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

Innovations in prosthetic foot design enhancing durability, functionality and comfort through PLA composite filament 3D printing

View through CrossRef
Purpose The number of people with special needs, including citizens and military personnel, has increased as a result of terrorist attacks and challenging conditions in Iraq and other countries. With almost 80% of the world’s amputees having below-the-knee amputations, Iraq has become a global leader in the population of amputees. Important components found in lower limb prostheses include the socket, pylon (shank), prosthetic foot and connections. Design/methodology/approach There are two types of prosthetic feet: articulated and nonarticulated. The solid ankle cushion heel foot is the nonarticulated foot that is most frequently used. The goal of this study is to use a composite filament to create a revolutionary prosthetic foot that will last longer, have better dorsiflexion and be more stable and comfortable for the user. The current study, in addition to pure polylactic acid (PLA) filament, 3D prints test items using a variety of composite filaments, such as PLA/wood, PLA/carbon fiber and PLA/marble, to accomplish this goal. The experimental step entails mechanical testing of the samples, which includes tensile testing and hardness evaluation, and material characterization by scanning electron microscopy-energy dispersive spectrometer analysis. The study also presents a novel design for the nonarticulated foot that was produced with SOLIDWORKS and put through ANSYS analysis. Three types of feet are produced using PLA, PLA/marble and carbon-covered PLA/marble materials. Furthermore, the manufactured prosthetic foot undergoes testing for dorsiflexion and fatigue. Findings The findings reveal that the newly designed prosthetic foot using carbon fiber-covered PLA/marble material surpasses the PLA and PLA/marble foot in terms of performance, cost-effectiveness and weight. Originality/value To the best of the author’s knowledge, this is the first study to use composite filaments not previously used, such as PLA/wood, PLA/carbon fiber and PLA/marble, to design and produce a new prosthetic foot with a longer lifespan, improved dorsiflexion, greater stability and enhanced comfort for the patient. Beside the experimental work, a numerical technique specifically the finite element method, is used to assess the mechanical behavior of the newly designed foot structure.
Title: Innovations in prosthetic foot design enhancing durability, functionality and comfort through PLA composite filament 3D printing
Description:
Purpose The number of people with special needs, including citizens and military personnel, has increased as a result of terrorist attacks and challenging conditions in Iraq and other countries.
With almost 80% of the world’s amputees having below-the-knee amputations, Iraq has become a global leader in the population of amputees.
Important components found in lower limb prostheses include the socket, pylon (shank), prosthetic foot and connections.
Design/methodology/approach There are two types of prosthetic feet: articulated and nonarticulated.
The solid ankle cushion heel foot is the nonarticulated foot that is most frequently used.
The goal of this study is to use a composite filament to create a revolutionary prosthetic foot that will last longer, have better dorsiflexion and be more stable and comfortable for the user.
The current study, in addition to pure polylactic acid (PLA) filament, 3D prints test items using a variety of composite filaments, such as PLA/wood, PLA/carbon fiber and PLA/marble, to accomplish this goal.
The experimental step entails mechanical testing of the samples, which includes tensile testing and hardness evaluation, and material characterization by scanning electron microscopy-energy dispersive spectrometer analysis.
The study also presents a novel design for the nonarticulated foot that was produced with SOLIDWORKS and put through ANSYS analysis.
Three types of feet are produced using PLA, PLA/marble and carbon-covered PLA/marble materials.
Furthermore, the manufactured prosthetic foot undergoes testing for dorsiflexion and fatigue.
Findings The findings reveal that the newly designed prosthetic foot using carbon fiber-covered PLA/marble material surpasses the PLA and PLA/marble foot in terms of performance, cost-effectiveness and weight.
Originality/value To the best of the author’s knowledge, this is the first study to use composite filaments not previously used, such as PLA/wood, PLA/carbon fiber and PLA/marble, to design and produce a new prosthetic foot with a longer lifespan, improved dorsiflexion, greater stability and enhanced comfort for the patient.
Beside the experimental work, a numerical technique specifically the finite element method, is used to assess the mechanical behavior of the newly designed foot structure.

Related Results

Procesamiento mediante extrusión de material del termoplástico híbrido PLA/PHB: caracterización mecánica
Procesamiento mediante extrusión de material del termoplástico híbrido PLA/PHB: caracterización mecánica
(English) In this thesis, the mechanical behavior of parts manufactured by Material Extrusion Modeling (MEX) has been evaluated, using a copolimer of polylactic acid (PLA) and poly...
The effects of cellulose nanocrystal and dicumyl peroxide on the crystallization kinetics of polylactic acid
The effects of cellulose nanocrystal and dicumyl peroxide on the crystallization kinetics of polylactic acid
AbstractCellulose nanocrystals (CNCs) have been blended into polylactic acid (PLA) to improve the polymer's properties. The dispersion of CNC in the matrix has a strong influence o...
Preparation and characterization of reactive extrusion modified PLA/ABS blends and its foams
Preparation and characterization of reactive extrusion modified PLA/ABS blends and its foams
(English) The current thesis takes place within the context of the projects MAT2016-80045-R "Aplicaciones industriales de compuestos y mezclas basados en REX-PLA" and the project "...
Comparison of Foot-Ankle Biomechanics During Treadmill Walking with Commercially Available and Corresponding Emulated Prosthetic Feet
Comparison of Foot-Ankle Biomechanics During Treadmill Walking with Commercially Available and Corresponding Emulated Prosthetic Feet
Background            A robotic prosthetic foot emulator (PFE) programmed to emulate different prosthetic feet could allow individuals with lower limb loss to quickly ‘test-drive’ ...
Crystallization Behavior of Vetiver Grass Fiber-Polylactic Acid Composite
Crystallization Behavior of Vetiver Grass Fiber-Polylactic Acid Composite
this work, vetiver fiber was used as a filler for poly (lactic acid) (PLA). The thermal properties of neat PLA and vetiver fiber-PLA composites were investigated. Talc as a nucleat...
Nghiên cứu chế tạo vật liệu Composite trên cơ sở PLA/Talc định hướng ứng dụng trong công nghệ in 3D
Nghiên cứu chế tạo vật liệu Composite trên cơ sở PLA/Talc định hướng ứng dụng trong công nghệ in 3D
Nghiên cứu này nhằm chế tạo vật liệu composite phân hủy sinh học trên cơ sở Polylactic acid  và bột Talc, tiếp đó đánh giá sự tác động của chất trợ tương hợp PLA-g-MAH (MAH) đến tí...

Back to Top