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Influence of Accumulated Hours of Low Temperature in Dormant and Changing Temperature after Bud Breaking on Flowering of Main Apple Cultivars in Korea

휴면기 저온 누적 시간 및 발아 후 변온이 국내 주요 사과품종의 개화에 미치는 영향

  • Kweon, Hun-Joong (Apple Research Institute, National Institute of Horticultural and Herbal Science, Rural Development Administration) ;
  • Park, Moo-Yong (Apple Research Institute, National Institute of Horticultural and Herbal Science, Rural Development Administration) ;
  • Song, Yang-Yik (Plant Variety Protection Division, Korea Seed and Variety Service) ;
  • Sagong, Dong-Hoon (Department of Horticulture, Daegu University)
  • 권헌중 (농촌진흥청 국립원예특작과학원 사과연구소) ;
  • 박무용 (농촌진흥청 국립원예특작과학원 사과연구소) ;
  • 송양익 (국립종자원 품종보호과) ;
  • 사공동훈 (대구대학교 원예학과)
  • Received : 2017.08.04
  • Accepted : 2017.11.11
  • Published : 2017.12.30

Abstract

This study was carried out to examine the base temperature to flowering and the average days to flowering by accumulated hours of low temperature ($5.0^{\circ}C$) or changing temperature after bud breaking. Over-all, the prediction of flowering time in the commercial apple cultivars ('Fuji' and 'Tsugaru') and apple cultivars ('Chukwang', 'Gamhong', 'Hongan', 'Honggeum', 'Hongro', 'Hongso', 'Hwahong', 'Summer dream', 'Sunhong') bred in Korea at the Gunwi region for 4 years (from 2009 to 2012) was investigated. Also, this study estimated the flowering time when the air temperature of Gunwi region rises at $5.0^{\circ}C$ was investigated using the same data. The range of accumulated hours of low temperature (chilling requirement) was from 0 hour to 1,671 hours, and the range of high temperature (heat requirements) to flowering after low temperature treatment was from $5.0^{\circ}C$ to $29.0^{\circ}C$. The treatments of changing temperature after bud breaking were classified as constant temperature treatment (control) and $5.0{\sim}10.0^{\circ}C$ elevation or descent treatments. The results show that the average days to flowering was longer with shorter accumulated hours of low temperature, and the average days from bud breaking to flowering of 0 hour treatment was longer about 2~4 weeks than that of 1,335~1,503 hours treatments. In comparing to apple cultivars, the all cultivars were not flowered under $10.0^{\circ}C$ after bud breaking, and the cultivars with low chilling requirements needed low heat requirements for flowering. The average days to flowering of treatments that the air temperature after bud breaking was controlled about $15.0^{\circ}C$ was shorter about 1~3 weeks than that of treatments was controlled about $10.0^{\circ}C$. In the treatment of changing temperature after bud breaking, the average days from bud breaking to flowering of temperature elevation treatment was shorter than that of constant temperature treatment. By use of these results, the base temperature to flowering of main apple cultivars in Korea was seemed to $10.0^{\circ}C$, and if the air temperature of Gunwi region rises about $5.0^{\circ}C$ than that of current, the flowering time was estimated to be delayed by 1 week.

