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2021 Vol.39, Issue 1 Preview Page

Research Article

28 February 2021. pp. 62-70
Abstract
References
1
Alpert P (1991) Nitrogen sharing among ramets increases clonal growth in Fragaria chiloensis. Ecology 72:69-80. doi:10.2307/1938903 10.2307/1938903
2
Batzer EE, Martina JP, Elgersma KJ, Goldberg DE (2017) Clonal plant allocation to daughter ramets is a simple function of parent size across species and nutrient levels. Plant Ecol 218:1299-1311. doi:10.1007/s11258-017-0769-z 10.1007/s11258-017-0769-z
3
Caraco T, Kelly CK (1991) On the adaptive value of physiological integration in clonal plants. Ecology 72:81-93. doi:10.2307/1938904 10.2307/1938904
4
Chun C (2016) Propagation and production of strawberry transplants. In T Kozai, G Niu, and M Takagaki, eds, Plant factory: An indoor vertical farming system for efficient quality food production. Academic Press Elsevier, Boston, USA, pp 260-266
5
Chun C, Park SW, Jeong YW, Ko KD (2012) Strawberry propagation method using closed transplant production systems. Korean Patent Application No.10-1210680, 30 April 2012
6
Durner EF, Poling EB, Maas JL (2002) Recent advances in strawberry plug transplant technology. HortTechnol 12:545-550. doi:10.21273/HORTTECH.12.4.545 10.21273/HORTTECH.12.4.545
7
Friedman D, Alpert P (1991) Reciprocal transport between ramets increases growth of Fragaria chiloensis when light and nitrogen occur in separate patches but only if patches are rich. Oecologia 86:76-80. doi:10.1007/BF00317392 10.1007/BF0031739228313161
8
Kim SK, Jeong MS, Park SW, Kim MJ, Na HY, Chun C (2010) Improvement of runner plant production by increasing photosynthetic photon flux during strawberry transplant propagation in a closed transplant production system. Korea J Hortic Sci Technol 28:535-539
9
Kim TI, Kim WS, Choi JH, Jang WS, Seo KS (1999) Comparison of runner production and growth characteristics among strawberry cultivars. Korea J Hortic Sci Technol 17:111-114
10
Klimešová J, Doležal J, Sammul M (2011) Evolutionary and organismic constraints on the relationship between spacer length and environmental conditions in clonal plants. Oikos 120:1110-1120. doi:10.1111/j.1600-0706.2011.19332.x 10.1111/j.1600-0706.2011.19332.x
11
Kozai T (2006) Closed systems for high quality transplants using minimum resources. In SD Gupta and Y Ibaraki, eds, Plant tissue culture enginnering. Springer, Dordrecht, The Netherlands, pp 275-312. doi:10.1007/1-4020-3694-9_15 10.1007/1-4020-3694-9_15
12
Kubota C, Kozai T (2001) Mathematical models for planning vegetative propagation under controlled environments. HortScience 36:49-52. doi:10.21273/HORTSCI.36.1.49 10.21273/HORTSCI.36.1.49
13
Lopp J, Sammul M (2017) The impact of timing of resource availability on clonal propagation of species with different growth forms. Folia Geobot 52:411-422. doi:10.1007/s12224-017-9299-7 10.1007/s12224-017-9299-7
14
Park SW, Kwack Y, Chun C (2018) Growth and propagation rate of strawberry transplants produced in a plant factory with artificial lighting as affected by separation time from stock plants. Hortic Environ Biotechnol 59:199-204. doi:10.1007/s13580-018-0027-x 10.1007/s13580-018-0027-x
15
Rural Development Administration (RDA) (2018) Strawberry, Guideline for agricultural technology 40. Rural Development Administration, Jeonju, Korea, pp 82-96
16
Yamazaki K (1978) Yoeki Saibai zenpen. Hakuyu sha Tokyo, Japan, p 41
Information
  • Publisher :KOREAN SOCIETY FOR HORTICULTURAL SCIENCE
  • Publisher(Ko) :원예과학기술지
  • Journal Title :Horticultural Science and Technology
  • Journal Title(Ko) :원예과학기술지
  • Volume : 39
  • No :1
  • Pages :62-70
  • Received Date : 2020-08-17
  • Revised Date : 2020-08-28
  • Accepted Date : 2020-09-14