Simultaneously Reducing Cutting Force and Tissue Damage in Needle Insertion With Rotation

Rotational needle insertion is commonly used in needle biopsy to improve cutting performance. The application of rotational motion for needle insertion has been shown to efficiently reduce the cutting force. However, studies have found that needle rotation can increase tissue damage due to the tissu...

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Published inIEEE transactions on biomedical engineering Vol. 67; no. 11; pp. 3195 - 3202
Main Authors Lin, Chi-Lun, Huang, Yu-An
Format Journal Article
LanguageEnglish
Published United States IEEE 01.11.2020
The Institute of Electrical and Electronics Engineers, Inc. (IEEE)
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Abstract Rotational needle insertion is commonly used in needle biopsy to improve cutting performance. The application of rotational motion for needle insertion has been shown to efficiently reduce the cutting force. However, studies have found that needle rotation can increase tissue damage due to the tissue winding effect. The bidirectional rotation of a needle during insertion can be a solution to avoid tissue winding while maintaining a low cutting force. In this study, needle insertion with bidirectional rotation was investigated by conducting mechanical and optical experiments. First, needle insertion tests were performed on gelatin-based tissue phantom samples to understand the effect of bidirectional needle rotation on the cutting force. Subsequently, the effective strain, which is an indicator of tissue damage, was observed at the cross-sections of samples in the axial and radial directions of the needle by using the digital image correlation (DIC) technology. The primary findings of this study are as follows: (1) higher needle insertion speeds result in higher cutting forces and effective strains that occur at the axial cross-section, (2) increase in the needle rotation reduces the cutting force and effective strain at the axial cross-section but increases the effective strain at the radial cross-section, (3) application of bidirectional rotation decreases the mean effective strain at the radial cross-section by 10%-25% while maintaining a low cutting force. In clinical applications, bidirectional rotation can be a useful strategy to simultaneously reduce the cutting force and tissue damage, which leads to better cutting performance and lower risks of bleeding and hematoma.
AbstractList Rotational needle insertion is commonly used in needle biopsy to improve cutting performance. The application of rotational motion for needle insertion has been shown to efficiently reduce the cutting force. However, studies have found that needle rotation can increase tissue damage due to the tissue winding effect. The bidirectional rotation of a needle during insertion can be a solution to avoid tissue winding while maintaining a low cutting force. In this study, needle insertion with bidirectional rotation was investigated by conducting mechanical and optical experiments. First, needle insertion tests were performed on gelatin-based tissue phantom samples to understand the effect of bidirectional needle rotation on the cutting force. Subsequently, the effective strain, which is an indicator of tissue damage, was observed at the cross-sections of samples in the axial and radial directions of the needle by using the digital image correlation (DIC) technology. The primary findings of this study are as follows: (1) higher needle insertion speeds result in higher cutting forces and effective strains that occur at the axial cross-section, (2) increase in the needle rotation reduces the cutting force and effective strain at the axial cross-section but increases the effective strain at the radial cross-section, (3) application of bidirectional rotation decreases the mean effective strain at the radial cross-section by 10%-25% while maintaining a low cutting force. In clinical applications, bidirectional rotation can be a useful strategy to simultaneously reduce the cutting force and tissue damage, which leads to better cutting performance and lower risks of bleeding and hematoma.
Rotational needle insertion is commonly used in needle biopsy to improve cutting performance. The application of rotational motion for needle insertion has been shown to efficiently reduce the cutting force. However, studies have found that needle rotation can increase tissue damage due to the tissue winding effect. The bidirectional rotation of a needle during insertion can be a solution to avoid tissue winding while maintaining a low cutting force. In this study, needle insertion with bidirectional rotation was investigated by conducting mechanical and optical experiments. First, needle insertion tests were performed on gelatin-based tissue phantom samples to understand the effect of bidirectional needle rotation on the cutting force. Subsequently, the effective strain, which is an indicator of tissue damage, was observed at the cross-sections of samples in the axial and radial directions of the needle by using the digital image correlation (DIC) technology. The primary findings of this study are as follows: (1) higher needle insertion speeds result in higher cutting forces and effective strains that occur at the axial cross-section, (2) increase in the needle rotation reduces the cutting force and effective strain at the axial cross-section but increases the effective strain at the radial cross-section, (3) application of bidirectional rotation decreases the mean effective strain at the radial cross-section by 10%-25% while maintaining a low cutting force. In clinical applications, bidirectional rotation can be a useful strategy to simultaneously reduce the cutting force and tissue damage, which leads to better cutting performance and lower risks of bleeding and hematoma.Rotational needle insertion is commonly used in needle biopsy to improve cutting performance. The application of rotational motion for needle insertion has been shown to efficiently reduce the cutting force. However, studies have found that needle rotation can increase tissue damage due to the tissue winding effect. The bidirectional rotation of a needle during insertion can be a solution to avoid tissue winding while maintaining a low cutting force. In this study, needle insertion with bidirectional rotation was investigated by conducting mechanical and optical experiments. First, needle insertion tests were performed on gelatin-based tissue phantom samples to understand the effect of bidirectional needle rotation on the cutting force. Subsequently, the effective strain, which is an indicator of tissue damage, was observed at the cross-sections of samples in the axial and radial directions of the needle by using the digital image correlation (DIC) technology. The primary findings of this study are as follows: (1) higher needle insertion speeds result in higher cutting forces and effective strains that occur at the axial cross-section, (2) increase in the needle rotation reduces the cutting force and effective strain at the axial cross-section but increases the effective strain at the radial cross-section, (3) application of bidirectional rotation decreases the mean effective strain at the radial cross-section by 10%-25% while maintaining a low cutting force. In clinical applications, bidirectional rotation can be a useful strategy to simultaneously reduce the cutting force and tissue damage, which leads to better cutting performance and lower risks of bleeding and hematoma.
