Date of download: 6/23/2016 Copyright © ASME. All rights reserved. From: On the Apparent Propagation Speed in Transmission Line Matrix Uniform Grid Meshes.

Slides:



Advertisements
Similar presentations
Date of download: 5/31/2016 Copyright © 2016 SPIE. All rights reserved. Example of a time-variant filter F(t,ω) designed using Eq. (9) to compensate for.
Advertisements

Date of download: 6/1/2016 Copyright © ASME. All rights reserved. From: The Effect of Tip Leakage Vortex for Operating Range Enhancement of Centrifugal.
Date of download: 6/2/2016 Copyright © ASME. All rights reserved. From: Numerical Investigation of Combustion Instability in a V-Gutter Stabilized Combustor.
Date of download: 6/2/2016 Copyright © ASME. All rights reserved. From: Pressure Distribution in a Simplified Human Ear Model for High Intensity Sound.
Date of download: 6/3/2016 Copyright © ASME. All rights reserved. From: Improving Falling Ball Tests for Viscosity Determination J. Fluids Eng. 2005;128(1):
Date of download: 6/21/2016 Copyright © ASME. All rights reserved. From: A Physics-Based Friction Model and Integration to a Simple Dynamical System J.
Date of download: 6/23/2016 Copyright © ASME. All rights reserved. From: A Methodology to Analyze Changes in Lipid Core and Calcification Onto Fibrous.
Date of download: 6/27/2016 Copyright © ASME. All rights reserved. From: Projected Phase-Plane Switching Curves for Vibration Reduction Filters With Negative.
Date of download: 6/27/2016 Copyright © ASME. All rights reserved. From: Comparative Study in Predicting the Global Solar Radiation for Darwin, Australia.
Date of download: 6/27/2016 Copyright © ASME. All rights reserved. From: Numerical Modeling of Regenerative Cooling System for Large Expansion Ratio Rocket.
Date of download: 7/1/2016 Copyright © ASME. All rights reserved. From: Modeling and Analysis of Piezoelectric Energy Harvesting From Aeroelastic Vibrations.
Date of download: 7/6/2016 Copyright © ASME. All rights reserved. From: The Scattering of Acoustic Wave by a Chain of Elastic Spheres in Liquid J. Vib.
Date of download: 7/8/2016 Copyright © ASME. All rights reserved. From: An Approximate Formula to Calculate the Restoring and Damping Forces of an Air.
Date of download: 9/17/2016 Copyright © ASME. All rights reserved. Analytical Solutions to H 2 and H ∞ Optimizations of Resonant Shunted Electromagnetic.
Date of download: 9/17/2016 Copyright © ASME. All rights reserved. From: Frequency Tuning of a Nonlinear Electromagnetic Energy Harvester J. Vib. Acoust.
Date of download: 9/17/2016 Copyright © ASME. All rights reserved. From: Limitations of Pareto Front in Design Under Uncertainty and Their Reconciliation.
Date of download: 9/18/2016 Copyright © ASME. All rights reserved.
From: Wave Propagation in Sandwich Structures With Multiresonators
Date of download: 9/19/2016 Copyright © ASME. All rights reserved. From: Determining the Power Flow in a Rectangular Plate Using a Generalized Two-Step.
Date of download: 9/19/2016 Copyright © ASME. All rights reserved. From: Transient Forced Response Analysis of Mistuned Steam Turbine Blades During Startup.
Date of download: 9/20/2016 Copyright © ASME. All rights reserved. From: Transmission Loss of Variable Cross Section Apertures J. Vib. Acoust. 2014;136(4):
Date of download: 11/12/2016 Copyright © ASME. All rights reserved. From: Natural Frequencies of Plate Supported Thermowells J. Pressure Vessel Technol.
Date of download: 9/26/2017 Copyright © ASME. All rights reserved.
From: Optimal Shapes of Straight Fins and Finned Heat Sinks
Date of download: 10/1/2017 Copyright © ASME. All rights reserved.
From: Acoustically Coupled Microphone Arrays
From: Hydraulic Loss of Finite Length Dividing Junctions
From: Nonlinear Vibration of Gears With Tooth Surface Modifications
Date of download: 10/10/2017 Copyright © ASME. All rights reserved.
Date of download: 10/10/2017 Copyright © ASME. All rights reserved.
Date of download: 10/10/2017 Copyright © ASME. All rights reserved.
From: Structural and Acoustic Behavior of Chiral Truss-Core Beams
Date of download: 10/13/2017 Copyright © ASME. All rights reserved.
From: Sound-Induced Motion of a Nanoscale Fiber
Date of download: 10/18/2017 Copyright © ASME. All rights reserved.
Date of download: 10/19/2017 Copyright © ASME. All rights reserved.
From: Flow Boiling in an In-Line Set of Short Narrow Gap Channels
From: On Development of a Semimechanistic Wall Boiling Model
From: Gas-Filled Encapsulated Thermal-Acoustic Transducer
From: Gas-Filled Encapsulated Thermal-Acoustic Transducer
Date of download: 10/24/2017 Copyright © ASME. All rights reserved.
Date of download: 10/25/2017 Copyright © ASME. All rights reserved.
Date of download: 10/27/2017 Copyright © ASME. All rights reserved.
Date of download: 10/28/2017 Copyright © ASME. All rights reserved.
Date of download: 10/31/2017 Copyright © ASME. All rights reserved.
Date of download: 11/2/2017 Copyright © ASME. All rights reserved.
From: Hopf Instabilities in Free Piston Stirling Engines
Date of download: 11/3/2017 Copyright © ASME. All rights reserved.
Date of download: 11/4/2017 Copyright © ASME. All rights reserved.
Date of download: 11/4/2017 Copyright © ASME. All rights reserved.
Date of download: 11/5/2017 Copyright © ASME. All rights reserved.
Date of download: 11/5/2017 Copyright © ASME. All rights reserved.
From: Numerical Simulations of Peristaltic Mixing
Date of download: 11/7/2017 Copyright © ASME. All rights reserved.
From: Heat Transfer During Compression and Expansion of Gas
Date of download: 11/15/2017 Copyright © ASME. All rights reserved.
From: Exploitation of Acoustic Effects in Film Cooling
Date of download: 12/22/2017 Copyright © ASME. All rights reserved.
Date of download: 12/23/2017 Copyright © ASME. All rights reserved.
Date of download: 12/24/2017 Copyright © ASME. All rights reserved.
Date of download: 12/24/2017 Copyright © ASME. All rights reserved.
Date of download: 12/26/2017 Copyright © ASME. All rights reserved.
Date of download: 12/26/2017 Copyright © ASME. All rights reserved.
Date of download: 12/26/2017 Copyright © ASME. All rights reserved.
Date of download: 12/27/2017 Copyright © ASME. All rights reserved.
Date of download: 12/30/2017 Copyright © ASME. All rights reserved.
Date of download: 12/31/2017 Copyright © ASME. All rights reserved.
Date of download: 1/2/2018 Copyright © ASME. All rights reserved.
Design of a Wireless Biological Signal Conditioning System1
Date of download: 3/2/2018 Copyright © ASME. All rights reserved.
Presentation transcript:

