Mechanisms of Origin and Classification of Out-of-Plane Fiber Waviness in Composite Materials—A Review
Abstract
:1. Introduction
2. Definition of Terms
3. Parameters
4. Occurrence of Fiber Waviness
4.1. Mechanical Loading and Behavior of Dry and Impregnated Fiber Reinforcements
4.1.1. Basic Material Behavior
4.1.2. Mechanical Deformation of Layers Due to Manual Handling of Preforms, Moving Sliders, and Closing Tools
4.2. Path Length Differences
4.2.1. Micro/Meso Scale Deformation at the Material Level
4.2.2. Global Deformation on Structural Level at Double Curved and Joggled Geometries
4.2.3. Steering
4.2.4. Consolidation in Corner Areas, External Radii, Stepped, or Tapered Laminates
4.3. Non-Uniform Pressure Distribution
4.3.1. Co-Bonding (or Pre-Cured Parts in LCM Process)
4.3.2. Telegraphing Effect of Face Sheets at Honeycomb Core
4.3.3. Welding Spots
4.3.4. Ply and Vacuum Bag Bridging
4.4. Interaction between Tool–Ply and Ply–Ply
4.4.1. Inter-Ply Slippage
4.4.2. CTE Mismatch
4.5. Lay-Up Sequence
4.5.1. Gaps and Overlaps
4.5.2. Ply Drops in Tapered Laminates
4.6. Textile Architecture
4.6.1. Inherent Undulations in Woven and Braided Fabrics
4.6.2. Shear Locking Angle of Woven Fabrics
4.6.3. Stitches in Non-Crimped Fabrics
4.6.4. Stitches in Dry Fiber Placements
4.7. Foreign Objects
4.7.1. Intended Foreign Objects (e.g., Optical Sensors, Pins, Inserts)
4.7.2. Unintended Foreign Objects (e.g., Foils, Blades, etc.)
4.8. Flow-Induced Waviness
4.8.1. Fiber Wash-Out
4.8.2. Hydraulic Effects (Squeezing, Transverse Flow)
4.9. Cure-Induced Waviness
4.9.1. Volumetric Shrinkage
4.9.2. Large Temperature Gradient in Thick Laminates
4.10. Unique Characteristics of Fabrication Processes
4.10.1. Filament Winding
4.10.2. Pultrusion
5. Classification Scheme
5.1. Number and Distribution of Waves
5.2. Traditional Differentiation of Wave Types—Constant or Changing Wave Amplitude
5.3. Phase Characteristics of the Wave Form
5.4. Visibility
5.5. Dimensional Characteristics
5.6. Continuity of Layers/Laminate
5.7. Portion and Position of the Wavy Region in the Laminate
5.8. Phase Characteristics of the Material
5.9. Influence of t/A Ratio
5.10. Geometric Position of the Wavy Region in the Part
6. Examples for Waviness Classification
7. Conclusions
Author Contributions
Funding
Conflicts of Interest
References
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Slit-Tape Width | Typical Minimum Steering Radius |
---|---|
3.175 mm 1/8″ | 635.0 mm 25″ |
6.350 mm 1/4″ | 1778 mm 70″ |
12.70 mm 1/2″ | 8890 mm 350″ |
Material | Coefficient of Thermal Expansion [10−6/°C] | |
---|---|---|
CFR-Epoxy—UD longitudinal | 0.3 | [92,93] |
CFR-Epoxy—UD transverse | 35 | [92,93] |
CFR-PEEK—UD longitudinal | 0.4 (23–143 °C)—solid state 0 (143–343 °C)—rubbery region | [94] |
CFR-PEEK—UD transverse | 30 (23–143 °C)—solid state 80 (143–343 °C)—rubbery region | [94] |
CFR-PEEK—quasi isotropic | 2.9 (23–143 °C)—solid state 7 (143–343 °C)—rubbery region | [94] |
Neat epoxy resin | 55–76 | [92,95,96] |
Carbon fiber—longitudinal | −0.4–−0.75 (High strength—high modulus fibers) | [80,96] |
Carbon fiber—transverse | 8 | [96] |
Glass fiber | 5 | [80,95] |
Aluminum | 12–25 | [80,97] |
Steel | 7–12 | [80,92] |
Example of Fiber Waviness | Number and Distribution (Single, Stochastic or In-Phase Distributed) | Through-Thickness Wave Form (Uniform vs. Graded) | Phase Characteristics of the Wave Form (Iso-Phase, Random-Phase) | Visibility (Embedded, Hump, Indention, Wave) | Dimensional Characteristics (2D, 3D) | Continuity of Layers/Laminate (Continuous, Non-Continuous) | Position (Centered, Outer Plies, Whole Laminate) | Phase Characteristics (Microscopic, Macroscopic) | Level of Influence (Material, Structure) | Geometric Position (Flat or Slightly Curved Areas, Complex Geometries) |
---|---|---|---|---|---|---|---|---|---|---|
Single | Uniform | Iso-phase | Wave | 2D | Continuous | Whole laminate | Microscopic | Structural | Flat | |
Single | Graded | Iso-phase | Embedded | 2D | Continuous | Whole laminate | Microscopic | Material | Flat | |
[162] | Stochastic distributed | Graded | Random-phase | Embedded | 3D | Non-continuous | Whole laminate | Microscopic | Material | T-joint |
[11] | Single | Graded | Iso-phase | Hump | 2D | Continuous | Whole laminate | Macroscopic | Material | Flat |
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Thor, M.; Sause, M.G.R.; Hinterhölzl, R.M. Mechanisms of Origin and Classification of Out-of-Plane Fiber Waviness in Composite Materials—A Review. J. Compos. Sci. 2020, 4, 130. https://doi.org/10.3390/jcs4030130
Thor M, Sause MGR, Hinterhölzl RM. Mechanisms of Origin and Classification of Out-of-Plane Fiber Waviness in Composite Materials—A Review. Journal of Composites Science. 2020; 4(3):130. https://doi.org/10.3390/jcs4030130
Chicago/Turabian StyleThor, Michael, Markus G. R. Sause, and Roland M. Hinterhölzl. 2020. "Mechanisms of Origin and Classification of Out-of-Plane Fiber Waviness in Composite Materials—A Review" Journal of Composites Science 4, no. 3: 130. https://doi.org/10.3390/jcs4030130
APA StyleThor, M., Sause, M. G. R., & Hinterhölzl, R. M. (2020). Mechanisms of Origin and Classification of Out-of-Plane Fiber Waviness in Composite Materials—A Review. Journal of Composites Science, 4(3), 130. https://doi.org/10.3390/jcs4030130