• 제목/요약/키워드: climatic factors

검색결과 425건 처리시간 0.025초

논벼 장.단간품종의 증발산제계수와 건물량과의 관계에 대한 연구(I) (Studies on Relations between Various Coeffcients of Evapo-Transpiration and Quantities of Dry Matters for Tall-and Short Statured Varieties of Paddy Rice)

  • 류한열;김철기
    • 한국농공학회지
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    • 제16권2호
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    • pp.3361-3394
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    • 1974
  • The purpose of this thesis is to disclose some characteristics of water consumption in relation to the quantities of dry matters through the growing period for two statured varieties of paddy rice which are a tall statured variety and a short one, including the water consumption during seedling period, and to find out the various coefficients of evapotranspiration that are applicable for the water use of an expected yield of the two varieties. PAL-TAL, a tall statured variety, and TONG-lL, a short statured variety were chosen for this investigation. Experiments were performed in two consecutive periods, a seedling period and a paddy field period, In the investigation of seedling period, rectangular galvanized iron evapotranspirometers (91cm${\times}$85cm${\times}$65cm) were set up in a way of two levels (PAL-TAL and TONG-lL varieties) with two replications. A standard fertilization method was applied to all plots. In the experiment of paddy field period, evapotanspiration and evaporation were measured separately. For PAL-TAL variety, the evapotranspiration measurements of 43 plots of rectangular galvanized iron evapotranspirometer (91cm${\times}$85cm${\times}$65cm) and the evaporation measurements of 25 plots of rectangular galvanized iron evaporimeter (91cm${\times}$85cm${\times}$15cm) have been taken for seven years (1966 through 1972), and for TONG-IL variety, the evapotranspiration measurements of 19 plots and the evaporation measurements of 12 plots have been collected for two years (1971 through 1972) with five different fertilization levels. The results obtained from this investigation are summarized as follows: 1. Seedling period 1) The pan evaporation and evapotranspiration during seedling period were proved to have a highly significant correlation to solar radiation, sun shine hours and relative humidity. But they had no significant correlation to average temperature, wind velocity and atmospheric pressure, and were appeared to be negatively correlative to average temperature and wind velocity, and positively correlative to the atmospheric pressure, in a certain period. There was the highest significant correlation between the evapotranspiration and the pan evaporation, beyond all other meteorological factors considered. 2) The evapotranpiration and its coefficient for PAL-TAL variety were 194.5mm and 0.94∼1.21(1.05 in average) respectively, while those for TONG-lL variety were 182.8mm and 0.90∼1.10(0.99 in average) respectively. This indicates that the evapotranspiration for TONG-IL variety was 6.2% less than that for PAL-TAL variety during a seedling period. 3) The evapotranspiration ratio (the ratio of the evapotranspiration to the weight of dry matters) during the seedling period was 599 in average for PAL-TAL variety and 643 for TONG-IL variety. Therefore the ratio for TONG-IL was larger by 44 than that for PAL-TAL variety. 4) The K-values of Blaney and Criddle formula for PAL-TAL variety were 0.78∼1.06 (0.92 in average) and for TONG-lL variety 0.75∼0.97 (0.86 in average). 5) The evapotranspiration coefficient and the K-value of B1aney and Criddle formular for both PAL-TAL and TONG-lL varieties showed a tendency to be increasing, but the evapotranspiration ratio decreasing, with the increase in the weight of dry matters. 2. Paddy field period 1) Correlation between the pan evaporation and the meteorological factors and that between the evapotranspiration and the meteorological factors during paddy field period were almost same as that in case of the seedling period (Ref. to table IV-4 and table IV-5). 2) The plant height, in the same level of the weight of dry matters, for PAL-TAL variety was much larger than that for TONG-IL variety, and also the number of tillers per hill for PAL-TAL variety showed a trend to be larger than that for TONG-IL variety from about 40 days after transplanting. 3) Although there was a tendency that peak of leaf-area-index for TONG-IL variety was a little retarded than that for PAL-TAL variety, it appeared about 60∼80 days after transplanting. The peaks of the evapotranspiration coefficient and the weight of dry matters at each growth stage were overlapped at about the same time and especially in the later stage of growth, the leaf-area-index, the evapotranspiration coefficient and the weight of dry matters for TONG-IL variety showed a tendency to be larger then those for PAL-TAL variety. 4) The evaporation coefficient at each growth stage for TONG-IL and PAL-TALvarieties was decreased and increased with the increase and decrease in the leaf-area-index, and the evaporation coefficient of TONG-IL variety had a little larger value than that of PAL-TAL variety. 