TY - JOUR
T1 - Thermoelectric and stress fields for a cracked thermoelectric media based on the electric field saturation model
AU - Liu, Y.
AU - Wang, B. L.
AU - Li, J. E.
AU - Wang, K. F.
PY - 2020
Y1 - 2020
N2 - This paper considers a crack that is vertical to the applied electric flux and energy flux loads in thermoelectric materials. The paper proposes the idea of electrical nonlinearity at the crack tip and develops a strip saturation model with electric field reaching a saturation limit in front of the crack. The energy flux intensity factor, thermal flux intensity factor and stress intensity factor are obtained. They are found to depend on the applied electric flux and applied energy flux loads. However, when electrical nonlinearity at the crack tip is not considered, they are only dependent on applied energy flux load. It is interesting to see that these intensity factors at electrically yielded crack tip are independent of the strength and size of electrical saturation. The result of the thermal stress intensity factor of this paper is very general and easy to use in the strength evaluation of thermoelectric materials and their devices.
AB - This paper considers a crack that is vertical to the applied electric flux and energy flux loads in thermoelectric materials. The paper proposes the idea of electrical nonlinearity at the crack tip and develops a strip saturation model with electric field reaching a saturation limit in front of the crack. The energy flux intensity factor, thermal flux intensity factor and stress intensity factor are obtained. They are found to depend on the applied electric flux and applied energy flux loads. However, when electrical nonlinearity at the crack tip is not considered, they are only dependent on applied energy flux load. It is interesting to see that these intensity factors at electrically yielded crack tip are independent of the strength and size of electrical saturation. The result of the thermal stress intensity factor of this paper is very general and easy to use in the strength evaluation of thermoelectric materials and their devices.
UR - https://hdl.handle.net/1959.7/uws:65172
U2 - 10.1016/j.mechrescom.2020.103479
DO - 10.1016/j.mechrescom.2020.103479
M3 - Article
SN - 0093-6413
VL - 104
JO - Mechanics Research Communications
JF - Mechanics Research Communications
M1 - 103479
ER -