The characterization of cable stiffness has gained importance due to the increasing demand for longer cable life cycles. This has spurred research interest in studying the contact mechanics of cable-sheave assemblies to enhance stiffness performance. In this context, the current work to tests one-layered stiffness of helical strand composed of a stretched central core surrounded by six helical wires in core-wire contact. The stranded cable bends uniformly as it passes on a sheave. For static loading conditions, considered for various combined loadings like tension, torsion, and bending. This study employs thin rod theory and linear elasticity to develop a novel mathematical model describing the cable's behavior when in contact with the pulley or sheave. The stiffness values, including axial, torsional, and flexural rigidities, along with coupling parameters, are determined and estimated. Based on these estimations and computational analyses, the effect of the sheave or pulley's deformation on cable stiffness is examined, considering the interplay of tension, torsion, bending, and the contact state with the sheave.
P et al. (Fri,) studied this question.