficiencia fotoquímica del fotosistema II en plantas de fresa (Fragaria sp.) afectadas por la calidad de la luz: implicaciones agronómicas. Rev. U.D.C.A. Act. & Div. Cient. 14(2), 43 – 53.; Casierra-Posada, F., J. E. Peña-Olmos y C. Ulrichs. 2012. Basic growth analysis in strawberry plants (Fragaria sp.) exposed to different radiation environments. Agronomía Colombiana 30 (1), 25 - 33.; Corrêa, L.E., Peres, N.A., 2013. Strawberry production in Brazil and South America. International Journal of Fruit Science 13 (1-2), 156-161. https://doi.org/10.1080/15538362.2012.698147.; Darnell, R.L., Cantliffe, D.J., Kirschbaum, D.S., Chandler, C.K., 2003. The physiology of flowering in strawberry. Horticultural Reviews 28, 325-349; Davies, K.M., Schwinn, K.E., Gould, K.M., 2017. Anthocyanins, in: Encyclopedia of Applied Plant Sciences. Elsevier, 2nd edition, Volume 2, pp. 355-363. http://dx.doi.org/10.1016/B978-0-12-394807-6.00229-X.; Dávalos-González, P.A., Narro-Sánchez, J., Jofre-Garfias, A.E., Razo, A.R.H., Vázquez Sánchez, M.N., 2009. Influence of the genotype, type of plant and population density on strawberry productivity and fruit quality under macrotunnel. Acta Horticulturae 842, 91–94. https://doi.org/10.17660/ActaHortic.2009.842.3; Demchak, K., 2009. Small fruit production in high tunnels. HortTechnology 19(1), 44-49.; FAOSTAT, 2018. Producción de fresa. http://www.fao.org/faostat/es/#data/QC (consultada 14 septiembre 2020).; Felgines, C., Texier, O., Besson, C., Lyan, B., Lamaison, J.L., Scalbert, A., 2007. Strawberry pelargonidin glycosides are excreted in urine as intact and glucuronidated pelargonidin derivatives in rats. British Journal of Nutrition 98, 1126–1131. https://doi.org/10.1017/S0007114507764772.; Flórez, R., Mora, R., 2010. Fresa (Fragaria x ananassa Duch.) producción y manejo poscosecha. Corredor Tecnológico Agroindustrial, Cámara de Comercio de Bogotá, Editorial Produmedios, Bogotá; Francisco-Francisco, N., Benavides-Mendoza, A., 2014. Impacto de la salinidad y la temperatura diurna sobre la fluorescencia de la clorofila en fresa. Revista Mexicana de Ciencias Agrícolas 5 (1), 157-162.; Foust-Meyer, N., O’Rourke, M.E., 2015. High tunnels for local food systems: Subsidies, equity, and profitability. Journal of Agriculture, Food Systems, and Community Development 5(2), 27–38. https://doi.org/10.5304/jafscd.2015.052.015.; Gavilán, P., Ruiz, N., Lozano, D., 2015. Daily forecasting of reference and strawberry crop evapotranspiration in greenhouses in a Mediterranean climate based on solar radiation estimates. Agricultural Water Management 159, 307–317. https://doi.org/10.1016/j.agwat.2015.06.012.; Giampieri, F., Alvarez-Suarez, J.M., Battino, M., 2014. Strawberry and human health: effects beyond antioxidant activity. J. Agric. Food Chem. 62 (18), 3867-3876. https://doi.org/10.1021/jf405455n.; Grant, O.M., Johnson, A.W., Davies, M.J., James, C.M., Simpson, D.W., 2010. Physiological and morphological diversity of cultivated strawberry (Fragaria × ananassa) in response to water deficit. Environmental and Experimental Botany 68, 264–272. https://doi.org/10.1016/j.envexpbot.2010.01.008.; Grijalba, C.M., Pérez-Trujillo, M.M., Ruíz, D., Ferrucho, A.M., 2015. Strawberry yields with high-tunnel and open-field cultivations and the relationship with vegetative and reproductive plant characteristics. Agronomía