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Outbreak of Rice Panicle Blast in Southern Provinces of Korea in 2014

우리나라 남부지방에서의 2014년 벼 이삭도열병 대발생

  • Kang, Wee Soo (Crop Protection Division, National Institute of Agricultural Sciences, RDA) ;
  • Seo, Myung-Chul (Crop Production & Physiology Division, National Institute of Crop Science, RDA) ;
  • Hong, Seong Jun (Disaster Management Division, Extension Service Bureau, Rural Development Administration) ;
  • Lee, Kyong Jae (Disaster Management Division, Extension Service Bureau, Rural Development Administration) ;
  • Lee, Yong Hwan (Crop Protection Division, National Institute of Agricultural Sciences, RDA)
  • 강위수 (농촌진흥청 국립농업과학원 작물보호과) ;
  • 서명철 (농촌진흥청 국립식량과학원 작물재배생리과) ;
  • 홍성준 (농촌진흥청 농촌지원국 재해대응과) ;
  • 이경재 (농촌진흥청 농촌지원국 재해대응과) ;
  • 이용환 (농촌진흥청 국립농업과학원 작물보호과)
  • Received : 2019.11.30
  • Accepted : 2019.12.20
  • Published : 2019.12.31

Abstract

Rice panicle blast occurred severely in southern provinces of Korea in 2014. The proportion of panicle blast incidence area to cultivated area of rice were 11.0% and 14.6% in Jeollanam-do and Gyeongsangnam-do, respectively. To identify the causal factors of the outbreak, we investigated weather conditions in August, amount of cultivated area of mainly grown cultivars, and nitrogen contents in plants with different disease incidences in 2014. 'Saenuri,' 'Ilmibyeo,' 'Unkwang,' 'Dongjin 1 ho,' 'Nampyeongbyeo,' and 'Hwangkeumnuri' were mainly grown cultivars. Monthly average of daily air temperature in August 2014 was 3.2℃ and 3.1℃ less than 2018 in Haenam and Miryang, respectively. Rainfall in August 2014 was 70.0% and 42.0% greater than 2018 in Haenam and Miryang, respectively. The numbers of blast warning days in August calculated nationwide using a forecast model for blast infection were higher in 2014 than in 2018, and they were in high level throughout the country in 2014. Nitrogen contents in plant samples from high-incidence plots were significantly higher than those from low-incidence plots. Consequently, excessive use of nitrogen fertilizers was the main factor for the disease outbreak at the level of specific farms, in addition to the collective cultivation of susceptible cultivar, low temperatures and frequent rainfalls in August.

지난 2014년에 전남의 나주, 해남, 영암, 고흥, 장흥 등과, 경남의 밀양, 진주, 고성 등에서 이삭도열병이 심하게 발생하여 벼의 재배면적 대비 발생면적 비율이 전남은 11.0%, 경남은 14.6%에 달하였다. 본 연구에서는 남부지방의 주된 발생지역들에 대하여 2014년 8월의 기상 환경, 품종별 재배 면적 차이, 식물체 질소함량에 따른 이삭도열병 발생 정도에 대하여 분석함으로써, 2014년 남부지방 이삭도열병 대발생의 원인을 구명하였다. 2014년에 각 시도 안에서 10,000 ha 이상 재배된 품종으로는 새누리, 일미벼, 황금누리, 운광, 동진1호, 남평벼 등이 있었다. 2014년의 8월 한 달 동안의 평균기온은 해남과 밀양에서 2018년보다 각각 3.2℃, 3.1℃ 낮고 평년보다 1.5℃, 1.3℃ 낮았다. 강수량은 해남과 밀양에서 2018년보다 각각 70.0%, 42.0% 많고 평년보다 40.1%, 125.7% 많았다. 도열병 감염 위험 예측모형에 의한 8월의 감염 경보 발생일수는 2014년이 2018년보다 많았고, 2014년은 전국적으로 발생일수가 많았다. 식물체의 질소함량은 병 발생이 심한 포장(병든이삭률 60% 이상)이 적은 포장(10% 이하)보다 유의하게 높았다. 결론적으로, 2014년에 특정 지역에서 이삭도열병이 대발생한 것은 감수성 품종이 재배되고 저온과 잦은 강우도 있었지만, 특히 질소질 비료가 다량으로 시용된 점이 특정 필지를 중심으로 다 발생하게 한 주요 원인이었다.

Keywords

References

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