Results 11 to 20 of about 113 (87)
AbstractPlastics reuse is essential for promoting a sustainable future, especially by mitigating environmental impacts. Recycled polyamide 66 (PA66r) was reused for the produce biopolyethylene (BioPE)‐based blends, aiming to obtain a super‐tough material.
CARLOS Bruno Barreto Luna
exaly +2 more sources
Morphological, Thermal, and Mechanical Characterization of Bio-Based High-Density Polyethylene / Biopolyamide 6.10 Blends Compatibilized with PE and SEBS Functionalized With Maleic Anhydride [PDF]
This work reports the study of the compatibilization of the blend of biopolyethylene and biopolyamide 6.10, both biobased. In this work, two polymers functionalized with maleic anhydride (PE-g-MA and SEBS-g-MA) were used as compatibilizers of the blend ...
Jamile Almeida Vieira +2 more
doaj +1 more source
Fused Deposition Modeling of Polyolefins: Challenges and Opportunities
This review provides a fundamental understanding of polyolefins and their fused deposition modeling 3D‐printing process. The recent progresses in 3D‐printing of polyolefins are summarized. Importantly, strategies to overcome the warpage of polyolefins during the 3D‐printing process, and future prospective to inspire potential research in this area are ...
Nandishwar Verma +3 more
wiley +1 more source
One of the most common load modes is flexure. The paper measures and models the flexural strength and modulus of a bio-polyethylene reinforced with thermos-mechanical fibers from corn stover.
Quim Tarrés, Mònica Ardanuy
doaj +1 more source
Bio-polyethylene Furanoate (Bio-PEF) from Lignocellulosic Biomass Adapted to the Circular Bioeconomy
There is a global trend to replace the production of conventional recyclable plastics with biobased ones, allowing a sustainable alternative adapted to the current concept of a circular bioeconomy.
Carolina Mónica Mendieta +3 more
doaj +2 more sources
Bio-polyethylene (BioPE, derived from sugarcane), sugarcane bagasse pulp, and two compatibilizers (fossil and bio-based), were used to manufacture biocomposite filaments for 3D printing.
Nanci Vanesa Ehman +6 more
doaj +1 more source
Development of green composites based on bio-polyethylene and babassu mesocarp [PDF]
Green composites are sustainable alternatives to conventional materials. This study developed composites based on bio-polyethylene (Bio-PE) and babassu mesocarp (BM) (1.5 and 3 phr), using PE-grafted maleic anhydride (PE-g-MA) (3 phr) as a compatibilizer.
Crisnam Kariny da Silva Veloso +4 more
doaj +1 more source
Aqueous poly(N-Vinylformamide-co-Vinylamine) as a suitable adhesion promoter for wood veneer/biopolyethylene composite materials [PDF]
Wood veneer/biopolyethylene (bio-PE) biocomposite materials were produced by using poly(N-vinylformamide-co-vinylamine) (PVFA-co-PVAm) copolymers as a phase-mediating reagent. In a preliminary step, PVFA-co-PVAm was adsorbed onto the wood veneer component from aqueous solution.
Rico John +6 more
openaire +1 more source
Ionic Liquid‐Facilitated Preparation of Lignocellulosic Composites
Lignocellulosic composites (LCs) were prepared by partially dissolving cotton along with steam exploded Aspen wood and burlap fabric reinforcements utilizing an ionic liquid (IL) solvent. Two methods of preparation were employed. In the first method, a controlled amount of IL was added to preassembled dry matrix of cotton and Aspen wood with a burlap ...
Brent Tisserat +7 more
wiley +1 more source
Compounds of biopolyethylene/cotton linter compatibilized with PE-g-MA
Currently, polymers have been reinforced with natural fibers, aiming at generating a class of new materials less aggressive to the environment. Therefore, this study aimed to develop biopolyethylene (BioPE)/cotton linter compounds, compatible with polyethylene grafted with maleic anhydride (PE-g-MA).
Salviano, Aline Florindo +5 more
openaire +1 more source