본 시험은 품종별 개화가 가능한 기준온도와 저온($5.0^{\circ}C$) 누적시간 및 발아 후 변온에 따른 평균 개화소요일수를 구명하여 국내 주요 사과품종('후지', '쓰가루')들과 국내에서 육성한 품종('추광', '감홍', '홍안', '홍금', '홍로', '홍소', '화홍', '섬머드림', '선홍')들의 개화기를 예측하고자 군위지역에서 4년(2009-2012년)동안 조사하였다. 또한, 이들 자료를 이용하여 군위 지역 기온이 현재보다 $5.0^{\circ}C$ 상승되었을 때의 개화시기를 추정하였다. 저온($5.0^{\circ}C$) 누적시간(저온요구도)의 처리 범위는 0~1,671hr 정도였고, 저온 처리 후 개화를 위한 고온(고온요구도) 처리 범위는 $5.0{\sim}29.0^{\circ}C$ 정도였다. 발아 후 변온 처리구들은 항온구(대조구), $5.0{\sim}10.0^{\circ}C$ 상승구 및 하강구로 분류하였다. 결과를 살펴보면, 저온에서의 누적시간이 짧을수록 개화소요일수가 길어지는 경향이 있었으며, 0hr 처리구의 발아 후 개화까지의 소요된 일수는 1,335~1,503hr 처리구보다 2~4주 정도 길었다. 품종 별로는 모든 품종이 발아 후 기온이 $10.0^{\circ}C$ 미만일 때 개화를 하지 못하였고, 저온요구도가 낮은 품종일수록 개화에 필요한 고온요구도가 낮았다. 발아 후 기온을 $15.0^{\circ}C$로 조절된 처리구들의 개화소요일수는 $10.0^{\circ}C$ 처리구들보다 1~3주 정도 빨랐다. 발아 후 변온 처리에서는 발아 후 기온 상승 처리구들의 발아 후 개화까지 소요된 일수가 항온 처리구보다 짧았다. 이상의 결과를 종합해보면, 국내 주요 사과품종들의 개화 기준온도는 $10.0^{\circ}C$로 생각되었으며, 군위지역의 기온이 지금보다 $5.0^{\circ}C$ 정도 상승된다고 가정하면, 개화기는 1주 정도 지연될 것으로 예측되었다.

