• 제목/요약/키워드: Fuel N

검색결과 963건 처리시간 0.022초

영광원자력발전소 주변의 지형 및 지질에 따른 $^{137}Cs$ 분포 및 거동에 관한 연구 (Distribution and Behavior of $^{137}Cs$ According to topography and nature of the soil around Yeong-Gwang NPPs,)

  • 한상준;이경진;김희근
    • 방사성폐기물학회지
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    • 제2권4호
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    • pp.271-278
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    • 2004
  • 본 연구에서는 국내 원전이 위치한 지역의 토양에서 $^{137}Cs$의 축적 경향을 파악하기 위하여 원전이 위치한 영광군 관내의 평지와 고산지대인 금정산, 불갑산 및 영광원전으로부터 원거리에 위치한 내장산 등을 대상으로 토양중 $^{137}Cs$의 화학적인 특성과 고도에 따른 $^{137}Cs$의 축적 경향을 평가하기 위한 실험을 수행하였다. 일반적으로 국내 토양 중 $^{137}Cs$의 농도는 불검출 ${\~}252\;Bq/kg-dry$의 범위 내에 있으며 본 연구에서 측정한 평지부분과 고산지대인 원전으로부터 2 km 떨어진 금정산, 약 20 hn 떨어진 불갑산 및 원거리에 위치한 내장산에서도 지금까지의 $^{137}Cs$농도 범위에 들었다. 그러나 고산지대는 평지에서와는 다르게 고도가 증가함에 따라 $^{137}Cs$농도도 증가하는 경향을 보이고 있고, 정상 부분이 하부 부분보다 더 높게 나타났고 영광원전 인근 일반평지부분보다는 $^{137}Cs$의 농도는 $2{\~}6$배 정도 높은 경향을 나타내었다. 연구결과 $^{137}Cs$의 분포는 지형적 요인(고도) 및 토양의 화학적 요인(양이온치환용량)과 상관성이 큰것으로 나타났다. 지형적 요인으로는 주로 고도를 들 수 가 있는데 높은 고도의 산의 경우 대기중 $^{137}Cs$이 토양에 침투되는 기회가 커짐으로 동일한 토질 조건의 평지 토양에 비해 높은 $^{137}Cs$준위를 나타내었다 토양의 화학적 요인으로는 양이온치환용량이 주요 인자임이 규명되었다. 양이온치환용량은 침적된 $^{137}Cs$을 토양에 고정시키는 능력을 나타내며 같은 지형조건에서 높은 양이온치환용량을 가진 시료가 낮은 양이온치환용량을 가진 토양에 비해 $^{137}Cs$농도는 높은 값을 보였다.

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일산화탄소중독(一酸化炭素中毒)의 진료대책(診療對策) 수립(樹立)을 위한 추계학적(推計學的) 연구(硏究) (A Stochastic Study for the Emergency Treatment of Carbon Monoxide Poisoning in Korea)

