1,251 research outputs found
Delamination growth analysis in quasi-isotropic laminates under loads simulating low-velocity impact
A geometrically nonlinear finite-element analysis was developed to calculate the strain energy released by delamination plates during impact loading. Only the first mode of deformation, which is equivalent to static deflection, was treated. Both the impact loading and delamination in the plate were assumed to be axisymmetric. The strain energy release rate in peeling, G sub I, and shear sliding, G sub II, modes were calculated using the fracture mechanics crack closure technique. Energy release rates for various delamination sizes and locations and for various plate configurations and materials were compared. The analysis indicated that shear sliding (G sub II) was the primary mode of delamination growth. The analysis also indicated that the midplane (maximum transverse shear stress plane) delamination was more critical and would grow before any other delamination of the same size near the midplane region. The delamination growth rate was higher (neutrally stable) for a low toughness (brittle) matrix and slower (stable) for high toughness matrix. The energy release rate in the peeling mode, G sub I, for a near-surface delamination can be as high as 0.5G sub II and can contribute significantly to the delamination growth
Healthcare and Productivity in East Central Mississippi
Worksite wellness programs improve the health and quality of life of workers, and result in higher productivity. Data from a regional health survey suggests that more than $32 million of labor income is lost annually because of poor health, effectively increasing unemployment by more than 40% in east central Mississippi.Health Economics and Policy,
Fractional quantum Hall edge: Effect of nonlinear dispersion and edge roton
According to Wen's theory, a universal behavior of the fractional quantum
Hall edge is expected at sufficiently low energies, where the dispersion of the
elementary edge excitation is linear. A microscopic calculation shows that the
actual dispersion is indeed linear at low energies, but deviates from linearity
beyond certain energy, and also exhibits an "edge roton minimum." We determine
the edge exponent from a microscopic approach, and find that the nonlinearity
of the dispersion makes a surprisingly small correction to the edge exponent
even at energies higher than the roton energy. We explain this insensitivity as
arising from the fact that the energy at maximum spectral weight continues to
show an almost linear behavior up to fairly high energies. We also formulate an
effective field theory to describe the behavior of a reconstructed edge, taking
into account multiple edge modes. Experimental consequences are discussed.Comment: 15 pages with 10 figures. Submitted to Physical Review
Treatment of singularities in cracked bodies
Three-dimensional finite-element analyses of middle-crack tension (M-T) and bend specimens subjected to mode I loadings were performed to study the stress singularity along the crack front. The specimen was modeled using 20-node isoparametric elements. The displacements and stresses from the analysis were used to estimate the power of singularities using a log-log regression analysis along the crack front. The analyses showed that finite-sized cracked bodies have two singular stress fields of the form rho = C sub o (theta, z) r to the -1/2 power + D sub o (theta, phi) R to the lambda rho power. The first term is the cylindrical singularity with the power -1/2 and is dominant over the middle 96 pct (for Poisson's ratio = 0.3) of the crack front and becomes nearly zero at the free surface. The second singularity is a vertex singularity with the vertex point located at the intersection of the crack front and the free surface. The second term is dominant at the free surface and becomes nearly zero away from the the boundary layer. The thickness of the boundary layer depends on Poisson's ratio of the material and is independent of the specimen type. The thickness of the boundary layer varied from 0 pct to about 5 pct of the total specimen thickness as Poisson's ratio varied from 0.0 to 0.45. Because there are two singular stress fields near the free surface, the strain energy release rate (G) is an appropriate parameter to measure the severity of the crack
An equivalent domain integral method for three-dimensional mixed-mode fracture problems
A general formulation of the equivalent domain integral (EDI) method for mixed mode fracture problems in cracked solids is presented. The method is discussed in the context of a 3-D finite element analysis. The J integral consists of two parts: the volume integral of the crack front potential over a torus enclosing the crack front and the crack surface integral due to the crack front potential plus the crack face loading. In mixed mode crack problems the total J integral is split into J sub I, J sub II, and J sub III representing the severity of the crack front in three modes of deformations. The direct and decomposition methods are used to separate the modes. These two methods were applied to several mixed mode fracture problems, were analyzed, and results were found to agree well with those available in the literature. The method lends itself to be used as a post-processing subroutine in a general purpose finite element program
Implementation of equivalent domain integral method in the two-dimensional analysis of mixed mode problems