Colombiana 33(2), 147-154. https://doi.org/10.15446/agron.colomb.v33n2.52000; Gündüz, K., Özdemir, E., 2014. The effects of genotype and growing conditions on antioxidant capacity, phenolic compounds, organic acid and individual sugars of strawberry. Food Chemistry 155, 298–303. https://doi.org/10.1016/j.foodchem.2014.01.064.; Hancock, J.F., 2020. Strawberries. Crop Production Science in Horticulture 11, second ed. CABI Publishing, Wallingford, UK.; Hytönen, T., Elomaa, P., Moritz, T., Junttila, O., 2009. Gibberellin mediates daylength controlled differentiation of vegetative meristems in strawberry (Fragaria × ananassa Duch). BMC Plant Biology 9, 18. https://doi.org/10.1186/1471-2229-9-18; Josuttis, M., Dietrich, H., Treutter, D., Will, F., Linnemannstöns, L., Krüger, E., 2010. Solar UVB response of bioactives in strawberry (Fragaria × ananassa Duch. L.): a comparison of protected and open-field cultivation. J Agric Food Chem. 58(24), 12692-702. https://doi.org/10.1021/jf102937e.; Kadir, S., Carey, E., Ennahli, S., 2006a. Influence of high tunnel and field conditions on strawberry growth and development. HortScience 41(2), 329–335.; Kadir, S., Sidhu, G., Al-Khatib, K., 2006b. Strawberry (Fragaria x ananassa Duch.) growth and productivity as affected by temperature. HortScience 41 (6), 1423-1430.; Keutgen, N., Chen, K., Lenz, F. 1997. Responses of strawberry leaf photosynthesis, chlorophyll fluorescence and macronutrient contents to elevated CO2. J. Plant Physiol. 150, 395-400.; Kirschbaum, D.S., Hancock, J.F., 2000. The strawberry industry in South America. HortScience 35(5), 807–811. https://doi.org/10.21273/HORTSCI.35.5.807.; Kirschbaum, D.S., Vicente, C.E., Cano-Torres, M.A., Gambardella, M., Veizaga-Pinto, F.K., Antunes, L.C.E., 2017. Strawberry in South America: from the Caribbean to Patagonia. Acta Hortic. 1156, 947-956. https://doi.org/10.17660/ActaHortic.2017.1156.140.; Kumar, A., Avasthe, R.K., Rameash, K., Pandey, B., Borah, T.R., Denzongpa, R., Rahman, H., 2011. Influence of growth conditions on yield, quality and diseases of strawberry (Fragaria x ananassa Duch.) var Ofra and Chandler under mid hills of Sikkim Himalaya. Scientia Horticulturae 130 (1), 43–48. https://doi.org/10.1016/j.scienta.2011.05.034.; Lambers, H., Chapin III, F.S., Pons, T. L., 2008. Plant physiological ecology. 2nd ed., Springer, Nueva York.; Lamont Jr., W.J., 2009. Overview of the use of high tunnels worldwide. HortTechnology 19 (1), 25–29.; Larcher, W., 2003. Physiological plant ecology: ecophysiology and stress physiology of functional groups. 4th ed., Springer, USA.; Ledesma, N.A., Kawabata, S., 2016. Responses of two strawberry cultivars to severe high temperature stress at different flower development stages. ScientiaHorticulturae 211, 319–327. http://dx.doi.org/10.1016/j.scienta.2016.09.007.; Li, T., Yang, Q., 2015. Advantages of diffuse light for horticultural production and perspectives for further research. Frontiers in Plant Science 6, 704. https://doi.org/10.3389/fpls.2015.00704.; Lozano, D., Ruiz, N., Gavilán, P., 2016. Consumptive water use and irrigation performance of strawberries. Agricultural Water Management 169, 44–51. https://doi.org/10.1016/j.agwat.2016.02.011.; Martínez-Ferri, E., Soria, C., Ariza, M.T., Medina, J.J., Miranda, L., Domínguez, P., Muriel, J.L., 2016. Water