Search engine for discovering works of Art, research articles, and books related to Art and Culture
ShareThis
Javascript must be enabled to continue!

Damping Performance of Glass Fiber Reinforced Polymers With Embedded Shape Memory Alloy Wires

View through CrossRef
Abstract This paper explores the integration of shape memory alloy (SMA) wires within fiber reinforced polymer (FRP) composites to enhance their dynamic properties. The strategic embedding of these wires is essential for achieving optimized performance characteristics, allowing the SMA wires to effectively respond to external effects such as mechanical loads, vibrations, and environmental changes. Towards this goal, the SMA/glass/epoxy composite laminates were manufactured using a wet lay-up vacuum bagging process, with SMA wires embedded between fabric layers at specified positions through the laminate thickness, ensuring symmetry around the neutral plane. The hybrid SMA-FRP laminates were tested in a cantilever beam configuration to assess their dynamic response. A Scanning Laser Doppler Vibrometer (SLDV) was employed, along with an impact hammer for excitation, to measure the natural frequencies, as well as the vibrational velocity over force of the samples. The dynamic behavior of laminates with different through-thickness placements of SMA wires was compared between their active and inactive cases for each sample. Three mode shapes were observed for all samples, and the mode shapes remained unchanged with SMA wire activation. Activation of the SMA wires resulted in a reduction of the quality factor by up to 50% and a decrease in natural frequencies by 16–21%, demonstrating the significant effect of the embedded wires on enhancing the damping behavior of the laminates. Moreover, laminates with SMA wires embedded between each fabric layer (fabric/wires/fabric/wires/fabric/wires/fabric) demonstrated a stronger damping effect, with mode shapes occurring at lower frequencies compared to laminates with SMA wires embedded in an alternating pattern, with two consecutive fabric layers in the middle (fabric/wires/fabric/fabric/wires/fabric). These advancements hold promise for aerospace structures, where enhanced tunable vibration control and energy absorption are desirable for safety and performance.
Title: Damping Performance of Glass Fiber Reinforced Polymers With Embedded Shape Memory Alloy Wires
Description:
Abstract This paper explores the integration of shape memory alloy (SMA) wires within fiber reinforced polymer (FRP) composites to enhance their dynamic properties.
The strategic embedding of these wires is essential for achieving optimized performance characteristics, allowing the SMA wires to effectively respond to external effects such as mechanical loads, vibrations, and environmental changes.
Towards this goal, the SMA/glass/epoxy composite laminates were manufactured using a wet lay-up vacuum bagging process, with SMA wires embedded between fabric layers at specified positions through the laminate thickness, ensuring symmetry around the neutral plane.
The hybrid SMA-FRP laminates were tested in a cantilever beam configuration to assess their dynamic response.
A Scanning Laser Doppler Vibrometer (SLDV) was employed, along with an impact hammer for excitation, to measure the natural frequencies, as well as the vibrational velocity over force of the samples.
The dynamic behavior of laminates with different through-thickness placements of SMA wires was compared between their active and inactive cases for each sample.
Three mode shapes were observed for all samples, and the mode shapes remained unchanged with SMA wire activation.
Activation of the SMA wires resulted in a reduction of the quality factor by up to 50% and a decrease in natural frequencies by 16–21%, demonstrating the significant effect of the embedded wires on enhancing the damping behavior of the laminates.
Moreover, laminates with SMA wires embedded between each fabric layer (fabric/wires/fabric/wires/fabric/wires/fabric) demonstrated a stronger damping effect, with mode shapes occurring at lower frequencies compared to laminates with SMA wires embedded in an alternating pattern, with two consecutive fabric layers in the middle (fabric/wires/fabric/fabric/wires/fabric).
These advancements hold promise for aerospace structures, where enhanced tunable vibration control and energy absorption are desirable for safety and performance.

Related Results

Damping Of Moored Floating Structures
Damping Of Moored Floating Structures
1.ABSTRACT The resonant response of moored floating structures due to low-frequency excitation is controlled primarily by the effective damping coefficient of the...
Unveiling the third dimension of glass
Unveiling the third dimension of glass
Glass as a material has always fascinated architects. Its inherent transparency has given us the ability to create diaphanous barriers between the interior and the exterior that al...
Barrier Polymers
Barrier Polymers
AbstractBarrier polymers are used for many packaging and protective applications. As barriers they separate a system, such as an article of food or an electronic component, from an...
Barrier Polymers
Barrier Polymers
AbstractBarrier polymers are used for many packaging and protective applications. As barriers they separate a system, such as an article of food or an electronic component, from an...
Development of light weight ballistic armor from fibers-reinforced with benzoxazine alloys
Development of light weight ballistic armor from fibers-reinforced with benzoxazine alloys
Ballistic impact performance of glass fiber and Kevlar TM fiber reinforced benzoxazine resin and benzoxazine-urethane alloy has been studied against 7.62 mm armor piercing projecti...
High-temperature damping capacity of fly ash cenosphere/AZ91D Mg alloy composites
High-temperature damping capacity of fly ash cenosphere/AZ91D Mg alloy composites
Abstract In this study, fly ash cenospheres were added to semisolid AZ91D Mg alloy to prepare fly ash cenosphere/AZ91D (FAC/AZ91D) composites by means of compo-ca...
A review on shape memory alloy reinforced polymer composite materials and structures
A review on shape memory alloy reinforced polymer composite materials and structures
Abstract Imparting controllable flexural rigidity into a material system is one of the key motivations for the design of intelligent materials for structural appl...
Reversible Actuation of Fiber-Reinforced Composites Through Embedded Shape Memory Alloys
Reversible Actuation of Fiber-Reinforced Composites Through Embedded Shape Memory Alloys
Abstract Achieving controlled shape change in fiber reinforced polymer (FRP) composites while maintaining their high strength-to-weight ratios is highly desirable fo...

Back to Top