Related Experiment Video
Updated: Aug 28, 2026

Application of Design Aspects in Uniaxial Loading Machine Development
Published on: September 19, 2018
Sequential Topology Optimization and Generative Design with Finite Element Validation for Lightweight PA6 Roller
Ziad Alamin Emhmed Alhashmi1, Aleksandra Mitrovic2, Marko Tasic3
1Faculty for Information technologies and Engineering, University Union-Nikola Tesla, 11000 Belgrade, Serbia.
Abstract:
Conveyor idler rollers are conventionally manufactured from steel, contributing substantially to the overall mass, energy consumption, and operating cost of belt conveyor systems. A sequential optimization methodology combining topology optimization and generative design is presented to reduce the mass of a polyamide-6 (PA6) idler roller while preserving its structural performance under representative service loading. Starting from a conventional baseline model (1345 g), topology optimization identified low-utilization regions for material removal but introduced an intermediate stiffness penalty, increasing maximum displacement from 3.4 mm to 4.4 mm. Generative design subsequently reorganized the remaining material along the principal load paths, yielding a final component mass of 848 g, a 37% reduction relative to the baseline, while simultaneously reducing maximum displacement to 2.2 mm, a 35% improvement over the original design. The optimized component sustained a maximum von Mises stress of 16.3 MPa under the applied load, corresponding to a safety factor of approximately 3.7 relative to the material's yield strength. These results, consistent with mass and stiffness improvements reported for generative design applied to comparable load-bearing components, demonstrate that sequential topology optimization and generative design can recover and exceed the stiffness of a conventional design while substantially reducing mass, offering a reproducible pathway toward lighter, more energy-efficient polymer-based conveyor components.
Related Concept Videos
Design of Transmission Shafts
Design of Transmission Shafts - Stress Analysis
Design of Prismatic Beams for Bending
Unsymmetric Loading of Thin-Walled Members: Problem Solving
To compute the shear forces, find the shear flow at a specific distance from the endpoint using the vertical shear and the moment of inertia values. The total shear force on the flange is calculated by integrating the shear flow from one end of the flange to the other.
Next, calculate the moments of...
Plastic Deformation in Circular Shafts
Thin-Walled Hollow Shafts

