Valorization of Distilled Paint Waste as a Modifier of Polymer Matrices Based on ABS, PP and PS

This study evaluates the feasibility of incorporating a specific batch of distilled paint waste into acry-lonitrile–butadiene–styrene (ABS), polypropylene (PP), and polystyrene (PS) matrices at nominal feed contents of 10, 20, and 30 wt.%. After drying and grinding, the waste was compounded by extrusion and specimens were produced by injection molding. Melt-flow behavior, density, impact and tensile properties, thermal stability, thermal transitions, and dynamic-mechanical response were investigated. The effect of waste addition was strongly matrix dependent. In PS, MFR increased from 9.52 to 24.85 g/10 min between neat PS and the 30 wt.% nominal formulation, while Tg decreased from 106.4 to 81.6 °C. TGA showed non-monotonic, matrix-dependent changes in thermal stability. Mechanical performance generally deteriorated with increasing nominal waste content; for ABS, tensile strength decreased from 42.21 to 26.17 MPa and impact strength from 17.51 to 0.23 kJ/m2. DMA confirmed matrix-dependent changes in stiffness and relaxation behavior. The results show that the investigated waste batch can be processed with all three ther-moplastic matrices, but increasing waste addition involves clear mechanical and thermal trade-offs.

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Publication Details

Journal
Materials
Published
2026-09-29
DOI
https://doi.org/10.3390/ma19194167
Primary Topic
Polymer Foaming and Composites
Type
article
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Valorization of Distilled Paint Waste as a Modifier of Polymer Matrices Based on ABS, PP and PS

Tomasz Karasiewicz, Krzysztof Szabliński, Bartłomiej Jagodziński, Krzysztof Moraczewski
Materials
Polymer Foaming and Composites
article

Valorization of Distilled Paint Waste as a Modifier of Polymer Matrices Based on ABS, PP and PS

Tomasz Karasiewicz, Krzysztof Szabliński, Bartłomiej Jagodziński, Krzysztof Moraczewski
article en

Abstract

This study evaluates the feasibility of incorporating a specific batch of distilled paint waste into acry-lonitrile–butadiene–styrene (ABS), polypropylene (PP), and polystyrene (PS) matrices at nominal feed contents of 10, 20, and 30 wt.%. After drying and grinding, the waste was compounded by extrusion and specimens were produced by injection molding. Melt-flow behavior, density, impact and tensile properties, thermal stability, thermal transitions, and dynamic-mechanical response were investigated. The effect of waste addition was strongly matrix dependent. In PS, MFR increased from 9.52 to 24.85 g/10 min between neat PS and the 30 wt.% nominal formulation, while Tg decreased from 106.4 to 81.6 °C. TGA showed non-monotonic, matrix-dependent changes in thermal stability. Mechanical performance generally deteriorated with increasing nominal waste content; for ABS, tensile strength decreased from 42.21 to 26.17 MPa and impact strength from 17.51 to 0.23 kJ/m2. DMA confirmed matrix-dependent changes in stiffness and relaxation behavior. The results show that the investigated waste batch can be processed with all three ther-moplastic matrices, but increasing waste addition involves clear mechanical and thermal trade-offs.

MaterialsVol. 19(19)
Kazimierz Wielki University in Bydgoszcz (PL)
Openalex Percentile: Top 24%
Polymer Foaming and Composites
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Valorization of Distilled Paint Waste as a Modifier of Polymer Matrices Based on ABS, PP and PS — Tomasz Karasiewicz, Krzysztof Szabliński, et al. · Materials (2026) | TGRS Research Map | TGRS