• 제목/요약/키워드: MICP

검색결과 38건 처리시간 0.032초

Factors affecting the urease activity of native ureolytic bacteria isolated from coastal areas

  • Imran, Md Al;Nakashima, Kazunori;Evelpidou, Niki;Kawasaki, Satoru
    • Geomechanics and Engineering
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    • 제17권5호
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    • pp.421-427
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    • 2019
  • Coastal erosion is becoming a significant problem in Greece, Bangladesh, and globally. For the prevention and minimization of damage from coastal erosion, combinations of various structures have been used conventionally. However, most of these methods are expensive. Therefore, creating artificial beachrock using local ureolytic bacteria and the MICP (Microbially Induced Carbonate Precipitation) method can be an alternative for coastal erosion protection, as it is a sustainable and eco-friendly biological ground improvement technique. Most research on MICP has been confined to land ureolytic bacteria and limited attention has been paid to coastal ureolytic bacteria for the measurement of urease activity. Subsequently, their various environmental effects have not been investigated. Therefore, for the successful application of MICP to coastal erosion protection, the type of bacteria, bacterial cell concentration, reaction temperature, cell culture duration, carbonate precipitation trend, pH of the media that controls the activity of the urease enzyme, etc., are evaluated. In this study, the effects of temperature, pH, and culture duration, as well as the trend in carbonate precipitation of coastal ureolytic bacteria isolated from two coastal regions in Greece and Bangladesh, were evaluated. The results showed that urease activity of coastal ureolytic bacteria species relies on some environmental parameters that are very important for successful sand solidification. In future, we aim to apply these findings towards the creation of artificial beachrock in combination with a geotextile tube for coastal erosion protection in Mediterranean countries, Bangladesh, and globally, for bio-mediated soil improvement.

Debonding of microbially induced carbonate precipitation-stabilized sand by shearing and erosion

  • Do, Jinung;Montoya, Brina M.;Gabr, Mohammed A.
    • Geomechanics and Engineering
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    • 제17권5호
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    • pp.429-438
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    • 2019
  • Microbially induced carbonate precipitation (MICP) is an innovative soil improvement approach utilizing metabolic activity of microbes to hydrolyze urea. In this paper, the shear response and the erodibility of MICP-treated sand under axial compression and submerged impinging jet were evaluated at a low confining stress range. Loose, poorly graded silica sand was used in testing. Specimens were cemented at low confining stresses until target shear wave velocities were achieved. Results indicated that the erodibility parameters of cemented specimens showed an increase in the critical shear stress by up to three orders of magnitude, while the erodibility coefficient decreased by up to four orders of magnitude. Such a trend was observed to be dependent on the level of cementation. The treated sand showed dilative behavior while the untreated sands showed contractive behavior. The shear modulus as a function of strain level, based on monitored shear wave velocity, indicated mineral debonding may commence at 0.05% axial strain. The peak strength was enhanced in terms of emerging cohesion parameter based on utilizing the Mohr-Coulomb failure criteria.

Bioremediation of Pb-Contaminated Soil Based on Microbially Induced Calcite Precipitation

  • Achal, Varenyam;Pan, Xiangliang;Zhang, Daoyong;Fu, Qinglong
    • Journal of Microbiology and Biotechnology
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    • 제22권2호
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    • pp.244-247
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    • 2012
  • To remediate lead (Pb)-contaminated soils, it is proposed that microbially induced calcite precipitation (MICP) would provide the best alternative to other remediation technologies. In this study, Pb bioremediation in soils was investigated using the calcite-precipitating bacterium Kocuria flava. Results indicate that the Pb is primarily associated with the carbonate fraction in bioremediated soil samples. The bioavailability of Pb in contaminated soil was reduced so that the potential stress of Pb was alleviated. This research provides insight into the geochemistry occurring in the MICP-based Pb-remediated soils, which will help in remediation decisions.

미생물의 방해석 석출 작용을 이용한 자기보수 스마트 콘크리트 개발에 관한 연구 (Development of Self-Repairing Smart Concrete Using Micro-Biologically Induced Calcite Precipitation)

