• 제목/요약/키워드: Leaf surface temperature

검색결과 113건 처리시간 0.028초

Daily Changes in Red-Pepper Leaf Surface Temperature with Air and Soil Surface Temperatures

  • Eom, Ki-Cheol;Lee, Byung-Kook;Kim, Young-Sook;Eom, Ho-Yong
    • 한국토양비료학회지
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    • 제47권5호
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    • pp.345-350
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    • 2014
  • This study was conducted to investigate the changes in daily surface temperature of red pepper leaf compared to air and soil surface temperature. The maximum, minimum and average daily temperatures of red pepper leaf were 27.80, 11.40 and $19.01^{\circ}C$, respectively, which were lower by 0.10, 7.60 and $3.86^{\circ}C$ than air temperature, respectively, and lower by 15.00, 0.0 and $4.38^{\circ}C$ than soil surface temperature, respectively. Mean deviations of the difference between measured and estimated temperature by the E&E Model (Eom & Eom, 2013) for the air and surface temperature of red pepper leaf and soil were 0.64, 1.82 and $4.77^{\circ}C$, respectively. The relationships between measured and estimated scaled factor of the air and surface temperature of red pepper leaf and soil were very close to the 1:1 line. Difference between air and surface temperature of red pepper leaf showed a linear decreasing function with the surface temperature of red pepper leaf. Difference between soil surface temperature and air and surface temperature of red pepper leaf linearly increased with the soil surface temperature.

Estimation Model of the Change in Dairy Leaf Surface Temperature Using Scaling Technique

  • Eom, Ki-Cheol;Eom, Ho-Yong
    • 한국토양비료학회지
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    • 제46권5호
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    • pp.359-364
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    • 2013
  • This study was conducted to develop a model to estimate crop leaf surface temperature. The results were as following; A definition for the daily time based on elapsed time from the midnight (00:00) as "E&E time" with the unit of Kmin. was suggested. The model to estimate the scaled temperature ($T^*e$) of crop leaf surface temperature by scale factor ($T^*$) according to the "E&E time : Kmin."(X) was developed as eq. (1) $T^*e=0.5{\cdot}sin(X+780)+0.5$ (2) $T^*=(Tx-Tn)/(Tm-Tn)$, Tx : Daily leaf temperature, Tm : Daily maximum leaf temperature, Tn : Daily minimum leaf temperature. Relative sensitivity of the measured temperature compared to the estimated temperature of red pepper, soybean and persimmon was 1.078, 1.033 and 0.973, respectively.

Alteration of Leaf Surface Structures of Poplars under Elevated Air Temperature and Carbon Dioxide Concentration

  • Kim, Ki Woo;Oh, Chang Young;Lee, Jae-Cheon;Lee, Solji;Kim, Pan-Gi
    • Applied Microscopy
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    • 제43권3호
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    • pp.110-116
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    • 2013
  • Effects of elevated air temperature and carbon dioxide ($CO_2$) concentration on the leaf surface structures were investigated in Liriodendron tulipifera (yellow poplar) and Populus tomentiglandulosa (Suwon poplar). Cuttings of the two tree species were exposed to elevated air temperatures at $27/22^{\circ}C$ (day/night) and $CO_2$ concentrations at 770/790 ppm for three months. The abaxial leaf surface of yellow poplar under an ambient condition ($22/17^{\circ}C$ and 380/400 ppm) had stomata and epicuticular waxes (transversely ridged rodlets). A prominent increase in the density of epicuticular waxes was found on the leaves under the elevated condition. Meanwhile, the abaxial leaf surface of Suwon poplar under an ambient condition was covered with long trichomes. The leaves under the elevated condition possessed a higher amount of long trichomes than those under the ambient condition. These results suggest that the two poplar species may change their leaf surface structures under the elevated air temperature and $CO_2$ concentration condition for acclimation of increased photosynthesis.