Keywords

References

  1. Anderson, J. L., and S. D. Seely, 1992: Modeling strategy in pomology: Development of Utah models. Acta Horticulturae 313, 297-306.
  2. Byun, J. Y., S. J. Yun, I. J. Lee, and D. S. Kim, 2014: Plant Physiology (3rd ed.). Byun, J. Y. (Eds.), Hyangmoonsha Press. Seoul, 288-289 and 297. (In Korean)
  3. Cesaraccio, C., D. Spano, R. L. Snyder, and P. Duce, 2004: Chilling and forcing model to predict bud-burst of crop and forest species. Agricultural and Forest Meteorology 126, 1-13. https://doi.org/10.1016/j.agrformet.2004.03.002
  4. Chae, J. C., S. J. Park, B. H. Kang, and S. H. Kim, 2006: Principles of Crop Cultivation (3rd ed.). Chae, J. C. (Ed.), Hyangmoonsha Press, Seoul, 290-292. (In Korean)
  5. Gianfagna, T. J., and S. A. Mehlenbacher, 1985: Importance of heat requirement for bud break and time of flowering in apple. HortScience 20(5), 909-911.
  6. Greer, D. H., J. N. Wunsche, C. L. Norling, and H. N. Wiggins, 2005: Root-zone temperatures affect phenology of bud break, flower cluster development, shoot extension growth and gas exchange of 'Braeburn' (Malus domestica) apple trees. Tree Physiology 26, 105-111.
  7. Hamer, P. J. C., 1980: A model to evaluate evaporative colling of apple buds as a frost protection technique. Journal of Horticultural Science 55(2), 157-163. https://doi.org/10.1080/00221589.1980.11514918
  8. Han, J. H., K. S. Cho, J. J. Choi, H. S. Hwang, C.G. Kim, and T. C. Kim, 2010: Estimation of changes in full bloom date of 'Niitaka' pear tree with global warming. Korean Journal of Horticultural Science and Technology 28(6), 937-941. (in Korean with English abstract)
  9. Jeon, K. S., H. C. Kim, J. H. Han, and T. C. Kim, 2011: Selection of main air temperature factors on annual variation of growth and fruit characteristics of persimmon. Journal of Bio-Environment control 19(3), 165-170. (in Korean with English abstract)
  10. Lee, S. H., I. H. Heo, K. M, Lee, S. Y. Kim, Y. S. Lee, and W. T. Kwon, 2008: Impacts of climate change on phenology and growth of crop: in the case of Naju. Journal of the Korea Geographical Society 43(1), 20-35. (in Korean with English abstract)
  11. Kang, S. M., and S. D. Oh, 2004: Freezing injury. Fruit tree physiology in relation to temperature. S. D. Oh (Eds.), Gilmogm Press, Seoul, Korea, 42-51. (In Korean)
  12. Kim, J. H., J. C. Kim, K. C. Ko, K. R. Kim, and J. C. Lee, 2006: General Pomology (4th ed.). Kim J. H. (Ed.), Hyangmoonsha Press, Seoul, 38-39, 179-180, 188-193 and 202-204. (In Korean)
  13. Kim, S. O., U. Chung, S.H. Kim, I.M. Choi, and J. I. Yun, 2009: The suitable region and site for 'Fuji' apple under the projected climate in South Korea. Korea Journal of Agricultural and Forest Meteorology 11(4), 162-173. (in Korean with English abstract) https://doi.org/10.5532/KJAFM.2009.11.4.162
  14. Kim, D. J., J. H. Kim, and J. I. Yun, 2016a: An agrometeorological reference index for projecting weather-related crop risk under climate change scenario. Korea Journal of Agricultural and Forest Meteorology 16(3), 162-169. (in Korean with English abstract)
  15. Kim, K. H., Y. M. Jeong, Y. S. Cho, and U. Chung, 2016b: Preliminary result of uncertainty on variation of flowering date of kiwifruit: Case study of kiwifruit growing area of Jeonlanam-do. Korea Journal of Agricultural and Forest Meteorology 18(1), 42-54. (in Korean with English abstract) https://doi.org/10.5532/KJAFM.2016.18.1.42
  16. Kweon, H. J., D. H. Sagong, Y. Y. Song, M. Y. Park, S. I. Kwon, and M. J. Kim, 2013: Chilling requirement for breaking of internal dormancy of main apple cultivars in Korea. Korean Journal of Horticultural Science and Technology 31(6), 666-676. (in Korean with English abstract) https://doi.org/10.7235/hort.2013.12206
  17. Mehlenbacher, S. A., and A. M. Voordeckers, 1991: Relationship of flowering time, rate of seed germination, and time of leaf budbreak and usefulness in selecting for late-flowering apples. Journal of the American Society for Horticultural Science 116(3), 565-568.
  18. Nieddu, G., F. Giunta, and M. Mulas, 1990: Influence of postdormant temperatures on bloom time of four almond cultivars. Scientia Horticulturae 43, 63-67. https://doi.org/10.1016/0304-4238(90)90037-F
  19. Noro, S., N. Obara, N. Kudo, S. Saito, and H. Ichinohe, 1986: Estimation of apple bloom date by the development zero and total effective temperature after bud break. Journal of the Japanese Society for Horticultural Science 54(4), 405-415. (in Japanese with English abstract) https://doi.org/10.2503/jjshs.54.405
  20. Richardson, E. A., S. D. Seeley, and D. R. Walker, 1974: A model estimating the completion of the rest for 'Redhaven' and 'Elberta' peach trees. HortScience 9(4), 331-332.
  21. Shin, U. K., and T. C. Kim, 2004: Flowering and fruit set. Fruit tree physiology in relation to temperature. S. D. Oh (Eds.), Gilmogm Press, Seoul, Korea, 153-161. (In Korean)
  22. Sugiura, T., and H. Honjo, 1997: A dynamic model for predicting the flowering date developed using an endodormancy break model and a flower bud development model in Japanese pear. Journal of Agricultural Meteorology 52, 897-900. https://doi.org/10.2480/agrmet.52.897
  23. Swartz, H. J., and L. E. Powell, Jr., 1981: The effect of long chilling requirement on time of bud break in apple. Acta Horticulturae 120, 173-178.
  24. Wertheim, S. J., and H. Schmidt, 2005: Floweing, pollination and fruit set. Fundamentals of Temperate Zone Tree Fruit Production. J. Tromp, J. T. Webster and S. J. Wertheim (Eds.). Backhuys Publishers, Leiden, 220-223.
  25. Yim, Y. J., 2015: Fruit science general (1st ed.). Yim, Y. J. (Ed.), Hyangmoonsha Press, Seoul, 65-66, 159-162, 172-173 and 340-341.
  26. Yun, S. K., K. H. Chung, I. K. Yoon, E. Y. Nam, J. H. Han, D. J. Yu, and H. J. Lee, 2012: Developmental rate equations for predicting blooming date of 'Yumyeong' (Prunus Persica) peach trees. Korea Journal of Agricultural and Forest Meteorology 14(4), 189-195. (in Korean with English abstract) https://doi.org/10.5532/KJAFM.2012.14.4.189