Visible Human Project® female surface based computational phantom (Nelly) for radio-frequency safety evaluation in MRI coils
Quantitative modeling of specific absorption rate and temperature rise within the human body during 1.5 T and 3 T MRI scans is of clinical significance to ensure patient safety. This work presents justification, via validation and comparison, of the potential use of the Visible Human Project (VHP) d...
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Published in | PloS one Vol. 16; no. 12; p. e0260922 |
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Main Authors | , , , , |
Format | Journal Article |
Language | English |
Published |
United States
Public Library of Science
10.12.2021
Public Library of Science (PLoS) |
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ISSN | 1932-6203 1932-6203 |
DOI | 10.1371/journal.pone.0260922 |
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Abstract | Quantitative modeling of specific absorption rate and temperature rise within the human body during 1.5 T and 3 T MRI scans is of clinical significance to ensure patient safety. This work presents justification, via validation and comparison, of the potential use of the Visible Human Project (VHP) derived Computer Aided Design (CAD) female full body computational human model for non-clinical assessment of female patients of age 50–65 years with a BMI of 30–36 during 1.5 T and 3 T based MRI procedures. The initial segmentation validation and four different application examples have been identified and used to compare to numerical simulation results obtained using VHP Female computational human model under the same or similar conditions. The first application example provides a simulation-to-simulation validation while the latter three application examples compare with measured experimental data. Given the same or similar coil settings, the computational human model generates meaningful results for SAR, B1 field, and temperature rise when used in conjunction with the 1.5 T birdcage MRI coils or at higher frequencies corresponding to 3 T MRI. Notably, the deviation in temperature rise from experiment did not exceed 2.75° C for three different heating scenarios considered in the study with relative deviations of 10%, 25%, and 20%. This study provides a reasonably systematic validation and comparison of the VHP-Female CAD v.3.0–5.0 surface-based computational human model starting with the segmentation validation and following four different application examples. |
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AbstractList | Quantitative modeling of specific absorption rate and temperature rise within the human body during 1.5 T and 3 T MRI scans is of clinical significance to ensure patient safety. This work presents justification, via validation and comparison, of the potential use of the Visible Human Project (VHP) derived Computer Aided Design (CAD) female full body computational human model for non-clinical assessment of female patients of age 50-65 years with a BMI of 30-36 during 1.5 T and 3 T based MRI procedures. The initial segmentation validation and four different application examples have been identified and used to compare to numerical simulation results obtained using VHP Female computational human model under the same or similar conditions. The first application example provides a simulation-to-simulation validation while the latter three application examples compare with measured experimental data. Given the same or similar coil settings, the computational human model generates meaningful results for SAR, B1 field, and temperature rise when used in conjunction with the 1.5 T birdcage MRI coils or at higher frequencies corresponding to 3 T MRI. Notably, the deviation in temperature rise from experiment did not exceed 2.75° C for three different heating scenarios considered in the study with relative deviations of 10%, 25%, and 20%. This study provides a reasonably systematic validation and comparison of the VHP-Female CAD v.3.0-5.0 surface-based computational human model starting with the segmentation validation and following four different application examples. Quantitative modeling of specific absorption rate and temperature rise within the human body during 1.5 T and 3 T MRI scans is of clinical significance to ensure patient safety. This work presents justification, via validation and comparison, of the potential use of the Visible Human Project (VHP) derived Computer Aided Design (CAD) female full body computational human model for non-clinical assessment of female patients of age 50-65 years with a BMI of 30-36 during 1.5 T and 3 T based MRI procedures. The initial segmentation validation and four different application examples have been identified and used to compare to numerical simulation results obtained using VHP Female computational human model under the same or similar conditions. The first application example provides a simulation-to-simulation validation while the latter three application examples compare with measured experimental data. Given the same or