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Search Results (1,369)

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19 pages, 5806 KB  
Article
Ballistic Failure Analysis of Hybrid Natural Fiber/UHMWPE-Reinforced Composite Plates Using Experimental and Finite Element Methods
by Eduardo Magdaluyo, Ariel Jorge Payot, Lorenzo Matilac and Denisse Jonel Pavia
J. Manuf. Mater. Process. 2026, 10(1), 33; https://doi.org/10.3390/jmmp10010033 - 13 Jan 2026
Abstract
This study evaluated the ballistic performance and failure mechanisms of epoxy-based hybrid laminates reinforced with abaca/UHMWPE and pineapple leaf fiber (PALF)/UHMWPE fabrics fabricated by using vacuum-assisted hand lay-up. Ballistic tests utilized 9 mm full metal jacket (FMJ) rounds (~426 m/s impact velocity) under [...] Read more.
This study evaluated the ballistic performance and failure mechanisms of epoxy-based hybrid laminates reinforced with abaca/UHMWPE and pineapple leaf fiber (PALF)/UHMWPE fabrics fabricated by using vacuum-assisted hand lay-up. Ballistic tests utilized 9 mm full metal jacket (FMJ) rounds (~426 m/s impact velocity) under NIJ Standard Level IIIA conditions (44 mm maximum allowable BFS). This experimental test was complemented by finite element analysis (FEA) incorporating an energy-based bilinear fracture criterion to simulate matrix cracking and fiber pull-out. The results showed that abaca/UHMWPE composites exhibited lower backface signature (BFS) and depth of penetration (DOP) values (~23 mm vs. ~42 mm BFS; ~7 mm vs. ~9 mm DOP) than PALF/UHMWPE counterparts, reflecting superior interfacial adhesion and more ductile failure modes. Accelerated weathering produced matrix microcracking and delamination in both systems, reducing overall ballistic resistance. Scanning electron microscopy confirmed improved fiber–matrix bonding in abaca composites and interfacial voids in PALF laminates. The FEA results reproduced major failure modes, such as delamination, fiber–matrix debonding, and petaling, and identified stress concentration zones that agreed with experimental observations, though the extent of delamination was slightly underpredicted. Overall, the study demonstrated that abaca/UHMWPE hybridcomposites offer enhanced ballistic performance and durability compared with PALF/UHMWPE laminates, supporting their potential as sustainable alternatives for lightweight protective applications. Full article
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16 pages, 2278 KB  
Article
Fine-Fraction Brazilian Residual Kaolin-Filled Coating Mortars
by Thamires Alves da Silveira, Mirian Dosolina Fusinato, Gustavo Luis Calegaro, Cristian da Conceição Gomes and Rafael de Avila Delucis
Waste 2026, 4(1), 3; https://doi.org/10.3390/waste4010003 - 13 Jan 2026
Abstract
This study investigates the use of the fine fraction of Brazilian residual kaolin, a material with no pozzolanic activity according to the modified Chapelle test, as a partial cement replacement in rendering mortars. The kaolin was classified into three granulometric fractions (coarse: 150–300 [...] Read more.
