• 제목/요약/키워드: DO gradient

검색결과 313건 처리시간 0.018초

원주상(圓周狀)슬라이스의 오-븐건조법에 의한 함수율의 원반(圓盤)내 방사방향분포 추이 평가 (II) - 주요 국산 침엽수재를 중심으로 - (Determination of Trend of a Radial Distribution of Moisture Content within a Log Cross Section by Oven-Drying of Circumferential Slices(II) - For some of domestic softwoods -)

  • 이남호;;최준호;황의도;진영문
    • Journal of the Korean Wood Science and Technology
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    • 제32권2호
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    • pp.19-25
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    • 2004
  • 본 연구는 주요 국산 침엽수재 원반에서 채취한 두께 3 mm의 원주상(圓周狀)슬라이스를 오-븐에서 급속 건조하면서 각 원반내 함수율의 방사방향 분포추이를 조사하기 위하여 수행하였다.소나무의 경우 건조가 진행됨에 따라 변재부는 매우 급속한 건조속도로 함수율이 감소한 반면, 심재부는 건조속도가 느려 오히려 생재함수율이 높은 변재부가 심재부보다 먼저 섬유포화점에 도달하였으나, 이러한 분포상태가 장시간 지속되지는 않았다. 낙엽송의 경우 변재부의 생재함수율이 심재부보다 약 3배 가량 높은 분포를 보였으며, 이러한 수분경사 패턴은 평균함수율 약 20%일때 까지 지속되었다. 은행나무의 경우 변재영역 내에서는 매우 고른 생재함수율 분포를 보였으며, 건조가 진행되면서도 어느 정도의 진폭은 존재하였지만 비교적 균일한 함수율 분포를 보였다. 삼나무의 경우 심재부는 생재함수율이 매우 낮아 건조 초기부터 수축이 개시되지만 높은 함수율을 나타내고 있는 변재부에 의해 수축이 억제되므로써 심재영역 또는 이행재 영역에 인장응력이 형성될 것으로 판단된다. 편백나무 변재의 생재함수율은 심재보다 훨씬 낮아 침엽수재의 일반적인 함수율 분포와는 정반대의 분포를 나타내었으며, 이러한 함수율 분포패턴은 평균함수율 약 21%까지도 지속되었다. 측백나무의 경우 변재부의 생재함수율이 심재부보다 약 2배 정도 더 높은 분포를 보였으나, 건조가 진행되면서 이러한 분포는 빠른 속도로 약화되었다.

충남 태안군 신두리 대조차 해빈에 나타나는 다중사주의 계절별 지형변화 특성 (Seasonal Morphodynamic Changes of Multiple Sand Bars in Sinduri Macrotidal Beach, Taean, Chungnam)

  • 장태수;이영윤;윤현호;도기덕
    • 한국지구과학회지
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    • 제45권3호
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    • pp.203-213
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    • 2024
  • 태안군 신두리 대조차 해빈에 나타나는 다중사주의 여름철 출현과 겨울철 사라짐 패턴을 조사하고 이들이 어떻게 겨울철에 소멸하고, 여름철에 다시 생성되는지를 토의하였다. 계절에 따른 다중사주의 지형변화는 VRS-GPS 시스템을 이용하여 지난 4년 동안 주기적으로 해빈 측선측량을 실시하여 파악하였다. 사주의 구성퇴적물을 알아보고자 계절에 따른 표층퇴적물을 채취하여 입도분석을 수행하였다. 추가적으로 유속자료를 확보하기 위해, TIDOS 조류관측시스템을 여름과 겨울에 각각 설치하여 얻었다. 신두리 해빈은 급경사의 상부 사빈면과 완만한 하부 조간대 지역으로 구분된다. 사빈면은 범(berm)의 발달이 미약하고, beach cusp가 나타나지 않아 매우 단조로운 지형을 갖고 있다. 조간대 지역은 폭이 400 m로서 넓고 2- 5개의 사주열이 나타난다. 사빈의 구성 퇴적물 평균입도는 2.0-2.75 phi 범위로 세립사에 해당하며, 육지방향으로 갈수록 조립해지는 경향을 띤다. 반복적 측선측량 결과, 신두리 해빈은 여름철 다중사주가 최대 5열까지 발달하는 해빈 단면을, 반면 겨울철에는 사주의 발달이 없는 편평한 해빈 단면을 갖는다. 겨울철 다중사주의 사라짐은 겨울의 강한 파랑으로 사주의 마루가 침식되고 골에 퇴적되는, 깎고 채움의 결과로 해석된다. 여름철 다중사주의 생성은 고조 시 정지상태에서 정상파 운동에 의해 생성되기보다는 조위면의 이동과 평상 파랑이 결합된 break-point 기작으로 설명된다. 평균해수면 근처의 사주가 가장 크고 뚜렷함, 육지방향으로 갈수록 사주의 진폭이 감소함, 다중사주 진폭의 불규칙함, 사주의 강한 비대칭, 그리고 육지방향으로 10-30 m 사주의 이동은 break-point 기작을 뒷받침한다.