  • 김화중;김사열;박성진;최길준;천우영
    • 콘크리트학회논문집
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    • 제22권4호
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    • pp.547-557
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    • 2010
  • 이 연구는 미생물의 생체광물형성작용 중 미생물의 방해석 석출 작용(micro-biologically induced calcite precipitation, MICP)을 이용하여 환경적인 문제를 배려한 차세대 스마트 콘크리트의 개발이 목적이다. 현재 콘크리트의 개질(改質) 및 성능향상을 목적으로 미생물의 방해석 석출 작용을 이용한 기술은 대표적 미생물인 Sporosarcina pasteurii에 의해 그 가능성이 제안되어 왔다. 이 연구에서는 이러한 미생물의 방해석 석출작용을 이용하는 것으로서 선행 연구의 Sporosarcina pasteurii외에 콘크리트 구조물에서 탐색하여 16S rDNA 염기서열 분석법에 의해 동정된 4종의 신규 유용미생물자원들을 추가적으로 이용하였으며, 이렇게 확보된 방해석을 석출하는 유용미생물자원들에 대한 소개와 미생물의 방해석 석출 작용에 따른 시멘트 결정성을 평가하였다. 또한 콘크리트의 개질 및 성능 향상을 목적으로 이러한 유용미생물자원들을 우선적으로 모르타르 환경에 적용하여 양생조건별 압축강도의 특성을 평가하고, 모르타르에 인위적 균열을 만들어 미생물의 방해석 석출 작용에 따른 균열의 충전 가능성을 검토하였다. 이러한 유용미생물들의 적용에 따른 효과는 보수 기능뿐만 아니라 환경 문제를 배려한 새로운 재료로서의 개발로 이어져 향후 더욱 더 중요한 연구주제의 하나가 될 것으로 기대된다. 또한 이 연구의 큰 의미는 실제 콘크리트 구조물에 상생하고, 자연환경에서 방해석을 석출하는 미생물을 이용한다는 것이며, 긴 시간동안 자연환경에서 살아남은 이 미생물들은 환경적으로 안전할 뿐만 아니라 새로운 환경 저부하성 기능재료로서의 이용이 가능할 것으로 판단된다.

콘크리트 포장도로에서 분리한 탄산칼슘형성미생물의 다양한 환경 스트레스반응 (Environmental Stress Response of Calcite Forming Bacteria Isolated from Concrete Pavement)

  • 한상현;김성근;강창호;박주영;정진훈;소재성
    • KSBB Journal
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    • 제27권4호
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    • pp.268-272
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    • 2012
  • Microbially induced calcite precipitation (MICP) has been explored for protection and consolidation of construction materials such as concrete. In this study, we isolated 54 calcite forming bacteria from concrete pavement and selected 5 isolates which showed high specific urease activity. Also response of the 5 strains against various environmental stresses was examined. BC 4 and BC 5 showed 35% and 26% viability at heat stress ($50^{\circ}C$), respectively. BC 1 and BC 4 maintained 60.4% and 70.4% viability upon osmotic stress (1 M NaCl), respectively. Among the 5 isolates BC 4 had the highest viability upon alkaline stress (pH 10).

유체시뮬레이션을 통한 Ar/CF4 자화유도결합 플라즈마의 특성 연구 (A study on Ar/CF4 Magnetized Inductively Coupled Plasma Using Fluid Simulation)

  • 김윤기;손의정;위성석;김동현;이호준
    • 전기학회논문지
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    • 제64권4호
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    • pp.560-566
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    • 2015
  • The self-consistent simulation based on the drift-diffusion approximation with anisotropic transport coefficients was performed. The RHCP-wave propagation was observed in MICP and this wave was refracted toward the high-density region. The calculated impedance seen from the antenna terminal shows that resistance component of MICP is a higher than that of ordinary ICP. Because of a higher resistance, the power transfer efficiency was improved to 95%. This property is practically important for large-size, low-pressure plasma sources because high resistance corresponds to high power-transfer efficiency and stable impedance matching characteristics.

Characterization of Three Antifungal Calcite-Forming Bacteria, Arthrobacter nicotianae KNUC2100, Bacillus thuringiensis KNUC2103, and Stenotrophomonas maltophilia KNUC2106, Derived from the Korean Islands, Dokdo and Their Application on Mortar

  • Park, Jong-Myong;Park, Sung-Jin;Ghim, Sa-Youl
    • Journal of Microbiology and Biotechnology
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    • 제23권9호
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    • pp.1269-1278
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    • 2013
  • Crack remediation on the surface of cement mortar using microbiological calcium carbonate ($CaCO_3$) precipitation (MICP) has been investigated as a microbial sealing agent on construction materials. However, MICP research has never acknowledged the antifungal properties of calcite-forming bacteria (CFB). Since fungal colonization on concrete surfaces can trigger biodeterioration processes, fungi on concrete buildings have to be prevented. Therefore, to develop a microbial sealing agent that has antifungal properties to remediate cement cracks without deteriorative fungal colonization, we introduced an antifungal CFB isolated from oceanic islands (Dokdo islands, territory of South Korea, located at the edge of the East Sea in Korea.). The isolation of CFB was done using B4 or urea-$CaCl_2$ media. Furthermore, antifungal assays were done using the pairing culture and disk diffusion methods. Five isolated CFB showed $CaCO_3$ precipitation and antifungal activities against deteriorative fungal strains. Subsequently, five candidate bacteria were identified using 16S rDNA sequence analysis. Crack remediation, fungi growth inhibition, and water permeability reduction of antifungal CFB-treated cement surfaces were tested. All antifungal CFB showed crack remediation abilities, but only three strains (KNUC2100, 2103, and 2106) reduced the water permeability. Furthermore, these three strains showed fungi growth inhibition. This paper is the first application research of CFB that have antifungal activity, for an eco-friendly improvement of construction materials.