Author Huang, Yu-An
Lin, Chi-Lun
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Cites_doi 10.1016/S1350-4533(97)00017-9
10.1186/1756-0500-3-70
10.1016/j.promfg.2015.09.078
10.1016/j.medengphy.2013.05.001
10.1016/j.jmbbm.2013.10.016
10.1016/S1090-3801(99)90187-8
10.1007/s11340-015-0009-1
10.4271/2007-22-0005
10.1023/B:JMSC.0000021451.17182.86
10.1109/EMBC.2016.7591879
10.1016/j.ejrad.2012.01.033
10.1016/j.crad.2010.01.008
10.1080/10255842.2011.628448
10.1152/jappl.2001.91.6.2471
10.1007/s10439-015-1329-0
10.1118/1.3665253
10.1080/02841850701784552
10.1088/0031-9155/52/19/021
10.1088/1741-2560/3/3/002
10.1016/j.jmbbm.2011.10.007
10.1109/TRA.2003.817044
10.1080/10255842.2018.1535060
10.1109/LRA.2017.2670145
10.1118/1.1871372
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References ref12
ref15
ref14
ref11
ref10
ref2
ref1
ref17
ref16
ref19
ref18
ref24
ref23
ref26
ref25
ref20
ref22
ref21
ref7
hochman (ref13) 2000; 31
ref9
ref4
ref3
ref6
zagouri (ref8) 2011; 25
ref5
References_xml – ident: ref18
  doi: 10.1016/S1350-4533(97)00017-9
– ident: ref11
  doi: 10.1186/1756-0500-3-70
– ident: ref17
  doi: 10.1016/j.promfg.2015.09.078
– ident: ref5
  doi: 10.1016/j.medengphy.2013.05.001
– ident: ref22
  doi: 10.1016/j.jmbbm.2013.10.016
– volume: 31
  start-page: 33
  year: 2000
  ident: ref13
  article-title: In vitro study of needle deflection: A linear insertion technique versus a bidirectional rotation insertion technique
  publication-title: Quintessence Int
– ident: ref4
  doi: 10.1016/S1090-3801(99)90187-8
– ident: ref23
  doi: 10.1007/s11340-015-0009-1
– ident: ref20
  doi: 10.4271/2007-22-0005
– ident: ref2
  doi: 10.1023/B:JMSC.0000021451.17182.86
– ident: ref7
  doi: 10.1109/EMBC.2016.7591879
– ident: ref10
  doi: 10.1016/j.ejrad.2012.01.033
– ident: ref1
  doi: 10.1016/j.crad.2010.01.008
– ident: ref25
  doi: 10.1080/10255842.2011.628448
– ident: ref14
  doi: 10.1152/jappl.2001.91.6.2471
– ident: ref19
  doi: 10.1007/s10439-015-1329-0
– ident: ref3
  doi: 10.1118/1.3665253
– ident: ref9
  doi: 10.1080/02841850701784552
– ident: ref6
  doi: 10.1088/0031-9155/52/19/021
– ident: ref21
  doi: 10.1088/1741-2560/3/3/002
– ident: ref15
  doi: 10.1016/j.jmbbm.2011.10.007
– ident: ref24
  doi: 10.1109/TRA.2003.817044
– ident: ref26
  doi: 10.1080/10255842.2018.1535060
– ident: ref12
  doi: 10.1109/LRA.2017.2670145
– ident: ref16
  doi: 10.1118/1.1871372
– volume: 25
  start-page: 703
  year: 2011
  ident: ref8
  article-title: Vacuum-assisted breast biopsy: More cores, more hematomas?
  publication-title: In Vivo
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Snippet Rotational needle insertion is commonly used in needle biopsy to improve cutting performance. The application of rotational motion for needle insertion has...
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SubjectTerms Biopsy
Bleeding
Cross-sections
Cutting force
Damage
digital image correlation
Digital imaging
effective strain
Force
Gelatin
Hematoma
Insertion
Needle insertion
Needles
Phantoms
Rotation
Strain
Tissue damage
Tissues
Winding
Windings
Title Simultaneously Reducing Cutting Force and Tissue Damage in Needle Insertion With Rotation
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