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May 6, 2026Fluids0 citationsOpen Access

Air Knives: Going Beyond the Classical Midspan Pressure Distributions

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CMCelia Miguel-GonzálezAVAitor Vega-ValladaresMGManuel García-Díaz

Key Points

  • This research investigates the performance of air knives used in drying processes.
  • Empirical measurements of impingement pressure distributions were taken at midspan and parallel planes.
  • Analysis focused on understanding the impacts of air knife dimensions on drying effectiveness.
  • Air knife performance consistent with established bell-shaped distribution at midspan.
  • Pressure distributions beyond the knife's projection followed a similarity principle.

Abstract

Air knives are extensively employed in many cold rolling or tin plate production lines for drying purposes. Generally, these systems are oversized, resulting in excessive energy consumption, a consequence of insufficient understanding of their performance. Considering this deficiency, an empirical exploration was initiated to analyze the functionality of an air knife oriented perpendicularly to a given surface. Given the scarcity of information within the current body of literature, particular emphasis was placed on the regions affected by the finite dimensions of the device. Impingement pressure distributions were measured at the midspan plane and planes parallel to the midspan but extending beyond the projection of the air knife. The midspan impingement pressure profile aligned with the established bell-shaped distribution, whereas the outcomes beyond the air knife’s projection conformed to an analytically fitted similarity principle. Consequently, the mathematical formulations introduced in this study facilitate the mapping of the impingement pressure within the whole impingement plane, encompassing areas influenced by the finite length of the air knife, thereby representing the innovative contribution of this research.

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Cite This Study

Miguel-González et al. (2026) studied this question.

synapsesocial.com/papers/69faa2e204f884e66b533619https://doi.org/10.3390/fluids11050113
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