relations, growth and physiological response of seven strawberry cultivars (Fragaria x ananassa Duch.) to different water availability. Agricultural Water Management 164, 73–82. https://doi.org/10.1016/j.agwat.2015.08.014.; Maughan, T.L., Black, B.L., Drost, D., 2015. Critical temperature for sub-lethal cold injury of strawberry leaves. Scientia Horticulturae 183, 8–12. http://dx.doi.org/10.1016/j.scientia.2014.12.001.; Maxwell, K., Johnson, G.N., 2000. Chlorophyll fluorescence – a practical guide. Journal of Experimental Botany 51 (345), 659-668.; Mezzetti, B., Giampieri, F., Zhang, Y., Zhong, C., 2018. Status of strawberry breeding programs and cultivation systems in Europe and the rest of the world. Journal of Berry Research 8 (3), 205-221. https://doi.org/10.3233/jbr-180314.; Miao, L., Zhang, Y., Yang, X., Xiao, J., Zhang, H., Zhang, Z., Wang, Y., Jiang, G., 2016. Colored light-quality selective plastic films affect anthocyanin content, enzyme activities, and the expression of flavonoid genes in strawberry (Fragaria x ananassa) fruit. Food Chemistry 207, 93–100. https://doi.org/10.1016/j.foodchem.2016.02.077.; Millán, J.C., 2017. Corredor Tecnológico Agroindustrial hace renacer el agro. Universidad Nacional de Colombia. UN Periódico 212, 10–11. https://unperiodico.unal.edu.co/fileadmin/user_upload/UNPeriodico212-1.pdf (consultado 15 agosto 2019).; Neri, D., Baruzzi, G., Massetani, F., Faedi, W., 2012. Strawberry production in forced and protected culture in Europe as a response to climate change. Can. J. Plant Sci. 92, 1021-1036. https://doi.org/10.4141/cjps2011-276.; Nile, S.H., Park, S.W., 2014. Edible berries: Bioactive components and their effect on human health. Review. Nutrition 30, 134–144. http://dx.doi.org/10.1016/j.nut.2013.04.007.; Palencia, P., Martínez, F., Medina, J.J., Medina, J.L., 2013. Strawberry yield efficiency and its correlation with temperature and solar radiation. Horticultura Brasileira 31, 93-99.; Paliyath, G., Murr, D. P., Handa, A. K., & Lurie, S. (2008). Postharvest biology and technology of fruits, vegetables, and flowers. Nueva York, EE. UU.: Wiley-Blackwell.; Retamal-Salgado, J., Bastías, R.M., Wilckens, R., Paulino, L., 2015. Influence of microclimatic conditions under high tunnels on the physiological and productive responses in blueberry ‘O’Neal’. Chilean Journal of Agricultural Research 75 (3), 291–297. http://dx.doi.org/10.4067/S0718-58392015000400004.; Rosa, H.T., Walter, L. C., Streck, N. A., Andriolo, J. L., da Silva, M. R., Langner, J. A., 2011. Base temperature for leaf appearance and phyllochron of selected strawberry cultivars in a subtropical environment. Bragantia 70 (4), 939–945.; Rubio, S., Alfonso, A., Grijalba, C.M., Pérez, M.M., 2014. Determinación de los costos de producción de la fresa cultivada a campo abierto y bajo macrotúnel. Rev. Colomb. Cienc. Hortic. 