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cyclic response
As this pattern repeats, an intermittent or cyclic response to the anticonvulsant treatment emerges, leading toward complete drug tolerance.
      
The results indicated that the SiCw/6061 Al composite demonstrated cyclic hardening, however the cyclic response stresses and the cyclic hardening tendency were different under differing ageing conditions.
      
Lower cyclic response stresses and higher hardening tendencies were found under natural ageing conditions, while higher cyclic response stresses and lower hardening tendencies were obtained under artificial ageing conditions.
      
The higher the cyclic response stresses following artificial ageing, the lower the hardening tendencies that reduced fatigue life.
      
Effect of ramp treatment on the cyclic response of coarse-grained copper
      
The low-cycle and high-cycle fatigue behavior and cyclic response of naturally aged and artificially aged 2219/TiC/15p and unreinforced 2219 Al were investigated utilizing plastic strain-controlled and stress-controlled testing.
      
The cyclic response of both the reinforced and un-reinforced materials was similar for all plastic strain amplitudes tested except that the saturation stress level for the composite was always greater than that of the unreinforced material.
      
The cyclic response of the naturally aged materials exhibited cyclic hardening and, in some cases, cyclic softening, while the cyclic response for the artificially aged materials showed no evidence of either cyclic hardening or softening.
      
Compared to pure polycrystalline copper, the dispersion-strengthened material exhibits a relatively stable cyclic response as a consequence of the dislocation substructures inherited from prior processing and stabilized by the A12O3 particles.
      
The effect of matrix microstructure on cyclic response and fatigue behavior of particle- reinforced 2219 aluminum: Part I.
      
The low-cycle and high-cycle fatigue behavior and cyclic response of naturally aged and overaged 2219/TiC/15p and unreinforced 2219 Al were investigated using plastic strain-controlled and stress-controlled testing.
      
The effect of matrix microstructure on cyclic response and fatigue behavior of particle-reinforced 2219 aluminum: Part II.
      
The 150 °C cyclic response of peak-aged and overaged 2219/TiC/15p and 2219 Al was examined using fully reversed plastic strain-controlled testing.
      
The cyclic response of peak-aged and overaged particle-reinforced materials showed extensive cyclic softening.
      
The materials were tested under fully reversed cyclic deformation in the peak-aged and naturally aged conditions to obtain the cyclic response and the cyclic stress-strain curve.
      
The materials were tested under fully reversed cyclic deformation in the peak-aged and naturally aged conditions to obtain the cyclic response and the cyclic stress-strain curve.
      
The effect of strain rate on the cyclic response of metals
      
Cyclic response and fatigue damage have been studied on precipitation-hardened Al-4 pet Cu alloy as a function of particle type and spacing by means of scanning and transmission electron microscopy.
      
The cyclic response results were then applied to Tomkins' model of fatigue life prediction.
      
A single excitatory reflex response is due to an irregularly firing afferent and a cyclic response to a regular discharge.
      
 

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