TY - GEN
T1 - 3D simulation of electric and thermal field due to short electrical pulses in hemorrhage control
AU - Adawi, Eid
AU - Mandel, Yossi
AU - Barnea, Ofer
PY - 2012
Y1 - 2012
N2 - Uncontrolled hemorrhage causing hypovolemic shock is a leading cause of preventable death. Truncal hemorrhage originating from solid organs is considered as non-compressible. Controlling such hemorrhage may be challenging in the pre-hospital setting. The treatment should avoid thermal damages caused by heating and high electric field. Therefore, non-thermal based technology causing hemorrhage control is still needed. This study investigates the thermal effects of short high-voltage electric pulses for hemorrhage control. Three dimensional models were developed to compute the electrical and thermal fields in tissue. Computer simulation was used to determine the appropriate electrode configuration and the treatment protocol. We determined the minimal, maximal and mean electrical field in different depths of the target tissue for the given electrode configurations. Desirable field distributions can be obtained by changing the geometric and pulse parameters. By choosing the appropriate treatment protocol, suitable electrode configuration and adequte pulse amplitude, the proposed method can be applied without thermal damage while minimizing electrical damage.
AB - Uncontrolled hemorrhage causing hypovolemic shock is a leading cause of preventable death. Truncal hemorrhage originating from solid organs is considered as non-compressible. Controlling such hemorrhage may be challenging in the pre-hospital setting. The treatment should avoid thermal damages caused by heating and high electric field. Therefore, non-thermal based technology causing hemorrhage control is still needed. This study investigates the thermal effects of short high-voltage electric pulses for hemorrhage control. Three dimensional models were developed to compute the electrical and thermal fields in tissue. Computer simulation was used to determine the appropriate electrode configuration and the treatment protocol. We determined the minimal, maximal and mean electrical field in different depths of the target tissue for the given electrode configurations. Desirable field distributions can be obtained by changing the geometric and pulse parameters. By choosing the appropriate treatment protocol, suitable electrode configuration and adequte pulse amplitude, the proposed method can be applied without thermal damage while minimizing electrical damage.
UR - http://www.scopus.com/inward/record.url?scp=84871968711&partnerID=8YFLogxK
U2 - 10.1109/eeei.2012.6377043
DO - 10.1109/eeei.2012.6377043
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AN - SCOPUS:84871968711
SN - 9781467346801
T3 - 2012 IEEE 27th Convention of Electrical and Electronics Engineers in Israel, IEEEI 2012
BT - 2012 IEEE 27th Convention of Electrical and Electronics Engineers in Israel, IEEEI 2012
T2 - 2012 IEEE 27th Convention of Electrical and Electronics Engineers in Israel, IEEEI 2012
Y2 - 14 November 2012 through 17 November 2012
ER -