This study investigates the use of the fine fraction of Brazilian residual kaolin, a material with no pozzolanic activity according to the modified Chapelle test, as a partial cement replacement in rendering mortars. The kaolin was classified into three granulometric fractions (coarse: 150–300 µm, intermediate: 75–150 µm, and fine: <75 µm) and incorporated at two filler contents (10% and 20% by weight). Mineralogical and chemical analyses revealed that the fine fractions contained higher proportions of kaolinite and accessory oxides, while medium and coarse fractions were dominated by quartz. Intensity ratios from XRD confirmed greater structural disorder in the fine fraction, which was associated with higher water demand but also improved particle packing and pore refinement. Fresh state tests showed that mortars with fine kaolin maintained higher density and exhibited moderate increases in air content, whereas medium and coarse fractions promoted greater entrainment. In the hardened state, fine kaolin reduced water absorption by immersion and capillary rise, while medium and coarse fractions led to higher porosity. Mechanical tests confirmed these trends: although compressive and flexural strengths decreased with increasing substitution, mortars containing the fine kaolin fraction consistently exhibited more moderate strength losses than those with medium or coarse fractions, reflecting their enhanced packing efficiency and pore refinement. Tensile bond strength results further highlighted the positive contribution of the kaolin additions, as the mixtures with 10% coarse kaolin and 20% fine kaolin achieved adhesion values only about 7% and 4% lower, respectively, than the control mortar after 28 days. All mixtures surpassed the performance requirements of NBR 13281, demonstrating that the incorporation of residual kaolin—even at higher substitution levels—does not compromise adhesion and remains compatible with favorable cohesive failure modes in the mortar layer. Despite the lack of pozzolanic activity, residual kaolin was used due to its filler effect and capacity to enhance particle packing and pore refinement in rendering mortars. A life cycle assessment indicated that the partial substitution of cement with residual kaolin effectively reduces the environmental impacts of mortar production, particularly the global warming potential, when the residue is modeled as a by-product with a negligible environmental burden. This highlights the critical role of methodological choices in assessing the sustainability of industrial waste utilization. Full article
(This article belongs to the Special Issue Use of Waste Materials in Construction Industry)
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11 pages, 4219 KB  
Communication
Oxygen Addition Influence on NiCrFe Mixed Layer
by Bianca-Georgiana Solomonea, Alexandru Anghel, Cristian P. Lungu, Cornel Staicu, Bogdan Butoi, Corneliu Porosnicu, Paul Dincă, Oana Pompilian, Arcadie Sobetkii, Anca Constantina Parau, Mihaela Dinu, Lidia Ruxandra Constantin, Alina Vladescu (Dragomir) and Catalin Vitelaru
Coatings 2026, 16(1), 96; https://doi.org/10.3390/coatings16010096 - 12 Jan 2026
Viewed by 36
Abstract
Carbon–metal composite NiCrFeC coatings, prepared with and without controlled oxygen addition, were investigated to evaluate the influence of oxygen on the structure, mechanical response, and tribological performance. X-ray diffraction revealed that oxygen-containing films (NiCrFeC + O2) exhibit a mixed metallic–oxide microstructure [...] Read more.
Carbon–metal composite NiCrFeC coatings, prepared with and without controlled oxygen addition, were investigated to evaluate the influence of oxygen on the structure, mechanical response, and tribological performance. X-ray diffraction revealed that oxygen-containing films (NiCrFeC + O2) exhibit a mixed metallic–oxide microstructure with CrNi, CrO, and NiO phases, whereas oxygen-free coatings show only CrNi crystalline peaks. The incorporation of oxygen led to a substantial increase in nano-hardness, from 0.84 GPa for NiCrFeC to 1.59 GPa for NiCrFeC + O2. Scratch testing up to 100 N indicated improved adhesion and higher critical loads for the oxygen-rich coatings. Tribological measurements performed under dry sliding conditions using a sapphire ball showed a significant reduction in friction: NiCrFeC + O2 stabilized at ~0.20, while NiCrFeC exhibited values between 0.25 and 0.35 at 0.5 N and 0.4–0.5 at 1 N, accompanied by non-uniform sliding due to coating failure. Wear-track analysis confirmed shallower penetration depths and narrower wear scars for NiCrFeC + O2, despite similar initial roughness (~35 nm). These findings demonstrate that oxygen incorporation enhances hardness, adhesion, and wear resistance while substantially lowering friction, making NiCrFeC + O2 coatings promising for low-friction dry-sliding applications. Full article
(This article belongs to the Special Issue Advanced Corrosion- and Wear-Resistant Coatings)
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27 pages, 13586 KB  
Article
Numerical and Experimental Study of Continuous Beams Made of Self-Compacting Concrete Strengthened by GFRP Materials
by Žarko Petrović, Andrija Zorić, Bojan Milošević, Slobodan Ranković and Predrag Petronijević
Eng 2026, 7(1), 37; https://doi.org/10.3390/eng7010037 - 10 Jan 2026
Viewed by 145
Abstract
This paper presents an experimental and numerical investigation of continuous reinforced concrete (RC) beams made of self-compacting concrete (SCC) strengthened with fiber-reinforced polymer (FRP) bars using the Near-Surface Mounted (NSM) method. While the majority of previous studies have focused on simply supported beams, [...] Read more.