Etching characteristics of Al-Nd alloy thin films using magnetized inductively coupled plasma

  • Lee, Y.J.;Han, H.R.;Yeom, G.Y.
    • 한국표면공학회:학술대회논문집
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    • 한국표면공학회 1999년도 추계학술발표회 초록집
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    • pp.56-56
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    • 1999
  • For advanced TFT-LCD manufacturing processes, dry etching of thin-film layers(a-Si, $SiN_x$, SID & gate electrodes, ITO etc.) is increasingly preferred instead of conventional wet etching processes. To dry etch Al gate electrode which is advantageous for reducing propagation delay time of scan signals, high etch rate, slope angle control, and etch uniformity are required. For the Al gate electrode, some metals such as Ti and Nd are added in Al to prevent hillocks during post-annealing processes in addition to gaining low-resistivity($<10u{\Omega}{\cdot}cm$), high performance to heat tolerance and corrosion tolerance of Al thin films. In the case of AI-Nd alloy films, however, low etch rate and poor selectivity over photoresist are remained as a problem. In this study, to enhance the etch rates together with etch uniformity of AI-Nd alloys, magnetized inductively coupled plasma(MICP) have been used instead of conventional ICP and the effects of various magnets and processes conditions have been studied. MICP was consisted of fourteen pairs of permanent magnets arranged along the inside of chamber wall and also a Helmholtz type axial electromagnets was located outside the chamber. Gas combinations of $Cl_2,{\;}BCl_3$, and HBr were used with pressures between 5mTorr and 30mTorr, rf-bias voltages from -50Vto -200V, and inductive powers from 400W to 800W. In the case of $Cl_2/BCl_3$ plasma chemistry, the etch rate of AI-Nd films and etch selectivity over photoresist increased with $BCl_3$ rich etch chemistries for both with and without the magnets. The highest etch rate of $1,000{\AA}/min$, however, could be obtained with the magnets(both the multi-dipole magnets and the electromagnets). Under an optimized electromagnetic strength, etch uniformity of less than 5% also could be obtained under the above conditions.

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Effect of chemical concentrations on strength and crystal size of biocemented sand

  • Choi, Sun-Gyu;Chu, Jian;Kwon, Tae-Hyuk
    • Geomechanics and Engineering
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    • 제17권5호
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    • pp.465-473
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    • 2019
  • Biocementation due to the microbially induced calcium carbonate precipitation (MICP) process is a potential technique that can be used for soil improvement. However, the effect of biocementation may be affected by many factors, including nutrient concentration, bacterial strains, injection strategy, temperature, pH, and soil type. This study investigates mainly the effect of chemical concentration on the formation of calcium carbonate (e.g., quantity, size, and crystalline structure) and unconfined compressive strength (UCS) using different treatment time and chemical concentration in the biotreatment. Two chemical concentrations (0.5 and 1.0 M) and three different treatment times (2, 4, and 8 cycles) were studied. The effect of chemical concentrations on the treatment was also examined by making the total amount of chemicals injected to be the same, but using different times of treatment and chemical concentrations (8 cycles for 0.50 M and 4 cycles for 1.00 M). The UCS and CCC were measured and scanning electron microscopy (SEM) analysis was carried out. The SEM images revealed that the sizes of calcium carbonate crystals increased with an increase in chemical concentrations. The UCS values resulting from the treatments using low concentration were slightly greater than those from the treatments using high concentration, given the CCC to be more or less the same. This trend can be attributed to the size of the precipitated crystals, in which the cementation efficiency increases as the crystal size decreases, for a given CCC. Furthermore, in the high concentration treatment, two mineral types of calcium carbonate were precipitated, namely, calcite and amorphous calcium carbonate (ACC). As the crystal shape and morphology of ACC differ from those of calcite, the bonding provided by ACC can be weaker than that provided by calcite. As a result, the conditions of calcium carbonate were affected by test key factors and eventually, contributed to the UCS values.