• 제목/요약/키워드: Press on Metal ceramic

검색결과 91건 처리시간 0.026초

착색지르코니아 코어와 전장 도재 사이의 전단결합강도에 관한 연구 (A study on the shear bond strengths of veneering ceramics to the colored zirconia core)

  • 강선녀;조욱;전영찬;정창모;윤미정
    • 대한치과보철학회지
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    • 제47권3호
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    • pp.312-319
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    • 2009
  • 연구목적: 지르코니아-도재 수복물에 있어 상부도재와 코어 사이의 결합 실패가 종종 보고되어 왔으며 특히 착색지르코니아 코어는 기존의 백색 지르코니아보다 상부 도재와의 결합력이 약하다고 보고된 바 있다. 이 연구의 목적은 착색 지르코니아 코어 위의 상부도재를 적층식과 열가압식으로 제작하여 그 전단결합강도를 알아보고, 이를 전통적인 금속-도재간 결합강도와 비교하여 그 임상적 안정성을 평가하는 것이다. 연구 재료 및 방법: 금속도재군 (MC)을 대조군으로 하였다. 전통적인 금속도재군 (MC)과 지르코니아 코어를 사용한 두가지 군 (ZB, ZP)에 대하여 각 시스템별로 10개씩, 총 30개의 시편을 제작했다. CAD/CAM을 이용해 직경 12 mm, 높이 2.8 mm의 원판형 지르코니아 코어 (Katana zirconia)를 제작하고, 그 상부에 직경 2.8 mm, 높이 3 mm의 도재를 축성했다. ZB군은 CZR을 이용하여 적층법으로 상부도재를 제작했으며 ZP군은 NobelRondo Press ingot를 열가압하여 제작했다. Shear bond test machine (R&B Inc. Daejeon, Korea)을 이용하여 분당 0.50 mm의 속도로 파절이 일어날 때까지 전단력을 가하여 최대적용력 (N)을 측정하여 전단결합강도를 계산하고, 일원배치 분산분석을 사용하여 유의수준 5%에서 검정하였다. 파절양상을 알아보기 위하여 전자주사현미경을 통해 파절단면을 관찰했다. 결과: 평균 전단강도 (SD)는 MC 대조군 29.14 (2.26); ZB 29.48 (2.30); ZP 29.51 (2.32) 이었다. 실험군과 대조군 사이에 유의한 차이는 없었다. 모든 실험군에서 접착성 실패와 응집성 실패가 혼재된 양상을 보였으며, 응집성 실패가 우세했다. 결론: 1. 착색지르코니아 코어와 상부도재들 간의 전단결합강도는 금속 도재간 전단결합강도와 유의한 차이가 없었다. 2. 착색지르코니아 코어의 상부도재를 제작하는 방식에 있어 적층법과 열가압법 간의 전단결합강도에 유의한 차이는 없었다 (P > .05). 3. 파절양상은 응집성 파절이 우세한 가운데 접착성 파절과 응집성 파절이 혼재되어 나타났다.

다용도 프라이머가 레진 시멘트와 수복재의 전단 결합 강도에 미치는 영향 (Effect of universal primer on shear bond strength between resin cement and restorative materials)