This paper presents an experimental and numerical investigation of continuous reinforced concrete (RC) beams made of self-compacting concrete (SCC) strengthened with fiber-reinforced polymer (FRP) bars using the Near-Surface Mounted (NSM) method. While the majority of previous studies have focused on simply supported beams, this work examines two-span continuous beams, which are more representative of real structural behavior. Four SCC beams were tested under static loading to evaluate the influence of the FRP reinforcement position on flexural capacity and deformational characteristics. The beams were strengthened using glass FRP (GFRP) bars embedded in epoxy adhesive within pre-cut grooves in the concrete cover. Experimental results showed that FRP reinforcement significantly increased the ultimate load capacity, while excessive reinforcement reduced ductility, leading to a more brittle failure mode. A three-dimensional finite element model was developed in Abaqus/Standard using the Concrete Damage Plasticity (CDP) model to simulate the nonlinear behavior of concrete and the bond–slip interaction at the epoxy–concrete interface. The numerical predictions closely matched the experimental load–deflection responses, with a maximum deviation of less than 3%. The validated model provides a reliable tool for parametric analysis and can serve as a reference for optimizing the design of continuous SCC beams strengthened by the NSM FRP method. Full article
(This article belongs to the Section Chemical, Civil and Environmental Engineering)
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17 pages, 2799 KB  
Article
Development and Multi-Scale Evaluation of a Novel Polyfluorosilicone Triple-Layer Anti-Seepage Coating for Hydraulic Concrete
by Nazim Hussain, Guoxin Zhang, Songhui Li, Xunan Liu, Xiangyu Luo and Junhua Hu
Coatings 2026, 16(1), 85; https://doi.org/10.3390/coatings16010085 - 9 Jan 2026
Viewed by 181
Abstract
The deterioration of concrete hydraulic structures caused by chemical factors, seepage, and environmental stress necessitates advanced protective coatings that enhance durability, flexibility, and environmental sustainability. Conventional protective systems often exhibit limited durability under combined hydraulic, thermal, and chemical stress. In this study, a [...] Read more.
The deterioration of concrete hydraulic structures caused by chemical factors, seepage, and environmental stress necessitates advanced protective coatings that enhance durability, flexibility, and environmental sustainability. Conventional protective systems often exhibit limited durability under combined hydraulic, thermal, and chemical stress. In this study, a novel polyfluorosilicone-based coating system is presented, which integrates a deep-penetrating nano-primer for substrate reinforcement, a crack-bridging polymer intermediate layer for impermeability, and a polyfluorosilicone topcoat providing UV and weather resistance. The multilayer architecture addresses the inherent trade-offs between adhesion, flexibility, and durability observed in conventional waterproofing systems. Informed by a mechanistic study of interfacial adhesion and failure modes, the coating exhibits outstanding high mechanical and performance characteristics, including a mean pull-off bond strength of 4.56 ± 0.14 MPa for the fully cured triple-layer coating system, with cohesive failure occurring within the concrete substrate, signifying a bond stronger than the material it protects. The system withstood 2.2 MPa water pressure and 200 freeze–thaw cycles with 87.2% modulus retention, demonstrating stable mechanical and environmental durability. The coating demonstrated excellent resilience, showing no evidence of degradation after 1000 h of UV aging, 200 freeze–thaw cycles, and exposure to alkaline solutions. This water-based formulation meets green-material standards, with low volatile organic compound (VOC) levels and minimal harmful chemicals. The results validate that a multi-scale, layered design strategy effectively decouples and addresses the distinct failure mechanisms in hydraulic environments, providing a robust and sustainable solution. Full article
(This article belongs to the Section Functional Polymer Coatings and Films)
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18 pages, 6378 KB  
Article
Mycelium-Based Laminated Composites: Investigating the Effect of Fungal Filament Growth Conditions on the Layer Adhesion
by Alexis Boisvert, Marc-Antoine Poulin, Saïd Elkoun, Hubert Cabana, Olivier Robin, Mathieu Robert and Félix-Antoine Bérubé-Simard
J. Compos. Sci. 2026, 10(1), 38; https://doi.org/10.3390/jcs10010038 - 9 Jan 2026
Viewed by 169
Abstract
Mycelium-based composites are self-grown biodegradable materials, made using agricultural residue fibers that are inoculated with fungi mycelium. The mycelium forms an interwoven three-dimensional filamentous network, binding every fiber particle together to create a rigid, lightweight composite material. Although having potential in packaging and [...] Read more.
