An artificial urinary sphincter based on dielectric elastomer technology

被引:2
作者
De Menech, Quentin [1 ]
Zammouri, Sloan [1 ]
Konstantinidi, Stefania [1 ]
Benouhiba, Amine [1 ]
Civet, Yoan [1 ]
Perriard, Yves [1 ]
机构
[1] Ecole Polytech Fed Lausanne EPFL, Integrated Actuators Lab LAI, Neuchatel, Switzerland
来源
ELECTROACTIVE POLYMER ACTUATORS AND DEVICES, EAPAD XXVI | 2024年 / 12945卷
关键词
Dielectric elastomer actuator; artificial muscles; urinary incontinence; artificial urinary sphincter; FEM;
D O I
10.1117/12.3004813
中图分类号
TM [电工技术]; TN [电子技术、通信技术];
学科分类号
0808 ; 0809 ;
摘要
Urinary incontinence (UI) is prevalent and distressing medical condition affecting millions of patients worldwide. Current treatment options for severe cases often involve surgical intervention, such as the implantation of an artificial urinary sphincter (AUS). However, existing AUS devices have limitations, including mechanical complexity, a risk of complications and have been mainly developed for male patients. In this context, dielectric elastomers actuators (DEAs) often referred as artificial muscles are a promising alternative. This study explores the potential of DEAs as a more efficient and less invasive AUS. Thanks to simulations performed on human urethra and tubular DEA, we designed a tubular DEA with an active thickness of 250 mu m a length of 40 mm and an internal radius of 2.5 mm. We demonstrated the capability of this DEA to close the urethra with an internal pressure applied from the bladder varying from 0 to 10 000 Pa. We also demonstrated the capability of opening the urethra with a diameter of 0.58 mm at 10 000 Pa. Those results are promising and prove the potential of using DEAs as an Artificial Urinary Sphincter.
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页数:6
相关论文
共 11 条
[1]   Artificial urinary sphincters for male stress urinary incontinence: current perspectives [J].
Cordon, Billy H. ;
Singla, Nirmish ;
Singla, Ajay K. .
MEDICAL DEVICES-EVIDENCE AND RESEARCH, 2016, 9 :175-183
[2]   Mechanical, compositional and morphological characterisation of the human male urethra for the development of a biomimetic tissue engineered urethral scaffold [J].
Cunnane, Eoghan M. ;
Davis, Niall F. ;
Cunnane, Connor, V ;
Lorentz, Katherine L. ;
Ryan, Alan J. ;
Hess, Jochen ;
Weinbaum, Justin S. ;
Walsh, Michael T. ;
O'Brien, Fergal J. ;
Vorp, David A. .
BIOMATERIALS, 2021, 269
[3]  
De Menech Quentin, 2023, 2023 Seventh International Conference on Advances in Biomedical Engineering (ICABME), P35, DOI 10.1109/ICABME59496.2023.10293025
[4]  
Demaagd George A, 2012, P T, V37, P345
[5]  
Griffiths D.J., 1980, Urodynamics : the mechanics and hydrodynamics of the lower urinary tract
[6]  
Hall C.D., 1996, Medical Update for Psychiatrists, V1, P71, DOI 10.1016/S1082-7579(96)80030-6
[7]   Indenter Study: Associations Between Prostate Elasticity and Lower Urinary Tract Symptoms [J].
Kim, Kwang Hyun ;
Ahn, Bummo ;
Lim, Sey Kiat ;
Han, Woong Kyu ;
Kim, Jang Hwan ;
Rha, Koon Ho ;
Kim, Jung .
UROLOGY, 2014, 83 (03) :544-548
[8]  
Lim KB, 2017, ASIAN J UROL, V4, P148, DOI 10.1016/j.ajur.2017.06.004
[9]   Experimental investigation of the biomechanics of urethral tissues and structures [J].
Natali, Arturo Nicola ;
Carniel, Emanuele Luigi ;
Frigo, Alessandro ;
Pavan, Piero Giovanni ;
Todros, Silvia ;
Pachera, Paola ;
Fontanella, Chiara Giulia ;
Rubini, Alessandro ;
Cavicchioli, Laura ;
Avital, Yochai ;
De Benedictis, Giulia Maria .
EXPERIMENTAL PHYSIOLOGY, 2016, 101 (05) :641-656
[10]  
Ratan H L., 2006, EAU-EBU Update Series, V4, P117, DOI [10.1016/j.eeus.2006.03.001, DOI 10.1016/J.EEUS.2006.03.001]