A review on enhancement of mechanical properties of fiber reinforcement polymer composite under different loading rates

Author(s):  
Amir Khan ◽  
Kuldeep Kumar Saxena
Fibers ◽  
2019 ◽  
Vol 7 (2) ◽  
pp. 14 ◽  
Author(s):  
Delin Jiang ◽  
Robert Hoglund ◽  
Douglas Smith

Mechanical properties of parts produced with polymer deposition additive manufacturing (AM) depend on the print bead direction, particularly when short carbon-fiber reinforcement is added to the polymer feedstock. This offers a unique opportunity in the design of these structures since the AM print path can potentially be defined in a direction that takes advantage of the enhanced stiffness gained in the bead and, therefore, fiber direction. This paper presents a topology optimization approach for continuous fiber angle optimization (CFAO), which computes the best layout and orientation of fiber reinforcement for AM structures. Statically loaded structures are designed for minimum compliance where the adjoint variable method is used to compute design derivatives, and a sensitivity filter is employed to reduce the checkerboard effect. The nature of the layer-by-layer approach in AM is given special consideration in the algorithm presented. Examples are provided to demonstrate the applicability of the method in both two and three dimensions. The solution to our two dimensional problem is then printed with a fused filament fabrication (FFF) desktop printer using the material distribution results and a simple infill method which approximates the optimal fiber angle results using a contour-parallel deposition strategy. Mechanical stiffness testing of the printed parts shows improved results as compared to structures designed without accounting for the direction of the composite structure. Results show that the mechanical properties of the final FFF carbon fiber/polymer composite printed parts are greatly influenced by the print direction, and optimized material orientation tends to align with the imposed force direction to minimize the compliance.


2021 ◽  
pp. 85-96
Author(s):  
V.A. Goncharov ◽  
◽  
M.N. Usacheva ◽  
A.V. Khrulkov ◽  
◽  
...  

A transmission shaft is required to transfer power from the engine to the axle and drive wheel in a rear wheel drive vehicle. A composite shaft has many advantages: greater length compared to a metal shaft, improved mechanical properties, less noise, vibration and weight. By adjusting the resin composition and the fiber reinforcement pattern, the mechanical properties of the transmission shaft can be improved. Various options for modifying carbon and fiberglass plastics to improve the characteristics of the shaft are considered.


A study review of aging polymer composite materials (PCM) under different heat-moisture conditions or water exposure with the sequential or parallel influence of static or cyclic loads in laboratory conditions is presented. The influence of tension and bending loads is compared. Conditions of the different load influence on parameters of carbon-reinforced plastics and glass-reinforced plastics are discussed. Equipment and units for climatic tests of PCM under loading are described. Simulation examples of indices of mechanical properties of PCM under the influence of environment and loads are shown.


A study review of aging polymer composite materials (PCM) under different heat-moisture conditions or water exposure with the sequential or parallel influence of static or cyclic loads in laboratory conditions is presented. The influence of tension and bending loads is compared. Conditions of the different load influence on parameters of carbon-reinforced plastics and glass-reinforced plastics are discussed. Equipment and units for climatic tests of PCM under loading are described. Simulation examples of indices of mechanical properties of PCM under the influence of environment and loads are shown.


Author(s):  
K. Kushwanth Theja ◽  
G. Bharathiraja ◽  
V. Sakthi Murugan ◽  
A. Muniappan

2020 ◽  
Vol 27 ◽  
pp. 1749-1755
Author(s):  
Mawarnie Ismail ◽  
M.R.M. Rejab ◽  
J.P. Siregar ◽  
Zalinawati Mohamad ◽  
M. Quanjin ◽  
...  

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