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Marshall-Based Thermal Performance Analysis of Conventional and Polymer-Modified Asphalt Binders

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Date

2025

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Publisher

MDPI

Open Access Color

GOLD

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No

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Abstract

Iraq's extreme summer temperatures pose critical challenges to pavement durability, as conventional asphalt mixtures often fail under prolonged thermal stress. This paper provides a comparative evaluation of the high-temperature performance of unmodified (40/50 penetration grade) and polymer-modified (PG 76-10) asphalt mixtures for the asphalt course layer. Marshall stability, flow, and stiffness were measured at elevated temperatures of 60 degrees C, 65 degrees C, 70 degrees C, and 75 degrees C after short-term (30 min) and extended (24 h) conditioning. Results show that while both mixtures experienced performance degradation as the temperature increased, the polymer-modified mixture consistently exhibited superior thermal resistance, retaining approximately 9% higher stability and 28% higher stiffness, and displaying 18% lower flow deformation at 75 degrees C compared to the unmodified mixture. Stability degradation rate (SDR), stiffness degradation rate (SiDR), and flow increase rate (FIR) analyses further confirmed the enhanced resilience of PG 76-10, showing nearly 39% lower FIR under thermal stress. Importantly, PG 76-10 maintained performance within specification thresholds under all tested conditions, unlike the conventional 40/50 mixture. These findings emphasize the necessity of adapting mix design standards to regional climatic realities and support the broader adoption of polymer-modified asphalt binders to enhance pavement service life in hot-climate regions like Iraq.

Description

Albdairi, Mustafa/0009-0002-6673-363X

Keywords

Polymer-Modified Bitumen (PMB), Marshall Stability, High-Temperature Performance, Pg76-10, 40/50 Bitumen, Asphalt Pavement, Stiffness, Marshall stability, high-temperature performance, PG76-10, Building construction, polymer-modified bitumen (PMB), asphalt pavement, 40/50 bitumen, TH1-9745

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WoS Q

Scopus Q

Q2
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Source

Construction Materials

Volume

5

Issue

2

Start Page

40

End Page

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Scopus : 1

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Mendeley Readers : 12

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