Mycelium-based composites are self-grown biodegradable materials, made using agricultural residue fibers that are inoculated with fungi mycelium. The mycelium forms an interwoven three-dimensional filamentous network, binding every fiber particle together to create a rigid, lightweight composite material. Although having potential in packaging and in the construction industry, mycelium composites encounter molding limitations due to fiber size and oxygen access which hinder design capabilities and market engagement. To cope with these limitations, this study reports an alternative way to form mycelium composite using cut precultivated mycelium composite panels, laminated to biologically fuse into a unique assembly. By controlling the growth conditions of the mycelium network, it is possible to adjust physical properties such as flexural strength and strain energy density. These mycelium composite panels were fabricated from hemp fibers and Ganoderma lucidum mushroom. Seven different growth conditions were tested to increase layer adhesion and create the strongest assembly. Three-point flexural tests were conducted on ten samples extracted from each assembled panel triplicate set. The data collected in this study suggested that cultivating an opaque layer of mycelium on the surface of the panel before stacking can enhance total strain energy density by approximately 60%, compared to a single-layer mycelium composite of identical size. In addition, this eliminates abrupt material failure by dividing failure behavior into multiple distinct stages. Finally, by layering multiple thinner layers, the resulting mycelium composite could contain even higher mycelium proportions exhibiting augmented mechanical properties and higher design precisions opening market possibilities. Full article
(This article belongs to the Special Issue Composites: A Sustainable Material Solution, 2nd Edition)
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25 pages, 1032 KB  
Review
Microvascular Failure in the Aging Brain: Converging Pathways of Oxidative Stress, Inflammation, and Endothelial Decline
by Jordana Mariane Neyra Chauca, Maclovia Vázquez VanDyck, Armando Espinoza Santana, Graciela Gaddy Robles Martínez, Kalid Alejandra Romero Vega, Nancy García Quintana and Vanessa Favila Sánchez
Biomedicines 2026, 14(1), 130; https://doi.org/10.3390/biomedicines14010130 - 8 Jan 2026
Viewed by 225
Abstract
Background: Aging exerts a progressive and multifaceted impact on the microcirculatory system, undermining the structural and molecular integrity that sustains endothelial stability across both peripheral and cerebral vascular territories. A sustained shift toward oxidative imbalance, chronic low-grade inflammation, and progressive endothelial exhaustion [...] Read more.
Background: Aging exerts a progressive and multifaceted impact on the microcirculatory system, undermining the structural and molecular integrity that sustains endothelial stability across both peripheral and cerebral vascular territories. A sustained shift toward oxidative imbalance, chronic low-grade inflammation, and progressive endothelial exhaustion converges to destabilize microvascular networks, linking peripheral artery disease (PAD) with heightened susceptibility to cerebral microvascular dysfunction and neurovascular decline. As redox homeostasis deteriorates, endothelial cells progressively lose barrier-selective properties, intercellular communication with pericytes weakens, and pro-thrombotic tendencies subtly emerge, creating a permissive environment for early neurovascular injury and impaired cerebrovascular resilience. Methods: This narrative review integrates mechanistic evidence derived from experimental, clinical, and translational studies examining the interplay between oxidative stress, inflammatory signaling cascades, endothelial senescence, and blood–brain barrier (BBB) disruption across peripheral and cerebral microvascular systems. A comparative framework was applied to PAD and cerebral microcirculatory pathology to identify convergent molecular drivers and systemic mechanisms underlying endothelial deterioration. Results: Accumulating evidence demonstrates that oxidative stress disrupts endothelial mitochondrial function, compromises tight junction architecture, and accelerates angiogenic failure. Concurrent inflammatory activation amplifies these alterations through cytokine-mediated endothelial activation, enhanced leukocyte adhesion, and promotion of a pro-thrombotic microenvironment. Progressive endothelial senescence consolidates these insults into a persistent state of microvascular dysfunction characterized by diminished nitric oxide bioavailability, capillary rarefaction, and compromised barrier integrity. Notably, these pathological features are shared between PAD and the aging cerebral circulation, reinforcing the concept of a unified systemic microvascular aging phenotype. Conclusions: Microvascular failure in the aging brain should be understood as an extension of systemic endothelial deterioration driven by oxidative stress, chronic inflammation, and senescence-associated vascular exhaustion. Recognizing the shared molecular architecture linking peripheral and cerebral microcirculatory dysfunction offers a strategic framework for developing targeted therapeutic interventions aimed at restoring endothelial resilience, stabilizing BBB integrity, and preserving neurovascular homeostasis in aging populations. Full article
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16 pages, 1615 KB  
Article
Effect of Different Luting Protocols on the Bond Strength of Fiber-Reinforced CAD/CAM Blocks
by Irem Buyukates, Sufyan Garoushi, Pekka K. Vallittu, Sadullah Uctasli and Lippo Lassila
Polymers 2026, 18(2), 160; https://doi.org/10.3390/polym18020160 - 7 Jan 2026
Viewed by 150
Abstract
The aim was to evaluate the shear-bond strength (SBS) of experimental short fiber-reinforced CAD/CAM composites (SFRC-CAD) and commercial CAD/CAM composites (Cerasmart 270) to different luting resin composites before and after hydrothermal aging. Discs (2 mm) obtained from SFRC-CAD and Cerasmart 270 were air-particle [...] Read more.