  • 김용익;윤덕로;신영수
    • Journal of Preventive Medicine and Public Health
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    • 제16권1호
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    • pp.135-152
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    • 1983
  • Emergency medical service is an important part of the health care delivery system, and the optimal allocation of resources and their efficient utilization are essentially demanded. Since these conditions are the prerequisite to prompt treatment which, in turn, will be crucial for life saving and in reducing the undesirable sequelae of the event. This study, taking the hyperbaric chamber for carbon monoxide poisoning as an example, is to develop a stochastic approach for solving the problems of optimal allocation of such emergency medical facility in Korea. The hyperbaric chamber, in Korea, is used almost exclusively for the treatment of acute carbon monoxide poisoning, most of which occur at home, since the coal briquette is used as domestic fuel by 69.6 per cent of the Korean population. The annual incidence rate of the comatous and fatal carbon monoxide poisoning is estimated at 45.5 per 10,000 of coal briquette-using population. It offers a serious public health problem and occupies a large portion of the emergency outpatients, especially in the winter season. The requirement of hyperbaric chambers can be calculated by setting the level of the annual queueing rate, which is here defined as the proportion of the annual number of the queued patients among the annual number of the total patients. The rate is determined by the size of the coal briquette-using population which generate a certain number of carbon monoxide poisoning patients in terms of the annual incidence rate, and the number of hyperbaric chambers per hospital to which the patients are sent, assuming that there is no referral of the patients among hospitals. The queueing occurs due to the conflicting events of the 'arrival' of the patients and the 'service' of the hyperbaric chambers. Here, we can assume that the length of the service time of hyperbaric chambers is fixed at sixty minutes, and the service discipline is based on 'first come, first served'. The arrival pattern of the carbon monoxide poisoning is relatively unique, because it usually occurs while the people are in bed. Diurnal variation of the carbon monoxide poisoning can hardly be formulated mathematically, so empirical cumulative distribution of the probability of the hourly arrival of the patients was used for Monte Carlo simulation to calculate the probability of queueing by the number of the patients per day, for the cases of one, two or three hyperbaric chambers assumed to be available per hospital. Incidence of the carbon monoxide poisoning also has strong seasonal variation, because of the four distinctive seasons in Korea. So the number of the patients per day could not be assumed to be distributed according to the Poisson distribution. Testing the fitness of various distributions of rare event, it turned out to be that the daily distribution of the carbon monoxide poisoning fits well to the Polya-Eggenberger distribution. With this model, we could forecast the number of the poisonings per day by the size of the coal-briquette using population. By combining the probability of queueing by the number of patients per day, and the probability of the number of patients per day in a year, we can estimate the number of the queued patients and the number of the patients in a year by the number of hyperbaric chamber per hospital and by the size of coal briquette-using population. Setting 5 per cent as the annual queueing rate, the required number of hyperbaric chambers was calculated for each province and for the whole country, in the cases of 25, 50, 75 and 100 per cent of the treatment rate which stand for the rate of the patients treated by hyperbaric chamber among the patients who are to be treated. Findings of the study were as follows. 1. Probability of the number of patients per day follows Polya-Eggenberger distribution. $$P(X=\gamma)=\frac{\Pi\limits_{k=1}^\gamma[m+(K-1)\times10.86]}{\gamma!}\times11.86^{-{(\frac{m}{10.86}+\gamma)}}$$ when$${\gamma}=1,2,...,n$$$$P(X=0)=11.86^{-(m/10.86)}$$ when $${\gamma}=0$$ Hourly arrival pattern of the patients turned out to be bimodal, the large peak was observed in $7 : 00{\sim}8 : 00$ a.m., and the small peak in $11 : 00{\sim}12 : 00$ p.m. 2. In the cases of only one or two hyperbaric chambers installed per hospital, the annual queueing rate will be at the level of more than 5 per cent. Only in case of three chambers, however, the rate will reach 5 per cent when the average number of the patients per day is 0.481. 3. According to the results above, a hospital equipped with three hyperbaric chambers will be able to serve 166,485, 83,242, 55,495 and 41,620 of population, when the treatmet rate are 25, 50, 75 and 100 per cent. 4. The required number of hyperbaric chambers are estimated at 483, 963, 1,441 and 1,923 when the treatment rate are taken as 25, 50, 75 and 100 per cent. Therefore, the shortage are respectively turned out to be 312, 791. 1,270 and 1,752. The author believes that the methodology developed in this study will also be applicable to the problems of resource allocation for the other kinds of the emergency medical facilities.

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지열 난방시스템을 이용한 분만돈사의 난방효과 분석 (Evaluation on Heating Effects of Geothermal Heat Pump System in Farrowing House)

  • 최희철;박재홍;송준익;나재천;김민지;방한태;강환구;박성복;채현석;서옥석;유영선;김태원
    • 한국축산시설환경학회지
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    • 제16권3호
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    • pp.205-215
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    • 2010
  • 지열히트펌프를 이용한 축사용 냉난방시스템을 개발하고 농장 적용성을 검토하기 위하여 330 $m^2$ 규모의 농장에 개발 시스템을 설치하여 돈사에서의 난방 이용효과를 분석하였으며, 그 결과는 다음과 같다. 1. 지열 난방시 부하량은 24,104 kcal이었으며 농장시험 지열이용 냉난방시스템의 제원은 히트펌프 용량은 10 USRT 였으며, 상부 덕트형 30,000 kcal 홴코일유니트를 사용하였으며 FCU의 풍량은 90 $m^3$/분 이었다. 2. 지열 난방 1주령시 외부 최고기온 $14.2^{\circ}C$, 최저 영하 $9.3^{\circ}C$일때 시험구는 평균 $21.5^{\circ}C$로서 대조구 $19.8^{\circ}C$에 비하여 높았다. 3. 지열 난방 시험돈사의 먼지 농도는 PM10 185.3, PM2.5 40, PM1.0 $23.4{\mu}g/m^3$으로 대조구 PM10 481.4, PM2.5 47, PM1.0 $28.2{\mu}g/m^3$에 비하여 낮았다.4. 지열 난방 시험돈사의 유해가스농도는 $CO_2$ 1,470, $NH_3$ 10.6, $H_2S$ 0.05 ppm으로서 대조구 $CO_2$ 2,025, $NH_3$ 23.3, $H_2S$ 0.69 ppm에 비하여 유의적으로 (p<0.05) 낮았다. 5. 지열난방시 복당 이유두수는 10.5두로 대조구 10.4두에 비하여 높았으며 이유시체 중도 6.93 kg으로 대조구 6.86 kg에 비하여 컸으며 특히 온도가 낮은 대조구에서 모돈사료 섭취량이 99.6 kg으로 시험구 88.2 kg 보다 유의적으로 (p<0.05) 많았다. 6. 지열 난방시 외부기온과 지하수 순환량에 있어서 외부기온이 낮을 경우 1일간 8.4-12.9톤으로 지하수 순환량이 많았다.