A hypoelastic stress resultant shell approach for simulations of textile composite reinforcement forming
Гипоэластичный метод оболочки с результирующими напряжениями для моделирования формовки текстильных армирующих композитов
2021-07-18
SCID: 54.1/efct9xcj
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ABAQUS implementationhypoelastic stress resultant shellindependent bending and tension stiffnessrate constitutive equationstextile composite reinforcement draping
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Abstract (AI)
A stress resultant shell approach is proposed to simulate the draping of textile composite reinforcements with continuous fibers. This approach naturally makes it possible to take into account the specificity of the deformation of the fibrous reinforcements by considering independent bending and tension stiffness whereas they are linked in standard shell elements. The stress resultants and stress moments are related to membrane strains and curvatures by rate constitutive equations (hypoelastic laws). The experimental tests required to identify the material properties necessary for these constitutive laws in stress resultants are presented. This approach is implemented in the ABAQUS finite element code and can be used by all users of this software. A set of forming tests showed the effectiveness of the approach through comparisons between simulation and experimental results.
Key Findings
1
A stress resultant shell approach is proposed to simulate draping of textile composite reinforcements with continuous fibers.
2
Experimental tests to identify material properties for the stress-resultant constitutive laws are presented.
3
Forming tests comparing simulation and experiments demonstrate the effectiveness of the proposed method.
4
Stress resultants and stress moments are linked to membrane strains and curvatures via rate constitutive equations (hypoelastic laws).
5
The approach is implemented in ABAQUS and made usable by all users of that software.
6
The approach models independent bending and tension stiffness, capturing fibrous reinforcement deformation not represented by standard shell elements.
Research Object
Textile composite reinforcement with continuous fibers undergoing draping (modeled as a stress-resultant shell)
Research Subject
Modeling and simulation of draping deformation accounting for independent bending and tension stiffness via hypoelastic rate constitutive laws for stress resultants and stress moments, and validation against experimental forming tests
Publication Details
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2021-07-18
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