5) Meteorological factors (especially pan evaporation) had a considerable influence to the evapotranspiration, the evaporation and the transpiration. Under the same meteorological conditions, the evapotranspiration (ET) showed a increasing logarithmic function of the weight of dry matters (x), while the evaporation (EV) a decreasing logarithmic function of the weight of dry matters; 800kg/10a x 2000kg/10a, ET=al+bl logl0x (bl>0) EV=a2+b2 log10x (a2>0 b2<0) At the base of the weight of total dry matters, the evapotranspiration and the evaporation for TONG-IL variety were larger as much as 0.3∼2.5% and 7.5∼8.3% respectively than those of PAL-TAL variety, while the transpiration for PAL-TAL variety was larger as much as 1.9∼2.4% than that for TONG-IL variety on the contrary. At the base of the weight of rough rices the evapotranspiration and the transpiration for TONG-IL variety were less as much as 3.5% and 8.l∼16.9% respectively than those for PAL-TAL variety and the evaporation for TONG-IL was much larger by 11.6∼14.8% than that for PAL-TAL variety. 6) The evapotranspiration coefficient, the evaporation coefficient and the transpiration coefficient and the transpiration coefficient were affected by the weight of dry matters much more than by the meteorological conditions. The evapotranspiratioa coefficient (ETC) and the evaporation coefficient (EVC) can be related to the weight of dry matters (x) by the following equations: 800kg/10a x 2000kg/10a, ETC=a3+b3 logl0x (b3>0) EVC=a4+b4 log10x (a4>0, b4>0) At the base of the weights of dry matters, 800kg/10a∼2000kg/10a, the evapotranspiration coefficients for TONG-IL variety were 0.968∼1.474 and those for PAL-TAL variety, 0.939∼1.470, the evaporation coefficients for TONG-IL variety were 0.504∼0.331 and those for PAL-TAL variety, 0.469∼0.308, and the transpiration coefficients for TONG-IL variety were 0.464∼1.143 and those for PAL-TAL variety, 0.470∼1.162. 7) The evapotranspiration ratio, the evaporation ratio (the ratio of the evaporation to the weight of dry matters) and the transpiration ratio were highly affected by the meteorological conditions. And under the same meteorological condition, both the evapotranspiration ratio (ETR) and the evaporation ratio (EVR) showed to be a decreasing logarithmic function of the weight of dry matters (x) as follows: 800kg/10a x 2000kg/10a, ETR=a5+b5 logl0x (a5>0, b5<0) EVR=a6+b6 log10x (a6>0 b6<0) In comparison between TONG-IL and PAL-TAL varieties, at the base of the pan evaporation of 343mm and the weight of dry matters of 800∼2000kg/10a, the evapotranspiration ratios for TONG-IL variety were 413∼247, while those for PAL-TAL variety, 404∼250, the evaporation ratios for TONG-IL variety were 197∼38 while those for PAL-TAL variety, 182∼34, and the transpiration ratios for TONG-IL variety were 216∼209 while those for PAL-TAL variety, 222∼216 (Ref. to table IV-23, table IV-25 and table IV-26) 8) The accumulative values of evapotranspiration intensity and transpiration intensity for both PAL-TAL and TONG-IL varieties were almost constant in every climatic year without the affection of the weight of dry matters. Furthermore the evapotranspiration intensity appeared to have more stable at each growth stage. The peaks of the evapotranspiration intensity and transpiration intensity, for both TONG-IL and PAL-TAL varieties, appeared about 60∼70 days after transplanting, and the peak value of the former was 128.8${\pm}$0.7, for TONG-IL variety while that for PAL-TAL variety, 122.8${\pm}$0.3, and the peak value of the latter was 152.2${\pm}$1.0 for TONG-IL variety while that for PAL-TAL variety, 152.7${\pm}$1.9 (Ref.to table IV-27 and table IV-28) 9) The K-value in Blaney & Criddle formula was changed considerably by the meteorological condition (pan evaporation) and related to be a increasing logarithmic function of the weight of dry matters (x) for both PAL-TAL and TONG-L varieties as follows; 800kg/10a x 2000kg/10a, K=a7+b7 logl0x (b7>0) The K-value for TONG-IL variety was a little larger than that for PAL-TAL variety. 10) The peak values of the evapotranspiration coefficient and k-value at each growth stage for both TONG-IL and PAL-TAL varieties showed up about 60∼70 days after transplanting. The peak values of the former at the base of the weights of total dry matters, 800∼2000kg/10a, were 1.14∼1.82 for TONG-IL variety and 1.12∼1.80, for PAL-TAL variety, and at the base of the weights of rough rices, 400∼1000 kg/10a, were 1.11∼1.79 for TONG-IL variety and 1.17∼1.85 for PAL-TAL variety. The peak values of the latter, at the base of the weights of total dry matters, 800∼2000kg/10a, were 0.83∼1.39 for TONG-IL variety and 0.86∼1.36 for PAL-TAL variety and at the base of the weights of rough rices, 400∼1000kg/10a, 0.85∼1.38 for TONG-IL variety and 0.87∼1.40 for PAL-TAL variety (Ref. to table IV-18 and table IV-32) 11) The reasonable and practicable methods that are applicable for calculating the evapotranspiration of paddy rice in our country are to be followed the following priority a) Using the evapotranspiration coefficients based on an expected yield (Ref. to table IV-13 and table IV-18 or Fig. IV-13). b) Making use of the combination method of seasonal evapotranspiration coefficient and evapotranspiration intensity (Ref. to table IV-13 and table IV-27) c) Adopting the combination method of evapotranspiration ratio and evapotranspiration intensity, under the conditions of paddy field having a higher level of expected yield (Ref. to table IV-23 and table IV-27). d) Applying the k-values calculated by Blaney-Criddle formula. only within the limits of the drought year having the pan evaporation of about 450mm during paddy field period as the design year (Ref. to table IV-32 or Fig. IV-22).

