Acceso abierto

Effect of Light Conditions and Temperature on Fresh Yield of Some Spice Plants Grown in Containers


Cite

Albright L.D., Both A.J., Chiu A.J. 2000. Controlling greenhouse light to a consistent daily integral. Transactions of the ASAE. 43(2): 421-431.10.13031/2013.2721Search in Google Scholar

Aufhammer W. 1998. Getreide - und andere Körnerfruchtarten. Verlag Eugen Ulmer, Stuttgart: 13-18. [in German]Search in Google Scholar

Both A.J., Albright L.D., Langhans R.W., Reiser R.A., Vinzant B.G. 1997. Hydroponic lettuce production influenced by integrated supplemental light levels in a controlled environment agriculture facility: experimental results. Acta Hort. 418: 45-52.10.17660/ActaHortic.1997.418.5Search in Google Scholar

Brechner M.L., Albright L.D., Weston L.A. 2007. Impact of a variable light intensity at a constant light integral: effects on biomass and production of secondary metabolites by Hypericum perforatum.Acta Hort. 756: 221-228.10.17660/ActaHortic.2007.756.23Search in Google Scholar

Bruggink G.T., Heuvelink E. 1987. Influence of light on the growth of young tomato, cucumber and sweet pepper plants in the greenhouse: Effects on relative growth rate, net assimilation rate and leaf area ratio. Sci. Hort. 31: 161-174.Search in Google Scholar

Charles-Edwards D.A. 1978. An analysis of the photosynthesis and productivity of vegetative crops in the United Kingdom. Ann. Bot. 42: 717-731.10.1093/oxfordjournals.aob.a085506Search in Google Scholar

Farooqi A.H. A., Sangwan N.S., Sangwan R.S. 1999. Effect of different photoperiodic regimes on growth, flowering and essential oil in Mentha species. Plant Growth Reg. 29: 181-187.Search in Google Scholar

Fausey B.A., Heins R.D., Cameron A.C. 2005. Daily light integral affects flowering and quality of greenhouse-grown Achillea, Gaura, and Lavandula.HortScience 40: 114-118.10.21273/HORTSCI.40.1.114Search in Google Scholar

Good E.N., Bell E.D. 1985. Fotosynteza i plon roślin uprawnych. pp. 14-31. In: Biologia plonowania (P.S. Carlson ed.). PWRiL, Warszawa. [in Polish]Search in Google Scholar

Hall D.O., Rao K.K. 1999. Fotosynteza. WNT, Warszawa: 11-22. [in Polish]Search in Google Scholar

Hälvä, S., Craker L.E., Simon J.E., Charles D.J. 1993. Growth and essential oil in dill, Anethum graveolens L. in response to temperature and photoperiod. J. Herbs, Spices and Med. Plants 1: 47-56.Search in Google Scholar

Harris G.P., Scoot M.A. 1968. Studies on the glasshouse carnation: effects of light and temperature on the growth and development of the flower. Ann. Bot. 33: 143-152.10.1093/oxfordjournals.aob.a084262Search in Google Scholar

Heins R.D., Liu B., Runkle E.S. 2000. Regulation of crop growth and development based on enviromental factors. Acta Hort. 516: 13-22.10.17660/ActaHortic.2000.516.1Search in Google Scholar

Jameison P.D., Martin R.J., Francis G.S., Wilson D.R. 1995. Drought effects on biomass production and radiation - use efficiency in barley. Field Crop Res. 43: 77-86.10.1016/0378-4290(95)00042-OSearch in Google Scholar

Jones H.G. 1992. Plants and microclimate: a quantitative approach to enviromental plant physiology. Cambridge University Press, Cambridge: 14-16.Search in Google Scholar

Kozai T., Ohyama K. 2006. Commercialized closed system with artificial lighting for plant production. Acta Hort. 711: 61-70.10.17660/ActaHortic.2006.711.5Search in Google Scholar

Krug H. 1997. Enviromental influences on development, growth and yield, pp. 101-108. In: The physiology of vegetable crops (H.C. Wien ed.). CAB International, Wallingford.Search in Google Scholar

Liu B., Heins R.D. 1997. Plant quality related to the ratio of radiant energy to thermal energy. Acta Hort. 435: 171-182.10.17660/ActaHortic.1997.435.16Search in Google Scholar

Liu B., Heins R.D. 1998. Modeling poinsettia vegetative growth and development: The response to the ratio of radiant to thermal energy. Acta Hort. 465: 171-182.10.17660/ActaHortic.1998.456.15Search in Google Scholar

Masson J., Tremblay N., Gosselin A. 1991. Nitrogen fertilization and HPS supplementary lighting influence vegetable transplant production. I. Transplant growth. J. Amer. Soc. Hort. Sci. 116: 594-598.10.21273/JASHS.116.4.594Search in Google Scholar

Miguel M.G., Duarte F., Venâncio F., Tavares R. 2002. Changes of the chemical composition of the essential oil of Portuguese Thymus mastichina in the course of the vegetation period. Acta Hort. 576: 83-86.10.17660/ActaHortic.2002.576.14Search in Google Scholar

Monteith J.L. 1977. Climate and the efficiency of crop production on Britain. Philosophical Transactions of the Royal Society of London 281: 277-294.10.1098/rstb.1977.0140Search in Google Scholar

Prince S.D. 1991. A model of regional primary production for use with coarse resolution satellite data. Int. J. Remote Sensing 12: 1313-1330.10.1080/01431169108929728Search in Google Scholar

Putievsky E. 1983. Temperature and daylength influences on the growth and germination of sweet basil and oregano. J. Hort. Sci. 58: 583-587.10.1080/00221589.1983.11515160Search in Google Scholar

Runkle E.S., Heins R.D. 2006. Manipulating the light environment to control flowering and morphogenesis of herbaceous plants. Acta Hort. 711: 51-59.10.17660/ActaHortic.2006.711.4Search in Google Scholar

Tei F., Scaife A., Aikman D.P. 1996. Growth of lettuce, onion and red beet. 1. Growth analysis, light interception, and radiation use efficiency. Ann. Bot. 78: 633-643.Search in Google Scholar

Warren-Wilson J. 1981. Analysis of growth, photosynthesis and light interception for single plants and stands. Ann. Bot. 48: 507-512.Search in Google Scholar

eISSN:
1231-0948
Idioma:
Inglés
Calendario de la edición:
2 veces al año
Temas de la revista:
Life Sciences, Plant Science, other