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using a ramp load of 43.8-kg-force per minute.
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Twenty tibias were used for each reconstruction technique, ten of which were loaded in a load-to-failure protocol and ten cyclically loaded (5000 times) between 200 and 1000 N using a ramp protocol.
In this case, the temperature was ramped to 500°C under 125 sccm of NH3 using a ramp rate of 10°C/min.
After loading each sample with In2O3 NWs from the downstream side, a flow of 500 sccm Ar was introduced for 10 min after which the temperature was ramped to the nitridation temperature (T N) under a flow of NH3 that varied between 125 and 250 sccm using a ramp rate of 30°C/min.
After loading the boats at room temperature (RT), Ar (99.999%) was introduced at a flow rate of 500 standard cubic centimetres per minute (sccm) for 10 min. Following this, the temperature was ramped to 850°C under a flow of 50 sccm Ar using a ramp rate of 30°C/min.
Melting data acquisition began at 69°C and ended in 95°C, using a ramp rate of 0.2°C/s.
The best surface finish was found by using a ramp-down waveform with relaxation time.
We use two finite element models to investigate the influences of non-linearities in this equation: a plate subjected to a ramp load, and a 2D model of the cross-section of a vertebra.
To move the yard ramp up and down, move it into a loading dock, or back of a truck, use a ramp clamp.
This approach used a ceramic graded areal density flyer in conjunction with a ceramic buffer plate to induce a ramp loading in the target.
Load was applied using a load-controlled, electromagnetic loading device.
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