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자연 정화작용 연구: I. 갯벌과 농지 상층수중 유 ${\cdot}$ 무기 원소의 거동에 관한 예비 연구 (Self-purification Mechanisms in Natural Environments of Korea: I. A Preliminary Study on the Behavior of Organic/Inorganic Elements in Tidal Flats and Rice Fields)

  • 최강원;조영길;최만식;이복자;현정호;강정원;정회수
    • 한국해양학회지:바다
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    • 제5권3호
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    • pp.195-207
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    • 2000
  • 우리나라 갯벌과 농지내 유 ${\cdot}$ 무기 원소의 거동을 이해하기 위해 제한된 환경의 실험실 수조에서 예비실험을 수행하였다. 총 6개의 아크릴 투명 수조에 갯벌 퇴적물 3종 SW1&2(anoxic, silty mud), SW3&4(anoxic, mud), SW5&6(suboxic, mud)과 농지 토양 3종 FW1&2(벼 포기 포함), FW3&4(벼 포기 제외), FW5&6(간척 농지,펴 포기 제외)을 채운 후 오염물질(구리, 비소, 카드뮴, 크롬, 납, 수은, Glucose+Glutamic acid)이 주입된 해수와 담수를 각각 SW 및 FW수조에 넣고, 2주일에 걸쳐 상층수 및 표층 퇴적물/토양을 채취 ${\cdot}$ 분석하였다. 분석 결과 FW와 SW상층수 중 질산염 이온의 농도는 각각 700${\sim}$800 ${\mu}$M, 2${\sim}$5 ${\mu}$M로 FW에서 현저히 높았고, 인산염 이온의 농도는 각각 3${\sim}$4 ${\mu}$M, 1${\sim}$2 ${\mu}$M(SW1 제외)로 FW에서 약간 높았다. 특이하게 SW1에서 인산염 이온은 시간이 지남에 따라 수 십 ${\mu}$M에 이르는 높은 농도로 증가하였다. 한편, 표층 퇴적물/토양 중 박테리아 세포 수는 FW1&3에서 평균 2.5${\times}$10$^9$cells/g dry sediment으로 SW의 평균 3.0${\times}$10$^8$cells/g dry sediment 보다 약 10배가 높았다. FW5 토양 중 박테리아 세포 수(3.5${\times}$10$^8$cells/g dry sediment)는 SW 퇴적물 중 숫자와 유사하였다. SW 퇴적물 중 MUF-Phosphate 활성도는 100-200 nM/ml/hr이지만 FW5&6을 제외한 FW 토양에서는 약 2,000 nM/ml/hr로 현저히 크게 나타났다. ${\beta}$-D-Cellobiose, ${\alpha}$-D-Glucose, 그리고 ${\beta}$-D-Glucos의 활성도 또한 FW 퇴적물에서 큰 값을 보였다. 그러나 FW5&6 토양 중 효소활성도는 SW 퇴적물에서의 값과 유사했다. 수조 상층수 중 Cu, Cd, As 농도는 모든 FW, SW수조에서 시간이 지남에 따라 일관성 있게 감소하였고, 제거속도는 Cu가 다른 원소에 비해 빨랐다. 제거속도는 FW 3개 수조 중 FW5&6에서 세 원소 모두 가장 느렸고, SW 3개 수조 중에서는 SW1&2에서 가장 빨랐다. SW와 FW간 제거속도 차이는 세 원소 모두 명확치 않았다 Cr은 FW에서 전반적으로 감소하는 경향을 보였지만 SW에서는 실험 초기에 감소하다 24시간 이후에는 증가 후 일정한 양상을 보였다. Pb은 FW에서 전반적으로 감소했지만 SW에서는 초기에 급격히 증가 후 다시 급격히 감소하는 양상을 보였다 Pb 또한 Cu, Cd, As와 마찬가지로 SW1&2에서 제거속도가 가장 빠르게 나타났다. FW 상층수 중 Hg는 시간에 따라 급격히 감소했고, 제거속도는 Fw5&6에서 가장 느렸다. 이러한 결과에 근거할 때 벼가 자라고 있고 이분해성 유기물이 풍부한 FW1&2, FW3&4 토양과 상층수에서는 유기물의 분해 활동이 활발하였지만, 벼가 경작되지 않는 FW5&6과 SW 에서는 유기물이 상대적으로 결핍되어 유기물의 분해활동이 적었을 것으로 판단된다. 한편, 수조에 인위적으로 유기물을 첨가한 경우 박테리아 세포수는 SW1에서 164시간 동안 4배 증가하였으나 SW3과 SW5에서는 각각 2.7배, 1.5배 그리고 FW1&3&5의 경우 각각 약 2배, 1.7배, 0.6배 정도만 증가하였다. Cu, Cd, As등 친 유기성 원소들의 시간에 따른 농도 감소 그리고 이들 원소(Hg 포함) 농도 감소 속도가 유기물이 적은 FW5&6에서 상대적으로 느리게 나타난 결과 등은 이들 금속들이 부유 입자 표면의 유기물과 결합 ${\cdot}$ 침적되어 퇴적물로 제거되었기 때문에 나타난 결과로 생각된다. 한편, SW1&2에서 이들 원소의 제거 속도가 빨랐고 인산염 이온의 농도가크게 증가했던 원인은 SW3&4에 비해 상대적으로 공극이 큰 퇴적물로 채워진 SW1&2 퇴적물의 공극수 중 황화수소, 인산염 이온 등이 퇴적물 상층수로 쉽게 확산 ${\cdot}$ 공급되었고, 그 결과 Cu, Cd, As 등 금속 이온이 황화수소 이온과 결합 ${\cdot}$ 제거된 까닭으로 생각된다. 종합적으로 수조 상층수중 유 ${\cdot}$ 무기 원소의 거동은 주로 입자 표면의 유기물과 퇴적물/토양에서 공급된 황화물에 의해 조절된 것으로 생각된다.

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전남 지방에 있어서의 양송이 재배에 최적한 환경조건 조절법 분석에 관한 연구 (Study on the Controlling Mechaniques of the Environmental Factors in the Mushroom Growing House in Chonnam Province)

  • 정병재;이은철