8(1), 67–79. https://doi.org/10.17584/rcch.2014v8i1.2801.; Simpson, D., 2018. The economic importance of strawberry crops, en: Hytönen, T., Graham, J., Harrison, R. (Eds.), The Genomes of Rosaceous Berries and Their Wild Relatives. Compendium of Plant Genomes. Springer, Cham, pp.1-7. https://doi.org/10.1007/978-3-319-76020-9_1 .; Singh, A., Syndor, A., Deka, B.C., Singh, R.K., Patel, R.K., 2012. The effect of microclimate inside low tunnels on off-season production of strawberry (Fragaria x ananassa Duch.). Scientia Horticulturae 144, 36–41. http://dx.doi.org/10.1016/j.scienta.2012.06.025.; Sønsteby, A., Heide, O. M., 2006. Dormancy relations and flowering of the strawberry cultivars Korona and Elsanta as influenced by photoperiod and temperature. Scientia Horticulturae 110, 57–67. https://doi.org/10.1016/j.scienta.2006.06.012.; Sun, P., Mantri, N., Lou, H., Hu, Y., Sun, D., Zhu, Y., Dong, T., Lu, H., 2012. Effects of elevated CO2 and temperature on yield and fruit quality of strawberry (Fragaria × ananassa Duch.) at two levels of nitrogen application. PLoS ONE 7 (7), e41000. https://doi.org/10.1371/journal.pone.0041000.; Tabatabaei, S.J., Yusefi, M., Hajiloo, J., 2008. Effects of shading and NO3:NH4 ratio on the yield, quality and N metabolism in strawberry. Scientia Horticulturae 116 (3), 264–272. https://doi.org/10.1016/j.scienta.2007.12.008.; Tewari, S., David, J., Bipasha, D., 2020. A critical review on immune-boosting therapeutic diet against coronavirus (Covid-19). Journal of Science and Technology 5(5), 43-49. https://doi.org/10.46243/jst.2020.v5.i5.pp43-49.; Tongtraibhop, P., Thongthieng, T., Nuengchaknin, C., Pitakpittaya, C. 2009. Yield and quality of strawberry under a low-cost plastic house in tropical climate. Acta Horticulturae 842, 103–106. https://doi.org/10.17660/ActaHortic.2009.842.6; Tsormpatsidis, E., Ordidge, M., Henbest, R.G.C., Wagstaffe, A., Battey, N.H., Hadley, P., 2011. Harvesting fruit of equivalent chronological age and fruit position shows individual effects of UV radiation on aspects of the strawberry ripening process. Environmental and Experimental Botany 74(1), 178–185. https://doi.org/10.1016/j.envexpbot.2011.05.017.; Voća, S., Dobričević, N., Skendrović Babojelić, M., Družić, J., Duralija, B., Levačić, J., 2007. Differences in fruit quality of strawberry cv. Elsanta depending on cultivation system and harvest time. Agriculturae Conspectus Scientificus 72 (4), 285-288.; Wang, J., Yue, C., Gallardo, K., McCracken, V., Luby, J., McFerson, J., 2017. What consumers are looking for in strawberries: Implications from market segmentation analysis. Agribusiness 33 (1), 56–69. https://doi.org/10.1002/agr.21473.; Wang, S.Y., Camp, M.I., 2000. Temperatures after bloom affect plant growth and fruit quality of strawberry. Scientia Horticulturae 85 (3), 183–199. https://doi.org/10.1016/S0304- 4238(99)00143-0.; Wang, S.Y., Zheng, W., 2001. Effect of plant growth temperature on antioxidant capacity in strawberry. Journal of Agricultural and Food Chemistry 49 (10), 4977–4982. https://doi.org/10.1021/jf0106244.; Watson, R., Wright, C.J., McBurney, T., Taylor, A.J., Linforth, R.S.T., 2002. Influence of harvest date and light integral on the development of strawberry flavour compounds. Journal of Experimental Botany 53 (377), 2121-2129. https://doi.org/10.1093/jxb/erf088.; Zhao, X., Carey, E., 2009. Summer production of lettuce, and microclimate in high tunnel and open field plots in Kansas. HortTechnology 19 (1), 113–119.; https://repositorio.unal.edu.co/handle/unal/82177; Universidad Nacional de Colombia; Repositorio Institucional Universidad Nacional de Colombia; https://repositorio.unal.edu.co/
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14Academic Journal
المؤلفون: Molina-Montenegro, Marco A., Badano, Ernesto I., Inostroza, Patricia, Cavieres, Lohengrin A.
