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: This project stands at the intersection of wave physics and bioacoustics. From a physical perspective, it will advance the design of soft metamaterials capable of absorbing, manipulating, and imaging underwater
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: far-field microscopy (constrained by the diffraction limit) and near-field scanning optical microscopy (NSOM), which circumvents this limitation by detecting evanescent waves within a few nanometers of
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magnetosphere. The incumbent shall analyze particle precipitation from low-altitude spacecraft, in conjunction with particle and wave measurements from near-equatorial spacecraft, and theoretically model electron
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analyze particle precipitation from low-altitude spacecraft, in conjunction with particle and wave measurements from near-equatorial spacecraft, and theoretically model electron precipitation driven by
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systems and their evolvement are largely determined by the large-scale dynamics, the details are highly coupled among hydrometeor microphysics, wave dynamics (turbulence) and large-scale dynamics, and it's
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, including microprocessor-based systems and analog electronics. Strong background in ultrasound and wave propagation with specific familiarity in guided waves. Strong programming skills, including 5+ years
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. Scatterometers measure radar backscatter induced from Bragg scattering off gravity-capillary waves, generated by wind forcing. For speeds below 5 m/s, winds generate waves by breaking the surface tension
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, or hyperuniformly. Therefore, the reflection phase of the resonators will be first studied to consider this type of application. Furthermore, the reflection magnitude will be also investigated to achieve wave
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defects and reinforcement integrity. In addition, the high dispersion of waves, the multimodal nature of signals, the influence of steel–grout–rock coupling, the geometric variability of the reinforcing
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