  • 김나홍;심준성;문홍석;이근우
    • 대한치과보철학회지
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    • 제50권2호
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    • pp.112-118
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    • 2012
  • 연구 목적: 이 연구의 목적은 실란과 인산 모노머를 혼합한 프라이머인 Monobond plus (Ivoclar Vivadent, Schaan, Liechtenstein)를 사용했을 때 레진 시멘트와 수복물 간의 전단 결합 강도가 귀금속, 비귀금속, 글라스 세라믹과 지르코니아 네 가지 재료 모두에서 기존의 프라이머를 사용했을 때의 결합 강도와 비교하여 유의한지 평가하는 것이다. 연구 재료 및 방법: 디스크 모양(${\phi}\;9mm{\times}3mm$)의 귀금속(Argedent Euro) 시편 16개, 비귀금속(T-4) 시편 20개, 지르코니아(Cercon) 시편 20개, 글라스 세라믹(IPS e.max press) 시편 20개를 제작한 후 아크릴릭 레진(${\phi}\;15mm{\times}15mm$)에 포매하였다. 귀금속 시편에 airborne-particle abrasion을 시행하고 대조군으로 사용한 8개 시편에는 귀금속용 프라이머(Metal primer II)를, 나머지 8개 시편에는 Monobond plus를 도포하였다. 비귀금속 시편과 지르코니아 시편은 airborne-particle abrasion 후 각각 두 그룹으로 나누어 대조군 10개 시편에는 비귀금속 및 지르코니아용 프라이머(Alloy primer)를, 나머지 10개에는 Monobond plus를 도포하였다. 글라스 세라믹 시편은 4% 불산으로 부식한 후, 대조군 10개 시편에는 실란(Monobond-S)을, 나머지 10개에는 Monobond plus를 적용했다. 표면 처리된 시편 위에 디스크 형태(${\phi}\;5mm{\times}2mm$)로 레진 시멘트(Multilink N)를 위치시키고 중합하였다. 제작된 모든 시편을 열순환($5^{\circ}C$$55^{\circ}C$, 1분씩 2060회)시킨 후 전단 결합 강도를 측정하였다. 전단 결합 강도의 유의차를 살펴보기 위해 Shapiro-Wilk test를 이용하여 모집단의 분포에 대한 검정을 하고 그 결과에 따라 Two sample $t$-test 또는 Mann-Whitney U test를 실시하였다(${\alpha}$=.05). 파절된 시편을 확대경으로 관찰하여 그 양상을 분류하였다. 결과: 귀금속과 글라스 세라믹 군에서는 두 프라이머간의 전단 결합 강도에 유의한 차이가 존재하지 않았으나($P$>.05) 비귀금속 군과 지르코니아 군에서는 기존 프라이머(Alloy primer)를 사용했을 때 레진 시멘트와 수복물간의 전단 결합 강도가 Monobond plus를 사용한 군보다 통계적으로 유의하게 높았다(비귀금속 군$P$=.004, 지르코니아 군$P$=.001). 결론: 실란과 인산 모노머를 혼합한 다용도 프라이머는 귀금속과 글라스 세라믹 군에서는 기존의 프라이머를 대신하여 사용할 수 있을 것이다. 그러나 비귀금속과 지르코니아 세라믹에서는 10-MDP 프라이머에 비해 접착 강도가 낮아 기존 프라이머를 대신하여 적용하기 위해서는 좀 더 연구가 필요할 것이다.

Influence of porosity and axial preload on vibration behavior of rotating FG nanobeam

  • Ehyaei, Javad;Akbarshahi, Amir;Shafiei, Navvab
    • Advances in nano research
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    • 제5권2호
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    • pp.141-169
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    • 2017
  • In this paper, a nanobeam connected to a rotating molecular hub is considered. The vibration behavior of rotating functionally graded nanobeam based on Eringen's nonlocal theory and Euler-Bernoulli beam model is investigated. Furthermore, axial preload and porosity effect is studied. It is supposed that the material attributes of the functionally graded porous nanobeam, varies continuously in the thickness direction according to the power law model considering the even distribution of porosities. Porosity at the nanoscopic length scale can affect on the rotating functionally graded nanobeams dynamics. The equations of motion and the associated boundary conditions are derived through the Hamilton's principle and generalized differential quadrature method (GDQM) is utilized to solve the equations. In this paper, the influences of some parameters such as functionally graded power (FG-index), porosity parameter, axial preload, nonlocal parameter and angular velocity on natural frequencies of rotating nanobeams with pure ceramic, pure metal and functionally graded materials are examined and some comparisons about the influence of various parameters on the natural frequencies corresponding to the simply-simply, simplyclamped, clamped-clamped boundary conditions are carried out.