المصدر: Ecología Austral (en línea) 2005;01(015):049-058
مصطلحات موضوعية: TASA DE FOTOSINTESIS NETA, FACILITACION, ECOFISIOLOGIA, EFECTO NODRIZA, NET PHOTOSYNTHESIS RATES, FACILITATION, ECOPHYSIOLOGY, NURSE EFFECT
وصف الملف: application/pdf
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15Academic Journal
المؤلفون: Al-Horani, Fuad A.
المصدر: Scientia Marina; Vol. 69 No. 3 (2005); 347-354 ; Scientia Marina; Vol. 69 Núm. 3 (2005); 347-354 ; 1886-8134 ; 0214-8358 ; 10.3989/scimar.2005.69n3
مصطلحات موضوعية: temperature, coral, gross photosynthesis, net photosynthesis, calcification, Galaxea fascicularis, microsensors, temperatura, fotosíntesis total, fotosíntesis neta, calcificación, microsensores
وصف الملف: application/pdf
Relation: https://scientiamarina.revistas.csic.es/index.php/scientiamarina/article/view/263/261; https://scientiamarina.revistas.csic.es/index.php/scientiamarina/article/view/263
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16Academic Journal
المصدر: Ecología Austral, Vol 15, Iss 1 (2005)
مصطلحات موضوعية: tasa de fotosintesis neta, Andes, facilitación, ecofisiología, efecto nodriza, Environmental sciences, GE1-350, Ecology, QH540-549.5
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17Academic Journal
المؤلفون: Molina-Montenegro, Marco A, Badano, Ernesto I., Inostroza, Patricia, Cavieres G., Lohengrin A.
المساهمون: BHL SciELO
مصطلحات موضوعية: Andes, ecofisiologia, Efecto nodriza, Facilitación, Tasa de fotosintesis neta
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18Dissertation/ Thesis
المؤلفون: Arias Giménez, Enrique
المساهمون: Agustí Fonfría, Manuel, Universitat Politècnica de València. Departamento de Producción Vegetal - Departament de Producció Vegetal, Universitat Politècnica de València. Escuela Técnica Superior de Ingeniería Agronómica y del Medio Natural - Escola Tècnica Superior d'Enginyeria Agronòmica i del Medi Natural
مصطلحات موضوعية: Manzana, Aclareo químico, Metamitrona, Brevis®, Fotosíntesis neta, Caída de frutos, Crecimiento de los frutos, Apple tree, Chemical thinning, Metamitron, Net photosynthesis, Fruit drop, Fruit growth, PRODUCCION VEGETAL, Máster Universitario en Ingeniería Agronómica-Master Universitari en Enginyeria Agronòmica
Relation: http://hdl.handle.net/10251/142608
الاتاحة: http://hdl.handle.net/10251/142608
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19
المؤلفون: Arias Giménez, Enrique
المصدر: RiuNet. Repositorio Institucional de la Universitat Politécnica de Valéncia
instnameمصطلحات موضوعية: Metamitrona, Fotosíntesis neta, Net photosynthesis, Caída de frutos, Fruit drop, Apple tree, Brevis®, Aclareo químico, Fruit growth, Máster Universitario en Ingeniería Agronómica-Master Universitari en Enginyeria Agronòmica, Metamitron, Manzana, Chemical thinning, PRODUCCION VEGETAL, Crecimiento de los frutos
وصف الملف: application/pdf
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20
المؤلفون: O Alfredo Jarma, Rodrigo O. Campo, Dairo J. Pérez
المصدر: Revista de Ciencias Agrícolas, Vol 32, Iss 2, Pp 104-112 (2015)
Revista de Ciencias Agrícolas, Volume: 32, Issue: 2, Pages: 104-112, Published: JUL 2015مصطلحات موضوعية: net photosynthesis, fotosíntesis neta, lcsh:S, intercambio gaseoso, General Medicine, gas exchange, lcsh:S1-972, Crop physiology, lcsh:Agriculture, tuberización, Fisiología de cultivos, índices de crecimiento, tuberization, growth indices, lcsh:Agriculture (General)
وصف الملف: text/html