식물의 성장과 열화상카메라로 측정된 열적 특성과의 연관성 분석 (An Analysis of Relationships between Plant Growth and Temperature Characteristics Measured with Thermographic Camera)

  • 박상미;남다현;김지형;조건영;김하양;김정배
    • 한국태양에너지학회 논문집
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    • 제36권2호
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    • pp.1-7
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    • 2016
  • This study was experimentally performed to analyze the growth characteristics of a plant(wax tree or privet) using the surface temperature measured from thermal images captured using a thermal camera with water and cider. To do that, this study measured every each 12 hours the surface temperature and the stem temperature of leaves attached to the plant sample until the plants wilt on summer season in the laboratory room. From the experimental results, this study revealed that the temperature of front and back of the leaves is a little different due to the pore. The mean surface temperature of a leaf in cider is $0.52^{\circ}C$ higher than that of a leaf in water. The phenomena that the leaves of plants fall could be also demonstrated using the surface temperature. Before a leaf is falling from the tree, the temperature of the stem is lowered about $2^{\circ}C$ than those of other parts in a leaf. This result can be validated from previous result performed in University of Wisconsin.

기온과 작물 잎 및 토양 표면온도의 변화양상 분석 (Changes in Air Temperature and Surface Temperature of Crop Leaf and Soil)

  • 이병국;정필균;이우균;임철희;엄기철
    • 한국기후변화학회지
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    • 제6권3호
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    • pp.209-221
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    • 2015
  • 기후변화와 기상조건의 영향을 가장 많이 받는 분야는 농업이며, 특히 온도는 작물 생육에 영향을 미치는 가장 중요한 요인 중 하나이다. 본 연구는 수원에서 관개 조건 콩, 한발조건 콩, 배추, 노지 고추 및 비닐멀칭 고추 등 5개 작물에 대하여 기온과 작물 잎 및 토양의 표면온도를 monitoring 하여 이들 온도의 일중 변화 양상과 생육기간 동안의 온도 변화 양상 및 온도 요인 별 상호관계를 분석하였다. 시기별 기온과 작물잎 및 토양 표면온도에 대한 scale factor[Tsc]의 일중 변화 양상은 $[Tsc]=0.5{\times}sin(X+C)+0.5$와 같이 일중 시각(X : E&E time)에 대한 sine 함수로 나타낼 수 있었으며, scaling technique과 시기별 일 평균기온(Tavg), 최고기온(Tm) 및 최저기온(Tn)의 값을 이용하여 아래 식에 의해 시기별 일중시각(X)별 기온을 추정(E[Ti])할 수 있다. $E[Ti]=Tn+(Tm-Tn){\times}[0.5{\times}sin\;\{X+(9.646Tavg+703.65)\}+0.5]$. 또한 2014년 6월 24일의 작물별 일평균잎 표면온도는 노지 고추 > 멀칭 고추 > 한발 콩 > 관개 콩 > 배추 순이었다. 작물의 잎 표면온도를 추정할 경우, 멀칭 고추와 관개 및 한발 콩의 경우는 기온을 이용하여 가능하였으나, 배추와 노지 고추의 경우는 기온과 토양표면 온도의 두 변량을 이용하는 경우가 기온 한 변량을 이용하는 경우보다 작물 잎 표면온도의 실측치에 대한 편차가 더 작았다. Scale factor를 이용한 시기별 일중시각별 기온을 추정하는 방법과 작물별 잎 표면온도의 변화 양상을 구명한 본 연구결과는, 온도 등 기상자료를 이용한 작물 수량 예측 모형의 입력자료 산정 등에 활용 될 수 있다.

인삼의 온도에 대한 생리반응 II. 엽의 생리, 지온, 기온, 병환의 생육 (Physiological Response of Panax Ginseng to Tcmpcrature II. Leaf physiology, soil temperature, air temperature, growth of pathogene)