The aim was to evaluate the shear-bond strength (SBS) of experimental short fiber-reinforced CAD/CAM composites (SFRC-CAD) and commercial CAD/CAM composites (Cerasmart 270) to different luting resin composites before and after hydrothermal aging. Discs (2 mm) obtained from SFRC-CAD and Cerasmart 270 were air-particle abraded and treated with a primer (G-CEM One Enhancing Primer) with or without universal adhesive (G2 Bond). A fiber-reinforced flowable composite (everX Flow) and a self-adhesive resin cement (G-CEM One) were used as luting materials under direct or indirect curing conditions. Thirty-two experimental groups were determined based on restorative material, bonding protocol, luting resin, curing technique, and aging procedure (n = 8/group). SBS was measured after 24 h of water storage or following hydrothermal aging. Data were analyzed using nonparametric statistical tests (p < 0.05). No statistically significant differences in SBS were observed between everX Flow and G-CEM One regardless of the bond application (p > 0.05). SFRC-CAD bonded with everX Flow and universal adhesive demonstrated significantly higher SBS than the corresponding Cerasmart groups (p < 0.05), whereas no significant differences were observed between comparable groups when G-CEM One was used. Failure mode analysis showed predominantly adhesive and mixed failures, with no cohesive failures within SFRC-CAD. Overall, the everX Flow proved to be an effective luting material, indicating that this material may be suitable for luting CAD/CAM indirect restorations. Full article
(This article belongs to the Section Polymer Applications)
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21 pages, 8488 KB  
Article
Effect of Peel Ply-Induced Surface Roughness and Wettability on the Adhesive Bonding of GFRP Composites
by Barbara Silva, Paulo Antunes and Braian Uribe
J. Manuf. Mater. Process. 2026, 10(1), 20; https://doi.org/10.3390/jmmp10010020 - 7 Jan 2026
Viewed by 324
Abstract
Adhesive joint failure remains a critical limitation in the manufacturing of large wind turbine blades, where reliable and reproducible surface preparation methods are required at an industrial scale. This study systematically evaluates the effect of peel ply-induced surface morphology and chemistry on the [...] Read more.
Adhesive joint failure remains a critical limitation in the manufacturing of large wind turbine blades, where reliable and reproducible surface preparation methods are required at an industrial scale. This study systematically evaluates the effect of peel ply-induced surface morphology and chemistry on the adhesion performance of glass fiber-reinforced polymer (GFRP) laminates, explicitly examining the relationship between wettability and bonding strength. Five surface conditions were generated during vacuum-assisted resin infusion using different commercial and proprietary peel plies and a smooth mold surface. Despite significant differences in contact angle and surface energy, lap shear testing revealed no significant relationship between wettability and joint strength. Instead, surface roughness-driven mechanical interlocking and adhesive–substrate compatibility dominated performance. Compared to the smooth mold surface, twill-type peel ply–modified adherends increased shear strength by up to 3.9×, while other commercial types of peel-plies presented strength improvements between 2.7 and 3.3×. More compatible adhesive–polymer resin systems exhibited a combination of cohesive and adhesive failures, with no clear dependence on surface roughness. In contrast, when the adhesive is less compatible with the substrate, surface roughness significantly affects the adhesive response, with adhesive failure predominating. The adhesive application temperature showed no measurable effect for practical industrial use. These findings demonstrate that wettability alone is not a reliable predictor of adhesion performance for this class of substrates and confirm peel ply surface modification as a robust, scalable solution for industrial wind blade bonding. Full article
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15 pages, 2211 KB  
Article
Effect of Gutta-Percha Removal Methods on Fiber-Post Bond Strength
by Abdul Rahman Hamwieh, Haitham Elbishari, May Aljanahi, Fatemeh Amir-Rad, Amre R. Atmeh, Moosa Abuzayeda, Amar H. Khamis and Rashid El Abed
Dent. J. 2026, 14(1), 38; https://doi.org/10.3390/dj14010038 - 6 Jan 2026
Viewed by 194
Abstract
Objectives: This study evaluated the effect of three root canal filling material (RCFM) removal techniques—mechanical, thermo-mechanical, and chemico-mechanical—on the micro push-out bond strength of fiber posts to root dentin in endodontically treated teeth. Materials and Methods: Forty-five single-rooted human premolars were endodontically treated [...] Read more.
