• Title/Summary/Keyword: Soil microorganism

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The Effects of Soybean Cultivation on Soil Microorganism Activity (콩 재배가 토양 미생물 군집 활성도에 미치는 영향)

  • Bak, Gyeryeong;Lee, Gyejun;Kim, Taeyoung
    • Korean Journal of Environmental Agriculture
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    • v.38 no.2
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    • pp.76-82
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    • 2019
  • BACKGROUND: For sustainable agriculture, there are various agricultural practices including low input. Over the last few decades high input of chemical fertilizer and compounds results in environmental pollution and deterioration of soil fertility. Soybean (Glycine max L.) is well known eco-friendly crop due to their symbionts. Soybean has a relationship with nitrogen fixation bacteria called rhizobia. In this research work, we investigated effects of soybean cultivation on soil microorganism activities. METHODS AND RESULTS: Experiments were conducted in pots and potato cultivation was used as reference. Soil chemical properties were analyzed considering soil nutrient over cropping period. For the soil microbial community analysis, dehydrogenase activity analysis (DHA) analyzed along with denaturing gradient gel electrophoresis. The results showed that higher soil organic matter in the soybean cultivation soil than in the potato cultivation soil. Available $P_2O_5$ concentration increased gradually in both pots but showed higher value in the potato cultivation soil. DHA value implying microbial activities showed higher value in the soybean cultivation soil over all cropping period. CONCLUSION: The cause of high microbial activity in the soybean cultivation soil was considered to the effects of some specific microorganisms related to soybean cultivation. Therefore, the availability of soybean cultivation for sustainable agriculture should be encouraged in terms of microorganism community activity in soil.

TPH Removal of the Biodegradation Process Using 4 Indigenous Microorganisms for the Diesel Contaminated Soil in a Military Camp (디젤로 오염된 군부대 토양에 대하여 토착미생물 4종을 이용한 생분해법의 TPH 제거 효율 규명)

  • Park, Min-Ho;Lee, Min-Hee
    • Journal of Soil and Groundwater Environment
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    • v.17 no.3
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    • pp.49-58
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    • 2012
  • Batch experiments using indigenous and commercialized adventive microorganisms were performed to investigate the feasibility of the biodegradation process for the diesel contaminated soil, which was taken in US Military Camp 'Hialeah', Korea. TPH concentration of the soil was determined as 3,819 mg/kg. Four indigenous microorganisms having high TPH degradation activity were isolated from the soil and by 16S rRNA gene sequence analysis, they were identified as Arthrobacter sp., Burkholderia sp., Cupriavidus sp. and Bacillus sp.. Two kinds of commercialized solutions cultured with adventive microorganisms were also used for the experiments. Various biodegradation conditions such as the amount of microorganism, water content and the temperature were applied to decide the optimal bioavailability condition in the experiments. In the case of soils without additional microorganisms (on the natural attenuation condition), 35% of initial TPH was removed from the soil by inhabitant microorganisms in soil for 30 days. When the commercialized microorganism cultured solutions were added into the soil, their average TPH removal efficiencies were 64%, and 54%, respectively, which were higher than that without additional microorganisms. When indigenous microorganisms isolated from the contaminated soil were added into the soil, TPH removal efficiency increased up to 95% (for Bacillus sp.). According to the calculation of the average biodegradation rates for Bacillus sp., the remediation goal (87% of the removal efficiency: 500 mg/kg) for the soil would reach within 24 days. Results suggested that TPH removal efficiency of biodegradation by injecting indigenous microorganisms is better than those by injecting commercialized adventive microorganisms and only by using the natural attenuation.

