Phononic Materials for Pulse Shaping in Elastic Waveguides Motivated by Shock TestingSource: Journal of Vibration and Acoustics:;2022:;volume( 144 ):;issue: 004::page 41012-1DOI: 10.1115/1.4053778Publisher: The American Society of Mechanical Engineers (ASME)
Abstract: Mechanical shock events experienced by electronic systems can be reproduced in the laboratory using Hopkinson bar tests. In such tests, a projectile strikes a rod, creating a pulse which then travels into the electronic system. The quality of these tests depends on the closeness of the shape of the incident pulse to a desired shape specified for each test. This paper introduces a new approach for controlling the shape of the incident pulse through the use of phononic material concepts, thereby improving the test procedure. Two dispersion-modifying concepts, phononic crystals and local resonators, are examined for their wave-shaping capabilities in one-dimensional elastic waveguides. They are evaluated using a transfer matrix method to determine the output pulse shape in the time domain. Parametric studies show that no single parameter allows for precise-enough control to achieve the possible desired output pulse shapes. Instead, the parameters of an approximate, discrete model for a combined phononic crystal/locally resonant system are optimized together to achieve the desired pulse shape. A sensitivity analysis documents that the pulse shape is relatively insensitive to errors in the optimized parameter values. The optimized discrete model is then translated into a physical design, which when analyzed using the finite element (FE) method shows that desired pulse shapes are indeed produced.
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| contributor author | Johnson | |
| contributor author | William R.;Leamy | |
| contributor author | Michael J.;DeLima | |
| contributor author | Washington;Ruzzene | |
| contributor author | Massimo | |
| date accessioned | 2022-08-18T13:08:17Z | |
| date available | 2022-08-18T13:08:17Z | |
| date copyright | 3/11/2022 12:00:00 AM | |
| date issued | 2022 | |
| identifier issn | 1048-9002 | |
| identifier other | vib_144_4_041012.pdf | |
| identifier uri | http://yetl.yabesh.ir/yetl1/handle/yetl/4287497 | |
| description abstract | Mechanical shock events experienced by electronic systems can be reproduced in the laboratory using Hopkinson bar tests. In such tests, a projectile strikes a rod, creating a pulse which then travels into the electronic system. The quality of these tests depends on the closeness of the shape of the incident pulse to a desired shape specified for each test. This paper introduces a new approach for controlling the shape of the incident pulse through the use of phononic material concepts, thereby improving the test procedure. Two dispersion-modifying concepts, phononic crystals and local resonators, are examined for their wave-shaping capabilities in one-dimensional elastic waveguides. They are evaluated using a transfer matrix method to determine the output pulse shape in the time domain. Parametric studies show that no single parameter allows for precise-enough control to achieve the possible desired output pulse shapes. Instead, the parameters of an approximate, discrete model for a combined phononic crystal/locally resonant system are optimized together to achieve the desired pulse shape. A sensitivity analysis documents that the pulse shape is relatively insensitive to errors in the optimized parameter values. The optimized discrete model is then translated into a physical design, which when analyzed using the finite element (FE) method shows that desired pulse shapes are indeed produced. | |
| publisher | The American Society of Mechanical Engineers (ASME) | |
| title | Phononic Materials for Pulse Shaping in Elastic Waveguides Motivated by Shock Testing | |
| type | Journal Paper | |
| journal volume | 144 | |
| journal issue | 4 | |
| journal title | Journal of Vibration and Acoustics | |
| identifier doi | 10.1115/1.4053778 | |
| journal fristpage | 41012-1 | |
| journal lastpage | 41012-12 | |
| page | 12 | |
| tree | Journal of Vibration and Acoustics:;2022:;volume( 144 ):;issue: 004 | |
| contenttype | Fulltext |