Javascript must be enabled to continue!
Effect of skull porosity on ultrasound transmission and wave mode conversion at large incidence angles
View through CrossRef
AbstractBackgroundTranscranial ultrasound imaging and therapy depend on the efficient transmission of acoustic energy through the skull. Multiple previous studies have concluded that a large incidence angle should be avoided during transcranial‐focused ultrasound therapy to ensure transmission through the skull. Alternatively, some other studies have shown that longitudinal‐to‐shear wave mode conversion might improve transmission through the skull when the incidence angle is increased above the critical angle (i.e., 25° to 30°).PurposeThe effect of skull porosity on the transmission of ultrasound through the skull at varying incidence angles was investigated for the first time to elucidate why transmission through the skull at large angles of incidence is decreased in some cases but improved in other cases.MethodsTranscranial ultrasound transmission at varying incidence angles (0°–50°) was investigated in phantoms and ex vivo skull samples with varying bone porosity (0% to 28.54% ± 3.36%) using both numerical and experimental methods. First, the elastic acoustic wave transmission through the skull was simulated using micro‐computed tomography data of ex vivo skull samples. The trans‐skull pressure was compared between skull segments having three levels of porosity, that is, low porosity (2.65% ± 0.03%), medium porosity (13.41% ± 0.12%), and high porosity (26.9%). Next, transmission through two 3D‐printed resin skull phantoms (compact vs. porous phantoms) was experimentally measured to test the effect of porous microstructure alone on ultrasound transmission through flat plates. Finally, the effect of skull porosity on ultrasound transmission was investigated experimentally by comparing transmission through two ex vivo human skull segments having similar thicknesses but different porosities (13.78% ± 2.05% vs. 28.54% ± 3.36%).ResultsNumerical simulations indicated that an increase in transmission pressure occurs at large incidence angles for skull segments having low porosities but not for those with high porosity. In experimental studies, a similar phenomenon was observed. Specifically, for the low porosity skull sample (13.78% ± 2.05%), the normalized pressure was 0.25 when the incidence angle increased to 35°. However, for the high porosity sample (28.54% ± 3.36%), the pressure was no more than 0.1 at large incidence angles.ConclusionsThese results indicate that the skull porosity has an evident effect on the transmission of ultrasound at large incidence angles. The wave mode conversion at large, oblique incidence angles could enhance the transmission of ultrasound through parts of the skull having lower porosity in the trabecular layer. However, for transcranial ultrasound therapy in the presence of highly porous trabecular bone, transmission at a normal incidence angle is preferable relative to oblique incidence angles due to the higher transmission efficiency.
Title: Effect of skull porosity on ultrasound transmission and wave mode conversion at large incidence angles
Description:
AbstractBackgroundTranscranial ultrasound imaging and therapy depend on the efficient transmission of acoustic energy through the skull.
Multiple previous studies have concluded that a large incidence angle should be avoided during transcranial‐focused ultrasound therapy to ensure transmission through the skull.
Alternatively, some other studies have shown that longitudinal‐to‐shear wave mode conversion might improve transmission through the skull when the incidence angle is increased above the critical angle (i.
e.
, 25° to 30°).
PurposeThe effect of skull porosity on the transmission of ultrasound through the skull at varying incidence angles was investigated for the first time to elucidate why transmission through the skull at large angles of incidence is decreased in some cases but improved in other cases.
MethodsTranscranial ultrasound transmission at varying incidence angles (0°–50°) was investigated in phantoms and ex vivo skull samples with varying bone porosity (0% to 28.
54% ± 3.
36%) using both numerical and experimental methods.
First, the elastic acoustic wave transmission through the skull was simulated using micro‐computed tomography data of ex vivo skull samples.
The trans‐skull pressure was compared between skull segments having three levels of porosity, that is, low porosity (2.
65% ± 0.
03%), medium porosity (13.
41% ± 0.
12%), and high porosity (26.
9%).
Next, transmission through two 3D‐printed resin skull phantoms (compact vs.
porous phantoms) was experimentally measured to test the effect of porous microstructure alone on ultrasound transmission through flat plates.
Finally, the effect of skull porosity on ultrasound transmission was investigated experimentally by comparing transmission through two ex vivo human skull segments having similar thicknesses but different porosities (13.
78% ± 2.
05% vs.
28.
54% ± 3.
36%).
ResultsNumerical simulations indicated that an increase in transmission pressure occurs at large incidence angles for skull segments having low porosities but not for those with high porosity.
In experimental studies, a similar phenomenon was observed.
Specifically, for the low porosity skull sample (13.
78% ± 2.
05%), the normalized pressure was 0.
25 when the incidence angle increased to 35°.
However, for the high porosity sample (28.
54% ± 3.
36%), the pressure was no more than 0.
1 at large incidence angles.
ConclusionsThese results indicate that the skull porosity has an evident effect on the transmission of ultrasound at large incidence angles.
The wave mode conversion at large, oblique incidence angles could enhance the transmission of ultrasound through parts of the skull having lower porosity in the trabecular layer.
However, for transcranial ultrasound therapy in the presence of highly porous trabecular bone, transmission at a normal incidence angle is preferable relative to oblique incidence angles due to the higher transmission efficiency.
Related Results
Porosity Signature of Lunar Impact Basins
Porosity Signature of Lunar Impact Basins
The upper portion of the lunar highland crust is known to show a wide range of porosities between 3 and 23% (Wieczorek et al., 2013). Impact cratering seems to be the prim...
A New Method of Porosity Determination by D-T Neutron Generator and Dual CLYC Detector
A New Method of Porosity Determination by D-T Neutron Generator and Dual CLYC Detector
Porosity is one of the essential parameters in conventional oil and gas reservoir evaluation, as well as plays an important role in the calculation of formation saturation and rese...
Novel Approach for Porosity Quantification in Carbonates Using Borehole Images
Novel Approach for Porosity Quantification in Carbonates Using Borehole Images
Abstract
Porosity quantification in carbonates rocks represents one of the main challenges in assessing potential carbonate reservoirs. Conventional well logs have l...
Abnormalities Detection in Apert Syndrome using Hierarchical Clustering Algorithms
Abnormalities Detection in Apert Syndrome using Hierarchical Clustering Algorithms
Craniosynostosis syndrome is a congenital condition occurring due to the abnormal development of the skull, leading to abnormalities in skull morphology. Apert syndrome is one of c...
A thermo-hydro-mechanical analysis of pore pressure development due to mineral deposition in geothermal systems and subduction zones
A thermo-hydro-mechanical analysis of pore pressure development due to mineral deposition in geothermal systems and subduction zones
One fundamental aspect of geothermal reservoir management involves the study of mineral deposition and its controlling factors. Silica, in its various forms, is one of the most stu...
Energy Conversion Efficiency of Wave Gliders
Energy Conversion Efficiency of Wave Gliders
Wave gliders are a new type of ocean observation platform that can gain forward power by receiving and converting wave energy. The ability of wave gliders to turn waves determines ...
A Method for Determining the Porosity of Pulsed Neutron by Combining Gamma Energy and Time Spectrum
A Method for Determining the Porosity of Pulsed Neutron by Combining Gamma Energy and Time Spectrum
Pulsed-neutron gamma energy spectroscopy and neutron lifetime measurement systems enable the evaluation of the elemental content, saturation. And recent studies have demonstrated t...

