Preview

Agricultural Machinery and Technologies

Advanced search

Use of Combined Irradiation in Grow Light

https://doi.org/10.22314/2073-7599-2020-14-2-46-52

Abstract

Effective cultivation of plants with grow light is possible only under optical radiation of a certain spectral composition. The cheapest way to generate optical radiation is with the help of high pressure sodium lamps. However, their spectral composition is not fully acceptable for grow light. LEDs allow you to set almost any spectrum, but their cost is quite high.

(Research purpose) To prove the spectral composition of the LED emitter-corrector used in grow light in addition to sodium lamps theoretically and practically.

(Materials and methods) The authors experimentally studied the effectiveness of combined irradiation in the Laboratory of Energy Ecology of Grow Light at the Institute of Agroengineering and Environmental Problems of Agricultural Production under the irradiation of Blagovest tomato seedlings. They investigated the biometric indicators of plants. The production experiment was carried out in the greenhouse plant Mezhvidi (Latvia) on adult Encore tomato plants for three options: the first – under sodium lamps; the second – with LED irradiators; the third – with a combination of sodium lamps and corrector. The effect of the irradiator on the plants was evaluated by the magnitude of the fluctuating asymmetry of bilateral signs of the leaf blade.

(Results and discussion) The authors found out that the use of the corrector improved the seedlings biometric parameters: increased the number of leaves, their wet weight, the content of chlorophyll and dry substance in them. It was noted that in the greenhouse the least favorable light environment was formed under sodium lamps, and LED irradiators created more comfortable conditions. They confirmed that the use of a corrector provided the best light environment. They revealed an increase in the yield of tomato fruits and their taste when using combined irradiation.

(Conclusions) The authors proved that to correct the spectrum of HPS lamp 400, a corrector photon flux of 71.2 micromoles per second is required, while the ratio of blue and far-red LEDs fluxes should be 64 and 36 percent respectively.

About the Authors

S. A. Rakutko
Institute of Agroengineering and Environmental Problems of Agricultural Production – a branch of the Federal Scientific Agroengineering Center VIM Institute of Agroengineering and Environmental Problems of Agricultural Production – a branch of the Federal Scientific Agroengineering Center VIM
Russian Federation

Sergei A. Rakutko, Dr. Sc.(Eng.), chief researcher

St. Petersburg



E. N. Rakutko
Institute of Agroengineering and Environmental Problems of Agricultural Production – a branch of the Federal Scientific Agroengineering Center VIM
Russian Federation

Elena N. Rakutko, researcher

St. Petersburg



M. R. Ayupov
Scientific-production association «Pskovagroinnovatsii»
Russian Federation

Marat R. Ayupov, general director

Pskov

 



References

1. Dorokhov A.S., Grishin A.P., Grishin A.A. Printsipy sinergetiki i eksergeticheskogo modelirovaniya dlya upravleniya produktsionnymi protsessami v zakrytykh iskustvennykh agroekosistemakh (ZIAES) [The principles of synergetics and exergetic modeling for managing production processes in closed artificial agroecosystems]. Agrotekhnika i energoobespechenie. 2019. N3(24). 128-139 (In Russian).

2. Menard C., Dorais M., Hovi T., Gosselin A. Developmental and physiological responses of tomato and cucumber to additional blue light. Acta Hort. 2006. Vol. 711. 291-296.

3. Nanya K., Ishigami Y., Hikosaka S., Goto E. Effects of blue and red light on stem elongation and flowering of tomato seedlings. Acta Hort. 2012. Vol. 956. 261-266 (In English).

4. Johkan M., Shoji K., Goto F., Hahida S., Yoshihara T. Effect of green light wavelength and intensity on photomorphogenesis and photosynthesis in Lactuca sativa. Environmental and Experimental Botany. 2012. Vol. 75. 128-133 (In English).

5. Prikupets L.B., Tikhomirov A.A. Optimizatsiya spektra izlucheniya pri vyrashchivanii ovoshchej v usloviyakh intensivnoj svetokul’tury.[Optimization of the emission spectrum when growing vegetables in conditions of intense grow light]. Svetotekhnika. 1992. N3. 5-7 (In Russian).

6. Nelson J., Bugbee B. Supplemental greenhouse lighting: Return on investment for LED and HPS fixtures. Controlled Environments. 2013. Paper 2. 216-221 (In English).

7. Wheeler R.M. A historical background of plant lighting: an introduction to the workshop. HortScience. 2008. Vol. 43(7). 1942-1943 (In English).

8. Folta K.M., Koss L.L., McMorrow R., Kim H.H., Kenitz J.D., Wheeler R., Sager J.C. Design and fabrication of adjustable red-green-blue LED light arrays for plant research. BMC Plant Biology. 2005. Vol. 5. 17 (In English).

9. Prikupets L.B., Emelin A.A., Tarakanov I.G. Svetodiodnye obluchateli: iz fitotrona v teplitsu? [ LED irradiators: from a phytotron to a greenhouse. Greenhouses of Russia]. Teplitsy Rossii. 2015. N2. 52-56 (In Russian).

10. Pchelin V.M., Makarova I.E. Ob ekonomicheskoy tselesoobraznosti massovogo vnedreniya svetodiodov v teplichnom osveshchenii v nastoyashchee vremya. [About the economic feasibility of the massive introduction of LEDs in greenhouse lighting today. Greenhouses of Russia]. Teplitsy Rossii. 2017. N4. 6266 (In Russian).

11. Moerkensa R., Vanlommel W., Vanderbruggen R. Van Delm T. 2016. The added value of LED assimilation light in combination with high pressure sodium lamps in protected tomato crops in Belgium. Acta Hortic. 2016. 1134 (In English).

12. Rakutko S., Alsina I., Avotins A., Berzina K. Manifestation of effect of fluctuating asymmetry of bilateral traits of tomato growing in industrial greenhouses. Engineering for rural development proceedings. 2018. 186-191 (In English).


Review

For citations:


Rakutko S.A., Rakutko E.N., Ayupov M.R. Use of Combined Irradiation in Grow Light. Agricultural Machinery and Technologies. 2020;14(2):46-52. (In Russ.) https://doi.org/10.22314/2073-7599-2020-14-2-46-52

Views: 1160


Creative Commons License
This work is licensed under a Creative Commons Attribution 4.0 License.


ISSN 2073-7599 (Print)