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Behavior of higher-order MDD on energy ratios at the interface of thermoelastic and piezothermoelastic mediums. | LitMetric

Behavior of higher-order MDD on energy ratios at the interface of thermoelastic and piezothermoelastic mediums.

Sci Rep

Department of Quantitative Analysis, College of Business Administration, King Saud University, P.O. Box 71115, 11587, Riyadh, Saudi Arabia.

Published: October 2023

AI Article Synopsis

  • - This paper examines how energy is distributed at the interface of an orthotropic piezothermoelastic half-space, considering advanced heat conduction laws and memory effects on heat transfer.
  • - It analyzes the behavior of reflected and transmitted waves (longitudinal, thermal, and transversal) as they interact with the interface of the thermoelastic half-space.
  • - The study includes graphical illustrations showing how different time-dependent parameters and memory impact energy ratios across various angles of incidence, reflecting the model's effectiveness in depicting complex interactions.

Article Abstract

This paper investigates the intricate energy distribution patterns emerging at an orthotropic piezothermoelastic half-space interface by considering the influence of a higher-order three-phase lags heat conduction law, accompanied by memory-dependent derivatives (referred to as HPS) within the underlying thermoelastic half-space (referred to as TS). This study explores the amplitude and energy ratios of reflected and transmitted waves. These waves span various incident types, including longitudinal, thermal, and transversal, as they propagate through the TS and interact at the interface. Upon encountering the interface, an intriguing dynamic unfolds: three waves experience reflection within the TS medium, while four waves undergo transmission into the HPS medium. A graphical representation effectively illustrates the impact of higher-order time differential parameters and memory to offer comprehensive insights. This visual representation reveals the nuanced fluctuations of energy ratios with the incidence angle. The model astutely captures diverse scenarios, showcasing its ability to interpret complex interface dynamics.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC10567774PMC
http://dx.doi.org/10.1038/s41598-023-44339-5DOI Listing

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