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The effects of biomaterials in growing medium on the response of Zelkova serrata in a containerized production system

  • Youn, Woo-Bin (Department of Environment & Forest Resources, Chungnam National University) ;
  • Han, Si-Ho (Department of Environment & Forest Resources, Chungnam National University) ;
  • Seo, Jeong-Min (Department of Environment & Forest Resources, Chungnam National University) ;
  • Aung, Aung (Department of Environment & Forest Resources, Chungnam National University) ;
  • Dao, Huong Thi Thuy (Department of Environment & Forest Resources, Chungnam National University) ;
  • An, Ji-Young (Institute of Agricultural Science in College of Agriculture and Life Sciences, Chungnam National University) ;
  • Park, Byung-Bae (Department of Environment & Forest Resources, Chungnam National University) ;
  • Cho, Min-Seok (Forest Technology and Management Research Center, National Institute of Forest Science)
  • 투고 : 2019.06.24
  • 심사 : 2019.09.16
  • 발행 : 2019.12.31

초록

Changes in the physical and chemical properties of soil materials during the nursing process have a great influence on the quality of containerized seedlings and on growth and survival after planting. In this study, the effect of biomaterials and their mixed ratios on the growth of Zelkova serrata seedlings in a containerized seedling production system was investigated. Mushroom sawdust, pine bark, and carbonized rice husk were used as biomaterials. The mixed ratios were 10% and 20% volume ratio of the growing medium volume, including the untreated controls. There was no significant difference in the height growth of the Zelkova serrata seedlings according to the biomaterials. The root collar diameter was the highest with the 20% carbonized rice husk and the lowest with the mushroom sawdust. The difference between the highest quality index and the lowest quality index was 30% in the order of the carbonized rice husk, pine bark, control, and mushroom sawdust, but there was no statistical significance. In this study, if the growing medium mixed with biomaterials does not reduce the seedling growth compared with the control, it is considered that the biomaterial can replace a part of the growing media. Therefore, the results show that some of the growing media can be replaced with carbonized rice husk or pine bark when producing Zelkova serrata seedlings.