    • Journal of the Korean Wood Science and Technology
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    • 제2권2호
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    • pp.32-34
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    • 1974
  • 본 논문은 1968년 과학기술처 Trust Fund에 의하여 실시된 연구로서 전남 지방에 있어서 최적합한 양송이 재배사를 구명하기 위하여 이미 구미에서 연구된 결과를 토대로 하여 우리나라의 기후적 조건과 경제적 조건을 고찰한 자연공기 순환법을 적용, 양송이 재배에 최적한 환경 조건과 이의 조절법을 구명코저 시상식재배사와 지하실에 구축한 태양열을 이용하는 태양열식 재배사를 본실험용으로 구축하고 전자에 대하여서는 외가의 온도의 영향을 받지 아니하는 측벽구조와 천정의 구조, 환기구의 위치 및 그 환기량등에 관하여 검토하였으며 후자에 관하여는 태양열 이용 효과에 대하여 검토하였다. 또한 동기에 있어서의 계속적 재배를 가능케 하기 위하여 양송이 재배사의 보온에 적합한 가열 장치에 대하여서도 검토하였다. 1. 실험용 지상식 양송이 재배사의 효과에 관하여는 이미 실험결과 및 그 분석에서 지적된 바 있거니와 그 측벽 및 천정의 구조는 재배사를 외계의 기상조건에서 격리하는데 충부한 효과가 있는 것으로 고려된다. 2. 반지하실에 구축한 실험용 태양식 양송이 재배사의 효과에 관하여는 실험결과 및 그 분석에 지적한 바와 같거니와 태양열을 이용하는데 있어 충분한 효과가 있는 것으로 고려된다. 그러나 이것을 농가에 적용하기 위하여는 다음과 같은 제점이 개선되어야 할 것으로 고려된다. 즉 (1) 태양식의 지붕과 천정은 실험용 지상식재배사의 그것과 동일히 하고, (2) 태양열 수열 장치는 적당히 제고되어야 할 것으로 고려된다. 3. 본 실험 연구에서 실시한 각조의 환기법중 GE-CV 및 VS-CV 환기법이 가장 효과적인 것으로 본다. 4. 측벽수치 및 지중 환기장치는 이미 지적한 바와 같이 농가용 양송이재배사의 자연환기법으로 실용적 가치가 충분하다. 그것은 이들 환기장치는 그 환기로를 통하여 사내에 유입되는 외기의 온도를 인공적으로 가열이나 또는 냉각하지 않고 사내 온도에 접근하지 않도록 조절하는 효과가 있기 때문이다. 지금 외온을 $X^{\circ}C$로 할때 각종 환기로에 의하여 흡수되는 온도 $Y^{\circ}C$를 X의 함수로 하는 실험식은 다음과 같이 회귀직선으로 표시된다. GP$\cdots$Y=0.9X-12.8 GE$\cdots$Y=0.96X-15.11 VS$\cdots$Y=0.94X-17.57 5. 재배사내에 유입되는 공기 및 사외로 배출되는 공기에 관한 실험식은 다음과 같이 회귀직선 및 지수곡선으로 표시된다. 5.1 배출속도 Ycm/sec.를 유입속도 Xcm/sec.의 함수로 하는 회귀직선식 GE-CV(50%)법$\cdots$Y=1.0X-1.65 GE-CV(100%)법$\cdots$Y=0.42X+2.03 VS-CV(100%)법$\cdots$Y=0.85X+0.96 5.2 배출량 $Ym^3$/hr.를 유출량${\times}m^3$/hr.의 함수로 하는 회귀직선식 GE-CV(50%)법$\cdots$Y=2.59X-10.88 GE-CV(100%)법$\cdots$Y=2.16X+26.53 5.3 상면 공기이동 속도 Ym/sec.를 배출공기 속도${\times}m$/sec.의 함수로 하는 회귀직선식 GE-CV(50%)법$\cdots$Y=0.5X+0.84 5.4 $CO_2$ 축적량 Y(%)를 상면공기이동속도 cm/sec.의 함수로 하는 회귀직선식 GE-CV(50%)$\cdots$Y=114.53-6.42X 5.5 $CO_2$ 축적량Y(%)를 배출공기량 $m^3$/hr.의 함수로 하는 지수곡선식 GE-CV(50%)$\cdots$Y=$127.18{\times}1.0093^{-x}$ 5.6 Natural ventilation system에 있어서 양송이 생육에 적합한 환경적조건을 마련하기 위한 환기구의 단면적은 재배사 전용적에 대하여 다음과 같은 비율로할 수 있다. GE(지중유입 환기구 단면적)$\cdots$0.3-0.5%(요조절) CV(천정배출 환기구 단면적)$\cdots$0.8-1.0% (요조절) 6. 본 연구에서 실험한 각종의 가열장치중 무압증기수 보이라도 사요할 수 있는 온수 보이라가 농가용 양송이재배사 가열장치로서, 그 효과면에 있어서나 또는 그 가격면에 있어서 최적합다하는 것이 확인되고 있다.

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지하수 관개에 의한 수도의 멸준양상과 그 방지책에 관한 연구 (Studies on the Rice Yield Decreased by Ground Water Irrigation and Its Preventive Methods)

  • 한욱동
    • 한국농공학회지
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    • 제16권1호
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    • pp.3225-3262
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    • 1974