  • 박훈
    • Journal of Ginseng Research
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    • 제4권1호
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    • pp.104-120
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    • 1980
  • The effects of temperature on transpiration, chlorophyll content, frequency and aperture of stomata, and leaf temperature of Panax ginseng were reviewed. Temperature changes of soil and air under spade roof were also reviewed. Growth responses of responses of ginseng plant at various temperature were assessed in relation to suseptibillity of ginseng plants. Reasonable management of ginseng fields was suggested based on the response of ginseng to various temperatures. Stomata frequency may be increased under high temperature during leaf$.$growing stage. Stomata aperture increased by high temperature but the increase of both frequency and aperture appears not enough for transpiration to overcome high temperature encountered during summer in most fields. Serial high temperature disorder, i.e high leaf temperature, chlorophyll loss, inhibition of photosynthesis, increased respiration and wilting might be alleviated by high humidity and abundant water supply to leaf. High air temperature which limits light transmission rate inside the shade roof, induces high soil temperature(optimum soil temperature 16∼18$^{\circ}C$) and both(especially the latter) are the principal factors to increase alternaria blight, anthracnose, early leaf fall, root rot and high missing rate of plant resulting in poor yield. High temperature disorder was lessen by abundant soil water(optimum 17∼21%) and could be decreased by lowering the content of availability of phosphorus and nitrogen in soil consequently resulting in less activity of microorganisms. Repeated plowing of fields during preparation seems to be effective for sterilization of pathogenic microoganisms by high soil temperature only on surface of soils. Low temperature damage appeared at thowing of soils and emergence stage of ginseng but reports were limited. Most limiting factor of yield appeared as physiological disorder and high pathogen activity due to high temperature during summer(about three months).

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방울토마토에서 잎 표면온도를 적용한 아메리카잎굴파리(Liriomyza trifolii) 개체군 밀도변동 모형작성 및 평가 (Modeling and Validation of Population Dynamics of the American Serpentine Leafminer (Liriomyza trifolii) Using Leaf Surface Temperatures of Greenhouses Cherry Tomatoes)

  • 박정준;모형호;이두형;신기일;조기종
    • 한국응용곤충학회지
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    • 제51권3호
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    • pp.235-243
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    • 2012
  • 중요 시설해충인 아메리카잎굴파리(Liriomyza trifolii (Burgess))의 개체군 밀도변동모형을 방울토마토 온실내 대기온도와 잎 표면온도를 이용하여 모형 정확성을 비교하였다. 모형 개발에 이용된 생물적 변수들은 기존 발표된 자료들을 사용하였고 모형 작성은 DYMEX$^{(R)}$ 프로그램을 이용하였다. 온도에 따라 상이한 발육기간과 산란수는 생리적 연령으로 표준화시킨 발육완료 분포모형, 연령 특이적 산란수 및 생존율을 비선형회귀 모형에 적합시켜 밀도변동 모형을 개발하였다. 줄내림방식의 방울토마토에서 식물체를 3개의 위치(상단: 지상 1.6 m 이상, 중단: 지상 0.9 - 1.2 m 사이, 하단: 지상 0.3 - 0.5 m 사이)로 나누고 각 위치별로 온실 내 대기 온도와 잎 표면 온도를 기록하였다. 온실 내 잎 표면 최대온도는 대기중 최대온도보다 항상 낮게 유지되고 있었으며, 하단, 상단, 중단의 순으로 온도가 낮아지는 경향을 보였다. 개발된 모형검정을 위한 초기이입 시기와 밀도는 6월초 성충 5마리가 총 50개의 알을 잎에 산란한 것으로 설정하였다. 온실 내 대기 온도와 잎 표면 온도를 이용하여 아메리카잎굴파리 유충 발육모형과 성충의 산란모형을 DYMEX로 프로그래밍하고 모의실험을 하였다. 모의실험결과를 평가하기 위해 기상자료를 수집한 동일한 온실에서 아메리카잎굴파리 유충 밀도를 육안조사 하였으나, 알, 번데기, 성충의 경우 육안조사가 어려워 대상에서 제외하였다. 육안조사결과 밀도변동패턴이 방울토마토 잎 표면 온도를 이용한 모의실험결과 밀도변동패턴과 유사하였다. 육안조사결과와 육안조사시기의 DYMEX모의실험 결과값을 상관분석 한 결과, 육안조사결과와 잎 표면 온도를 이용한 모의실험 결과가 유의한 양의 상관관계를 보였다(r = 0.97, p < 0.01). 대기 온도를 이용한 모의실험 결과와는 유의하지 않은 상관관계를 보였다(r = 0.40, p = 0.18). 본 연구결과 방울토마토 온실에서 아메리카잎굴파리 개체군 밀도변동의 적절한 예측을 위해서는 잎 표면 온도를 고려해야 하는 것으로 나타났다.