An equivalent domain integral (EDI) method for calculating J-intergrals for two-dimensional cracked elastic bodies is presented. The details of the method and its implementation are presented for isoparametric elements. The total and product integrals consist of the sum of an area of domain integral and line integrals on the crack faces. The line integrals vanish only when the crack faces are traction free and the loading is either pure mode 1 or pure mode 2 or a combination of both with only the square-root singular term in the stress field. The EDI method gave accurate values of the J-integrals for two mode I and two mixed mode problems. Numerical studies showed that domains consisting of one layer of elements are sufficient to obtain accurate J-integral values. Two procedures for separating the individual modes from the domain integrals are presented. The procedure that uses the symmetric and antisymmetric components of the stress and displacement fields to calculate the individual modes gave accurate values of the integrals for all problems analyzed. The EDI method when applied to a problem of an interface crack in two different materials showed that the mode 1 and mode 2 components are domain dependent while the total integral is not. This behavior is caused by the presence of the oscillatory part of the singularity in bimaterial crack problems. The EDI method, thus, shows behavior similar to the virtual crack closure method for bimaterial problems
Buckling of a sublaminate in a quasi-isotropic composite laminate
The buckling of an elliptic delamination embedded near the surface of a thick quasi-isotropic laminate was predicted. The thickness of the delaminated ply group (the sublaminate) was assumed to be small compared to the total laminate thickness. Finite-element and Rayleigh-Ritz methods were used for the analyses. The Rayleigh-Ritz method was found to be simple, inexpensive, and accurate, except for highly anisotropic delaminated regions. Effects of delamination shape and orientation, material anisotropy, and layup on buckling strains were examined. Results show that: (1) the stress state around the delaminated region is biaxial, which may lead to buckling when the laminate is loaded in tension; (2) buckling strains for multi-directional fiber sublaminates generally are bounded by those for the 0 deg and 90 deg unidirectional sublaminates; and (3) the direction of elongation of the sublaminate that has the lowest buckling strain correlates with the delamination growth direction
Changes in Malaria Prevention and Incidence Due to Political Restructuring of Mozambique and South Africa
The UN’s current Millennium Development Goal puts pressure on many countries to decrease malaria incidence by 2015, including Mozambique and South Africa. While Mozambique and South Africa have continually worked to decrease malaria incidence for the last five decades, neither country can claim elimination of disease by UN standards. This study analyzes the changes in political structure and the simultaneous changes in the malaria prevention programs of Mozambique and South Africa after the end of their respective civil wars in 1992 and 1994. This study analyzed public health, historical, and social science journal articles. This study examined political power distribution, primary healthcare, and malaria prevention strategies, and community perception of healthcare to identify the different political dynamics affecting malaria incidence control in Mozambique and South Africa. This study identified that while Mozambique heavily financially dependent, strong community structure, and general malaria outbreaks compared to South Africa’s economic independence, phasing out of private health care, and localized strong malaria epidemics, showcase the difference between the status of the two countries in malaria elimination. As bordering countries, the elimination of malaria in the two countries is tied together. The migration of people in between and the pre-existing organizations working in between the two countries showcase that South Africa and Mozambique must work together to eliminate malaria. A potential international cooperation agreement between South Africa and Mozambique that allows the two countries to help each other financially, through research, and management of malaria prevention resources would help eliminate malaria, while keeping the countries moderately independent of external aid.https://scholarscompass.vcu.edu/uresposters/1126/thumbnail.jp
Strain-energy release rate analysis of a laminate with a postbuckled delamination
The objectives are to present the derivation of the new virtual crack closure technique, evaluate the accuracy of the technique, and finally to present the results of a limited parametric study of laminates with a postbuckled delamination. Although the new virtual crack closure technique is general, only homogeneous, isotropic laminates were analyzed. This was to eliminate the variation of flexural stiffness with orientation, which occurs even for quasi-isotropic laminates. This made it easier to identify the effect of geometrical parameters on G. The new virtual crack closure technique is derived. Then the specimen configurations are described. Next, the stress analyses is discussed. Finally, the virtual crack closure technique is evaluated and then used to calculate the distribution of G along the delamination front of several laminates with a postbuckled delamination
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