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Updated: Sep 14, 2026

Quasistatic Mechanical Testing for Computer-Aided Design and Manufacturing Occlusal Veneers Cemented to Milled Dentin Analog Material
Published on: December 20, 2024
Influence of Clinically Relevant Seating Loads on Shear-Thinning Behavior and Film Thickness of Light-Cure Veneer
Randa Sabry Ibrahim1,2,3,4
1Department of Restorative and Prosthetic Dental Sciences, College of Dentistry, King Saud bin Abdulaziz University for Health Sciences, Riyadh, Saudi Arabia.
Objectives:
This article aims to evaluate the shear rate-dependent rheological behavior of light-cure resin cements used for lithium disilicate veneers and assess its relationship with cement film thickness under standardized and clinically relevant seating loads.
Materials And Methods:
Five light-cure resin cements (RXV, CVE, ACV, NXL, and VLE) were tested using rotational rheometry under a standardized baseline gap. Apparent viscosity (η) was determined at 10 s-1 and 100 s-1. Cement film thickness was measured following ISO 4049 under 150 N and under reduced loads of 50 and 30 N. All measurements were performed in triplicate (n = 3 per cement for rheology; n = 3 per cement per seating load for film thickness).
Statistical Analysis:
Data were analyzed using one-way and two-way analysis of variance (ANOVA), followed by Tukey post hoc tests where appropriate. Linear regression and Pearson's correlation analyses were used to examine load-film thickness trends and viscosity-film thickness associations. The significance level was set at α = 0.05.
Results:
Viscosity differed significantly among materials at both shear rates (p < 0.001). At 10 s-1, viscosity ranged from 210 ± 2 Pa·s (VLE) to 1820 ± 20 Pa·s (NXL), while at 100 s-1 it ranged from 164 ± 2 Pa·s (RXV) to 440 ± 2 Pa·s (VLE). Four cements showed pronounced shear-thinning behavior (-82.6% to -86.3%), whereas VLE showed an inverse response (-109.5%). Film thickness differed significantly across all seating loads (150 N: p = 0.004; 50 and 30 N: p < 0.001). At 30 N, values ranged from 48.3 ± 3.5 µm (RXV) to 74.7 ± 2.5 µm (NXL). Weak positive associations were observed between viscosity and film thickness under reduced seating conditions (r = 0.25 at 30 N; r = 0.24 at 50 N).
Conclusion:
Seating load was the main determinant of cement film thickness, while shear rate-dependent viscosity showed a secondary, material-dependent contribution under reduced pressure. Favorable shear-thinning behavior may support improved seating adaptation and more consistent film thickness control during veneer placement.
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