Energy barriers govern catheter herniation during endovascular procedures: a 2.5D vascular flow model analysis is a research paper published in Journal of The Royal Society Interface (2024). On theSindex it has a DataRank of 0. It has been cited 2 times.
Scored on demand from live citation data
Linked data & code
DataRank reads this dataset's downstream impact straight off the citation graph — no black box, no proprietary weighting. How is this computed?
FAIR checklist signals are shown for context only and do not affect DataRank scoring.
We only score data papers we can read in full — never from an abstract alone.
NHLBI NIH HHS
Grant: R42 HL150963
NHLBI NIH HHS
Grant: R41 HL150963
NIH HHS
Directorate for Biological Sciences
Jeffrey Fort Cerebrovascular Innovation Fund
National Institutes of Health
Jeffrey Fort Cerebrovascular Innovation Fund
NIH HHS
Directorate for Biological Sciences
FWCI
0.84
Citation Percentile
0.7%
Citation Trend
Fields of Study
MeSH Terms
Keywords
Sustainable Development Goals
Supplementary Material from Energy barriers govern catheter herniation during endovascular procedures: a 2.5D vascular flow model analysis
Supplementary Material from Energy barriers govern catheter herniation during endovascular procedures: a 2.5D vascular flow model analysis
Supplementary Material from Energy barriers govern catheter herniation during endovascular procedures: a 2.5D vascular flow model analysis
Supplementary Material from Energy barriers govern catheter herniation during endovascular procedures: a 2.5D vascular flow model analysis
Supplementary Material from Energy barriers govern catheter herniation during endovascular procedures: a 2.5D vascular flow model analysis
Supplementary Material from Energy barriers govern catheter herniation during endovascular procedures: a 2.5D vascular flow model analysis
Supplementary Material from Energy barriers govern catheter herniation during endovascular procedures: a 2.5D vascular flow model analysis
Supplementary Material from Energy barriers govern catheter herniation during endovascular procedures: a 2.5D vascular flow model analysis
Supplementary Material from Energy barriers govern catheter herniation during endovascular procedures: a 2.5D vascular flow model analysis
Supplementary Material from Energy barriers govern catheter herniation during endovascular procedures: a 2.5D vascular flow model analysis
Supplementary Material from Energy barriers govern catheter herniation during endovascular procedures: a 2.5D vascular flow model analysis
Supplementary Material from Energy barriers govern catheter herniation during endovascular procedures: a 2.5D vascular flow model analysis
Supplementary Material from Energy barriers govern catheter herniation during endovascular procedures: a 2.5D vascular flow model analysis
Supplementary Material from Energy barriers govern catheter herniation during endovascular procedures: a 2.5D vascular flow model analysis