키워드

참고문헌

  1. Aung A, Youn WB, Seo JM, Dao HTT, Han SH, Cho MS, Park BB. 2019. Effects of three biomaterials mixed with growing media on seedling quality of Prunus sargentii. Forest Science and Technology 15:13-18. https://doi.org/10.1080/21580103.2018.1557564
  2. Bayala J, Dianda M, Wilson J, Ouedraogo SJ, Sanon K. 2009. Predicting field performance of five irrigated tree species using seedling quality assessment in Burkina Faso, West Africa. New Forest 38:309-322. https://doi.org/10.1007/s11056-009-9149-4
  3. Benito M, Masaguer A, De Antonio R, Moliner A. 2005. Use of pruning waste compost as a component in soilless growing media. Bioresource Technology 96:597-603. https://doi.org/10.1016/j.biortech.2004.06.006
  4. Boyer CR, Fain GB, Gilliam CH, Gallagher TV, Torbert HA, Sibley JL. 2008. Clean chip residual: A substrate component for growing annuals. HortTechnology 18:423-432. https://doi.org/10.21273/horttech.18.3.423
  5. Boyer CR, Torbert HA, Gilliam CH, Fain GB, Gallagher TV, Sibley JL. 2012. Nitrogen immobilization in plant growth substrates: Clean chip residual, pine bark, and peatmoss. International Journal of Agronomy 2012. Article ID 978528.
  6. Bustamante MA, Paredes C, Moral R, Agullo E, Perez-Murcia MD, Abad M. 2008. Composts from distillery wastes as peat substitutes for transplant production. Resources, Conservation and Recycling 52:792-799. https://doi.org/10.1016/j.resconrec.2007.11.005
  7. Castillo JV. 2004. Inoculating composted pine bark with beneficial organisms to make a disease suppressive compost for container production in Mexican forest nurseries. Native Plants Journal 5:181-185. https://doi.org/10.2979/NPJ.2004.5.2.181
  8. Cho MS, Meng L, Song JH, Han SH, Bae KK, Park BB. 2017. The effects of biochars on the growth of Zelkova serrata seedlings in a containerized seedling production system. Forest Science and Technology 13:25-30. https://doi.org/10.1080/21580103.2017.1287778
  9. Choi JM, Kim IY, Kim BK. 2009. Root substrates. Hackyesa, Daejeon, Korea. [in Korean]
  10. Dao HTT, Youn WB, Han SH, Seo JM, Aung A, An JY, Park BB. 2019. Effects of biomaterials mixed with artificial soil on seedling quality of Fraxinus Rhynchophylla in a containerized production system. Journal of Forest and Environmental Science 35:25-30. https://doi.org/10.7747/JFES.2019.35.1.25
  11. Deans JD, Mason WL, Cannell MGR, Sharpe AL, Sheppard LJ. 1989. Growing regimes for bare-root stock of Sitka spruce, Douglas-fir and Scots pine. 1. Morphology at the end of the nursery phase. Forestry 62:53-60.
  12. Dickson A, Leaf AL, Hosner JF. 1960. Quality appraisal of white spruce and white pine seedling stock in nurseries. The Forestry Chronicle 36:10-13. https://doi.org/10.5558/tfc36010-1
  13. Gomez C, Robbins J. 2011. Pine bark substrates amended with parboiled rice hulls: Physical properties and growth of container-grown Spirea during long-term nursery production. HortScience 46:784-790. https://doi.org/10.21273/hortsci.46.5.784
  14. Gorham E. 1991. Northern peatlands: Role in the carbon cycle and probable responses to climatic warming. Ecological applications 1:182-195. https://doi.org/10.2307/1941811
  15. Gruda N, Schnitzler WH. 2004a. Suitability of wood fiber substrate for production of vegetable transplants: I. Physical properties of wood fiber substrates. Scientia Horticulturae 100:309-322. https://doi.org/10.1016/j.scienta.2003.10.001
  16. Gruda N, Schnitzler WH. 2004b. Suitability of wood fiber substrate for production of vegetable transplants: II. The effect of wood fiber substrates and their volume weights on the growth of tomato transplants. Scientia Horticulturae 100:333-340. https://doi.org/10.1016/j.scienta.2003.09.004
  17. Han SH, Byun JK, Cho MS, An JY, Park GS, Kim SB, Park BB. 2016. The effects of 7 fertilizers on the growth and nutrient concentrations of Fraxinus rhynchophylla, Fraxinus mandshurica, Pinus koraiensis, and Abies holophylla seedlings. Journal of Korean Forest Society 105:177-185. [in Korean] https://doi.org/10.14578/JKFS.2016.105.2.177
  18. Jackson BE, Wright RD, Seiler JR. 2009. Changes in chemical and physical properties of pine tree substrate and pine bark during long-term nursery crop production. HortScience 44:791-799. https://doi.org/10.21273/hortsci.44.3.791
  19. Jung JY, Lim KB, Kim JS, Park HM, Yang JK. 2015. Utilization of wood by-product and development of horticultural growing media. Korean Journal of Horticultural Science and Technology 33:435-442. [in Korean] https://doi.org/10.7235/hort.2015.14161
  20. Kalderis D, Kotti MS, Mendez A, Gasco G. 2014. Characterization of hydrochars produced by hydrothermal carbonization of rice husk. Solid Earth 5:477-483. https://doi.org/10.5194/se-5-477-2014
  21. KCS (Korea Customs Service). 2000. Statistical yearbook of foreign trade. pp. 1029-1031. Korea Customs Service, Daejeon, Korea. [in Korean]
  22. Kim CH, Oh TS, Shin DG, Cho YK, Kim YW, Ann SW. 2014. Study on the development of horticultural media using recycled used-mushroom-media. Journal of Environmental Science International 23:303-312. [in Korean] https://doi.org/10.5322/JESI.2014.23.2.303