  • The purposes of this thesis are to clarify experimentally the variation of ground water temperature in tube wells during the irrigation period of paddy rice, and the effect of ground water irrigation on the growth, grain yield and yield components of the rice plant, and, furthermore, when and why the plant is most liable to be damaged by ground water, and also to find out the effective ground water irrigation methods. The results obtained in this experiment are as follows; 1. The temperature of ground water in tube wells varies according to the location, year, and the depth of the well. The average temperatures of ground water in a tubewells, 6.3m, 8.0m deep are $14.5^{\circ}C$ and $13.1^{\circ}C$, respercively, during the irrigation period of paddy rice (From the middle of June to the end of September). In the former the temperature rises continuously from $12.3^{\circ}C$ to 16.4$^{\circ}C$ and in the latter from $12.4^{\circ}C$ to $13.8^{\circ}C$ during the same period. These temperatures are approximately the same value as the estimated temperatures. The temperature difference between the ground water and the surface water is approximately $11^{\circ}C$. 2. The results obtained from the analysis of the water quality of the "Seoho" reservoir and that of water from the tube well show that the pH values of the ground water and the surface water are 6.35 and 6.00, respectively, and inorganic components such as N, PO4, Na, Cl, SiO2 and Ca are contained more in the ground water than in the surface water while K, SO4, Fe and Mg are contained less in the ground water. 3. The response of growth, yield and yield components of paddy rice to ground water irrigation are as follows; (l) Using ground water irrigation during the watered rice nursery period(seeding date: 30 April, 1970), the chracteristics of a young rice plant, such as plant height, number of leaves, and number of tillers are inferior to those of young rice plants irrigated with surface water during the same period. (2) In cases where ground water and surface water are supplied separately by the gravity flow method, it is found that ground water irrigation to the rice plant delays the stage at which there is a maximum increase in the number of tillers by 6 days. (3) At the tillering stage of rice plant just after transplanting, the effect of ground water irrigation on the increase in the number of tillers is better, compared with the method of supplying surface water throughout the whole irrigation period. Conversely, the number of tillers is decreased by ground water irrigation at the reproductive stage. Plant height is extremely restrained by ground water irrigation. (4) Heading date is clearly delayed by the ground water irrigation when it is practised during the growth stages or at the reproductive stage only. (5) The heading date of rice plants is slightly delayed by irrigation with the gravity flow method as compared with the standing water method. (6) The response of yield and of yield components of rice to ground water irrigation are as follows: \circled1 When ground water irrigation is practised during the growth stages and the reproductive stage, the culm length of the rice plant is reduced by 11 percent and 8 percent, respectively, when compared with the surface water irrigation used throughout all the growth stages. \circled2 