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In order to enhance the elongation at break, the ablation resistant properties as well as the tensile strength of the thermal insulating materials, organo-montmorillonite (OMMT) was introduced into the short aramid fibers reinforced Ethylene-Propylene-Diene Monomer (EPDM) based nanocomposites. The effects of OMMT content on the mechanical and ablative properties of the nanocomposites were investigated systematically. X-ray diffraction (XRD) and transmission electron microscopy (TEM) confirm that EPDM-matrix has been intercalated into OMMT interlayers after a mixing process on a two-roll mill. The brittle fracture of nanocomposites also indicates that OMMT can lubricate aramid fiber to weaken the interfacial adhesive strength between the fibers and the matrix. As a result, the tensile strength and elongation at break are both improved sharply with OMMT content increasing from 1 phr to 7 phr. However, thanks to the inevitable agglomeration of OMMT with high loading inside the nanocomposites, the tensile strength and elongation at break reduce gently once OMMT is over 7 phr. Furthermore, the ablation resistant properties are improved greatly by increasing OMMT from 1 phr to 11 phr. Therefore, the optimal content of OMMT is 7-11 phr for the thermal insulating nanocomposites with big elongation and excellent ablation resistant properties.
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http://dx.doi.org/10.1166/jnn.2010.2786 | DOI Listing |
ACS Appl Mater Interfaces
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College of Materials Science and Engineering, Hunan University, Changsha 410082, China.
Modern electronic systems are evolving toward miniaturized designs, flexible architectures, and high-power-density requirements. However, progress in developing electrical insulation materials that integrate mechanical robustness, flexibility, and thermal stability remains a critical challenge. This study introduces a novel nacre-inspired aramid-vermiculite nanopaper featuring a 3D interconnected layered network, designed for use in flexible electrical insulating applications.
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Department of Mechanical Engineering, Eindhoven University of Technology, Eindhoven, The Netherlands.
Sweating is a vital thermoregulatory mechanism in humans for maintaining thermal balance during exercise and exposure to hot environments. The development of models that predict sweat rate based on body temperature has been ongoing for over half a century. Here, we compared predicted water loss rates (WLR) from these models to actual observations collected during 780 participant-exposures in three independent laboratory-based experiments.
View Article and Find Full Text PDFEnviron Sci Pollut Res Int
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Vellore Institute of Technology, Vellore, 632014, Tamil Nadu, India.
The significant global energy consumption strongly emphasizes the crucial role of net-zero or green structures in ensuring a sustainable future. Considering this aspect, incorporating thermal insulation materials into building components is a well-accepted method that helps to enhance thermal comfort in buildings. Furthermore, integrating architectural components made from solid refuse materials retrieved from the environment can have significant environmental benefits.
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Highly porous, lightweight aerogels were developed based on cellulose extracted via industrial Kraft treatments from vine shoot (S) with the aim of valorising a currently generated waste and eucalyptus (EU) to reduce seasonality. In order to enhance their hydrophobicity and mechanical resistance, a poly-lactic acid (PLA) coating was applied through two different methodologies: spray- and pipette-coating. The resulting materials presented low densities (23-80 kg/m) with improved mechanical performance, revealing a notable augment in compressive strength after PLA coating (up to 20-fold increase, reaching 1.
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Laboratory of Analytical Chemistry, Department of Chemistry, National and Kapodistrian University of Athens, Panepistimioupolis Zografou, Athens 15771, Greece.
An innovative 4D targeted method was developed for the determination of 61 bioactive compounds in royal jelly (RJ) related to their health-promoting properties. The method, apart from high-resolution mass spectrometry, exploits the advantages of vacuum-insulated probe-heated electrospray ionization source (VIP-HESI), reducing thermal degradation, and trapped ion mobility spectrometry (TIMS), improving selectivity and compound identification. The optimization of VIP-HESI ionization parameters using experimental designs showed that the critical parameters were the capillary voltage as well as the probe gas flow rate and temperature.
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