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A micromachined resonator immersed in liquid provides valuable resonance parameters for determining the fluidic parameters. However, the liquid operating environment poses a challenge to maintaining a fine sensing performance, particularly through electrical characterization. This paper presents a piezoelectric micromachined cantilever with a stepped shape for liquid monitoring purposes. Multiple modes of the proposed cantilever are available with full electrical characterization for realizing self-actuated and self-sensing capabilities. The focus is on higher flexural resonances, which nonconventionally feature two-dimensional vibration modes. Modal analyses are conducted for the developed cantilever under flexural vibrations at different orders. Modeling explains not only the basic length-dominant mode but also higher modes that simultaneously depend on the length and width of the cantilever. This study determines that the analytical predictions for resonant frequency in liquid media exhibit good agreement with the experimental results. Furthermore, the experiments on cantilever resonators are performed in various test liquids, demonstrating that higher-order flexural modes allow for the decoupled measurements of density and viscosity. The measurement differences achieve 0.39% in density and 3.50% in viscosity, and the frequency instability is below 0.05‰. On the basis of these results, design guidelines for piezoelectric higher-mode resonators are proposed for liquid sensing.
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http://dx.doi.org/10.1038/s41378-022-00368-0 | DOI Listing |
Proc Inst Mech Eng H
September 2025
Faculty of Medicine, Sirindhorn School of Prosthetics and Orthotics, Siriraj Hospital, Mahidol University, Bangkok, 10700 Thailand.
This study provides valuable guidance for simplifying fabrication procedures and enhancing the structural integrity and safety of carbon fiber (CF) laminate transfemoral (TF) prosthetic sockets. While the high specific strength of CF laminate sockets offers advantages over conventional plastics, essential production data-their orientation-dependent strength and optimal cure conditions-are lacking, often requiring complex, costly cure cycles. This study investigated (i) the influence of fiber orientation on TF prosthetic CF socket strength via finite element analysis (FEA) during standing, and (ii) optimal single-step Vacuum-Bag-Only (VBO) cure conditions for prepreg in a low-cost conventional oven.
View Article and Find Full Text PDFPolymers (Basel)
July 2025
The American University in Cairo, New Cairo 11835, Egypt.
The construction industry is exploring alternatives to traditional steel reinforcement in concrete due to steel's corrosion vulnerability. Glass Fiber Reinforced Polymer (GFRP) and Basalt Fiber Reinforced Polymer (BFRP), known for their high tensile strength and corrosion resistance, are viable options. This study evaluates the flexural performance of concrete beams reinforced with GFRP, BFRP, and hybrid systems combining these materials with steel, following ACI 440.
View Article and Find Full Text PDFPhys Rev Lett
July 2025
University of Arizona, Wyant College of Optical Sciences, Tucson, Arizona 85721, USA.
In active imaging protocols, information about an object is encoded into the spatial mode of a scattered photon. Recently the quantum limits of active imaging have been explored with levitated nanoparticles, which experience a multimode radiation pressure backaction (the photon recoil force) due to radiative scattering of the probe field. Here we extend the analysis of multimode backaction to compliant surfaces, accessing a broad class of mechanical resonators and fruitful analogies to quantum imaging.
View Article and Find Full Text PDFPhys Chem Chem Phys
August 2025
Shanghai Advanced Research Institute, Chinese Academy of Sciences, Shanghai 201210, China.
Thermal and electrical conductivities are two fundamental features associated with the stochastic transport process of phonons and electrons in a lattice system. Twisted bilayer graphene has attracted enormous attention in recent years as a material of correlated quantum phases; however, its thermal and electrical transport behavior in response to a strong external impact is still unclear. In this paper, we show that, under strong external out-of-plane thermal excitation, the spreading of thermal and electrical potential energy in a twisted bilayer graphene is insensitive to its twist angle at a considerable wide range until an excitation strength threshold, using a large-scale nonequilibrium molecular dynamics simulation involving thousands of atoms.
View Article and Find Full Text PDFDent Mater
July 2025
Department of Operative Dentistry, Nihon University School of Dentistry, Tokyo, Japan.
Objectives: To determine the shear bond strength (SBS) and shear fatigue bond strength (SFS) of self-adhesive resin luting cements (RLCs) to dentin with or without universal adhesive application in different curing modes.
Methods: Two self-adhesive RLCs (BeautiLink SA and RelyX Universal Resin Cement) were used with or without universal adhesive application. A conventional RLC system (Panavia V5) was used for comparative analysis.