Panicle length is found to be the longest on the test plot in which ground water irrigation is practised at the tillering stage. A similar tendency as that seen in the culm length is observed on other test plots. \circled3 The number of panicles is found to be the least on the plot in which ground water irrigation is practised by the gravity flow method throughout all the growth stages of the rice plant. No significant difference is found between the other plots. \circled4 The number of spikelets per panicle at the various stages of rice growth at which_ surface or ground water is supplied by gravity flow method are as follows; surface water at all growth stages‥‥‥‥‥ 98.5. Ground water at all growth stages‥‥‥‥‥‥62.2 Ground water at the tillering stage‥‥‥‥‥ 82.6. Ground water at the reproductive stage ‥‥‥‥‥ 74.1. \circled5 Ripening percentage is about 70 percent on the test plot in which ground water irrigation is practised during all the growth stages and at the tillering stage only. However, when ground water irrigation is practised, at the reproductive stage, the ripening percentage is reduced to 50 percent. This means that 20 percent reduction in the ripening percentage by using ground water irrigation at the reproductive stage. \circled6 The weight of 1,000 kernels is found to show a similar tendency as in the case of ripening percentage i. e. the ground water irrigation during all the growth stages and at the reproductive stage results in a decreased weight of the 1,000 kernels. \circled7 The yield of brown rice from the various treatments are as follows; Gravity flow; Surface water at all growth stages‥‥‥‥‥‥514kg/10a. Ground water at all growth stages‥‥‥‥‥‥428kg/10a. Ground water at the reproductive stage‥‥‥‥‥‥430kg/10a. Standing water; Surface water at all growh stages‥‥‥‥‥‥556kg/10a. Ground water at all growth stages‥‥‥‥‥‥441kg/10a. Ground water at the reproductive stage‥‥‥‥‥‥450kg/10a. The above figures show that ground water irrigation by the gravity flow and by the standing water method during all the growth stages resulted in an 18 percent and a 21 percent decrease in the yield of brown rice, respectively, when compared with surface water irrigation. Also ground water irrigation by gravity flow and by standing water resulted in respective decreases in yield of 16 percent and 19 percent, compared with the surface irrigation method. 4. Results obtained from the experiments on the improvement of ground water irrigation efficiency to paddy rice are as follows; (1) When the standing water irrigation with surface water is practised, the daily average water temperature in a paddy field is 25.2$^{\circ}C$, but, when the gravity flow method is practised with the same irrigation water, the daily average water temperature is 24.5$^{\circ}C$. This means that the former is 0.7$^{\circ}C$ higher than the latter. On the other hand, when ground water is used, the daily water temperatures in a paddy field are respectively 21.