Archive/Tendon Geometry Effects on Shear Efficiency, Ductility, Stiffness Degradation, and Serviceability of Prestressed Concrete Beams
Tendon Geometry Effects on Shear Efficiency, Ductility, Stiffness Degradation, and Serviceability of Prestressed Concrete Beams
Mohamed A. El Awady, Abdelrahman Elsaid, Ahmed Said et al.
July 20, 2026
en

Abstract

Tendon profile geometry is a structural design variable whose effects on prestressed concrete beams have, until now, been studied separately for shear, ductility, and stiffness response. This paper unifies those threads through a single nonlinear finite element investigation of eight tendon profiles (B0–B7) across two beam depths (300 × 600 mm, L/d = 13.33; and 300 × 900 mm, L/d = 8.48), comprising 16 validation beam models plus an 82-simulation parametric sweep of tendon inclination angle (0–20°). Part A characterizes cracking, yield, and ultimate loads, three-stage stiffness (Ki → Kpc → Ku), ductility index, and deflection serviceability. Ductility is quantified as the peak-displacement-based index μΔ = Δu/Δy; post-peak plateau behavior is additionally quantified through a failure-displacement ductility index (μΔ,f) and an absorbed-energy index (μE), recovered from the full descending load–deflection branch of each model. Key findings: the trapezoidal beveled profile (B6) achieves the highest ductility overall (μΔ = 3.83 in deeper beams, +99.5% over straight); the hybrid parabolic–straight profile (B5) leads ductility in shallow beams (μΔ = 2.16, +14.9%); the five-row distributed trapezoidal profile (B7) achieves the highest post-cracking stiffness in deeper beams (Kpc = 61.93 kN/mm, +7.6%) and highest yield load, but at a ductility cost; and all 16 models satisfy ECP 203-2020 and ACI 318-19 deflection limits at service load. Part B develops and validates a dimensionless shear-inclination efficiency index ηv, calibrated by nonlinear regression on the 82-simulation database: ηv = 1 + 0.14·μps·λps·(d/h)0.6·θ0.9, achieving R2 = 0.93 and RMSE < 5%, with a mean conservative safety margin of 6% across the 16 validation configurations. Sensitivity analysis identifies inclination angle θ as the dominant variable, ahead of depth ratio d/h and distribution index λps. A step-by-step design procedure with a profile-specific compliance table allows ηv to be applied directly to ACI 318-19 or ECP 203-2020 shear predictions: at a sub-minimum stirrup ratio of 0.14%, ηv enables five of eight profiles in shallow beams and three in deeper beams to achieve full code compliance, numerically indicating potential stirrup savings of up to 40%, pending experimental verification and reliability-based calibration before design use. Read together, the two parts show that tendon geometry simultaneously governs shear efficiency, post-cracking stiffness, and ductility—three previously disconnected performance axes—and that the optimal profile choice is depth-dependent and objective-dependent, a distinction current codes do not address. The finite element procedure is validated against six post-tensioned specimens for the global load–deflection response and peak-load agreement (R2 = 0.97 and 0.95, respectively); cracking load, yield point, post-peak plateau behavior, and the shear-governed failure mode of the deeper beams were not independently observed in the same experimental dataset, so the ductility, stiffness-degradation, and shear-governed-failure findings reported here should be read as numerically-derived results requiring further experimental confirmation, distinct from the peak-load response that is directly validated.

IPC Classification

G06H01

Keywords

tendongeometryeffectsshearefficiencyductilitystiffnessdegradationserviceabilityprestressedconcretebeamsbuildingsprofilestructuraldesignvariablewhoseuntilstudiedseparatelyresponsepaperunifies
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