Field Studios of In-situ Aerobic Cometabolism of Chlorinated Aliphatic Hydrocarbons

  • Semprini, Lewts
    • 한국지하수토양환경학회:학술대회논문집
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    • 한국지하수토양환경학회 2004년도 총회 및 춘계학술발표회
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    • pp.3-4
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    • 2004
  • Results will be presented from two field studies that evaluated the in-situ treatment of chlorinated aliphatic hydrocarbons (CAHs) using aerobic cometabolism. In the first study, a cometabolic air sparging (CAS) demonstration was conducted at McClellan Air Force Base (AFB), California, to treat chlorinated aliphatic hydrocarbons (CAHs) in groundwater using propane as the cometabolic substrate. A propane-biostimulated zone was sparged with a propane/air mixture and a control zone was sparged with air alone. Propane-utilizers were effectively stimulated in the saturated zone with repeated intermediate sparging of propane and air. Propane delivery, however, was not uniform, with propane mainly observed in down-gradient observation wells. Trichloroethene (TCE), cis-1, 2-dichloroethene (c-DCE), and dissolved oxygen (DO) concentration levels decreased in proportion with propane usage, with c-DCE decreasing more rapidly than TCE. The more rapid removal of c-DCE indicated biotransformation and not just physical removal by stripping. Propane utilization rates and rates of CAH removal slowed after three to four months of repeated propane additions, which coincided with tile depletion of nitrogen (as nitrate). Ammonia was then added to the propane/air mixture as a nitrogen source. After a six-month period between propane additions, rapid propane-utilization was observed. Nitrate was present due to groundwater flow into the treatment zone and/or by the oxidation of tile previously injected ammonia. In the propane-stimulated zone, c-DCE concentrations decreased below tile detection limit (1 $\mu$g/L), and TCE concentrations ranged from less than 5 $\mu$g/L to 30 $\mu$g/L, representing removals of 90 to 97%. In the air sparged control zone, TCE was removed at only two monitoring locations nearest the sparge-well, to concentrations of 15 $\mu$g/L and 60 $\mu$g/L. The responses indicate that stripping as well as biological treatment were responsible for the removal of contaminants in the biostimulated zone, with biostimulation enhancing removals to lower contaminant levels. As part of that study bacterial population shifts that occurred in the groundwater during CAS and air sparging control were evaluated by length heterogeneity polymerase chain reaction (LH-PCR) fragment analysis. The results showed that an organism(5) that had a fragment size of 385 base pairs (385 bp) was positively correlated with propane removal rates. The 385 bp fragment consisted of up to 83% of the total fragments in the analysis when propane removal rates peaked. A 16S rRNA clone library made from the bacteria sampled in propane sparged groundwater included clones of a TM7 division bacterium that had a 385bp LH-PCR fragment; no other bacterial species with this fragment size were detected. Both propane removal rates and the 385bp LH-PCR fragment decreased as nitrate levels in the groundwater decreased. In the second study the potential for bioaugmentation of a butane culture was evaluated in a series of field tests conducted at the Moffett Field Air Station in California. A butane-utilizing mixed culture that was effective in transforming 1, 1-dichloroethene (1, 1-DCE), 1, 1, 1-trichloroethane (1, 1, 1-TCA), and 1, 1-dichloroethane (1, 1-DCA) was added to the saturated zone at the test site. This