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The high temperature changes the emission to Schottky emission regime.
It is proved by test and application that the accelerometer has good waterproof, pressure resistance, anti-erosion resistance, high temperature changes and so on.
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The experimental validation clearly proves that considering austenite kinetics at a high temperature change rate in computer simulation is definitely more physically congruent.
Use of such high temperatures changes both the protein and solvent properties considerably, compared to physiological or room temperature.
When temperatures increase gradually or when plants experience a prior exposure to moderately high temperatures, changes in gene expression ensue (Larkindale et al. 2005; Hannah et al. 2006; Larkindale and Vierling 2008), leading to greater thermotolerance.
In addition, it is observed that higher temperature changes signify size dependency of FG microbeam.
This may explain the higher temperature changes at the edges.
However, high temperatures change the chemical and biological quality of soils, thus making restoration more difficult and costly.
In the study of the applied process parameters impact, the effect of a higher temperature change rate on austenite kinetics is shown by the temperature shift of austenite and ferrite to austenite start formations.
The top and bottom edges show higher temperature change versus the central horizontal axis.
The highest temperature change between the two periods was 1.5 °C in November for maximum temperature and 1.4 °C in June and July for the minimum temperature.
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