Objectives: This study evaluated the effect of three root canal filling material (RCFM) removal techniques—mechanical, thermo-mechanical, and chemico-mechanical—on the micro push-out bond strength of fiber posts to root dentin in endodontically treated teeth. Materials and Methods: Forty-five single-rooted human premolars were endodontically treated and randomly allocated into three groups (n = 15) according to the RCFM removal technique used during post-space preparation: mechanical, thermo-mechanical, or chemico-mechanical. Fiber posts were luted using a dual-cure resin cement. Roots were embedded in resin and sectioned into coronal, middle, and apical thirds. Micro push-out bond strength was measured using a universal testing machine. Failure modes were examined under a stereomicroscope and validated using scanning electron microscopy. Statistical analysis used two-way ANOVA and Chi-square tests (α = 0.05). Results: Both the thermo-mechanical and mechanical groups showed significantly higher bond strength values than the chemico-mechanical group (p < 0.001). Across all groups, the coronal third recorded the highest bond strength, while the apical third presented the lowest values (p < 0.001). Adhesive failure at the dentin–cement interface was the most frequent failure mode. Conclusions: The gutta-percha removal technique and the root canal region significantly influence fiber-post bond strength. Solvent-based chemico-mechanical methods may adversely affect adhesion quality. Clinical Relevance: Thermo-mechanical and mechanical removal techniques may provide more reliable post retention during retreatment procedures, improving adhesion and reducing the risk of post debonding in daily practice. Full article
(This article belongs to the Section Restorative Dentistry and Traumatology)
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29 pages, 7782 KB  
Article
A Hybrid Machine Learning Model for Dynamic Level Detection of Lead-Acid Battery Electrolyte Using a Flat-Plate Capacitive Sensor
by Shuai Huang, Weikang Zhang, Weiwei Zhang, Zhihui Ni, Lifeng Bian, Jiawen Liu, Peng Yue and Peng Xu
Sensors 2026, 26(2), 361; https://doi.org/10.3390/s26020361 - 6 Jan 2026
Viewed by 156
Abstract
Abnormal electrolyte levels can lead to failures in lead-acid batteries. The capacitive method, as a non-invasive liquid level inspection technique, can be applied to the nondestructive detection of electrolyte level abnormalities in lead-acid batteries. However, due to the high viscosity of sulfuric acid [...] Read more.
Abnormal electrolyte levels can lead to failures in lead-acid batteries. The capacitive method, as a non-invasive liquid level inspection technique, can be applied to the nondestructive detection of electrolyte level abnormalities in lead-acid batteries. However, due to the high viscosity of sulfuric acid in lead-acid batteries, residual liquid films are easily adhered to the tube walls during rapid liquid level drops, resulting in significant dynamic measurement errors in capacitive methods. To eliminate dynamic measurement errors caused by residual liquid film adhesion, this study proposes a hybrid deep learning model—Poly-LSTM. This model combines polynomial feature generation with a Long Short-Term Memory (LSTM) network. First, polynomial features are generated to explicitly capture the complex nonlinear and coupling effects in the sensor inputs. Subsequently, the LSTM network processes these features to model their temporal dependencies. Finally, the time information encoded by the LSTM is used to generate accurate liquid level predictions. Experimental results show that this method outperforms other comparative models in terms of liquid level estimation accuracy. At a rapid drop rate of 0.12 mm/s, the average absolute error (MAE) is 0.5319 mm, the root mean square error (RMSE) is 0.7180 mm, and the mean absolute percentage error (MAPE) is 0.1320%. Full article
(This article belongs to the Section Physical Sensors)
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19 pages, 3895 KB  
Article
Predicting Sepsis in Heart Failure Patients Supported by Left Ventricular Assist Devices: The Role of VE-Cadherin and ADAM10
by Shiyi Li, Iván Murrieta-Álvarez, Ismael Garcia, Katherine V. Nordick, Rishav Bhattacharya, Shreyo Ghosh, Ronald A. Shaju, Adel M. Hassan, Carl P. Walther, Camila Hochman-Mendez, Alexis E. Shafii, Kenneth K. Liao and Nandan K. Mondal
Int. J. Mol. Sci. 2026, 27(2), 563; https://doi.org/10.3390/ijms27020563 - 6 Jan 2026
Viewed by 150
Abstract
Vascular endothelial cadherin (VE-Cadherin) is a major endothelial adhesion molecule and can be cleaved explicitly by metalloproteinase domain-containing protein 10 (ADAM10). Vascular hyperpermeability may contribute to a greater susceptibility to sepsis in left ventricular assist device (LVAD) support patients. We aim to evaluate [...] Read more.