$0^{\circ}C$ and 19.3$^{\circ}C$ by practising standing water and the gravity flow method. It can be seen that the former is approximately 1.$0^{\circ}C$ higher than the latter. (2) When the non-water-logged cultivation is practised, the yield of brown rice is 516.3kg/10a, while the yield of brown rice from ground water irrigation plot throughout the whole irrigation period and surface water irrigation plot are 446.3kg/10a and 556.4kg/10a, respectivelely. This means that there is no significant difference in yields between surface water irrigation practice and non-water-logged cultivation, and also means that non-water-logged cultivation results in a 12.6 percent increase in yield compared with the yield from the ground water irrigation plot. (3) The black and white coloring on the inside surface of the water warming ponds has no substantial effect on the temperature of the water. The average daily water temperatures of the various water warming ponds, having different depths, are expressed as Y=aX+b, while the daily average water temperatures at various depths in a water warming pond are expressed as Y=a(b)x (where Y: the daily average water temperature, a,b: constants depending on the type of water warming pond, X; water depth). As the depth of water warning pond is increased, the diurnal difference of the highest and the lowest water temperature is decreased, and also, the time at which the highest water temperature occurs, is delayed. (4) The degree of warming by using a polyethylene tube, 100m in length and 10cm in diameter, is 4~9$^{\circ}C$. Heat exchange rate of a polyethylene tube is 1.5 times higher than that or a water warming channel. The following equation expresses the water warming mechanism of a polyethylene tube where distance from the tube inlet, time in day and several climatic factors are given: {{{{ theta omega (dwt)= { a}_{0 } (1-e- { x} over { PHI v })+ { 2} atop { SUM from { { n}=1} { { a}_{n } } over { SQRT { 1+ {( n omega PHI) }^{2 } } } } LEFT { sin(n omega t+ { b}_{n }+ { tan}^{-1 }n omega PHI )-e- { x} over { PHI v }sin(n omega LEFT ( t- { x} over {v } RIGHT ) + { b}_{n }+ { tan}^{-1 }n omega PHI ) RIGHT } +e- { x} over { PHI v } theta i}}}}{{{{ { theta }_{$\infty$ }(t)= { { alpha theta }_{a }+ { theta }_{ w'} +(S- { B}_{s } ) { U}_{w } } over { beta } , PHI = { { cpDU}_{ omega } } over {4 beta } }}}} where $\theta$$\omega$; discharged water temperature($^{\circ}C$) $\theta$a; air temperature ($^{\circ}C$) $\theta$$\omega$';ponded water temperature($^{\circ}C$) s ; net solar radiation(ly/min) t ; time(tadian) x; tube length(cm) D; diameter(cm) ao,an,bn;constants determined from $\theta$$\omega$(t) varitation. cp; heat capacity of water(cal/$^{\circ}C$ ㎥) U,Ua; overall heat transfer coefficient(cal/$^{\circ}C$ $\textrm{cm}^2$ min-1) $\omega$;1 velocity of water in a polyethylene tube(cm/min) Bs ; heat exchange rate between water and soil(ly/min)

