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The penetration width of the anomalous field is also governed by lithosphere resistivity.
Lithosphere resistivity is a critical parameter, which governs both amplitude and penetration width of the anomalous electric field inland.
Consequently, four process parameters (laser power, wobble frequency, number of rotations within a single laser pulse and focused position) and 5 responses (penetration, width, heat affected zone (HAZ), area of the fusion zone, area of HAZ and hardness) were investigated for spot welding of Ti6Al4V alloy (grade 5) using a design of experiments (DoE) approach.
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The accepted ranges for a weld with good quality are a maximized penetration to width ratio and minimized undercut and reinforcement.
The correlations among three key geometric parameters, ie., penetration, bead width and overthickness, and four technological variables that define the welding process are quantified.
Weld bead penetration depth, width and overall geometry were measured and related to the process parameters, in order to assess optimized operating process windows.
An experimental campaign was designed and planned by means of the Response Surface Method (RSM) in order to assess the effect of the main process parameters on the weld bead penetration depth, width and general morphology.
For the ponded drainage scenarios also, directional conductivities and thickness of a soil profile, extent of partial penetration and width of the ditch drains, levels of water head at the surface of the soil as well as on the ditches are observed to influence the travel times in a noticeable way.
The results showed that welding with higher powers can create higher penetration-to-width ratios.
Comparison of jet penetration length and width between the model prediction and ECVT experiment shows that both the maximum penetration length and the maximum width of the horizontal gas jet increase with the superficial gas velocity.
Depth of penetration and bead width were the adjudicating parameters for optimality.
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