  23. Kim GW, Kim TJ, S, Kim TY, Kim PJ. 2012. Effective controlling pH of bottom ash as an alternative of zeolite in rice seedling bed soil. pp. 135-136. Korean Society of Soil Sciences and Fertilizer Abstracts, Korea. [in Korean]
  24. Kim HS, Kim KH. 2011. Physical properties of the horticultural substrate according to mixing ratio of peatmoss, perlite and vermiculite. Korean Journal of Soil Science and Fertilizer 44:321-330. [in Korean] https://doi.org/10.7745/KJSSF.2011.44.3.321
  25. Kim JY, Kim KM, Sohn JK. 2003. Effect of nursery soil made of expanded rice hull on rice seedling growth. Korean Journal of Crop Science 48:179-183. [in Korean]
  26. Kim LY, Ahn I. 2002. Characteristics and distribution of the soil in Korea. Soil and Fertilizer 10:17-33. [in Korean]
  27. Laiche Jr AJ, Nash VE. 1986. Evaluation of pine bark, pine bark with wood, and pine tree chips as components of a container plant growing media. Journal of Environmental Horticulture 4:22-25. https://doi.org/10.24266/0738-2898-4.1.22
  28. Landis TD, Tinus RW, McDonald SE, Barnett JP. 1990. Containers and growing media, Vol. 2 of The container tree nursery manual, agricultural handbook 674. pp. 1-86. US Department of Agriculture, Forest Service, Washington, D.C., USA.
  29. Lee CJ, Cheong JC, Jhune CS, Kim SH. 2009. Applicability of spent mushroom media as horticultural nursery media. Korean Journal of Soil Science and Fertilizer 42:117-122. [in Korean]
  30. Lei O, Zhang R. 2013. Effects of biochars derived from different feedstocks and pyrolysis temperatures on soil physical and hydraulic properties. Journal of Soils and Sediments 13:1561-1572. https://doi.org/10.1007/s11368-013-0738-7
  31. Medina E, Paredes C, Perez-Murcia MD, Bustamante MA, Moral R. 2009. Spent mushroom substrates as component of growing media for germination and growth of horticultural plants. Bioresource Technology 100:4227-4232. https://doi.org/10.1016/j.biortech.2009.03.055
  32. Miller JH, Jones N. 1995. Organic and compost-based growing media for tree seedling nurseries. World Bank Tech. Pap. No. 264, Forestry Series. The World Bank. Washington, D.C., USA.
  33. Mukome FN, Zhang X, Silva LC, Six J, Parikh SJ. 2013. Use of chemical and physical characteristics to investigate trends in biochar feedstocks. Journal of Agricultural and Food Chemistry 61:2196-2204. https://doi.org/10.1021/jf3049142
  34. Oh TS, Kim CH, Shin DG, Cho YK, Kim YW. 2013. Study on Usefulness of used Flammulina velutipesmedia for horticultural crops. Journal of the Korean Society of International Agricultue 25:448-453. [in Korean] https://doi.org/10.12719/KSIA.2013.25.4.448
  35. Park EY, Choi JM. 2014. Development of root media containing pine bark for cultivation of horticultural crops. Korean Journal of Horticultural Science and Technology 32:499-506. [in Korean] https://doi.org/10.7235/hort.2014.13018
  36. Park EY, Choi JM, Shim CY. 2014. Development of root media containing carbonized and expanded rice hull for container cultivation of horticultural crops. Korean Journal of Horticultural Science and Technology 32:157-164. [in Korean] https://doi.org/10.7235/hort.2014.13002
  37. Park JA, Park SY, Ko JW, Paek KY. 2013. Effect of ALC (autoclaved lightweight concrete) as perlite alternatives on growth of three foliage plants. p. 156. Horiticulture Abstract, Korea. [in Korean]
  38. Park WK, Lee KH. 2007. Changes in the species of woods used for Korean ancient and historic architectures. Journal of Architectural History 16:9-28. [in Korean]
  39. Seo JM, An JY, Park BB, Han SH, Youn WB, Aung A, Dao HTT, Cho MS. 2019. The effects of additive biomaterials and their mixed-ratios in growing medium on the growth of Quercus serrata container seedlings. Korean Journal of Agricultural Science 46:93-102. [in Korean] https://doi.org/10.7744/KJOAS.20180093
  40. Shaw AJ, Devos N, Cox CJ, Boles SB, Shaw B, Buchanan AM, Cave L, Seppelt R. 2010. Peatmoss (Sphagnum) diversification associated with Miocene Northern Hemisphere climatic cooling? Molecular Phylogenetics and Evolution 55:1139-1145. https://doi.org/10.1016/j.ympev.2010.01.020
  41. Shim CY, Kim CH, Park IS, Choi JM. 2016. Physicochemical properties of various blends of peatmoss and perlite and the selection of rooting media for different growing seasons. Korean Journal of Horticultural Science and Technology 34:886-897. [in Korean]
  42. Song CY, Park JM, Choi JM, Bang CS, Lee JS. 1996. Effect of composted rice-hull on physicochemical properties of growing media and growth of petunia hybrid. Journal of the Korean Society for Horticultural Science 37:451-455. [in Korean]
  43. Wright RD, Browder JF, Jackson BE. 2006. Ground pine chips as a substrate for container-grown woody nursery crops. Journal of Environmental Horticulture 24:181-184. https://doi.org/10.24266/0738-2898-24.4.181
  44. Zaller JG. 2007. Vermicompost as a substitute for peat in potting media: Effects on germination, biomass allocation, yields and fruit quality of three tomato varieties. Scientia Horticulturae 112:191-199. https://doi.org/10.1016/j.scienta.2006.12.023
  45. Zhang RH, Duan Z, Li Z. 2012. Use of spent mushroom substrate as growing media for tomato and cucumber seedlings. Pedosphere 22:333-342. https://doi.org/10.1016/S1002-0160(12)60020-4