Dynamic analysis of a functionally graded tapered rotating shaft under thermal load via differential quadrature finite elements method

  • Fethi, Hadjoui;Ahmed, Saimi;Ismail, Bensaid;Abdelhamid, Hadjoui
    • Advances in aircraft and spacecraft science
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    • 제10권1호
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    • pp.19-49
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    • 2023
  • The present study proposes a theoretical and numerical investigation on the dynamic response behaviour of a functional graded (FG) ceramic-metal tapered rotor shaft system, by the differential quadrature finite elements method (DQFEM) to identify the natural frequencies for modelling and analysis of the structure with suitable validations. The purpose of this paper is to explore the influence of heat gradients on the natural frequency of rotation of FG shafts via three-dimensional solid elements, as well as a theoretical examination using the Timoshenko beam mode, which took into account the gyroscopic effect and rotational inertia. The functionally graded material's distribution is described by two distribution laws: the power law and the exponential law. To simulate varied thermal conditions, radial temperature distributions are obtained using the nonlinear temperature distribution (NLTD) and exponential temperature distribution (ETD) approaches. This work deals with the results of the effect on the fundamental frequencies of different material's laws gradation and temperature gradients distributions. Attempts are conducted to identify adequate explanations for the behaviours based on material characteristics. The effect of taper angle and material distribution on the dynamic behaviour of the FG conical rotor system is discussed.

Waves dispersion in an imperfect functionally graded beam resting on visco-Pasternak foundation

  • Saeed I. Tahir;Abdelbaki Chikh;Ismail M. Mudhaffar;Abdelouahed Tounsi;Mohammed A. Al-Osta
    • Geomechanics and Engineering
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    • 제33권3호
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    • pp.271-277
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    • 2023
  • This article investigates the effect of viscoelastic foundations on the waves' dispersion in a beam made of ceramic-metal functionally graded material (FGM) with microstructural defects. The beam is considered to be shear deformable, and a simple three-unknown sinusoidal integral higher-order shear deformation beam theory is applied to represent the beam's displacement field. Novel to this study is the investigation of the impact of viscosity damping on imperfect FG beams, utilizing a few-unknowns theory. The stresses and strains are obtained using the two-dimensional elasticity relations of FGM, neglecting the normal strain in the beam's depth direction. The variational operation is employed to define the dispersion relations of the FGM beam. The influences of the material gradation exponent, the beam's thickness, the porosity, and visco-Pasternak foundation parameters are represented. Results showed that phase velocity was inversely proportional to the damping and porosity of the beams. Additionally, the foundation viscous damping had a stronger influence on wave velocity when porosity volume fractions were low.

Effects of changing materials properties for vibration of FGM beam using integral shear deformation model

  • Mokhtar Ellali;Mashhour A. Alazwari;Mokhtar Bouazza;Mohamed A. Eltaher;Noureddine Benseddiq
    • Coupled systems mechanics
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    • 제13권4호
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    • pp.277-291
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    • 2024
  • The objective of this work is to study the effects of the modification of material properties on the vibration of the FGM beam using an integral shear strain model. In the present theory, the rotational displacement is replaced by an integral term in the displacement fields. The use of a shear correction factor is not necessary because our model gives a parabolic description of shear stress through the thickness while satisfying the conditions of zero shear stresses on the bottom and top surfaces of the beam. The FGM beam is assumed that the beam is a mixture of metal and ceramic, and that its properties change depending on the power functions of the thickness of the beam such as: linear, quadratic, cubic and inverse quadratic. By applying Hamilton's principle, general formulas were obtained to obtain the frequencies of the FGM beam. The effects of changing compositional characteristics of materials presented by volume fraction of FGM beams with simply supported edges on free vibration and some mode shapes are investigated.

Bending and buckling of porous multidirectional functionality graded sandwich plate

  • Lazreg, Hadji;Fabrice, Bernard;Royal, Madan;Ali, Alnujaie;Mofareh Hassan, Ghazwani
    • Structural Engineering and Mechanics
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    • 제85권2호
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    • pp.233-246
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    • 2023
  • Bending and buckling analysis of multi-directional porous functionally graded sandwich plate has been performed for two cases namely: FG skin with homogeneous core and FG core with homogeneous skin. The principle of virtual displacements was employed and the solution was obtained using Navier's technique. This theory imposes traction-free boundary conditions on the surfaces and does not require shear correction factors. The validation of the present study has been performed with those available in the literature. The composition of metal-ceramic-based FGM changes in longitudinal and transverse directions according to the power law. Different porosity laws, such as uniform distribution, unevenly and logarithmically uneven distributions were used to mimic the imperfections in the functionally graded material that were introduced during the fabrication process. Several sandwich plates schemes were studied based on the plate's symmetry and the thickness of each layer. The effects of grading parameters and porosity laws on the bending and buckling of sandwich plates were examined.