mixture of contaminants was evaluated since they are often present as together as the result of 1, 1, 1-TCA contamination and the abiotic and biotic transformation of 1, 1, 1-TCA to 1, 1-DCE and 1, 1-DCA. Model simulations were performed prior to the initiation of the field study. The simulations were performed with a transport code that included processes for in-situ cometabolism, including microbial growth and decay, substrate and oxygen utilization, and the cometabolism of dual contaminants (1, 1-DCE and 1, 1, 1-TCA). Based on the results of detailed kinetic studies with the culture, cometabolic transformation kinetics were incorporated that butane mixed-inhibition on 1, 1-DCE and 1, 1, 1-TCA transformation, and competitive inhibition of 1, 1-DCE and 1, 1, 1-TCA on butane utilization. A transformation capacity term was also included in the model formation that results in cell loss due to contaminant transformation. Parameters for the model simulations were determined independently in kinetic studies with the butane-utilizing culture and through batch microcosm tests with groundwater and aquifer solids from the field test zone with the butane-utilizing culture added. In microcosm tests, the model simulated well the repetitive utilization of butane and cometabolism of 1.1, 1-TCA and 1, 1-DCE, as well as the transformation of 1, 1-DCE as it was repeatedly transformed at increased aqueous concentrations. Model simulations were then performed under the transport conditions of the field test to explore the effects of the bioaugmentation dose and the response of the system to tile biostimulation with alternating pulses of dissolved butane and oxygen in the presence of 1, 1-DCE (50 $\mu$g/L) and 1, 1, 1-TCA (250 $\mu$g/L). A uniform aquifer bioaugmentation dose of 0.5 mg/L of cells resulted in complete utilization of the butane 2-meters downgradient of the injection well within 200-hrs of bioaugmentation and butane addition. 1, 1-DCE was much more rapidly transformed than 1, 1, 1-TCA, and efficient 1, 1, 1-TCA removal occurred only after 1, 1-DCE and butane were decreased in concentration. The simulations demonstrated the strong inhibition of both 1, 1-DCE and butane on 1, 1, 1-TCA transformation, and the more rapid 1, 1-DCE transformation kinetics. Results of tile field demonstration indicated that bioaugmentation was successfully implemented; however it was difficult to maintain effective treatment for long periods of time (50 days or more). The demonstration showed that the bioaugmented experimental leg effectively transformed 1, 1-DCE and 1, 1-DCA, and was somewhat effective in transforming 1, 1, 1-TCA. The indigenous experimental leg treated in the same way as the bioaugmented leg was much less effective in treating the contaminant mixture. The best operating performance was achieved in the bioaugmented leg with about over 90%, 80%, 60 % removal for 1, 1-DCE, 1, 1-DCA, and 1, 1, 1-TCA, respectively. Molecular methods were used to track and enumerate the bioaugmented culture in the test zone. Real Time PCR analysis was used to on enumerate the bioaugmented culture. The results show higher numbers of the bioaugmented microorganisms were present in the treatment zone groundwater when the contaminants were being effective transformed. A decrease in these numbers was associated with a reduction in treatment performance. The results of the field tests indicated that although bioaugmentation can be successfully implemented, competition for the growth substrate (butane) by the indigenous microorganisms likely lead to the decrease in long-term performance.

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