Date of download: 6/23/2016 Copyright © ASME. All rights reserved. From: On the Apparent Propagation Speed in Transmission Line Matrix Uniform Grid Meshes J. Vib. Acoust. 2014;136(6): doi: / (a) Volume of interest (VOI) selection and (b) attribute setting to TLM nodes through the ModaVox interface Figure Legend:

Date of download: 6/23/2016 Copyright © ASME. All rights reserved. From: On the Apparent Propagation Speed in Transmission Line Matrix Uniform Grid Meshes J. Vib. Acoust. 2014;136(6): doi: / Numerical dispersion in TLM (adapted from Ref. [2]) Figure Legend:

Date of download: 6/23/2016 Copyright © ASME. All rights reserved. From: On the Apparent Propagation Speed in Transmission Line Matrix Uniform Grid Meshes J. Vib. Acoust. 2014;136(6): doi: / TLM meshes for tubes with 12 mm in diameter and 170 mm in length. Numbers from 0 to 3 define the boundary value code at Sec (a) and (b) 2D open and closed tubes (c) and (d) 3D open and closed tubes. Figure Legend:

Date of download: 6/23/2016 Copyright © ASME. All rights reserved. From: On the Apparent Propagation Speed in Transmission Line Matrix Uniform Grid Meshes J. Vib. Acoust. 2014;136(6): doi: / Frequency response functions for the one-section tube models with 12 mm in diameter and 170 mm in length. TLM simulations considering 2D and 3D cases D = 1 and c = m/s at Eq. (2). (a) Open tube and (b) closed tube. Figure Legend:

Date of download: 6/23/2016 Copyright © ASME. All rights reserved. From: On the Apparent Propagation Speed in Transmission Line Matrix Uniform Grid Meshes J. Vib. Acoust. 2014;136(6): doi: / Frequency response functions for the one-section tube models with 12 mm in diameter and 170 mm in length. The analytical resonance values are given according to Eqs. (3) and (4). Simulations considering c = m/s at Eq. (2) with D = and D = for 2D and 3D TLM, respectively. (a) Open tube and (b) closed tube. Figure Legend:

Date of download: 6/23/2016 Copyright © ASME. All rights reserved. From: On the Apparent Propagation Speed in Transmission Line Matrix Uniform Grid Meshes J. Vib. Acoust. 2014;136(6): doi: / Two-tube concatenation for the /a/ vowel. Numbers from 0 to 3 define the boundary value code at Sec (a) 2D model and (b) 3D model. Figure Legend:

Date of download: 6/23/2016 Copyright © ASME. All rights reserved. From: On the Apparent Propagation Speed in Transmission Line Matrix Uniform Grid Meshes J. Vib. Acoust. 2014;136(6): doi: / Frequency response functions for the two-tube model representing the /a/ vowel. The analytical resonance values are the poles of Eq. (5). Simulations considering c = m/s at Eq. (2) with (a) D = 2 and D = for 2D TLM and (b) D = 3 and D = for 3D TLM. Figure Legend:

Date of download: 6/23/2016 Copyright © ASME. All rights reserved. From: On the Apparent Propagation Speed in Transmission Line Matrix Uniform Grid Meshes J. Vib. Acoust. 2014;136(6): doi: / Human VT TLM meshes for the /a/ vowel. Numbers from 0 to 3 define the boundary value code at Sec The indexes of the chosen output nodes are shown (the source node values are also stored in output files). The sagittal plane shows a slice from the MRI sequence. (a) 2D mesh and (b) 3D mesh shown translucent. Figure Legend:

Date of download: 6/23/2016 Copyright © ASME. All rights reserved. From: On the Apparent Propagation Speed in Transmission Line Matrix Uniform Grid Meshes J. Vib. Acoust. 2014;136(6): doi: / D TLM simulation on the /a/ vowel shaped VT meshes considering soft walls, the signal at Eq. (1) as input and c = m/s at Eq. (2) with D = (a) and (b) time-domain output signal, (c) and (d) FFT comparison (human voice versus TLM), (a) and (c) mesh with piriform fossa, (b) and (d) mesh without piriform fossa. Figure Legend:

Date of download: 6/23/2016 Copyright © ASME. All rights reserved. From: On the Apparent Propagation Speed in Transmission Line Matrix Uniform Grid Meshes J. Vib. Acoust. 2014;136(6): doi: / FFT plots (with versus without piriform fossa) for the 3D TLM simulation on the /a/ vowel shaped human VT mesh considering soft walls, the signal at Eq. (1) as input and c = m/s at Eq. (2) with D = (a) 4–6 kHz range and (b) 6–10 kHz range. Figure Legend:

Date of download: 6/23/2016 Copyright © ASME. All rights reserved. From: On the Apparent Propagation Speed in Transmission Line Matrix Uniform Grid Meshes J. Vib. Acoust. 2014;136(6): doi: / D TLM simulation on the /a/ vowel shaped VT mesh considering soft walls, the signal at Eq. (1) as input and c = m/s at Eq. (2) with D = (a) Time-domain output signal and (b) FFT comparison (human voice versus TLM). Figure Legend:

Date of download: 6/23/2016 Copyright © ASME. All rights reserved. From: On the Apparent Propagation Speed in Transmission Line Matrix Uniform Grid Meshes J. Vib. Acoust. 2014;136(6): doi: / (a) Glottal sound after average removal and amplitude enhancement and (b) frequency envelope of the glottal sound (note the harmonic reduction ratio of −4 dB/Oct) Figure Legend:

Date of download: 6/23/2016 Copyright © ASME. All rights reserved. From: On the Apparent Propagation Speed in Transmission Line Matrix Uniform Grid Meshes J. Vib. Acoust. 2014;136(6): doi: / D TLM simulation on the /a/ vowel shaped VT mesh with piriform fossa considering soft walls, the GS as input and c = m/s at Eq. (2) with D = (a) Time-domain output signal, (b) zoom in the segment of (a) from 0.3 to 0.4 s, and (c) FFT comparison (human voice versus TLM). Figure Legend:

Date of download: 6/23/2016 Copyright © ASME. All rights reserved. From: On the Apparent Propagation Speed in Transmission Line Matrix Uniform Grid Meshes J. Vib. Acoust. 2014;136(6): doi: / A filter based on the frequency response of Fig. 12(b) is applied to the TLM simulation output signal of Fig. 13(a). Applying this filter to the GS of Fig. 12(a) and using it as input in a new simulation at the human 3D VT mesh gives the same result. (a) Time-domain signal in the 0 to 0.2 s interval and (b) FFT comparison (human voice versus TLM). Figure Legend: