• 제목/요약/키워드: Frequency-strain curve

검색결과 33건 처리시간 0.02초

내열성장독소 생산 대장균의 판정 (Assay of Heat Stable Enterotoxin Producing E. coli)

  • 장우현;김문교;최명식;양남웅;고광욱;서정기
    • 대한미생물학회지
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    • 제18권1호
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    • pp.53-58
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    • 1983
  • Enterotoxigenic E. coli is one of causative agents of the infantile diarrhea and traveler's diarrhea. A modified infant mouse assay(IMA) was developed for the detection of heat stable enterotoxin (ST) of E. coli isolated from diarrheal and control infants and assay system was established with using enterotoxin producing reference strains. The supernatant of the 24 hour-shaking culture of E. coli in Casamino Acid Yeast Extract Salt Broth(CYES-2) was ingested orally into the 2-4 day old ICR mice. After the mice were kept at $25^{\circ}C$ for 4 hours, they were sacrificed and the gut weight body weight ratio(GW/BW) was taken as the index of fluid accumulation induced by heat stable enterotoxin of E. coli. The results obtained were as follows; 1. The GW/BW responses of IMA tested with enterotoxin reference strains of E. coli(E. coli O148H28:$ST^+LT^+$, E. coli $O78H^-:ST^+LT^+$, E. coli O15H11:$ST^-LT^+$, E. coli O1H7:$ST^-LT^-$) appeared ta be ST dose-dependent, and not LT-dependent. From the dose-response curve, $25{\mu}l$ of culture supernatant was determined as test amount of the IMA. 2. Frequency distribution of IMA result from 643 strain of E. coli showed normal distribution at low GW/BW ratio and dispersed pattern at high GW/BW ratio. The GW/BW ratios of $0.056{\pm}0.004(mean{\pm}SD)$ of normal distribution which distributed from 0.044 to 0.068(P<0.01) was considered as ST negative. Thus the GW/BW ratio above 0.069 could be regarded as ST positive.

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온도와 재령이 콘크리트의 동탄성계수와 정 탄성계수의 상관관계에 미치는 영향 (Effect of Temperature and Aging on the Relationship Between Dynamic and Static Elastic Modulus of Concrete)

  • 한상훈;김진근;박우선;김동현
    • 콘크리트학회논문집
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    • 제13권6호
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    • pp.610-618
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    • 2001
  • 본 논문에서는 동탄성계수와 정탄성계수 및 압축강도의 상관관계를 양생온도, 재령, 시멘트의 종류에 따라 살펴보고 그 거동을 정확하게 모델링하는 모델식을 제시하고자 하였다. 이를 위하여 충격공진법을 이용하여 공진주파수를 측정하여 동탄성계수를 계산하고 일축압축실험을 통하여 정탄성계수와 압축강도를 구하였다. 시멘트는 1종과 5종 포틀랜드 시멘트를, 물-시멘트비는 0.40과 0.50을, 양생온도는 10, 23, 5$0^{\circ}C$를 선택하여 실험을 수행하였다. 동탄성계수와 정탄성계수의 상관관계는 시멘트의 종류와 재령에 큰 영향을 받지 않았다. 그러나, 양생온도의 변화에 따라 동탄성계수와 정탄성계수의 상관관계는 변화하여 두 값의 비가 온도가 증가함에 따라 1에 가깝게 접근하였다. 초기현탄성계수와 동탄성계수의 비는 정탄성계수와 동탄성계수의 비보다 좀 더 1에 가까웠다. 압축강도와 동탄성계수의 상관관계는 동탄성계수와 정탄성계수의 상관관계와 같이 시멘트의 종류와 재령에는 큰 영향을 받지 않았지만 양생온도에 따라서는 그 상관관계가 변하였다. 제시된 동탄성계수와 정탄성계수 및 압축강도의 상관관계식들은 이러한 시멘트의 종류와 온도에 따른 상관관계의 변화를 잘 모델링하였다.

Molecular Theory of Plastic Deformation (Ⅲ)$^*$

  • Kim, Jae-Hyun;Ree, Tai-Kyue;Kim, Chang-Hong
    • Bulletin of the Korean Chemical Society
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    • 제2권3호
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    • pp.96-104
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    • 1981
  • (1) The flow data of f (stress) and ${\dot{s}$ (strain rate) for Fe and Ti alloys were plotted in the form of f vs. -ln ${\dot{s}$ by using the literature values. (2) The plot showed two distinct patterns A and B; Pattern A is a straight line with a negative slope, and Pattern B is a curve of concave upward. (3) According to Kim and Ree's generalized theory of plastic deformation, pattern A & B belong to Case 1 and 2, respectively; in Case 1, only one kind of flow units acts in the deformation, and in Case 2, two kinds flow units act, and stress is expressed by $f={X_1f_1}+{X_2f_2}$where $f_1\;and\;f_2$ are the stresses acting on the flow units of kind 1 and 2, respectively, and $X_1,\;X_2$ are the fractions of the surface area occupied by the two kinds of flow units; $f_j=(1/{\alpha}_j) sinh^{-1}\;{\beta}_j{{\dot{s}}\;(j=1\;or\;2)$, where $1/{\alpha}_j\;and\;{\beta}_j$ are proportional to the shear modulus and relaxation time, respectively. (4) We found that grain-boundary flow units only act in the deformation of Fe and Ti alloys whereas dislocation flow units do not show any appreciable contribution. (5) The deformations of Fe and Ti alloys belong generally to pattern A (Case 1) and B (Case 2), respectively. (6) By applying the equations, f=$(1/{\alpha}_{g1}) sinh^-1({\beta}_{g1}{\dot{s}}$) and $f=(X_{g1}/{\alpha}_{g1})sinh^{-1}({\beta}_{g1}{\dot{s}})+ (X_{g2}/{\alpha}_{g2})\;shih^{-1}({\beta}_{g2}{\dot{s}})$ to the flow data of Fe and Ti alloys, the parametric values of $x_{gj}/{\alpha}_{gj}\;and\;{\beta}_{gs}(j=1\;or\;2)$ were determined, here the subscript g signifies a grain-boundary flow unit. (7) From the values of ($({\beta}_gj)^{-1}$) at different temperatures, the activation enthalpy ${\Delta}H_{gj}^{\neq}$ of deformation due to flow unit gj was determined, ($({\beta}_gj)^{-1}$) being proportional to , the jumping frequency (the rate constant) of flow unit gj. The ${\Delta}H_{gj}\;^{\neq}$ agreed very well with ${\Delta}H_{gj}\;^{\neq}$ (self-diff) of the element j whose diffusion in the sample is a critical step for the deformation as proposed by Kim-Ree's theory (Refer to Tables 3 and 4). (8) The fact, ${\Delta}H_{gj}\;^{\neq}={\Delta}H_{j}\;^{\neq}$ (self-diff), justifies the Kim-Ree theory and their method for determining activation enthalpies for deformation. (9) A linear relation between ${\beta}^{-1}$ and carbon content [C] in hot-rolled steel was observed, i.e., In ${\beta}^{-1}$ = -50.2 [C] - 40.3. This equation explains very well the experimental facts observed with regard to the deformation of hot-rolled steel..