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A quasi-experimental study on responses to mechanical loads following different heart rate-based exercise intensities and water depths in postmenopausal women

Wan-Chin Chen, Wei-Han Chen, Zhong-Lun Zheng, Wei‐Gang Chang, Kuei‐Yu Chien · Scientific Reports · 2026

Researchers had 19 postmenopausal women perform four types of water jumps (countermovement, lunge, leg-arm open, and skipping) at moderate and high heart-rate-based intensities, in either shallow or deep water, and measured the mechanical loading on the body. Cumulative mechanical load was generally higher in shallow water than deep water at moderate intensity, and average load per jump was consistently higher at moderate than high intensity, with no significant depth-by-intensity interaction.
Takeaway: Do aquatic jump training in shallow water at moderate intensity if your goal is greater bone-and-joint mechanical loading.
Abstract (source)

Abstract The present study examined mechanical loads (ML) during a single bout of intermittent water jumps at different intensities and water depths. Nineteen postmenopausal women were non-randomly assigned to shallow-water level (SWL) or deep-water level (DWL) groups and performed four jump modes—countermovement, lunge, leg–arm open, and skipping (SKIP)—at moderate (MI) and high intensity (HI). The integral ML (IML) and average ML (AML) per jump were calculated for each condition. Baseline characteristics were compared between groups using the Mann–Whitney U test. Multi-factor analyses were performed in R, with body height adjusted as a covariate.

Results: showed that omnibus models revealed no significant depth × intensity interactions. For cumulative loading, a robust main effect of water depth was detected, proving that IML was generally greater in SWL than in DWL under MI. Under HI conditions, depth-modulated contrast magnitudes varied descriptively across modes, with skipping displaying a prominent exploratory post-hoc effect size. Furthermore, a significant main effect of intensity was observed for velocity metrics, wherein AML was consistently higher during MI than HI across all conditions. In

Conclusion: , an intermittent aquatic jumping protocol in SWL at MI offers a generally superior strategy for generating higher cumulative mechanical loading. However, the localized variations in individual post-hoc patterns warrant careful interpretation strictly as exploratory trends potentially influenced by individual body height variations, rather than indicating a true statistical interaction.

Primary studyOpen accessVelocity-Based & Technology
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