Effects of applied biochar derived from spent oyster mushroom (Pleurotus ostreatus) substrate to Soil Physico-chemical Properties and crop growth responses (느타리버섯 수확후배지 바이오차 시용이 토양 이화학성 및 작물 생육에 미치는 영향)

  • Jae-Eun Jang;Sung-Hee Lim;Min-Woo Shin;Ji-Young Moon;Joo-Hee Nam;Gab-June Lim
    • Journal of the Korea Organic Resources Recycling Association
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    • v.31 no.3
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    • pp.73-82
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    • 2023
  • This study was conducted to investigate the effect of soil physico-chemical properties and crop growth responses for application of biochar derived from substrate with post harvest of oyster mushroom. The biochar was produced at 450~600℃ using a top-light up draft gasifier (TLUD) production system. As a result of elemental analysis, the biochar used was C 76.2%, H 2.5%, N 3.2%, and H/C was 0.39, which met the international certification standards for biocarbons (IBI) below 0.7. The chemical properties were 10.1 for pH, 1.0% for P2O5, 1.8% for K2O, and 2.5% for CaO. The application rates of biochar were 0, 100, 200, 300, and 500 kg/10a. For cultivation of chinese cabbage and welsh onion, soil organic matter (OM), total nitrogen (T-N), total carbon (T-C), Ex.cation K contents and cation exchange capacity (CEC) in the treatments were increased compared to the no treatment. In addition, the bulk density was lowered and the porosity was increased, improving the soil physical properties in the treated soil. The growth of chinese cabbage and green onion increased with the application of biochar, but the yields of chinese cabbage and green onion did not significantly different among the treatments. Soil carbon sequestration in the treatments enhanced with increasing the amount of biochar application. It is expected to apply the biochar derived from spent oyster mushroom substrate in the eco-friendly farm soil management, improving soil physico-chemical properties.

Comparative Study on Some Factors Affecting the Oxyfluorfen Inactivation in Soil (Oxyfluorfen의 토양중(土壤中) 불활성화(不活性化)에 관여(關與)하는 수종요인(數種要因)의 비교연구(比較硏究))

  • Kim, D.K.;Lee, J.M.;Guh, J.O.;Lee, K.
    • Korean Journal of Weed Science
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    • v.6 no.2
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    • pp.146-153
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    • 1986
  • The study was conducted to estimate the oxyfluorfen inactivation proceeding which have or have not organism and soil microorganism in soil by biological testing method, under the different condition of soil class and temperature. The results obtained in this experiment are as follows: 1. Under the condition of high temperature, chemical`s inactivation resulted in early and the extent of it`s inactivation was increased. 2. The extent of inactivation was more rapid in the sandy soil than in the clay. 3. Among the soil class, the differentiation of the day of demand with inactivation at the 50% and 95% was significantly increased low temperature period. 4. In sandy soil, inactivation`s differentiation by adding organism was found, but by adding microorganism was not found. 5. In clay, chemical's inactivation was increased rather by adding microorganism than by adding organism. 6. Among under the condition of soil class, by adding organism and micrrorganism, chemical`s inactivation (Probit growing period at 50% and 95%) was shorted. And among the soil class, it was shortter sandy soil than clay or silty loam soil.

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Microbial composition and diversity of the long term application of organic material in upland soil

  • An, Nan-Hee;Park, Jong-Ho;Han, Eun-Jung;Hong, Sung-Jun;Kim, Yong-Ki;Jee, Hyeong-Jin
    • Korean Journal of Organic Agriculture
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    • v.19 no.spc
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    • pp.190-193
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    • 2011
  • Organic and chemical fertilizer amendments are an important agricultural practice for increasing crop yields. In order to maintain the soil sustainability, it is important to monitor the effects of fertilizer applications on the shift of soil microorganism, which control the cycling of many nutrients in the soils. Here, culture-dependent and culture-independent approaches were used to analyze the soil microorganism and community structure under six fertilization treatments, including green manure, rice straw compost, rapeseed cake, pig mature compost, NPK +pig mature compost, NPK and control. Both organic and chemical fertilizers caused a shift of the cultural microorganism CFUs after treatments. Bacterial CFUs of the organic fertilization treatments were significantly higher than that of chemical fertilization treatments. The DGGE profiles of the bacterial communities of the samples showed that the green manure treatment was a distinct difference in bacterial community, with a greater complexity of the band pattern than other treatments. Cluster analyses based on the DGGE profile showed that rice straw compost and pig mature compost had a similar banding pattern and clustered together firstly. Rapeseed cake, NPK, NPK +pig manure compost and control clustered together in other sub-cluster and clearly distinguished from green manure.

