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The resistance ratio is defined as the resistance of the stress device to the resistance of the LRS.
For this purpose, a series of experiments were performed by varying the amount of restraint in the thermal stress device.
Uniaxial strain was introduced by a stress device as shown in Figure 1 which is the same as the one used by Papadimitriou and Richter [15].
Thus in this paper, the application of a stress device for predicting hydration-induced thermal stress in an actual structure is investigated.
To predict thermal stress independent of uncertain material properties of early age concrete, a new thermal stress device was developed by Kim et al. in [1].
The application of various degrees of constraint at a site can be achieved by the thermal stress device by varying the thermal expansion coefficient and the cross sectional area of the restraining frame.
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Data were collected over nine decades of shear rate, using controlled strain and controlled stress devices, steady shear and oscillatory modes, rotational rheometry, and capillary rheometry using the multi-pass technique.
In order to better understand the metallic disorders and interfacial interactions in the stressed device, STEM-HAADF observations and EDS analysis on the degraded areas were carried out.
In this paper it is proposed to use the active thermal management to reduce the switching losses or to move them to less stressed devices, during transients, such as a module can reach an higher current, without violating thermal constraints, and the need of overdesign can be reduced.
This leads to thermal expansion and residual stress in devices, and affects the device reliability.
Besides basic studies of human physiology, including how people respond to exercise or other stress, the device could find use in a variety of clinical situations.
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