similar coil settings, the computational human model generates meaningful results for SAR, B1 field, and temperature rise when used in conjunction with the 1.5 T birdcage MRI coils or at higher frequencies corresponding to 3 T MRI. Notably, the deviation in temperature rise from experiment did not exceed 2.75° C for three different heating scenarios considered in the study with relative deviations of 10%, 25%, and 20%. This study provides a reasonably systematic validation and comparison of the VHP-Female CAD v.3.0-5.0 surface-based computational human model starting with the segmentation validation and following four different application examples.Quantitative modeling of specific absorption rate and temperature rise within the human body during 1.5 T and 3 T MRI scans is of clinical significance to ensure patient safety. This work presents justification, via validation and comparison, of the potential use of the Visible Human Project (VHP) derived Computer Aided Design (CAD) female full body computational human model for non-clinical assessment of female patients of age 50-65 years with a BMI of 30-36 during 1.5 T and 3 T based MRI procedures. The initial segmentation validation and four different application examples have been identified and used to compare to numerical simulation results obtained using VHP Female computational human model under the same or similar conditions. The first application example provides a simulation-to-simulation validation while the latter three application examples compare with measured experimental data. Given the same or similar coil settings, the computational human model generates meaningful results for SAR, B1 field, and temperature rise when used in conjunction with the 1.5 T birdcage MRI coils or at higher frequencies corresponding to 3 T MRI. Notably, the deviation in temperature rise from experiment did not exceed 2.75° C for three different heating scenarios considered in the study with relative deviations of 10%, 25%, and 20%. This study provides a reasonably systematic validation and comparison of the VHP-Female CAD v.3.0-5.0 surface-based computational human model starting with the segmentation validation and following four different application examples. |
Author | Makarov, Sergey N. Fujimoto, Kyoko Noetscher, Gregory M. Wartman, William A. Serano, Peter |
AuthorAffiliation | 3 Ansys, Inc., Canonsburg, Pennsylvania, United States of America 5 Center for Devices and Radiological Health, US Food and Drug Administration, Silver Spring, Maryland, United States of America 1 Department of Electrical and Computer Engineering, Worcester Polytechnic Institute, Worcester, Massachusetts, United States of America 4 Athinoula A. Martinos Center for Biomedical Imaging, Massachusetts General Hospital, Charlestown, Massachusetts, United States of America Information Technology University, PAKISTAN 2 NEVA Electromagnetics, LLC, Yarmouth Port, Massachusetts, United States of America |
AuthorAffiliation_xml | – name: 1 Department of Electrical and Computer Engineering, Worcester Polytechnic Institute, Worcester, Massachusetts, United States of America – name: 2 NEVA Electromagnetics, LLC, Yarmouth Port, Massachusetts, United States of America – name: 5 Center for Devices and Radiological Health, US Food and Drug Administration, Silver Spring, Maryland, United States of America – name: 4 Athinoula A. Martinos Center for Biomedical Imaging, Massachusetts General Hospital, Charlestown, Massachusetts, United States of America – name: Information Technology University, PAKISTAN – name: 3 Ansys, Inc., Canonsburg, Pennsylvania, United States of America |
Author_xml | – sequence: 1 givenname: Gregory M. orcidid: 0000-0001-9786-7206 surname: Noetscher fullname: Noetscher, Gregory M. – sequence: 2 givenname: Peter surname: Serano fullname: Serano, Peter – sequence: 3 givenname: William A. surname: Wartman fullname: Wartman, William A. – sequence: 4 givenname: Kyoko surname: Fujimoto fullname: Fujimoto, Kyoko – sequence: 5 givenname: Sergey N. surname: Makarov fullname: Makarov, Sergey N. |
BackLink | https://www.ncbi.nlm.nih.gov/pubmed/34890429$$D View this record in MEDLINE/PubMed |
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SubjectTerms | Aged Biology and Life Sciences Body temperature CAD Computer aided design Computer applications Computer engineering Deviation Electric fields Engineering and Technology Female Gastroenterology Heat Humans Image processing Image segmentation Labeling Magnetic fields Magnetic Resonance Imaging Mathematical models Medicine and Health Sciences Middle Aged Modelling Numerical simulations Occupational safety Patients Phantoms, Imaging Physical Sciences Radio Waves Radiographic Image Interpretation, Computer-Assisted - methods Research and Analysis Methods Safety Simulation Temperature rise Visible Human Projects |
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Title | Visible Human Project® female surface based computational phantom (Nelly) for radio-frequency safety evaluation in MRI coils |
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