Vascular endothelial cadherin (VE-Cadherin) is a major endothelial adhesion molecule and can be cleaved explicitly by metalloproteinase domain-containing protein 10 (ADAM10). Vascular hyperpermeability may contribute to a greater susceptibility to sepsis in left ventricular assist device (LVAD) support patients. We aim to evaluate the efficacy of VE-Cadherin and ADAM10 for predicting sepsis in LVAD patients. We prospectively recruited 50 patients with advanced heart failure receiving LVAD therapy. Baseline and weekly postoperative blood samples (weeks 1–4) were collected, and plasma VE-cadherin and ADAM10 levels were measured. Sepsis occurred in 9 of 50 patients (18.0%). Across all sampling points, plasma VE-cadherin and ADAM10 levels were significantly higher in the sepsis group relative to the non-sepsis group. From pre-implantation to 1-week and 1-month post-operation, VE-Cadherin alone showed good performance for sepsis prediction, with areas under the receiver operating characteristic (AUC) of 0.75, 0.81, 0.69, 0.72, and 0.77, respectively. A significant positive correlation between VE-cadherin and ADAM10 was detected only among sepsis patients. Incorporating ADAM10 into the prediction models significantly enhances their predictive performance. Plasma VE-Cadherin levels can be a valuable biomarker for predicting sepsis in LVAD patients, with predictive performance further enhanced when combined with circulating ADAM10 levels. Full article
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14 pages, 1810 KB  
Case Report
Clinical Management of Cervical Restorations with Closing Gap Technique: A Follow-Up of Two Cases
by Alexander Bonchev
Dent. J. 2026, 14(1), 13; https://doi.org/10.3390/dj14010013 - 1 Jan 2026
Viewed by 234
Abstract
Background: Cervical restorations remain clinically challenging due to complex anatomy, limited enamel availability, and difficulties in achieving reliable adhesion at dentin or cementum margins. Polymerization shrinkage and marginal leakage are frequent causes of failure. Although the Closing Gap Technique has been proposed to [...] Read more.
Background: Cervical restorations remain clinically challenging due to complex anatomy, limited enamel availability, and difficulties in achieving reliable adhesion at dentin or cementum margins. Polymerization shrinkage and marginal leakage are frequent causes of failure. Although the Closing Gap Technique has been proposed to improve marginal adaptation in cervical restorations, evidence supporting its medium- to long-term clinical performance is limited. The aim of this case report was to evaluate the clinical effectiveness of the Closing Gap Technique in the restoration of carious and non-carious cervical lesions. Materials and Methods: Two patients presenting with cervical lesions were treated using the Closing Gap Technique. One case involved carious cervical lesions, while the second included multiple non-carious cervical lesions. Restorations were performed following an enamel-anchored incremental layering protocol with resin composite. Clinical evaluations were conducted at 8 years (case #1) and 2 years (case #2) post-treatment, respectively. Results: Both cases demonstrated favorable clinical outcomes at follow-up. The restorations exhibited good marginal integrity, satisfactory esthetics, absence of marginal discoloration, no secondary caries, and no signs of debonding. The only minor defect observed was slight chipping of one of the restorations. Conclusions: Within the limitations of this case report, the Closing Gap Technique showed stable and predictable medium- and long-term clinical performance, supporting its use as a viable restorative approach for managing cervical lesions in daily clinical practice. Full article
(This article belongs to the Special Issue Dental Restorative Materials: Current Development and Future Horizons)
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16 pages, 9772 KB  
Article
Structural Adhesive Bonding of Vacuum-Infused Acrylic-Based Thermoplastic Fibre-Reinforced Laminates
by Nils Xavier Bohlmann, Pedro Henrique Evangelista Fernandes, Morten Voß, Sebastian Veller, Christof Nagel, Katharina Arnaut and Vinicius Carrillo Beber
J. Compos. Sci. 2026, 10(1), 6; https://doi.org/10.3390/jcs10010006 - 1 Jan 2026
Viewed by 214
Abstract
Driven by regulatory and environmental demands, composite structures must combine high structural performance, recyclability, and resource efficiency. Here, an investigation on the structural adhesive bonding of glass-fibre-reinforced thermoplastic Elium© composite laminates is undertaken. Substrates are manufactured using vacuum infusion. Evaluation is performed on [...] Read more.
