Understanding Tensile and Compressive Forces in Winding Designs
In the realm of power transformer design, the behavior of conductors under various forces can significantly impact the longevity and reliability of the winding. This article delves into the mechanical stresses that arise in winding conductors, specifically tensile stress and compressive stress, and explores the potential failure modes that can result from these forces.
Tensile stress is observed in the outer windings of a transformer, where conductors experience outward forces. As long as this tensile stress remains below the material's proof stress, the winding retains its circular shape, ensuring structural integrity. However, if the tensile stress exceeds this limit, the conductors may stretch. This stretching can lead to insulation failure and a loss of axial stability, particularly if a local bulge forms beyond the spacer contour, which can compromise the entire winding.
Conversely, the inner windings are subject to compressive stress. When this stress surpasses specific thresholds, buckling can occur, deforming the winding shape. There are two main types of buckling: forced and free. Forced buckling occurs when conductors bend inward between supports due to excessive compressive stress, while free buckling can happen under lower radial forces without the influence of the number of spacers. Several factors, including tightness, initial eccentricity, and conductor geometry, determine the critical stress necessary to prevent free buckling.
Another failure mode associated with compressive forces is spiraling, which often affects helical windings. In configurations where conductors are axially stacked, particularly with a high pitch, the risk of spiraling increases. This deformation pattern is more pronounced when the winding is adjacent to main leakage flux channels, which exert additional radial forces. The design of the winding, especially when utilizing epoxy-bonded conductors, plays a crucial role in resisting spiraling effects.
Axial forces also present challenges, leading to the tilting of conductors. Winding configurations with thin conductors and fewer strands are more susceptible to this phenomenon. The coverage of radial spacers can enhance resistance to tilting, as greater coverage provides additional support. Notably, epoxy-bonded conductors exhibit remarkable stability against tilting, demonstrating the advantages of this bonding technology in modern transformer designs.
Understanding these mechanical stresses and potential failure modes is essential for engineers and designers. By carefully considering the properties of materials and the geometrical configurations of windings, it is possible to create robust transformer designs that effectively mitigate risks associated with tensile and compressive forces.