In Situ Bio-barrier Formation using Bacteria/Fungi-Soil Mixture (Bacteria/Fungi 혼합토를 이용한 현장 Bio-barrier 형성)

  • 김건하;송영우;구동영
    • Proceedings of the Korean Geotechical Society Conference
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    • 2000.03b
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    • pp.489-495
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    • 2000
  • When microorganisms such as bacteria and fungi are injected into porous medium such as soils along with appropriate substrate and nutrients, biomass retained in the soil pore. Soil pore size and shape are varied from the initial condition as a result of biofilm formation, which make hydraulic conductivity reduced. In this research, hydraulic conductivity reduction was measured after microorganism are inoculated and cultured with synthetic substrates and nutrients. Biomass-soil mixture was evaluated its applicability to the field condition as an alternative liner material in landfill by measuring hydraulic conductivity change after repetitive freeze-thaw cycles.

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Swine wastewater treatment with soil microbes and its efficiency and dynamic parameters (토양미생물을 이용한 축산폐수 처리의 공정별 제거효율 및 동력학적 상수)

  • Park, Wan-Cheol;Shin, Nam-Cheol
    • Korean Journal of Environmental Agriculture
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    • v.19 no.2
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    • pp.177-182
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    • 2000
  • Removal rate of swine wastewater containing organic matter was 99 percent in case of high loading rate. The studies of swine wastewater treatment aim to development of process using soil microorganism. Microorganism was devoted to improve the treatment efficiency of the process. Biochemical oxygen demand (BOD) concentration of treated swine wastewater was under 150 mg/L in anaerobic reactor. Also, value of km and Y were $0.73\;hr^{-1}$ and 0.433 g/VSS/g BODrm/d at microorganism of post aeration tank in anaerobic reactor.

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Bio-barrier Formation by Biomass Injection into Soil (미생물 토양 주입을 통한 Bio-barrier 형성)

  • Kim, Geon-Ha;Song, Youngwoo;Gu, Dongyoung
    • Journal of Korean Society of Environmental Engineers
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    • v.22 no.5
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    • pp.927-938
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    • 2000
  • When microorganism is injected into porous medium such as soils along with appropriate substrate and nutrients, biomass retained in the soil pore. Soil pore size and shape are varied from the initial condition as a result of biofilm formation, which make hydraulic conductivity reduced. In this research, hydraulic conductivity reduction was measured after microorganism are inoculated and cultured with synthetic substrates and nutrients. Biomass-soil mixture was evaluated its applicability to the field condition as an alternative liner material in landfill by measuring hydraulic conductivity change after repetitive freeze-thaw cycles. Resistance of biofilm to chemical solution and degree of biodegradation were measured through column test.

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Degradation of BTX by Klebsiella gr. 47 in the Biological Wastewater Treatment (Klebsiella gr. 47을 이용한 생물학적 폐수처리에서 BTX 분해 특성)

  • 염승호;최석순
    • Journal of Environmental Science International
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    • v.7 no.3
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    • pp.393-400
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    • 1998
  • A microorganism, Klebsiella gr. 47, capable of degrading BTX(benzene, toluene and xylene) was isolated from oil-contaminated soil and its characteristics of BTX degradation were investigated. When benzene and toluene were fed to Klebstella gr. 47 simulataneously, they showed competitive ingibition. The degradation rate of xylene was enhanced as much as 3 times when xylene was fed with benzene or toluene. Degradation rate of benzene and toluene was also enhanced by cocultured with Alcaligenes xylosoxidans. When benzene-adapted microorganism was used, each BTX compound was degraded efficiently within 5 hours.

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