Thermoelastic deformation behavior of functionally graded cylindrical panels with multiple perforations

  • Shyam K. Chaudhary;Vishesh R. Kar;Karunesh K. Shukla
    • Advances in aircraft and spacecraft science
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    • 제10권2호
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    • pp.127-140
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    • 2023
  • The present article focuses on the thermoelastic deformation behavior of inhomogeneous functionally graded metal/ceramic cylindrical shell structure with multiple perforations using 2D finite element approximation. Here, cylindrical shell structure is considered with single (1×1) and multiple (2×2, 3×3 and 4×4) perforations. The temperature-dependent elastic and thermal properties of functionally graded material are evaluated using Voigt's micromechanical material scheme via power-law function. The kinematics of the proposed model is based on the equivalent single-layer first-order shear deformation mid-plane theory with five degrees-of-freedom. Here, 2D isoparametric finite element solutions are obtained using eight-node quadrilateral elements. The mesh refinement of present finite element model is performed to confirm the appropriate number of elements and nodes for the analysis purpose. Subsequently, a comparison test is conducted to demonstrate the accuracy of present results. In later section, numerous numerical illustrations are demonstrated at different set of conditions by varying structural, material and loading parameters and that confirms the significance of various parameters such as power-law index, aspect ratio, thickness ratio, curvature ratio, number of perforations and temperature on the deformation characteristics of functionally graded cylindrical shell structure.

Free vibration analysis of multi-directional porous functionally graded sandwich plates

  • Guermit Mohamed Bilal Chami;Amar Kahil;Lazreg Hadji;Royal Madan;Abdelouahed Tounsi
    • Steel and Composite Structures
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    • 제46권2호
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    • pp.263-277
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    • 2023
  • Free vibration analysis of multi-directional porous functionally graded (FG) sandwich plate has been performed for two cases namely: FG skin with homogeneous core and FG core with homogeneous skin. Hamilton's principle was employed and the solution was obtained using Navier's technique. This theory imposes traction-free boundary conditions on the surfaces and does not require shear correction factors. The results obtained are validated with those available in the literature. The composition of metal-ceramic-based functionally graded material (FGM) changes in longitudinal and transverse directions according to the power law. Imperfections in the functionally graded material introduced during the fabrication process were modeled with different porosity laws such as evenly, unevenly distributed, and logarithmic uneven distributions. The effect of porosity laws and geometry parameters on the natural frequency was investigated. On comparing the natural frequency of two cases for perfect and imperfect sandwich plates a reverse trend in natural frequency result was seen. The finding shows a multidirectional functionally graded structures perform better compared to uni-directional gradation. Hence, critical grading parameters and imperfection types have been identified which will guide experimentalists and researchers in selecting fabrication routes for improving the performance of such structures.

Mechanical and hygrothermal behaviour of functionally graded plates using a hyperbolic shear deformation theory

  • Laoufi, Imene;Ameur, Mohammed;Zidi, Mohamed;Bedia, El Abbes Adda;Bousahla, Abdelmoumen Anis
    • Steel and Composite Structures
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    • 제20권4호
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    • pp.889-911
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    • 2016
  • Using the hyperbolic shear deformation plate model and including plate-foundation interaction (Winkler and Pasternak model), an analytical method in order to determine the deflection and stress distributions in simply supported rectangular functionally graded plates (FGP) subjected to a sinusoidal load, a temperature and moisture fields. The present theory exactly satisfies stress boundary conditions on the top and the bottom of the plate. No transversal shear correction factors are needed because a correct representation of the transversal shearing strain is given. Materials properties of the plate (elastic, thermal and moisture expansion coefficients) are assumed to be graded in the thickness direction according to a simple power-law distribution in terms of the volume fractions of the constituents. Numerical examples are presented and discussed for verifying the accuracy of the present theory in predicting the bending response of FGM plates under sinusoidal load and a temperature field as well as moisture concentration. The effects of material properties, temperature, moisture, plate aspect ratio, side-to-thickness ratio, ratio of elastic coefficients (ceramic-metal) and three distributions for both temperature and moisture on deflections and stresses are investigated.