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The fatigue threshold (no damage) is reached at approximately 30% of the maximum load level.
With the same maximum load level, the fatigue life can be prolonged by several orders of magnitude depending on the fiber types and content.
The specimens were subjected to different fatigue loading, with the maximum load level up to 85% of the material ultimate flexural strength.
These two cases are maximum load level exceeding load-carrying capacity and damage accumulation (caused by the load and its duration) leading to failure.
Specimens were subjected to different fatigue loading, with the initial maximum load level up to 85% of the laminate ultimate flexural strength, and damage in the laminate was continuously monitored through the loss of bending moment during cycling.
This is accomplished by carrying out a set of crack growth experiments in air and vacuum at three temperatures; 650 °C, 704 °C and 760 °C using a dwell loading cycle with hold time periods up to 7200 s imposed at the maximum load level.
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In the first scenario, two non-corroded beams were tested to determine the maximum load levels that were required by the beams to reach their deflection limits and that were also tested for the sustained levels of the applied loads.
EV charging load is similarly concentrated and maximum load levels cannot be reduced.
The specimens were subjected to different fatigue loadings with the maximum loading level up to 75% of the material ultimate flexural strength.
The COF-102 network forms under typical solvothermal conditions, even in the presence of a large excess of 4-tolylboronic acid, which is incorporated into the polymer's boroxine linkages up to a maximum loading level of ca. 33 mol%.
It is concluded that the cumulative speed of energy dissipation and increasing growth-rate of damage indicators in Continuum Damage Theory (CDT) follow an exponential function in relation to the maximum cyclic load level and follow a logarithmic function in relation to the minimum cyclic load level.
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