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[Research Review] Fluid Dynamics of the Pool Flip Turn and Analysis of Underwater Dolphin Kick Effects: A Biomechanical Quantification Experiment Report (No. 1155)

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【Research Review】Hydrodynamic Analysis of Pool Flip Turns and Underwater Dolphin Kick Effects: Biomechanical Quantification Experimental Report (Article 1155)

Reference Journal Source: Sports Biomechanics • International Research Findings Review Series

This article explores the hydrodynamic characteristics of glide distance and dolphin kick effects in pool flip turns.

Mechanical Phase Breakdown of the Flip Turn

The flip turn can be broken down into four mechanical phases: the final stroke approaching the wall, the somersault rotation, the explosive power output at the moment of wall push-off, and the underwater glide with dolphin kick transition after push-off. Among these, the explosive power at push-off and the gliding posture are the key determinants of speed maintenance after the turn—the faster the initial push-off velocity and the better the body’s streamline, the longer the high-speed distance that can be maintained during the underwater glide.

Underwater Glide Depth and Dolphin Kick Initiation Timing

There is an optimal range for underwater glide depth after push-off: too shallow (near the surface) is affected by surface wave drag, while too deep incurs additional distance and time costs for ascending. Most studies recommend an optimal glide depth in the 0.5–0.9 m range below the surface. The timing of dolphin kick initiation is equally critical—initiating the kick while glide speed still exceeds cruise pace will actually slow overall speed due to the drag generated by the kicking motion itself; the high-frequency, low-amplitude dolphin kick should only be initiated once glide speed drops to near normal pace to sustain underwater momentum.

Time Allocation Across Turn Phases (Schematic)

Phase Time Proportion Technical Key Points
Somersault into wall Short Compact motion, minimize excess rotation
Push-off explosion Short but critical Maximize initial push-off velocity
Underwater glide Moderate Maintain streamlined posture
Dolphin kick transition Adjusts with pace Initiate when speed drops near pace

Core Research Conclusions and Practical Recommendations

  • Push-off strength training: Land-based lower-body explosive power training (e.g., jump training) helps improve initial velocity at the moment of push-off
  • Streamline posture practice: Body posture during the underwater glide phase (arms pressed against ears, body extended) directly affects glide resistance and warrants dedicated technical training sets
  • Individualized glide distance: Longer glide distance is not always better; the optimal transition point must be found based on individual push-off strength and dolphin kick ability—excessive gliding causes excessive speed decay
  • Integrating turn rhythm into pace training: Long-distance training sets should incorporate actual turn practice rather than only straight-line swimming; the cumulative effect of turn quality is substantial in long-distance competitions

Common Research Q&A (FAQ)

Q: Is a longer underwater glide always better?

A: No. Glide speed continuously decays with distance, and gliding too long actually lowers average speed. The key is finding the critical point where “glide speed still exceeds pace” to transition into the dolphin kick.

Q: Do recreational swimmers also need to practice flip turn technique?

A: Yes. Even for recreational-level long-distance swimmers, the cumulative time benefit of optimized turn technique across an entire race or training session is quite significant and warrants dedicated practice time.

References and Academic Citations

  1. Sports Biomechanics — Research directions related to mechanical phase analysis of swimming turn movements.
  2. Journal of Sports Sciences — Literature related to quantitative research on underwater glide depth and dolphin kick efficiency.
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