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전남지방(全南地方)에 있어서의 양송이 재배(栽培)에 최적(最適)한 환경조건(環境條件) 조절법분석(調節法分析)에 관(關)한 연구(硏究) (TECHNICAL STUDY ON THE CONTROLLING MECHANIQUES OF THE ENVIRONMENTAL FACTORS IN THE MUSHROOM GROWING HOUSE IN CHONNAM PROVINCE)

  • 이은철
    • 한국산림과학회지
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    • 제9권1호
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    • pp.1-44
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    • 1969
  • 이상(以上)과 같이 조사(調査) 또는 실험(實驗)한 결과중(結果中) 그 중요(重要)한 것을 요약(要約)하면 다음과 같다. 1. 실험용(實驗用) 지상식(地上式) 양송이 재배사(栽培舍)의 효과(効果)에 관(關)하여는 이미 실험결과(實驗結果)및 그 분석(分析)에서 지적(指摘)된 바 있거니와 그 측벽(側壁)및 천정(天井)의 구조(構造)는 재배사(栽培舍)를 외계(外界)의 기상조건(氣象條件)에서 격리(隔離)하는데 충분(充分)한 효과(効果)가 있는 것으로 고려(考慮)된다. 2. 반지하실(半地下室)에 구축(構築)한 실험용(實驗用) 태양식(太陽式) 양송이 재배사(栽培舍)의 효과(効果)에 관(關)하여는 실험결과(實驗結果)및 그 분석(分析)에서 지적(指摘)한 바와 같거니와 태양열(太陽熱)을 이용(利用)하는데 있어 충분(充分)한 효과(効果)가 있는 것으로 고려(考慮)된다. 그러나 이것을 농가(農家)에 적용(適用)하기 위(爲)하여는 다음과 같은 제점(諸點)이 개선(改善)되어야 할 것으로 고려(考慮)된다. 즉 (1) 태양식(太陽式)의 지붕과 천정(天井)은 실험용(實驗用) 지상식(地上式) 재배사(栽培舍)의 그것과 동일(同一)히 하고 (2) 태양열(太陽熱) 수열장치(受熱裝置)는 적당(適當)히 재고(再考)되어야 할 것으로 고려(考慮)된다. 태양열(太陽熱) 수열장치(受熱裝置)는 그림 40과 같이 하면 유효(有效)할 것으로 구상(構想)된다. 3. 본실험연구(本實驗硏究)에서 실시(實施)한 각종(各種)의 환기법중(換氣法中) G.E.-C.V. 및 V.S.-C.V. 환기법(換氣法)이 가장 효과적(效果的)인 것으로 본다. 4. 측벽수직(側壁垂直)및 지중(地中) 환기장치(換氣裝置)는 이미 지적(指摘)된 바와 같이 농가(農家) 양송이 재배사(栽培舍)의 자연환기법(自然換氣法)으로 실용적(實用的) 가치(價値)가 충분(充分)하다. 그것은 이들 환기장치(換氣裝置)는 그 환기로(換氣路)를 통(通)하여 사내(舍內)에 유입(流入)되는 외기(外氣)의 온도(溫度)를 인공적(人工的)으로 가열(加熱)이나 또는 냉각(冷却)하지 않고 사내온도(舍內溫度)에 접근(接近)하도록 조절(調節)하는 효과(効果)가 있기 때문이다. 지금 외온(外溫)을 $X^{\circ}C$로 할 때 각종(各種) 환기로(換氣路)에 의(依)하여 흡수(吸收)되는 온도(溫度) $Y^{\circ}C$을 X의 흉수(凶數)로 하는 실험식(實驗式)은 다음과 같이 회귀직선(回歸直線)으로 표시(表示)된다. $$G.P.{\cdots}Y=0.9x-12.8$$ $$G.E.{\cdots}Y=0.96x-15.11$$ $$V.S.{\cdots}Y=0.94x-17.57$$ 5. 재배사내(栽培舍內)에 유입(流入)되는 공기(空氣)및 사외(舍外)로 배출(排出)되는 공기(空氣)에 관(關)한 실험식(實驗式)은 각각(各各) 다음과 같이 회귀직선(回歸直線)및 지수곡선(指數曲線)으로 표시(表示)된다. (1) 배출속도(排出速度) Ycm/Sec를 유입속도(流入速度)${\times}$cm/Sec의 흉수(凶數)로 하는 회귀직선식(回歸直線式) G.E.-C.V.(50%)법(法) $${\cdots}Y=1.01x-1.65$$ G.E.-C.V.(100%)법(法)$${\cdots}Y=0.42x+2.03$$ V.S.-C.V.(100%)법(法)Y=0.85x+0.96 (2) 배출량(排出量) Y $m^3/hr$ 유출량(流出量) ${\times}m^3/hr$의 함수(凾數)로 하는 회귀직선식(回歸直線式) G.E.-C.V.(50%)법(法)$${\cdots}Y=2.59x-10.88$$ G.E.-C.V.(10%)법(法)Y=2.16x+26.53 (3) 상면(床面) 공기이동(空氣移動) 속기(速氣) Y m/Sec를 배출공기(排出空氣) 속도(速度)${\times}$m/Sec의 함수(凾數)로 하는 회귀직선식(回歸直線式) G.E.-C.V.(50%)법(法)$${\cdots}Y=0.54x+0.84$$ (4) $Co_2$ 축적량(蓄積量)Y(%)를 상면(床面) 공기이동(空氣移動) 속도(速度)${\times}$cm/Sec의 함수(凾數)로 하는 회귀직선식(回歸直線式) G.E.-C.V(50%)법(法)$${\cdots}Y=114.53-6.42x$$ (5) $Co_2$ 축적량(蓄積量)Y(%)를 배출(排出) 공기량(空氣量) $m^3/hr$ 함수(凾數)로 하는 지수곡선식(指數曲線式) G.E.-C.V.(50%)법(法) -$$y=127.18{\times}1.0093^{-X}$$ (6) natural vontilation system에 있어서 양송이 생육(生育)에 적합(適合)한 환경적조건(環境的條件)을 마련하기 위(爲)한 환기구(換氣口)의 단면적(斷面績)은 재배사(栽培舍) 전용적(全容積)에 대(對)하여 다음과 같은 비율(比率)로 할 수 있다. G.E. (지중유입환기구단면적(地中流入換氣口斷面績) $${\cdots}0.3-0.5%$$(요조절(要調節)) C.V. (천정배출환기구단면적(天井排出換氣口斷面績) $${\cdots}0.8-1.0%$$(요조절(要調節)) (7) 본연구(本硏究)에서 실험(實驗)한 각종(各種)의 가열장치중(加熱裝置中) 무압(無壓) 증기수(蒸氣水) 보이라로 사용(使用)할 수 있는 온수(溫水) 보이라가 농가용(農家用) 양송이 재배사(栽培舍) 가열장치(加熱裝置)로서, 그 효과면(効果面)에 있어서나 또는 그가격면(價格面)에 있어서 최적합(最適合)하다는 것이 확인(確認)되고 있다.

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