Driven by regulatory and environmental demands, composite structures must combine high structural performance, recyclability, and resource efficiency. Here, an investigation on the structural adhesive bonding of glass-fibre-reinforced thermoplastic Elium© composite laminates is undertaken. Substrates are manufactured using vacuum infusion. Evaluation is performed on the following three commercial two-component adhesives cured at RT: an epoxy (EP), a polyurethane (PU), and an acrylate system (AC). Based on Dynamic Mechanical Analysis, the glass transition temperatures of the EP, PU, and AC adhesives are 56.5, 102.9, and 111.9 °C, respectively. The AC adhesive exhibits the highest shear strength and displacement at failure, reflecting a superior load-bearing capacity. Fractographic analysis further supports these findings: AC joints show a mixed substrate/cohesive failure mode, while EP samples fail exclusively by adhesion failure and PU samples predominantly by a mixture of special cohesion, adhesion and substrate failure. Regarding processing, the EP samples show the highest pot life, followed by PU and then AC. Nonetheless, the pot life of the AC adhesive does not limit its range of application.. The results highlight the advantages of adhesive bonding of Elium© in enabling lightweight and more circular composites. RT-cured adhesives eliminate the need for drilling and energy-intensive thermal curing, allowing design flexibility and reductions in CO2 footprint within composite production. Full article
(This article belongs to the Special Issue Composites: A Sustainable Material Solution, 2nd Edition)
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49 pages, 2444 KB  
Review
Genetic Determinants of Wound Healing: Monogenic Disorders and Polygenic Influence
by Stephanie M. Mueller, Nalani Miller, Jasleen Gill, LaYow C. Yu, Michael Drake Pike and Dennis P. Orgill
Cells 2026, 15(1), 74; https://doi.org/10.3390/cells15010074 - 1 Jan 2026
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Abstract
(1) Background: Wound healing is a highly coordinated process encompassing hemostasis, inflammation, angiogenesis, keratinocyte migration, collagen deposition, and extracellular matrix remodeling. Successful repair also requires adequate nutrient and oxygen delivery through a well-developed vascular supply. Disruption of these processes can occur through aberrations [...] Read more.
(1) Background: Wound healing is a highly coordinated process encompassing hemostasis, inflammation, angiogenesis, keratinocyte migration, collagen deposition, and extracellular matrix remodeling. Successful repair also requires adequate nutrient and oxygen delivery through a well-developed vascular supply. Disruption of these processes can occur through aberrations in diverse biological pathways, including extracellular matrix organization, cellular adhesions, angiogenesis, and immune regulation. (2) Methods: We reviewed mechanisms of impaired tissue repair in monogenic disorders by focusing on three categories—connective tissue, hematological/immunological, and aging-related disorders—to illustrate how single-gene defects disrupt inflammation, cellular proliferation, and matrix remodeling. Additionally, we reviewed various polygenic disorders—chronic kidney disease, diabetes mellitus, hypertension, and obesity—to contrast complex multifactorial pathologies with single-gene defects. (3) Results: This review establishes that genetic impediments, despite their distinct etiologies, monogenic and polygenic disorders share critical downstream failures in the wound healing cascade. While monogenic diseases illustrate direct causal links between specific protein deficits and repair failure, polygenic diseases demonstrate how multifactorial stressors overwhelm the body’s regenerative capacity. (4) Conclusions: This review synthesizes current evidence on both monogenic diseases and polygenic contributions to impaired wound healing. These findings highlight that genetic susceptibility is a decisive factor in the ability to restore tissue homeostasis. This underscores the profound impact of genetic background on the efficacy of hemostasis, inflammation, and remodeling. Full article
(This article belongs to the Special Issue Cellular and Molecular Mechanisms of Wound Repair)
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