Epicuticular Waxes and Stomata of Adult Scale Leaves of the Chinese Juniper Juniperus chinensis

  • Kim, Ki-Woo
    • Applied Microscopy
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    • 제42권3호
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    • pp.124-128
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    • 2012
  • Leaf surface structures were investigated in the Chinese juniper Juniperus chinensis by scanning electron microscopy. Adult scale leaves were collected from the tree, air-dried at room temperature, and sputter-coated with gold without further specimen preparation. Approximately fi ve stomata were locally distributed and arranged in clusters on the leaf surface. Stomata were ovoid and ca. 40 ${\mu}m$ long. The epicuticular wax structures of J. chinensis leaves were tubules and platelets. Numerous tubules were evident on the leaf regions where stomata were found. The tubules were cylindrical, straight, and ca. 1 ${\mu}m$ in length. They almost clothed the stomatal guard cells, and occluded the slit-shaped stomatal apertures. Moreover, the wax ridges were flat crystalloids that were connected to the surface by their narrow side. They did not have distinct edges, and their width/height ratio varied. In particular, the wax ridges could be discerned on the leaf regions where stomata were not present nearby. Since the wax ridges did not have distinct edges on their margin, they were identified as platelets. Instances were noted where platelets were oriented either parallel to each other or perpendicular to the cuticle surface. These results can be used in biomimetics to design the hierarchical structures for mimicking the plant innate properties such as hydrophobicity and self-cleaning effects of the leaf surface.

Digital Infrared Thermal Imaging of Crape Myrtle Leaves Infested with Sooty Mold

  • Kim, Jiyeon;Kweon, Si-Gyun;Park, Junhyung;Lee, Harim;Kim, Ki Woo
    • The Plant Pathology Journal
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    • 제32권6호
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    • pp.563-569
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    • 2016
  • The spatial patterns for temperature distribution on crape myrtle leaves infested with sooty mold were investigated using a digital infrared thermal imaging camera. The mean temperatures of the control and sooty regions were $26.98^{\circ}C$ and $28.44^{\circ}C$, respectively. In the thermal images, the sooty regions appeared as distinct spots, indicating that the temperatures in these areas were higher than those in the control regions on the same leaves. This suggests that the sooty regions became warmer than their control regions on the adaxial leaf surface. Neither epidermal penetration nor cell wall dissolution by the fungus was observed on the adaxial leaf surface. It is likely that the high temperature of black leaves have an increased cooling load. To our knowledge, this is the first report on elevated temperatures in sooty regions, and the results show spatial heterogeneity in temperature distribution across the leaf surface.

Sap Temperature Distribution of the Xylem and Leaf Water Status of Apple Trees in Relation to Soil Oxygen Diffusion Rates

  • Ro, Hee-Myong
    • Journal of Applied Biological Chemistry
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    • 제43권3호
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    • pp.170-175
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    • 2000
  • A pot-lysimeter experiment was conducted with 3-year-old 'Tsugaru' apple (Malus domestica Borkh) trees to examine the changes in oxygen diffusion rate (ODR) with lateral flow velocity of water through soil. The influence of lateral water flow velocity on water relations and elemental content in leaf, and sap temperature distribution patterns of the xylem of trees were also determined. Trees were grown under four soil water regimes: (1) fast laterally flowing (FWT, $2.50{\times}10^{-4}cm\;s^{-1}$), (2) slow laterally flowing (SWT, $0.25{\times}10^{-4}cm\;s^{-1}$), and (3) stagnant water table (WLT) at 60-cm, and (4) drip-irrigation at -40 kPa of soil matric potential as a control. The rate of $O_2$ diffusion converged near $2{\times}10^{-3}g\;m^{-2}\;min^{-1}$ for FWT and control soils, but decreased below $1{\times}10^{-3}g\;m^{-2}\;min^{-1}$ 40 days after treatment (DAT) for WLT soils. For SWT soils, however, the ODR at 15 cm below the soil surface was similar to that of control, but at 45 cm below the soil surface, ODR was similar to that of the WLT treatment. Leaf water potential of FWT and SWT plants was similar to that of control plants, but the values for SWT plants declined by 98 DAT. Leaf water potential of WLT plants decreased from -1.86 MPa (9 DAT) to -2.41 MPa (59 DAT) and finally down to -2.70 MPa. The sap temperature measured at 1100-hr was lowest at top and highest at bottom for FWT and control plants, but this pattern of SWT and WLT plants was disturbed from 29 DAT. However, for SWT plants, such thermal disturbance of sap temperature disappeared from 63 DAT.

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